hfcmulti.c 153.1 KB
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/*
 * hfcmulti.c  low level driver for hfc-4s/hfc-8s/hfc-e1 based cards
 *
 * Author	Andreas Eversberg (jolly@eversberg.eu)
 * ported to mqueue mechanism:
 *		Peter Sprenger (sprengermoving-bytes.de)
 *
 * inspired by existing hfc-pci driver:
 * Copyright 1999  by Werner Cornelius (werner@isdn-development.de)
 * Copyright 2008  by Karsten Keil (kkeil@suse.de)
 * Copyright 2008  by Andreas Eversberg (jolly@eversberg.eu)
 *
 * This program is free software; you can redistribute it and/or modify
 * it under the terms of the GNU General Public License as published by
 * the Free Software Foundation; either version 2, or (at your option)
 * any later version.
 *
 * This program is distributed in the hope that it will be useful,
 * but WITHOUT ANY WARRANTY; without even the implied warranty of
 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the
 * GNU General Public License for more details.
 *
 * You should have received a copy of the GNU General Public License
 * along with this program; if not, write to the Free Software
 * Foundation, Inc., 675 Mass Ave, Cambridge, MA 02139, USA.
 *
 *
 * Thanks to Cologne Chip AG for this great controller!
 */

/*
 * module parameters:
 * type:
 *	By default (0), the card is automatically detected.
 *	Or use the following combinations:
 *	Bit 0-7   = 0x00001 = HFC-E1 (1 port)
 * or	Bit 0-7   = 0x00004 = HFC-4S (4 ports)
 * or	Bit 0-7   = 0x00008 = HFC-8S (8 ports)
 *	Bit 8     = 0x00100 = uLaw (instead of aLaw)
 *	Bit 9     = 0x00200 = Disable DTMF detect on all B-channels via hardware
 *	Bit 10    = spare
 *	Bit 11    = 0x00800 = Force PCM bus into slave mode. (otherwhise auto)
 * or   Bit 12    = 0x01000 = Force PCM bus into master mode. (otherwhise auto)
 *	Bit 13	  = spare
 *	Bit 14    = 0x04000 = Use external ram (128K)
 *	Bit 15    = 0x08000 = Use external ram (512K)
 *	Bit 16    = 0x10000 = Use 64 timeslots instead of 32
 * or	Bit 17    = 0x20000 = Use 128 timeslots instead of anything else
 *	Bit 18    = spare
 *	Bit 19    = 0x80000 = Send the Watchdog a Signal (Dual E1 with Watchdog)
 * (all other bits are reserved and shall be 0)
 *	example: 0x20204 one HFC-4S with dtmf detection and 128 timeslots on PCM
 *		 bus (PCM master)
 *
 * port: (optional or required for all ports on all installed cards)
 *	HFC-4S/HFC-8S only bits:
 *	Bit 0	  = 0x001 = Use master clock for this S/T interface
 *			    (ony once per chip).
 *	Bit 1     = 0x002 = transmitter line setup (non capacitive mode)
 *			    Don't use this unless you know what you are doing!
 *	Bit 2     = 0x004 = Disable E-channel. (No E-channel processing)
 *	example: 0x0001,0x0000,0x0000,0x0000 one HFC-4S with master clock
 *		 received from port 1
 *
 *	HFC-E1 only bits:
 *	Bit 0     = 0x0001 = interface: 0=copper, 1=optical
 *	Bit 1     = 0x0002 = reserved (later for 32 B-channels transparent mode)
 *	Bit 2     = 0x0004 = Report LOS
 *	Bit 3     = 0x0008 = Report AIS
 *	Bit 4     = 0x0010 = Report SLIP
 *	Bit 5     = 0x0020 = Report RDI
 *	Bit 8     = 0x0100 = Turn off CRC-4 Multiframe Mode, use double frame
 *			     mode instead.
 *	Bit 9	  = 0x0200 = Force get clock from interface, even in NT mode.
 * or	Bit 10	  = 0x0400 = Force put clock to interface, even in TE mode.
 *	Bit 11    = 0x0800 = Use direct RX clock for PCM sync rather than PLL.
 *			     (E1 only)
 *	Bit 12-13 = 0xX000 = elastic jitter buffer (1-3), Set both bits to 0
 *			     for default.
 * (all other bits are reserved and shall be 0)
 *
 * debug:
 *	NOTE: only one debug value must be given for all cards
 *	enable debugging (see hfc_multi.h for debug options)
 *
 * poll:
 *	NOTE: only one poll value must be given for all cards
 *	Give the number of samples for each fifo process.
 *	By default 128 is used. Decrease to reduce delay, increase to
 *	reduce cpu load. If unsure, don't mess with it!
 *	Valid is 8, 16, 32, 64, 128, 256.
 *
 * pcm:
 *	NOTE: only one pcm value must be given for every card.
 *	The PCM bus id tells the mISDNdsp module about the connected PCM bus.
 *	By default (0), the PCM bus id is 100 for the card that is PCM master.
 *	If multiple cards are PCM master (because they are not interconnected),
 *	each card with PCM master will have increasing PCM id.
 *	All PCM busses with the same ID are expected to be connected and have
 *	common time slots slots.
 *	Only one chip of the PCM bus must be master, the others slave.
 *	-1 means no support of PCM bus not even.
 *	Omit this value, if all cards are interconnected or none is connected.
 *	If unsure, don't give this parameter.
 *
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 * dmask and bmask:
 *	NOTE: One dmask value must be given for every HFC-E1 card.
 *	If omitted, the E1 card has D-channel on time slot 16, which is default.
 *	dmask is a 32 bit mask. The bit must be set for an alternate time slot.
 *	If multiple bits are set, multiple virtual card fragments are created.
 *	For each bit set, a bmask value must be given. Each bit on the bmask
 *	value stands for a B-channel. The bmask may not overlap with dmask or
 *	with other bmask values for that card.
 *	Example: dmask=0x00020002 bmask=0x0000fffc,0xfffc0000
 *		This will create one fragment with D-channel on slot 1 with
 *		B-channels on slots 2..15, and a second fragment with D-channel
 *		on slot 17 with B-channels on slot 18..31. Slot 16 is unused.
 *	If bit 0 is set (dmask=0x00000001) the D-channel is on slot 0 and will
 *	not function.
 *	Example: dmask=0x00000001 bmask=0xfffffffe
 *		This will create a port with all 31 usable timeslots as
 *		B-channels.
 *	If no bits are set on bmask, no B-channel is created for that fragment.
 *	Example: dmask=0xfffffffe bmask=0,0,0,0.... (31 0-values for bmask)
 *		This will create 31 ports with one D-channel only.
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 *	If you don't know how to use it, you don't need it!
 *
 * iomode:
 *	NOTE: only one mode value must be given for every card.
 *	-> See hfc_multi.h for HFC_IO_MODE_* values
 *	By default, the IO mode is pci memory IO (MEMIO).
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 *	Some cards require specific IO mode, so it cannot be changed.
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 *	It may be useful to set IO mode to register io (REGIO) to solve
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 *	PCI bridge problems.
 *	If unsure, don't give this parameter.
 *
 * clockdelay_nt:
 *	NOTE: only one clockdelay_nt value must be given once for all cards.
 *	Give the value of the clock control register (A_ST_CLK_DLY)
 *	of the S/T interfaces in NT mode.
 *	This register is needed for the TBR3 certification, so don't change it.
 *
 * clockdelay_te:
 *	NOTE: only one clockdelay_te value must be given once
 *	Give the value of the clock control register (A_ST_CLK_DLY)
 *	of the S/T interfaces in TE mode.
 *	This register is needed for the TBR3 certification, so don't change it.
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 *
 * clock:
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 *	NOTE: only one clock value must be given once
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 *	Selects interface with clock source for mISDN and applications.
 *	Set to card number starting with 1. Set to -1 to disable.
 *	By default, the first card is used as clock source.
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 *
 * hwid:
 *	NOTE: only one hwid value must be given once
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 *	Enable special embedded devices with XHFC controllers.
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 */

/*
 * debug register access (never use this, it will flood your system log)
 * #define HFC_REGISTER_DEBUG
 */

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#define HFC_MULTI_VERSION	"2.03"
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#include <linux/interrupt.h>
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#include <linux/module.h>
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#include <linux/slab.h>
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#include <linux/pci.h>
#include <linux/delay.h>
#include <linux/mISDNhw.h>
#include <linux/mISDNdsp.h>

/*
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  #define IRQCOUNT_DEBUG
  #define IRQ_DEBUG
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*/

#include "hfc_multi.h"
#ifdef ECHOPREP
#include "gaintab.h"
#endif

#define	MAX_CARDS	8
#define	MAX_PORTS	(8 * MAX_CARDS)
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#define	MAX_FRAGS	(32 * MAX_CARDS)
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static LIST_HEAD(HFClist);
static spinlock_t HFClock; /* global hfc list lock */

static void ph_state_change(struct dchannel *);

static struct hfc_multi *syncmaster;
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static int plxsd_master; /* if we have a master card (yet) */
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static spinlock_t plx_lock; /* may not acquire other lock inside */

#define	TYP_E1		1
#define	TYP_4S		4
#define TYP_8S		8

static int poll_timer = 6;	/* default = 128 samples = 16ms */
/* number of POLL_TIMER interrupts for G2 timeout (ca 1s) */
static int nt_t1_count[] = { 3840, 1920, 960, 480, 240, 120, 60, 30  };
#define	CLKDEL_TE	0x0f	/* CLKDEL in TE mode */
#define	CLKDEL_NT	0x6c	/* CLKDEL in NT mode
				   (0x60 MUST be included!) */

#define	DIP_4S	0x1		/* DIP Switches for Beronet 1S/2S/4S cards */
#define	DIP_8S	0x2		/* DIP Switches for Beronet 8S+ cards */
#define	DIP_E1	0x3		/* DIP Switches for Beronet E1 cards */

/*
 * module stuff
 */

static uint	type[MAX_CARDS];
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static int	pcm[MAX_CARDS];
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static uint	dmask[MAX_CARDS];
static uint	bmask[MAX_FRAGS];
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static uint	iomode[MAX_CARDS];
static uint	port[MAX_PORTS];
static uint	debug;
static uint	poll;
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static int	clock;
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static uint	timer;
static uint	clockdelay_te = CLKDEL_TE;
static uint	clockdelay_nt = CLKDEL_NT;
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#define HWID_NONE	0
#define HWID_MINIP4	1
#define HWID_MINIP8	2
#define HWID_MINIP16	3
static uint	hwid = HWID_NONE;
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static int	HFC_cnt, E1_cnt, bmask_cnt, Port_cnt, PCM_cnt = 99;
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MODULE_AUTHOR("Andreas Eversberg");
MODULE_LICENSE("GPL");
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MODULE_VERSION(HFC_MULTI_VERSION);
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module_param(debug, uint, S_IRUGO | S_IWUSR);
module_param(poll, uint, S_IRUGO | S_IWUSR);
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module_param(clock, int, S_IRUGO | S_IWUSR);
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module_param(timer, uint, S_IRUGO | S_IWUSR);
module_param(clockdelay_te, uint, S_IRUGO | S_IWUSR);
module_param(clockdelay_nt, uint, S_IRUGO | S_IWUSR);
module_param_array(type, uint, NULL, S_IRUGO | S_IWUSR);
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module_param_array(pcm, int, NULL, S_IRUGO | S_IWUSR);
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module_param_array(dmask, uint, NULL, S_IRUGO | S_IWUSR);
module_param_array(bmask, uint, NULL, S_IRUGO | S_IWUSR);
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module_param_array(iomode, uint, NULL, S_IRUGO | S_IWUSR);
module_param_array(port, uint, NULL, S_IRUGO | S_IWUSR);
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module_param(hwid, uint, S_IRUGO | S_IWUSR); /* The hardware ID */
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#ifdef HFC_REGISTER_DEBUG
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#define HFC_outb(hc, reg, val)					\
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	(hc->HFC_outb(hc, reg, val, __func__, __LINE__))
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#define HFC_outb_nodebug(hc, reg, val)					\
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	(hc->HFC_outb_nodebug(hc, reg, val, __func__, __LINE__))
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#define HFC_inb(hc, reg)				\
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	(hc->HFC_inb(hc, reg, __func__, __LINE__))
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#define HFC_inb_nodebug(hc, reg)				\
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	(hc->HFC_inb_nodebug(hc, reg, __func__, __LINE__))
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#define HFC_inw(hc, reg)				\
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	(hc->HFC_inw(hc, reg, __func__, __LINE__))
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#define HFC_inw_nodebug(hc, reg)				\
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	(hc->HFC_inw_nodebug(hc, reg, __func__, __LINE__))
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#define HFC_wait(hc)				\
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	(hc->HFC_wait(hc, __func__, __LINE__))
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#define HFC_wait_nodebug(hc)				\
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	(hc->HFC_wait_nodebug(hc, __func__, __LINE__))
#else
#define HFC_outb(hc, reg, val)		(hc->HFC_outb(hc, reg, val))
#define HFC_outb_nodebug(hc, reg, val)	(hc->HFC_outb_nodebug(hc, reg, val))
#define HFC_inb(hc, reg)		(hc->HFC_inb(hc, reg))
#define HFC_inb_nodebug(hc, reg)	(hc->HFC_inb_nodebug(hc, reg))
#define HFC_inw(hc, reg)		(hc->HFC_inw(hc, reg))
#define HFC_inw_nodebug(hc, reg)	(hc->HFC_inw_nodebug(hc, reg))
#define HFC_wait(hc)			(hc->HFC_wait(hc))
#define HFC_wait_nodebug(hc)		(hc->HFC_wait_nodebug(hc))
#endif

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#ifdef CONFIG_MISDN_HFCMULTI_8xx
#include "hfc_multi_8xx.h"
#endif

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/* HFC_IO_MODE_PCIMEM */
static void
#ifdef HFC_REGISTER_DEBUG
HFC_outb_pcimem(struct hfc_multi *hc, u_char reg, u_char val,
		const char *function, int line)
#else
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	HFC_outb_pcimem(struct hfc_multi *hc, u_char reg, u_char val)
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#endif
{
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	writeb(val, hc->pci_membase + reg);
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}
static u_char
#ifdef HFC_REGISTER_DEBUG
HFC_inb_pcimem(struct hfc_multi *hc, u_char reg, const char *function, int line)
#else
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	HFC_inb_pcimem(struct hfc_multi *hc, u_char reg)
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#endif
{
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	return readb(hc->pci_membase + reg);
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}
static u_short
#ifdef HFC_REGISTER_DEBUG
HFC_inw_pcimem(struct hfc_multi *hc, u_char reg, const char *function, int line)
#else
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	HFC_inw_pcimem(struct hfc_multi *hc, u_char reg)
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#endif
{
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	return readw(hc->pci_membase + reg);
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}
static void
#ifdef HFC_REGISTER_DEBUG
HFC_wait_pcimem(struct hfc_multi *hc, const char *function, int line)
#else
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	HFC_wait_pcimem(struct hfc_multi *hc)
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#endif
{
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	while (readb(hc->pci_membase + R_STATUS) & V_BUSY)
		cpu_relax();
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}

/* HFC_IO_MODE_REGIO */
static void
#ifdef HFC_REGISTER_DEBUG
HFC_outb_regio(struct hfc_multi *hc, u_char reg, u_char val,
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	       const char *function, int line)
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#else
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	HFC_outb_regio(struct hfc_multi *hc, u_char reg, u_char val)
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#endif
{
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	outb(reg, hc->pci_iobase + 4);
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	outb(val, hc->pci_iobase);
}
static u_char
#ifdef HFC_REGISTER_DEBUG
HFC_inb_regio(struct hfc_multi *hc, u_char reg, const char *function, int line)
#else
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	HFC_inb_regio(struct hfc_multi *hc, u_char reg)
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#endif
{
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	outb(reg, hc->pci_iobase + 4);
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	return inb(hc->pci_iobase);
}
static u_short
#ifdef HFC_REGISTER_DEBUG
HFC_inw_regio(struct hfc_multi *hc, u_char reg, const char *function, int line)
#else
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	HFC_inw_regio(struct hfc_multi *hc, u_char reg)
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#endif
{
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	outb(reg, hc->pci_iobase + 4);
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	return inw(hc->pci_iobase);
}
static void
#ifdef HFC_REGISTER_DEBUG
HFC_wait_regio(struct hfc_multi *hc, const char *function, int line)
#else
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	HFC_wait_regio(struct hfc_multi *hc)
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#endif
{
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	outb(R_STATUS, hc->pci_iobase + 4);
	while (inb(hc->pci_iobase) & V_BUSY)
		cpu_relax();
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}

#ifdef HFC_REGISTER_DEBUG
static void
HFC_outb_debug(struct hfc_multi *hc, u_char reg, u_char val,
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	       const char *function, int line)
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{
	char regname[256] = "", bits[9] = "xxxxxxxx";
	int i;

	i = -1;
	while (hfc_register_names[++i].name) {
		if (hfc_register_names[i].reg == reg)
			strcat(regname, hfc_register_names[i].name);
	}
	if (regname[0] == '\0')
		strcpy(regname, "register");

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	bits[7] = '0' + (!!(val & 1));
	bits[6] = '0' + (!!(val & 2));
	bits[5] = '0' + (!!(val & 4));
	bits[4] = '0' + (!!(val & 8));
	bits[3] = '0' + (!!(val & 16));
	bits[2] = '0' + (!!(val & 32));
	bits[1] = '0' + (!!(val & 64));
	bits[0] = '0' + (!!(val & 128));
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	printk(KERN_DEBUG
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	       "HFC_outb(chip %d, %02x=%s, 0x%02x=%s); in %s() line %d\n",
	       hc->id, reg, regname, val, bits, function, line);
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	HFC_outb_nodebug(hc, reg, val);
}
static u_char
HFC_inb_debug(struct hfc_multi *hc, u_char reg, const char *function, int line)
{
	char regname[256] = "", bits[9] = "xxxxxxxx";
	u_char val = HFC_inb_nodebug(hc, reg);
	int i;

	i = 0;
	while (hfc_register_names[i++].name)
		;
	while (hfc_register_names[++i].name) {
		if (hfc_register_names[i].reg == reg)
			strcat(regname, hfc_register_names[i].name);
	}
	if (regname[0] == '\0')
		strcpy(regname, "register");

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	bits[7] = '0' + (!!(val & 1));
	bits[6] = '0' + (!!(val & 2));
	bits[5] = '0' + (!!(val & 4));
	bits[4] = '0' + (!!(val & 8));
	bits[3] = '0' + (!!(val & 16));
	bits[2] = '0' + (!!(val & 32));
	bits[1] = '0' + (!!(val & 64));
	bits[0] = '0' + (!!(val & 128));
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	printk(KERN_DEBUG
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	       "HFC_inb(chip %d, %02x=%s) = 0x%02x=%s; in %s() line %d\n",
	       hc->id, reg, regname, val, bits, function, line);
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	return val;
}
static u_short
HFC_inw_debug(struct hfc_multi *hc, u_char reg, const char *function, int line)
{
	char regname[256] = "";
	u_short val = HFC_inw_nodebug(hc, reg);
	int i;

	i = 0;
	while (hfc_register_names[i++].name)
		;
	while (hfc_register_names[++i].name) {
		if (hfc_register_names[i].reg == reg)
			strcat(regname, hfc_register_names[i].name);
	}
	if (regname[0] == '\0')
		strcpy(regname, "register");

	printk(KERN_DEBUG
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	       "HFC_inw(chip %d, %02x=%s) = 0x%04x; in %s() line %d\n",
	       hc->id, reg, regname, val, function, line);
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	return val;
}
static void
HFC_wait_debug(struct hfc_multi *hc, const char *function, int line)
{
	printk(KERN_DEBUG "HFC_wait(chip %d); in %s() line %d\n",
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	       hc->id, function, line);
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	HFC_wait_nodebug(hc);
}
#endif

/* write fifo data (REGIO) */
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static void
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write_fifo_regio(struct hfc_multi *hc, u_char *data, int len)
{
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	outb(A_FIFO_DATA0, (hc->pci_iobase) + 4);
	while (len >> 2) {
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		outl(cpu_to_le32(*(u32 *)data), hc->pci_iobase);
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		data += 4;
		len -= 4;
	}
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	while (len >> 1) {
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		outw(cpu_to_le16(*(u16 *)data), hc->pci_iobase);
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		data += 2;
		len -= 2;
	}
	while (len) {
		outb(*data, hc->pci_iobase);
		data++;
		len--;
	}
}
/* write fifo data (PCIMEM) */
482
static void
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write_fifo_pcimem(struct hfc_multi *hc, u_char *data, int len)
{
485
	while (len >> 2) {
486
		writel(cpu_to_le32(*(u32 *)data),
487
		       hc->pci_membase + A_FIFO_DATA0);
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		data += 4;
		len -= 4;
	}
491
	while (len >> 1) {
492
		writew(cpu_to_le16(*(u16 *)data),
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		       hc->pci_membase + A_FIFO_DATA0);
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		data += 2;
		len -= 2;
	}
	while (len) {
498
		writeb(*data, hc->pci_membase + A_FIFO_DATA0);
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		data++;
		len--;
	}
}
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/* read fifo data (REGIO) */
505
static void
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read_fifo_regio(struct hfc_multi *hc, u_char *data, int len)
{
508 509
	outb(A_FIFO_DATA0, (hc->pci_iobase) + 4);
	while (len >> 2) {
510
		*(u32 *)data = le32_to_cpu(inl(hc->pci_iobase));
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		data += 4;
		len -= 4;
	}
514
	while (len >> 1) {
515
		*(u16 *)data = le16_to_cpu(inw(hc->pci_iobase));
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		data += 2;
		len -= 2;
	}
	while (len) {
		*data = inb(hc->pci_iobase);
		data++;
		len--;
	}
}

/* read fifo data (PCIMEM) */
527
static void
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read_fifo_pcimem(struct hfc_multi *hc, u_char *data, int len)
{
530
	while (len >> 2) {
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		*(u32 *)data =
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			le32_to_cpu(readl(hc->pci_membase + A_FIFO_DATA0));
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		data += 4;
		len -= 4;
	}
536
	while (len >> 1) {
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		*(u16 *)data =
538
			le16_to_cpu(readw(hc->pci_membase + A_FIFO_DATA0));
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		data += 2;
		len -= 2;
	}
	while (len) {
543
		*data = readb(hc->pci_membase + A_FIFO_DATA0);
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		data++;
		len--;
	}
}

static void
enable_hwirq(struct hfc_multi *hc)
{
	hc->hw.r_irq_ctrl |= V_GLOB_IRQ_EN;
	HFC_outb(hc, R_IRQ_CTRL, hc->hw.r_irq_ctrl);
}

static void
disable_hwirq(struct hfc_multi *hc)
{
	hc->hw.r_irq_ctrl &= ~((u_char)V_GLOB_IRQ_EN);
	HFC_outb(hc, R_IRQ_CTRL, hc->hw.r_irq_ctrl);
}

#define	NUM_EC 2
#define	MAX_TDM_CHAN 32


inline void
enablepcibridge(struct hfc_multi *c)
{
	HFC_outb(c, R_BRG_PCM_CFG, (0x0 << 6) | 0x3); /* was _io before */
}

inline void
disablepcibridge(struct hfc_multi *c)
{
	HFC_outb(c, R_BRG_PCM_CFG, (0x0 << 6) | 0x2); /* was _io before */
}

inline unsigned char
readpcibridge(struct hfc_multi *hc, unsigned char address)
{
	unsigned short cipv;
	unsigned char data;

	if (!hc->pci_iobase)
		return 0;

	/* slow down a PCI read access by 1 PCI clock cycle */
	HFC_outb(hc, R_CTRL, 0x4); /*was _io before*/

	if (address == 0)
		cipv = 0x4000;
	else
		cipv = 0x5800;

	/* select local bridge port address by writing to CIP port */
	/* data = HFC_inb(c, cipv); * was _io before */
	outw(cipv, hc->pci_iobase + 4);
	data = inb(hc->pci_iobase);

	/* restore R_CTRL for normal PCI read cycle speed */
	HFC_outb(hc, R_CTRL, 0x0); /* was _io before */

	return data;
}

inline void
writepcibridge(struct hfc_multi *hc, unsigned char address, unsigned char data)
{
	unsigned short cipv;
	unsigned int datav;

	if (!hc->pci_iobase)
		return;

	if (address == 0)
		cipv = 0x4000;
	else
		cipv = 0x5800;

	/* select local bridge port address by writing to CIP port */
	outw(cipv, hc->pci_iobase + 4);
	/* define a 32 bit dword with 4 identical bytes for write sequence */
	datav = data | ((__u32) data << 8) | ((__u32) data << 16) |
625
		((__u32) data << 24);
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	/*
	 * write this 32 bit dword to the bridge data port
	 * this will initiate a write sequence of up to 4 writes to the same
	 * address on the local bus interface the number of write accesses
	 * is undefined but >=1 and depends on the next PCI transaction
	 * during write sequence on the local bus
	 */
	outl(datav, hc->pci_iobase);
}

inline void
cpld_set_reg(struct hfc_multi *hc, unsigned char reg)
{
	/* Do data pin read low byte */
	HFC_outb(hc, R_GPIO_OUT1, reg);
}

inline void
cpld_write_reg(struct hfc_multi *hc, unsigned char reg, unsigned char val)
{
	cpld_set_reg(hc, reg);

	enablepcibridge(hc);
	writepcibridge(hc, 1, val);
	disablepcibridge(hc);

	return;
}

inline unsigned char
cpld_read_reg(struct hfc_multi *hc, unsigned char reg)
{
	unsigned char bytein;

	cpld_set_reg(hc, reg);

	/* Do data pin read low byte */
	HFC_outb(hc, R_GPIO_OUT1, reg);

	enablepcibridge(hc);
	bytein = readpcibridge(hc, 1);
	disablepcibridge(hc);

	return bytein;
}

inline void
vpm_write_address(struct hfc_multi *hc, unsigned short addr)
{
	cpld_write_reg(hc, 0, 0xff & addr);
	cpld_write_reg(hc, 1, 0x01 & (addr >> 8));
}

inline unsigned short
vpm_read_address(struct hfc_multi *c)
{
	unsigned short addr;
	unsigned short highbit;

	addr = cpld_read_reg(c, 0);
	highbit = cpld_read_reg(c, 1);

	addr = addr | (highbit << 8);

	return addr & 0x1ff;
}

inline unsigned char
vpm_in(struct hfc_multi *c, int which, unsigned short addr)
{
	unsigned char res;

	vpm_write_address(c, addr);

	if (!which)
		cpld_set_reg(c, 2);
	else
		cpld_set_reg(c, 3);

	enablepcibridge(c);
	res = readpcibridge(c, 1);
	disablepcibridge(c);

	cpld_set_reg(c, 0);

	return res;
}

inline void
vpm_out(struct hfc_multi *c, int which, unsigned short addr,
717
	unsigned char data)
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{
	vpm_write_address(c, addr);

	enablepcibridge(c);

	if (!which)
		cpld_set_reg(c, 2);
	else
		cpld_set_reg(c, 3);

	writepcibridge(c, 1, data);

	cpld_set_reg(c, 0);

	disablepcibridge(c);

	{
735 736 737 738 739
		unsigned char regin;
		regin = vpm_in(c, which, addr);
		if (regin != data)
			printk(KERN_DEBUG "Wrote 0x%x to register 0x%x but got back "
			       "0x%x\n", data, addr, regin);
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	}

}


745
static void
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vpm_init(struct hfc_multi *wc)
{
	unsigned char reg;
	unsigned int mask;
	unsigned int i, x, y;
	unsigned int ver;

	for (x = 0; x < NUM_EC; x++) {
		/* Setup GPIO's */
		if (!x) {
			ver = vpm_in(wc, x, 0x1a0);
			printk(KERN_DEBUG "VPM: Chip %d: ver %02x\n", x, ver);
		}

		for (y = 0; y < 4; y++) {
			vpm_out(wc, x, 0x1a8 + y, 0x00); /* GPIO out */
			vpm_out(wc, x, 0x1ac + y, 0x00); /* GPIO dir */
			vpm_out(wc, x, 0x1b0 + y, 0x00); /* GPIO sel */
		}

		/* Setup TDM path - sets fsync and tdm_clk as inputs */
		reg = vpm_in(wc, x, 0x1a3); /* misc_con */
		vpm_out(wc, x, 0x1a3, reg & ~2);

		/* Setup Echo length (256 taps) */
		vpm_out(wc, x, 0x022, 1);
		vpm_out(wc, x, 0x023, 0xff);

		/* Setup timeslots */
		vpm_out(wc, x, 0x02f, 0x00);
		mask = 0x02020202 << (x * 4);

		/* Setup the tdm channel masks for all chips */
		for (i = 0; i < 4; i++)
			vpm_out(wc, x, 0x33 - i, (mask >> (i << 3)) & 0xff);

		/* Setup convergence rate */
		printk(KERN_DEBUG "VPM: A-law mode\n");
		reg = 0x00 | 0x10 | 0x01;
		vpm_out(wc, x, 0x20, reg);
		printk(KERN_DEBUG "VPM reg 0x20 is %x\n", reg);
		/*vpm_out(wc, x, 0x20, (0x00 | 0x08 | 0x20 | 0x10)); */

		vpm_out(wc, x, 0x24, 0x02);
		reg = vpm_in(wc, x, 0x24);
		printk(KERN_DEBUG "NLP Thresh is set to %d (0x%x)\n", reg, reg);

		/* Initialize echo cans */
		for (i = 0; i < MAX_TDM_CHAN; i++) {
			if (mask & (0x00000001 << i))
				vpm_out(wc, x, i, 0x00);
		}

		/*
		 * ARM arch at least disallows a udelay of
		 * more than 2ms... it gives a fake "__bad_udelay"
		 * reference at link-time.
		 * long delays in kernel code are pretty sucky anyway
		 * for now work around it using 5 x 2ms instead of 1 x 10ms
		 */

		udelay(2000);
		udelay(2000);
		udelay(2000);
		udelay(2000);
		udelay(2000);

		/* Put in bypass mode */
		for (i = 0; i < MAX_TDM_CHAN; i++) {
			if (mask & (0x00000001 << i))
				vpm_out(wc, x, i, 0x01);
		}

		/* Enable bypass */
		for (i = 0; i < MAX_TDM_CHAN; i++) {
			if (mask & (0x00000001 << i))
				vpm_out(wc, x, 0x78 + i, 0x01);
		}

	}
}

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#ifdef UNUSED
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static void
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vpm_check(struct hfc_multi *hctmp)
{
	unsigned char gpi2;

	gpi2 = HFC_inb(hctmp, R_GPI_IN2);

	if ((gpi2 & 0x3) != 0x3)
		printk(KERN_DEBUG "Got interrupt 0x%x from VPM!\n", gpi2);
}
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#endif /* UNUSED */
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/*
 * Interface to enable/disable the HW Echocan
 *
 * these functions are called within a spin_lock_irqsave on
 * the channel instance lock, so we are not disturbed by irqs
 *
 * we can later easily change the interface to make  other
 * things configurable, for now we configure the taps
 *
 */

853
static void
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vpm_echocan_on(struct hfc_multi *hc, int ch, int taps)
{
	unsigned int timeslot;
	unsigned int unit;
	struct bchannel *bch = hc->chan[ch].bch;
#ifdef TXADJ
	int txadj = -4;
	struct sk_buff *skb;
#endif
	if (hc->chan[ch].protocol != ISDN_P_B_RAW)
		return;

	if (!bch)
		return;

#ifdef TXADJ
	skb = _alloc_mISDN_skb(PH_CONTROL_IND, HFC_VOL_CHANGE_TX,
871
			       sizeof(int), &txadj, GFP_ATOMIC);
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	if (skb)
		recv_Bchannel_skb(bch, skb);
#endif

876
	timeslot = ((ch / 4) * 8) + ((ch % 4) * 4) + 1;
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	unit = ch % 4;

	printk(KERN_NOTICE "vpm_echocan_on called taps [%d] on timeslot %d\n",
880
	       taps, timeslot);
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	vpm_out(hc, unit, timeslot, 0x7e);
}

885
static void
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vpm_echocan_off(struct hfc_multi *hc, int ch)
{
	unsigned int timeslot;
	unsigned int unit;
	struct bchannel *bch = hc->chan[ch].bch;
#ifdef TXADJ
	int txadj = 0;
	struct sk_buff *skb;
#endif

	if (hc->chan[ch].protocol != ISDN_P_B_RAW)
		return;

	if (!bch)
		return;

#ifdef TXADJ
	skb = _alloc_mISDN_skb(PH_CONTROL_IND, HFC_VOL_CHANGE_TX,
904
			       sizeof(int), &txadj, GFP_ATOMIC);
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	if (skb)
		recv_Bchannel_skb(bch, skb);
#endif

909
	timeslot = ((ch / 4) * 8) + ((ch % 4) * 4) + 1;
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	unit = ch % 4;

	printk(KERN_NOTICE "vpm_echocan_off called on timeslot %d\n",
913
	       timeslot);
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	/* FILLME */
	vpm_out(hc, unit, timeslot, 0x01);
}


/*
 * Speech Design resync feature
 * NOTE: This is called sometimes outside interrupt handler.
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 * We must lock irqsave, so no other interrupt (other card) will occur!
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 * Also multiple interrupts may nest, so must lock each access (lists, card)!
 */
static inline void
hfcmulti_resync(struct hfc_multi *locked, struct hfc_multi *newmaster, int rm)
{
928
	struct hfc_multi *hc, *next, *pcmmaster = NULL;
929 930
	void __iomem *plx_acc_32;
	u_int pv;
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	u_long flags;

	spin_lock_irqsave(&HFClock, flags);
	spin_lock(&plx_lock); /* must be locked inside other locks */

	if (debug & DEBUG_HFCMULTI_PLXSD)
		printk(KERN_DEBUG "%s: RESYNC(syncmaster=0x%p)\n",
938
		       __func__, syncmaster);
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	/* select new master */
	if (newmaster) {
		if (debug & DEBUG_HFCMULTI_PLXSD)
			printk(KERN_DEBUG "using provided controller\n");
	} else {
		list_for_each_entry_safe(hc, next, &HFClist, list) {
			if (test_bit(HFC_CHIP_PLXSD, &hc->chip)) {
				if (hc->syncronized) {
					newmaster = hc;
					break;
				}
			}
		}
	}

	/* Disable sync of all cards */
	list_for_each_entry_safe(hc, next, &HFClist, list) {
		if (test_bit(HFC_CHIP_PLXSD, &hc->chip)) {
958
			plx_acc_32 = hc->plx_membase + PLX_GPIOC;
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			pv = readl(plx_acc_32);
			pv &= ~PLX_SYNC_O_EN;
			writel(pv, plx_acc_32);
			if (test_bit(HFC_CHIP_PCM_MASTER, &hc->chip)) {
				pcmmaster = hc;
964
				if (hc->ctype == HFC_TYPE_E1) {
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					if (debug & DEBUG_HFCMULTI_PLXSD)
						printk(KERN_DEBUG
967
						       "Schedule SYNC_I\n");
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					hc->e1_resync |= 1; /* get SYNC_I */
				}
			}
		}
	}

	if (newmaster) {
		hc = newmaster;
		if (debug & DEBUG_HFCMULTI_PLXSD)
			printk(KERN_DEBUG "id=%d (0x%p) = syncronized with "
978
			       "interface.\n", hc->id, hc);
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		/* Enable new sync master */
980
		plx_acc_32 = hc->plx_membase + PLX_GPIOC;
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		pv = readl(plx_acc_32);
		pv |= PLX_SYNC_O_EN;
		writel(pv, plx_acc_32);
		/* switch to jatt PLL, if not disabled by RX_SYNC */
985
		if (hc->ctype == HFC_TYPE_E1
986
		    && !test_bit(HFC_CHIP_RX_SYNC, &hc->chip)) {
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			if (debug & DEBUG_HFCMULTI_PLXSD)
				printk(KERN_DEBUG "Schedule jatt PLL\n");
			hc->e1_resync |= 2; /* switch to jatt */
		}
	} else {
		if (pcmmaster) {
			hc = pcmmaster;
			if (debug & DEBUG_HFCMULTI_PLXSD)
				printk(KERN_DEBUG
996 997
				       "id=%d (0x%p) = PCM master syncronized "
				       "with QUARTZ\n", hc->id, hc);
998
			if (hc->ctype == HFC_TYPE_E1) {
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				/* Use the crystal clock for the PCM
				   master card */
				if (debug & DEBUG_HFCMULTI_PLXSD)
					printk(KERN_DEBUG
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					       "Schedule QUARTZ for HFC-E1\n");
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				hc->e1_resync |= 4; /* switch quartz */
			} else {
				if (debug & DEBUG_HFCMULTI_PLXSD)
					printk(KERN_DEBUG
1008 1009
					       "QUARTZ is automatically "
					       "enabled by HFC-%dS\n", hc->ctype);
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			}
1011
			plx_acc_32 = hc->plx_membase + PLX_GPIOC;
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			pv = readl(plx_acc_32);
			pv |= PLX_SYNC_O_EN;
			writel(pv, plx_acc_32);
		} else
			if (!rm)
				printk(KERN_ERR "%s no pcm master, this MUST "
1018
				       "not happen!\n", __func__);
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	}
	syncmaster = newmaster;

	spin_unlock(&plx_lock);
	spin_unlock_irqrestore(&HFClock, flags);
}

/* This must be called AND hc must be locked irqsave!!! */
inline void
plxsd_checksync(struct hfc_multi *hc, int rm)
{
	if (hc->syncronized) {
		if (syncmaster == NULL) {
			if (debug & DEBUG_HFCMULTI_PLXSD)
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				printk(KERN_DEBUG "%s: GOT sync on card %d"
1034 1035
				       " (id=%d)\n", __func__, hc->id + 1,
				       hc->id);
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			hfcmulti_resync(hc, hc, rm);
		}
	} else {
		if (syncmaster == hc) {
			if (debug & DEBUG_HFCMULTI_PLXSD)
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				printk(KERN_DEBUG "%s: LOST sync on card %d"
1042 1043
				       " (id=%d)\n", __func__, hc->id + 1,
				       hc->id);
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			hfcmulti_resync(hc, NULL, rm);
		}
	}
}


/*
 * free hardware resources used by driver
 */
static void
release_io_hfcmulti(struct hfc_multi *hc)
{
1056 1057
	void __iomem *plx_acc_32;
	u_int	pv;
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	u_long	plx_flags;

	if (debug & DEBUG_HFCMULTI_INIT)
		printk(KERN_DEBUG "%s: entered\n", __func__);

	/* soft reset also masks all interrupts */
	hc->hw.r_cirm |= V_SRES;
	HFC_outb(hc, R_CIRM, hc->hw.r_cirm);
	udelay(1000);
	hc->hw.r_cirm &= ~V_SRES;
	HFC_outb(hc, R_CIRM, hc->hw.r_cirm);
	udelay(1000); /* instead of 'wait' that may cause locking */

	/* release Speech Design card, if PLX was initialized */
	if (test_bit(HFC_CHIP_PLXSD, &hc->chip) && hc->plx_membase) {
		if (debug & DEBUG_HFCMULTI_PLXSD)
			printk(KERN_DEBUG "%s: release PLXSD card %d\n",
1075
			       __func__, hc->id + 1);
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		spin_lock_irqsave(&plx_lock, plx_flags);
1077
		plx_acc_32 = hc->plx_membase + PLX_GPIOC;
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		writel(PLX_GPIOC_INIT, plx_acc_32);
		pv = readl(plx_acc_32);
		/* Termination off */
		pv &= ~PLX_TERM_ON;
		/* Disconnect the PCM */
		pv |= PLX_SLAVE_EN_N;
		pv &= ~PLX_MASTER_EN;
		pv &= ~PLX_SYNC_O_EN;
		/* Put the DSP in Reset */
		pv &= ~PLX_DSP_RES_N;
		writel(pv, plx_acc_32);
		if (debug & DEBUG_HFCMULTI_INIT)
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			printk(KERN_DEBUG "%s: PCM off: PLX_GPIO=%x\n",
1091
			       __func__, pv);
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		spin_unlock_irqrestore(&plx_lock, plx_flags);
	}

	/* disable memory mapped ports / io ports */
	test_and_clear_bit(HFC_CHIP_PLXSD, &hc->chip); /* prevent resync */
1097 1098
	if (hc->pci_dev)
		pci_write_config_word(hc->pci_dev, PCI_COMMAND, 0);
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	if (hc->pci_membase)
1100
		iounmap(hc->pci_membase);
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	if (hc->plx_membase)
1102
		iounmap(hc->plx_membase);
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	if (hc->pci_iobase)
		release_region(hc->pci_iobase, 8);
1105 1106
	if (hc->xhfc_membase)
		iounmap((void *)hc->xhfc_membase);
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	if (hc->pci_dev) {
		pci_disable_device(hc->pci_dev);
		pci_set_drvdata(hc->pci_dev, NULL);
	}
	if (debug & DEBUG_HFCMULTI_INIT)
		printk(KERN_DEBUG "%s: done\n", __func__);
}

/*
 * function called to reset the HFC chip. A complete software reset of chip
 * and fifos is done. All configuration of the chip is done.
 */

static int
init_chip(struct hfc_multi *hc)
{
	u_long			flags, val, val2 = 0, rev;
	int			i, err = 0;
	u_char			r_conf_en, rval;
1127 1128
	void __iomem		*plx_acc_32;
	u_int			pv;
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	u_long			plx_flags, hfc_flags;
	int			plx_count;
	struct hfc_multi	*pos, *next, *plx_last_hc;

	spin_lock_irqsave(&hc->lock, flags);
	/* reset all registers */
	memset(&hc->hw, 0, sizeof(struct hfcm_hw));

	/* revision check */
	if (debug & DEBUG_HFCMULTI_INIT)
		printk(KERN_DEBUG "%s: entered\n", __func__);
1140
	val = HFC_inb(hc, R_CHIP_ID);
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	if ((val >> 4) != 0x8 && (val >> 4) != 0xc && (val >> 4) != 0xe &&
	    (val >> 1) != 0x31) {
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		printk(KERN_INFO "HFC_multi: unknown CHIP_ID:%x\n", (u_int)val);
		err = -EIO;
		goto out;
	}
	rev = HFC_inb(hc, R_CHIP_RV);
	printk(KERN_INFO
1149 1150 1151
	       "HFC_multi: detected HFC with chip ID=0x%lx revision=%ld%s\n",
	       val, rev, (rev == 0 && (hc->ctype != HFC_TYPE_XHFC)) ?
	       " (old FIFO handling)" : "");
1152
	if (hc->ctype != HFC_TYPE_XHFC && rev == 0) {
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		test_and_set_bit(HFC_CHIP_REVISION0, &hc->chip);
		printk(KERN_WARNING
1155 1156 1157 1158 1159
		       "HFC_multi: NOTE: Your chip is revision 0, "
		       "ask Cologne Chip for update. Newer chips "
		       "have a better FIFO handling. Old chips "
		       "still work but may have slightly lower "
		       "HDLC transmit performance.\n");
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	}
	if (rev > 1) {
		printk(KERN_WARNING "HFC_multi: WARNING: This driver doesn't "
1163 1164
		       "consider chip revision = %ld. The chip / "
		       "bridge may not work.\n", rev);
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	}

	/* set s-ram size */
	hc->Flen = 0x10;
	hc->Zmin = 0x80;
	hc->Zlen = 384;
	hc->DTMFbase = 0x1000;
	if (test_bit(HFC_CHIP_EXRAM_128, &hc->chip)) {
		if (debug & DEBUG_HFCMULTI_INIT)
			printk(KERN_DEBUG "%s: changing to 128K extenal RAM\n",
1175
			       __func__);
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		hc->hw.r_ctrl |= V_EXT_RAM;
		hc->hw.r_ram_sz = 1;
		hc->Flen = 0x20;
		hc->Zmin = 0xc0;
		hc->Zlen = 1856;
		hc->DTMFbase = 0x2000;
	}
	if (test_bit(HFC_CHIP_EXRAM_512, &hc->chip)) {
		if (debug & DEBUG_HFCMULTI_INIT)
			printk(KERN_DEBUG "%s: changing to 512K extenal RAM\n",
1186
			       __func__);
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		hc->hw.r_ctrl |= V_EXT_RAM;
		hc->hw.r_ram_sz = 2;
		hc->Flen = 0x20;
		hc->Zmin = 0xc0;
		hc->Zlen = 8000;
		hc->DTMFbase = 0x2000;
	}
1194 1195 1196 1197 1198 1199
	if (hc->ctype == HFC_TYPE_XHFC) {
		hc->Flen = 0x8;
		hc->Zmin = 0x0;
		hc->Zlen = 64;
		hc->DTMFbase = 0x0;
	}
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	hc->max_trans = poll << 1;
	if (hc->max_trans > hc->Zlen)
		hc->max_trans = hc->Zlen;

	/* Speech Design PLX bridge */
	if (test_bit(HFC_CHIP_PLXSD, &hc->chip)) {
		if (debug & DEBUG_HFCMULTI_PLXSD)
			printk(KERN_DEBUG "%s: initializing PLXSD card %d\n",
1208
			       __func__, hc->id + 1);
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		spin_lock_irqsave(&plx_lock, plx_flags);
1210
		plx_acc_32 = hc->plx_membase + PLX_GPIOC;
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		writel(PLX_GPIOC_INIT, plx_acc_32);
		pv = readl(plx_acc_32);
		/* The first and the last cards are terminating the PCM bus */
		pv |= PLX_TERM_ON; /* hc is currently the last */
		/* Disconnect the PCM */
		pv |= PLX_SLAVE_EN_N;
		pv &= ~PLX_MASTER_EN;
		pv &= ~PLX_SYNC_O_EN;
		/* Put the DSP in Reset */
		pv &= ~PLX_DSP_RES_N;
		writel(pv, plx_acc_32);
		spin_unlock_irqrestore(&plx_lock, plx_flags);
		if (debug & DEBUG_HFCMULTI_INIT)
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			printk(KERN_DEBUG "%s: slave/term: PLX_GPIO=%x\n",
1225
			       __func__, pv);
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		/*
		 * If we are the 3rd PLXSD card or higher, we must turn
		 * termination of last PLXSD card off.
		 */
		spin_lock_irqsave(&HFClock, hfc_flags);
		plx_count = 0;
		plx_last_hc = NULL;
		list_for_each_entry_safe(pos, next, &HFClist, list) {
			if (test_bit(HFC_CHIP_PLXSD, &pos->chip)) {
				plx_count++;
				if (pos != hc)
					plx_last_hc = pos;
			}
		}
		if (plx_count >= 3) {
			if (debug & DEBUG_HFCMULTI_PLXSD)
				printk(KERN_DEBUG "%s: card %d is between, so "
1243 1244
				       "we disable termination\n",
				       __func__, plx_last_hc->id + 1);
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			spin_lock_irqsave(&plx_lock, plx_flags);
1246
			plx_acc_32 = plx_last_hc->plx_membase + PLX_GPIOC;
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			pv = readl(plx_acc_32);
			pv &= ~PLX_TERM_ON;
			writel(pv, plx_acc_32);
			spin_unlock_irqrestore(&plx_lock, plx_flags);
			if (debug & DEBUG_HFCMULTI_INIT)
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				printk(KERN_DEBUG
1253 1254
				       "%s: term off: PLX_GPIO=%x\n",
				       __func__, pv);
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1255 1256 1257 1258 1259
		}
		spin_unlock_irqrestore(&HFClock, hfc_flags);
		hc->hw.r_pcm_md0 = V_F0_LEN; /* shift clock for DSP */
	}

1260 1261 1262
	if (test_bit(HFC_CHIP_EMBSD, &hc->chip))
		hc->hw.r_pcm_md0 = V_F0_LEN; /* shift clock for DSP */

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	/* we only want the real Z2 read-pointer for revision > 0 */
	if (!test_bit(HFC_CHIP_REVISION0, &hc->chip))
		hc->hw.r_ram_sz |= V_FZ_MD;

	/* select pcm mode */
	if (test_bit(HFC_CHIP_PCM_SLAVE, &hc->chip)) {
		if (debug & DEBUG_HFCMULTI_INIT)
			printk(KERN_DEBUG "%s: setting PCM into slave mode\n",
1271
			       __func__);
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	} else
1273 1274 1275 1276 1277 1278 1279 1280 1281 1282
		if (test_bit(HFC_CHIP_PCM_MASTER, &hc->chip) && !plxsd_master) {
			if (debug & DEBUG_HFCMULTI_INIT)
				printk(KERN_DEBUG "%s: setting PCM into master mode\n",
				       __func__);
			hc->hw.r_pcm_md0 |= V_PCM_MD;
		} else {
			if (debug & DEBUG_HFCMULTI_INIT)
				printk(KERN_DEBUG "%s: performing PCM auto detect\n",
				       __func__);
		}
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	/* soft reset */
	HFC_outb(hc, R_CTRL, hc->hw.r_ctrl);
1286 1287
	if (hc->ctype == HFC_TYPE_XHFC)
		HFC_outb(hc, 0x0C /* R_FIFO_THRES */,
1288
			 0x11 /* 16 Bytes TX/RX */);
1289 1290
	else
		HFC_outb(hc, R_RAM_SZ, hc->hw.r_ram_sz);
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	HFC_outb(hc, R_FIFO_MD, 0);
1292 1293 1294 1295 1296
	if (hc->ctype == HFC_TYPE_XHFC)
		hc->hw.r_cirm = V_SRES | V_HFCRES | V_PCMRES | V_STRES;
	else
		hc->hw.r_cirm = V_SRES | V_HFCRES | V_PCMRES | V_STRES
			| V_RLD_EPR;
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	HFC_outb(hc, R_CIRM, hc->hw.r_cirm);
	udelay(100);
	hc->hw.r_cirm = 0;
	HFC_outb(hc, R_CIRM, hc->hw.r_cirm);
	udelay(100);
1302 1303
	if (hc->ctype != HFC_TYPE_XHFC)
		HFC_outb(hc, R_RAM_SZ, hc->hw.r_ram_sz);
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	/* Speech Design PLX bridge pcm and sync mode */
	if (test_bit(HFC_CHIP_PLXSD, &hc->chip)) {
		spin_lock_irqsave(&plx_lock, plx_flags);
1308
		plx_acc_32 = hc->plx_membase + PLX_GPIOC;
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		pv = readl(plx_acc_32);
		/* Connect PCM */
		if (hc->hw.r_pcm_md0 & V_PCM_MD) {
			pv |= PLX_MASTER_EN | PLX_SLAVE_EN_N;
			pv |= PLX_SYNC_O_EN;
			if (debug & DEBUG_HFCMULTI_INIT)
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				printk(KERN_DEBUG "%s: master: PLX_GPIO=%x\n",
1316
				       __func__, pv);
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		} else {
			pv &= ~(PLX_MASTER_EN | PLX_SLAVE_EN_N);
			pv &= ~PLX_SYNC_O_EN;
			if (debug & DEBUG_HFCMULTI_INIT)
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				printk(KERN_DEBUG "%s: slave: PLX_GPIO=%x\n",
1322
				       __func__, pv);
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		}
		writel(pv, plx_acc_32);
		spin_unlock_irqrestore(&plx_lock, plx_flags);
	}

	/* PCM setup */
	HFC_outb(hc, R_PCM_MD0, hc->hw.r_pcm_md0 | 0x90);
	if (hc->slots == 32)
		HFC_outb(hc, R_PCM_MD1, 0x00);
	if (hc->slots == 64)
		HFC_outb(hc, R_PCM_MD1, 0x10);
	if (hc->slots == 128)
		HFC_outb(hc, R_PCM_MD1, 0x20);
	HFC_outb(hc, R_PCM_MD0, hc->hw.r_pcm_md0 | 0xa0);
	if (test_bit(HFC_CHIP_PLXSD, &hc->chip))
		HFC_outb(hc, R_PCM_MD2, V_SYNC_SRC); /* sync via SYNC_I / O */
1339 1340
	else if (test_bit(HFC_CHIP_EMBSD, &hc->chip))
		HFC_outb(hc, R_PCM_MD2, 0x10); /* V_C2O_EN */
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	else
		HFC_outb(hc, R_PCM_MD2, 0x00); /* sync from interface */
	HFC_outb(hc, R_PCM_MD0, hc->hw.r_pcm_md0 | 0x00);
	for (i = 0; i < 256; i++) {
		HFC_outb_nodebug(hc, R_SLOT, i);
		HFC_outb_nodebug(hc, A_SL_CFG, 0);
1347 1348
		if (hc->ctype != HFC_TYPE_XHFC)
			HFC_outb_nodebug(hc, A_CONF, 0);
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		hc->slot_owner[i] = -1;
	}

	/* set clock speed */
	if (test_bit(HFC_CHIP_CLOCK2, &hc->chip)) {
		if (debug & DEBUG_HFCMULTI_INIT)
			printk(KERN_DEBUG
1356
			       "%s: setting double clock\n", __func__);
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		HFC_outb(hc, R_BRG_PCM_CFG, V_PCM_CLK);
	}

1360 1361 1362
	if (test_bit(HFC_CHIP_EMBSD, &hc->chip))
		HFC_outb(hc, 0x02 /* R_CLK_CFG */, 0x40 /* V_CLKO_OFF */);

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	/* B410P GPIO */
	if (test_bit(HFC_CHIP_B410P, &hc->chip)) {
		printk(KERN_NOTICE "Setting GPIOs\n");
		HFC_outb(hc, R_GPIO_SEL, 0x30);
		HFC_outb(hc, R_GPIO_EN1, 0x3);
		udelay(1000);
		printk(KERN_NOTICE "calling vpm_init\n");
		vpm_init(hc);
	}

	/* check if R_F0_CNT counts (8 kHz frame count) */
	val = HFC_inb(hc, R_F0_CNTL);
	val += HFC_inb(hc, R_F0_CNTH) << 8;
	if (debug & DEBUG_HFCMULTI_INIT)
		printk(KERN_DEBUG
1378
		       "HFC_multi F0_CNT %ld after reset\n", val);
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	spin_unlock_irqrestore(&hc->lock, flags);
	set_current_state(TASK_UNINTERRUPTIBLE);
1381
	schedule_timeout((HZ / 100) ? : 1); /* Timeout minimum 10ms */
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	spin_lock_irqsave(&hc->lock, flags);
	val2 = HFC_inb(hc, R_F0_CNTL);
	val2 += HFC_inb(hc, R_F0_CNTH) << 8;
	if (debug & DEBUG_HFCMULTI_INIT)
		printk(KERN_DEBUG
1387 1388 1389
		       "HFC_multi F0_CNT %ld after 10 ms (1st try)\n",
		       val2);
	if (val2 >= val + 8) { /* 1 ms */
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		/* it counts, so we keep the pcm mode */
		if (test_bit(HFC_CHIP_PCM_MASTER, &hc->chip))
			printk(KERN_INFO "controller is PCM bus MASTER\n");
		else
1394 1395 1396 1397 1398 1399 1400
			if (test_bit(HFC_CHIP_PCM_SLAVE, &hc->chip))
				printk(KERN_INFO "controller is PCM bus SLAVE\n");
			else {
				test_and_set_bit(HFC_CHIP_PCM_SLAVE, &hc->chip);
				printk(KERN_INFO "controller is PCM bus SLAVE "
				       "(auto detected)\n");
			}
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	} else {
		/* does not count */
		if (test_bit(HFC_CHIP_PCM_MASTER, &hc->chip)) {
1404
		controller_fail:
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			printk(KERN_ERR "HFC_multi ERROR, getting no 125us "
1406
			       "pulse. Seems that controller fails.\n");
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			err = -EIO;
			goto out;
		}
		if (test_bit(HFC_CHIP_PCM_SLAVE, &hc->chip)) {
			printk(KERN_INFO "controller is PCM bus SLAVE "
1412
			       "(ignoring missing PCM clock)\n");
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		} else {
			/* only one pcm master */
			if (test_bit(HFC_CHIP_PLXSD, &hc->chip)
1416
			    && plxsd_master) {
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				printk(KERN_ERR "HFC_multi ERROR, no clock "
1418 1419
				       "on another Speech Design card found. "
				       "Please be sure to connect PCM cable.\n");
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				err = -EIO;
				goto out;
			}
			/* retry with master clock */
			if (test_bit(HFC_CHIP_PLXSD, &hc->chip)) {
				spin_lock_irqsave(&plx_lock, plx_flags);
1426
				plx_acc_32 = hc->plx_membase + PLX_GPIOC;
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				pv = readl(plx_acc_32);
				pv |= PLX_MASTER_EN | PLX_SLAVE_EN_N;
				pv |= PLX_SYNC_O_EN;
				writel(pv, plx_acc_32);
				spin_unlock_irqrestore(&plx_lock, plx_flags);
				if (debug & DEBUG_HFCMULTI_INIT)
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					printk(KERN_DEBUG "%s: master: "
1434
					       "PLX_GPIO=%x\n", __func__, pv);
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			}
			hc->hw.r_pcm_md0 |= V_PCM_MD;
			HFC_outb(hc, R_PCM_MD0, hc->hw.r_pcm_md0 | 0x00);
			spin_unlock_irqrestore(&hc->lock, flags);
			set_current_state(TASK_UNINTERRUPTIBLE);
1440
			schedule_timeout((HZ / 100) ?: 1); /* Timeout min. 10ms */
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			spin_lock_irqsave(&hc->lock, flags);
			val2 = HFC_inb(hc, R_F0_CNTL);
			val2 += HFC_inb(hc, R_F0_CNTH) << 8;
			if (debug & DEBUG_HFCMULTI_INIT)
				printk(KERN_DEBUG "HFC_multi F0_CNT %ld after "
1446 1447
				       "10 ms (2nd try)\n", val2);
			if (val2 >= val + 8) { /* 1 ms */
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1448
				test_and_set_bit(HFC_CHIP_PCM_MASTER,
1449
						 &hc->chip);
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1450
				printk(KERN_INFO "controller is PCM bus MASTER "
1451
				       "(auto detected)\n");
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			} else
				goto controller_fail;
		}
	}

	/* Release the DSP Reset */
	if (test_bit(HFC_CHIP_PLXSD, &hc->chip)) {
		if (test_bit(HFC_CHIP_PCM_MASTER, &hc->chip))
			plxsd_master = 1;
		spin_lock_irqsave(&plx_lock, plx_flags);
1462
		plx_acc_32 = hc->plx_membase + PLX_GPIOC;
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		pv = readl(plx_acc_32);
		pv |=  PLX_DSP_RES_N;
		writel(pv, plx_acc_32);
		spin_unlock_irqrestore(&plx_lock, plx_flags);
		if (debug & DEBUG_HFCMULTI_INIT)
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1468
			printk(KERN_DEBUG "%s: reset off: PLX_GPIO=%x\n",
1469
			       __func__, pv);
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	}

	/* pcm id */
	if (hc->pcm)
		printk(KERN_INFO "controller has given PCM BUS ID %d\n",
1475
		       hc->pcm);
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	else {
		if (test_bit(HFC_CHIP_PCM_MASTER, &hc->chip)
1478
		    || test_bit(HFC_CHIP_PLXSD, &hc->chip)) {
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			PCM_cnt++; /* SD has proprietary bridging */
		}
		hc->pcm = PCM_cnt;
		printk(KERN_INFO "controller has PCM BUS ID %d "
1483
		       "(auto selected)\n", hc->pcm);
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	}

	/* set up timer */
	HFC_outb(hc, R_TI_WD, poll_timer);
	hc->hw.r_irqmsk_misc |= V_TI_IRQMSK;

	/* set E1 state machine IRQ */
1491
	if (hc->ctype == HFC_TYPE_E1)
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		hc->hw.r_irqmsk_misc |= V_STA_IRQMSK;

	/* set DTMF detection */
	if (test_bit(HFC_CHIP_DTMF, &hc->chip)) {
		if (debug & DEBUG_HFCMULTI_INIT)
			printk(KERN_DEBUG "%s: enabling DTMF detection "
1498
			       "for all B-channel\n", __func__);
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		hc->hw.r_dtmf = V_DTMF_EN | V_DTMF_STOP;
		if (test_bit(HFC_CHIP_ULAW, &hc->chip))
			hc->hw.r_dtmf |= V_ULAW_SEL;
		HFC_outb(hc, R_DTMF_N, 102 - 1);
		hc->hw.r_irqmsk_misc |= V_DTMF_IRQMSK;
	}

	/* conference engine */
	if (test_bit(HFC_CHIP_ULAW, &hc->chip))
		r_conf_en = V_CONF_EN | V_ULAW;
	else
		r_conf_en = V_CONF_EN;
1511 1512
	if (hc->ctype != HFC_TYPE_XHFC)
		HFC_outb(hc, R_CONF_EN, r_conf_en);
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	/* setting leds */
	switch (hc->leds) {
	case 1: /* HFC-E1 OEM */
		if (test_bit(HFC_CHIP_WATCHDOG, &hc->chip))
			HFC_outb(hc, R_GPIO_SEL, 0x32);
		else
			HFC_outb(hc, R_GPIO_SEL, 0x30);

		HFC_outb(hc, R_GPIO_EN1, 0x0f);
		HFC_outb(hc, R_GPIO_OUT1, 0x00);

		HFC_outb(hc, R_GPIO_EN0, V_GPIO_EN2 | V_GPIO_EN3);
		break;

	case 2: /* HFC-4S OEM */
	case 3:
		HFC_outb(hc, R_GPIO_SEL, 0xf0);
		HFC_outb(hc, R_GPIO_EN1, 0xff);
		HFC_outb(hc, R_GPIO_OUT1, 0x00);
		break;
	}

1536 1537 1538 1539 1540
	if (test_bit(HFC_CHIP_EMBSD, &hc->chip)) {
		hc->hw.r_st_sync = 0x10; /* V_AUTO_SYNCI */
		HFC_outb(hc, R_ST_SYNC, hc->hw.r_st_sync);
	}

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	/* set master clock */
	if (hc->masterclk >= 0) {
		if (debug & DEBUG_HFCMULTI_INIT)
			printk(KERN_DEBUG "%s: setting ST master clock "
1545 1546
			       "to port %d (0..%d)\n",
			       __func__, hc->masterclk, hc->ports - 1);
1547
		hc->hw.r_st_sync |= (hc->masterclk | V_AUTO_SYNC);
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		HFC_outb(hc, R_ST_SYNC, hc->hw.r_st_sync);
	}

1551 1552


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	/* setting misc irq */
	HFC_outb(hc, R_IRQMSK_MISC, hc->hw.r_irqmsk_misc);
	if (debug & DEBUG_HFCMULTI_INIT)
		printk(KERN_DEBUG "r_irqmsk_misc.2: 0x%x\n",
1557
		       hc->hw.r_irqmsk_misc);
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	/* RAM access test */
	HFC_outb(hc, R_RAM_ADDR0, 0);
	HFC_outb(hc, R_RAM_ADDR1, 0);
	HFC_outb(hc, R_RAM_ADDR2, 0);
	for (i = 0; i < 256; i++) {
		HFC_outb_nodebug(hc, R_RAM_ADDR0, i);
1565
		HFC_outb_nodebug(hc, R_RAM_DATA, ((i * 3) & 0xff));
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	}
	for (i = 0; i < 256; i++) {
		HFC_outb_nodebug(hc, R_RAM_ADDR0, i);
		HFC_inb_nodebug(hc, R_RAM_DATA);
		rval = HFC_inb_nodebug(hc, R_INT_DATA);
		if (rval != ((i * 3) & 0xff)) {
			printk(KERN_DEBUG
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			       "addr:%x val:%x should:%x\n", i, rval,
			       (i * 3) & 0xff);
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			err++;
		}
	}
	if (err) {
		printk(KERN_DEBUG "aborting - %d RAM access errors\n", err);
		err = -EIO;
		goto out;
	}

	if (debug & DEBUG_HFCMULTI_INIT)
		printk(KERN_DEBUG "%s: done\n", __func__);
out:
	spin_unlock_irqrestore(&hc->lock, flags);
	return err;
}


/*
 * control the watchdog
 */
static void
hfcmulti_watchdog(struct hfc_multi *hc)
{
	hc->wdcount++;

	if (hc->wdcount > 10) {
		hc->wdcount = 0;
		hc->wdbyte = hc->wdbyte == V_GPIO_OUT2 ?
1603
			V_GPIO_OUT3 : V_GPIO_OUT2;
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1605
		/* printk("Sending Watchdog Kill %x\n",hc->wdbyte); */
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		HFC_outb(hc, R_GPIO_EN0, V_GPIO_EN2 | V_GPIO_EN3);
		HFC_outb(hc, R_GPIO_OUT0, hc->wdbyte);
	}
}



/*
 * output leds
 */
static void
hfcmulti_leds(struct hfc_multi *hc)
{
	unsigned long lled;
	unsigned long leddw;
	int i, state, active, leds;
	struct dchannel *dch;
	int led[4];

	switch (hc->leds) {
	case 1: /* HFC-E1 OEM */
1627 1628 1629 1630 1631
		/* 2 red steady:       LOS
		 * 1 red steady:       L1 not active
		 * 2 green steady:     L1 active
		 * 1st green flashing: activity on TX
		 * 2nd green flashing: activity on RX
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		 */
1633 1634 1635 1636
		led[0] = 0;
		led[1] = 0;
		led[2] = 0;
		led[3] = 0;
1637
		dch = hc->chan[hc->dnum[0]].dch;
1638
		if (dch) {
1639
			if (hc->chan[hc->dnum[0]].los)
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				led[1] = 1;
1641
			if (hc->e1_state != 1) {
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				led[0] = 1;
1643 1644
				hc->flash[2] = 0;
				hc->flash[3] = 0;
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			} else {
1646 1647 1648 1649 1650 1651 1652 1653 1654 1655 1656 1657 1658 1659 1660 1661 1662 1663
				led[2] = 1;
				led[3] = 1;
				if (!hc->flash[2] && hc->activity_tx)
					hc->flash[2] = poll;
				if (!hc->flash[3] && hc->activity_rx)
					hc->flash[3] = poll;
				if (hc->flash[2] && hc->flash[2] < 1024)
					led[2] = 0;
				if (hc->flash[3] && hc->flash[3] < 1024)
					led[3] = 0;
				if (hc->flash[2] >= 2048)
					hc->flash[2] = 0;
				if (hc->flash[3] >= 2048)
					hc->flash[3] = 0;
				if (hc->flash[2])
					hc->flash[2] += poll;
				if (hc->flash[3])
					hc->flash[3] += poll;
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			}
		}
		leds = (led[0] | (led[1]<<2) | (led[2]<<1) | (led[3]<<3))^0xF;
1667
		/* leds are inverted */
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		if (leds != (int)hc->ledstate) {
			HFC_outb_nodebug(hc, R_GPIO_OUT1, leds);
			hc->ledstate = leds;
		}
		break;

	case 2: /* HFC-4S OEM */
1675 1676 1677
		/* red steady:     PH_DEACTIVATE
		 * green steady:   PH_ACTIVATE
		 * green flashing: activity on TX
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		 */
		for (i = 0; i < 4; i++) {
			state = 0;
			active = -1;
			dch = hc->chan[(i << 2) | 2].dch;
			if (dch) {
				state = dch->state;
				if (dch->dev.D.protocol == ISDN_P_NT_S0)
					active = 3;
				else
					active = 7;
			}
			if (state) {
				if (state == active) {
					led[i] = 1; /* led green */
1693 1694 1695 1696 1697 1698 1699 1700 1701 1702 1703 1704 1705 1706
					hc->activity_tx |= hc->activity_rx;
					if (!hc->flash[i] &&
						(hc->activity_tx & (1 << i)))
							hc->flash[i] = poll;
					if (hc->flash[i] && hc->flash[i] < 1024)
						led[i] = 0; /* led off */
					if (hc->flash[i] >= 2048)
						hc->flash[i] = 0;
					if (hc->flash[i])
						hc->flash[i] += poll;
				} else {
					led[i] = 2; /* led red */
					hc->flash[i] = 0;
				}
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			} else
				led[i] = 0; /* led off */
		}
		if (test_bit(HFC_CHIP_B410P, &hc->chip)) {
			leds = 0;
			for (i = 0; i < 4; i++) {
				if (led[i] == 1) {
					/*green*/
					leds |= (0x2 << (i * 2));
				} else if (led[i] == 2) {
					/*red*/
					leds |= (0x1 << (i * 2));
				}
			}
			if (leds != (int)hc->ledstate) {
				vpm_out(hc, 0, 0x1a8 + 3, leds);
				hc->ledstate = leds;
			}
		} else {
			leds = ((led[3] > 0) << 0) | ((led[1] > 0) << 1) |
1727 1728 1729
				((led[0] > 0) << 2) | ((led[2] > 0) << 3) |
				((led[3] & 1) << 4) | ((led[1] & 1) << 5) |
				((led[0] & 1) << 6) | ((led[2] & 1) << 7);
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			if (leds != (int)hc->ledstate) {
				HFC_outb_nodebug(hc, R_GPIO_EN1, leds & 0x0F);
				HFC_outb_nodebug(hc, R_GPIO_OUT1, leds >> 4);
				hc->ledstate = leds;
			}
		}
		break;

	case 3: /* HFC 1S/2S Beronet */
1739 1740 1741
		/* red steady:     PH_DEACTIVATE
		 * green steady:   PH_ACTIVATE
		 * green flashing: activity on TX
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		 */
		for (i = 0; i < 2; i++) {
			state = 0;
			active = -1;
			dch = hc->chan[(i << 2) | 2].dch;
			if (dch) {
				state = dch->state;
				if (dch->dev.D.protocol == ISDN_P_NT_S0)
					active = 3;
				else
					active = 7;
			}
			if (state) {
				if (state == active) {
					led[i] = 1; /* led green */
1757 1758 1759 1760 1761 1762 1763 1764 1765 1766 1767 1768 1769 1770
					hc->activity_tx |= hc->activity_rx;
					if (!hc->flash[i] &&
						(hc->activity_tx & (1 << i)))
							hc->flash[i] = poll;
					if (hc->flash[i] < 1024)
						led[i] = 0; /* led off */
					if (hc->flash[i] >= 2048)
						hc->flash[i] = 0;
					if (hc->flash[i])
						hc->flash[i] += poll;
				} else {
					led[i] = 2; /* led red */
					hc->flash[i] = 0;
				}
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			} else
				led[i] = 0; /* led off */
		}
1774 1775
		leds = (led[0] > 0) | ((led[1] > 0) << 1) | ((led[0]&1) << 2)
			| ((led[1]&1) << 3);
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		if (leds != (int)hc->ledstate) {
			HFC_outb_nodebug(hc, R_GPIO_EN1,
1778
					 ((led[0] > 0) << 2) | ((led[1] > 0) << 3));
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			HFC_outb_nodebug(hc, R_GPIO_OUT1,
1780
					 ((led[0] & 1) << 2) | ((led[1] & 1) << 3));
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			hc->ledstate = leds;
		}
		break;
	case 8: /* HFC 8S+ Beronet */
1785 1786 1787 1788 1789
		/* off:      PH_DEACTIVATE
		 * steady:   PH_ACTIVATE
		 * flashing: activity on TX
		 */
		lled = 0xff; /* leds off */
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		for (i = 0; i < 8; i++) {
			state = 0;
			active = -1;
			dch = hc->chan[(i << 2) | 2].dch;
			if (dch) {
				state = dch->state;
				if (dch->dev.D.protocol == ISDN_P_NT_S0)
					active = 3;
				else
					active = 7;
			}
			if (state) {
				if (state == active) {
1803 1804 1805 1806 1807 1808 1809 1810 1811 1812 1813
					lled &= ~(1 << i); /* led on */
					hc->activity_tx |= hc->activity_rx;
					if (!hc->flash[i] &&
						(hc->activity_tx & (1 << i)))
							hc->flash[i] = poll;
					if (hc->flash[i] < 1024)
						lled |= 1 << i; /* led off */
					if (hc->flash[i] >= 2048)
						hc->flash[i] = 0;
					if (hc->flash[i])
						hc->flash[i] += poll;
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				} else
1815 1816
					hc->flash[i] = 0;
			}
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		}
		leddw = lled << 24 | lled << 16 | lled << 8 | lled;
		if (leddw != hc->ledstate) {
			/* HFC_outb(hc, R_BRG_PCM_CFG, 1);
1821
			   HFC_outb(c, R_BRG_PCM_CFG, (0x0 << 6) | 0x3); */
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			/* was _io before */
			HFC_outb_nodebug(hc, R_BRG_PCM_CFG, 1 | V_PCM_CLK);
			outw(0x4000, hc->pci_iobase + 4);
			outl(leddw, hc->pci_iobase);
			HFC_outb_nodebug(hc, R_BRG_PCM_CFG, V_PCM_CLK);
			hc->ledstate = leddw;
		}
		break;
	}
1831 1832
	hc->activity_tx = 0;
	hc->activity_rx = 0;
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}
/*
 * read dtmf coefficients
 */

static void
hfcmulti_dtmf(struct hfc_multi *hc)
{
	s32		*coeff;
	u_int		mantissa;
	int		co, ch;
	struct bchannel	*bch = NULL;
	u8		exponent;
	int		dtmf = 0;
	int		addr;
	u16		w_float;
	struct sk_buff	*skb;
	struct mISDNhead *hh;

	if (debug & DEBUG_HFCMULTI_DTMF)
		printk(KERN_DEBUG "%s: dtmf detection irq\n", __func__);
	for (ch = 0; ch <= 31; ch++) {
		/* only process enabled B-channels */
		bch = hc->chan[ch].bch;
		if (!bch)
			continue;
		if (!hc->created[hc->chan[ch].port])
			continue;
		if (!test_bit(FLG_TRANSPARENT, &bch->Flags))
			continue;
		if (debug & DEBUG_HFCMULTI_DTMF)
			printk(KERN_DEBUG "%s: dtmf channel %d:",
1865
			       __func__, ch);
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		coeff = &(hc->chan[ch].coeff[hc->chan[ch].coeff_count * 16]);
		dtmf = 1;
		for (co = 0; co < 8; co++) {
			/* read W(n-1) coefficient */
1870
			addr = hc->DTMFbase + ((co << 7) | (ch << 2));
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			HFC_outb_nodebug(hc, R_RAM_ADDR0, addr);
1872 1873 1874
			HFC_outb_nodebug(hc, R_RAM_ADDR1, addr >> 8);
			HFC_outb_nodebug(hc, R_RAM_ADDR2, (addr >> 16)
					 | V_ADDR_INC);
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			w_float = HFC_inb_nodebug(hc, R_RAM_DATA);
			w_float |= (HFC_inb_nodebug(hc, R_RAM_DATA) << 8);
			if (debug & DEBUG_HFCMULTI_DTMF)
				printk(" %04x", w_float);

			/* decode float (see chip doc) */
			mantissa = w_float & 0x0fff;
			if (w_float & 0x8000)
				mantissa |= 0xfffff000;
1884
			exponent = (w_float >> 12) & 0x7;
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			if (exponent) {
				mantissa ^= 0x1000;
1887
				mantissa <<= (exponent - 1);
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			}

			/* store coefficient */
1891
			coeff[co << 1] = mantissa;
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			/* read W(n) coefficient */
			w_float = HFC_inb_nodebug(hc, R_RAM_DATA);
			w_float |= (HFC_inb_nodebug(hc, R_RAM_DATA) << 8);
			if (debug & DEBUG_HFCMULTI_DTMF)
				printk(" %04x", w_float);

			/* decode float (see chip doc) */
			mantissa = w_float & 0x0fff;
			if (w_float & 0x8000)
				mantissa |= 0xfffff000;
1903
			exponent = (w_float >> 12) & 0x7;
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			if (exponent) {
				mantissa ^= 0x1000;
1906
				mantissa <<= (exponent - 1);
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			}

			/* store coefficient */
1910
			coeff[(co << 1) | 1] = mantissa;
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		}
		if (debug & DEBUG_HFCMULTI_DTMF)
1913
			printk(" DTMF ready %08x %08x %08x %08x "
1914 1915 1916
			       "%08x %08x %08x %08x\n",
			       coeff[0], coeff[1], coeff[2], coeff[3],
			       coeff[4], coeff[5], coeff[6], coeff[7]);
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		hc->chan[ch].coeff_count++;
		if (hc->chan[ch].coeff_count == 8) {
			hc->chan[ch].coeff_count = 0;
			skb = mI_alloc_skb(512, GFP_ATOMIC);
			if (!skb) {
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				printk(KERN_DEBUG "%s: No memory for skb\n",
1923
				       __func__);
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				continue;
			}
			hh = mISDN_HEAD_P(skb);
			hh->prim = PH_CONTROL_IND;
			hh->id = DTMF_HFC_COEF;
			memcpy(skb_put(skb, 512), hc->chan[ch].coeff, 512);
			recv_Bchannel_skb(bch, skb);
		}
	}

	/* restart DTMF processing */
	hc->dtmf = dtmf;
	if (dtmf)
		HFC_outb_nodebug(hc, R_DTMF, hc->hw.r_dtmf | V_RST_DTMF);
}


/*
 * fill fifo as much as possible
 */

static void
hfcmulti_tx(struct hfc_multi *hc, int ch)
{
	int i, ii, temp, len = 0;
	int Zspace, z1, z2; /* must be int for calculation */
	int Fspace, f1, f2;
	u_char *d;
	int *txpending, slot_tx;
	struct	bchannel *bch;
	struct  dchannel *dch;
	struct  sk_buff **sp = NULL;
	int *idxp;

	bch = hc->chan[ch].bch;
	dch = hc->chan[ch].dch;
	if ((!dch) && (!bch))
		return;

	txpending = &hc->chan[ch].txpending;
	slot_tx = hc->chan[ch].slot_tx;
	if (dch) {
		if (!test_bit(FLG_ACTIVE, &dch->Flags))
			return;
		sp = &dch->tx_skb;
		idxp = &dch->tx_idx;
	} else {
		if (!test_bit(FLG_ACTIVE, &bch->Flags))
			return;
		sp = &bch->tx_skb;
		idxp = &bch->tx_idx;
	}
	if (*sp)
		len = (*sp)->len;

	if ((!len) && *txpending != 1)
		return; /* no data */

	if (test_bit(HFC_CHIP_B410P, &hc->chip) &&
	    (hc->chan[ch].protocol == ISDN_P_B_RAW) &&
	    (hc->chan[ch].slot_rx < 0) &&
	    (hc->chan[ch].slot_tx < 0))
		HFC_outb_nodebug(hc, R_FIFO, 0x20 | (ch << 1));
	else
		HFC_outb_nodebug(hc, R_FIFO, ch << 1);
	HFC_wait_nodebug(hc);

	if (*txpending == 2) {
		/* reset fifo */
		HFC_outb_nodebug(hc, R_INC_RES_FIFO, V_RES_F);
		HFC_wait_nodebug(hc);
		HFC_outb(hc, A_SUBCH_CFG, 0);
		*txpending = 1;
	}
next_frame:
	if (dch || test_bit(FLG_HDLC, &bch->Flags)) {
		f1 = HFC_inb_nodebug(hc, A_F1);
		f2 = HFC_inb_nodebug(hc, A_F2);
		while (f2 != (temp = HFC_inb_nodebug(hc, A_F2))) {
			if (debug & DEBUG_HFCMULTI_FIFO)
				printk(KERN_DEBUG
2005 2006
				       "%s(card %d): reread f2 because %d!=%d\n",
				       __func__, hc->id + 1, temp, f2);
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2007 2008 2009 2010 2011 2012 2013 2014 2015 2016 2017 2018 2019 2020 2021 2022 2023 2024
			f2 = temp; /* repeat until F2 is equal */
		}
		Fspace = f2 - f1 - 1;
		if (Fspace < 0)
			Fspace += hc->Flen;
		/*
		 * Old FIFO handling doesn't give us the current Z2 read
		 * pointer, so we cannot send the next frame before the fifo
		 * is empty. It makes no difference except for a slightly
		 * lower performance.
		 */
		if (test_bit(HFC_CHIP_REVISION0, &hc->chip)) {
			if (f1 != f2)
				Fspace = 0;
			else
				Fspace = 1;
		}
		/* one frame only for ST D-channels, to allow resending */
2025
		if (hc->ctype != HFC_TYPE_E1 && dch) {
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			if (f1 != f2)
				Fspace = 0;
		}
		/* F-counter full condition */
		if (Fspace == 0)
			return;
	}
	z1 = HFC_inw_nodebug(hc, A_Z1) - hc->Zmin;
	z2 = HFC_inw_nodebug(hc, A_Z2) - hc->Zmin;
	while (z2 != (temp = (HFC_inw_nodebug(hc, A_Z2) - hc->Zmin))) {
		if (debug & DEBUG_HFCMULTI_FIFO)
			printk(KERN_DEBUG "%s(card %d): reread z2 because "
2038
			       "%d!=%d\n", __func__, hc->id + 1, temp, z2);
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		z2 = temp; /* repeat unti Z2 is equal */
	}
2041 2042 2043
	hc->chan[ch].Zfill = z1 - z2;
	if (hc->chan[ch].Zfill < 0)
		hc->chan[ch].Zfill += hc->Zlen;
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	Zspace = z2 - z1;
	if (Zspace <= 0)
		Zspace += hc->Zlen;
	Zspace -= 4; /* keep not too full, so pointers will not overrun */
	/* fill transparent data only to maxinum transparent load (minus 4) */
	if (bch && test_bit(FLG_TRANSPARENT, &bch->Flags))
		Zspace = Zspace - hc->Zlen + hc->max_trans;
	if (Zspace <= 0) /* no space of 4 bytes */
		return;

	/* if no data */
	if (!len) {
		if (z1 == z2) { /* empty */
			/* if done with FIFO audio data during PCM connection */
			if (bch && (!test_bit(FLG_HDLC, &bch->Flags)) &&
			    *txpending && slot_tx >= 0) {
				if (debug & DEBUG_HFCMULTI_MODE)
					printk(KERN_DEBUG
2062 2063 2064 2065
					       "%s: reconnecting PCM due to no "
					       "more FIFO data: channel %d "
					       "slot_tx %d\n",
					       __func__, ch, slot_tx);
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				/* connect slot */
2067 2068
				if (hc->ctype == HFC_TYPE_XHFC)
					HFC_outb(hc, A_CON_HDLC, 0xc0
2069 2070
						 | 0x07 << 2 | V_HDLC_TRP | V_IFF);
				/* Enable FIFO, no interrupt */
2071 2072
				else
					HFC_outb(hc, A_CON_HDLC, 0xc0 | 0x00 |
2073 2074
						 V_HDLC_TRP | V_IFF);
				HFC_outb_nodebug(hc, R_FIFO, ch << 1 | 1);
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				HFC_wait_nodebug(hc);
2076 2077
				if (hc->ctype == HFC_TYPE_XHFC)
					HFC_outb(hc, A_CON_HDLC, 0xc0
2078 2079
						 | 0x07 << 2 | V_HDLC_TRP | V_IFF);
				/* Enable FIFO, no interrupt */
2080 2081
				else
					HFC_outb(hc, A_CON_HDLC, 0xc0 | 0x00 |
2082 2083
						 V_HDLC_TRP | V_IFF);
				HFC_outb_nodebug(hc, R_FIFO, ch << 1);
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				HFC_wait_nodebug(hc);
			}
			*txpending = 0;
		}
		return; /* no data */
	}

2091 2092
	/* "fill fifo if empty" feature */
	if (bch && test_bit(FLG_FILLEMPTY, &bch->Flags)
2093
	    && !test_bit(FLG_HDLC, &bch->Flags) && z2 == z1) {
2094 2095
		if (debug & DEBUG_HFCMULTI_FILL)
			printk(KERN_DEBUG "%s: buffer empty, so we have "
2096
			       "underrun\n", __func__);
2097 2098 2099 2100 2101
		/* fill buffer, to prevent future underrun */
		hc->write_fifo(hc, hc->silence_data, poll >> 1);
		Zspace -= (poll >> 1);
	}

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	/* if audio data and connected slot */
	if (bch && (!test_bit(FLG_HDLC, &bch->Flags)) && (!*txpending)
2104
	    && slot_tx >= 0) {
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		if (debug & DEBUG_HFCMULTI_MODE)
			printk(KERN_DEBUG "%s: disconnecting PCM due to "
2107 2108
			       "FIFO data: channel %d slot_tx %d\n",
			       __func__, ch, slot_tx);
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		/* disconnect slot */
2110 2111
		if (hc->ctype == HFC_TYPE_XHFC)
			HFC_outb(hc, A_CON_HDLC, 0x80
2112 2113
				 | 0x07 << 2 | V_HDLC_TRP | V_IFF);
		/* Enable FIFO, no interrupt */
2114 2115
		else
			HFC_outb(hc, A_CON_HDLC, 0x80 | 0x00 |
2116 2117
				 V_HDLC_TRP | V_IFF);
		HFC_outb_nodebug(hc, R_FIFO, ch << 1 | 1);
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		HFC_wait_nodebug(hc);
2119 2120
		if (hc->ctype == HFC_TYPE_XHFC)
			HFC_outb(hc, A_CON_HDLC, 0x80
2121 2122
				 | 0x07 << 2 | V_HDLC_TRP | V_IFF);
		/* Enable FIFO, no interrupt */
2123 2124
		else
			HFC_outb(hc, A_CON_HDLC, 0x80 | 0x00 |
2125 2126
				 V_HDLC_TRP | V_IFF);
		HFC_outb_nodebug(hc, R_FIFO, ch << 1);
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		HFC_wait_nodebug(hc);
	}
	*txpending = 1;

	/* show activity */
2132 2133
	if (dch)
		hc->activity_tx |= 1 << hc->chan[ch].port;
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	/* fill fifo to what we have left */
	ii = len;
	if (dch || test_bit(FLG_HDLC, &bch->Flags))
		temp = 1;
	else
		temp = 0;
	i = *idxp;
	d = (*sp)->data + i;
	if (ii - i > Zspace)
		ii = Zspace + i;
	if (debug & DEBUG_HFCMULTI_FIFO)
		printk(KERN_DEBUG "%s(card %d): fifo(%d) has %d bytes space "
2147 2148 2149
		       "left (z1=%04x, z2=%04x) sending %d of %d bytes %s\n",
		       __func__, hc->id + 1, ch, Zspace, z1, z2, ii-i, len-i,
		       temp ? "HDLC" : "TRANS");
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2150 2151 2152

	/* Have to prep the audio data */
	hc->write_fifo(hc, d, ii - i);
2153
	hc->chan[ch].Zfill += ii - i;
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	*idxp = ii;

	/* if not all data has been written */
	if (ii != len) {
		/* NOTE: fifo is started by the calling function */
		return;
	}

	/* if all data has been written, terminate frame */
	if (dch || test_bit(FLG_HDLC, &bch->Flags)) {
		/* increment f-counter */
		HFC_outb_nodebug(hc, R_INC_RES_FIFO, V_INC_F);
		HFC_wait_nodebug(hc);
	}

	/* send confirm, since get_net_bframe will not do it with trans */
	if (bch && test_bit(FLG_TRANSPARENT, &bch->Flags))
		confirm_Bsend(bch);

	/* check for next frame */
	dev_kfree_skb(*sp);
	if (bch && get_next_bframe(bch)) { /* hdlc is confirmed here */
		len = (*sp)->len;
		goto next_frame;
	}
	if (dch && get_next_dframe(dch)) {
		len = (*sp)->len;
		goto next_frame;
	}

	/*
	 * now we have no more data, so in case of transparent,
	 * we set the last byte in fifo to 'silence' in case we will get
	 * no more data at all. this prevents sending an undefined value.
	 */
	if (bch && test_bit(FLG_TRANSPARENT, &bch->Flags))
2190
		HFC_outb_nodebug(hc, A_FIFO_DATA0_NOINC, hc->silence);
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}


/* NOTE: only called if E1 card is in active state */
static void
hfcmulti_rx(struct hfc_multi *hc, int ch)
{
	int temp;
	int Zsize, z1, z2 = 0; /* = 0, to make GCC happy */
	int f1 = 0, f2 = 0; /* = 0, to make GCC happy */
	int again = 0;
	struct	bchannel *bch;
	struct  dchannel *dch;
	struct sk_buff	*skb, **sp = NULL;
	int	maxlen;

	bch = hc->chan[ch].bch;
	dch = hc->chan[ch].dch;
	if ((!dch) && (!bch))
		return;
	if (dch) {
		if (!test_bit(FLG_ACTIVE, &dch->Flags))
			return;
		sp = &dch->rx_skb;
		maxlen = dch->maxlen;
	} else {
		if (!test_bit(FLG_ACTIVE, &bch->Flags))
			return;
		sp = &bch->rx_skb;
		maxlen = bch->maxlen;
	}
next_frame:
	/* on first AND before getting next valid frame, R_FIFO must be written
	   to. */
	if (test_bit(HFC_CHIP_B410P, &hc->chip) &&
	    (hc->chan[ch].protocol == ISDN_P_B_RAW) &&
	    (hc->chan[ch].slot_rx < 0) &&
	    (hc->chan[ch].slot_tx < 0))
2229
		HFC_outb_nodebug(hc, R_FIFO, 0x20 | (ch << 1) | 1);
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2230
	else
2231
		HFC_outb_nodebug(hc, R_FIFO, (ch << 1) | 1);
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	HFC_wait_nodebug(hc);

	/* ignore if rx is off BUT change fifo (above) to start pending TX */
	if (hc->chan[ch].rx_off)
		return;

	if (dch || test_bit(FLG_HDLC, &bch->Flags)) {
		f1 = HFC_inb_nodebug(hc, A_F1);
		while (f1 != (temp = HFC_inb_nodebug(hc, A_F1))) {
			if (debug & DEBUG_HFCMULTI_FIFO)
				printk(KERN_DEBUG
2243 2244
				       "%s(card %d): reread f1 because %d!=%d\n",
				       __func__, hc->id + 1, temp, f1);
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2245 2246 2247 2248 2249 2250 2251 2252
			f1 = temp; /* repeat until F1 is equal */
		}
		f2 = HFC_inb_nodebug(hc, A_F2);
	}
	z1 = HFC_inw_nodebug(hc, A_Z1) - hc->Zmin;
	while (z1 != (temp = (HFC_inw_nodebug(hc, A_Z1) - hc->Zmin))) {
		if (debug & DEBUG_HFCMULTI_FIFO)
			printk(KERN_DEBUG "%s(card %d): reread z2 because "
2253
			       "%d!=%d\n", __func__, hc->id + 1, temp, z2);
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2254 2255 2256 2257 2258 2259 2260 2261 2262 2263 2264 2265 2266 2267 2268 2269 2270
		z1 = temp; /* repeat until Z1 is equal */
	}
	z2 = HFC_inw_nodebug(hc, A_Z2) - hc->Zmin;
	Zsize = z1 - z2;
	if ((dch || test_bit(FLG_HDLC, &bch->Flags)) && f1 != f2)
		/* complete hdlc frame */
		Zsize++;
	if (Zsize < 0)
		Zsize += hc->Zlen;
	/* if buffer is empty */
	if (Zsize <= 0)
		return;

	if (*sp == NULL) {
		*sp = mI_alloc_skb(maxlen + 3, GFP_ATOMIC);
		if (*sp == NULL) {
			printk(KERN_DEBUG "%s: No mem for rx_skb\n",
2271
			       __func__);
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			return;
		}
	}
	/* show activity */
2276 2277
	if (dch)
		hc->activity_rx |= 1 << hc->chan[ch].port;
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	/* empty fifo with what we have */
	if (dch || test_bit(FLG_HDLC, &bch->Flags)) {
		if (debug & DEBUG_HFCMULTI_FIFO)
			printk(KERN_DEBUG "%s(card %d): fifo(%d) reading %d "
2283 2284 2285 2286
			       "bytes (z1=%04x, z2=%04x) HDLC %s (f1=%d, f2=%d) "
			       "got=%d (again %d)\n", __func__, hc->id + 1, ch,
			       Zsize, z1, z2, (f1 == f2) ? "fragment" : "COMPLETE",
			       f1, f2, Zsize + (*sp)->len, again);
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2287 2288 2289 2290
		/* HDLC */
		if ((Zsize + (*sp)->len) > (maxlen + 3)) {
			if (debug & DEBUG_HFCMULTI_FIFO)
				printk(KERN_DEBUG
2291 2292
				       "%s(card %d): hdlc-frame too large.\n",
				       __func__, hc->id + 1);
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2293 2294 2295 2296 2297 2298 2299 2300 2301 2302 2303 2304 2305 2306 2307 2308
			skb_trim(*sp, 0);
			HFC_outb_nodebug(hc, R_INC_RES_FIFO, V_RES_F);
			HFC_wait_nodebug(hc);
			return;
		}

		hc->read_fifo(hc, skb_put(*sp, Zsize), Zsize);

		if (f1 != f2) {
			/* increment Z2,F2-counter */
			HFC_outb_nodebug(hc, R_INC_RES_FIFO, V_INC_F);
			HFC_wait_nodebug(hc);
			/* check size */
			if ((*sp)->len < 4) {
				if (debug & DEBUG_HFCMULTI_FIFO)
					printk(KERN_DEBUG
2309 2310
					       "%s(card %d): Frame below minimum "
					       "size\n", __func__, hc->id + 1);
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2311 2312 2313 2314 2315 2316 2317
				skb_trim(*sp, 0);
				goto next_frame;
			}
			/* there is at least one complete frame, check crc */
			if ((*sp)->data[(*sp)->len - 1]) {
				if (debug & DEBUG_HFCMULTI_CRC)
					printk(KERN_DEBUG
2318
					       "%s: CRC-error\n", __func__);
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2319 2320 2321 2322 2323 2324 2325 2326 2327
				skb_trim(*sp, 0);
				goto next_frame;
			}
			skb_trim(*sp, (*sp)->len - 3);
			if ((*sp)->len < MISDN_COPY_SIZE) {
				skb = *sp;
				*sp = mI_alloc_skb(skb->len, GFP_ATOMIC);
				if (*sp) {
					memcpy(skb_put(*sp, skb->len),
2328
					       skb->data, skb->len);
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					skb_trim(skb, 0);
				} else {
					printk(KERN_DEBUG "%s: No mem\n",
2332
					       __func__);
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2333 2334 2335 2336 2337 2338 2339 2340
					*sp = skb;
					skb = NULL;
				}
			} else {
				skb = NULL;
			}
			if (debug & DEBUG_HFCMULTI_FIFO) {
				printk(KERN_DEBUG "%s(card %d):",
2341
				       __func__, hc->id + 1);
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2342 2343 2344 2345 2346 2347 2348 2349
				temp = 0;
				while (temp < (*sp)->len)
					printk(" %02x", (*sp)->data[temp++]);
				printk("\n");
			}
			if (dch)
				recv_Dchannel(dch);
			else
2350
				recv_Bchannel(bch, MISDN_ID_ANY);
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2351 2352 2353 2354 2355 2356 2357 2358 2359 2360 2361 2362 2363 2364 2365
			*sp = skb;
			again++;
			goto next_frame;
		}
		/* there is an incomplete frame */
	} else {
		/* transparent */
		if (Zsize > skb_tailroom(*sp))
			Zsize = skb_tailroom(*sp);
		hc->read_fifo(hc, skb_put(*sp, Zsize), Zsize);
		if (((*sp)->len) < MISDN_COPY_SIZE) {
			skb = *sp;
			*sp = mI_alloc_skb(skb->len, GFP_ATOMIC);
			if (*sp) {
				memcpy(skb_put(*sp, skb->len),
2366
				       skb->data, skb->len);
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2367 2368 2369 2370 2371 2372 2373 2374 2375 2376 2377
				skb_trim(skb, 0);
			} else {
				printk(KERN_DEBUG "%s: No mem\n", __func__);
				*sp = skb;
				skb = NULL;
			}
		} else {
			skb = NULL;
		}
		if (debug & DEBUG_HFCMULTI_FIFO)
			printk(KERN_DEBUG
2378 2379 2380
			       "%s(card %d): fifo(%d) reading %d bytes "
			       "(z1=%04x, z2=%04x) TRANS\n",
			       __func__, hc->id + 1, ch, Zsize, z1, z2);
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2381
		/* only bch is transparent */
2382
		recv_Bchannel(bch, hc->chan[ch].Zfill);
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2383 2384 2385 2386 2387 2388 2389 2390 2391 2392 2393 2394 2395 2396 2397 2398 2399 2400 2401 2402
		*sp = skb;
	}
}


/*
 * Interrupt handler
 */
static void
signal_state_up(struct dchannel *dch, int info, char *msg)
{
	struct sk_buff	*skb;
	int		id, data = info;

	if (debug & DEBUG_HFCMULTI_STATE)
		printk(KERN_DEBUG "%s: %s\n", __func__, msg);

	id = TEI_SAPI | (GROUP_TEI << 8); /* manager address */

	skb = _alloc_mISDN_skb(MPH_INFORMATION_IND, id, sizeof(data), &data,
2403
			       GFP_ATOMIC);
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	if (!skb)
		return;
	recv_Dchannel_skb(dch, skb);
}

static inline void
handle_timer_irq(struct hfc_multi *hc)
{
	int		ch, temp;
	struct dchannel	*dch;
	u_long		flags;

	/* process queued resync jobs */
	if (hc->e1_resync) {
		/* lock, so e1_resync gets not changed */
		spin_lock_irqsave(&HFClock, flags);
		if (hc->e1_resync & 1) {
			if (debug & DEBUG_HFCMULTI_PLXSD)
				printk(KERN_DEBUG "Enable SYNC_I\n");
			HFC_outb(hc, R_SYNC_CTRL, V_EXT_CLK_SYNC);
			/* disable JATT, if RX_SYNC is set */
			if (test_bit(HFC_CHIP_RX_SYNC, &hc->chip))
				HFC_outb(hc, R_SYNC_OUT, V_SYNC_E1_RX);
		}
		if (hc->e1_resync & 2) {
			if (debug & DEBUG_HFCMULTI_PLXSD)
				printk(KERN_DEBUG "Enable jatt PLL\n");
			HFC_outb(hc, R_SYNC_CTRL, V_SYNC_OFFS);
		}
		if (hc->e1_resync & 4) {
			if (debug & DEBUG_HFCMULTI_PLXSD)
				printk(KERN_DEBUG
2436
				       "Enable QUARTZ for HFC-E1\n");
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Karsten Keil 已提交
2437 2438
			/* set jatt to quartz */
			HFC_outb(hc, R_SYNC_CTRL, V_EXT_CLK_SYNC
2439
				 | V_JATT_OFF);
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Karsten Keil 已提交
2440 2441 2442 2443 2444 2445 2446
			/* switch to JATT, in case it is not already */
			HFC_outb(hc, R_SYNC_OUT, 0);
		}
		hc->e1_resync = 0;
		spin_unlock_irqrestore(&HFClock, flags);
	}

2447
	if (hc->ctype != HFC_TYPE_E1 || hc->e1_state == 1)
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		for (ch = 0; ch <= 31; ch++) {
			if (hc->created[hc->chan[ch].port]) {
				hfcmulti_tx(hc, ch);
				/* fifo is started when switching to rx-fifo */
				hfcmulti_rx(hc, ch);
				if (hc->chan[ch].dch &&
				    hc->chan[ch].nt_timer > -1) {
					dch = hc->chan[ch].dch;
					if (!(--hc->chan[ch].nt_timer)) {
						schedule_event(dch,
2458
							       FLG_PHCHANGE);
K
Karsten Keil 已提交
2459 2460 2461
						if (debug &
						    DEBUG_HFCMULTI_STATE)
							printk(KERN_DEBUG
2462 2463 2464 2465
							       "%s: nt_timer at "
							       "state %x\n",
							       __func__,
							       dch->state);
K
Karsten Keil 已提交
2466 2467 2468 2469
					}
				}
			}
		}
2470
	if (hc->ctype == HFC_TYPE_E1 && hc->created[0]) {
2471 2472 2473 2474 2475 2476
		dch = hc->chan[hc->dnum[0]].dch;
		/* LOS */
		temp = HFC_inb_nodebug(hc, R_SYNC_STA) & V_SIG_LOS;
		hc->chan[hc->dnum[0]].los = temp;
		if (test_bit(HFC_CFG_REPORT_LOS, &hc->chan[hc->dnum[0]].cfg)) {
			if (!temp && hc->chan[hc->dnum[0]].los)
K
Karsten Keil 已提交
2477
				signal_state_up(dch, L1_SIGNAL_LOS_ON,
2478
						"LOS detected");
2479
			if (temp && !hc->chan[hc->dnum[0]].los)
K
Karsten Keil 已提交
2480
				signal_state_up(dch, L1_SIGNAL_LOS_OFF,
2481
						"LOS gone");
K
Karsten Keil 已提交
2482
		}
2483
		if (test_bit(HFC_CFG_REPORT_AIS, &hc->chan[hc->dnum[0]].cfg)) {
K
Karsten Keil 已提交
2484 2485
			/* AIS */
			temp = HFC_inb_nodebug(hc, R_SYNC_STA) & V_AIS;
2486
			if (!temp && hc->chan[hc->dnum[0]].ais)
K
Karsten Keil 已提交
2487
				signal_state_up(dch, L1_SIGNAL_AIS_ON,
2488
						"AIS detected");
2489
			if (temp && !hc->chan[hc->dnum[0]].ais)
K
Karsten Keil 已提交
2490
				signal_state_up(dch, L1_SIGNAL_AIS_OFF,
2491
						"AIS gone");
2492
			hc->chan[hc->dnum[0]].ais = temp;
K
Karsten Keil 已提交
2493
		}
2494
		if (test_bit(HFC_CFG_REPORT_SLIP, &hc->chan[hc->dnum[0]].cfg)) {
K
Karsten Keil 已提交
2495 2496
			/* SLIP */
			temp = HFC_inb_nodebug(hc, R_SLIP) & V_FOSLIP_RX;
2497
			if (!temp && hc->chan[hc->dnum[0]].slip_rx)
K
Karsten Keil 已提交
2498
				signal_state_up(dch, L1_SIGNAL_SLIP_RX,
2499
						" bit SLIP detected RX");
2500
			hc->chan[hc->dnum[0]].slip_rx = temp;
K
Karsten Keil 已提交
2501
			temp = HFC_inb_nodebug(hc, R_SLIP) & V_FOSLIP_TX;
2502
			if (!temp && hc->chan[hc->dnum[0]].slip_tx)
K
Karsten Keil 已提交
2503
				signal_state_up(dch, L1_SIGNAL_SLIP_TX,
2504
						" bit SLIP detected TX");
2505
			hc->chan[hc->dnum[0]].slip_tx = temp;
K
Karsten Keil 已提交
2506
		}
2507
		if (test_bit(HFC_CFG_REPORT_RDI, &hc->chan[hc->dnum[0]].cfg)) {
K
Karsten Keil 已提交
2508 2509
			/* RDI */
			temp = HFC_inb_nodebug(hc, R_RX_SL0_0) & V_A;
2510
			if (!temp && hc->chan[hc->dnum[0]].rdi)
K
Karsten Keil 已提交
2511
				signal_state_up(dch, L1_SIGNAL_RDI_ON,
2512
						"RDI detected");
2513
			if (temp && !hc->chan[hc->dnum[0]].rdi)
K
Karsten Keil 已提交
2514
				signal_state_up(dch, L1_SIGNAL_RDI_OFF,
2515
						"RDI gone");
2516
			hc->chan[hc->dnum[0]].rdi = temp;
K
Karsten Keil 已提交
2517 2518
		}
		temp = HFC_inb_nodebug(hc, R_JATT_DIR);
2519
		switch (hc->chan[hc->dnum[0]].sync) {
K
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2520 2521 2522 2523
		case 0:
			if ((temp & 0x60) == 0x60) {
				if (debug & DEBUG_HFCMULTI_SYNC)
					printk(KERN_DEBUG
2524 2525 2526
					       "%s: (id=%d) E1 now "
					       "in clock sync\n",
					       __func__, hc->id);
K
Karsten Keil 已提交
2527
				HFC_outb(hc, R_RX_OFF,
2528
				    hc->chan[hc->dnum[0]].jitter | V_RX_INIT);
K
Karsten Keil 已提交
2529
				HFC_outb(hc, R_TX_OFF,
2530 2531
				    hc->chan[hc->dnum[0]].jitter | V_RX_INIT);
				hc->chan[hc->dnum[0]].sync = 1;
K
Karsten Keil 已提交
2532 2533 2534 2535 2536 2537 2538
				goto check_framesync;
			}
			break;
		case 1:
			if ((temp & 0x60) != 0x60) {
				if (debug & DEBUG_HFCMULTI_SYNC)
					printk(KERN_DEBUG
2539 2540 2541
					       "%s: (id=%d) E1 "
					       "lost clock sync\n",
					       __func__, hc->id);
2542
				hc->chan[hc->dnum[0]].sync = 0;
K
Karsten Keil 已提交
2543 2544
				break;
			}
2545
		check_framesync:
K
Karsten Keil 已提交
2546 2547 2548 2549
			temp = HFC_inb_nodebug(hc, R_SYNC_STA);
			if (temp == 0x27) {
				if (debug & DEBUG_HFCMULTI_SYNC)
					printk(KERN_DEBUG
2550 2551 2552
					       "%s: (id=%d) E1 "
					       "now in frame sync\n",
					       __func__, hc->id);
2553
				hc->chan[hc->dnum[0]].sync = 2;
K
Karsten Keil 已提交
2554 2555 2556 2557 2558 2559
			}
			break;
		case 2:
			if ((temp & 0x60) != 0x60) {
				if (debug & DEBUG_HFCMULTI_SYNC)
					printk(KERN_DEBUG
2560 2561 2562
					       "%s: (id=%d) E1 lost "
					       "clock & frame sync\n",
					       __func__, hc->id);
2563
				hc->chan[hc->dnum[0]].sync = 0;
K
Karsten Keil 已提交
2564 2565 2566 2567 2568 2569
				break;
			}
			temp = HFC_inb_nodebug(hc, R_SYNC_STA);
			if (temp != 0x27) {
				if (debug & DEBUG_HFCMULTI_SYNC)
					printk(KERN_DEBUG
2570 2571 2572
					       "%s: (id=%d) E1 "
					       "lost frame sync\n",
					       __func__, hc->id);
2573
				hc->chan[hc->dnum[0]].sync = 1;
K
Karsten Keil 已提交
2574 2575 2576 2577 2578 2579 2580 2581 2582 2583 2584 2585 2586 2587 2588 2589 2590 2591 2592 2593 2594 2595 2596 2597 2598 2599
			}
			break;
		}
	}

	if (test_bit(HFC_CHIP_WATCHDOG, &hc->chip))
		hfcmulti_watchdog(hc);

	if (hc->leds)
		hfcmulti_leds(hc);
}

static void
ph_state_irq(struct hfc_multi *hc, u_char r_irq_statech)
{
	struct dchannel	*dch;
	int		ch;
	int		active;
	u_char		st_status, temp;

	/* state machine */
	for (ch = 0; ch <= 31; ch++) {
		if (hc->chan[ch].dch) {
			dch = hc->chan[ch].dch;
			if (r_irq_statech & 1) {
				HFC_outb_nodebug(hc, R_ST_SEL,
2600
						 hc->chan[ch].port);
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Karsten Keil 已提交
2601 2602 2603 2604 2605
				/* undocumented: delay after R_ST_SEL */
				udelay(1);
				/* undocumented: status changes during read */
				st_status = HFC_inb_nodebug(hc, A_ST_RD_STATE);
				while (st_status != (temp =
2606
						     HFC_inb_nodebug(hc, A_ST_RD_STATE))) {
K
Karsten Keil 已提交
2607 2608
					if (debug & DEBUG_HFCMULTI_STATE)
						printk(KERN_DEBUG "%s: reread "
2609 2610 2611
						       "STATE because %d!=%d\n",
						       __func__, temp,
						       st_status);
K
Karsten Keil 已提交
2612 2613 2614 2615 2616
					st_status = temp; /* repeat */
				}

				/* Speech Design TE-sync indication */
				if (test_bit(HFC_CHIP_PLXSD, &hc->chip) &&
2617
				    dch->dev.D.protocol == ISDN_P_TE_S0) {
K
Karsten Keil 已提交
2618 2619
					if (st_status & V_FR_SYNC_ST)
						hc->syncronized |=
2620
							(1 << hc->chan[ch].port);
K
Karsten Keil 已提交
2621 2622
					else
						hc->syncronized &=
2623
							~(1 << hc->chan[ch].port);
K
Karsten Keil 已提交
2624 2625 2626 2627 2628 2629 2630 2631
				}
				dch->state = st_status & 0x0f;
				if (dch->dev.D.protocol == ISDN_P_NT_S0)
					active = 3;
				else
					active = 7;
				if (dch->state == active) {
					HFC_outb_nodebug(hc, R_FIFO,
2632
							 (ch << 1) | 1);
K
Karsten Keil 已提交
2633 2634
					HFC_wait_nodebug(hc);
					HFC_outb_nodebug(hc,
2635
							 R_INC_RES_FIFO, V_RES_F);
K
Karsten Keil 已提交
2636 2637 2638 2639 2640 2641
					HFC_wait_nodebug(hc);
					dch->tx_idx = 0;
				}
				schedule_event(dch, FLG_PHCHANGE);
				if (debug & DEBUG_HFCMULTI_STATE)
					printk(KERN_DEBUG
2642 2643 2644
					       "%s: S/T newstate %x port %d\n",
					       __func__, dch->state,
					       hc->chan[ch].port);
K
Karsten Keil 已提交
2645 2646 2647 2648 2649 2650 2651 2652 2653 2654 2655 2656 2657 2658 2659 2660 2661 2662 2663 2664 2665 2666 2667 2668 2669 2670 2671 2672 2673 2674 2675 2676 2677 2678 2679 2680 2681 2682 2683 2684 2685 2686 2687 2688 2689 2690 2691 2692 2693 2694 2695 2696 2697 2698 2699 2700 2701 2702 2703 2704 2705
			}
			r_irq_statech >>= 1;
		}
	}
	if (test_bit(HFC_CHIP_PLXSD, &hc->chip))
		plxsd_checksync(hc, 0);
}

static void
fifo_irq(struct hfc_multi *hc, int block)
{
	int	ch, j;
	struct dchannel	*dch;
	struct bchannel	*bch;
	u_char r_irq_fifo_bl;

	r_irq_fifo_bl = HFC_inb_nodebug(hc, R_IRQ_FIFO_BL0 + block);
	j = 0;
	while (j < 8) {
		ch = (block << 2) + (j >> 1);
		dch = hc->chan[ch].dch;
		bch = hc->chan[ch].bch;
		if (((!dch) && (!bch)) || (!hc->created[hc->chan[ch].port])) {
			j += 2;
			continue;
		}
		if (dch && (r_irq_fifo_bl & (1 << j)) &&
		    test_bit(FLG_ACTIVE, &dch->Flags)) {
			hfcmulti_tx(hc, ch);
			/* start fifo */
			HFC_outb_nodebug(hc, R_FIFO, 0);
			HFC_wait_nodebug(hc);
		}
		if (bch && (r_irq_fifo_bl & (1 << j)) &&
		    test_bit(FLG_ACTIVE, &bch->Flags)) {
			hfcmulti_tx(hc, ch);
			/* start fifo */
			HFC_outb_nodebug(hc, R_FIFO, 0);
			HFC_wait_nodebug(hc);
		}
		j++;
		if (dch && (r_irq_fifo_bl & (1 << j)) &&
		    test_bit(FLG_ACTIVE, &dch->Flags)) {
			hfcmulti_rx(hc, ch);
		}
		if (bch && (r_irq_fifo_bl & (1 << j)) &&
		    test_bit(FLG_ACTIVE, &bch->Flags)) {
			hfcmulti_rx(hc, ch);
		}
		j++;
	}
}

#ifdef IRQ_DEBUG
int irqsem;
#endif
static irqreturn_t
hfcmulti_interrupt(int intno, void *dev_id)
{
#ifdef IRQCOUNT_DEBUG
	static int iq1 = 0, iq2 = 0, iq3 = 0, iq4 = 0,
2706
		iq5 = 0, iq6 = 0, iqcnt = 0;
K
Karsten Keil 已提交
2707 2708 2709 2710 2711
#endif
	struct hfc_multi	*hc = dev_id;
	struct dchannel		*dch;
	u_char			r_irq_statech, status, r_irq_misc, r_irq_oview;
	int			i;
2712 2713
	void __iomem		*plx_acc;
	u_short			wval;
2714
	u_char			e1_syncsta, temp, temp2;
K
Karsten Keil 已提交
2715 2716 2717 2718 2719 2720 2721 2722 2723 2724 2725 2726
	u_long			flags;

	if (!hc) {
		printk(KERN_ERR "HFC-multi: Spurious interrupt!\n");
		return IRQ_NONE;
	}

	spin_lock(&hc->lock);

#ifdef IRQ_DEBUG
	if (irqsem)
		printk(KERN_ERR "irq for card %d during irq from "
2727
		       "card %d, this is no bug.\n", hc->id + 1, irqsem);
K
Karsten Keil 已提交
2728 2729
	irqsem = hc->id + 1;
#endif
2730 2731 2732 2733
#ifdef CONFIG_MISDN_HFCMULTI_8xx
	if (hc->immap->im_cpm.cp_pbdat & hc->pb_irqmsk)
		goto irq_notforus;
#endif
K
Karsten Keil 已提交
2734 2735
	if (test_bit(HFC_CHIP_PLXSD, &hc->chip)) {
		spin_lock_irqsave(&plx_lock, flags);
2736
		plx_acc = hc->plx_membase + PLX_INTCSR;
K
Karsten Keil 已提交
2737 2738 2739 2740 2741 2742 2743 2744 2745 2746 2747 2748 2749 2750 2751 2752 2753 2754 2755 2756 2757 2758 2759
		wval = readw(plx_acc);
		spin_unlock_irqrestore(&plx_lock, flags);
		if (!(wval & PLX_INTCSR_LINTI1_STATUS))
			goto irq_notforus;
	}

	status = HFC_inb_nodebug(hc, R_STATUS);
	r_irq_statech = HFC_inb_nodebug(hc, R_IRQ_STATECH);
#ifdef IRQCOUNT_DEBUG
	if (r_irq_statech)
		iq1++;
	if (status & V_DTMF_STA)
		iq2++;
	if (status & V_LOST_STA)
		iq3++;
	if (status & V_EXT_IRQSTA)
		iq4++;
	if (status & V_MISC_IRQSTA)
		iq5++;
	if (status & V_FR_IRQSTA)
		iq6++;
	if (iqcnt++ > 5000) {
		printk(KERN_ERR "iq1:%x iq2:%x iq3:%x iq4:%x iq5:%x iq6:%x\n",
2760
		       iq1, iq2, iq3, iq4, iq5, iq6);
K
Karsten Keil 已提交
2761 2762 2763
		iqcnt = 0;
	}
#endif
2764

K
Karsten Keil 已提交
2765 2766
	if (!r_irq_statech &&
	    !(status & (V_DTMF_STA | V_LOST_STA | V_EXT_IRQSTA |
2767
			V_MISC_IRQSTA | V_FR_IRQSTA))) {
K
Karsten Keil 已提交
2768 2769 2770 2771 2772
		/* irq is not for us */
		goto irq_notforus;
	}
	hc->irqcnt++;
	if (r_irq_statech) {
2773
		if (hc->ctype != HFC_TYPE_E1)
K
Karsten Keil 已提交
2774 2775 2776 2777 2778 2779 2780 2781 2782 2783 2784
			ph_state_irq(hc, r_irq_statech);
	}
	if (status & V_EXT_IRQSTA)
		; /* external IRQ */
	if (status & V_LOST_STA) {
		/* LOST IRQ */
		HFC_outb(hc, R_INC_RES_FIFO, V_RES_LOST); /* clear irq! */
	}
	if (status & V_MISC_IRQSTA) {
		/* misc IRQ */
		r_irq_misc = HFC_inb_nodebug(hc, R_IRQ_MISC);
A
Andreas Eversberg 已提交
2785
		r_irq_misc &= hc->hw.r_irqmsk_misc; /* ignore disabled irqs */
K
Karsten Keil 已提交
2786
		if (r_irq_misc & V_STA_IRQ) {
2787
			if (hc->ctype == HFC_TYPE_E1) {
K
Karsten Keil 已提交
2788
				/* state machine */
2789
				dch = hc->chan[hc->dnum[0]].dch;
K
Karsten Keil 已提交
2790 2791
				e1_syncsta = HFC_inb_nodebug(hc, R_SYNC_STA);
				if (test_bit(HFC_CHIP_PLXSD, &hc->chip)
2792
				    && hc->e1_getclock) {
K
Karsten Keil 已提交
2793 2794 2795 2796 2797 2798
					if (e1_syncsta & V_FR_SYNC_E1)
						hc->syncronized = 1;
					else
						hc->syncronized = 0;
				}
				/* undocumented: status changes during read */
2799 2800
				temp = HFC_inb_nodebug(hc, R_E1_RD_STA);
				while (temp != (temp2 =
2801
						      HFC_inb_nodebug(hc, R_E1_RD_STA))) {
K
Karsten Keil 已提交
2802 2803
					if (debug & DEBUG_HFCMULTI_STATE)
						printk(KERN_DEBUG "%s: reread "
2804
						       "STATE because %d!=%d\n",
2805 2806
						    __func__, temp, temp2);
					temp = temp2; /* repeat */
K
Karsten Keil 已提交
2807
				}
2808
				/* broadcast state change to all fragments */
K
Karsten Keil 已提交
2809 2810
				if (debug & DEBUG_HFCMULTI_STATE)
					printk(KERN_DEBUG
2811
					       "%s: E1 (id=%d) newstate %x\n",
2812 2813 2814 2815 2816 2817 2818
					    __func__, hc->id, temp & 0x7);
				for (i = 0; i < hc->ports; i++) {
					dch = hc->chan[hc->dnum[i]].dch;
					dch->state = temp & 0x7;
					schedule_event(dch, FLG_PHCHANGE);
				}

K
Karsten Keil 已提交
2819 2820 2821 2822
				if (test_bit(HFC_CHIP_PLXSD, &hc->chip))
					plxsd_checksync(hc, 0);
			}
		}
2823 2824 2825
		if (r_irq_misc & V_TI_IRQ) {
			if (hc->iclock_on)
				mISDN_clock_update(hc->iclock, poll, NULL);
K
Karsten Keil 已提交
2826
			handle_timer_irq(hc);
2827
		}
K
Karsten Keil 已提交
2828

K
Karsten Keil 已提交
2829
		if (r_irq_misc & V_DTMF_IRQ)
K
Karsten Keil 已提交
2830
			hfcmulti_dtmf(hc);
K
Karsten Keil 已提交
2831

K
Karsten Keil 已提交
2832
		if (r_irq_misc & V_IRQ_PROC) {
2833 2834
			static int irq_proc_cnt;
			if (!irq_proc_cnt++)
K
Karsten Keil 已提交
2835
				printk(KERN_DEBUG "%s: got V_IRQ_PROC -"
2836
				       " this should not happen\n", __func__);
K
Karsten Keil 已提交
2837 2838 2839 2840 2841 2842 2843 2844 2845 2846 2847 2848 2849 2850 2851 2852 2853 2854 2855 2856 2857 2858 2859 2860 2861 2862 2863 2864 2865 2866 2867 2868 2869 2870 2871 2872 2873 2874 2875 2876 2877 2878 2879 2880 2881 2882 2883 2884
		}

	}
	if (status & V_FR_IRQSTA) {
		/* FIFO IRQ */
		r_irq_oview = HFC_inb_nodebug(hc, R_IRQ_OVIEW);
		for (i = 0; i < 8; i++) {
			if (r_irq_oview & (1 << i))
				fifo_irq(hc, i);
		}
	}

#ifdef IRQ_DEBUG
	irqsem = 0;
#endif
	spin_unlock(&hc->lock);
	return IRQ_HANDLED;

irq_notforus:
#ifdef IRQ_DEBUG
	irqsem = 0;
#endif
	spin_unlock(&hc->lock);
	return IRQ_NONE;
}


/*
 * timer callback for D-chan busy resolution. Currently no function
 */

static void
hfcmulti_dbusy_timer(struct hfc_multi *hc)
{
}


/*
 * activate/deactivate hardware for selected channels and mode
 *
 * configure B-channel with the given protocol
 * ch eqals to the HFC-channel (0-31)
 * ch is the number of channel (0-4,4-7,8-11,12-15,16-19,20-23,24-27,28-31
 * for S/T, 1-31 for E1)
 * the hdlc interrupts will be set/unset
 */
static int
mode_hfcmulti(struct hfc_multi *hc, int ch, int protocol, int slot_tx,
2885
	      int bank_tx, int slot_rx, int bank_rx)
K
Karsten Keil 已提交
2886 2887 2888 2889 2890 2891
{
	int flow_tx = 0, flow_rx = 0, routing = 0;
	int oslot_tx, oslot_rx;
	int conf;

	if (ch < 0 || ch > 31)
2892
		return -EINVAL;
K
Karsten Keil 已提交
2893 2894 2895 2896 2897 2898
	oslot_tx = hc->chan[ch].slot_tx;
	oslot_rx = hc->chan[ch].slot_rx;
	conf = hc->chan[ch].conf;

	if (debug & DEBUG_HFCMULTI_MODE)
		printk(KERN_DEBUG
2899 2900 2901 2902
		       "%s: card %d channel %d protocol %x slot old=%d new=%d "
		       "bank new=%d (TX) slot old=%d new=%d bank new=%d (RX)\n",
		       __func__, hc->id, ch, protocol, oslot_tx, slot_tx,
		       bank_tx, oslot_rx, slot_rx, bank_rx);
K
Karsten Keil 已提交
2903 2904 2905 2906 2907

	if (oslot_tx >= 0 && slot_tx != oslot_tx) {
		/* remove from slot */
		if (debug & DEBUG_HFCMULTI_MODE)
			printk(KERN_DEBUG "%s: remove from slot %d (TX)\n",
2908 2909
			       __func__, oslot_tx);
		if (hc->slot_owner[oslot_tx << 1] == ch) {
K
Karsten Keil 已提交
2910 2911
			HFC_outb(hc, R_SLOT, oslot_tx << 1);
			HFC_outb(hc, A_SL_CFG, 0);
2912 2913
			if (hc->ctype != HFC_TYPE_XHFC)
				HFC_outb(hc, A_CONF, 0);
2914
			hc->slot_owner[oslot_tx << 1] = -1;
K
Karsten Keil 已提交
2915 2916 2917
		} else {
			if (debug & DEBUG_HFCMULTI_MODE)
				printk(KERN_DEBUG
2918 2919 2920
				       "%s: we are not owner of this tx slot "
				       "anymore, channel %d is.\n",
				       __func__, hc->slot_owner[oslot_tx << 1]);
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2921 2922 2923 2924 2925 2926 2927
		}
	}

	if (oslot_rx >= 0 && slot_rx != oslot_rx) {
		/* remove from slot */
		if (debug & DEBUG_HFCMULTI_MODE)
			printk(KERN_DEBUG
2928 2929
			       "%s: remove from slot %d (RX)\n",
			       __func__, oslot_rx);
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2930 2931 2932 2933 2934 2935 2936
		if (hc->slot_owner[(oslot_rx << 1) | 1] == ch) {
			HFC_outb(hc, R_SLOT, (oslot_rx << 1) | V_SL_DIR);
			HFC_outb(hc, A_SL_CFG, 0);
			hc->slot_owner[(oslot_rx << 1) | 1] = -1;
		} else {
			if (debug & DEBUG_HFCMULTI_MODE)
				printk(KERN_DEBUG
2937 2938 2939 2940
				       "%s: we are not owner of this rx slot "
				       "anymore, channel %d is.\n",
				       __func__,
				       hc->slot_owner[(oslot_rx << 1) | 1]);
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2941 2942 2943 2944 2945 2946 2947 2948 2949 2950 2951 2952 2953 2954 2955 2956 2957 2958 2959 2960
		}
	}

	if (slot_tx < 0) {
		flow_tx = 0x80; /* FIFO->ST */
		/* disable pcm slot */
		hc->chan[ch].slot_tx = -1;
		hc->chan[ch].bank_tx = 0;
	} else {
		/* set pcm slot */
		if (hc->chan[ch].txpending)
			flow_tx = 0x80; /* FIFO->ST */
		else
			flow_tx = 0xc0; /* PCM->ST */
		/* put on slot */
		routing = bank_tx ? 0xc0 : 0x80;
		if (conf >= 0 || bank_tx > 1)
			routing = 0x40; /* loop */
		if (debug & DEBUG_HFCMULTI_MODE)
			printk(KERN_DEBUG "%s: put channel %d to slot %d bank"
2961 2962 2963
			       " %d flow %02x routing %02x conf %d (TX)\n",
			       __func__, ch, slot_tx, bank_tx,
			       flow_tx, routing, conf);
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2964
		HFC_outb(hc, R_SLOT, slot_tx << 1);
2965
		HFC_outb(hc, A_SL_CFG, (ch << 1) | routing);
2966 2967
		if (hc->ctype != HFC_TYPE_XHFC)
			HFC_outb(hc, A_CONF,
2968
				 (conf < 0) ? 0 : (conf | V_CONF_SL));
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2969 2970 2971 2972 2973 2974 2975 2976 2977 2978 2979 2980 2981 2982 2983 2984
		hc->slot_owner[slot_tx << 1] = ch;
		hc->chan[ch].slot_tx = slot_tx;
		hc->chan[ch].bank_tx = bank_tx;
	}
	if (slot_rx < 0) {
		/* disable pcm slot */
		flow_rx = 0x80; /* ST->FIFO */
		hc->chan[ch].slot_rx = -1;
		hc->chan[ch].bank_rx = 0;
	} else {
		/* set pcm slot */
		if (hc->chan[ch].txpending)
			flow_rx = 0x80; /* ST->FIFO */
		else
			flow_rx = 0xc0; /* ST->(FIFO,PCM) */
		/* put on slot */
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2985
		routing = bank_rx ? 0x80 : 0xc0; /* reversed */
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2986 2987 2988 2989
		if (conf >= 0 || bank_rx > 1)
			routing = 0x40; /* loop */
		if (debug & DEBUG_HFCMULTI_MODE)
			printk(KERN_DEBUG "%s: put channel %d to slot %d bank"
2990 2991 2992 2993 2994 2995
			       " %d flow %02x routing %02x conf %d (RX)\n",
			       __func__, ch, slot_rx, bank_rx,
			       flow_rx, routing, conf);
		HFC_outb(hc, R_SLOT, (slot_rx << 1) | V_SL_DIR);
		HFC_outb(hc, A_SL_CFG, (ch << 1) | V_CH_DIR | routing);
		hc->slot_owner[(slot_rx << 1) | 1] = ch;
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2996 2997 2998 2999 3000 3001 3002 3003 3004 3005 3006 3007 3008 3009 3010
		hc->chan[ch].slot_rx = slot_rx;
		hc->chan[ch].bank_rx = bank_rx;
	}

	switch (protocol) {
	case (ISDN_P_NONE):
		/* disable TX fifo */
		HFC_outb(hc, R_FIFO, ch << 1);
		HFC_wait(hc);
		HFC_outb(hc, A_CON_HDLC, flow_tx | 0x00 | V_IFF);
		HFC_outb(hc, A_SUBCH_CFG, 0);
		HFC_outb(hc, A_IRQ_MSK, 0);
		HFC_outb(hc, R_INC_RES_FIFO, V_RES_F);
		HFC_wait(hc);
		/* disable RX fifo */
3011
		HFC_outb(hc, R_FIFO, (ch << 1) | 1);
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3012 3013 3014 3015 3016 3017
		HFC_wait(hc);
		HFC_outb(hc, A_CON_HDLC, flow_rx | 0x00);
		HFC_outb(hc, A_SUBCH_CFG, 0);
		HFC_outb(hc, A_IRQ_MSK, 0);
		HFC_outb(hc, R_INC_RES_FIFO, V_RES_F);
		HFC_wait(hc);
3018
		if (hc->chan[ch].bch && hc->ctype != HFC_TYPE_E1) {
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3019
			hc->hw.a_st_ctrl0[hc->chan[ch].port] &=
3020
				((ch & 0x3) == 0) ? ~V_B1_EN : ~V_B2_EN;
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3021 3022 3023 3024
			HFC_outb(hc, R_ST_SEL, hc->chan[ch].port);
			/* undocumented: delay after R_ST_SEL */
			udelay(1);
			HFC_outb(hc, A_ST_CTRL0,
3025
				 hc->hw.a_st_ctrl0[hc->chan[ch].port]);
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3026 3027 3028 3029
		}
		if (hc->chan[ch].bch) {
			test_and_clear_bit(FLG_HDLC, &hc->chan[ch].bch->Flags);
			test_and_clear_bit(FLG_TRANSPARENT,
3030
					   &hc->chan[ch].bch->Flags);
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3031 3032 3033 3034 3035 3036 3037 3038 3039
		}
		break;
	case (ISDN_P_B_RAW): /* B-channel */

		if (test_bit(HFC_CHIP_B410P, &hc->chip) &&
		    (hc->chan[ch].slot_rx < 0) &&
		    (hc->chan[ch].slot_tx < 0)) {

			printk(KERN_DEBUG
3040 3041 3042
			       "Setting B-channel %d to echo cancelable "
			       "state on PCM slot %d\n", ch,
			       ((ch / 4) * 8) + ((ch % 4) * 4) + 1);
K
Karsten Keil 已提交
3043
			printk(KERN_DEBUG
3044
			       "Enabling pass through for channel\n");
K
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3045
			vpm_out(hc, ch, ((ch / 4) * 8) +
3046
				((ch % 4) * 4) + 1, 0x01);
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3047 3048 3049 3050 3051 3052
			/* rx path */
			/* S/T -> PCM */
			HFC_outb(hc, R_FIFO, (ch << 1));
			HFC_wait(hc);
			HFC_outb(hc, A_CON_HDLC, 0xc0 | V_HDLC_TRP | V_IFF);
			HFC_outb(hc, R_SLOT, (((ch / 4) * 8) +
3053
					      ((ch % 4) * 4) + 1) << 1);
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Karsten Keil 已提交
3054 3055 3056 3057 3058 3059 3060 3061
			HFC_outb(hc, A_SL_CFG, 0x80 | (ch << 1));

			/* PCM -> FIFO */
			HFC_outb(hc, R_FIFO, 0x20 | (ch << 1) | 1);
			HFC_wait(hc);
			HFC_outb(hc, A_CON_HDLC, 0x20 | V_HDLC_TRP | V_IFF);
			HFC_outb(hc, A_SUBCH_CFG, 0);
			HFC_outb(hc, A_IRQ_MSK, 0);
3062 3063 3064 3065
			if (hc->chan[ch].protocol != protocol) {
				HFC_outb(hc, R_INC_RES_FIFO, V_RES_F);
				HFC_wait(hc);
			}
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Karsten Keil 已提交
3066
			HFC_outb(hc, R_SLOT, ((((ch / 4) * 8) +
3067
					       ((ch % 4) * 4) + 1) << 1) | 1);
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3068 3069 3070 3071 3072 3073 3074 3075
			HFC_outb(hc, A_SL_CFG, 0x80 | 0x20 | (ch << 1) | 1);

			/* tx path */
			/* PCM -> S/T */
			HFC_outb(hc, R_FIFO, (ch << 1) | 1);
			HFC_wait(hc);
			HFC_outb(hc, A_CON_HDLC, 0xc0 | V_HDLC_TRP | V_IFF);
			HFC_outb(hc, R_SLOT, ((((ch / 4) * 8) +
3076
					       ((ch % 4) * 4)) << 1) | 1);
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3077 3078 3079 3080 3081 3082 3083 3084
			HFC_outb(hc, A_SL_CFG, 0x80 | 0x40 | (ch << 1) | 1);

			/* FIFO -> PCM */
			HFC_outb(hc, R_FIFO, 0x20 | (ch << 1));
			HFC_wait(hc);
			HFC_outb(hc, A_CON_HDLC, 0x20 | V_HDLC_TRP | V_IFF);
			HFC_outb(hc, A_SUBCH_CFG, 0);
			HFC_outb(hc, A_IRQ_MSK, 0);
3085 3086 3087 3088
			if (hc->chan[ch].protocol != protocol) {
				HFC_outb(hc, R_INC_RES_FIFO, V_RES_F);
				HFC_wait(hc);
			}
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3089
			/* tx silence */
3090
			HFC_outb_nodebug(hc, A_FIFO_DATA0_NOINC, hc->silence);
K
Karsten Keil 已提交
3091
			HFC_outb(hc, R_SLOT, (((ch / 4) * 8) +
3092
					      ((ch % 4) * 4)) << 1);
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3093 3094 3095 3096 3097
			HFC_outb(hc, A_SL_CFG, 0x80 | 0x20 | (ch << 1));
		} else {
			/* enable TX fifo */
			HFC_outb(hc, R_FIFO, ch << 1);
			HFC_wait(hc);
3098 3099
			if (hc->ctype == HFC_TYPE_XHFC)
				HFC_outb(hc, A_CON_HDLC, flow_tx | 0x07 << 2 |
3100 3101
					 V_HDLC_TRP | V_IFF);
			/* Enable FIFO, no interrupt */
3102 3103
			else
				HFC_outb(hc, A_CON_HDLC, flow_tx | 0x00 |
3104
					 V_HDLC_TRP | V_IFF);
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3105 3106
			HFC_outb(hc, A_SUBCH_CFG, 0);
			HFC_outb(hc, A_IRQ_MSK, 0);
3107 3108 3109 3110
			if (hc->chan[ch].protocol != protocol) {
				HFC_outb(hc, R_INC_RES_FIFO, V_RES_F);
				HFC_wait(hc);
			}
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3111
			/* tx silence */
3112
			HFC_outb_nodebug(hc, A_FIFO_DATA0_NOINC, hc->silence);
K
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3113
			/* enable RX fifo */
3114
			HFC_outb(hc, R_FIFO, (ch << 1) | 1);
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3115
			HFC_wait(hc);
3116 3117
			if (hc->ctype == HFC_TYPE_XHFC)
				HFC_outb(hc, A_CON_HDLC, flow_rx | 0x07 << 2 |
3118 3119
					 V_HDLC_TRP);
			/* Enable FIFO, no interrupt*/
3120 3121
			else
				HFC_outb(hc, A_CON_HDLC, flow_rx | 0x00 |
3122
					 V_HDLC_TRP);
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3123 3124
			HFC_outb(hc, A_SUBCH_CFG, 0);
			HFC_outb(hc, A_IRQ_MSK, 0);
3125 3126 3127 3128
			if (hc->chan[ch].protocol != protocol) {
				HFC_outb(hc, R_INC_RES_FIFO, V_RES_F);
				HFC_wait(hc);
			}
K
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3129
		}
3130
		if (hc->ctype != HFC_TYPE_E1) {
K
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3131
			hc->hw.a_st_ctrl0[hc->chan[ch].port] |=
3132
				((ch & 0x3) == 0) ? V_B1_EN : V_B2_EN;
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3133 3134 3135 3136
			HFC_outb(hc, R_ST_SEL, hc->chan[ch].port);
			/* undocumented: delay after R_ST_SEL */
			udelay(1);
			HFC_outb(hc, A_ST_CTRL0,
3137
				 hc->hw.a_st_ctrl0[hc->chan[ch].port]);
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3138 3139 3140
		}
		if (hc->chan[ch].bch)
			test_and_set_bit(FLG_TRANSPARENT,
3141
					 &hc->chan[ch].bch->Flags);
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3142 3143 3144 3145 3146 3147 3148
		break;
	case (ISDN_P_B_HDLC): /* B-channel */
	case (ISDN_P_TE_S0): /* D-channel */
	case (ISDN_P_NT_S0):
	case (ISDN_P_TE_E1):
	case (ISDN_P_NT_E1):
		/* enable TX fifo */
3149
		HFC_outb(hc, R_FIFO, ch << 1);
K
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3150
		HFC_wait(hc);
3151
		if (hc->ctype == HFC_TYPE_E1 || hc->chan[ch].bch) {
K
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3152 3153 3154 3155 3156 3157 3158 3159 3160 3161 3162 3163
			/* E1 or B-channel */
			HFC_outb(hc, A_CON_HDLC, flow_tx | 0x04);
			HFC_outb(hc, A_SUBCH_CFG, 0);
		} else {
			/* D-Channel without HDLC fill flags */
			HFC_outb(hc, A_CON_HDLC, flow_tx | 0x04 | V_IFF);
			HFC_outb(hc, A_SUBCH_CFG, 2);
		}
		HFC_outb(hc, A_IRQ_MSK, V_IRQ);
		HFC_outb(hc, R_INC_RES_FIFO, V_RES_F);
		HFC_wait(hc);
		/* enable RX fifo */
3164
		HFC_outb(hc, R_FIFO, (ch << 1) | 1);
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3165 3166
		HFC_wait(hc);
		HFC_outb(hc, A_CON_HDLC, flow_rx | 0x04);
3167
		if (hc->ctype == HFC_TYPE_E1 || hc->chan[ch].bch)
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3168 3169 3170 3171 3172 3173 3174 3175
			HFC_outb(hc, A_SUBCH_CFG, 0); /* full 8 bits */
		else
			HFC_outb(hc, A_SUBCH_CFG, 2); /* 2 bits dchannel */
		HFC_outb(hc, A_IRQ_MSK, V_IRQ);
		HFC_outb(hc, R_INC_RES_FIFO, V_RES_F);
		HFC_wait(hc);
		if (hc->chan[ch].bch) {
			test_and_set_bit(FLG_HDLC, &hc->chan[ch].bch->Flags);
3176
			if (hc->ctype != HFC_TYPE_E1) {
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3177
				hc->hw.a_st_ctrl0[hc->chan[ch].port] |=
3178
					((ch & 0x3) == 0) ? V_B1_EN : V_B2_EN;
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3179 3180 3181 3182
				HFC_outb(hc, R_ST_SEL, hc->chan[ch].port);
				/* undocumented: delay after R_ST_SEL */
				udelay(1);
				HFC_outb(hc, A_ST_CTRL0,
3183
					 hc->hw.a_st_ctrl0[hc->chan[ch].port]);
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3184 3185 3186 3187 3188
			}
		}
		break;
	default:
		printk(KERN_DEBUG "%s: protocol not known %x\n",
3189
		       __func__, protocol);
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3190 3191 3192 3193 3194 3195 3196 3197 3198 3199 3200 3201 3202 3203
		hc->chan[ch].protocol = ISDN_P_NONE;
		return -ENOPROTOOPT;
	}
	hc->chan[ch].protocol = protocol;
	return 0;
}


/*
 * connect/disconnect PCM
 */

static void
hfcmulti_pcm(struct hfc_multi *hc, int ch, int slot_tx, int bank_tx,
3204
	     int slot_rx, int bank_rx)
K
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3205
{
3206
	if (slot_tx < 0 || slot_rx < 0 || bank_tx < 0 || bank_rx < 0) {
K
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3207 3208 3209 3210 3211 3212 3213
		/* disable PCM */
		mode_hfcmulti(hc, ch, hc->chan[ch].protocol, -1, 0, -1, 0);
		return;
	}

	/* enable pcm */
	mode_hfcmulti(hc, ch, hc->chan[ch].protocol, slot_tx, bank_tx,
3214
		      slot_rx, bank_rx);
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3215 3216 3217 3218 3219 3220 3221 3222 3223 3224 3225 3226 3227 3228
}

/*
 * set/disable conference
 */

static void
hfcmulti_conf(struct hfc_multi *hc, int ch, int num)
{
	if (num >= 0 && num <= 7)
		hc->chan[ch].conf = num;
	else
		hc->chan[ch].conf = -1;
	mode_hfcmulti(hc, ch, hc->chan[ch].protocol, hc->chan[ch].slot_tx,
3229 3230
		      hc->chan[ch].bank_tx, hc->chan[ch].slot_rx,
		      hc->chan[ch].bank_rx);
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3231 3232 3233 3234 3235 3236 3237 3238 3239 3240 3241 3242 3243 3244 3245 3246 3247 3248 3249 3250 3251 3252 3253 3254 3255
}


/*
 * set/disable sample loop
 */

/* NOTE: this function is experimental and therefore disabled */

/*
 * Layer 1 callback function
 */
static int
hfcm_l1callback(struct dchannel *dch, u_int cmd)
{
	struct hfc_multi	*hc = dch->hw;
	u_long	flags;

	switch (cmd) {
	case INFO3_P8:
	case INFO3_P10:
		break;
	case HW_RESET_REQ:
		/* start activation */
		spin_lock_irqsave(&hc->lock, flags);
3256
		if (hc->ctype == HFC_TYPE_E1) {
K
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3257 3258
			if (debug & DEBUG_HFCMULTI_MSG)
				printk(KERN_DEBUG
3259 3260
				       "%s: HW_RESET_REQ no BRI\n",
				       __func__);
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3261 3262 3263 3264 3265 3266 3267
		} else {
			HFC_outb(hc, R_ST_SEL, hc->chan[dch->slot].port);
			/* undocumented: delay after R_ST_SEL */
			udelay(1);
			HFC_outb(hc, A_ST_WR_STATE, V_ST_LD_STA | 3); /* F3 */
			udelay(6); /* wait at least 5,21us */
			HFC_outb(hc, A_ST_WR_STATE, 3);
3268 3269
			HFC_outb(hc, A_ST_WR_STATE, 3 | (V_ST_ACT * 3));
			/* activate */
K
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3270 3271 3272 3273 3274 3275 3276
		}
		spin_unlock_irqrestore(&hc->lock, flags);
		l1_event(dch->l1, HW_POWERUP_IND);
		break;
	case HW_DEACT_REQ:
		/* start deactivation */
		spin_lock_irqsave(&hc->lock, flags);
3277
		if (hc->ctype == HFC_TYPE_E1) {
K
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3278 3279
			if (debug & DEBUG_HFCMULTI_MSG)
				printk(KERN_DEBUG
3280 3281
				       "%s: HW_DEACT_REQ no BRI\n",
				       __func__);
K
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3282 3283 3284 3285
		} else {
			HFC_outb(hc, R_ST_SEL, hc->chan[dch->slot].port);
			/* undocumented: delay after R_ST_SEL */
			udelay(1);
3286 3287
			HFC_outb(hc, A_ST_WR_STATE, V_ST_ACT * 2);
			/* deactivate */
K
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3288 3289
			if (test_bit(HFC_CHIP_PLXSD, &hc->chip)) {
				hc->syncronized &=
3290
					~(1 << hc->chan[dch->slot].port);
K
Karsten Keil 已提交
3291 3292 3293 3294 3295 3296 3297 3298 3299 3300 3301 3302 3303 3304 3305 3306 3307 3308 3309 3310
				plxsd_checksync(hc, 0);
			}
		}
		skb_queue_purge(&dch->squeue);
		if (dch->tx_skb) {
			dev_kfree_skb(dch->tx_skb);
			dch->tx_skb = NULL;
		}
		dch->tx_idx = 0;
		if (dch->rx_skb) {
			dev_kfree_skb(dch->rx_skb);
			dch->rx_skb = NULL;
		}
		test_and_clear_bit(FLG_TX_BUSY, &dch->Flags);
		if (test_and_clear_bit(FLG_BUSY_TIMER, &dch->Flags))
			del_timer(&dch->timer);
		spin_unlock_irqrestore(&hc->lock, flags);
		break;
	case HW_POWERUP_REQ:
		spin_lock_irqsave(&hc->lock, flags);
3311
		if (hc->ctype == HFC_TYPE_E1) {
K
Karsten Keil 已提交
3312 3313
			if (debug & DEBUG_HFCMULTI_MSG)
				printk(KERN_DEBUG
3314 3315
				       "%s: HW_POWERUP_REQ no BRI\n",
				       __func__);
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3316 3317 3318 3319 3320 3321 3322 3323 3324 3325 3326 3327 3328
		} else {
			HFC_outb(hc, R_ST_SEL, hc->chan[dch->slot].port);
			/* undocumented: delay after R_ST_SEL */
			udelay(1);
			HFC_outb(hc, A_ST_WR_STATE, 3 | 0x10); /* activate */
			udelay(6); /* wait at least 5,21us */
			HFC_outb(hc, A_ST_WR_STATE, 3); /* activate */
		}
		spin_unlock_irqrestore(&hc->lock, flags);
		break;
	case PH_ACTIVATE_IND:
		test_and_set_bit(FLG_ACTIVE, &dch->Flags);
		_queue_data(&dch->dev.D, cmd, MISDN_ID_ANY, 0, NULL,
3329
			    GFP_ATOMIC);
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		break;
	case PH_DEACTIVATE_IND:
		test_and_clear_bit(FLG_ACTIVE, &dch->Flags);
		_queue_data(&dch->dev.D, cmd, MISDN_ID_ANY, 0, NULL,
3334
			    GFP_ATOMIC);
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		break;
	default:
		if (dch->debug & DEBUG_HW)
			printk(KERN_DEBUG "%s: unknown command %x\n",
3339
			       __func__, cmd);
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		return -1;
	}
	return 0;
}

/*
 * Layer2 -> Layer 1 Transfer
 */

static int
handle_dmsg(struct mISDNchannel *ch, struct sk_buff *skb)
{
	struct mISDNdevice	*dev = container_of(ch, struct mISDNdevice, D);
	struct dchannel		*dch = container_of(dev, struct dchannel, dev);
	struct hfc_multi	*hc = dch->hw;
	struct mISDNhead	*hh = mISDN_HEAD_P(skb);
	int			ret = -EINVAL;
	unsigned int		id;
	u_long			flags;

	switch (hh->prim) {
	case PH_DATA_REQ:
		if (skb->len < 1)
			break;
		spin_lock_irqsave(&hc->lock, flags);
		ret = dchannel_senddata(dch, skb);
		if (ret > 0) { /* direct TX */
			id = hh->id; /* skb can be freed */
			hfcmulti_tx(hc, dch->slot);
			ret = 0;
			/* start fifo */
			HFC_outb(hc, R_FIFO, 0);
			HFC_wait(hc);
			spin_unlock_irqrestore(&hc->lock, flags);
			queue_ch_frame(ch, PH_DATA_CNF, id, NULL);
		} else
			spin_unlock_irqrestore(&hc->lock, flags);
		return ret;
	case PH_ACTIVATE_REQ:
		if (dch->dev.D.protocol != ISDN_P_TE_S0) {
			spin_lock_irqsave(&hc->lock, flags);
			ret = 0;
			if (debug & DEBUG_HFCMULTI_MSG)
				printk(KERN_DEBUG
3384 3385 3386
				       "%s: PH_ACTIVATE port %d (0..%d)\n",
				       __func__, hc->chan[dch->slot].port,
				       hc->ports - 1);
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			/* start activation */
3388
			if (hc->ctype == HFC_TYPE_E1) {
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				ph_state_change(dch);
				if (debug & DEBUG_HFCMULTI_STATE)
					printk(KERN_DEBUG
3392 3393
					       "%s: E1 report state %x \n",
					       __func__, dch->state);
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			} else {
				HFC_outb(hc, R_ST_SEL,
3396
					 hc->chan[dch->slot].port);
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				/* undocumented: delay after R_ST_SEL */
				udelay(1);
				HFC_outb(hc, A_ST_WR_STATE, V_ST_LD_STA | 1);
3400
				/* G1 */
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				udelay(6); /* wait at least 5,21us */
				HFC_outb(hc, A_ST_WR_STATE, 1);
				HFC_outb(hc, A_ST_WR_STATE, 1 |
3404
					 (V_ST_ACT * 3)); /* activate */
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				dch->state = 1;
			}
			spin_unlock_irqrestore(&hc->lock, flags);
		} else
			ret = l1_event(dch->l1, hh->prim);
		break;
	case PH_DEACTIVATE_REQ:
		test_and_clear_bit(FLG_L2_ACTIVATED, &dch->Flags);
		if (dch->dev.D.protocol != ISDN_P_TE_S0) {
			spin_lock_irqsave(&hc->lock, flags);
			if (debug & DEBUG_HFCMULTI_MSG)
				printk(KERN_DEBUG
3417 3418 3419
				       "%s: PH_DEACTIVATE port %d (0..%d)\n",
				       __func__, hc->chan[dch->slot].port,
				       hc->ports - 1);
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			/* start deactivation */
3421
			if (hc->ctype == HFC_TYPE_E1) {
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				if (debug & DEBUG_HFCMULTI_MSG)
					printk(KERN_DEBUG
3424 3425
					       "%s: PH_DEACTIVATE no BRI\n",
					       __func__);
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3426 3427
			} else {
				HFC_outb(hc, R_ST_SEL,
3428
					 hc->chan[dch->slot].port);
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				/* undocumented: delay after R_ST_SEL */
				udelay(1);
				HFC_outb(hc, A_ST_WR_STATE, V_ST_ACT * 2);
3432
				/* deactivate */
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				dch->state = 1;
			}
			skb_queue_purge(&dch->squeue);
			if (dch->tx_skb) {
				dev_kfree_skb(dch->tx_skb);
				dch->tx_skb = NULL;
			}
			dch->tx_idx = 0;
			if (dch->rx_skb) {
				dev_kfree_skb(dch->rx_skb);
				dch->rx_skb = NULL;
			}
			test_and_clear_bit(FLG_TX_BUSY, &dch->Flags);
			if (test_and_clear_bit(FLG_BUSY_TIMER, &dch->Flags))
				del_timer(&dch->timer);
#ifdef FIXME
			if (test_and_clear_bit(FLG_L1_BUSY, &dch->Flags))
				dchannel_sched_event(&hc->dch, D_CLEARBUSY);
#endif
			ret = 0;
			spin_unlock_irqrestore(&hc->lock, flags);
		} else
			ret = l1_event(dch->l1, hh->prim);
		break;
	}
	if (!ret)
		dev_kfree_skb(skb);
	return ret;
}

static void
deactivate_bchannel(struct bchannel *bch)
{
	struct hfc_multi	*hc = bch->hw;
	u_long			flags;

	spin_lock_irqsave(&hc->lock, flags);
3470
	mISDN_clear_bchannel(bch);
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	hc->chan[bch->slot].coeff_count = 0;
	hc->chan[bch->slot].rx_off = 0;
	hc->chan[bch->slot].conf = -1;
	mode_hfcmulti(hc, bch->slot, ISDN_P_NONE, -1, 0, -1, 0);
	spin_unlock_irqrestore(&hc->lock, flags);
}

static int
handle_bmsg(struct mISDNchannel *ch, struct sk_buff *skb)
{
	struct bchannel		*bch = container_of(ch, struct bchannel, ch);
	struct hfc_multi	*hc = bch->hw;
	int			ret = -EINVAL;
	struct mISDNhead	*hh = mISDN_HEAD_P(skb);
	unsigned int		id;
	u_long			flags;

	switch (hh->prim) {
	case PH_DATA_REQ:
		if (!skb->len)
			break;
		spin_lock_irqsave(&hc->lock, flags);
		ret = bchannel_senddata(bch, skb);
		if (ret > 0) { /* direct TX */
			id = hh->id; /* skb can be freed */
			hfcmulti_tx(hc, bch->slot);
			ret = 0;
			/* start fifo */
			HFC_outb_nodebug(hc, R_FIFO, 0);
			HFC_wait_nodebug(hc);
			if (!test_bit(FLG_TRANSPARENT, &bch->Flags)) {
				spin_unlock_irqrestore(&hc->lock, flags);
				queue_ch_frame(ch, PH_DATA_CNF, id, NULL);
			} else
				spin_unlock_irqrestore(&hc->lock, flags);
		} else
			spin_unlock_irqrestore(&hc->lock, flags);
		return ret;
	case PH_ACTIVATE_REQ:
		if (debug & DEBUG_HFCMULTI_MSG)
			printk(KERN_DEBUG "%s: PH_ACTIVATE ch %d (0..32)\n",
3512
			       __func__, bch->slot);
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		spin_lock_irqsave(&hc->lock, flags);
		/* activate B-channel if not already activated */
		if (!test_and_set_bit(FLG_ACTIVE, &bch->Flags)) {
			hc->chan[bch->slot].txpending = 0;
			ret = mode_hfcmulti(hc, bch->slot,
3518 3519 3520 3521 3522
					    ch->protocol,
					    hc->chan[bch->slot].slot_tx,
					    hc->chan[bch->slot].bank_tx,
					    hc->chan[bch->slot].slot_rx,
					    hc->chan[bch->slot].bank_rx);
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			if (!ret) {
				if (ch->protocol == ISDN_P_B_RAW && !hc->dtmf
3525
				    && test_bit(HFC_CHIP_DTMF, &hc->chip)) {
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					/* start decoder */
					hc->dtmf = 1;
					if (debug & DEBUG_HFCMULTI_DTMF)
						printk(KERN_DEBUG
3530 3531
						       "%s: start dtmf decoder\n",
						       __func__);
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3532
					HFC_outb(hc, R_DTMF, hc->hw.r_dtmf |
3533
						 V_RST_DTMF);
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				}
			}
		} else
			ret = 0;
		spin_unlock_irqrestore(&hc->lock, flags);
		if (!ret)
			_queue_data(ch, PH_ACTIVATE_IND, MISDN_ID_ANY, 0, NULL,
3541
				    GFP_KERNEL);
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		break;
	case PH_CONTROL_REQ:
		spin_lock_irqsave(&hc->lock, flags);
		switch (hh->id) {
		case HFC_SPL_LOOP_ON: /* set sample loop */
			if (debug & DEBUG_HFCMULTI_MSG)
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				printk(KERN_DEBUG
3549 3550
				       "%s: HFC_SPL_LOOP_ON (len = %d)\n",
				       __func__, skb->len);
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			ret = 0;
			break;
		case HFC_SPL_LOOP_OFF: /* set silence */
			if (debug & DEBUG_HFCMULTI_MSG)
				printk(KERN_DEBUG "%s: HFC_SPL_LOOP_OFF\n",
3556
				       __func__);
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			ret = 0;
			break;
		default:
			printk(KERN_ERR
3561 3562
			       "%s: unknown PH_CONTROL_REQ info %x\n",
			       __func__, hh->id);
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			ret = -EINVAL;
		}
		spin_unlock_irqrestore(&hc->lock, flags);
		break;
	case PH_DEACTIVATE_REQ:
		deactivate_bchannel(bch); /* locked there */
		_queue_data(ch, PH_DEACTIVATE_IND, MISDN_ID_ANY, 0, NULL,
3570
			    GFP_KERNEL);
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		ret = 0;
		break;
	}
	if (!ret)
		dev_kfree_skb(skb);
	return ret;
}

/*
 * bchannel control function
 */
static int
channel_bctrl(struct bchannel *bch, struct mISDN_ctrl_req *cq)
{
	int			ret = 0;
	struct dsp_features	*features =
		(struct dsp_features *)(*((u_long *)&cq->p1));
	struct hfc_multi	*hc = bch->hw;
	int			slot_tx;
	int			bank_tx;
	int			slot_rx;
	int			bank_rx;
	int			num;

	switch (cq->op) {
	case MISDN_CTRL_GETOP:
		cq->op = MISDN_CTRL_HFC_OP | MISDN_CTRL_HW_FEATURES_OP
3598
			| MISDN_CTRL_RX_OFF | MISDN_CTRL_FILL_EMPTY;
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		break;
	case MISDN_CTRL_RX_OFF: /* turn off / on rx stream */
		hc->chan[bch->slot].rx_off = !!cq->p1;
		if (!hc->chan[bch->slot].rx_off) {
			/* reset fifo on rx on */
			HFC_outb_nodebug(hc, R_FIFO, (bch->slot << 1) | 1);
			HFC_wait_nodebug(hc);
			HFC_outb_nodebug(hc, R_INC_RES_FIFO, V_RES_F);
			HFC_wait_nodebug(hc);
		}
		if (debug & DEBUG_HFCMULTI_MSG)
			printk(KERN_DEBUG "%s: RX_OFF request (nr=%d off=%d)\n",
3611
			       __func__, bch->nr, hc->chan[bch->slot].rx_off);
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		break;
3613 3614 3615 3616
	case MISDN_CTRL_FILL_EMPTY: /* fill fifo, if empty */
		test_and_set_bit(FLG_FILLEMPTY, &bch->Flags);
		if (debug & DEBUG_HFCMULTI_MSG)
			printk(KERN_DEBUG "%s: FILL_EMPTY request (nr=%d "
3617
			       "off=%d)\n", __func__, bch->nr, !!cq->p1);
3618
		break;
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	case MISDN_CTRL_HW_FEATURES: /* fill features structure */
		if (debug & DEBUG_HFCMULTI_MSG)
			printk(KERN_DEBUG "%s: HW_FEATURE request\n",
3622
			       __func__);
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3623 3624 3625 3626
		/* create confirm */
		features->hfc_id = hc->id;
		if (test_bit(HFC_CHIP_DTMF, &hc->chip))
			features->hfc_dtmf = 1;
3627 3628
		if (test_bit(HFC_CHIP_CONF, &hc->chip))
			features->hfc_conf = 1;
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3629 3630 3631 3632 3633 3634 3635 3636 3637 3638 3639 3640 3641 3642 3643 3644
		features->hfc_loops = 0;
		if (test_bit(HFC_CHIP_B410P, &hc->chip)) {
			features->hfc_echocanhw = 1;
		} else {
			features->pcm_id = hc->pcm;
			features->pcm_slots = hc->slots;
			features->pcm_banks = 2;
		}
		break;
	case MISDN_CTRL_HFC_PCM_CONN: /* connect to pcm timeslot (0..N) */
		slot_tx = cq->p1 & 0xff;
		bank_tx = cq->p1 >> 8;
		slot_rx = cq->p2 & 0xff;
		bank_rx = cq->p2 >> 8;
		if (debug & DEBUG_HFCMULTI_MSG)
			printk(KERN_DEBUG
3645 3646 3647 3648
			       "%s: HFC_PCM_CONN slot %d bank %d (TX) "
			       "slot %d bank %d (RX)\n",
			       __func__, slot_tx, bank_tx,
			       slot_rx, bank_rx);
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		if (slot_tx < hc->slots && bank_tx <= 2 &&
		    slot_rx < hc->slots && bank_rx <= 2)
			hfcmulti_pcm(hc, bch->slot,
3652
				     slot_tx, bank_tx, slot_rx, bank_rx);
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		else {
			printk(KERN_WARNING
3655 3656 3657 3658
			       "%s: HFC_PCM_CONN slot %d bank %d (TX) "
			       "slot %d bank %d (RX) out of range\n",
			       __func__, slot_tx, bank_tx,
			       slot_rx, bank_rx);
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			ret = -EINVAL;
		}
		break;
	case MISDN_CTRL_HFC_PCM_DISC: /* release interface from pcm timeslot */
		if (debug & DEBUG_HFCMULTI_MSG)
			printk(KERN_DEBUG "%s: HFC_PCM_DISC\n",
3665
			       __func__);
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		hfcmulti_pcm(hc, bch->slot, -1, 0, -1, 0);
		break;
	case MISDN_CTRL_HFC_CONF_JOIN: /* join conference (0..7) */
		num = cq->p1 & 0xff;
		if (debug & DEBUG_HFCMULTI_MSG)
			printk(KERN_DEBUG "%s: HFC_CONF_JOIN conf %d\n",
3672
			       __func__, num);
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		if (num <= 7)
			hfcmulti_conf(hc, bch->slot, num);
		else {
			printk(KERN_WARNING
3677 3678
			       "%s: HW_CONF_JOIN conf %d out of range\n",
			       __func__, num);
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			ret = -EINVAL;
		}
		break;
	case MISDN_CTRL_HFC_CONF_SPLIT: /* split conference */
		if (debug & DEBUG_HFCMULTI_MSG)
			printk(KERN_DEBUG "%s: HFC_CONF_SPLIT\n", __func__);
		hfcmulti_conf(hc, bch->slot, -1);
		break;
	case MISDN_CTRL_HFC_ECHOCAN_ON:
		if (debug & DEBUG_HFCMULTI_MSG)
			printk(KERN_DEBUG "%s: HFC_ECHOCAN_ON\n", __func__);
		if (test_bit(HFC_CHIP_B410P, &hc->chip))
			vpm_echocan_on(hc, bch->slot, cq->p1);
		else
			ret = -EINVAL;
		break;

	case MISDN_CTRL_HFC_ECHOCAN_OFF:
		if (debug & DEBUG_HFCMULTI_MSG)
			printk(KERN_DEBUG "%s: HFC_ECHOCAN_OFF\n",
3699
			       __func__);
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		if (test_bit(HFC_CHIP_B410P, &hc->chip))
			vpm_echocan_off(hc, bch->slot);
		else
			ret = -EINVAL;
		break;
	default:
		printk(KERN_WARNING "%s: unknown Op %x\n",
3707
		       __func__, cq->op);
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		ret = -EINVAL;
		break;
	}
	return ret;
}

static int
hfcm_bctrl(struct mISDNchannel *ch, u_int cmd, void *arg)
{
	struct bchannel		*bch = container_of(ch, struct bchannel, ch);
	struct hfc_multi	*hc = bch->hw;
	int			err = -EINVAL;
	u_long	flags;

	if (bch->debug & DEBUG_HW)
		printk(KERN_DEBUG "%s: cmd:%x %p\n",
3724
		       __func__, cmd, arg);
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	switch (cmd) {
	case CLOSE_CHANNEL:
		test_and_clear_bit(FLG_OPEN, &bch->Flags);
		if (test_bit(FLG_ACTIVE, &bch->Flags))
			deactivate_bchannel(bch); /* locked there */
		ch->protocol = ISDN_P_NONE;
		ch->peer = NULL;
		module_put(THIS_MODULE);
		err = 0;
		break;
	case CONTROL_CHANNEL:
		spin_lock_irqsave(&hc->lock, flags);
		err = channel_bctrl(bch, arg);
		spin_unlock_irqrestore(&hc->lock, flags);
		break;
	default:
		printk(KERN_WARNING "%s: unknown prim(%x)\n",
3742
		       __func__, cmd);
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	}
	return err;
}

/*
 * handle D-channel events
 *
 * handle state change event
 */
static void
ph_state_change(struct dchannel *dch)
{
3755
	struct hfc_multi *hc;
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3756 3757 3758
	int ch, i;

	if (!dch) {
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3759
		printk(KERN_WARNING "%s: ERROR given dch is NULL\n", __func__);
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3760 3761
		return;
	}
3762
	hc = dch->hw;
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	ch = dch->slot;

3765
	if (hc->ctype == HFC_TYPE_E1) {
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		if (dch->dev.D.protocol == ISDN_P_TE_E1) {
			if (debug & DEBUG_HFCMULTI_STATE)
				printk(KERN_DEBUG
3769 3770
				       "%s: E1 TE (id=%d) newstate %x\n",
				       __func__, hc->id, dch->state);
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3771 3772 3773
		} else {
			if (debug & DEBUG_HFCMULTI_STATE)
				printk(KERN_DEBUG
3774 3775
				       "%s: E1 NT (id=%d) newstate %x\n",
				       __func__, hc->id, dch->state);
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		}
		switch (dch->state) {
		case (1):
			if (hc->e1_state != 1) {
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				for (i = 1; i <= 31; i++) {
					/* reset fifos on e1 activation */
					HFC_outb_nodebug(hc, R_FIFO,
3783
							 (i << 1) | 1);
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					HFC_wait_nodebug(hc);
					HFC_outb_nodebug(hc, R_INC_RES_FIFO,
3786
							 V_RES_F);
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					HFC_wait_nodebug(hc);
				}
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			}
			test_and_set_bit(FLG_ACTIVE, &dch->Flags);
			_queue_data(&dch->dev.D, PH_ACTIVATE_IND,
3792
				    MISDN_ID_ANY, 0, NULL, GFP_ATOMIC);
K
Karsten Keil 已提交
3793 3794 3795 3796 3797 3798 3799
			break;

		default:
			if (hc->e1_state != 1)
				return;
			test_and_clear_bit(FLG_ACTIVE, &dch->Flags);
			_queue_data(&dch->dev.D, PH_DEACTIVATE_IND,
3800
				    MISDN_ID_ANY, 0, NULL, GFP_ATOMIC);
K
Karsten Keil 已提交
3801 3802 3803 3804 3805 3806
		}
		hc->e1_state = dch->state;
	} else {
		if (dch->dev.D.protocol == ISDN_P_TE_S0) {
			if (debug & DEBUG_HFCMULTI_STATE)
				printk(KERN_DEBUG
3807 3808
				       "%s: S/T TE newstate %x\n",
				       __func__, dch->state);
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Karsten Keil 已提交
3809 3810 3811 3812 3813 3814 3815 3816 3817 3818 3819 3820 3821 3822 3823 3824 3825 3826 3827 3828 3829
			switch (dch->state) {
			case (0):
				l1_event(dch->l1, HW_RESET_IND);
				break;
			case (3):
				l1_event(dch->l1, HW_DEACT_IND);
				break;
			case (5):
			case (8):
				l1_event(dch->l1, ANYSIGNAL);
				break;
			case (6):
				l1_event(dch->l1, INFO2);
				break;
			case (7):
				l1_event(dch->l1, INFO4_P8);
				break;
			}
		} else {
			if (debug & DEBUG_HFCMULTI_STATE)
				printk(KERN_DEBUG "%s: S/T NT newstate %x\n",
3830
				       __func__, dch->state);
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3831 3832 3833 3834 3835
			switch (dch->state) {
			case (2):
				if (hc->chan[ch].nt_timer == 0) {
					hc->chan[ch].nt_timer = -1;
					HFC_outb(hc, R_ST_SEL,
3836
						 hc->chan[ch].port);
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3837 3838 3839
					/* undocumented: delay after R_ST_SEL */
					udelay(1);
					HFC_outb(hc, A_ST_WR_STATE, 4 |
3840
						 V_ST_LD_STA); /* G4 */
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3841 3842 3843 3844 3845 3846
					udelay(6); /* wait at least 5,21us */
					HFC_outb(hc, A_ST_WR_STATE, 4);
					dch->state = 4;
				} else {
					/* one extra count for the next event */
					hc->chan[ch].nt_timer =
3847
						nt_t1_count[poll_timer] + 1;
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Karsten Keil 已提交
3848
					HFC_outb(hc, R_ST_SEL,
3849
						 hc->chan[ch].port);
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3850 3851 3852 3853
					/* undocumented: delay after R_ST_SEL */
					udelay(1);
					/* allow G2 -> G3 transition */
					HFC_outb(hc, A_ST_WR_STATE, 2 |
3854
						 V_SET_G2_G3);
K
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3855 3856 3857 3858 3859 3860
				}
				break;
			case (1):
				hc->chan[ch].nt_timer = -1;
				test_and_clear_bit(FLG_ACTIVE, &dch->Flags);
				_queue_data(&dch->dev.D, PH_DEACTIVATE_IND,
3861
					    MISDN_ID_ANY, 0, NULL, GFP_ATOMIC);
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3862 3863 3864 3865 3866 3867 3868 3869
				break;
			case (4):
				hc->chan[ch].nt_timer = -1;
				break;
			case (3):
				hc->chan[ch].nt_timer = -1;
				test_and_set_bit(FLG_ACTIVE, &dch->Flags);
				_queue_data(&dch->dev.D, PH_ACTIVATE_IND,
3870
					    MISDN_ID_ANY, 0, NULL, GFP_ATOMIC);
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Karsten Keil 已提交
3871 3872 3873 3874 3875 3876 3877 3878 3879 3880 3881 3882 3883 3884 3885 3886 3887 3888 3889 3890
				break;
			}
		}
	}
}

/*
 * called for card mode init message
 */

static void
hfcmulti_initmode(struct dchannel *dch)
{
	struct hfc_multi *hc = dch->hw;
	u_char		a_st_wr_state, r_e1_wr_sta;
	int		i, pt;

	if (debug & DEBUG_HFCMULTI_INIT)
		printk(KERN_DEBUG "%s: entered\n", __func__);

3891 3892
	i = dch->slot;
	pt = hc->chan[i].port;
3893
	if (hc->ctype == HFC_TYPE_E1) {
3894 3895 3896 3897 3898 3899
		/* E1 */
		hc->chan[hc->dnum[pt]].slot_tx = -1;
		hc->chan[hc->dnum[pt]].slot_rx = -1;
		hc->chan[hc->dnum[pt]].conf = -1;
		if (hc->dnum[pt]) {
			mode_hfcmulti(hc, dch->slot, dch->dev.D.protocol,
3900
				      -1, 0, -1, 0);
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3901 3902 3903 3904 3905
			dch->timer.function = (void *) hfcmulti_dbusy_timer;
			dch->timer.data = (long) dch;
			init_timer(&dch->timer);
		}
		for (i = 1; i <= 31; i++) {
3906
			if (!((1 << i) & hc->bmask[pt])) /* skip unused chan */
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3907 3908 3909 3910 3911 3912
				continue;
			hc->chan[i].slot_tx = -1;
			hc->chan[i].slot_rx = -1;
			hc->chan[i].conf = -1;
			mode_hfcmulti(hc, i, ISDN_P_NONE, -1, 0, -1, 0);
		}
3913 3914 3915 3916 3917
	}
	if (hc->ctype == HFC_TYPE_E1 && pt == 0) {
		/* E1, port 0 */
		dch = hc->chan[hc->dnum[0]].dch;
		if (test_bit(HFC_CFG_REPORT_LOS, &hc->chan[hc->dnum[0]].cfg)) {
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3918 3919 3920
			HFC_outb(hc, R_LOS0, 255); /* 2 ms */
			HFC_outb(hc, R_LOS1, 255); /* 512 ms */
		}
3921
		if (test_bit(HFC_CFG_OPTICAL, &hc->chan[hc->dnum[0]].cfg)) {
K
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3922 3923 3924 3925 3926 3927 3928 3929 3930 3931 3932 3933
			HFC_outb(hc, R_RX0, 0);
			hc->hw.r_tx0 = 0 | V_OUT_EN;
		} else {
			HFC_outb(hc, R_RX0, 1);
			hc->hw.r_tx0 = 1 | V_OUT_EN;
		}
		hc->hw.r_tx1 = V_ATX | V_NTRI;
		HFC_outb(hc, R_TX0, hc->hw.r_tx0);
		HFC_outb(hc, R_TX1, hc->hw.r_tx1);
		HFC_outb(hc, R_TX_FR0, 0x00);
		HFC_outb(hc, R_TX_FR1, 0xf8);

3934
		if (test_bit(HFC_CFG_CRC4, &hc->chan[hc->dnum[0]].cfg))
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3935 3936 3937 3938
			HFC_outb(hc, R_TX_FR2, V_TX_MF | V_TX_E | V_NEG_E);

		HFC_outb(hc, R_RX_FR0, V_AUTO_RESYNC | V_AUTO_RECO | 0);

3939
		if (test_bit(HFC_CFG_CRC4, &hc->chan[hc->dnum[0]].cfg))
K
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3940 3941 3942 3943 3944
			HFC_outb(hc, R_RX_FR1, V_RX_MF | V_RX_MF_SYNC);

		if (dch->dev.D.protocol == ISDN_P_NT_E1) {
			if (debug & DEBUG_HFCMULTI_INIT)
				printk(KERN_DEBUG "%s: E1 port is NT-mode\n",
3945
				       __func__);
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3946 3947 3948 3949 3950
			r_e1_wr_sta = 0; /* G0 */
			hc->e1_getclock = 0;
		} else {
			if (debug & DEBUG_HFCMULTI_INIT)
				printk(KERN_DEBUG "%s: E1 port is TE-mode\n",
3951
				       __func__);
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Karsten Keil 已提交
3952 3953 3954 3955 3956 3957 3958 3959 3960 3961 3962 3963 3964 3965 3966
			r_e1_wr_sta = 0; /* F0 */
			hc->e1_getclock = 1;
		}
		if (test_bit(HFC_CHIP_RX_SYNC, &hc->chip))
			HFC_outb(hc, R_SYNC_OUT, V_SYNC_E1_RX);
		else
			HFC_outb(hc, R_SYNC_OUT, 0);
		if (test_bit(HFC_CHIP_E1CLOCK_GET, &hc->chip))
			hc->e1_getclock = 1;
		if (test_bit(HFC_CHIP_E1CLOCK_PUT, &hc->chip))
			hc->e1_getclock = 0;
		if (test_bit(HFC_CHIP_PCM_SLAVE, &hc->chip)) {
			/* SLAVE (clock master) */
			if (debug & DEBUG_HFCMULTI_INIT)
				printk(KERN_DEBUG
3967 3968
				       "%s: E1 port is clock master "
				       "(clock from PCM)\n", __func__);
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Karsten Keil 已提交
3969 3970 3971 3972 3973 3974
			HFC_outb(hc, R_SYNC_CTRL, V_EXT_CLK_SYNC | V_PCM_SYNC);
		} else {
			if (hc->e1_getclock) {
				/* MASTER (clock slave) */
				if (debug & DEBUG_HFCMULTI_INIT)
					printk(KERN_DEBUG
3975 3976
					       "%s: E1 port is clock slave "
					       "(clock to PCM)\n", __func__);
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Karsten Keil 已提交
3977 3978 3979 3980 3981
				HFC_outb(hc, R_SYNC_CTRL, V_SYNC_OFFS);
			} else {
				/* MASTER (clock master) */
				if (debug & DEBUG_HFCMULTI_INIT)
					printk(KERN_DEBUG "%s: E1 port is "
3982 3983 3984
					       "clock master "
					       "(clock from QUARTZ)\n",
					       __func__);
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Karsten Keil 已提交
3985
				HFC_outb(hc, R_SYNC_CTRL, V_EXT_CLK_SYNC |
3986
					 V_PCM_SYNC | V_JATT_OFF);
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Karsten Keil 已提交
3987 3988 3989 3990 3991 3992 3993 3994 3995 3996 3997 3998 3999 4000 4001
				HFC_outb(hc, R_SYNC_OUT, 0);
			}
		}
		HFC_outb(hc, R_JATT_ATT, 0x9c); /* undoc register */
		HFC_outb(hc, R_PWM_MD, V_PWM0_MD);
		HFC_outb(hc, R_PWM0, 0x50);
		HFC_outb(hc, R_PWM1, 0xff);
		/* state machine setup */
		HFC_outb(hc, R_E1_WR_STA, r_e1_wr_sta | V_E1_LD_STA);
		udelay(6); /* wait at least 5,21us */
		HFC_outb(hc, R_E1_WR_STA, r_e1_wr_sta);
		if (test_bit(HFC_CHIP_PLXSD, &hc->chip)) {
			hc->syncronized = 0;
			plxsd_checksync(hc, 0);
		}
4002 4003 4004
	}
	if (hc->ctype != HFC_TYPE_E1) {
		/* ST */
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Karsten Keil 已提交
4005 4006 4007 4008
		hc->chan[i].slot_tx = -1;
		hc->chan[i].slot_rx = -1;
		hc->chan[i].conf = -1;
		mode_hfcmulti(hc, i, dch->dev.D.protocol, -1, 0, -1, 0);
4009
		dch->timer.function = (void *) hfcmulti_dbusy_timer;
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Karsten Keil 已提交
4010 4011 4012 4013 4014 4015 4016 4017 4018 4019 4020 4021 4022 4023 4024 4025 4026
		dch->timer.data = (long) dch;
		init_timer(&dch->timer);
		hc->chan[i - 2].slot_tx = -1;
		hc->chan[i - 2].slot_rx = -1;
		hc->chan[i - 2].conf = -1;
		mode_hfcmulti(hc, i - 2, ISDN_P_NONE, -1, 0, -1, 0);
		hc->chan[i - 1].slot_tx = -1;
		hc->chan[i - 1].slot_rx = -1;
		hc->chan[i - 1].conf = -1;
		mode_hfcmulti(hc, i - 1, ISDN_P_NONE, -1, 0, -1, 0);
		/* select interface */
		HFC_outb(hc, R_ST_SEL, pt);
		/* undocumented: delay after R_ST_SEL */
		udelay(1);
		if (dch->dev.D.protocol == ISDN_P_NT_S0) {
			if (debug & DEBUG_HFCMULTI_INIT)
				printk(KERN_DEBUG
4027 4028
				       "%s: ST port %d is NT-mode\n",
				       __func__, pt);
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4029 4030 4031 4032 4033 4034 4035
			/* clock delay */
			HFC_outb(hc, A_ST_CLK_DLY, clockdelay_nt);
			a_st_wr_state = 1; /* G1 */
			hc->hw.a_st_ctrl0[pt] = V_ST_MD;
		} else {
			if (debug & DEBUG_HFCMULTI_INIT)
				printk(KERN_DEBUG
4036 4037
				       "%s: ST port %d is TE-mode\n",
				       __func__, pt);
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4038 4039 4040 4041 4042 4043 4044
			/* clock delay */
			HFC_outb(hc, A_ST_CLK_DLY, clockdelay_te);
			a_st_wr_state = 2; /* F2 */
			hc->hw.a_st_ctrl0[pt] = 0;
		}
		if (!test_bit(HFC_CFG_NONCAP_TX, &hc->chan[i].cfg))
			hc->hw.a_st_ctrl0[pt] |= V_TX_LI;
4045 4046 4047
		if (hc->ctype == HFC_TYPE_XHFC) {
			hc->hw.a_st_ctrl0[pt] |= 0x40 /* V_ST_PU_CTRL */;
			HFC_outb(hc, 0x35 /* A_ST_CTRL3 */,
4048
				 0x7c << 1 /* V_ST_PULSE */);
4049
		}
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4050 4051 4052 4053 4054 4055 4056 4057 4058 4059 4060 4061 4062 4063 4064 4065 4066 4067 4068 4069
		/* line setup */
		HFC_outb(hc, A_ST_CTRL0,  hc->hw.a_st_ctrl0[pt]);
		/* disable E-channel */
		if ((dch->dev.D.protocol == ISDN_P_NT_S0) ||
		    test_bit(HFC_CFG_DIS_ECHANNEL, &hc->chan[i].cfg))
			HFC_outb(hc, A_ST_CTRL1, V_E_IGNO);
		else
			HFC_outb(hc, A_ST_CTRL1, 0);
		/* enable B-channel receive */
		HFC_outb(hc, A_ST_CTRL2,  V_B1_RX_EN | V_B2_RX_EN);
		/* state machine setup */
		HFC_outb(hc, A_ST_WR_STATE, a_st_wr_state | V_ST_LD_STA);
		udelay(6); /* wait at least 5,21us */
		HFC_outb(hc, A_ST_WR_STATE, a_st_wr_state);
		hc->hw.r_sci_msk |= 1 << pt;
		/* state machine interrupts */
		HFC_outb(hc, R_SCI_MSK, hc->hw.r_sci_msk);
		/* unset sync on port */
		if (test_bit(HFC_CHIP_PLXSD, &hc->chip)) {
			hc->syncronized &=
4070
				~(1 << hc->chan[dch->slot].port);
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Karsten Keil 已提交
4071 4072 4073 4074 4075 4076 4077 4078 4079 4080
			plxsd_checksync(hc, 0);
		}
	}
	if (debug & DEBUG_HFCMULTI_INIT)
		printk("%s: done\n", __func__);
}


static int
open_dchannel(struct hfc_multi *hc, struct dchannel *dch,
4081
	      struct channel_req *rq)
K
Karsten Keil 已提交
4082 4083 4084 4085 4086 4087
{
	int	err = 0;
	u_long	flags;

	if (debug & DEBUG_HW_OPEN)
		printk(KERN_DEBUG "%s: dev(%d) open from %p\n", __func__,
4088
		       dch->dev.id, __builtin_return_address(0));
K
Karsten Keil 已提交
4089 4090 4091 4092
	if (rq->protocol == ISDN_P_NONE)
		return -EINVAL;
	if ((dch->dev.D.protocol != ISDN_P_NONE) &&
	    (dch->dev.D.protocol != rq->protocol)) {
K
Karsten Keil 已提交
4093 4094
		if (debug & DEBUG_HFCMULTI_MODE)
			printk(KERN_DEBUG "%s: change protocol %x to %x\n",
4095
			       __func__, dch->dev.D.protocol, rq->protocol);
K
Karsten Keil 已提交
4096
	}
K
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4097 4098
	if ((dch->dev.D.protocol == ISDN_P_TE_S0) &&
	    (rq->protocol != ISDN_P_TE_S0))
K
Karsten Keil 已提交
4099 4100 4101 4102 4103 4104 4105 4106 4107 4108 4109 4110
		l1_event(dch->l1, CLOSE_CHANNEL);
	if (dch->dev.D.protocol != rq->protocol) {
		if (rq->protocol == ISDN_P_TE_S0) {
			err = create_l1(dch, hfcm_l1callback);
			if (err)
				return err;
		}
		dch->dev.D.protocol = rq->protocol;
		spin_lock_irqsave(&hc->lock, flags);
		hfcmulti_initmode(dch);
		spin_unlock_irqrestore(&hc->lock, flags);
	}
4111
	if (test_bit(FLG_ACTIVE, &dch->Flags))
K
Karsten Keil 已提交
4112
		_queue_data(&dch->dev.D, PH_ACTIVATE_IND, MISDN_ID_ANY,
4113
			    0, NULL, GFP_KERNEL);
K
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4114 4115 4116 4117 4118 4119 4120 4121
	rq->ch = &dch->dev.D;
	if (!try_module_get(THIS_MODULE))
		printk(KERN_WARNING "%s:cannot get module\n", __func__);
	return 0;
}

static int
open_bchannel(struct hfc_multi *hc, struct dchannel *dch,
4122
	      struct channel_req *rq)
K
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4123 4124 4125 4126
{
	struct bchannel	*bch;
	int		ch;

K
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4127
	if (!test_channelmap(rq->adr.channel, dch->dev.channelmap))
K
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4128 4129 4130
		return -EINVAL;
	if (rq->protocol == ISDN_P_NONE)
		return -EINVAL;
4131
	if (hc->ctype == HFC_TYPE_E1)
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4132 4133 4134 4135 4136 4137
		ch = rq->adr.channel;
	else
		ch = (rq->adr.channel - 1) + (dch->slot - 2);
	bch = hc->chan[ch].bch;
	if (!bch) {
		printk(KERN_ERR "%s:internal error ch %d has no bch\n",
4138
		       __func__, ch);
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4139 4140 4141 4142
		return -EINVAL;
	}
	if (test_and_set_bit(FLG_OPEN, &bch->Flags))
		return -EBUSY; /* b-channel can be only open once */
4143
	test_and_clear_bit(FLG_FILLEMPTY, &bch->Flags);
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4144 4145 4146 4147 4148 4149 4150 4151 4152 4153 4154 4155 4156 4157
	bch->ch.protocol = rq->protocol;
	hc->chan[ch].rx_off = 0;
	rq->ch = &bch->ch;
	if (!try_module_get(THIS_MODULE))
		printk(KERN_WARNING "%s:cannot get module\n", __func__);
	return 0;
}

/*
 * device control function
 */
static int
channel_dctrl(struct dchannel *dch, struct mISDN_ctrl_req *cq)
{
4158
	struct hfc_multi	*hc = dch->hw;
K
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4159
	int	ret = 0;
4160
	int	wd_mode, wd_cnt;
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4161 4162 4163

	switch (cq->op) {
	case MISDN_CTRL_GETOP:
4164 4165 4166 4167 4168 4169
		cq->op = MISDN_CTRL_HFC_OP;
		break;
	case MISDN_CTRL_HFC_WD_INIT: /* init the watchdog */
		wd_cnt = cq->p1 & 0xf;
		wd_mode = !!(cq->p1 >> 4);
		if (debug & DEBUG_HFCMULTI_MSG)
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4170
			printk(KERN_DEBUG "%s: MISDN_CTRL_HFC_WD_INIT mode %s"
4171 4172
			       ", counter 0x%x\n", __func__,
			       wd_mode ? "AUTO" : "MANUAL", wd_cnt);
4173 4174 4175 4176 4177 4178 4179 4180 4181
		/* set the watchdog timer */
		HFC_outb(hc, R_TI_WD, poll_timer | (wd_cnt << 4));
		hc->hw.r_bert_wd_md = (wd_mode ? V_AUTO_WD_RES : 0);
		if (hc->ctype == HFC_TYPE_XHFC)
			hc->hw.r_bert_wd_md |= 0x40 /* V_WD_EN */;
		/* init the watchdog register and reset the counter */
		HFC_outb(hc, R_BERT_WD_MD, hc->hw.r_bert_wd_md | V_WD_RES);
		if (test_bit(HFC_CHIP_PLXSD, &hc->chip)) {
			/* enable the watchdog output for Speech-Design */
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4182 4183
			HFC_outb(hc, R_GPIO_SEL,  V_GPIO_SEL7);
			HFC_outb(hc, R_GPIO_EN1,  V_GPIO_EN15);
4184 4185 4186 4187 4188 4189 4190
			HFC_outb(hc, R_GPIO_OUT1, 0);
			HFC_outb(hc, R_GPIO_OUT1, V_GPIO_OUT15);
		}
		break;
	case MISDN_CTRL_HFC_WD_RESET: /* reset the watchdog counter */
		if (debug & DEBUG_HFCMULTI_MSG)
			printk(KERN_DEBUG "%s: MISDN_CTRL_HFC_WD_RESET\n",
4191
			       __func__);
4192
		HFC_outb(hc, R_BERT_WD_MD, hc->hw.r_bert_wd_md | V_WD_RES);
K
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4193 4194 4195
		break;
	default:
		printk(KERN_WARNING "%s: unknown Op %x\n",
4196
		       __func__, cq->op);
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4197 4198 4199 4200 4201 4202 4203 4204 4205 4206 4207 4208 4209 4210 4211 4212 4213 4214
		ret = -EINVAL;
		break;
	}
	return ret;
}

static int
hfcm_dctrl(struct mISDNchannel *ch, u_int cmd, void *arg)
{
	struct mISDNdevice	*dev = container_of(ch, struct mISDNdevice, D);
	struct dchannel		*dch = container_of(dev, struct dchannel, dev);
	struct hfc_multi	*hc = dch->hw;
	struct channel_req	*rq;
	int			err = 0;
	u_long			flags;

	if (dch->debug & DEBUG_HW)
		printk(KERN_DEBUG "%s: cmd:%x %p\n",
4215
		       __func__, cmd, arg);
K
Karsten Keil 已提交
4216 4217 4218 4219 4220 4221
	switch (cmd) {
	case OPEN_CHANNEL:
		rq = arg;
		switch (rq->protocol) {
		case ISDN_P_TE_S0:
		case ISDN_P_NT_S0:
4222
			if (hc->ctype == HFC_TYPE_E1) {
K
Karsten Keil 已提交
4223 4224 4225 4226 4227 4228 4229
				err = -EINVAL;
				break;
			}
			err = open_dchannel(hc, dch, rq); /* locked there */
			break;
		case ISDN_P_TE_E1:
		case ISDN_P_NT_E1:
4230
			if (hc->ctype != HFC_TYPE_E1) {
K
Karsten Keil 已提交
4231 4232 4233 4234 4235 4236 4237 4238 4239 4240 4241 4242 4243 4244
				err = -EINVAL;
				break;
			}
			err = open_dchannel(hc, dch, rq); /* locked there */
			break;
		default:
			spin_lock_irqsave(&hc->lock, flags);
			err = open_bchannel(hc, dch, rq);
			spin_unlock_irqrestore(&hc->lock, flags);
		}
		break;
	case CLOSE_CHANNEL:
		if (debug & DEBUG_HW_OPEN)
			printk(KERN_DEBUG "%s: dev(%d) close from %p\n",
4245 4246
			       __func__, dch->dev.id,
			       __builtin_return_address(0));
K
Karsten Keil 已提交
4247 4248 4249 4250 4251 4252 4253 4254 4255 4256
		module_put(THIS_MODULE);
		break;
	case CONTROL_CHANNEL:
		spin_lock_irqsave(&hc->lock, flags);
		err = channel_dctrl(dch, arg);
		spin_unlock_irqrestore(&hc->lock, flags);
		break;
	default:
		if (dch->debug & DEBUG_HW)
			printk(KERN_DEBUG "%s: unknown command %x\n",
4257
			       __func__, cmd);
K
Karsten Keil 已提交
4258 4259 4260 4261 4262
		err = -EINVAL;
	}
	return err;
}

4263 4264 4265 4266 4267 4268 4269 4270 4271
static int
clockctl(void *priv, int enable)
{
	struct hfc_multi *hc = priv;

	hc->iclock_on = enable;
	return 0;
}

K
Karsten Keil 已提交
4272 4273 4274 4275 4276 4277 4278 4279 4280 4281 4282 4283 4284
/*
 * initialize the card
 */

/*
 * start timer irq, wait some time and check if we have interrupts.
 * if not, reset chip and try again.
 */
static int
init_card(struct hfc_multi *hc)
{
	int	err = -EIO;
	u_long	flags;
4285
	void	__iomem *plx_acc;
K
Karsten Keil 已提交
4286 4287 4288 4289 4290 4291 4292 4293 4294 4295 4296
	u_long	plx_flags;

	if (debug & DEBUG_HFCMULTI_INIT)
		printk(KERN_DEBUG "%s: entered\n", __func__);

	spin_lock_irqsave(&hc->lock, flags);
	/* set interrupts but leave global interrupt disabled */
	hc->hw.r_irq_ctrl = V_FIFO_IRQ;
	disable_hwirq(hc);
	spin_unlock_irqrestore(&hc->lock, flags);

4297
	if (request_irq(hc->irq, hfcmulti_interrupt, IRQF_SHARED,
4298
			"HFC-multi", hc)) {
K
Karsten Keil 已提交
4299
		printk(KERN_WARNING "mISDN: Could not get interrupt %d.\n",
4300
		       hc->irq);
4301
		hc->irq = 0;
K
Karsten Keil 已提交
4302 4303 4304 4305 4306
		return -EIO;
	}

	if (test_bit(HFC_CHIP_PLXSD, &hc->chip)) {
		spin_lock_irqsave(&plx_lock, plx_flags);
4307
		plx_acc = hc->plx_membase + PLX_INTCSR;
K
Karsten Keil 已提交
4308
		writew((PLX_INTCSR_PCIINT_ENABLE | PLX_INTCSR_LINTI1_ENABLE),
4309
		       plx_acc); /* enable PCI & LINT1 irq */
K
Karsten Keil 已提交
4310 4311 4312 4313 4314
		spin_unlock_irqrestore(&plx_lock, plx_flags);
	}

	if (debug & DEBUG_HFCMULTI_INIT)
		printk(KERN_DEBUG "%s: IRQ %d count %d\n",
4315
		       __func__, hc->irq, hc->irqcnt);
K
Karsten Keil 已提交
4316 4317 4318 4319 4320
	err = init_chip(hc);
	if (err)
		goto error;
	/*
	 * Finally enable IRQ output
4321
	 * this is only allowed, if an IRQ routine is already
K
Karsten Keil 已提交
4322 4323 4324 4325 4326 4327 4328
	 * established for this HFC, so don't do that earlier
	 */
	spin_lock_irqsave(&hc->lock, flags);
	enable_hwirq(hc);
	spin_unlock_irqrestore(&hc->lock, flags);
	/* printk(KERN_DEBUG "no master irq set!!!\n"); */
	set_current_state(TASK_UNINTERRUPTIBLE);
4329
	schedule_timeout((100 * HZ) / 1000); /* Timeout 100ms */
K
Karsten Keil 已提交
4330 4331 4332 4333 4334 4335
	/* turn IRQ off until chip is completely initialized */
	spin_lock_irqsave(&hc->lock, flags);
	disable_hwirq(hc);
	spin_unlock_irqrestore(&hc->lock, flags);
	if (debug & DEBUG_HFCMULTI_INIT)
		printk(KERN_DEBUG "%s: IRQ %d count %d\n",
4336
		       __func__, hc->irq, hc->irqcnt);
K
Karsten Keil 已提交
4337 4338 4339 4340 4341 4342 4343 4344 4345 4346 4347 4348
	if (hc->irqcnt) {
		if (debug & DEBUG_HFCMULTI_INIT)
			printk(KERN_DEBUG "%s: done\n", __func__);

		return 0;
	}
	if (test_bit(HFC_CHIP_PCM_SLAVE, &hc->chip)) {
		printk(KERN_INFO "ignoring missing interrupts\n");
		return 0;
	}

	printk(KERN_ERR "HFC PCI: IRQ(%d) getting no interrupts during init.\n",
4349
	       hc->irq);
K
Karsten Keil 已提交
4350 4351 4352 4353 4354 4355

	err = -EIO;

error:
	if (test_bit(HFC_CHIP_PLXSD, &hc->chip)) {
		spin_lock_irqsave(&plx_lock, plx_flags);
4356
		plx_acc = hc->plx_membase + PLX_INTCSR;
K
Karsten Keil 已提交
4357 4358 4359 4360 4361
		writew(0x00, plx_acc); /*disable IRQs*/
		spin_unlock_irqrestore(&plx_lock, plx_flags);
	}

	if (debug & DEBUG_HFCMULTI_INIT)
K
Karsten Keil 已提交
4362
		printk(KERN_DEBUG "%s: free irq %d\n", __func__, hc->irq);
K
Karsten Keil 已提交
4363 4364 4365 4366 4367 4368 4369 4370 4371 4372 4373 4374 4375 4376 4377 4378
	if (hc->irq) {
		free_irq(hc->irq, hc);
		hc->irq = 0;
	}

	if (debug & DEBUG_HFCMULTI_INIT)
		printk(KERN_DEBUG "%s: done (err=%d)\n", __func__, err);
	return err;
}

/*
 * find pci device and set it up
 */

static int
setup_pci(struct hfc_multi *hc, struct pci_dev *pdev,
4379
	  const struct pci_device_id *ent)
K
Karsten Keil 已提交
4380 4381 4382 4383
{
	struct hm_map	*m = (struct hm_map *)ent->driver_data;

	printk(KERN_INFO
4384 4385
	       "HFC-multi: card manufacturer: '%s' card name: '%s' clock: %s\n",
	       m->vendor_name, m->card_name, m->clock2 ? "double" : "normal");
K
Karsten Keil 已提交
4386 4387 4388 4389 4390 4391 4392 4393 4394 4395 4396 4397 4398 4399 4400 4401 4402 4403 4404 4405 4406 4407 4408 4409

	hc->pci_dev = pdev;
	if (m->clock2)
		test_and_set_bit(HFC_CHIP_CLOCK2, &hc->chip);

	if (ent->device == 0xB410) {
		test_and_set_bit(HFC_CHIP_B410P, &hc->chip);
		test_and_set_bit(HFC_CHIP_PCM_MASTER, &hc->chip);
		test_and_clear_bit(HFC_CHIP_PCM_SLAVE, &hc->chip);
		hc->slots = 32;
	}

	if (hc->pci_dev->irq <= 0) {
		printk(KERN_WARNING "HFC-multi: No IRQ for PCI card found.\n");
		return -EIO;
	}
	if (pci_enable_device(hc->pci_dev)) {
		printk(KERN_WARNING "HFC-multi: Error enabling PCI card.\n");
		return -EIO;
	}
	hc->leds = m->leds;
	hc->ledstate = 0xAFFEAFFE;
	hc->opticalsupport = m->opticalsupport;

4410 4411 4412 4413
	hc->pci_iobase = 0;
	hc->pci_membase = NULL;
	hc->plx_membase = NULL;

K
Karsten Keil 已提交
4414 4415 4416 4417 4418 4419 4420 4421 4422 4423 4424 4425 4426 4427 4428 4429 4430 4431
	/* set memory access methods */
	if (m->io_mode) /* use mode from card config */
		hc->io_mode = m->io_mode;
	switch (hc->io_mode) {
	case HFC_IO_MODE_PLXSD:
		test_and_set_bit(HFC_CHIP_PLXSD, &hc->chip);
		hc->slots = 128; /* required */
		hc->HFC_outb = HFC_outb_pcimem;
		hc->HFC_inb = HFC_inb_pcimem;
		hc->HFC_inw = HFC_inw_pcimem;
		hc->HFC_wait = HFC_wait_pcimem;
		hc->read_fifo = read_fifo_pcimem;
		hc->write_fifo = write_fifo_pcimem;
		hc->plx_origmembase =  hc->pci_dev->resource[0].start;
		/* MEMBASE 1 is PLX PCI Bridge */

		if (!hc->plx_origmembase) {
			printk(KERN_WARNING
4432
			       "HFC-multi: No IO-Memory for PCI PLX bridge found\n");
K
Karsten Keil 已提交
4433 4434 4435 4436 4437 4438 4439
			pci_disable_device(hc->pci_dev);
			return -EIO;
		}

		hc->plx_membase = ioremap(hc->plx_origmembase, 0x80);
		if (!hc->plx_membase) {
			printk(KERN_WARNING
4440 4441
			       "HFC-multi: failed to remap plx address space. "
			       "(internal error)\n");
K
Karsten Keil 已提交
4442 4443 4444 4445
			pci_disable_device(hc->pci_dev);
			return -EIO;
		}
		printk(KERN_INFO
4446 4447
		       "HFC-multi: plx_membase:%#lx plx_origmembase:%#lx\n",
		       (u_long)hc->plx_membase, hc->plx_origmembase);
K
Karsten Keil 已提交
4448 4449

		hc->pci_origmembase =  hc->pci_dev->resource[2].start;
4450
		/* MEMBASE 1 is PLX PCI Bridge */
K
Karsten Keil 已提交
4451 4452
		if (!hc->pci_origmembase) {
			printk(KERN_WARNING
4453
			       "HFC-multi: No IO-Memory for PCI card found\n");
K
Karsten Keil 已提交
4454 4455 4456 4457 4458 4459 4460
			pci_disable_device(hc->pci_dev);
			return -EIO;
		}

		hc->pci_membase = ioremap(hc->pci_origmembase, 0x400);
		if (!hc->pci_membase) {
			printk(KERN_WARNING "HFC-multi: failed to remap io "
4461
			       "address space. (internal error)\n");
K
Karsten Keil 已提交
4462 4463 4464 4465 4466
			pci_disable_device(hc->pci_dev);
			return -EIO;
		}

		printk(KERN_INFO
4467 4468 4469 4470
		       "card %d: defined at MEMBASE %#lx (%#lx) IRQ %d HZ %d "
		       "leds-type %d\n",
		       hc->id, (u_long)hc->pci_membase, hc->pci_origmembase,
		       hc->pci_dev->irq, HZ, hc->leds);
K
Karsten Keil 已提交
4471 4472 4473
		pci_write_config_word(hc->pci_dev, PCI_COMMAND, PCI_ENA_MEMIO);
		break;
	case HFC_IO_MODE_PCIMEM:
4474 4475 4476 4477 4478 4479
		hc->HFC_outb = HFC_outb_pcimem;
		hc->HFC_inb = HFC_inb_pcimem;
		hc->HFC_inw = HFC_inw_pcimem;
		hc->HFC_wait = HFC_wait_pcimem;
		hc->read_fifo = read_fifo_pcimem;
		hc->write_fifo = write_fifo_pcimem;
K
Karsten Keil 已提交
4480 4481 4482
		hc->pci_origmembase = hc->pci_dev->resource[1].start;
		if (!hc->pci_origmembase) {
			printk(KERN_WARNING
4483
			       "HFC-multi: No IO-Memory for PCI card found\n");
K
Karsten Keil 已提交
4484 4485 4486 4487 4488 4489 4490
			pci_disable_device(hc->pci_dev);
			return -EIO;
		}

		hc->pci_membase = ioremap(hc->pci_origmembase, 256);
		if (!hc->pci_membase) {
			printk(KERN_WARNING
4491 4492
			       "HFC-multi: failed to remap io address space. "
			       "(internal error)\n");
K
Karsten Keil 已提交
4493 4494 4495
			pci_disable_device(hc->pci_dev);
			return -EIO;
		}
4496
		printk(KERN_INFO "card %d: defined at MEMBASE %#lx (%#lx) IRQ "
4497 4498
		       "%d HZ %d leds-type %d\n", hc->id, (u_long)hc->pci_membase,
		       hc->pci_origmembase, hc->pci_dev->irq, HZ, hc->leds);
K
Karsten Keil 已提交
4499 4500 4501
		pci_write_config_word(hc->pci_dev, PCI_COMMAND, PCI_ENA_MEMIO);
		break;
	case HFC_IO_MODE_REGIO:
4502 4503 4504 4505 4506 4507
		hc->HFC_outb = HFC_outb_regio;
		hc->HFC_inb = HFC_inb_regio;
		hc->HFC_inw = HFC_inw_regio;
		hc->HFC_wait = HFC_wait_regio;
		hc->read_fifo = read_fifo_regio;
		hc->write_fifo = write_fifo_regio;
K
Karsten Keil 已提交
4508 4509 4510
		hc->pci_iobase = (u_int) hc->pci_dev->resource[0].start;
		if (!hc->pci_iobase) {
			printk(KERN_WARNING
4511
			       "HFC-multi: No IO for PCI card found\n");
K
Karsten Keil 已提交
4512 4513 4514 4515 4516 4517
			pci_disable_device(hc->pci_dev);
			return -EIO;
		}

		if (!request_region(hc->pci_iobase, 8, "hfcmulti")) {
			printk(KERN_WARNING "HFC-multi: failed to request "
4518 4519
			       "address space at 0x%08lx (internal error)\n",
			       hc->pci_iobase);
K
Karsten Keil 已提交
4520 4521 4522 4523 4524
			pci_disable_device(hc->pci_dev);
			return -EIO;
		}

		printk(KERN_INFO
4525 4526 4527
		       "%s %s: defined at IOBASE %#x IRQ %d HZ %d leds-type %d\n",
		       m->vendor_name, m->card_name, (u_int) hc->pci_iobase,
		       hc->pci_dev->irq, HZ, hc->leds);
K
Karsten Keil 已提交
4528 4529 4530 4531 4532 4533 4534 4535 4536 4537 4538 4539 4540 4541 4542 4543 4544 4545 4546 4547 4548 4549 4550 4551 4552 4553 4554 4555 4556 4557 4558 4559
		pci_write_config_word(hc->pci_dev, PCI_COMMAND, PCI_ENA_REGIO);
		break;
	default:
		printk(KERN_WARNING "HFC-multi: Invalid IO mode.\n");
		pci_disable_device(hc->pci_dev);
		return -EIO;
	}

	pci_set_drvdata(hc->pci_dev, hc);

	/* At this point the needed PCI config is done */
	/* fifos are still not enabled */
	return 0;
}


/*
 * remove port
 */

static void
release_port(struct hfc_multi *hc, struct dchannel *dch)
{
	int	pt, ci, i = 0;
	u_long	flags;
	struct bchannel *pb;

	ci = dch->slot;
	pt = hc->chan[ci].port;

	if (debug & DEBUG_HFCMULTI_INIT)
		printk(KERN_DEBUG "%s: entered for port %d\n",
4560
		       __func__, pt + 1);
K
Karsten Keil 已提交
4561 4562 4563

	if (pt >= hc->ports) {
		printk(KERN_WARNING "%s: ERROR port out of range (%d).\n",
4564
		       __func__, pt + 1);
K
Karsten Keil 已提交
4565 4566 4567 4568 4569
		return;
	}

	if (debug & DEBUG_HFCMULTI_INIT)
		printk(KERN_DEBUG "%s: releasing port=%d\n",
4570
		       __func__, pt + 1);
K
Karsten Keil 已提交
4571 4572 4573 4574 4575 4576 4577 4578 4579 4580 4581 4582 4583 4584 4585 4586 4587 4588

	if (dch->dev.D.protocol == ISDN_P_TE_S0)
		l1_event(dch->l1, CLOSE_CHANNEL);

	hc->chan[ci].dch = NULL;

	if (hc->created[pt]) {
		hc->created[pt] = 0;
		mISDN_unregister_device(&dch->dev);
	}

	spin_lock_irqsave(&hc->lock, flags);

	if (dch->timer.function) {
		del_timer(&dch->timer);
		dch->timer.function = NULL;
	}

4589
	if (hc->ctype == HFC_TYPE_E1) { /* E1 */
K
Karsten Keil 已提交
4590 4591 4592 4593 4594 4595 4596
		/* remove sync */
		if (test_bit(HFC_CHIP_PLXSD, &hc->chip)) {
			hc->syncronized = 0;
			plxsd_checksync(hc, 1);
		}
		/* free channels */
		for (i = 0; i <= 31; i++) {
4597 4598
			if (!((1 << i) & hc->bmask[pt])) /* skip unused chan */
				continue;
K
Karsten Keil 已提交
4599 4600 4601
			if (hc->chan[i].bch) {
				if (debug & DEBUG_HFCMULTI_INIT)
					printk(KERN_DEBUG
4602 4603
					       "%s: free port %d channel %d\n",
					       __func__, hc->chan[i].port + 1, i);
K
Karsten Keil 已提交
4604 4605 4606 4607 4608 4609 4610 4611 4612 4613 4614 4615 4616
				pb = hc->chan[i].bch;
				hc->chan[i].bch = NULL;
				spin_unlock_irqrestore(&hc->lock, flags);
				mISDN_freebchannel(pb);
				kfree(pb);
				kfree(hc->chan[i].coeff);
				spin_lock_irqsave(&hc->lock, flags);
			}
		}
	} else {
		/* remove sync */
		if (test_bit(HFC_CHIP_PLXSD, &hc->chip)) {
			hc->syncronized &=
4617
				~(1 << hc->chan[ci].port);
K
Karsten Keil 已提交
4618 4619 4620 4621 4622 4623
			plxsd_checksync(hc, 1);
		}
		/* free channels */
		if (hc->chan[ci - 2].bch) {
			if (debug & DEBUG_HFCMULTI_INIT)
				printk(KERN_DEBUG
4624 4625 4626
				       "%s: free port %d channel %d\n",
				       __func__, hc->chan[ci - 2].port + 1,
				       ci - 2);
K
Karsten Keil 已提交
4627 4628 4629 4630 4631 4632 4633 4634 4635 4636 4637
			pb = hc->chan[ci - 2].bch;
			hc->chan[ci - 2].bch = NULL;
			spin_unlock_irqrestore(&hc->lock, flags);
			mISDN_freebchannel(pb);
			kfree(pb);
			kfree(hc->chan[ci - 2].coeff);
			spin_lock_irqsave(&hc->lock, flags);
		}
		if (hc->chan[ci - 1].bch) {
			if (debug & DEBUG_HFCMULTI_INIT)
				printk(KERN_DEBUG
4638 4639 4640
				       "%s: free port %d channel %d\n",
				       __func__, hc->chan[ci - 1].port + 1,
				       ci - 1);
K
Karsten Keil 已提交
4641 4642 4643 4644 4645 4646 4647 4648 4649 4650 4651 4652 4653
			pb = hc->chan[ci - 1].bch;
			hc->chan[ci - 1].bch = NULL;
			spin_unlock_irqrestore(&hc->lock, flags);
			mISDN_freebchannel(pb);
			kfree(pb);
			kfree(hc->chan[ci - 1].coeff);
			spin_lock_irqsave(&hc->lock, flags);
		}
	}

	spin_unlock_irqrestore(&hc->lock, flags);

	if (debug & DEBUG_HFCMULTI_INIT)
4654 4655
		printk(KERN_DEBUG "%s: free port %d channel D(%d)\n", __func__,
			pt+1, ci);
K
Karsten Keil 已提交
4656 4657 4658 4659 4660 4661 4662 4663 4664 4665 4666 4667 4668 4669
	mISDN_freedchannel(dch);
	kfree(dch);

	if (debug & DEBUG_HFCMULTI_INIT)
		printk(KERN_DEBUG "%s: done!\n", __func__);
}

static void
release_card(struct hfc_multi *hc)
{
	u_long	flags;
	int	ch;

	if (debug & DEBUG_HFCMULTI_INIT)
K
Karsten Keil 已提交
4670
		printk(KERN_DEBUG "%s: release card (%d) entered\n",
4671
		       __func__, hc->id);
K
Karsten Keil 已提交
4672

4673 4674 4675 4676
	/* unregister clock source */
	if (hc->iclock)
		mISDN_unregister_clock(hc->iclock);

4677
	/* disable and free irq */
K
Karsten Keil 已提交
4678 4679 4680 4681
	spin_lock_irqsave(&hc->lock, flags);
	disable_hwirq(hc);
	spin_unlock_irqrestore(&hc->lock, flags);
	udelay(1000);
4682 4683 4684 4685 4686 4687
	if (hc->irq) {
		if (debug & DEBUG_HFCMULTI_INIT)
			printk(KERN_DEBUG "%s: free irq %d (hc=%p)\n",
			    __func__, hc->irq, hc);
		free_irq(hc->irq, hc);
		hc->irq = 0;
K
Karsten Keil 已提交
4688

4689
	}
K
Karsten Keil 已提交
4690 4691 4692 4693

	/* disable D-channels & B-channels */
	if (debug & DEBUG_HFCMULTI_INIT)
		printk(KERN_DEBUG "%s: disable all channels (d and b)\n",
4694
		       __func__);
K
Karsten Keil 已提交
4695 4696 4697 4698 4699
	for (ch = 0; ch <= 31; ch++) {
		if (hc->chan[ch].dch)
			release_port(hc, hc->chan[ch].dch);
	}

4700 4701 4702
	/* dimm leds */
	if (hc->leds)
		hfcmulti_leds(hc);
K
Karsten Keil 已提交
4703

4704
	/* release hardware */
K
Karsten Keil 已提交
4705 4706 4707
	release_io_hfcmulti(hc);

	if (debug & DEBUG_HFCMULTI_INIT)
K
Karsten Keil 已提交
4708
		printk(KERN_DEBUG "%s: remove instance from list\n",
4709
		       __func__);
K
Karsten Keil 已提交
4710 4711 4712
	list_del(&hc->list);

	if (debug & DEBUG_HFCMULTI_INIT)
K
Karsten Keil 已提交
4713
		printk(KERN_DEBUG "%s: delete instance\n", __func__);
K
Karsten Keil 已提交
4714 4715 4716 4717
	if (hc == syncmaster)
		syncmaster = NULL;
	kfree(hc);
	if (debug & DEBUG_HFCMULTI_INIT)
K
Karsten Keil 已提交
4718
		printk(KERN_DEBUG "%s: card successfully removed\n",
4719
		       __func__);
K
Karsten Keil 已提交
4720 4721
}

4722 4723
static void
init_e1_port_hw(struct hfc_multi *hc, struct hm_map *m)
K
Karsten Keil 已提交
4724 4725 4726 4727 4728
{
	/* set optical line type */
	if (port[Port_cnt] & 0x001) {
		if (!m->opticalsupport)  {
			printk(KERN_INFO
4729 4730
			       "This board has no optical "
			       "support\n");
K
Karsten Keil 已提交
4731 4732 4733
		} else {
			if (debug & DEBUG_HFCMULTI_INIT)
				printk(KERN_DEBUG
4734 4735 4736 4737 4738
				       "%s: PORT set optical "
				       "interfacs: card(%d) "
				       "port(%d)\n",
				       __func__,
				       HFC_cnt + 1, 1);
K
Karsten Keil 已提交
4739
			test_and_set_bit(HFC_CFG_OPTICAL,
4740
			    &hc->chan[hc->dnum[0]].cfg);
K
Karsten Keil 已提交
4741 4742 4743 4744 4745 4746
		}
	}
	/* set LOS report */
	if (port[Port_cnt] & 0x004) {
		if (debug & DEBUG_HFCMULTI_INIT)
			printk(KERN_DEBUG "%s: PORT set "
4747 4748
			       "LOS report: card(%d) port(%d)\n",
			       __func__, HFC_cnt + 1, 1);
K
Karsten Keil 已提交
4749
		test_and_set_bit(HFC_CFG_REPORT_LOS,
4750
		    &hc->chan[hc->dnum[0]].cfg);
K
Karsten Keil 已提交
4751 4752 4753 4754 4755
	}
	/* set AIS report */
	if (port[Port_cnt] & 0x008) {
		if (debug & DEBUG_HFCMULTI_INIT)
			printk(KERN_DEBUG "%s: PORT set "
4756 4757
			       "AIS report: card(%d) port(%d)\n",
			       __func__, HFC_cnt + 1, 1);
K
Karsten Keil 已提交
4758
		test_and_set_bit(HFC_CFG_REPORT_AIS,
4759
		    &hc->chan[hc->dnum[0]].cfg);
K
Karsten Keil 已提交
4760 4761 4762 4763 4764
	}
	/* set SLIP report */
	if (port[Port_cnt] & 0x010) {
		if (debug & DEBUG_HFCMULTI_INIT)
			printk(KERN_DEBUG
4765 4766 4767
			       "%s: PORT set SLIP report: "
			       "card(%d) port(%d)\n",
			       __func__, HFC_cnt + 1, 1);
K
Karsten Keil 已提交
4768
		test_and_set_bit(HFC_CFG_REPORT_SLIP,
4769
		    &hc->chan[hc->dnum[0]].cfg);
K
Karsten Keil 已提交
4770 4771 4772 4773 4774
	}
	/* set RDI report */
	if (port[Port_cnt] & 0x020) {
		if (debug & DEBUG_HFCMULTI_INIT)
			printk(KERN_DEBUG
4775 4776 4777
			       "%s: PORT set RDI report: "
			       "card(%d) port(%d)\n",
			       __func__, HFC_cnt + 1, 1);
K
Karsten Keil 已提交
4778
		test_and_set_bit(HFC_CFG_REPORT_RDI,
4779
		    &hc->chan[hc->dnum[0]].cfg);
K
Karsten Keil 已提交
4780 4781 4782 4783 4784
	}
	/* set CRC-4 Mode */
	if (!(port[Port_cnt] & 0x100)) {
		if (debug & DEBUG_HFCMULTI_INIT)
			printk(KERN_DEBUG "%s: PORT turn on CRC4 report:"
4785 4786
			       " card(%d) port(%d)\n",
			       __func__, HFC_cnt + 1, 1);
K
Karsten Keil 已提交
4787
		test_and_set_bit(HFC_CFG_CRC4,
4788
		    &hc->chan[hc->dnum[0]].cfg);
K
Karsten Keil 已提交
4789 4790 4791
	} else {
		if (debug & DEBUG_HFCMULTI_INIT)
			printk(KERN_DEBUG "%s: PORT turn off CRC4"
4792 4793
			       " report: card(%d) port(%d)\n",
			       __func__, HFC_cnt + 1, 1);
K
Karsten Keil 已提交
4794 4795 4796 4797 4798
	}
	/* set forced clock */
	if (port[Port_cnt] & 0x0200) {
		if (debug & DEBUG_HFCMULTI_INIT)
			printk(KERN_DEBUG "%s: PORT force getting clock from "
4799 4800
			       "E1: card(%d) port(%d)\n",
			       __func__, HFC_cnt + 1, 1);
K
Karsten Keil 已提交
4801 4802
		test_and_set_bit(HFC_CHIP_E1CLOCK_GET, &hc->chip);
	} else
4803 4804 4805 4806 4807 4808 4809
		if (port[Port_cnt] & 0x0400) {
			if (debug & DEBUG_HFCMULTI_INIT)
				printk(KERN_DEBUG "%s: PORT force putting clock to "
				       "E1: card(%d) port(%d)\n",
				       __func__, HFC_cnt + 1, 1);
			test_and_set_bit(HFC_CHIP_E1CLOCK_PUT, &hc->chip);
		}
K
Karsten Keil 已提交
4810 4811 4812 4813
	/* set JATT PLL */
	if (port[Port_cnt] & 0x0800) {
		if (debug & DEBUG_HFCMULTI_INIT)
			printk(KERN_DEBUG "%s: PORT disable JATT PLL on "
4814 4815
			       "E1: card(%d) port(%d)\n",
			       __func__, HFC_cnt + 1, 1);
K
Karsten Keil 已提交
4816 4817 4818 4819
		test_and_set_bit(HFC_CHIP_RX_SYNC, &hc->chip);
	}
	/* set elastic jitter buffer */
	if (port[Port_cnt] & 0x3000) {
4820
		hc->chan[hc->dnum[0]].jitter = (port[Port_cnt]>>12) & 0x3;
K
Karsten Keil 已提交
4821 4822
		if (debug & DEBUG_HFCMULTI_INIT)
			printk(KERN_DEBUG
4823 4824
			       "%s: PORT set elastic "
			       "buffer to %d: card(%d) port(%d)\n",
4825
			    __func__, hc->chan[hc->dnum[0]].jitter,
4826
			       HFC_cnt + 1, 1);
K
Karsten Keil 已提交
4827
	} else
4828 4829 4830 4831 4832 4833 4834 4835 4836 4837 4838 4839 4840 4841 4842 4843 4844 4845 4846 4847 4848 4849 4850 4851 4852 4853 4854 4855 4856 4857 4858 4859 4860 4861 4862 4863 4864 4865 4866 4867 4868 4869 4870 4871 4872 4873 4874 4875 4876 4877 4878 4879 4880 4881 4882 4883 4884 4885 4886 4887 4888 4889 4890 4891 4892 4893 4894
		hc->chan[hc->dnum[0]].jitter = 2; /* default */
}

static int
init_e1_port(struct hfc_multi *hc, struct hm_map *m, int pt)
{
	struct dchannel	*dch;
	struct bchannel	*bch;
	int		ch, ret = 0;
	char		name[MISDN_MAX_IDLEN];
	int		bcount = 0;

	dch = kzalloc(sizeof(struct dchannel), GFP_KERNEL);
	if (!dch)
		return -ENOMEM;
	dch->debug = debug;
	mISDN_initdchannel(dch, MAX_DFRAME_LEN_L1, ph_state_change);
	dch->hw = hc;
	dch->dev.Dprotocols = (1 << ISDN_P_TE_E1) | (1 << ISDN_P_NT_E1);
	dch->dev.Bprotocols = (1 << (ISDN_P_B_RAW & ISDN_P_B_MASK)) |
	    (1 << (ISDN_P_B_HDLC & ISDN_P_B_MASK));
	dch->dev.D.send = handle_dmsg;
	dch->dev.D.ctrl = hfcm_dctrl;
	dch->slot = hc->dnum[pt];
	hc->chan[hc->dnum[pt]].dch = dch;
	hc->chan[hc->dnum[pt]].port = pt;
	hc->chan[hc->dnum[pt]].nt_timer = -1;
	for (ch = 1; ch <= 31; ch++) {
		if (!((1 << ch) & hc->bmask[pt])) /* skip unused channel */
			continue;
		bch = kzalloc(sizeof(struct bchannel), GFP_KERNEL);
		if (!bch) {
			printk(KERN_ERR "%s: no memory for bchannel\n",
			    __func__);
			ret = -ENOMEM;
			goto free_chan;
		}
		hc->chan[ch].coeff = kzalloc(512, GFP_KERNEL);
		if (!hc->chan[ch].coeff) {
			printk(KERN_ERR "%s: no memory for coeffs\n",
			    __func__);
			ret = -ENOMEM;
			kfree(bch);
			goto free_chan;
		}
		bch->nr = ch;
		bch->slot = ch;
		bch->debug = debug;
		mISDN_initbchannel(bch, MAX_DATA_MEM);
		bch->hw = hc;
		bch->ch.send = handle_bmsg;
		bch->ch.ctrl = hfcm_bctrl;
		bch->ch.nr = ch;
		list_add(&bch->ch.list, &dch->dev.bchannels);
		hc->chan[ch].bch = bch;
		hc->chan[ch].port = pt;
		set_channelmap(bch->nr, dch->dev.channelmap);
		bcount++;
	}
	dch->dev.nrbchan = bcount;
	if (pt == 0)
		init_e1_port_hw(hc, m);
	if (hc->ports > 1)
		snprintf(name, MISDN_MAX_IDLEN - 1, "hfc-e1.%d-%d",
				HFC_cnt + 1, pt+1);
	else
		snprintf(name, MISDN_MAX_IDLEN - 1, "hfc-e1.%d", HFC_cnt + 1);
4895
	ret = mISDN_register_device(&dch->dev, &hc->pci_dev->dev, name);
K
Karsten Keil 已提交
4896 4897
	if (ret)
		goto free_chan;
4898
	hc->created[pt] = 1;
K
Karsten Keil 已提交
4899 4900 4901 4902 4903 4904 4905 4906 4907 4908 4909 4910 4911 4912 4913 4914 4915 4916 4917 4918 4919 4920
	return ret;
free_chan:
	release_port(hc, dch);
	return ret;
}

static int
init_multi_port(struct hfc_multi *hc, int pt)
{
	struct dchannel	*dch;
	struct bchannel	*bch;
	int		ch, i, ret = 0;
	char		name[MISDN_MAX_IDLEN];

	dch = kzalloc(sizeof(struct dchannel), GFP_KERNEL);
	if (!dch)
		return -ENOMEM;
	dch->debug = debug;
	mISDN_initdchannel(dch, MAX_DFRAME_LEN_L1, ph_state_change);
	dch->hw = hc;
	dch->dev.Dprotocols = (1 << ISDN_P_TE_S0) | (1 << ISDN_P_NT_S0);
	dch->dev.Bprotocols = (1 << (ISDN_P_B_RAW & ISDN_P_B_MASK)) |
4921
		(1 << (ISDN_P_B_HDLC & ISDN_P_B_MASK));
K
Karsten Keil 已提交
4922 4923 4924 4925 4926 4927 4928 4929 4930 4931 4932 4933
	dch->dev.D.send = handle_dmsg;
	dch->dev.D.ctrl = hfcm_dctrl;
	dch->dev.nrbchan = 2;
	i = pt << 2;
	dch->slot = i + 2;
	hc->chan[i + 2].dch = dch;
	hc->chan[i + 2].port = pt;
	hc->chan[i + 2].nt_timer = -1;
	for (ch = 0; ch < dch->dev.nrbchan; ch++) {
		bch = kzalloc(sizeof(struct bchannel), GFP_KERNEL);
		if (!bch) {
			printk(KERN_ERR "%s: no memory for bchannel\n",
4934
			       __func__);
K
Karsten Keil 已提交
4935 4936 4937 4938 4939 4940
			ret = -ENOMEM;
			goto free_chan;
		}
		hc->chan[i + ch].coeff = kzalloc(512, GFP_KERNEL);
		if (!hc->chan[i + ch].coeff) {
			printk(KERN_ERR "%s: no memory for coeffs\n",
4941
			       __func__);
K
Karsten Keil 已提交
4942
			ret = -ENOMEM;
4943
			kfree(bch);
K
Karsten Keil 已提交
4944 4945 4946 4947 4948 4949 4950 4951 4952 4953 4954 4955 4956
			goto free_chan;
		}
		bch->nr = ch + 1;
		bch->slot = i + ch;
		bch->debug = debug;
		mISDN_initbchannel(bch, MAX_DATA_MEM);
		bch->hw = hc;
		bch->ch.send = handle_bmsg;
		bch->ch.ctrl = hfcm_bctrl;
		bch->ch.nr = ch + 1;
		list_add(&bch->ch.list, &dch->dev.bchannels);
		hc->chan[i + ch].bch = bch;
		hc->chan[i + ch].port = pt;
K
Karsten Keil 已提交
4957
		set_channelmap(bch->nr, dch->dev.channelmap);
K
Karsten Keil 已提交
4958 4959 4960 4961 4962
	}
	/* set master clock */
	if (port[Port_cnt] & 0x001) {
		if (debug & DEBUG_HFCMULTI_INIT)
			printk(KERN_DEBUG
4963 4964 4965
			       "%s: PROTOCOL set master clock: "
			       "card(%d) port(%d)\n",
			       __func__, HFC_cnt + 1, pt + 1);
K
Karsten Keil 已提交
4966 4967
		if (dch->dev.D.protocol != ISDN_P_TE_S0) {
			printk(KERN_ERR "Error: Master clock "
4968 4969 4970
			       "for port(%d) of card(%d) is only"
			       " possible with TE-mode\n",
			       pt + 1, HFC_cnt + 1);
K
Karsten Keil 已提交
4971 4972 4973 4974 4975
			ret = -EINVAL;
			goto free_chan;
		}
		if (hc->masterclk >= 0) {
			printk(KERN_ERR "Error: Master clock "
4976 4977 4978
			       "for port(%d) of card(%d) already "
			       "defined for port(%d)\n",
			       pt + 1, HFC_cnt + 1, hc->masterclk + 1);
K
Karsten Keil 已提交
4979 4980 4981 4982 4983 4984 4985 4986 4987
			ret = -EINVAL;
			goto free_chan;
		}
		hc->masterclk = pt;
	}
	/* set transmitter line to non capacitive */
	if (port[Port_cnt] & 0x002) {
		if (debug & DEBUG_HFCMULTI_INIT)
			printk(KERN_DEBUG
4988 4989 4990
			       "%s: PROTOCOL set non capacitive "
			       "transmitter: card(%d) port(%d)\n",
			       __func__, HFC_cnt + 1, pt + 1);
K
Karsten Keil 已提交
4991
		test_and_set_bit(HFC_CFG_NONCAP_TX,
4992
				 &hc->chan[i + 2].cfg);
K
Karsten Keil 已提交
4993 4994 4995
	}
	/* disable E-channel */
	if (port[Port_cnt] & 0x004) {
K
Karsten Keil 已提交
4996
		if (debug & DEBUG_HFCMULTI_INIT)
K
Karsten Keil 已提交
4997
			printk(KERN_DEBUG
4998 4999 5000
			       "%s: PROTOCOL disable E-channel: "
			       "card(%d) port(%d)\n",
			       __func__, HFC_cnt + 1, pt + 1);
K
Karsten Keil 已提交
5001
		test_and_set_bit(HFC_CFG_DIS_ECHANNEL,
5002
				 &hc->chan[i + 2].cfg);
K
Karsten Keil 已提交
5003
	}
5004 5005
	if (hc->ctype == HFC_TYPE_XHFC) {
		snprintf(name, MISDN_MAX_IDLEN - 1, "xhfc.%d-%d",
5006
			 HFC_cnt + 1, pt + 1);
5007 5008 5009
		ret = mISDN_register_device(&dch->dev, NULL, name);
	} else {
		snprintf(name, MISDN_MAX_IDLEN - 1, "hfc-%ds.%d-%d",
5010
			 hc->ctype, HFC_cnt + 1, pt + 1);
5011 5012
		ret = mISDN_register_device(&dch->dev, &hc->pci_dev->dev, name);
	}
K
Karsten Keil 已提交
5013 5014 5015 5016 5017 5018 5019 5020 5021 5022
	if (ret)
		goto free_chan;
	hc->created[pt] = 1;
	return ret;
free_chan:
	release_port(hc, dch);
	return ret;
}

static int
5023
hfcmulti_init(struct hm_map *m, struct pci_dev *pdev,
5024
	      const struct pci_device_id *ent)
K
Karsten Keil 已提交
5025 5026 5027 5028 5029 5030
{
	int		ret_err = 0;
	int		pt;
	struct hfc_multi	*hc;
	u_long		flags;
	u_char		dips = 0, pmj = 0; /* dip settings, port mode Jumpers */
5031 5032
	int		i, ch;
	u_int		maskcheck;
K
Karsten Keil 已提交
5033 5034 5035

	if (HFC_cnt >= MAX_CARDS) {
		printk(KERN_ERR "too many cards (max=%d).\n",
5036
		       MAX_CARDS);
K
Karsten Keil 已提交
5037 5038 5039 5040
		return -EINVAL;
	}
	if ((type[HFC_cnt] & 0xff) && (type[HFC_cnt] & 0xff) != m->type) {
		printk(KERN_WARNING "HFC-MULTI: Card '%s:%s' type %d found but "
5041 5042 5043
		       "type[%d] %d was supplied as module parameter\n",
		       m->vendor_name, m->card_name, m->type, HFC_cnt,
		       type[HFC_cnt] & 0xff);
K
Karsten Keil 已提交
5044
		printk(KERN_WARNING "HFC-MULTI: Load module without parameters "
5045
		       "first, to see cards and their types.");
K
Karsten Keil 已提交
5046 5047 5048 5049
		return -EINVAL;
	}
	if (debug & DEBUG_HFCMULTI_INIT)
		printk(KERN_DEBUG "%s: Registering %s:%s chip type %d (0x%x)\n",
5050 5051
		       __func__, m->vendor_name, m->card_name, m->type,
		       type[HFC_cnt]);
K
Karsten Keil 已提交
5052 5053 5054 5055 5056 5057 5058 5059 5060

	/* allocate card+fifo structure */
	hc = kzalloc(sizeof(struct hfc_multi), GFP_KERNEL);
	if (!hc) {
		printk(KERN_ERR "No kmem for HFC-Multi card\n");
		return -ENOMEM;
	}
	spin_lock_init(&hc->lock);
	hc->mtyp = m;
5061
	hc->ctype =  m->type;
K
Karsten Keil 已提交
5062 5063 5064 5065
	hc->ports = m->ports;
	hc->id = HFC_cnt;
	hc->pcm = pcm[HFC_cnt];
	hc->io_mode = iomode[HFC_cnt];
5066 5067 5068 5069 5070 5071 5072 5073 5074 5075 5076 5077 5078 5079 5080 5081 5082 5083 5084 5085 5086 5087 5088 5089 5090 5091 5092 5093 5094 5095
	if (hc->ctype == HFC_TYPE_E1 && dmask[E1_cnt]) {
		/* fragment card */
		pt = 0;
		maskcheck = 0;
		for (ch = 0; ch <= 31; ch++) {
			if (!((1 << ch) & dmask[E1_cnt]))
				continue;
			hc->dnum[pt] = ch;
			hc->bmask[pt] = bmask[bmask_cnt++];
			if ((maskcheck & hc->bmask[pt])
			 || (dmask[E1_cnt] & hc->bmask[pt])) {
				printk(KERN_INFO
				       "HFC-E1 #%d has overlapping B-channels on fragment #%d\n",
				       E1_cnt + 1, pt);
				return -EINVAL;
			}
			maskcheck |= hc->bmask[pt];
			printk(KERN_INFO
			       "HFC-E1 #%d uses D-channel on slot %d and a B-channel map of 0x%08x\n",
				E1_cnt + 1, ch, hc->bmask[pt]);
			pt++;
		}
		hc->ports = pt;
	}
	if (hc->ctype == HFC_TYPE_E1 && !dmask[E1_cnt]) {
		/* default card layout */
		hc->dnum[0] = 16;
		hc->bmask[0] = 0xfffefffe;
		hc->ports = 1;
	}
K
Karsten Keil 已提交
5096 5097 5098 5099 5100

	/* set chip specific features */
	hc->masterclk = -1;
	if (type[HFC_cnt] & 0x100) {
		test_and_set_bit(HFC_CHIP_ULAW, &hc->chip);
5101
		hc->silence = 0xff; /* ulaw silence */
K
Karsten Keil 已提交
5102
	} else
5103 5104 5105
		hc->silence = 0x2a; /* alaw silence */
	if ((poll >> 1) > sizeof(hc->silence_data)) {
		printk(KERN_ERR "HFCMULTI error: silence_data too small, "
5106
		       "please fix\n");
5107 5108 5109 5110 5111
		return -EINVAL;
	}
	for (i = 0; i < (poll >> 1); i++)
		hc->silence_data[i] = hc->silence;

5112 5113 5114 5115 5116
	if (hc->ctype != HFC_TYPE_XHFC) {
		if (!(type[HFC_cnt] & 0x200))
			test_and_set_bit(HFC_CHIP_DTMF, &hc->chip);
		test_and_set_bit(HFC_CHIP_CONF, &hc->chip);
	}
K
Karsten Keil 已提交
5117 5118 5119 5120 5121 5122 5123 5124 5125 5126 5127 5128 5129 5130 5131 5132 5133 5134 5135 5136 5137 5138 5139

	if (type[HFC_cnt] & 0x800)
		test_and_set_bit(HFC_CHIP_PCM_SLAVE, &hc->chip);
	if (type[HFC_cnt] & 0x1000) {
		test_and_set_bit(HFC_CHIP_PCM_MASTER, &hc->chip);
		test_and_clear_bit(HFC_CHIP_PCM_SLAVE, &hc->chip);
	}
	if (type[HFC_cnt] & 0x4000)
		test_and_set_bit(HFC_CHIP_EXRAM_128, &hc->chip);
	if (type[HFC_cnt] & 0x8000)
		test_and_set_bit(HFC_CHIP_EXRAM_512, &hc->chip);
	hc->slots = 32;
	if (type[HFC_cnt] & 0x10000)
		hc->slots = 64;
	if (type[HFC_cnt] & 0x20000)
		hc->slots = 128;
	if (type[HFC_cnt] & 0x80000) {
		test_and_set_bit(HFC_CHIP_WATCHDOG, &hc->chip);
		hc->wdcount = 0;
		hc->wdbyte = V_GPIO_OUT2;
		printk(KERN_NOTICE "Watchdog enabled\n");
	}

5140 5141 5142 5143 5144 5145 5146 5147 5148 5149 5150 5151
	if (pdev && ent)
		/* setup pci, hc->slots may change due to PLXSD */
		ret_err = setup_pci(hc, pdev, ent);
	else
#ifdef CONFIG_MISDN_HFCMULTI_8xx
		ret_err = setup_embedded(hc, m);
#else
	{
		printk(KERN_WARNING "Embedded IO Mode not selected\n");
		ret_err = -EIO;
	}
#endif
K
Karsten Keil 已提交
5152 5153 5154 5155 5156 5157 5158
	if (ret_err) {
		if (hc == syncmaster)
			syncmaster = NULL;
		kfree(hc);
		return ret_err;
	}

5159 5160 5161 5162 5163 5164 5165 5166 5167 5168 5169
	hc->HFC_outb_nodebug = hc->HFC_outb;
	hc->HFC_inb_nodebug = hc->HFC_inb;
	hc->HFC_inw_nodebug = hc->HFC_inw;
	hc->HFC_wait_nodebug = hc->HFC_wait;
#ifdef HFC_REGISTER_DEBUG
	hc->HFC_outb = HFC_outb_debug;
	hc->HFC_inb = HFC_inb_debug;
	hc->HFC_inw = HFC_inw_debug;
	hc->HFC_wait = HFC_wait_debug;
#endif
	/* create channels */
K
Karsten Keil 已提交
5170 5171 5172
	for (pt = 0; pt < hc->ports; pt++) {
		if (Port_cnt >= MAX_PORTS) {
			printk(KERN_ERR "too many ports (max=%d).\n",
5173
			       MAX_PORTS);
K
Karsten Keil 已提交
5174 5175 5176
			ret_err = -EINVAL;
			goto free_card;
		}
5177
		if (hc->ctype == HFC_TYPE_E1)
5178
			ret_err = init_e1_port(hc, m, pt);
K
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5179 5180 5181 5182
		else
			ret_err = init_multi_port(hc, pt);
		if (debug & DEBUG_HFCMULTI_INIT)
			printk(KERN_DEBUG
5183
			    "%s: Registering D-channel, card(%d) port(%d) "
5184
			       "result %d\n",
5185
			    __func__, HFC_cnt + 1, pt + 1, ret_err);
K
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5186 5187 5188 5189

		if (ret_err) {
			while (pt) { /* release already registered ports */
				pt--;
5190 5191 5192 5193 5194 5195
				if (hc->ctype == HFC_TYPE_E1)
					release_port(hc,
						hc->chan[hc->dnum[pt]].dch);
				else
					release_port(hc,
						hc->chan[(pt << 2) + 2].dch);
K
Karsten Keil 已提交
5196 5197 5198
			}
			goto free_card;
		}
5199 5200 5201 5202 5203 5204
		if (hc->ctype != HFC_TYPE_E1)
			Port_cnt++; /* for each S0 port */
	}
	if (hc->ctype == HFC_TYPE_E1) {
		Port_cnt++; /* for each E1 port */
		E1_cnt++;
K
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5205 5206 5207 5208 5209 5210
	}

	/* disp switches */
	switch (m->dip_type) {
	case DIP_4S:
		/*
5211
		 * Get DIP setting for beroNet 1S/2S/4S cards
K
Karsten Keil 已提交
5212 5213 5214 5215 5216 5217 5218 5219 5220 5221 5222 5223 5224 5225
		 * DIP Setting: (collect GPIO 13/14/15 (R_GPIO_IN1) +
		 * GPI 19/23 (R_GPI_IN2))
		 */
		dips = ((~HFC_inb(hc, R_GPIO_IN1) & 0xE0) >> 5) |
			((~HFC_inb(hc, R_GPI_IN2) & 0x80) >> 3) |
			(~HFC_inb(hc, R_GPI_IN2) & 0x08);

		/* Port mode (TE/NT) jumpers */
		pmj = ((HFC_inb(hc, R_GPI_IN3) >> 4)  & 0xf);

		if (test_bit(HFC_CHIP_B410P, &hc->chip))
			pmj = ~pmj & 0xf;

		printk(KERN_INFO "%s: %s DIPs(0x%x) jumpers(0x%x)\n",
5226
		       m->vendor_name, m->card_name, dips, pmj);
K
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5227 5228 5229
		break;
	case DIP_8S:
		/*
5230 5231
		 * Get DIP Setting for beroNet 8S0+ cards
		 * Enable PCI auxbridge function
K
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5232 5233 5234 5235 5236 5237 5238 5239 5240 5241 5242 5243 5244 5245 5246 5247
		 */
		HFC_outb(hc, R_BRG_PCM_CFG, 1 | V_PCM_CLK);
		/* prepare access to auxport */
		outw(0x4000, hc->pci_iobase + 4);
		/*
		 * some dummy reads are required to
		 * read valid DIP switch data
		 */
		dips = inb(hc->pci_iobase);
		dips = inb(hc->pci_iobase);
		dips = inb(hc->pci_iobase);
		dips = ~inb(hc->pci_iobase) & 0x3F;
		outw(0x0, hc->pci_iobase + 4);
		/* disable PCI auxbridge function */
		HFC_outb(hc, R_BRG_PCM_CFG, V_PCM_CLK);
		printk(KERN_INFO "%s: %s DIPs(0x%x)\n",
5248
		       m->vendor_name, m->card_name, dips);
K
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5249 5250 5251 5252 5253 5254
		break;
	case DIP_E1:
		/*
		 * get DIP Setting for beroNet E1 cards
		 * DIP Setting: collect GPI 4/5/6/7 (R_GPI_IN0)
		 */
5255
		dips = (~HFC_inb(hc, R_GPI_IN0) & 0xF0) >> 4;
K
Karsten Keil 已提交
5256
		printk(KERN_INFO "%s: %s DIPs(0x%x)\n",
5257
		       m->vendor_name, m->card_name, dips);
K
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5258 5259 5260 5261 5262 5263 5264 5265
		break;
	}

	/* add to list */
	spin_lock_irqsave(&HFClock, flags);
	list_add_tail(&hc->list, &HFClist);
	spin_unlock_irqrestore(&HFClock, flags);

5266 5267 5268 5269
	/* use as clock source */
	if (clock == HFC_cnt + 1)
		hc->iclock = mISDN_register_clock("HFCMulti", 0, clockctl, hc);

K
Karsten Keil 已提交
5270
	/* initialize hardware */
5271
	hc->irq = (m->irq) ? : hc->pci_dev->irq;
K
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5272 5273 5274 5275 5276 5277 5278 5279 5280 5281 5282 5283 5284 5285 5286 5287 5288 5289 5290 5291 5292 5293 5294 5295 5296 5297 5298 5299
	ret_err = init_card(hc);
	if (ret_err) {
		printk(KERN_ERR "init card returns %d\n", ret_err);
		release_card(hc);
		return ret_err;
	}

	/* start IRQ and return */
	spin_lock_irqsave(&hc->lock, flags);
	enable_hwirq(hc);
	spin_unlock_irqrestore(&hc->lock, flags);
	return 0;

free_card:
	release_io_hfcmulti(hc);
	if (hc == syncmaster)
		syncmaster = NULL;
	kfree(hc);
	return ret_err;
}

static void __devexit hfc_remove_pci(struct pci_dev *pdev)
{
	struct hfc_multi	*card = pci_get_drvdata(pdev);
	u_long			flags;

	if (debug)
		printk(KERN_INFO "removing hfc_multi card vendor:%x "
5300 5301 5302
		       "device:%x subvendor:%x subdevice:%x\n",
		       pdev->vendor, pdev->device,
		       pdev->subsystem_vendor, pdev->subsystem_device);
K
Karsten Keil 已提交
5303 5304 5305 5306 5307 5308 5309

	if (card) {
		spin_lock_irqsave(&HFClock, flags);
		release_card(card);
		spin_unlock_irqrestore(&HFClock, flags);
	}  else {
		if (debug)
5310
			printk(KERN_DEBUG "%s: drvdata already removed\n",
5311
			       __func__);
K
Karsten Keil 已提交
5312 5313 5314 5315 5316 5317 5318 5319 5320 5321
	}
}

#define	VENDOR_CCD	"Cologne Chip AG"
#define	VENDOR_BN	"beroNet GmbH"
#define	VENDOR_DIG	"Digium Inc."
#define VENDOR_JH	"Junghanns.NET GmbH"
#define VENDOR_PRIM	"PrimuX"

static const struct hm_map hfcm_map[] = {
5322 5323 5324 5325 5326 5327 5328 5329 5330 5331 5332 5333 5334 5335 5336 5337 5338 5339 5340 5341 5342 5343 5344 5345 5346 5347 5348 5349 5350 5351 5352 5353 5354 5355 5356 5357 5358 5359 5360 5361 5362 5363 5364 5365
	/*0*/	{VENDOR_BN, "HFC-1S Card (mini PCI)", 4, 1, 1, 3, 0, DIP_4S, 0, 0},
	/*1*/	{VENDOR_BN, "HFC-2S Card", 4, 2, 1, 3, 0, DIP_4S, 0, 0},
	/*2*/	{VENDOR_BN, "HFC-2S Card (mini PCI)", 4, 2, 1, 3, 0, DIP_4S, 0, 0},
	/*3*/	{VENDOR_BN, "HFC-4S Card", 4, 4, 1, 2, 0, DIP_4S, 0, 0},
	/*4*/	{VENDOR_BN, "HFC-4S Card (mini PCI)", 4, 4, 1, 2, 0, 0, 0, 0},
	/*5*/	{VENDOR_CCD, "HFC-4S Eval (old)", 4, 4, 0, 0, 0, 0, 0, 0},
	/*6*/	{VENDOR_CCD, "HFC-4S IOB4ST", 4, 4, 1, 2, 0, DIP_4S, 0, 0},
	/*7*/	{VENDOR_CCD, "HFC-4S", 4, 4, 1, 2, 0, 0, 0, 0},
	/*8*/	{VENDOR_DIG, "HFC-4S Card", 4, 4, 0, 2, 0, 0, HFC_IO_MODE_REGIO, 0},
	/*9*/	{VENDOR_CCD, "HFC-4S Swyx 4xS0 SX2 QuadBri", 4, 4, 1, 2, 0, 0, 0, 0},
	/*10*/	{VENDOR_JH, "HFC-4S (junghanns 2.0)", 4, 4, 1, 2, 0, 0, 0, 0},
	/*11*/	{VENDOR_PRIM, "HFC-2S Primux Card", 4, 2, 0, 0, 0, 0, 0, 0},

	/*12*/	{VENDOR_BN, "HFC-8S Card", 8, 8, 1, 0, 0, 0, 0, 0},
	/*13*/	{VENDOR_BN, "HFC-8S Card (+)", 8, 8, 1, 8, 0, DIP_8S,
		 HFC_IO_MODE_REGIO, 0},
	/*14*/	{VENDOR_CCD, "HFC-8S Eval (old)", 8, 8, 0, 0, 0, 0, 0, 0},
	/*15*/	{VENDOR_CCD, "HFC-8S IOB4ST Recording", 8, 8, 1, 0, 0, 0, 0, 0},

	/*16*/	{VENDOR_CCD, "HFC-8S IOB8ST", 8, 8, 1, 0, 0, 0, 0, 0},
	/*17*/	{VENDOR_CCD, "HFC-8S", 8, 8, 1, 0, 0, 0, 0, 0},
	/*18*/	{VENDOR_CCD, "HFC-8S", 8, 8, 1, 0, 0, 0, 0, 0},

	/*19*/	{VENDOR_BN, "HFC-E1 Card", 1, 1, 0, 1, 0, DIP_E1, 0, 0},
	/*20*/	{VENDOR_BN, "HFC-E1 Card (mini PCI)", 1, 1, 0, 1, 0, 0, 0, 0},
	/*21*/	{VENDOR_BN, "HFC-E1+ Card (Dual)", 1, 1, 0, 1, 0, DIP_E1, 0, 0},
	/*22*/	{VENDOR_BN, "HFC-E1 Card (Dual)", 1, 1, 0, 1, 0, DIP_E1, 0, 0},

	/*23*/	{VENDOR_CCD, "HFC-E1 Eval (old)", 1, 1, 0, 0, 0, 0, 0, 0},
	/*24*/	{VENDOR_CCD, "HFC-E1 IOB1E1", 1, 1, 0, 1, 0, 0, 0, 0},
	/*25*/	{VENDOR_CCD, "HFC-E1", 1, 1, 0, 1, 0, 0, 0, 0},

	/*26*/	{VENDOR_CCD, "HFC-4S Speech Design", 4, 4, 0, 0, 0, 0,
		 HFC_IO_MODE_PLXSD, 0},
	/*27*/	{VENDOR_CCD, "HFC-E1 Speech Design", 1, 1, 0, 0, 0, 0,
		 HFC_IO_MODE_PLXSD, 0},
	/*28*/	{VENDOR_CCD, "HFC-4S OpenVox", 4, 4, 1, 0, 0, 0, 0, 0},
	/*29*/	{VENDOR_CCD, "HFC-2S OpenVox", 4, 2, 1, 0, 0, 0, 0, 0},
	/*30*/	{VENDOR_CCD, "HFC-8S OpenVox", 8, 8, 1, 0, 0, 0, 0, 0},
	/*31*/	{VENDOR_CCD, "XHFC-4S Speech Design", 5, 4, 0, 0, 0, 0,
		 HFC_IO_MODE_EMBSD, XHFC_IRQ},
	/*32*/	{VENDOR_JH, "HFC-8S (junghanns)", 8, 8, 1, 0, 0, 0, 0, 0},
	/*33*/	{VENDOR_BN, "HFC-2S Beronet Card PCIe", 4, 2, 1, 3, 0, DIP_4S, 0, 0},
	/*34*/	{VENDOR_BN, "HFC-4S Beronet Card PCIe", 4, 4, 1, 2, 0, DIP_4S, 0, 0},
K
Karsten Keil 已提交
5366 5367 5368 5369 5370 5371 5372 5373
};

#undef H
#define H(x)	((unsigned long)&hfcm_map[x])
static struct pci_device_id hfmultipci_ids[] __devinitdata = {

	/* Cards with HFC-4S Chip */
	{ PCI_VENDOR_ID_CCD, PCI_DEVICE_ID_CCD_HFC4S, PCI_VENDOR_ID_CCD,
5374
	  PCI_SUBDEVICE_ID_CCD_BN1SM, 0, 0, H(0)}, /* BN1S mini PCI */
K
Karsten Keil 已提交
5375
	{ PCI_VENDOR_ID_CCD, PCI_DEVICE_ID_CCD_HFC4S, PCI_VENDOR_ID_CCD,
5376
	  PCI_SUBDEVICE_ID_CCD_BN2S, 0, 0, H(1)}, /* BN2S */
K
Karsten Keil 已提交
5377
	{ PCI_VENDOR_ID_CCD, PCI_DEVICE_ID_CCD_HFC4S, PCI_VENDOR_ID_CCD,
5378
	  PCI_SUBDEVICE_ID_CCD_BN2SM, 0, 0, H(2)}, /* BN2S mini PCI */
K
Karsten Keil 已提交
5379
	{ PCI_VENDOR_ID_CCD, PCI_DEVICE_ID_CCD_HFC4S, PCI_VENDOR_ID_CCD,
5380
	  PCI_SUBDEVICE_ID_CCD_BN4S, 0, 0, H(3)}, /* BN4S */
K
Karsten Keil 已提交
5381
	{ PCI_VENDOR_ID_CCD, PCI_DEVICE_ID_CCD_HFC4S, PCI_VENDOR_ID_CCD,
5382
	  PCI_SUBDEVICE_ID_CCD_BN4SM, 0, 0, H(4)}, /* BN4S mini PCI */
K
Karsten Keil 已提交
5383
	{ PCI_VENDOR_ID_CCD, PCI_DEVICE_ID_CCD_HFC4S, PCI_VENDOR_ID_CCD,
5384
	  PCI_DEVICE_ID_CCD_HFC4S, 0, 0, H(5)}, /* Old Eval */
K
Karsten Keil 已提交
5385
	{ PCI_VENDOR_ID_CCD, PCI_DEVICE_ID_CCD_HFC4S, PCI_VENDOR_ID_CCD,
5386
	  PCI_SUBDEVICE_ID_CCD_IOB4ST, 0, 0, H(6)}, /* IOB4ST */
K
Karsten Keil 已提交
5387
	{ PCI_VENDOR_ID_CCD, PCI_DEVICE_ID_CCD_HFC4S, PCI_VENDOR_ID_CCD,
5388
	  PCI_SUBDEVICE_ID_CCD_HFC4S, 0, 0, H(7)}, /* 4S */
K
Karsten Keil 已提交
5389
	{ PCI_VENDOR_ID_DIGIUM, PCI_DEVICE_ID_DIGIUM_HFC4S,
5390
	  PCI_VENDOR_ID_DIGIUM, PCI_DEVICE_ID_DIGIUM_HFC4S, 0, 0, H(8)},
K
Karsten Keil 已提交
5391
	{ PCI_VENDOR_ID_CCD, PCI_DEVICE_ID_CCD_HFC4S, PCI_VENDOR_ID_CCD,
5392
	  PCI_SUBDEVICE_ID_CCD_SWYX4S, 0, 0, H(9)}, /* 4S Swyx */
K
Karsten Keil 已提交
5393
	{ PCI_VENDOR_ID_CCD, PCI_DEVICE_ID_CCD_HFC4S, PCI_VENDOR_ID_CCD,
5394
	  PCI_SUBDEVICE_ID_CCD_JH4S20, 0, 0, H(10)},
K
Karsten Keil 已提交
5395
	{ PCI_VENDOR_ID_CCD, PCI_DEVICE_ID_CCD_HFC4S, PCI_VENDOR_ID_CCD,
5396
	  PCI_SUBDEVICE_ID_CCD_PMX2S, 0, 0, H(11)}, /* Primux */
K
Karsten Keil 已提交
5397
	{ PCI_VENDOR_ID_CCD, PCI_DEVICE_ID_CCD_HFC4S, PCI_VENDOR_ID_CCD,
5398
	  PCI_SUBDEVICE_ID_CCD_OV4S, 0, 0, H(28)}, /* OpenVox 4 */
K
Karsten Keil 已提交
5399
	{ PCI_VENDOR_ID_CCD, PCI_DEVICE_ID_CCD_HFC4S, PCI_VENDOR_ID_CCD,
5400
	  PCI_SUBDEVICE_ID_CCD_OV2S, 0, 0, H(29)}, /* OpenVox 2 */
5401
	{ PCI_VENDOR_ID_CCD, PCI_DEVICE_ID_CCD_HFC4S, PCI_VENDOR_ID_CCD,
5402
	  0xb761, 0, 0, H(33)}, /* BN2S PCIe */
5403
	{ PCI_VENDOR_ID_CCD, PCI_DEVICE_ID_CCD_HFC4S, PCI_VENDOR_ID_CCD,
5404
	  0xb762, 0, 0, H(34)}, /* BN4S PCIe */
K
Karsten Keil 已提交
5405 5406 5407

	/* Cards with HFC-8S Chip */
	{ PCI_VENDOR_ID_CCD, PCI_DEVICE_ID_CCD_HFC8S, PCI_VENDOR_ID_CCD,
5408
	  PCI_SUBDEVICE_ID_CCD_BN8S, 0, 0, H(12)}, /* BN8S */
K
Karsten Keil 已提交
5409
	{ PCI_VENDOR_ID_CCD, PCI_DEVICE_ID_CCD_HFC8S, PCI_VENDOR_ID_CCD,
5410
	  PCI_SUBDEVICE_ID_CCD_BN8SP, 0, 0, H(13)}, /* BN8S+ */
K
Karsten Keil 已提交
5411
	{ PCI_VENDOR_ID_CCD, PCI_DEVICE_ID_CCD_HFC8S, PCI_VENDOR_ID_CCD,
5412
	  PCI_DEVICE_ID_CCD_HFC8S, 0, 0, H(14)}, /* old Eval */
K
Karsten Keil 已提交
5413
	{ PCI_VENDOR_ID_CCD, PCI_DEVICE_ID_CCD_HFC8S, PCI_VENDOR_ID_CCD,
5414
	  PCI_SUBDEVICE_ID_CCD_IOB8STR, 0, 0, H(15)}, /* IOB8ST Recording */
K
Karsten Keil 已提交
5415
	{ PCI_VENDOR_ID_CCD, PCI_DEVICE_ID_CCD_HFC8S, PCI_VENDOR_ID_CCD,
5416
	  PCI_SUBDEVICE_ID_CCD_IOB8ST, 0, 0, H(16)}, /* IOB8ST  */
K
Karsten Keil 已提交
5417
	{ PCI_VENDOR_ID_CCD, PCI_DEVICE_ID_CCD_HFC8S, PCI_VENDOR_ID_CCD,
5418
	  PCI_SUBDEVICE_ID_CCD_IOB8ST_1, 0, 0, H(17)}, /* IOB8ST  */
K
Karsten Keil 已提交
5419
	{ PCI_VENDOR_ID_CCD, PCI_DEVICE_ID_CCD_HFC8S, PCI_VENDOR_ID_CCD,
5420
	  PCI_SUBDEVICE_ID_CCD_HFC8S, 0, 0, H(18)}, /* 8S */
K
Karsten Keil 已提交
5421
	{ PCI_VENDOR_ID_CCD, PCI_DEVICE_ID_CCD_HFC8S, PCI_VENDOR_ID_CCD,
5422
	  PCI_SUBDEVICE_ID_CCD_OV8S, 0, 0, H(30)}, /* OpenVox 8 */
5423
	{ PCI_VENDOR_ID_CCD, PCI_DEVICE_ID_CCD_HFC8S, PCI_VENDOR_ID_CCD,
5424
	  PCI_SUBDEVICE_ID_CCD_JH8S, 0, 0, H(32)}, /* Junganns 8S  */
K
Karsten Keil 已提交
5425 5426 5427 5428


	/* Cards with HFC-E1 Chip */
	{ PCI_VENDOR_ID_CCD, PCI_DEVICE_ID_CCD_HFCE1, PCI_VENDOR_ID_CCD,
5429
	  PCI_SUBDEVICE_ID_CCD_BNE1, 0, 0, H(19)}, /* BNE1 */
K
Karsten Keil 已提交
5430
	{ PCI_VENDOR_ID_CCD, PCI_DEVICE_ID_CCD_HFCE1, PCI_VENDOR_ID_CCD,
5431
	  PCI_SUBDEVICE_ID_CCD_BNE1M, 0, 0, H(20)}, /* BNE1 mini PCI */
K
Karsten Keil 已提交
5432
	{ PCI_VENDOR_ID_CCD, PCI_DEVICE_ID_CCD_HFCE1, PCI_VENDOR_ID_CCD,
5433
	  PCI_SUBDEVICE_ID_CCD_BNE1DP, 0, 0, H(21)}, /* BNE1 + (Dual) */
K
Karsten Keil 已提交
5434
	{ PCI_VENDOR_ID_CCD, PCI_DEVICE_ID_CCD_HFCE1, PCI_VENDOR_ID_CCD,
5435
	  PCI_SUBDEVICE_ID_CCD_BNE1D, 0, 0, H(22)}, /* BNE1 (Dual) */
K
Karsten Keil 已提交
5436 5437

	{ PCI_VENDOR_ID_CCD, PCI_DEVICE_ID_CCD_HFCE1, PCI_VENDOR_ID_CCD,
5438
	  PCI_DEVICE_ID_CCD_HFCE1, 0, 0, H(23)}, /* Old Eval */
K
Karsten Keil 已提交
5439
	{ PCI_VENDOR_ID_CCD, PCI_DEVICE_ID_CCD_HFCE1, PCI_VENDOR_ID_CCD,
5440
	  PCI_SUBDEVICE_ID_CCD_IOB1E1, 0, 0, H(24)}, /* IOB1E1 */
K
Karsten Keil 已提交
5441
	{ PCI_VENDOR_ID_CCD, PCI_DEVICE_ID_CCD_HFCE1, PCI_VENDOR_ID_CCD,
5442
	  PCI_SUBDEVICE_ID_CCD_HFCE1, 0, 0, H(25)}, /* E1 */
K
Karsten Keil 已提交
5443 5444

	{ PCI_VENDOR_ID_PLX, PCI_DEVICE_ID_PLX_9030, PCI_VENDOR_ID_CCD,
5445
	  PCI_SUBDEVICE_ID_CCD_SPD4S, 0, 0, H(26)}, /* PLX PCI Bridge */
K
Karsten Keil 已提交
5446
	{ PCI_VENDOR_ID_PLX, PCI_DEVICE_ID_PLX_9030, PCI_VENDOR_ID_CCD,
5447
	  PCI_SUBDEVICE_ID_CCD_SPDE1, 0, 0, H(27)}, /* PLX PCI Bridge */
5448 5449

	{ PCI_VENDOR_ID_CCD, PCI_DEVICE_ID_CCD_HFCE1, PCI_VENDOR_ID_CCD,
5450
	  PCI_SUBDEVICE_ID_CCD_JHSE1, 0, 0, H(25)}, /* Junghanns E1 */
5451

5452 5453 5454
	{ PCI_VDEVICE(CCD, PCI_DEVICE_ID_CCD_HFC4S), 0 },
	{ PCI_VDEVICE(CCD, PCI_DEVICE_ID_CCD_HFC8S), 0 },
	{ PCI_VDEVICE(CCD, PCI_DEVICE_ID_CCD_HFCE1), 0 },
K
Karsten Keil 已提交
5455 5456 5457 5458 5459 5460 5461 5462 5463 5464 5465 5466
	{0, }
};
#undef H

MODULE_DEVICE_TABLE(pci, hfmultipci_ids);

static int
hfcmulti_probe(struct pci_dev *pdev, const struct pci_device_id *ent)
{
	struct hm_map	*m = (struct hm_map *)ent->driver_data;
	int		ret;

5467
	if (m == NULL && ent->vendor == PCI_VENDOR_ID_CCD && (
5468 5469 5470
		    ent->device == PCI_DEVICE_ID_CCD_HFC4S ||
		    ent->device == PCI_DEVICE_ID_CCD_HFC8S ||
		    ent->device == PCI_DEVICE_ID_CCD_HFCE1)) {
5471
		printk(KERN_ERR
5472 5473 5474 5475
		       "Unknown HFC multiport controller (vendor:%04x device:%04x "
		       "subvendor:%04x subdevice:%04x)\n", pdev->vendor,
		       pdev->device, pdev->subsystem_vendor,
		       pdev->subsystem_device);
5476
		printk(KERN_ERR
5477
		       "Please contact the driver maintainer for support.\n");
K
Karsten Keil 已提交
5478 5479
		return -ENODEV;
	}
5480
	ret = hfcmulti_init(m, pdev, ent);
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	if (ret)
		return ret;
	HFC_cnt++;
	printk(KERN_INFO "%d devices registered\n", HFC_cnt);
	return 0;
}

static struct pci_driver hfcmultipci_driver = {
	.name		= "hfc_multi",
	.probe		= hfcmulti_probe,
	.remove		= __devexit_p(hfc_remove_pci),
	.id_table	= hfmultipci_ids,
};

static void __exit
HFCmulti_cleanup(void)
{
	struct hfc_multi *card, *next;

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	/* get rid of all devices of this driver */
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	list_for_each_entry_safe(card, next, &HFClist, list)
		release_card(card);
	pci_unregister_driver(&hfcmultipci_driver);
}

static int __init
HFCmulti_init(void)
{
	int err;
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	int i, xhfc = 0;
	struct hm_map m;
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	printk(KERN_INFO "mISDN: HFC-multi driver %s\n", HFC_MULTI_VERSION);

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#ifdef IRQ_DEBUG
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	printk(KERN_DEBUG "%s: IRQ_DEBUG IS ENABLED!\n", __func__);
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#endif

	spin_lock_init(&HFClock);
	spin_lock_init(&plx_lock);

	if (debug & DEBUG_HFCMULTI_INIT)
		printk(KERN_DEBUG "%s: init entered\n", __func__);

	switch (poll) {
	case 0:
		poll_timer = 6;
		poll = 128;
		break;
	case 8:
		poll_timer = 2;
		break;
	case 16:
		poll_timer = 3;
		break;
	case 32:
		poll_timer = 4;
		break;
	case 64:
		poll_timer = 5;
		break;
	case 128:
		poll_timer = 6;
		break;
	case 256:
		poll_timer = 7;
		break;
	default:
		printk(KERN_ERR
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		       "%s: Wrong poll value (%d).\n", __func__, poll);
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		err = -EINVAL;
		return err;

	}

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	if (!clock)
		clock = 1;

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	/* Register the embedded devices.
	 * This should be done before the PCI cards registration */
	switch (hwid) {
	case HWID_MINIP4:
		xhfc = 1;
		m = hfcm_map[31];
		break;
	case HWID_MINIP8:
		xhfc = 2;
		m = hfcm_map[31];
		break;
	case HWID_MINIP16:
		xhfc = 4;
		m = hfcm_map[31];
		break;
	default:
		xhfc = 0;
	}

	for (i = 0; i < xhfc; ++i) {
		err = hfcmulti_init(&m, NULL, NULL);
		if (err) {
			printk(KERN_ERR "error registering embedded driver: "
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			       "%x\n", err);
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			return err;
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		}
		HFC_cnt++;
		printk(KERN_INFO "%d devices registered\n", HFC_cnt);
	}

	/* Register the PCI cards */
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	err = pci_register_driver(&hfcmultipci_driver);
	if (err < 0) {
		printk(KERN_ERR "error registering pci driver: %x\n", err);
		return err;
	}
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	return 0;
}


module_init(HFCmulti_init);
module_exit(HFCmulti_cleanup);