core-transaction.c 33.4 KB
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/*
 * Core IEEE1394 transaction logic
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 *
 * Copyright (C) 2004-2006 Kristian Hoegsberg <krh@bitplanet.net>
 *
 * 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 of the License, 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., 59 Temple Place - Suite 330, Boston, MA 02111-1307, USA.
 */

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#include <linux/bug.h>
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#include <linux/completion.h>
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#include <linux/device.h>
#include <linux/errno.h>
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#include <linux/firewire.h>
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#include <linux/firewire-constants.h>
#include <linux/fs.h>
#include <linux/init.h>
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#include <linux/idr.h>
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#include <linux/jiffies.h>
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#include <linux/kernel.h>
#include <linux/list.h>
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#include <linux/module.h>
#include <linux/slab.h>
#include <linux/spinlock.h>
#include <linux/string.h>
#include <linux/timer.h>
#include <linux/types.h>

#include <asm/byteorder.h>
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#include "core.h"
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#define HEADER_PRI(pri)			((pri) << 0)
#define HEADER_TCODE(tcode)		((tcode) << 4)
#define HEADER_RETRY(retry)		((retry) << 8)
#define HEADER_TLABEL(tlabel)		((tlabel) << 10)
#define HEADER_DESTINATION(destination)	((destination) << 16)
#define HEADER_SOURCE(source)		((source) << 16)
#define HEADER_RCODE(rcode)		((rcode) << 12)
#define HEADER_OFFSET_HIGH(offset_high)	((offset_high) << 0)
#define HEADER_DATA_LENGTH(length)	((length) << 16)
#define HEADER_EXTENDED_TCODE(tcode)	((tcode) << 0)

#define HEADER_GET_TCODE(q)		(((q) >> 4) & 0x0f)
#define HEADER_GET_TLABEL(q)		(((q) >> 10) & 0x3f)
#define HEADER_GET_RCODE(q)		(((q) >> 12) & 0x0f)
#define HEADER_GET_DESTINATION(q)	(((q) >> 16) & 0xffff)
#define HEADER_GET_SOURCE(q)		(((q) >> 16) & 0xffff)
#define HEADER_GET_OFFSET_HIGH(q)	(((q) >> 0) & 0xffff)
#define HEADER_GET_DATA_LENGTH(q)	(((q) >> 16) & 0xffff)
#define HEADER_GET_EXTENDED_TCODE(q)	(((q) >> 0) & 0xffff)

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#define HEADER_DESTINATION_IS_BROADCAST(q) \
	(((q) & HEADER_DESTINATION(0x3f)) == HEADER_DESTINATION(0x3f))

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#define PHY_PACKET_CONFIG	0x0
#define PHY_PACKET_LINK_ON	0x1
#define PHY_PACKET_SELF_ID	0x2

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#define PHY_CONFIG_GAP_COUNT(gap_count)	(((gap_count) << 16) | (1 << 22))
#define PHY_CONFIG_ROOT_ID(node_id)	((((node_id) & 0x3f) << 24) | (1 << 23))
#define PHY_IDENTIFIER(id)		((id) << 30)
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static int close_transaction(struct fw_transaction *transaction,
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			     struct fw_card *card, int rcode)
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{
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	struct fw_transaction *t;
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	unsigned long flags;

	spin_lock_irqsave(&card->lock, flags);
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	list_for_each_entry(t, &card->transaction_list, link) {
		if (t == transaction) {
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			if (!del_timer(&t->split_timeout_timer)) {
				spin_unlock_irqrestore(&card->lock, flags);
				goto timed_out;
			}
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			list_del_init(&t->link);
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			card->tlabel_mask &= ~(1ULL << t->tlabel);
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			break;
		}
	}
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	spin_unlock_irqrestore(&card->lock, flags);

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	if (&t->link != &card->transaction_list) {
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		t->callback(card, rcode, NULL, 0, t->callback_data);
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		return 0;
	}

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 timed_out:
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	return -ENOENT;
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}

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/*
 * Only valid for transactions that are potentially pending (ie have
 * been sent).
 */
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int fw_cancel_transaction(struct fw_card *card,
			  struct fw_transaction *transaction)
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{
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	/*
	 * Cancel the packet transmission if it's still queued.  That
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	 * will call the packet transmission callback which cancels
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	 * the transaction.
	 */
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	if (card->driver->cancel_packet(card, &transaction->packet) == 0)
		return 0;

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	/*
	 * If the request packet has already been sent, we need to see
	 * if the transaction is still pending and remove it in that case.
	 */
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	return close_transaction(transaction, card, RCODE_CANCELLED);
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}
EXPORT_SYMBOL(fw_cancel_transaction);

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static void split_transaction_timeout_callback(unsigned long data)
{
	struct fw_transaction *t = (struct fw_transaction *)data;
	struct fw_card *card = t->card;
	unsigned long flags;

	spin_lock_irqsave(&card->lock, flags);
	if (list_empty(&t->link)) {
		spin_unlock_irqrestore(&card->lock, flags);
		return;
	}
	list_del(&t->link);
	card->tlabel_mask &= ~(1ULL << t->tlabel);
	spin_unlock_irqrestore(&card->lock, flags);

	card->driver->cancel_packet(card, &t->packet);

	/*
	 * At this point cancel_packet will never call the transaction
	 * callback, since we just took the transaction out of the list.
	 * So do it here.
	 */
	t->callback(card, RCODE_CANCELLED, NULL, 0, t->callback_data);
}

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static void transmit_complete_callback(struct fw_packet *packet,
				       struct fw_card *card, int status)
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{
	struct fw_transaction *t =
	    container_of(packet, struct fw_transaction, packet);

	switch (status) {
	case ACK_COMPLETE:
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		close_transaction(t, card, RCODE_COMPLETE);
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		break;
	case ACK_PENDING:
		t->timestamp = packet->timestamp;
		break;
	case ACK_BUSY_X:
	case ACK_BUSY_A:
	case ACK_BUSY_B:
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		close_transaction(t, card, RCODE_BUSY);
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		break;
	case ACK_DATA_ERROR:
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		close_transaction(t, card, RCODE_DATA_ERROR);
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		break;
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	case ACK_TYPE_ERROR:
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		close_transaction(t, card, RCODE_TYPE_ERROR);
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		break;
	default:
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		/*
		 * In this case the ack is really a juju specific
		 * rcode, so just forward that to the callback.
		 */
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		close_transaction(t, card, status);
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		break;
	}
}

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static void fw_fill_request(struct fw_packet *packet, int tcode, int tlabel,
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		int destination_id, int source_id, int generation, int speed,
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		unsigned long long offset, void *payload, size_t length)
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{
	int ext_tcode;

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	if (tcode == TCODE_STREAM_DATA) {
		packet->header[0] =
			HEADER_DATA_LENGTH(length) |
			destination_id |
			HEADER_TCODE(TCODE_STREAM_DATA);
		packet->header_length = 4;
		packet->payload = payload;
		packet->payload_length = length;

		goto common;
	}

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	if (tcode > 0x10) {
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		ext_tcode = tcode & ~0x10;
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		tcode = TCODE_LOCK_REQUEST;
	} else
		ext_tcode = 0;

	packet->header[0] =
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		HEADER_RETRY(RETRY_X) |
		HEADER_TLABEL(tlabel) |
		HEADER_TCODE(tcode) |
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		HEADER_DESTINATION(destination_id);
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	packet->header[1] =
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		HEADER_OFFSET_HIGH(offset >> 32) | HEADER_SOURCE(source_id);
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	packet->header[2] =
		offset;

	switch (tcode) {
	case TCODE_WRITE_QUADLET_REQUEST:
		packet->header[3] = *(u32 *)payload;
		packet->header_length = 16;
		packet->payload_length = 0;
		break;

	case TCODE_LOCK_REQUEST:
	case TCODE_WRITE_BLOCK_REQUEST:
		packet->header[3] =
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			HEADER_DATA_LENGTH(length) |
			HEADER_EXTENDED_TCODE(ext_tcode);
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		packet->header_length = 16;
		packet->payload = payload;
		packet->payload_length = length;
		break;

	case TCODE_READ_QUADLET_REQUEST:
		packet->header_length = 12;
		packet->payload_length = 0;
		break;

	case TCODE_READ_BLOCK_REQUEST:
		packet->header[3] =
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			HEADER_DATA_LENGTH(length) |
			HEADER_EXTENDED_TCODE(ext_tcode);
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		packet->header_length = 16;
		packet->payload_length = 0;
		break;
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	default:
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		WARN(1, "wrong tcode %d", tcode);
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	}
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 common:
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	packet->speed = speed;
	packet->generation = generation;
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	packet->ack = 0;
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	packet->payload_mapped = false;
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}

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static int allocate_tlabel(struct fw_card *card)
{
	int tlabel;

	tlabel = card->current_tlabel;
	while (card->tlabel_mask & (1ULL << tlabel)) {
		tlabel = (tlabel + 1) & 0x3f;
		if (tlabel == card->current_tlabel)
			return -EBUSY;
	}

	card->current_tlabel = (tlabel + 1) & 0x3f;
	card->tlabel_mask |= 1ULL << tlabel;

	return tlabel;
}

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/**
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 * fw_send_request() - submit a request packet for transmission
 * @card:		interface to send the request at
 * @t:			transaction instance to which the request belongs
 * @tcode:		transaction code
 * @destination_id:	destination node ID, consisting of bus_ID and phy_ID
 * @generation:		bus generation in which request and response are valid
 * @speed:		transmission speed
 * @offset:		48bit wide offset into destination's address space
 * @payload:		data payload for the request subaction
 * @length:		length of the payload, in bytes
 * @callback:		function to be called when the transaction is completed
 * @callback_data:	data to be passed to the transaction completion callback
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 *
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 * Submit a request packet into the asynchronous request transmission queue.
 * Can be called from atomic context.  If you prefer a blocking API, use
 * fw_run_transaction() in a context that can sleep.
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 *
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 * In case of lock requests, specify one of the firewire-core specific %TCODE_
 * constants instead of %TCODE_LOCK_REQUEST in @tcode.
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 *
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 * Make sure that the value in @destination_id is not older than the one in
 * @generation.  Otherwise the request is in danger to be sent to a wrong node.
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 *
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 * In case of asynchronous stream packets i.e. %TCODE_STREAM_DATA, the caller
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 * needs to synthesize @destination_id with fw_stream_packet_destination_id().
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 * It will contain tag, channel, and sy data instead of a node ID then.
 *
 * The payload buffer at @data is going to be DMA-mapped except in case of
 * quadlet-sized payload or of local (loopback) requests.  Hence make sure that
 * the buffer complies with the restrictions for DMA-mapped memory.  The
 * @payload must not be freed before the @callback is called.
 *
 * In case of request types without payload, @data is NULL and @length is 0.
 *
 * After the transaction is completed successfully or unsuccessfully, the
 * @callback will be called.  Among its parameters is the response code which
 * is either one of the rcodes per IEEE 1394 or, in case of internal errors,
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 * the firewire-core specific %RCODE_SEND_ERROR.  The other firewire-core
 * specific rcodes (%RCODE_CANCELLED, %RCODE_BUSY, %RCODE_GENERATION,
 * %RCODE_NO_ACK) denote transaction timeout, busy responder, stale request
 * generation, or missing ACK respectively.
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 *
 * Note some timing corner cases:  fw_send_request() may complete much earlier
 * than when the request packet actually hits the wire.  On the other hand,
 * transaction completion and hence execution of @callback may happen even
 * before fw_send_request() returns.
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 */
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void fw_send_request(struct fw_card *card, struct fw_transaction *t, int tcode,
		     int destination_id, int generation, int speed,
		     unsigned long long offset, void *payload, size_t length,
		     fw_transaction_callback_t callback, void *callback_data)
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{
	unsigned long flags;
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	int tlabel;
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	/*
	 * Allocate tlabel from the bitmap and put the transaction on
	 * the list while holding the card spinlock.
	 */
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	spin_lock_irqsave(&card->lock, flags);

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	tlabel = allocate_tlabel(card);
	if (tlabel < 0) {
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		spin_unlock_irqrestore(&card->lock, flags);
		callback(card, RCODE_SEND_ERROR, NULL, 0, callback_data);
		return;
	}

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	t->node_id = destination_id;
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	t->tlabel = tlabel;
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	t->card = card;
	setup_timer(&t->split_timeout_timer,
		    split_transaction_timeout_callback, (unsigned long)t);
	/* FIXME: start this timer later, relative to t->timestamp */
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	mod_timer(&t->split_timeout_timer,
		  jiffies + card->split_timeout_jiffies);
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	t->callback = callback;
	t->callback_data = callback_data;

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	fw_fill_request(&t->packet, tcode, t->tlabel,
			destination_id, card->node_id, generation,
			speed, offset, payload, length);
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	t->packet.callback = transmit_complete_callback;

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	list_add_tail(&t->link, &card->transaction_list);

	spin_unlock_irqrestore(&card->lock, flags);

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	card->driver->send_request(card, &t->packet);
}
EXPORT_SYMBOL(fw_send_request);

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struct transaction_callback_data {
	struct completion done;
	void *payload;
	int rcode;
};

static void transaction_callback(struct fw_card *card, int rcode,
				 void *payload, size_t length, void *data)
{
	struct transaction_callback_data *d = data;

	if (rcode == RCODE_COMPLETE)
		memcpy(d->payload, payload, length);
	d->rcode = rcode;
	complete(&d->done);
}

/**
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 * fw_run_transaction() - send request and sleep until transaction is completed
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 *
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 * Returns the RCODE.  See fw_send_request() for parameter documentation.
 * Unlike fw_send_request(), @data points to the payload of the request or/and
 * to the payload of the response.
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 */
int fw_run_transaction(struct fw_card *card, int tcode, int destination_id,
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		       int generation, int speed, unsigned long long offset,
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		       void *payload, size_t length)
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{
	struct transaction_callback_data d;
	struct fw_transaction t;

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	init_timer_on_stack(&t.split_timeout_timer);
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	init_completion(&d.done);
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	d.payload = payload;
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	fw_send_request(card, &t, tcode, destination_id, generation, speed,
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			offset, payload, length, transaction_callback, &d);
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	wait_for_completion(&d.done);
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	destroy_timer_on_stack(&t.split_timeout_timer);
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	return d.rcode;
}
EXPORT_SYMBOL(fw_run_transaction);

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static DEFINE_MUTEX(phy_config_mutex);
static DECLARE_COMPLETION(phy_config_done);
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static void transmit_phy_packet_callback(struct fw_packet *packet,
					 struct fw_card *card, int status)
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{
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	complete(&phy_config_done);
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}

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static struct fw_packet phy_config_packet = {
	.header_length	= 8,
	.payload_length	= 0,
	.speed		= SCODE_100,
	.callback	= transmit_phy_packet_callback,
};

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void fw_send_phy_config(struct fw_card *card,
			int node_id, int generation, int gap_count)
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{
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	long timeout = DIV_ROUND_UP(HZ, 10);
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	u32 data = PHY_IDENTIFIER(PHY_PACKET_CONFIG);

	if (node_id != FW_PHY_CONFIG_NO_NODE_ID)
		data |= PHY_CONFIG_ROOT_ID(node_id);

	if (gap_count == FW_PHY_CONFIG_CURRENT_GAP_COUNT) {
		gap_count = card->driver->read_phy_reg(card, 1);
		if (gap_count < 0)
			return;

		gap_count &= 63;
		if (gap_count == 63)
			return;
	}
	data |= PHY_CONFIG_GAP_COUNT(gap_count);
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	mutex_lock(&phy_config_mutex);

	phy_config_packet.header[0] = data;
	phy_config_packet.header[1] = ~data;
	phy_config_packet.generation = generation;
	INIT_COMPLETION(phy_config_done);

	card->driver->send_request(card, &phy_config_packet);
	wait_for_completion_timeout(&phy_config_done, timeout);
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	mutex_unlock(&phy_config_mutex);
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}

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static struct fw_address_handler *lookup_overlapping_address_handler(
	struct list_head *list, unsigned long long offset, size_t length)
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{
	struct fw_address_handler *handler;

	list_for_each_entry(handler, list, link) {
		if (handler->offset < offset + length &&
		    offset < handler->offset + handler->length)
			return handler;
	}

	return NULL;
}

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static bool is_enclosing_handler(struct fw_address_handler *handler,
				 unsigned long long offset, size_t length)
{
	return handler->offset <= offset &&
		offset + length <= handler->offset + handler->length;
}

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static struct fw_address_handler *lookup_enclosing_address_handler(
	struct list_head *list, unsigned long long offset, size_t length)
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{
	struct fw_address_handler *handler;

	list_for_each_entry(handler, list, link) {
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		if (is_enclosing_handler(handler, offset, length))
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			return handler;
	}

	return NULL;
}

static DEFINE_SPINLOCK(address_handler_lock);
static LIST_HEAD(address_handler_list);

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const struct fw_address_region fw_high_memory_region =
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	{ .start = 0x000100000000ULL, .end = 0xffffe0000000ULL,  };
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EXPORT_SYMBOL(fw_high_memory_region);

#if 0
const struct fw_address_region fw_low_memory_region =
	{ .start = 0x000000000000ULL, .end = 0x000100000000ULL,  };
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const struct fw_address_region fw_private_region =
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	{ .start = 0xffffe0000000ULL, .end = 0xfffff0000000ULL,  };
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const struct fw_address_region fw_csr_region =
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	{ .start = CSR_REGISTER_BASE,
	  .end   = CSR_REGISTER_BASE | CSR_CONFIG_ROM_END,  };
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const struct fw_address_region fw_unit_space_region =
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	{ .start = 0xfffff0000900ULL, .end = 0x1000000000000ULL, };
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#endif  /*  0  */
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static bool is_in_fcp_region(u64 offset, size_t length)
{
	return offset >= (CSR_REGISTER_BASE | CSR_FCP_COMMAND) &&
		offset + length <= (CSR_REGISTER_BASE | CSR_FCP_END);
}

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/**
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 * fw_core_add_address_handler() - register for incoming requests
 * @handler:	callback
 * @region:	region in the IEEE 1212 node space address range
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 *
 * region->start, ->end, and handler->length have to be quadlet-aligned.
 *
 * When a request is received that falls within the specified address range,
 * the specified callback is invoked.  The parameters passed to the callback
 * give the details of the particular request.
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 *
 * Return value:  0 on success, non-zero otherwise.
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 *
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 * The start offset of the handler's address region is determined by
 * fw_core_add_address_handler() and is returned in handler->offset.
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 *
 * Address allocations are exclusive, except for the FCP registers.
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 */
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int fw_core_add_address_handler(struct fw_address_handler *handler,
				const struct fw_address_region *region)
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{
	struct fw_address_handler *other;
	unsigned long flags;
	int ret = -EBUSY;

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	if (region->start & 0xffff000000000003ULL ||
	    region->start >= region->end ||
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	    region->end   > 0x0001000000000000ULL ||
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	    handler->length & 3 ||
	    handler->length == 0)
		return -EINVAL;

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	spin_lock_irqsave(&address_handler_lock, flags);

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	handler->offset = region->start;
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	while (handler->offset + handler->length <= region->end) {
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		if (is_in_fcp_region(handler->offset, handler->length))
			other = NULL;
		else
			other = lookup_overlapping_address_handler
					(&address_handler_list,
					 handler->offset, handler->length);
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		if (other != NULL) {
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			handler->offset += other->length;
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		} else {
			list_add_tail(&handler->link, &address_handler_list);
			ret = 0;
			break;
		}
	}

	spin_unlock_irqrestore(&address_handler_lock, flags);

	return ret;
}
EXPORT_SYMBOL(fw_core_add_address_handler);

/**
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 * fw_core_remove_address_handler() - unregister an address handler
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 */
void fw_core_remove_address_handler(struct fw_address_handler *handler)
{
	unsigned long flags;

	spin_lock_irqsave(&address_handler_lock, flags);
	list_del(&handler->link);
	spin_unlock_irqrestore(&address_handler_lock, flags);
}
EXPORT_SYMBOL(fw_core_remove_address_handler);

struct fw_request {
	struct fw_packet response;
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	u32 request_header[4];
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	int ack;
	u32 length;
	u32 data[0];
};

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static void free_response_callback(struct fw_packet *packet,
				   struct fw_card *card, int status)
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{
	struct fw_request *request;

	request = container_of(packet, struct fw_request, response);
	kfree(request);
}

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int fw_get_response_length(struct fw_request *r)
{
	int tcode, ext_tcode, data_length;

	tcode = HEADER_GET_TCODE(r->request_header[0]);

	switch (tcode) {
	case TCODE_WRITE_QUADLET_REQUEST:
	case TCODE_WRITE_BLOCK_REQUEST:
		return 0;

	case TCODE_READ_QUADLET_REQUEST:
		return 4;

	case TCODE_READ_BLOCK_REQUEST:
		data_length = HEADER_GET_DATA_LENGTH(r->request_header[3]);
		return data_length;

	case TCODE_LOCK_REQUEST:
		ext_tcode = HEADER_GET_EXTENDED_TCODE(r->request_header[3]);
		data_length = HEADER_GET_DATA_LENGTH(r->request_header[3]);
		switch (ext_tcode) {
		case EXTCODE_FETCH_ADD:
		case EXTCODE_LITTLE_ADD:
			return data_length;
		default:
			return data_length / 2;
		}

	default:
641
		WARN(1, "wrong tcode %d", tcode);
642 643 644 645
		return 0;
	}
}

646 647
void fw_fill_response(struct fw_packet *response, u32 *request_header,
		      int rcode, void *payload, size_t length)
648 649 650
{
	int tcode, tlabel, extended_tcode, source, destination;

651 652 653 654 655
	tcode          = HEADER_GET_TCODE(request_header[0]);
	tlabel         = HEADER_GET_TLABEL(request_header[0]);
	source         = HEADER_GET_DESTINATION(request_header[0]);
	destination    = HEADER_GET_SOURCE(request_header[1]);
	extended_tcode = HEADER_GET_EXTENDED_TCODE(request_header[3]);
656 657

	response->header[0] =
658 659 660
		HEADER_RETRY(RETRY_1) |
		HEADER_TLABEL(tlabel) |
		HEADER_DESTINATION(destination);
661
	response->header[1] =
662 663
		HEADER_SOURCE(source) |
		HEADER_RCODE(rcode);
664 665 666 667 668
	response->header[2] = 0;

	switch (tcode) {
	case TCODE_WRITE_QUADLET_REQUEST:
	case TCODE_WRITE_BLOCK_REQUEST:
669
		response->header[0] |= HEADER_TCODE(TCODE_WRITE_RESPONSE);
670 671 672 673 674 675
		response->header_length = 12;
		response->payload_length = 0;
		break;

	case TCODE_READ_QUADLET_REQUEST:
		response->header[0] |=
676
			HEADER_TCODE(TCODE_READ_QUADLET_RESPONSE);
677 678 679 680
		if (payload != NULL)
			response->header[3] = *(u32 *)payload;
		else
			response->header[3] = 0;
681 682 683 684 685 686
		response->header_length = 16;
		response->payload_length = 0;
		break;

	case TCODE_READ_BLOCK_REQUEST:
	case TCODE_LOCK_REQUEST:
687
		response->header[0] |= HEADER_TCODE(tcode + 2);
688
		response->header[3] =
689 690
			HEADER_DATA_LENGTH(length) |
			HEADER_EXTENDED_TCODE(extended_tcode);
691
		response->header_length = 16;
692 693
		response->payload = payload;
		response->payload_length = length;
694 695 696
		break;

	default:
697
		WARN(1, "wrong tcode %d", tcode);
698
	}
699

700
	response->payload_mapped = false;
701
}
702
EXPORT_SYMBOL(fw_fill_response);
703

704 705 706 707 708 709 710 711 712 713 714 715 716 717 718 719 720 721
static u32 compute_split_timeout_timestamp(struct fw_card *card,
					   u32 request_timestamp)
{
	unsigned int cycles;
	u32 timestamp;

	cycles = card->split_timeout_cycles;
	cycles += request_timestamp & 0x1fff;

	timestamp = request_timestamp & ~0x1fff;
	timestamp += (cycles / 8000) << 13;
	timestamp |= cycles % 8000;

	return timestamp;
}

static struct fw_request *allocate_request(struct fw_card *card,
					   struct fw_packet *p)
722 723 724
{
	struct fw_request *request;
	u32 *data, length;
725
	int request_tcode;
726

727
	request_tcode = HEADER_GET_TCODE(p->header[0]);
728 729
	switch (request_tcode) {
	case TCODE_WRITE_QUADLET_REQUEST:
730
		data = &p->header[3];
731 732 733 734 735
		length = 4;
		break;

	case TCODE_WRITE_BLOCK_REQUEST:
	case TCODE_LOCK_REQUEST:
736
		data = p->payload;
737
		length = HEADER_GET_DATA_LENGTH(p->header[3]);
738 739 740 741 742 743 744 745 746
		break;

	case TCODE_READ_QUADLET_REQUEST:
		data = NULL;
		length = 4;
		break;

	case TCODE_READ_BLOCK_REQUEST:
		data = NULL;
747
		length = HEADER_GET_DATA_LENGTH(p->header[3]);
748 749 750
		break;

	default:
751 752
		fw_error("ERROR - corrupt request received - %08x %08x %08x\n",
			 p->header[0], p->header[1], p->header[2]);
753 754 755
		return NULL;
	}

756
	request = kmalloc(sizeof(*request) + length, GFP_ATOMIC);
757 758 759
	if (request == NULL)
		return NULL;

760
	request->response.speed = p->speed;
761 762
	request->response.timestamp =
			compute_split_timeout_timestamp(card, p->timestamp);
763
	request->response.generation = p->generation;
764
	request->response.ack = 0;
765
	request->response.callback = free_response_callback;
766
	request->ack = p->ack;
767
	request->length = length;
768
	if (data)
769
		memcpy(request->data, data, length);
770

771
	memcpy(request->request_header, p->header, sizeof(p->header));
772 773 774 775

	return request;
}

776 777
void fw_send_response(struct fw_card *card,
		      struct fw_request *request, int rcode)
778
{
779 780 781
	if (WARN_ONCE(!request, "invalid for FCP address handlers"))
		return;

782 783 784
	/* unified transaction or broadcast transaction: don't respond */
	if (request->ack != ACK_PENDING ||
	    HEADER_DESTINATION_IS_BROADCAST(request->request_header[0])) {
785
		kfree(request);
786
		return;
787
	}
788

789 790
	if (rcode == RCODE_COMPLETE)
		fw_fill_response(&request->response, request->request_header,
791 792
				 rcode, request->data,
				 fw_get_response_length(request));
793 794 795
	else
		fw_fill_response(&request->response, request->request_header,
				 rcode, NULL, 0);
796 797 798 799 800

	card->driver->send_response(card, &request->response);
}
EXPORT_SYMBOL(fw_send_response);

801 802 803 804
static void handle_exclusive_region_request(struct fw_card *card,
					    struct fw_packet *p,
					    struct fw_request *request,
					    unsigned long long offset)
805 806 807
{
	struct fw_address_handler *handler;
	unsigned long flags;
808
	int tcode, destination, source;
809

810
	destination = HEADER_GET_DESTINATION(p->header[0]);
811
	source      = HEADER_GET_SOURCE(p->header[1]);
812 813 814
	tcode       = HEADER_GET_TCODE(p->header[0]);
	if (tcode == TCODE_LOCK_REQUEST)
		tcode = 0x10 + HEADER_GET_EXTENDED_TCODE(p->header[3]);
815 816 817 818 819 820

	spin_lock_irqsave(&address_handler_lock, flags);
	handler = lookup_enclosing_address_handler(&address_handler_list,
						   offset, request->length);
	spin_unlock_irqrestore(&address_handler_lock, flags);

821 822
	/*
	 * FIXME: lookup the fw_node corresponding to the sender of
823 824 825
	 * this request and pass that to the address handler instead
	 * of the node ID.  We may also want to move the address
	 * allocations to fw_node so we only do this callback if the
826 827
	 * upper layers registered it for this node.
	 */
828 829 830 831 832 833

	if (handler == NULL)
		fw_send_response(card, request, RCODE_ADDRESS_ERROR);
	else
		handler->address_callback(card, request,
					  tcode, destination, source,
834
					  p->generation, offset,
835 836 837
					  request->data, request->length,
					  handler->callback_data);
}
838 839 840 841 842 843 844 845 846 847 848 849 850 851 852 853 854 855 856 857 858 859 860 861 862 863 864 865 866 867 868 869 870 871

static void handle_fcp_region_request(struct fw_card *card,
				      struct fw_packet *p,
				      struct fw_request *request,
				      unsigned long long offset)
{
	struct fw_address_handler *handler;
	unsigned long flags;
	int tcode, destination, source;

	if ((offset != (CSR_REGISTER_BASE | CSR_FCP_COMMAND) &&
	     offset != (CSR_REGISTER_BASE | CSR_FCP_RESPONSE)) ||
	    request->length > 0x200) {
		fw_send_response(card, request, RCODE_ADDRESS_ERROR);

		return;
	}

	tcode       = HEADER_GET_TCODE(p->header[0]);
	destination = HEADER_GET_DESTINATION(p->header[0]);
	source      = HEADER_GET_SOURCE(p->header[1]);

	if (tcode != TCODE_WRITE_QUADLET_REQUEST &&
	    tcode != TCODE_WRITE_BLOCK_REQUEST) {
		fw_send_response(card, request, RCODE_TYPE_ERROR);

		return;
	}

	spin_lock_irqsave(&address_handler_lock, flags);
	list_for_each_entry(handler, &address_handler_list, link) {
		if (is_enclosing_handler(handler, offset, request->length))
			handler->address_callback(card, NULL, tcode,
						  destination, source,
872 873
						  p->generation, offset,
						  request->data,
874 875 876 877 878 879 880 881 882 883 884 885 886 887 888 889
						  request->length,
						  handler->callback_data);
	}
	spin_unlock_irqrestore(&address_handler_lock, flags);

	fw_send_response(card, request, RCODE_COMPLETE);
}

void fw_core_handle_request(struct fw_card *card, struct fw_packet *p)
{
	struct fw_request *request;
	unsigned long long offset;

	if (p->ack != ACK_PENDING && p->ack != ACK_COMPLETE)
		return;

890 891 892 893 894
	if (TCODE_IS_LINK_INTERNAL(HEADER_GET_TCODE(p->header[0]))) {
		fw_cdev_handle_phy_packet(card, p);
		return;
	}

895
	request = allocate_request(card, p);
896 897 898 899 900 901 902 903 904 905 906 907 908 909
	if (request == NULL) {
		/* FIXME: send statically allocated busy packet. */
		return;
	}

	offset = ((u64)HEADER_GET_OFFSET_HIGH(p->header[1]) << 32) |
		p->header[2];

	if (!is_in_fcp_region(offset, request->length))
		handle_exclusive_region_request(card, p, request, offset);
	else
		handle_fcp_region_request(card, p, request, offset);

}
910 911
EXPORT_SYMBOL(fw_core_handle_request);

912
void fw_core_handle_response(struct fw_card *card, struct fw_packet *p)
913 914 915 916 917
{
	struct fw_transaction *t;
	unsigned long flags;
	u32 *data;
	size_t data_length;
918
	int tcode, tlabel, source, rcode;
919

920 921 922 923
	tcode	= HEADER_GET_TCODE(p->header[0]);
	tlabel	= HEADER_GET_TLABEL(p->header[0]);
	source	= HEADER_GET_SOURCE(p->header[1]);
	rcode	= HEADER_GET_RCODE(p->header[1]);
924 925 926 927

	spin_lock_irqsave(&card->lock, flags);
	list_for_each_entry(t, &card->transaction_list, link) {
		if (t->node_id == source && t->tlabel == tlabel) {
928 929 930 931
			if (!del_timer(&t->split_timeout_timer)) {
				spin_unlock_irqrestore(&card->lock, flags);
				goto timed_out;
			}
932
			list_del_init(&t->link);
933
			card->tlabel_mask &= ~(1ULL << t->tlabel);
934 935 936 937 938 939
			break;
		}
	}
	spin_unlock_irqrestore(&card->lock, flags);

	if (&t->link == &card->transaction_list) {
940
 timed_out:
941 942
		fw_notify("Unsolicited response (source %x, tlabel %x)\n",
			  source, tlabel);
943 944 945
		return;
	}

946 947 948 949
	/*
	 * FIXME: sanity check packet, is length correct, does tcodes
	 * and addresses match.
	 */
950 951 952

	switch (tcode) {
	case TCODE_READ_QUADLET_RESPONSE:
953
		data = (u32 *) &p->header[3];
954 955 956 957 958 959 960 961 962 963
		data_length = 4;
		break;

	case TCODE_WRITE_RESPONSE:
		data = NULL;
		data_length = 0;
		break;

	case TCODE_READ_BLOCK_RESPONSE:
	case TCODE_LOCK_RESPONSE:
964
		data = p->payload;
965
		data_length = HEADER_GET_DATA_LENGTH(p->header[3]);
966 967 968 969 970 971 972 973 974
		break;

	default:
		/* Should never happen, this is just to shut up gcc. */
		data = NULL;
		data_length = 0;
		break;
	}

975 976 977 978 979 980
	/*
	 * The response handler may be executed while the request handler
	 * is still pending.  Cancel the request handler.
	 */
	card->driver->cancel_packet(card, &t->packet);

981 982 983 984
	t->callback(card, rcode, data, data_length, t->callback_data);
}
EXPORT_SYMBOL(fw_core_handle_response);

985
static const struct fw_address_region topology_map_region =
986 987
	{ .start = CSR_REGISTER_BASE | CSR_TOPOLOGY_MAP,
	  .end   = CSR_REGISTER_BASE | CSR_TOPOLOGY_MAP_END, };
988

989 990
static void handle_topology_map(struct fw_card *card, struct fw_request *request,
		int tcode, int destination, int source, int generation,
991 992
		unsigned long long offset, void *payload, size_t length,
		void *callback_data)
993
{
994
	int start;
995 996 997 998 999 1000 1001 1002 1003 1004 1005 1006

	if (!TCODE_IS_READ_REQUEST(tcode)) {
		fw_send_response(card, request, RCODE_TYPE_ERROR);
		return;
	}

	if ((offset & 3) > 0 || (length & 3) > 0) {
		fw_send_response(card, request, RCODE_ADDRESS_ERROR);
		return;
	}

	start = (offset - topology_map_region.start) / 4;
1007
	memcpy(payload, &card->topology_map[start], length);
1008 1009 1010 1011 1012

	fw_send_response(card, request, RCODE_COMPLETE);
}

static struct fw_address_handler topology_map = {
1013
	.length			= 0x400,
1014 1015 1016
	.address_callback	= handle_topology_map,
};

1017
static const struct fw_address_region registers_region =
1018 1019
	{ .start = CSR_REGISTER_BASE,
	  .end   = CSR_REGISTER_BASE | CSR_CONFIG_ROM, };
1020

1021 1022 1023 1024 1025 1026 1027 1028 1029 1030 1031 1032 1033
static void update_split_timeout(struct fw_card *card)
{
	unsigned int cycles;

	cycles = card->split_timeout_hi * 8000 + (card->split_timeout_lo >> 19);

	cycles = max(cycles, 800u); /* minimum as per the spec */
	cycles = min(cycles, 3u * 8000u); /* maximum OHCI timeout */

	card->split_timeout_cycles = cycles;
	card->split_timeout_jiffies = DIV_ROUND_UP(cycles * HZ, 8000);
}

1034 1035
static void handle_registers(struct fw_card *card, struct fw_request *request,
		int tcode, int destination, int source, int generation,
1036 1037
		unsigned long long offset, void *payload, size_t length,
		void *callback_data)
1038
{
1039
	int reg = offset & ~CSR_REGISTER_BASE;
1040
	__be32 *data = payload;
1041
	int rcode = RCODE_COMPLETE;
1042
	unsigned long flags;
1043 1044

	switch (reg) {
1045 1046 1047 1048 1049 1050
	case CSR_PRIORITY_BUDGET:
		if (!card->priority_budget_implemented) {
			rcode = RCODE_ADDRESS_ERROR;
			break;
		}
		/* else fall through */
1051

1052
	case CSR_NODE_IDS:
1053 1054 1055 1056
		/*
		 * per IEEE 1394-2008 8.3.22.3, not IEEE 1394.1-2004 3.2.8
		 * and 9.6, but interoperable with IEEE 1394.1-2004 bridges
		 */
1057 1058 1059 1060 1061 1062 1063
		/* fall through */

	case CSR_STATE_CLEAR:
	case CSR_STATE_SET:
	case CSR_CYCLE_TIME:
	case CSR_BUS_TIME:
	case CSR_BUSY_TIMEOUT:
1064
		if (tcode == TCODE_READ_QUADLET_REQUEST)
1065
			*data = cpu_to_be32(card->driver->read_csr(card, reg));
1066
		else if (tcode == TCODE_WRITE_QUADLET_REQUEST)
1067
			card->driver->write_csr(card, reg, be32_to_cpu(*data));
1068 1069 1070 1071
		else
			rcode = RCODE_TYPE_ERROR;
		break;

1072
	case CSR_RESET_START:
1073
		if (tcode == TCODE_WRITE_QUADLET_REQUEST)
1074 1075
			card->driver->write_csr(card, CSR_STATE_CLEAR,
						CSR_STATE_BIT_ABDICATE);
1076
		else
1077 1078 1079
			rcode = RCODE_TYPE_ERROR;
		break;

1080 1081 1082 1083 1084 1085 1086 1087 1088 1089 1090 1091 1092 1093 1094 1095 1096 1097 1098 1099 1100 1101 1102 1103 1104 1105 1106
	case CSR_SPLIT_TIMEOUT_HI:
		if (tcode == TCODE_READ_QUADLET_REQUEST) {
			*data = cpu_to_be32(card->split_timeout_hi);
		} else if (tcode == TCODE_WRITE_QUADLET_REQUEST) {
			spin_lock_irqsave(&card->lock, flags);
			card->split_timeout_hi = be32_to_cpu(*data) & 7;
			update_split_timeout(card);
			spin_unlock_irqrestore(&card->lock, flags);
		} else {
			rcode = RCODE_TYPE_ERROR;
		}
		break;

	case CSR_SPLIT_TIMEOUT_LO:
		if (tcode == TCODE_READ_QUADLET_REQUEST) {
			*data = cpu_to_be32(card->split_timeout_lo);
		} else if (tcode == TCODE_WRITE_QUADLET_REQUEST) {
			spin_lock_irqsave(&card->lock, flags);
			card->split_timeout_lo =
					be32_to_cpu(*data) & 0xfff80000;
			update_split_timeout(card);
			spin_unlock_irqrestore(&card->lock, flags);
		} else {
			rcode = RCODE_TYPE_ERROR;
		}
		break;

1107 1108 1109 1110 1111 1112 1113 1114 1115
	case CSR_MAINT_UTILITY:
		if (tcode == TCODE_READ_QUADLET_REQUEST)
			*data = card->maint_utility_register;
		else if (tcode == TCODE_WRITE_QUADLET_REQUEST)
			card->maint_utility_register = *data;
		else
			rcode = RCODE_TYPE_ERROR;
		break;

1116 1117 1118 1119 1120 1121 1122 1123 1124
	case CSR_BROADCAST_CHANNEL:
		if (tcode == TCODE_READ_QUADLET_REQUEST)
			*data = cpu_to_be32(card->broadcast_channel);
		else if (tcode == TCODE_WRITE_QUADLET_REQUEST)
			card->broadcast_channel =
			    (be32_to_cpu(*data) & BROADCAST_CHANNEL_VALID) |
			    BROADCAST_CHANNEL_INITIAL;
		else
			rcode = RCODE_TYPE_ERROR;
1125 1126 1127 1128 1129 1130
		break;

	case CSR_BUS_MANAGER_ID:
	case CSR_BANDWIDTH_AVAILABLE:
	case CSR_CHANNELS_AVAILABLE_HI:
	case CSR_CHANNELS_AVAILABLE_LO:
1131 1132
		/*
		 * FIXME: these are handled by the OHCI hardware and
1133 1134 1135
		 * the stack never sees these request. If we add
		 * support for a new type of controller that doesn't
		 * handle this in hardware we need to deal with these
1136 1137
		 * transactions.
		 */
1138 1139 1140 1141
		BUG();
		break;

	default:
1142
		rcode = RCODE_ADDRESS_ERROR;
1143 1144
		break;
	}
1145 1146

	fw_send_response(card, request, rcode);
1147 1148 1149 1150 1151 1152 1153
}

static struct fw_address_handler registers = {
	.length			= 0x400,
	.address_callback	= handle_registers,
};

1154 1155 1156 1157
MODULE_AUTHOR("Kristian Hoegsberg <krh@bitplanet.net>");
MODULE_DESCRIPTION("Core IEEE1394 transaction logic");
MODULE_LICENSE("GPL");

1158
static const u32 vendor_textual_descriptor[] = {
1159
	/* textual descriptor leaf () */
1160
	0x00060000,
1161 1162 1163 1164 1165
	0x00000000,
	0x00000000,
	0x4c696e75,		/* L i n u */
	0x78204669,		/* x   F i */
	0x72657769,		/* r e w i */
1166
	0x72650000,		/* r e     */
1167 1168
};

1169 1170 1171 1172 1173 1174 1175 1176 1177 1178 1179
static const u32 model_textual_descriptor[] = {
	/* model descriptor leaf () */
	0x00030000,
	0x00000000,
	0x00000000,
	0x4a756a75,		/* J u j u */
};

static struct fw_descriptor vendor_id_descriptor = {
	.length = ARRAY_SIZE(vendor_textual_descriptor),
	.immediate = 0x03d00d1e,
1180
	.key = 0x81000000,
1181 1182 1183 1184 1185 1186 1187 1188
	.data = vendor_textual_descriptor,
};

static struct fw_descriptor model_id_descriptor = {
	.length = ARRAY_SIZE(model_textual_descriptor),
	.immediate = 0x17000001,
	.key = 0x81000000,
	.data = model_textual_descriptor,
1189 1190 1191 1192
};

static int __init fw_core_init(void)
{
1193
	int ret;
1194

1195 1196 1197
	ret = bus_register(&fw_bus_type);
	if (ret < 0)
		return ret;
1198

1199 1200 1201 1202 1203 1204
	fw_cdev_major = register_chrdev(0, "firewire", &fw_device_ops);
	if (fw_cdev_major < 0) {
		bus_unregister(&fw_bus_type);
		return fw_cdev_major;
	}

1205 1206 1207 1208
	fw_core_add_address_handler(&topology_map, &topology_map_region);
	fw_core_add_address_handler(&registers, &registers_region);
	fw_core_add_descriptor(&vendor_id_descriptor);
	fw_core_add_descriptor(&model_id_descriptor);
1209 1210 1211 1212 1213 1214

	return 0;
}

static void __exit fw_core_cleanup(void)
{
1215
	unregister_chrdev(fw_cdev_major, "firewire");
1216
	bus_unregister(&fw_bus_type);
1217
	idr_destroy(&fw_device_idr);
1218 1219 1220 1221
}

module_init(fw_core_init);
module_exit(fw_core_cleanup);