tlb_uv.c 56.6 KB
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/*
 *	SGI UltraViolet TLB flush routines.
 *
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 *	(c) 2008-2014 Cliff Wickman <cpw@sgi.com>, SGI.
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 *
 *	This code is released under the GNU General Public License version 2 or
 *	later.
 */
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#include <linux/seq_file.h>
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#include <linux/proc_fs.h>
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#include <linux/debugfs.h>
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#include <linux/kernel.h>
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#include <linux/slab.h>
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#include <linux/delay.h>
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#include <asm/mmu_context.h>
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#include <asm/uv/uv.h>
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#include <asm/uv/uv_mmrs.h>
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#include <asm/uv/uv_hub.h>
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#include <asm/uv/uv_bau.h>
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#include <asm/apic.h>
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#include <asm/idle.h>
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#include <asm/tsc.h>
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#include <asm/irq_vectors.h>
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#include <asm/timer.h>
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/* timeouts in nanoseconds (indexed by UVH_AGING_PRESCALE_SEL urgency7 30:28) */
static int timeout_base_ns[] = {
		20,
		160,
		1280,
		10240,
		81920,
		655360,
		5242880,
		167772160
};
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static int timeout_us;
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static bool nobau = true;
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static int nobau_perm;
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static cycles_t congested_cycles;
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/* tunables: */
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static int max_concurr		= MAX_BAU_CONCURRENT;
static int max_concurr_const	= MAX_BAU_CONCURRENT;
static int plugged_delay	= PLUGGED_DELAY;
static int plugsb4reset		= PLUGSB4RESET;
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static int giveup_limit		= GIVEUP_LIMIT;
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static int timeoutsb4reset	= TIMEOUTSB4RESET;
static int ipi_reset_limit	= IPI_RESET_LIMIT;
static int complete_threshold	= COMPLETE_THRESHOLD;
static int congested_respns_us	= CONGESTED_RESPONSE_US;
static int congested_reps	= CONGESTED_REPS;
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static int disabled_period	= DISABLED_PERIOD;
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static struct tunables tunables[] = {
	{&max_concurr, MAX_BAU_CONCURRENT}, /* must be [0] */
	{&plugged_delay, PLUGGED_DELAY},
	{&plugsb4reset, PLUGSB4RESET},
	{&timeoutsb4reset, TIMEOUTSB4RESET},
	{&ipi_reset_limit, IPI_RESET_LIMIT},
	{&complete_threshold, COMPLETE_THRESHOLD},
	{&congested_respns_us, CONGESTED_RESPONSE_US},
	{&congested_reps, CONGESTED_REPS},
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	{&disabled_period, DISABLED_PERIOD},
	{&giveup_limit, GIVEUP_LIMIT}
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};

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static struct dentry *tunables_dir;
static struct dentry *tunables_file;
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/* these correspond to the statistics printed by ptc_seq_show() */
static char *stat_description[] = {
	"sent:     number of shootdown messages sent",
	"stime:    time spent sending messages",
	"numuvhubs: number of hubs targeted with shootdown",
	"numuvhubs16: number times 16 or more hubs targeted",
	"numuvhubs8: number times 8 or more hubs targeted",
	"numuvhubs4: number times 4 or more hubs targeted",
	"numuvhubs2: number times 2 or more hubs targeted",
	"numuvhubs1: number times 1 hub targeted",
	"numcpus:  number of cpus targeted with shootdown",
	"dto:      number of destination timeouts",
	"retries:  destination timeout retries sent",
	"rok:   :  destination timeouts successfully retried",
	"resetp:   ipi-style resource resets for plugs",
	"resett:   ipi-style resource resets for timeouts",
	"giveup:   fall-backs to ipi-style shootdowns",
	"sto:      number of source timeouts",
	"bz:       number of stay-busy's",
	"throt:    number times spun in throttle",
	"swack:   image of UVH_LB_BAU_INTD_SOFTWARE_ACKNOWLEDGE",
	"recv:     shootdown messages received",
	"rtime:    time spent processing messages",
	"all:      shootdown all-tlb messages",
	"one:      shootdown one-tlb messages",
	"mult:     interrupts that found multiple messages",
	"none:     interrupts that found no messages",
	"retry:    number of retry messages processed",
	"canc:     number messages canceled by retries",
	"nocan:    number retries that found nothing to cancel",
	"reset:    number of ipi-style reset requests processed",
	"rcan:     number messages canceled by reset requests",
	"disable:  number times use of the BAU was disabled",
	"enable:   number times use of the BAU was re-enabled"
};

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static int __init setup_bau(char *arg)
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{
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	int result;

	if (!arg)
		return -EINVAL;

	result = strtobool(arg, &nobau);
	if (result)
		return result;

	/* we need to flip the logic here, so that bau=y sets nobau to false */
	nobau = !nobau;

	if (!nobau)
		pr_info("UV BAU Enabled\n");
	else
		pr_info("UV BAU Disabled\n");

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	return 0;
}
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early_param("bau", setup_bau);
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/* base pnode in this partition */
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static int uv_base_pnode __read_mostly;
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static DEFINE_PER_CPU(struct ptc_stats, ptcstats);
static DEFINE_PER_CPU(struct bau_control, bau_control);
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static DEFINE_PER_CPU(cpumask_var_t, uv_flush_tlb_mask);

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static void
set_bau_on(void)
{
	int cpu;
	struct bau_control *bcp;

	if (nobau_perm) {
		pr_info("BAU not initialized; cannot be turned on\n");
		return;
	}
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	nobau = false;
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	for_each_present_cpu(cpu) {
		bcp = &per_cpu(bau_control, cpu);
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		bcp->nobau = false;
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	}
	pr_info("BAU turned on\n");
	return;
}

static void
set_bau_off(void)
{
	int cpu;
	struct bau_control *bcp;

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	nobau = true;
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	for_each_present_cpu(cpu) {
		bcp = &per_cpu(bau_control, cpu);
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		bcp->nobau = true;
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	}
	pr_info("BAU turned off\n");
	return;
}

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/*
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 * Determine the first node on a uvhub. 'Nodes' are used for kernel
 * memory allocation.
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 */
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static int __init uvhub_to_first_node(int uvhub)
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{
	int node, b;

	for_each_online_node(node) {
		b = uv_node_to_blade_id(node);
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		if (uvhub == b)
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			return node;
	}
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	return -1;
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}

/*
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 * Determine the apicid of the first cpu on a uvhub.
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 */
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static int __init uvhub_to_first_apicid(int uvhub)
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{
	int cpu;

	for_each_present_cpu(cpu)
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		if (uvhub == uv_cpu_to_blade_id(cpu))
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			return per_cpu(x86_cpu_to_apicid, cpu);
	return -1;
}

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/*
 * Free a software acknowledge hardware resource by clearing its Pending
 * bit. This will return a reply to the sender.
 * If the message has timed out, a reply has already been sent by the
 * hardware but the resource has not been released. In that case our
 * clear of the Timeout bit (as well) will free the resource. No reply will
 * be sent (the hardware will only do one reply per message).
 */
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static void reply_to_message(struct msg_desc *mdp, struct bau_control *bcp,
						int do_acknowledge)
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{
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	unsigned long dw;
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	struct bau_pq_entry *msg;
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	msg = mdp->msg;
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	if (!msg->canceled && do_acknowledge) {
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		dw = (msg->swack_vec << UV_SW_ACK_NPENDING) | msg->swack_vec;
		write_mmr_sw_ack(dw);
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	}
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	msg->replied_to = 1;
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	msg->swack_vec = 0;
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}

/*
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 * Process the receipt of a RETRY message
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 */
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static void bau_process_retry_msg(struct msg_desc *mdp,
					struct bau_control *bcp)
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{
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	int i;
	int cancel_count = 0;
	unsigned long msg_res;
	unsigned long mmr = 0;
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	struct bau_pq_entry *msg = mdp->msg;
	struct bau_pq_entry *msg2;
	struct ptc_stats *stat = bcp->statp;
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	stat->d_retries++;
	/*
	 * cancel any message from msg+1 to the retry itself
	 */
	for (msg2 = msg+1, i = 0; i < DEST_Q_SIZE; msg2++, i++) {
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		if (msg2 > mdp->queue_last)
			msg2 = mdp->queue_first;
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		if (msg2 == msg)
			break;

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		/* same conditions for cancellation as do_reset */
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		if ((msg2->replied_to == 0) && (msg2->canceled == 0) &&
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		    (msg2->swack_vec) && ((msg2->swack_vec &
			msg->swack_vec) == 0) &&
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		    (msg2->sending_cpu == msg->sending_cpu) &&
		    (msg2->msg_type != MSG_NOOP)) {
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			mmr = read_mmr_sw_ack();
			msg_res = msg2->swack_vec;
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			/*
			 * This is a message retry; clear the resources held
			 * by the previous message only if they timed out.
			 * If it has not timed out we have an unexpected
			 * situation to report.
			 */
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			if (mmr & (msg_res << UV_SW_ACK_NPENDING)) {
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				unsigned long mr;
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				/*
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				 * Is the resource timed out?
				 * Make everyone ignore the cancelled message.
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				 */
				msg2->canceled = 1;
				stat->d_canceled++;
				cancel_count++;
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				mr = (msg_res << UV_SW_ACK_NPENDING) | msg_res;
				write_mmr_sw_ack(mr);
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			}
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		}
	}
	if (!cancel_count)
		stat->d_nocanceled++;
}
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/*
 * Do all the things a cpu should do for a TLB shootdown message.
 * Other cpu's may come here at the same time for this message.
 */
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static void bau_process_message(struct msg_desc *mdp, struct bau_control *bcp,
						int do_acknowledge)
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{
	short socket_ack_count = 0;
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	short *sp;
	struct atomic_short *asp;
	struct ptc_stats *stat = bcp->statp;
	struct bau_pq_entry *msg = mdp->msg;
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	struct bau_control *smaster = bcp->socket_master;
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	/*
	 * This must be a normal message, or retry of a normal message
	 */
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	if (msg->address == TLB_FLUSH_ALL) {
		local_flush_tlb();
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		stat->d_alltlb++;
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	} else {
		__flush_tlb_one(msg->address);
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		stat->d_onetlb++;
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	}
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	stat->d_requestee++;

	/*
	 * One cpu on each uvhub has the additional job on a RETRY
	 * of releasing the resource held by the message that is
	 * being retried.  That message is identified by sending
	 * cpu number.
	 */
	if (msg->msg_type == MSG_RETRY && bcp == bcp->uvhub_master)
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		bau_process_retry_msg(mdp, bcp);
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	/*
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	 * This is a swack message, so we have to reply to it.
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	 * Count each responding cpu on the socket. This avoids
	 * pinging the count's cache line back and forth between
	 * the sockets.
	 */
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	sp = &smaster->socket_acknowledge_count[mdp->msg_slot];
	asp = (struct atomic_short *)sp;
	socket_ack_count = atom_asr(1, asp);
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	if (socket_ack_count == bcp->cpus_in_socket) {
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		int msg_ack_count;
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		/*
		 * Both sockets dump their completed count total into
		 * the message's count.
		 */
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		*sp = 0;
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		asp = (struct atomic_short *)&msg->acknowledge_count;
		msg_ack_count = atom_asr(socket_ack_count, asp);
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		if (msg_ack_count == bcp->cpus_in_uvhub) {
			/*
			 * All cpus in uvhub saw it; reply
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			 * (unless we are in the UV2 workaround)
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			 */
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			reply_to_message(mdp, bcp, do_acknowledge);
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		}
	}
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	return;
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}

/*
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 * Determine the first cpu on a pnode.
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 */
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static int pnode_to_first_cpu(int pnode, struct bau_control *smaster)
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{
	int cpu;
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	struct hub_and_pnode *hpp;

	for_each_present_cpu(cpu) {
		hpp = &smaster->thp[cpu];
		if (pnode == hpp->pnode)
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			return cpu;
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	}
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	return -1;
}

/*
 * Last resort when we get a large number of destination timeouts is
 * to clear resources held by a given cpu.
 * Do this with IPI so that all messages in the BAU message queue
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 * can be identified by their nonzero swack_vec field.
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 *
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 * This is entered for a single cpu on the uvhub.
 * The sender want's this uvhub to free a specific message's
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 * swack resources.
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 */
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static void do_reset(void *ptr)
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{
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	int i;
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	struct bau_control *bcp = &per_cpu(bau_control, smp_processor_id());
	struct reset_args *rap = (struct reset_args *)ptr;
	struct bau_pq_entry *msg;
	struct ptc_stats *stat = bcp->statp;
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	stat->d_resets++;
	/*
	 * We're looking for the given sender, and
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	 * will free its swack resource.
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	 * If all cpu's finally responded after the timeout, its
	 * message 'replied_to' was set.
	 */
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	for (msg = bcp->queue_first, i = 0; i < DEST_Q_SIZE; msg++, i++) {
		unsigned long msg_res;
		/* do_reset: same conditions for cancellation as
		   bau_process_retry_msg() */
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		if ((msg->replied_to == 0) &&
		    (msg->canceled == 0) &&
		    (msg->sending_cpu == rap->sender) &&
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		    (msg->swack_vec) &&
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		    (msg->msg_type != MSG_NOOP)) {
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			unsigned long mmr;
			unsigned long mr;
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			/*
			 * make everyone else ignore this message
			 */
			msg->canceled = 1;
			/*
			 * only reset the resource if it is still pending
			 */
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			mmr = read_mmr_sw_ack();
			msg_res = msg->swack_vec;
			mr = (msg_res << UV_SW_ACK_NPENDING) | msg_res;
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			if (mmr & msg_res) {
				stat->d_rcanceled++;
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				write_mmr_sw_ack(mr);
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			}
		}
	}
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	return;
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}

/*
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 * Use IPI to get all target uvhubs to release resources held by
 * a given sending cpu number.
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 */
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static void reset_with_ipi(struct pnmask *distribution, struct bau_control *bcp)
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{
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	int pnode;
	int apnode;
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	int maskbits;
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	int sender = bcp->cpu;
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	cpumask_t *mask = bcp->uvhub_master->cpumask;
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	struct bau_control *smaster = bcp->socket_master;
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	struct reset_args reset_args;
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	reset_args.sender = sender;
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	cpumask_clear(mask);
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	/* find a single cpu for each uvhub in this distribution mask */
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	maskbits = sizeof(struct pnmask) * BITSPERBYTE;
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	/* each bit is a pnode relative to the partition base pnode */
	for (pnode = 0; pnode < maskbits; pnode++) {
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		int cpu;
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		if (!bau_uvhub_isset(pnode, distribution))
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			continue;
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		apnode = pnode + bcp->partition_base_pnode;
		cpu = pnode_to_first_cpu(apnode, smaster);
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		cpumask_set_cpu(cpu, mask);
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	}
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	/* IPI all cpus; preemption is already disabled */
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	smp_call_function_many(mask, do_reset, (void *)&reset_args, 1);
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	return;
}

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/*
 * Not to be confused with cycles_2_ns() from tsc.c; this gives a relative
 * number, not an absolute. It converts a duration in cycles to a duration in
 * ns.
 */
static inline unsigned long long cycles_2_ns(unsigned long long cyc)
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{
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	struct cyc2ns_data *data = cyc2ns_read_begin();
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	unsigned long long ns;
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	ns = mul_u64_u32_shr(cyc, data->cyc2ns_mul, data->cyc2ns_shift);

	cyc2ns_read_end(data);
	return ns;
}

/*
 * The reverse of the above; converts a duration in ns to a duration in cycles.
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 */
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static inline unsigned long long ns_2_cycles(unsigned long long ns)
{
	struct cyc2ns_data *data = cyc2ns_read_begin();
	unsigned long long cyc;

	cyc = (ns << data->cyc2ns_shift) / data->cyc2ns_mul;

	cyc2ns_read_end(data);
	return cyc;
}

static inline unsigned long cycles_2_us(unsigned long long cyc)
{
	return cycles_2_ns(cyc) / NSEC_PER_USEC;
}

static inline cycles_t sec_2_cycles(unsigned long sec)
{
	return ns_2_cycles(sec * NSEC_PER_SEC);
}

static inline unsigned long long usec_2_cycles(unsigned long usec)
{
	return ns_2_cycles(usec * NSEC_PER_USEC);
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}

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/*
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 * wait for all cpus on this hub to finish their sends and go quiet
 * leaves uvhub_quiesce set so that no new broadcasts are started by
 * bau_flush_send_and_wait()
 */
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static inline void quiesce_local_uvhub(struct bau_control *hmaster)
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{
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	atom_asr(1, (struct atomic_short *)&hmaster->uvhub_quiesce);
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}

/*
 * mark this quiet-requestor as done
 */
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static inline void end_uvhub_quiesce(struct bau_control *hmaster)
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{
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	atom_asr(-1, (struct atomic_short *)&hmaster->uvhub_quiesce);
}

static unsigned long uv1_read_status(unsigned long mmr_offset, int right_shift)
{
	unsigned long descriptor_status;

	descriptor_status = uv_read_local_mmr(mmr_offset);
	descriptor_status >>= right_shift;
	descriptor_status &= UV_ACT_STATUS_MASK;
	return descriptor_status;
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}

/*
 * Wait for completion of a broadcast software ack message
 * return COMPLETE, RETRY(PLUGGED or TIMEOUT) or GIVEUP
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 */
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static int uv1_wait_completion(struct bau_desc *bau_desc,
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				unsigned long mmr_offset, int right_shift,
				struct bau_control *bcp, long try)
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{
	unsigned long descriptor_status;
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	cycles_t ttm;
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	struct ptc_stats *stat = bcp->statp;
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	descriptor_status = uv1_read_status(mmr_offset, right_shift);
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	/* spin on the status MMR, waiting for it to go idle */
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	while ((descriptor_status != DS_IDLE)) {
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		/*
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		 * Our software ack messages may be blocked because
		 * there are no swack resources available.  As long
		 * as none of them has timed out hardware will NACK
		 * our message and its state will stay IDLE.
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		 */
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		if (descriptor_status == DS_SOURCE_TIMEOUT) {
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			stat->s_stimeout++;
			return FLUSH_GIVEUP;
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		} else if (descriptor_status == DS_DESTINATION_TIMEOUT) {
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			stat->s_dtimeout++;
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			ttm = get_cycles();
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			/*
			 * Our retries may be blocked by all destination
			 * swack resources being consumed, and a timeout
			 * pending.  In that case hardware returns the
			 * ERROR that looks like a destination timeout.
			 */
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			if (cycles_2_us(ttm - bcp->send_message) < timeout_us) {
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				bcp->conseccompletes = 0;
				return FLUSH_RETRY_PLUGGED;
			}

			bcp->conseccompletes = 0;
			return FLUSH_RETRY_TIMEOUT;
		} else {
			/*
			 * descriptor_status is still BUSY
			 */
			cpu_relax();
		}
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		descriptor_status = uv1_read_status(mmr_offset, right_shift);
572 573 574 575 576
	}
	bcp->conseccompletes++;
	return FLUSH_COMPLETE;
}

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/*
578 579
 * UV2 could have an extra bit of status in the ACTIVATION_STATUS_2 register.
 * But not currently used.
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 */
581
static unsigned long uv2_3_read_status(unsigned long offset, int rshft, int desc)
582 583
{
	unsigned long descriptor_status;
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585 586
	descriptor_status =
		((read_lmmr(offset) >> rshft) & UV_ACT_STATUS_MASK) << 1;
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	return descriptor_status;
}

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/*
 * Return whether the status of the descriptor that is normally used for this
 * cpu (the one indexed by its hub-relative cpu number) is busy.
 * The status of the original 32 descriptors is always reflected in the 64
 * bits of UVH_LB_BAU_SB_ACTIVATION_STATUS_0.
 * The bit provided by the activation_status_2 register is irrelevant to
 * the status if it is only being tested for busy or not busy.
 */
int normal_busy(struct bau_control *bcp)
{
	int cpu = bcp->uvhub_cpu;
	int mmr_offset;
	int right_shift;

	mmr_offset = UVH_LB_BAU_SB_ACTIVATION_STATUS_0;
	right_shift = cpu * UV_ACT_STATUS_SIZE;
	return (((((read_lmmr(mmr_offset) >> right_shift) &
				UV_ACT_STATUS_MASK)) << 1) == UV2H_DESC_BUSY);
}

/*
 * Entered when a bau descriptor has gone into a permanent busy wait because
 * of a hardware bug.
 * Workaround the bug.
 */
int handle_uv2_busy(struct bau_control *bcp)
{
	struct ptc_stats *stat = bcp->statp;

	stat->s_uv2_wars++;
620 621
	bcp->busy = 1;
	return FLUSH_GIVEUP;
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}

624
static int uv2_3_wait_completion(struct bau_desc *bau_desc,
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				unsigned long mmr_offset, int right_shift,
				struct bau_control *bcp, long try)
{
	unsigned long descriptor_stat;
	cycles_t ttm;
630
	int desc = bcp->uvhub_cpu;
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	long busy_reps = 0;
632 633
	struct ptc_stats *stat = bcp->statp;

634
	descriptor_stat = uv2_3_read_status(mmr_offset, right_shift, desc);
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636
	/* spin on the status MMR, waiting for it to go idle */
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	while (descriptor_stat != UV2H_DESC_IDLE) {
638 639 640 641 642 643 644 645
		if ((descriptor_stat == UV2H_DESC_SOURCE_TIMEOUT)) {
			/*
			 * A h/w bug on the destination side may
			 * have prevented the message being marked
			 * pending, thus it doesn't get replied to
			 * and gets continually nacked until it times
			 * out with a SOURCE_TIMEOUT.
			 */
646 647
			stat->s_stimeout++;
			return FLUSH_GIVEUP;
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		} else if (descriptor_stat == UV2H_DESC_DEST_TIMEOUT) {
649 650 651 652 653 654 655 656 657 658 659 660 661 662 663 664 665
			ttm = get_cycles();

			/*
			 * Our retries may be blocked by all destination
			 * swack resources being consumed, and a timeout
			 * pending.  In that case hardware returns the
			 * ERROR that looks like a destination timeout.
			 * Without using the extended status we have to
			 * deduce from the short time that this was a
			 * strong nack.
			 */
			if (cycles_2_us(ttm - bcp->send_message) < timeout_us) {
				bcp->conseccompletes = 0;
				stat->s_plugged++;
				/* FLUSH_RETRY_PLUGGED causes hang on boot */
				return FLUSH_GIVEUP;
			}
666 667
			stat->s_dtimeout++;
			bcp->conseccompletes = 0;
668 669
			/* FLUSH_RETRY_TIMEOUT causes hang on boot */
			return FLUSH_GIVEUP;
670
		} else {
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			busy_reps++;
			if (busy_reps > 1000000) {
				/* not to hammer on the clock */
				busy_reps = 0;
				ttm = get_cycles();
676
				if ((ttm - bcp->send_message) > bcp->timeout_interval)
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					return handle_uv2_busy(bcp);
			}
679
			/*
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			 * descriptor_stat is still BUSY
681 682
			 */
			cpu_relax();
683
		}
684
		descriptor_stat = uv2_3_read_status(mmr_offset, right_shift, desc);
685
	}
686
	bcp->conseccompletes++;
687 688 689
	return FLUSH_COMPLETE;
}

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/*
 * There are 2 status registers; each and array[32] of 2 bits. Set up for
 * which register to read and position in that register based on cpu in
 * current hub.
 */
695
static int wait_completion(struct bau_desc *bau_desc, struct bau_control *bcp, long try)
696
{
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	int right_shift;
	unsigned long mmr_offset;
699
	int desc = bcp->uvhub_cpu;
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	if (desc < UV_CPUS_PER_AS) {
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		mmr_offset = UVH_LB_BAU_SB_ACTIVATION_STATUS_0;
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		right_shift = desc * UV_ACT_STATUS_SIZE;
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	} else {
		mmr_offset = UVH_LB_BAU_SB_ACTIVATION_STATUS_1;
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		right_shift = ((desc - UV_CPUS_PER_AS) * UV_ACT_STATUS_SIZE);
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	}

709
	if (bcp->uvhub_version == 1)
710
		return uv1_wait_completion(bau_desc, mmr_offset, right_shift, bcp, try);
711
	else
712
		return uv2_3_wait_completion(bau_desc, mmr_offset, right_shift, bcp, try);
713 714
}

715
/*
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 * Our retries are blocked by all destination sw ack resources being
717 718 719
 * in use, and a timeout is pending. In that case hardware immediately
 * returns the ERROR that looks like a destination timeout.
 */
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static void destination_plugged(struct bau_desc *bau_desc,
			struct bau_control *bcp,
722 723 724 725
			struct bau_control *hmaster, struct ptc_stats *stat)
{
	udelay(bcp->plugged_delay);
	bcp->plugged_tries++;
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727 728
	if (bcp->plugged_tries >= bcp->plugsb4reset) {
		bcp->plugged_tries = 0;
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730
		quiesce_local_uvhub(hmaster);
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732
		spin_lock(&hmaster->queue_lock);
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		reset_with_ipi(&bau_desc->distribution, bcp);
734
		spin_unlock(&hmaster->queue_lock);
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736
		end_uvhub_quiesce(hmaster);
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738 739 740 741 742
		bcp->ipi_attempts++;
		stat->s_resets_plug++;
	}
}

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static void destination_timeout(struct bau_desc *bau_desc,
			struct bau_control *bcp, struct bau_control *hmaster,
			struct ptc_stats *stat)
746
{
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	hmaster->max_concurr = 1;
748 749 750
	bcp->timeout_tries++;
	if (bcp->timeout_tries >= bcp->timeoutsb4reset) {
		bcp->timeout_tries = 0;
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752
		quiesce_local_uvhub(hmaster);
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754
		spin_lock(&hmaster->queue_lock);
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		reset_with_ipi(&bau_desc->distribution, bcp);
756
		spin_unlock(&hmaster->queue_lock);
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758
		end_uvhub_quiesce(hmaster);
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760 761 762 763 764
		bcp->ipi_attempts++;
		stat->s_resets_timeout++;
	}
}

765
/*
766 767
 * Stop all cpus on a uvhub from using the BAU for a period of time.
 * This is reversed by check_enable.
768
 */
769
static void disable_for_period(struct bau_control *bcp, struct ptc_stats *stat)
770
{
771 772 773 774 775 776 777 778
	int tcpu;
	struct bau_control *tbcp;
	struct bau_control *hmaster;
	cycles_t tm1;

	hmaster = bcp->uvhub_master;
	spin_lock(&hmaster->disable_lock);
	if (!bcp->baudisabled) {
779
		stat->s_bau_disabled++;
780
		tm1 = get_cycles();
781 782
		for_each_present_cpu(tcpu) {
			tbcp = &per_cpu(bau_control, tcpu);
783 784 785 786 787
			if (tbcp->uvhub_master == hmaster) {
				tbcp->baudisabled = 1;
				tbcp->set_bau_on_time =
					tm1 + bcp->disabled_period;
			}
788 789
		}
	}
790
	spin_unlock(&hmaster->disable_lock);
791 792
}

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static void count_max_concurr(int stat, struct bau_control *bcp,
				struct bau_control *hmaster)
{
	bcp->plugged_tries = 0;
	bcp->timeout_tries = 0;
	if (stat != FLUSH_COMPLETE)
		return;
	if (bcp->conseccompletes <= bcp->complete_threshold)
		return;
	if (hmaster->max_concurr >= hmaster->max_concurr_const)
		return;
	hmaster->max_concurr++;
}

static void record_send_stats(cycles_t time1, cycles_t time2,
		struct bau_control *bcp, struct ptc_stats *stat,
		int completion_status, int try)
{
	cycles_t elapsed;

	if (time2 > time1) {
		elapsed = time2 - time1;
		stat->s_time += elapsed;

		if ((completion_status == FLUSH_COMPLETE) && (try == 1)) {
			bcp->period_requests++;
			bcp->period_time += elapsed;
			if ((elapsed > congested_cycles) &&
821 822 823 824 825 826
			    (bcp->period_requests > bcp->cong_reps) &&
			    ((bcp->period_time / bcp->period_requests) >
							congested_cycles)) {
				stat->s_congested++;
				disable_for_period(bcp, stat);
			}
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		}
	} else
		stat->s_requestor--;

	if (completion_status == FLUSH_COMPLETE && try > 1)
		stat->s_retriesok++;
833
	else if (completion_status == FLUSH_GIVEUP) {
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		stat->s_giveup++;
835 836 837 838 839 840 841 842 843 844
		if (get_cycles() > bcp->period_end)
			bcp->period_giveups = 0;
		bcp->period_giveups++;
		if (bcp->period_giveups == 1)
			bcp->period_end = get_cycles() + bcp->disabled_period;
		if (bcp->period_giveups > bcp->giveup_limit) {
			disable_for_period(bcp, stat);
			stat->s_giveuplimit++;
		}
	}
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}

/*
 * Because of a uv1 hardware bug only a limited number of concurrent
 * requests can be made.
 */
static void uv1_throttle(struct bau_control *hmaster, struct ptc_stats *stat)
{
	spinlock_t *lock = &hmaster->uvhub_lock;
	atomic_t *v;

	v = &hmaster->active_descriptor_count;
	if (!atomic_inc_unless_ge(lock, v, hmaster->max_concurr)) {
		stat->s_throttles++;
		do {
			cpu_relax();
		} while (!atomic_inc_unless_ge(lock, v, hmaster->max_concurr));
	}
}

/*
 * Handle the completion status of a message send.
 */
static void handle_cmplt(int completion_status, struct bau_desc *bau_desc,
			struct bau_control *bcp, struct bau_control *hmaster,
			struct ptc_stats *stat)
{
	if (completion_status == FLUSH_RETRY_PLUGGED)
		destination_plugged(bau_desc, bcp, hmaster, stat);
	else if (completion_status == FLUSH_RETRY_TIMEOUT)
		destination_timeout(bau_desc, bcp, hmaster, stat);
}

/*
879
 * Send a broadcast and wait for it to complete.
880
 *
881
 * The flush_mask contains the cpus the broadcast is to be sent to including
882
 * cpus that are on the local uvhub.
883
 *
884 885 886
 * Returns 0 if all flushing represented in the mask was done.
 * Returns 1 if it gives up entirely and the original cpu mask is to be
 * returned to the kernel.
887
 */
888 889
int uv_flush_send_and_wait(struct cpumask *flush_mask, struct bau_control *bcp,
	struct bau_desc *bau_desc)
890
{
891
	int seq_number = 0;
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	int completion_stat = 0;
893
	int uv1 = 0;
894
	long try = 0;
895
	unsigned long index;
896 897
	cycles_t time1;
	cycles_t time2;
898
	struct ptc_stats *stat = bcp->statp;
899
	struct bau_control *hmaster = bcp->uvhub_master;
900
	struct uv1_bau_msg_header *uv1_hdr = NULL;
901
	struct uv2_3_bau_msg_header *uv2_3_hdr = NULL;
902

903 904
	if (bcp->uvhub_version == 1) {
		uv1 = 1;
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		uv1_throttle(hmaster, stat);
906
	}
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908 909
	while (hmaster->uvhub_quiesce)
		cpu_relax();
910 911

	time1 = get_cycles();
912 913 914
	if (uv1)
		uv1_hdr = &bau_desc->header.uv1_hdr;
	else
915 916
		/* uv2 and uv3 */
		uv2_3_hdr = &bau_desc->header.uv2_3_hdr;
917

918
	do {
919
		if (try == 0) {
920 921 922
			if (uv1)
				uv1_hdr->msg_type = MSG_REGULAR;
			else
923
				uv2_3_hdr->msg_type = MSG_REGULAR;
924 925
			seq_number = bcp->message_number++;
		} else {
926 927 928
			if (uv1)
				uv1_hdr->msg_type = MSG_RETRY;
			else
929
				uv2_3_hdr->msg_type = MSG_RETRY;
930 931
			stat->s_retry_messages++;
		}
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933 934 935
		if (uv1)
			uv1_hdr->sequence = seq_number;
		else
936
			uv2_3_hdr->sequence = seq_number;
937
		index = (1UL << AS_PUSH_SHIFT) | bcp->uvhub_cpu;
938
		bcp->send_message = get_cycles();
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		write_mmr_activation(index);

942
		try++;
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		completion_stat = wait_completion(bau_desc, bcp, try);

		handle_cmplt(completion_stat, bau_desc, bcp, hmaster, stat);
946

947
		if (bcp->ipi_attempts >= bcp->ipi_reset_limit) {
948
			bcp->ipi_attempts = 0;
949
			stat->s_overipilimit++;
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			completion_stat = FLUSH_GIVEUP;
951 952 953
			break;
		}
		cpu_relax();
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	} while ((completion_stat == FLUSH_RETRY_PLUGGED) ||
		 (completion_stat == FLUSH_RETRY_TIMEOUT));

957
	time2 = get_cycles();
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	count_max_concurr(completion_stat, bcp, hmaster);

961 962
	while (hmaster->uvhub_quiesce)
		cpu_relax();
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964
	atomic_dec(&hmaster->active_descriptor_count);
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	record_send_stats(time1, time2, bcp, stat, completion_stat, try);

	if (completion_stat == FLUSH_GIVEUP)
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		/* FLUSH_GIVEUP will fall back to using IPI's for tlb flush */
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		return 1;
	return 0;
}

/*
975 976 977
 * The BAU is disabled for this uvhub. When the disabled time period has
 * expired re-enable it.
 * Return 0 if it is re-enabled for all cpus on this uvhub.
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 */
static int check_enable(struct bau_control *bcp, struct ptc_stats *stat)
{
	int tcpu;
	struct bau_control *tbcp;
983
	struct bau_control *hmaster;
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985 986 987 988 989 990 991
	hmaster = bcp->uvhub_master;
	spin_lock(&hmaster->disable_lock);
	if (bcp->baudisabled && (get_cycles() >= bcp->set_bau_on_time)) {
		stat->s_bau_reenabled++;
		for_each_present_cpu(tcpu) {
			tbcp = &per_cpu(bau_control, tcpu);
			if (tbcp->uvhub_master == hmaster) {
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				tbcp->baudisabled = 0;
				tbcp->period_requests = 0;
				tbcp->period_time = 0;
995
				tbcp->period_giveups = 0;
996 997
			}
		}
998 999
		spin_unlock(&hmaster->disable_lock);
		return 0;
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	}
1001
	spin_unlock(&hmaster->disable_lock);
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	return -1;
}

static void record_send_statistics(struct ptc_stats *stat, int locals, int hubs,
				int remotes, struct bau_desc *bau_desc)
{
	stat->s_requestor++;
	stat->s_ntargcpu += remotes + locals;
	stat->s_ntargremotes += remotes;
	stat->s_ntarglocals += locals;

	/* uvhub statistics */
	hubs = bau_uvhub_weight(&bau_desc->distribution);
	if (locals) {
		stat->s_ntarglocaluvhub++;
		stat->s_ntargremoteuvhub += (hubs - 1);
1018
	} else
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		stat->s_ntargremoteuvhub += hubs;

	stat->s_ntarguvhub += hubs;

	if (hubs >= 16)
		stat->s_ntarguvhub16++;
	else if (hubs >= 8)
		stat->s_ntarguvhub8++;
	else if (hubs >= 4)
		stat->s_ntarguvhub4++;
	else if (hubs >= 2)
		stat->s_ntarguvhub2++;
	else
		stat->s_ntarguvhub1++;
}

/*
 * Translate a cpu mask to the uvhub distribution mask in the BAU
 * activation descriptor.
 */
static int set_distrib_bits(struct cpumask *flush_mask, struct bau_control *bcp,
			struct bau_desc *bau_desc, int *localsp, int *remotesp)
{
	int cpu;
	int pnode;
	int cnt = 0;
	struct hub_and_pnode *hpp;

	for_each_cpu(cpu, flush_mask) {
		/*
		 * The distribution vector is a bit map of pnodes, relative
		 * to the partition base pnode (and the partition base nasid
		 * in the header).
		 * Translate cpu to pnode and hub using a local memory array.
		 */
		hpp = &bcp->socket_master->thp[cpu];
		pnode = hpp->pnode - bcp->partition_base_pnode;
		bau_uvhub_set(pnode, &bau_desc->distribution);
		cnt++;
		if (hpp->uvhub == bcp->uvhub)
			(*localsp)++;
		else
			(*remotesp)++;
1062
	}
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	if (!cnt)
		return 1;
1065
	return 0;
1066 1067
}

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/*
 * globally purge translation cache of a virtual address or all TLB's
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 * @cpumask: mask of all cpu's in which the address is to be removed
1071
 * @mm: mm_struct containing virtual address range
1072 1073
 * @start: start virtual address to be removed from TLB
 * @end: end virtual address to be remove from TLB
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 * @cpu: the current cpu
1075 1076 1077 1078 1079 1080
 *
 * This is the entry point for initiating any UV global TLB shootdown.
 *
 * Purges the translation caches of all specified processors of the given
 * virtual address, or purges all TLB's on specified processors.
 *
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 * The caller has derived the cpumask from the mm_struct.  This function
 * is called only if there are bits set in the mask. (e.g. flush_tlb_page())
1083
 *
1084 1085
 * The cpumask is converted into a uvhubmask of the uvhubs containing
 * those cpus.
1086
 *
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 * Note that this function should be called with preemption disabled.
 *
 * Returns NULL if all remote flushing was done.
 * Returns pointer to cpumask if some remote flushing remains to be
 * done.  The returned pointer is valid till preemption is re-enabled.
1092
 */
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const struct cpumask *uv_flush_tlb_others(const struct cpumask *cpumask,
1094 1095 1096 1097
						struct mm_struct *mm,
						unsigned long start,
						unsigned long end,
						unsigned int cpu)
1098
{
1099
	int locals = 0;
1100 1101
	int remotes = 0;
	int hubs = 0;
1102
	struct bau_desc *bau_desc;
1103 1104 1105
	struct cpumask *flush_mask;
	struct ptc_stats *stat;
	struct bau_control *bcp;
1106 1107
	unsigned long descriptor_status;
	unsigned long status;
T
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1108

1109
	bcp = &per_cpu(bau_control, cpu);
1110 1111 1112

	if (bcp->nobau)
		return cpumask;
1113

1114 1115 1116
	stat = bcp->statp;
	stat->s_enters++;

1117 1118 1119 1120 1121 1122 1123 1124 1125 1126
	if (bcp->busy) {
		descriptor_status =
			read_lmmr(UVH_LB_BAU_SB_ACTIVATION_STATUS_0);
		status = ((descriptor_status >> (bcp->uvhub_cpu *
			UV_ACT_STATUS_SIZE)) & UV_ACT_STATUS_MASK) << 1;
		if (status == UV2H_DESC_BUSY)
			return cpumask;
		bcp->busy = 0;
	}

1127 1128
	/* bau was disabled due to slow response */
	if (bcp->baudisabled) {
1129 1130
		if (check_enable(bcp, stat)) {
			stat->s_ipifordisabled++;
C
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			return cpumask;
1132
		}
1133
	}
1134

1135 1136
	/*
	 * Each sending cpu has a per-cpu mask which it fills from the caller's
1137 1138
	 * cpu mask.  All cpus are converted to uvhubs and copied to the
	 * activation descriptor.
1139 1140
	 */
	flush_mask = (struct cpumask *)per_cpu(uv_flush_tlb_mask, cpu);
1141
	/* don't actually do a shootdown of the local cpu */
1142
	cpumask_andnot(flush_mask, cpumask, cpumask_of(cpu));
C
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1143

1144
	if (cpumask_test_cpu(cpu, cpumask))
1145
		stat->s_ntargself++;
1146

1147
	bau_desc = bcp->descriptor_base;
1148
	bau_desc += (ITEMS_PER_DESC * bcp->uvhub_cpu);
1149
	bau_uvhubs_clear(&bau_desc->distribution, UV_DISTRIBUTION_SIZE);
C
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1150
	if (set_distrib_bits(flush_mask, bcp, bau_desc, &locals, &remotes))
1151 1152
		return NULL;

C
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1153
	record_send_statistics(stat, locals, hubs, remotes, bau_desc);
1154

1155 1156 1157 1158
	if (!end || (end - start) <= PAGE_SIZE)
		bau_desc->payload.address = start;
	else
		bau_desc->payload.address = TLB_FLUSH_ALL;
T
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1159
	bau_desc->payload.sending_cpu = cpu;
1160
	/*
1161 1162
	 * uv_flush_send_and_wait returns 0 if all cpu's were messaged,
	 * or 1 if it gave up and the original cpumask should be returned.
1163
	 */
1164
	if (!uv_flush_send_and_wait(flush_mask, bcp, bau_desc))
1165 1166 1167
		return NULL;
	else
		return cpumask;
1168 1169
}

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1170
/*
1171 1172
 * Search the message queue for any 'other' unprocessed message with the
 * same software acknowledge resource bit vector as the 'msg' message.
C
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1173 1174
 */
struct bau_pq_entry *find_another_by_swack(struct bau_pq_entry *msg,
1175
					   struct bau_control *bcp)
C
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1176 1177
{
	struct bau_pq_entry *msg_next = msg + 1;
1178
	unsigned char swack_vec = msg->swack_vec;
C
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1179 1180 1181

	if (msg_next > bcp->queue_last)
		msg_next = bcp->queue_first;
1182 1183 1184
	while (msg_next != msg) {
		if ((msg_next->canceled == 0) && (msg_next->replied_to == 0) &&
				(msg_next->swack_vec == swack_vec))
C
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1185 1186 1187 1188 1189 1190 1191 1192 1193 1194 1195 1196 1197 1198 1199 1200 1201 1202 1203 1204 1205 1206 1207 1208 1209 1210 1211 1212 1213 1214
			return msg_next;
		msg_next++;
		if (msg_next > bcp->queue_last)
			msg_next = bcp->queue_first;
	}
	return NULL;
}

/*
 * UV2 needs to work around a bug in which an arriving message has not
 * set a bit in the UVH_LB_BAU_INTD_SOFTWARE_ACKNOWLEDGE register.
 * Such a message must be ignored.
 */
void process_uv2_message(struct msg_desc *mdp, struct bau_control *bcp)
{
	unsigned long mmr_image;
	unsigned char swack_vec;
	struct bau_pq_entry *msg = mdp->msg;
	struct bau_pq_entry *other_msg;

	mmr_image = read_mmr_sw_ack();
	swack_vec = msg->swack_vec;

	if ((swack_vec & mmr_image) == 0) {
		/*
		 * This message was assigned a swack resource, but no
		 * reserved acknowlegment is pending.
		 * The bug has prevented this message from setting the MMR.
		 */
		/*
1215 1216
		 * Some message has set the MMR 'pending' bit; it might have
		 * been another message.  Look for that message.
C
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1217
		 */
1218 1219 1220 1221 1222 1223 1224 1225 1226 1227 1228 1229 1230 1231
		other_msg = find_another_by_swack(msg, bcp);
		if (other_msg) {
			/*
			 * There is another. Process this one but do not
			 * ack it.
			 */
			bau_process_message(mdp, bcp, 0);
			/*
			 * Let the natural processing of that other message
			 * acknowledge it. Don't get the processing of sw_ack's
			 * out of order.
			 */
			return;
		}
C
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1232 1233 1234
	}

	/*
1235 1236
	 * Either the MMR shows this one pending a reply or there is no
	 * other message using this sw_ack, so it is safe to acknowledge it.
C
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1237 1238 1239 1240 1241 1242
	 */
	bau_process_message(mdp, bcp, 1);

	return;
}

1243 1244 1245 1246 1247 1248
/*
 * The BAU message interrupt comes here. (registered by set_intr_gate)
 * See entry_64.S
 *
 * We received a broadcast assist message.
 *
1249
 * Interrupts are disabled; this interrupt could represent
1250 1251
 * the receipt of several messages.
 *
1252 1253
 * All cores/threads on this hub get this interrupt.
 * The last one to see it does the software ack.
1254
 * (the resource will not be freed until noninterruptable cpus see this
1255
 *  interrupt; hardware may timeout the s/w ack and reply ERROR)
1256
 */
1257
void uv_bau_message_interrupt(struct pt_regs *regs)
1258 1259
{
	int count = 0;
1260
	cycles_t time_start;
C
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1261
	struct bau_pq_entry *msg;
1262 1263 1264 1265
	struct bau_control *bcp;
	struct ptc_stats *stat;
	struct msg_desc msgdesc;

1266
	ack_APIC_irq();
1267
	time_start = get_cycles();
C
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1268

1269
	bcp = &per_cpu(bau_control, smp_processor_id());
1270
	stat = bcp->statp;
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1271 1272 1273 1274

	msgdesc.queue_first = bcp->queue_first;
	msgdesc.queue_last = bcp->queue_last;

1275
	msg = bcp->bau_msg_head;
C
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	while (msg->swack_vec) {
1277
		count++;
C
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1278 1279

		msgdesc.msg_slot = msg - msgdesc.queue_first;
1280
		msgdesc.msg = msg;
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1281 1282 1283
		if (bcp->uvhub_version == 2)
			process_uv2_message(&msgdesc, bcp);
		else
1284
			/* no error workaround for uv1 or uv3 */
C
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			bau_process_message(&msgdesc, bcp, 1);
C
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1286

1287
		msg++;
C
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1288 1289
		if (msg > msgdesc.queue_last)
			msg = msgdesc.queue_first;
1290
		bcp->bau_msg_head = msg;
1291
	}
1292
	stat->d_time += (get_cycles() - time_start);
1293
	if (!count)
1294
		stat->d_nomsg++;
1295
	else if (count > 1)
1296
		stat->d_multmsg++;
1297 1298
}

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/*
C
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1300
 * Each target uvhub (i.e. a uvhub that has cpu's) needs to have
C
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1301 1302 1303 1304
 * shootdown message timeouts enabled.  The timeout does not cause
 * an interrupt, but causes an error message to be returned to
 * the sender.
 */
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1305
static void __init enable_timeouts(void)
1306
{
1307 1308
	int uvhub;
	int nuvhubs;
1309
	int pnode;
C
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1310
	unsigned long mmr_image;
1311

1312
	nuvhubs = uv_num_possible_blades();
1313

1314 1315
	for (uvhub = 0; uvhub < nuvhubs; uvhub++) {
		if (!uv_blade_nr_possible_cpus(uvhub))
1316
			continue;
C
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1317

1318
		pnode = uv_blade_to_pnode(uvhub);
C
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1319
		mmr_image = read_mmr_misc_control(pnode);
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1320 1321 1322 1323 1324 1325
		/*
		 * Set the timeout period and then lock it in, in three
		 * steps; captures and locks in the period.
		 *
		 * To program the period, the SOFT_ACK_MODE must be off.
		 */
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1326 1327
		mmr_image &= ~(1L << SOFTACK_MSHIFT);
		write_mmr_misc_control(pnode, mmr_image);
C
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1328 1329 1330
		/*
		 * Set the 4-bit period.
		 */
C
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1331 1332 1333
		mmr_image &= ~((unsigned long)0xf << SOFTACK_PSHIFT);
		mmr_image |= (SOFTACK_TIMEOUT_PERIOD << SOFTACK_PSHIFT);
		write_mmr_misc_control(pnode, mmr_image);
C
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1334
		/*
1335
		 * UV1:
C
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1336 1337 1338 1339
		 * Subsequent reversals of the timebase bit (3) cause an
		 * immediate timeout of one or all INTD resources as
		 * indicated in bits 2:0 (7 causes all of them to timeout).
		 */
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1340
		mmr_image |= (1L << SOFTACK_MSHIFT);
1341
		if (is_uv2_hub()) {
1342
			/* do not touch the legacy mode bit */
1343 1344
			/* hw bug workaround; do not use extended status */
			mmr_image &= ~(1L << UV2_EXT_SHFT);
1345 1346 1347
		} else if (is_uv3_hub()) {
			mmr_image &= ~(1L << PREFETCH_HINT_SHFT);
			mmr_image |= (1L << SB_STATUS_SHFT);
1348
		}
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1349
		write_mmr_misc_control(pnode, mmr_image);
1350 1351 1352
	}
}

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1353
static void *ptc_seq_start(struct seq_file *file, loff_t *offset)
1354 1355 1356 1357 1358 1359
{
	if (*offset < num_possible_cpus())
		return offset;
	return NULL;
}

C
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1360
static void *ptc_seq_next(struct seq_file *file, void *data, loff_t *offset)
1361 1362 1363 1364 1365 1366 1367
{
	(*offset)++;
	if (*offset < num_possible_cpus())
		return offset;
	return NULL;
}

C
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1368
static void ptc_seq_stop(struct seq_file *file, void *data)
1369 1370 1371 1372
{
}

/*
C
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1373
 * Display the statistics thru /proc/sgi_uv/ptc_statistics
1374
 * 'data' points to the cpu number
C
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1375
 * Note: see the descriptions in stat_description[].
1376
 */
C
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1377
static int ptc_seq_show(struct seq_file *file, void *data)
1378 1379
{
	struct ptc_stats *stat;
1380
	struct bau_control *bcp;
1381 1382 1383 1384
	int cpu;

	cpu = *(loff_t *)data;
	if (!cpu) {
1385 1386 1387 1388 1389 1390 1391 1392 1393 1394 1395 1396
		seq_puts(file,
			 "# cpu bauoff sent stime self locals remotes ncpus localhub ");
		seq_puts(file, "remotehub numuvhubs numuvhubs16 numuvhubs8 ");
		seq_puts(file,
			 "numuvhubs4 numuvhubs2 numuvhubs1 dto snacks retries ");
		seq_puts(file,
			 "rok resetp resett giveup sto bz throt disable ");
		seq_puts(file,
			 "enable wars warshw warwaits enters ipidis plugged ");
		seq_puts(file,
			 "ipiover glim cong swack recv rtime all one mult ");
		seq_puts(file, "none retry canc nocan reset rcan\n");
1397 1398
	}
	if (cpu < num_possible_cpus() && cpu_online(cpu)) {
1399
		bcp = &per_cpu(bau_control, cpu);
1400 1401 1402 1403
		if (bcp->nobau) {
			seq_printf(file, "cpu %d bau disabled\n", cpu);
			return 0;
		}
1404
		stat = bcp->statp;
1405 1406
		/* source side statistics */
		seq_printf(file,
1407
			"cpu %d %d %ld %ld %ld %ld %ld %ld %ld %ld %ld %ld ",
1408 1409
			   cpu, bcp->nobau, stat->s_requestor,
			   cycles_2_us(stat->s_time),
1410 1411 1412 1413
			   stat->s_ntargself, stat->s_ntarglocals,
			   stat->s_ntargremotes, stat->s_ntargcpu,
			   stat->s_ntarglocaluvhub, stat->s_ntargremoteuvhub,
			   stat->s_ntarguvhub, stat->s_ntarguvhub16);
1414
		seq_printf(file, "%ld %ld %ld %ld %ld %ld ",
1415 1416
			   stat->s_ntarguvhub8, stat->s_ntarguvhub4,
			   stat->s_ntarguvhub2, stat->s_ntarguvhub1,
1417
			   stat->s_dtimeout, stat->s_strongnacks);
1418
		seq_printf(file, "%ld %ld %ld %ld %ld %ld %ld %ld ",
1419 1420 1421
			   stat->s_retry_messages, stat->s_retriesok,
			   stat->s_resets_plug, stat->s_resets_timeout,
			   stat->s_giveup, stat->s_stimeout,
1422 1423 1424 1425 1426 1427 1428 1429
			   stat->s_busy, stat->s_throttles);
		seq_printf(file, "%ld %ld %ld %ld %ld %ld %ld %ld %ld %ld %ld ",
			   stat->s_bau_disabled, stat->s_bau_reenabled,
			   stat->s_uv2_wars, stat->s_uv2_wars_hw,
			   stat->s_uv2_war_waits, stat->s_enters,
			   stat->s_ipifordisabled, stat->s_plugged,
			   stat->s_overipilimit, stat->s_giveuplimit,
			   stat->s_congested);
1430

1431 1432
		/* destination side statistics */
		seq_printf(file,
1433
			"%lx %ld %ld %ld %ld %ld %ld %ld %ld %ld %ld %ld\n",
C
Cliff Wickman 已提交
1434
			   read_gmmr_sw_ack(uv_cpu_to_pnode(cpu)),
1435 1436 1437 1438 1439
			   stat->d_requestee, cycles_2_us(stat->d_time),
			   stat->d_alltlb, stat->d_onetlb, stat->d_multmsg,
			   stat->d_nomsg, stat->d_retries, stat->d_canceled,
			   stat->d_nocanceled, stat->d_resets,
			   stat->d_rcanceled);
1440 1441 1442 1443
	}
	return 0;
}

1444 1445 1446 1447
/*
 * Display the tunables thru debugfs
 */
static ssize_t tunables_read(struct file *file, char __user *userbuf,
C
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1448
				size_t count, loff_t *ppos)
1449
{
1450
	char *buf;
1451 1452
	int ret;

1453 1454 1455 1456
	buf = kasprintf(GFP_KERNEL, "%s %s %s\n%d %d %d %d %d %d %d %d %d %d\n",
		"max_concur plugged_delay plugsb4reset timeoutsb4reset",
		"ipi_reset_limit complete_threshold congested_response_us",
		"congested_reps disabled_period giveup_limit",
C
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1457
		max_concurr, plugged_delay, plugsb4reset,
1458
		timeoutsb4reset, ipi_reset_limit, complete_threshold,
1459 1460
		congested_respns_us, congested_reps, disabled_period,
		giveup_limit);
1461

1462 1463 1464 1465 1466 1467
	if (!buf)
		return -ENOMEM;

	ret = simple_read_from_buffer(userbuf, count, ppos, buf, strlen(buf));
	kfree(buf);
	return ret;
1468 1469
}

1470
/*
C
Cliff Wickman 已提交
1471 1472
 * handle a write to /proc/sgi_uv/ptc_statistics
 * -1: reset the statistics
1473 1474
 *  0: display meaning of the statistics
 */
C
Cliff Wickman 已提交
1475 1476
static ssize_t ptc_proc_write(struct file *file, const char __user *user,
				size_t count, loff_t *data)
1477
{
1478
	int cpu;
C
Cliff Wickman 已提交
1479 1480
	int i;
	int elements;
1481
	long input_arg;
1482
	char optstr[64];
1483
	struct ptc_stats *stat;
1484

1485
	if (count == 0 || count > sizeof(optstr))
1486
		return -EINVAL;
1487 1488 1489
	if (copy_from_user(optstr, user, count))
		return -EFAULT;
	optstr[count - 1] = '\0';
C
Cliff Wickman 已提交
1490

1491 1492 1493 1494 1495 1496 1497 1498
	if (!strcmp(optstr, "on")) {
		set_bau_on();
		return count;
	} else if (!strcmp(optstr, "off")) {
		set_bau_off();
		return count;
	}

1499
	if (kstrtol(optstr, 10, &input_arg) < 0) {
1500 1501 1502 1503
		printk(KERN_DEBUG "%s is invalid\n", optstr);
		return -EINVAL;
	}

1504
	if (input_arg == 0) {
1505
		elements = ARRAY_SIZE(stat_description);
1506
		printk(KERN_DEBUG "# cpu:      cpu number\n");
1507
		printk(KERN_DEBUG "Sender statistics:\n");
C
Cliff Wickman 已提交
1508 1509
		for (i = 0; i < elements; i++)
			printk(KERN_DEBUG "%s\n", stat_description[i]);
1510 1511 1512 1513 1514
	} else if (input_arg == -1) {
		for_each_present_cpu(cpu) {
			stat = &per_cpu(ptcstats, cpu);
			memset(stat, 0, sizeof(struct ptc_stats));
		}
1515 1516 1517 1518 1519 1520 1521 1522 1523 1524 1525 1526 1527 1528 1529 1530
	}

	return count;
}

static int local_atoi(const char *name)
{
	int val = 0;

	for (;; name++) {
		switch (*name) {
		case '0' ... '9':
			val = 10*val+(*name-'0');
			break;
		default:
			return val;
1531
		}
1532
	}
1533 1534 1535
}

/*
C
Cliff Wickman 已提交
1536 1537
 * Parse the values written to /sys/kernel/debug/sgi_uv/bau_tunables.
 * Zero values reset them to defaults.
1538
 */
C
Cliff Wickman 已提交
1539 1540
static int parse_tunables_write(struct bau_control *bcp, char *instr,
				int count)
1541 1542 1543
{
	char *p;
	char *q;
C
Cliff Wickman 已提交
1544 1545
	int cnt = 0;
	int val;
1546
	int e = ARRAY_SIZE(tunables);
1547 1548 1549 1550 1551 1552 1553 1554 1555

	p = instr + strspn(instr, WHITESPACE);
	q = p;
	for (; *p; p = q + strspn(q, WHITESPACE)) {
		q = p + strcspn(p, WHITESPACE);
		cnt++;
		if (q == p)
			break;
	}
C
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1556 1557
	if (cnt != e) {
		printk(KERN_INFO "bau tunable error: should be %d values\n", e);
1558 1559 1560 1561 1562 1563 1564 1565 1566 1567 1568
		return -EINVAL;
	}

	p = instr + strspn(instr, WHITESPACE);
	q = p;
	for (cnt = 0; *p; p = q + strspn(q, WHITESPACE), cnt++) {
		q = p + strcspn(p, WHITESPACE);
		val = local_atoi(p);
		switch (cnt) {
		case 0:
			if (val == 0) {
C
Cliff Wickman 已提交
1569 1570
				max_concurr = MAX_BAU_CONCURRENT;
				max_concurr_const = MAX_BAU_CONCURRENT;
1571 1572 1573 1574 1575 1576 1577 1578
				continue;
			}
			if (val < 1 || val > bcp->cpus_in_uvhub) {
				printk(KERN_DEBUG
				"Error: BAU max concurrent %d is invalid\n",
				val);
				return -EINVAL;
			}
C
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1579 1580
			max_concurr = val;
			max_concurr_const = val;
1581
			continue;
C
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1582
		default:
1583
			if (val == 0)
C
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1584
				*tunables[cnt].tunp = tunables[cnt].deflt;
1585
			else
C
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1586
				*tunables[cnt].tunp = val;
1587 1588 1589 1590 1591
			continue;
		}
		if (q == p)
			break;
	}
C
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1592 1593 1594 1595 1596 1597 1598 1599 1600 1601 1602 1603 1604 1605 1606 1607 1608 1609 1610 1611 1612
	return 0;
}

/*
 * Handle a write to debugfs. (/sys/kernel/debug/sgi_uv/bau_tunables)
 */
static ssize_t tunables_write(struct file *file, const char __user *user,
				size_t count, loff_t *data)
{
	int cpu;
	int ret;
	char instr[100];
	struct bau_control *bcp;

	if (count == 0 || count > sizeof(instr)-1)
		return -EINVAL;
	if (copy_from_user(instr, user, count))
		return -EFAULT;

	instr[count] = '\0';

1613 1614
	cpu = get_cpu();
	bcp = &per_cpu(bau_control, cpu);
C
Cliff Wickman 已提交
1615
	ret = parse_tunables_write(bcp, instr, count);
1616
	put_cpu();
C
Cliff Wickman 已提交
1617 1618 1619
	if (ret)
		return ret;

1620 1621
	for_each_present_cpu(cpu) {
		bcp = &per_cpu(bau_control, cpu);
C
Cliff Wickman 已提交
1622 1623 1624 1625 1626 1627 1628 1629 1630
		bcp->max_concurr =		max_concurr;
		bcp->max_concurr_const =	max_concurr;
		bcp->plugged_delay =		plugged_delay;
		bcp->plugsb4reset =		plugsb4reset;
		bcp->timeoutsb4reset =		timeoutsb4reset;
		bcp->ipi_reset_limit =		ipi_reset_limit;
		bcp->complete_threshold =	complete_threshold;
		bcp->cong_response_us =		congested_respns_us;
		bcp->cong_reps =		congested_reps;
1631 1632
		bcp->disabled_period =		sec_2_cycles(disabled_period);
		bcp->giveup_limit =		giveup_limit;
1633
	}
1634 1635 1636 1637
	return count;
}

static const struct seq_operations uv_ptc_seq_ops = {
C
Cliff Wickman 已提交
1638 1639 1640 1641
	.start		= ptc_seq_start,
	.next		= ptc_seq_next,
	.stop		= ptc_seq_stop,
	.show		= ptc_seq_show
1642 1643
};

C
Cliff Wickman 已提交
1644
static int ptc_proc_open(struct inode *inode, struct file *file)
1645 1646 1647 1648
{
	return seq_open(file, &uv_ptc_seq_ops);
}

1649 1650 1651 1652 1653
static int tunables_open(struct inode *inode, struct file *file)
{
	return 0;
}

1654
static const struct file_operations proc_uv_ptc_operations = {
C
Cliff Wickman 已提交
1655
	.open		= ptc_proc_open,
1656
	.read		= seq_read,
C
Cliff Wickman 已提交
1657
	.write		= ptc_proc_write,
1658 1659
	.llseek		= seq_lseek,
	.release	= seq_release,
1660 1661
};

1662 1663 1664 1665
static const struct file_operations tunables_fops = {
	.open		= tunables_open,
	.read		= tunables_read,
	.write		= tunables_write,
1666
	.llseek		= default_llseek,
1667 1668
};

1669
static int __init uv_ptc_init(void)
1670
{
1671
	struct proc_dir_entry *proc_uv_ptc;
1672 1673 1674 1675

	if (!is_uv_system())
		return 0;

1676 1677
	proc_uv_ptc = proc_create(UV_PTC_BASENAME, 0444, NULL,
				  &proc_uv_ptc_operations);
1678 1679 1680 1681 1682
	if (!proc_uv_ptc) {
		printk(KERN_ERR "unable to create %s proc entry\n",
		       UV_PTC_BASENAME);
		return -EINVAL;
	}
1683 1684 1685 1686 1687 1688 1689 1690

	tunables_dir = debugfs_create_dir(UV_BAU_TUNABLES_DIR, NULL);
	if (!tunables_dir) {
		printk(KERN_ERR "unable to create debugfs directory %s\n",
		       UV_BAU_TUNABLES_DIR);
		return -EINVAL;
	}
	tunables_file = debugfs_create_file(UV_BAU_TUNABLES_FILE, 0600,
C
Cliff Wickman 已提交
1691
					tunables_dir, NULL, &tunables_fops);
1692 1693 1694 1695 1696
	if (!tunables_file) {
		printk(KERN_ERR "unable to create debugfs file %s\n",
		       UV_BAU_TUNABLES_FILE);
		return -EINVAL;
	}
1697 1698 1699 1700
	return 0;
}

/*
1701
 * Initialize the sending side's sending buffers.
1702
 */
C
Cliff Wickman 已提交
1703
static void activation_descriptor_init(int node, int pnode, int base_pnode)
1704 1705
{
	int i;
1706
	int cpu;
1707
	int uv1 = 0;
1708
	unsigned long gpa;
1709
	unsigned long m;
1710
	unsigned long n;
C
Cliff Wickman 已提交
1711
	size_t dsize;
1712 1713
	struct bau_desc *bau_desc;
	struct bau_desc *bd2;
1714
	struct uv1_bau_msg_header *uv1_hdr;
1715
	struct uv2_3_bau_msg_header *uv2_3_hdr;
1716
	struct bau_control *bcp;
1717

1718
	/*
C
Cliff Wickman 已提交
1719 1720
	 * each bau_desc is 64 bytes; there are 8 (ITEMS_PER_DESC)
	 * per cpu; and one per cpu on the uvhub (ADP_SZ)
1721
	 */
C
Cliff Wickman 已提交
1722 1723
	dsize = sizeof(struct bau_desc) * ADP_SZ * ITEMS_PER_DESC;
	bau_desc = kmalloc_node(dsize, GFP_KERNEL, node);
1724
	BUG_ON(!bau_desc);
1725

1726 1727 1728
	gpa = uv_gpa(bau_desc);
	n = uv_gpa_to_gnode(gpa);
	m = uv_gpa_to_offset(gpa);
1729 1730
	if (is_uv1_hub())
		uv1 = 1;
1731

1732
	/* the 14-bit pnode */
C
Cliff Wickman 已提交
1733
	write_mmr_descriptor_base(pnode, (n << UV_DESC_PSHIFT | m));
1734
	/*
C
Cliff Wickman 已提交
1735
	 * Initializing all 8 (ITEMS_PER_DESC) descriptors for each
1736
	 * cpu even though we only use the first one; one descriptor can
1737
	 * describe a broadcast to 256 uv hubs.
1738
	 */
C
Cliff Wickman 已提交
1739
	for (i = 0, bd2 = bau_desc; i < (ADP_SZ * ITEMS_PER_DESC); i++, bd2++) {
1740
		memset(bd2, 0, sizeof(struct bau_desc));
1741 1742 1743 1744 1745 1746 1747 1748 1749 1750 1751 1752 1753 1754 1755 1756 1757 1758 1759 1760
		if (uv1) {
			uv1_hdr = &bd2->header.uv1_hdr;
			uv1_hdr->swack_flag =	1;
			/*
			 * The base_dest_nasid set in the message header
			 * is the nasid of the first uvhub in the partition.
			 * The bit map will indicate destination pnode numbers
			 * relative to that base. They may not be consecutive
			 * if nasid striding is being used.
			 */
			uv1_hdr->base_dest_nasid =
						UV_PNODE_TO_NASID(base_pnode);
			uv1_hdr->dest_subnodeid =	UV_LB_SUBNODEID;
			uv1_hdr->command =		UV_NET_ENDPOINT_INTD;
			uv1_hdr->int_both =		1;
			/*
			 * all others need to be set to zero:
			 *   fairness chaining multilevel count replied_to
			 */
		} else {
1761
			/*
1762
			 * BIOS uses legacy mode, but uv2 and uv3 hardware always
1763 1764
			 * uses native mode for selective broadcasts.
			 */
1765 1766 1767
			uv2_3_hdr = &bd2->header.uv2_3_hdr;
			uv2_3_hdr->swack_flag =	1;
			uv2_3_hdr->base_dest_nasid =
1768
						UV_PNODE_TO_NASID(base_pnode);
1769 1770
			uv2_3_hdr->dest_subnodeid =	UV_LB_SUBNODEID;
			uv2_3_hdr->command =		UV_NET_ENDPOINT_INTD;
1771
		}
1772
	}
1773 1774 1775 1776 1777 1778
	for_each_present_cpu(cpu) {
		if (pnode != uv_blade_to_pnode(uv_cpu_to_blade_id(cpu)))
			continue;
		bcp = &per_cpu(bau_control, cpu);
		bcp->descriptor_base = bau_desc;
	}
1779 1780 1781 1782
}

/*
 * initialize the destination side's receiving buffers
1783 1784 1785
 * entered for each uvhub in the partition
 * - node is first node (kernel memory notion) on the uvhub
 * - pnode is the uvhub's physical identifier
1786
 */
C
Cliff Wickman 已提交
1787
static void pq_init(int node, int pnode)
1788
{
1789
	int cpu;
C
Cliff Wickman 已提交
1790
	size_t plsize;
1791
	char *cp;
C
Cliff Wickman 已提交
1792 1793 1794 1795 1796 1797
	void *vp;
	unsigned long pn;
	unsigned long first;
	unsigned long pn_first;
	unsigned long last;
	struct bau_pq_entry *pqp;
1798
	struct bau_control *bcp;
1799

C
Cliff Wickman 已提交
1800 1801 1802
	plsize = (DEST_Q_SIZE + 1) * sizeof(struct bau_pq_entry);
	vp = kmalloc_node(plsize, GFP_KERNEL, node);
	pqp = (struct bau_pq_entry *)vp;
1803
	BUG_ON(!pqp);
1804

1805
	cp = (char *)pqp + 31;
C
Cliff Wickman 已提交
1806
	pqp = (struct bau_pq_entry *)(((unsigned long)cp >> 5) << 5);
1807 1808 1809 1810 1811 1812

	for_each_present_cpu(cpu) {
		if (pnode != uv_cpu_to_pnode(cpu))
			continue;
		/* for every cpu on this pnode: */
		bcp = &per_cpu(bau_control, cpu);
C
Cliff Wickman 已提交
1813 1814 1815
		bcp->queue_first	= pqp;
		bcp->bau_msg_head	= pqp;
		bcp->queue_last		= pqp + (DEST_Q_SIZE - 1);
1816
	}
1817
	/*
1818
	 * need the gnode of where the memory was really allocated
1819
	 */
1820
	pn = uv_gpa_to_gnode(uv_gpa(pqp));
C
Cliff Wickman 已提交
1821 1822 1823 1824 1825 1826
	first = uv_physnodeaddr(pqp);
	pn_first = ((unsigned long)pn << UV_PAYLOADQ_PNODE_SHIFT) | first;
	last = uv_physnodeaddr(pqp + (DEST_Q_SIZE - 1));
	write_mmr_payload_first(pnode, pn_first);
	write_mmr_payload_tail(pnode, first);
	write_mmr_payload_last(pnode, last);
C
Cliff Wickman 已提交
1827
	write_gmmr_sw_ack(pnode, 0xffffUL);
C
Cliff Wickman 已提交
1828

1829
	/* in effect, all msg_type's are set to MSG_NOOP */
C
Cliff Wickman 已提交
1830
	memset(pqp, 0, sizeof(struct bau_pq_entry) * DEST_Q_SIZE);
1831
}
1832

1833
/*
1834
 * Initialization of each UV hub's structures
1835
 */
C
Cliff Wickman 已提交
1836
static void __init init_uvhub(int uvhub, int vector, int base_pnode)
1837
{
1838
	int node;
1839 1840
	int pnode;
	unsigned long apicid;
1841 1842 1843

	node = uvhub_to_first_node(uvhub);
	pnode = uv_blade_to_pnode(uvhub);
C
Cliff Wickman 已提交
1844 1845 1846 1847

	activation_descriptor_init(node, pnode, base_pnode);

	pq_init(node, pnode);
1848
	/*
1849 1850
	 * The below initialization can't be in firmware because the
	 * messaging IRQ will be determined by the OS.
1851
	 */
1852
	apicid = uvhub_to_first_apicid(uvhub) | uv_apicid_hibits;
C
Cliff Wickman 已提交
1853
	write_mmr_data_config(pnode, ((apicid << 32) | vector));
1854 1855
}

1856 1857 1858
/*
 * We will set BAU_MISC_CONTROL with a timeout period.
 * But the BIOS has set UVH_AGING_PRESCALE_SEL and UVH_TRANSACTION_TIMEOUT.
C
Cliff Wickman 已提交
1859
 * So the destination timeout period has to be calculated from them.
1860
 */
C
Cliff Wickman 已提交
1861
static int calculate_destination_timeout(void)
1862 1863 1864 1865 1866 1867 1868 1869 1870
{
	unsigned long mmr_image;
	int mult1;
	int mult2;
	int index;
	int base;
	int ret;
	unsigned long ts_ns;

1871
	if (is_uv1_hub()) {
C
Cliff Wickman 已提交
1872
		mult1 = SOFTACK_TIMEOUT_PERIOD & BAU_MISC_CONTROL_MULT_MASK;
1873 1874 1875 1876
		mmr_image = uv_read_local_mmr(UVH_AGING_PRESCALE_SEL);
		index = (mmr_image >> BAU_URGENCY_7_SHIFT) & BAU_URGENCY_7_MASK;
		mmr_image = uv_read_local_mmr(UVH_TRANSACTION_TIMEOUT);
		mult2 = (mmr_image >> BAU_TRANS_SHIFT) & BAU_TRANS_MASK;
1877 1878
		ts_ns = timeout_base_ns[index];
		ts_ns *= (mult1 * mult2);
1879 1880
		ret = ts_ns / 1000;
	} else {
1881
		/* same destination timeout for uv2 and uv3 */
1882 1883
		/* 4 bits  0/1 for 10/80us base, 3 bits of multiplier */
		mmr_image = uv_read_local_mmr(UVH_LB_BAU_MISC_CONTROL);
1884
		mmr_image = (mmr_image & UV_SA_MASK) >> UV_SA_SHFT;
C
Cliff Wickman 已提交
1885
		if (mmr_image & (1L << UV2_ACK_UNITS_SHFT))
1886
			base = 80;
1887
		else
1888 1889
			base = 10;
		mult1 = mmr_image & UV2_ACK_MASK;
1890 1891
		ret = mult1 * base;
	}
1892 1893 1894
	return ret;
}

C
Cliff Wickman 已提交
1895 1896 1897 1898 1899 1900 1901 1902
static void __init init_per_cpu_tunables(void)
{
	int cpu;
	struct bau_control *bcp;

	for_each_present_cpu(cpu) {
		bcp = &per_cpu(bau_control, cpu);
		bcp->baudisabled		= 0;
1903
		if (nobau)
1904
			bcp->nobau		= true;
C
Cliff Wickman 已提交
1905 1906 1907 1908 1909 1910 1911 1912 1913 1914 1915 1916
		bcp->statp			= &per_cpu(ptcstats, cpu);
		/* time interval to catch a hardware stay-busy bug */
		bcp->timeout_interval		= usec_2_cycles(2*timeout_us);
		bcp->max_concurr		= max_concurr;
		bcp->max_concurr_const		= max_concurr;
		bcp->plugged_delay		= plugged_delay;
		bcp->plugsb4reset		= plugsb4reset;
		bcp->timeoutsb4reset		= timeoutsb4reset;
		bcp->ipi_reset_limit		= ipi_reset_limit;
		bcp->complete_threshold		= complete_threshold;
		bcp->cong_response_us		= congested_respns_us;
		bcp->cong_reps			= congested_reps;
1917 1918
		bcp->disabled_period =		sec_2_cycles(disabled_period);
		bcp->giveup_limit =		giveup_limit;
1919 1920
		spin_lock_init(&bcp->queue_lock);
		spin_lock_init(&bcp->uvhub_lock);
1921
		spin_lock_init(&bcp->disable_lock);
C
Cliff Wickman 已提交
1922 1923 1924
	}
}

1925
/*
C
Cliff Wickman 已提交
1926
 * Scan all cpus to collect blade and socket summaries.
1927
 */
C
Cliff Wickman 已提交
1928 1929 1930
static int __init get_cpu_topology(int base_pnode,
					struct uvhub_desc *uvhub_descs,
					unsigned char *uvhub_mask)
1931 1932 1933 1934
{
	int cpu;
	int pnode;
	int uvhub;
C
Cliff Wickman 已提交
1935
	int socket;
1936 1937 1938 1939 1940 1941
	struct bau_control *bcp;
	struct uvhub_desc *bdp;
	struct socket_desc *sdp;

	for_each_present_cpu(cpu) {
		bcp = &per_cpu(bau_control, cpu);
C
Cliff Wickman 已提交
1942

1943
		memset(bcp, 0, sizeof(struct bau_control));
C
Cliff Wickman 已提交
1944

1945
		pnode = uv_cpu_hub_info(cpu)->pnode;
C
Cliff Wickman 已提交
1946
		if ((pnode - base_pnode) >= UV_DISTRIBUTION_SIZE) {
1947 1948
			printk(KERN_EMERG
				"cpu %d pnode %d-%d beyond %d; BAU disabled\n",
C
Cliff Wickman 已提交
1949
				cpu, pnode, base_pnode, UV_DISTRIBUTION_SIZE);
1950 1951
			return 1;
		}
C
Cliff Wickman 已提交
1952

1953
		bcp->osnode = cpu_to_node(cpu);
C
Cliff Wickman 已提交
1954 1955
		bcp->partition_base_pnode = base_pnode;

1956
		uvhub = uv_cpu_hub_info(cpu)->numa_blade_id;
C
Cliff Wickman 已提交
1957
		*(uvhub_mask + (uvhub/8)) |= (1 << (uvhub%8));
1958
		bdp = &uvhub_descs[uvhub];
C
Cliff Wickman 已提交
1959

1960 1961 1962
		bdp->num_cpus++;
		bdp->uvhub = uvhub;
		bdp->pnode = pnode;
C
Cliff Wickman 已提交
1963

1964 1965
		/* kludge: 'assuming' one node per socket, and assuming that
		   disabling a socket just leaves a gap in node numbers */
1966
		socket = bcp->osnode & 1;
1967
		bdp->socket_mask |= (1 << socket);
1968 1969 1970
		sdp = &bdp->socket[socket];
		sdp->cpu_number[sdp->num_cpus] = cpu;
		sdp->num_cpus++;
1971
		if (sdp->num_cpus > MAX_CPUS_PER_SOCKET) {
C
Cliff Wickman 已提交
1972 1973
			printk(KERN_EMERG "%d cpus per socket invalid\n",
				sdp->num_cpus);
1974 1975
			return 1;
		}
1976
	}
C
Cliff Wickman 已提交
1977 1978 1979 1980 1981 1982 1983 1984 1985 1986 1987 1988 1989 1990 1991 1992 1993 1994 1995
	return 0;
}

/*
 * Each socket is to get a local array of pnodes/hubs.
 */
static void make_per_cpu_thp(struct bau_control *smaster)
{
	int cpu;
	size_t hpsz = sizeof(struct hub_and_pnode) * num_possible_cpus();

	smaster->thp = kmalloc_node(hpsz, GFP_KERNEL, smaster->osnode);
	memset(smaster->thp, 0, hpsz);
	for_each_present_cpu(cpu) {
		smaster->thp[cpu].pnode = uv_cpu_hub_info(cpu)->pnode;
		smaster->thp[cpu].uvhub = uv_cpu_hub_info(cpu)->numa_blade_id;
	}
}

1996 1997 1998 1999 2000 2001 2002 2003 2004 2005
/*
 * Each uvhub is to get a local cpumask.
 */
static void make_per_hub_cpumask(struct bau_control *hmaster)
{
	int sz = sizeof(cpumask_t);

	hmaster->cpumask = kzalloc_node(sz, GFP_KERNEL, hmaster->osnode);
}

C
Cliff Wickman 已提交
2006 2007 2008 2009 2010 2011 2012 2013 2014 2015 2016 2017 2018 2019 2020 2021 2022 2023 2024 2025 2026 2027 2028 2029 2030 2031
/*
 * Initialize all the per_cpu information for the cpu's on a given socket,
 * given what has been gathered into the socket_desc struct.
 * And reports the chosen hub and socket masters back to the caller.
 */
static int scan_sock(struct socket_desc *sdp, struct uvhub_desc *bdp,
			struct bau_control **smasterp,
			struct bau_control **hmasterp)
{
	int i;
	int cpu;
	struct bau_control *bcp;

	for (i = 0; i < sdp->num_cpus; i++) {
		cpu = sdp->cpu_number[i];
		bcp = &per_cpu(bau_control, cpu);
		bcp->cpu = cpu;
		if (i == 0) {
			*smasterp = bcp;
			if (!(*hmasterp))
				*hmasterp = bcp;
		}
		bcp->cpus_in_uvhub = bdp->num_cpus;
		bcp->cpus_in_socket = sdp->num_cpus;
		bcp->socket_master = *smasterp;
		bcp->uvhub = bdp->uvhub;
2032 2033 2034 2035
		if (is_uv1_hub())
			bcp->uvhub_version = 1;
		else if (is_uv2_hub())
			bcp->uvhub_version = 2;
2036 2037
		else if (is_uv3_hub())
			bcp->uvhub_version = 3;
2038
		else {
2039
			printk(KERN_EMERG "uvhub version not 1, 2 or 3\n");
2040 2041
			return 1;
		}
C
Cliff Wickman 已提交
2042
		bcp->uvhub_master = *hmasterp;
2043 2044
		bcp->uvhub_cpu = uv_cpu_blade_processor_id(cpu);

C
Cliff Wickman 已提交
2045 2046 2047 2048 2049 2050 2051 2052 2053 2054 2055 2056 2057 2058 2059 2060 2061 2062 2063 2064
		if (bcp->uvhub_cpu >= MAX_CPUS_PER_UVHUB) {
			printk(KERN_EMERG "%d cpus per uvhub invalid\n",
				bcp->uvhub_cpu);
			return 1;
		}
	}
	return 0;
}

/*
 * Summarize the blade and socket topology into the per_cpu structures.
 */
static int __init summarize_uvhub_sockets(int nuvhubs,
			struct uvhub_desc *uvhub_descs,
			unsigned char *uvhub_mask)
{
	int socket;
	int uvhub;
	unsigned short socket_mask;

C
Cliff Wickman 已提交
2065
	for (uvhub = 0; uvhub < nuvhubs; uvhub++) {
C
Cliff Wickman 已提交
2066 2067 2068 2069
		struct uvhub_desc *bdp;
		struct bau_control *smaster = NULL;
		struct bau_control *hmaster = NULL;

C
Cliff Wickman 已提交
2070 2071
		if (!(*(uvhub_mask + (uvhub/8)) & (1 << (uvhub%8))))
			continue;
C
Cliff Wickman 已提交
2072

2073
		bdp = &uvhub_descs[uvhub];
2074 2075 2076
		socket_mask = bdp->socket_mask;
		socket = 0;
		while (socket_mask) {
C
Cliff Wickman 已提交
2077 2078 2079 2080
			struct socket_desc *sdp;
			if ((socket_mask & 1)) {
				sdp = &bdp->socket[socket];
				if (scan_sock(sdp, bdp, &smaster, &hmaster))
2081
					return 1;
2082
				make_per_cpu_thp(smaster);
2083 2084
			}
			socket++;
2085
			socket_mask = (socket_mask >> 1);
2086
		}
2087
		make_per_hub_cpumask(hmaster);
2088
	}
C
Cliff Wickman 已提交
2089 2090 2091 2092 2093 2094 2095 2096 2097 2098 2099 2100 2101 2102 2103 2104 2105 2106 2107 2108
	return 0;
}

/*
 * initialize the bau_control structure for each cpu
 */
static int __init init_per_cpu(int nuvhubs, int base_part_pnode)
{
	unsigned char *uvhub_mask;
	void *vp;
	struct uvhub_desc *uvhub_descs;

	timeout_us = calculate_destination_timeout();

	vp = kmalloc(nuvhubs * sizeof(struct uvhub_desc), GFP_KERNEL);
	uvhub_descs = (struct uvhub_desc *)vp;
	memset(uvhub_descs, 0, nuvhubs * sizeof(struct uvhub_desc));
	uvhub_mask = kzalloc((nuvhubs+7)/8, GFP_KERNEL);

	if (get_cpu_topology(base_part_pnode, uvhub_descs, uvhub_mask))
2109
		goto fail;
C
Cliff Wickman 已提交
2110 2111

	if (summarize_uvhub_sockets(nuvhubs, uvhub_descs, uvhub_mask))
2112
		goto fail;
C
Cliff Wickman 已提交
2113

2114
	kfree(uvhub_descs);
C
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2115
	kfree(uvhub_mask);
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	init_per_cpu_tunables();
2117
	return 0;
2118 2119 2120 2121 2122

fail:
	kfree(uvhub_descs);
	kfree(uvhub_mask);
	return 1;
2123 2124 2125 2126 2127 2128 2129
}

/*
 * Initialization of BAU-related structures
 */
static int __init uv_bau_init(void)
{
2130 2131 2132
	int uvhub;
	int pnode;
	int nuvhubs;
2133
	int cur_cpu;
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	int cpus;
2135
	int vector;
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2136
	cpumask_var_t *mask;
2137 2138 2139

	if (!is_uv_system())
		return 0;
2140

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2141 2142 2143 2144
	for_each_possible_cpu(cur_cpu) {
		mask = &per_cpu(uv_flush_tlb_mask, cur_cpu);
		zalloc_cpumask_var_node(mask, GFP_KERNEL, cpu_to_node(cur_cpu));
	}
2145

2146
	nuvhubs = uv_num_possible_blades();
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	congested_cycles = usec_2_cycles(congested_respns_us);
2148

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2149
	uv_base_pnode = 0x7fffffff;
2150
	for (uvhub = 0; uvhub < nuvhubs; uvhub++) {
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2151 2152 2153
		cpus = uv_blade_nr_possible_cpus(uvhub);
		if (cpus && (uv_blade_to_pnode(uvhub) < uv_base_pnode))
			uv_base_pnode = uv_blade_to_pnode(uvhub);
2154 2155
	}

2156 2157
	enable_timeouts();

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	if (init_per_cpu(nuvhubs, uv_base_pnode)) {
2159 2160
		set_bau_off();
		nobau_perm = 1;
2161 2162
		return 0;
	}
2163 2164

	vector = UV_BAU_MESSAGE;
2165
	for_each_possible_blade(uvhub) {
2166
		if (uv_blade_nr_possible_cpus(uvhub))
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			init_uvhub(uvhub, vector, uv_base_pnode);
2168
	}
2169 2170 2171 2172

	alloc_intr_gate(vector, uv_bau_message_intr1);

	for_each_possible_blade(uvhub) {
2173
		if (uv_blade_nr_possible_cpus(uvhub)) {
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2174 2175
			unsigned long val;
			unsigned long mmr;
2176 2177
			pnode = uv_blade_to_pnode(uvhub);
			/* INIT the bau */
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2178 2179
			val = 1L << 63;
			write_gmmr_activation(pnode, val);
2180
			mmr = 1; /* should be 1 to broadcast to both sockets */
2181 2182
			if (!is_uv1_hub())
				write_mmr_data_broadcast(pnode, mmr);
2183
		}
2184
	}
2185

2186 2187
	return 0;
}
2188
core_initcall(uv_bau_init);
2189
fs_initcall(uv_ptc_init);