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torvalds
GitHub Repository: torvalds/linux
Path: blob/master/drivers/firewire/core-topology.c
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// SPDX-License-Identifier: GPL-2.0-or-later
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/*
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* Incremental bus scan, based on bus topology
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*
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* Copyright (C) 2004-2006 Kristian Hoegsberg <[email protected]>
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*/
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#include <linux/bug.h>
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#include <linux/errno.h>
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#include <linux/firewire.h>
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#include <linux/firewire-constants.h>
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#include <linux/jiffies.h>
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#include <linux/kernel.h>
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#include <linux/list.h>
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#include <linux/module.h>
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#include <linux/slab.h>
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#include <linux/spinlock.h>
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#include <linux/atomic.h>
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#include <asm/byteorder.h>
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#include "core.h"
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#include "phy-packet-definitions.h"
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#include <trace/events/firewire.h>
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static struct fw_node *fw_node_create(u32 sid, int port_count, int color)
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{
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struct fw_node *node;
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node = kzalloc(struct_size(node, ports, port_count), GFP_ATOMIC);
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if (node == NULL)
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return NULL;
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node->color = color;
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node->node_id = LOCAL_BUS | phy_packet_self_id_get_phy_id(sid);
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node->link_on = phy_packet_self_id_zero_get_link_active(sid);
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// NOTE: Only two bits, thus only for SCODE_100, SCODE_200, SCODE_400, and SCODE_BETA.
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node->phy_speed = phy_packet_self_id_zero_get_scode(sid);
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node->initiated_reset = phy_packet_self_id_zero_get_initiated_reset(sid);
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node->port_count = port_count;
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kref_init(&node->kref);
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INIT_LIST_HEAD(&node->link);
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return node;
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}
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/*
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* Compute the maximum hop count for this node and it's children. The
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* maximum hop count is the maximum number of connections between any
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* two nodes in the subtree rooted at this node. We need this for
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* setting the gap count. As we build the tree bottom up in
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* build_tree() below, this is fairly easy to do: for each node we
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* maintain the max hop count and the max depth, ie the number of hops
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* to the furthest leaf. Computing the max hop count breaks down into
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* two cases: either the path goes through this node, in which case
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* the hop count is the sum of the two biggest child depths plus 2.
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* Or it could be the case that the max hop path is entirely
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* contained in a child tree, in which case the max hop count is just
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* the max hop count of this child.
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*/
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static void update_hop_count(struct fw_node *node)
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{
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int depths[2] = { -1, -1 };
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int max_child_hops = 0;
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int i;
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for (i = 0; i < node->port_count; i++) {
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if (node->ports[i] == NULL)
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continue;
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if (node->ports[i]->max_hops > max_child_hops)
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max_child_hops = node->ports[i]->max_hops;
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if (node->ports[i]->max_depth > depths[0]) {
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depths[1] = depths[0];
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depths[0] = node->ports[i]->max_depth;
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} else if (node->ports[i]->max_depth > depths[1])
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depths[1] = node->ports[i]->max_depth;
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}
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node->max_depth = depths[0] + 1;
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node->max_hops = max(max_child_hops, depths[0] + depths[1] + 2);
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}
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static inline struct fw_node *fw_node(struct list_head *l)
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{
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return list_entry(l, struct fw_node, link);
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}
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/*
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* This function builds the tree representation of the topology given
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* by the self IDs from the latest bus reset. During the construction
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* of the tree, the function checks that the self IDs are valid and
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* internally consistent. On success this function returns the
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* fw_node corresponding to the local card otherwise NULL.
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*/
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static struct fw_node *build_tree(struct fw_card *card, const u32 *sid, int self_id_count,
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unsigned int generation)
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{
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struct self_id_sequence_enumerator enumerator = {
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.cursor = sid,
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.quadlet_count = self_id_count,
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};
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struct fw_node *node, *child, *local_node, *irm_node;
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struct list_head stack;
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int phy_id, stack_depth;
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int gap_count;
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bool beta_repeaters_present;
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local_node = NULL;
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node = NULL;
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INIT_LIST_HEAD(&stack);
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stack_depth = 0;
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phy_id = 0;
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irm_node = NULL;
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gap_count = phy_packet_self_id_zero_get_gap_count(*sid);
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beta_repeaters_present = false;
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while (enumerator.quadlet_count > 0) {
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unsigned int child_port_count = 0;
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unsigned int total_port_count = 0;
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unsigned int parent_count = 0;
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unsigned int quadlet_count;
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const u32 *self_id_sequence;
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unsigned int port_capacity;
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enum phy_packet_self_id_port_status port_status;
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unsigned int port_index;
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struct list_head *h;
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int i;
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self_id_sequence = self_id_sequence_enumerator_next(&enumerator, &quadlet_count);
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if (IS_ERR(self_id_sequence)) {
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if (PTR_ERR(self_id_sequence) != -ENODATA) {
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fw_err(card, "inconsistent extended self IDs: %ld\n",
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PTR_ERR(self_id_sequence));
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return NULL;
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}
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break;
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}
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port_capacity = self_id_sequence_get_port_capacity(quadlet_count);
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trace_self_id_sequence(card->index, self_id_sequence, quadlet_count, generation);
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for (port_index = 0; port_index < port_capacity; ++port_index) {
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port_status = self_id_sequence_get_port_status(self_id_sequence, quadlet_count,
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port_index);
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switch (port_status) {
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case PHY_PACKET_SELF_ID_PORT_STATUS_CHILD:
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++child_port_count;
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fallthrough;
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case PHY_PACKET_SELF_ID_PORT_STATUS_PARENT:
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case PHY_PACKET_SELF_ID_PORT_STATUS_NCONN:
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++total_port_count;
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fallthrough;
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case PHY_PACKET_SELF_ID_PORT_STATUS_NONE:
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default:
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break;
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}
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}
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if (phy_id != phy_packet_self_id_get_phy_id(self_id_sequence[0])) {
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fw_err(card, "PHY ID mismatch in self ID: %d != %d\n",
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phy_id, phy_packet_self_id_get_phy_id(self_id_sequence[0]));
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return NULL;
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}
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if (child_port_count > stack_depth) {
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fw_err(card, "topology stack underflow\n");
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return NULL;
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}
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/*
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* Seek back from the top of our stack to find the
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* start of the child nodes for this node.
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*/
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for (i = 0, h = &stack; i < child_port_count; i++)
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h = h->prev;
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/*
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* When the stack is empty, this yields an invalid value,
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* but that pointer will never be dereferenced.
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*/
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child = fw_node(h);
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node = fw_node_create(self_id_sequence[0], total_port_count, card->color);
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if (node == NULL) {
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fw_err(card, "out of memory while building topology\n");
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return NULL;
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}
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if (phy_id == (card->node_id & 0x3f))
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local_node = node;
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if (phy_packet_self_id_zero_get_contender(self_id_sequence[0]))
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irm_node = node;
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for (port_index = 0; port_index < total_port_count; ++port_index) {
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port_status = self_id_sequence_get_port_status(self_id_sequence, quadlet_count,
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port_index);
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switch (port_status) {
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case PHY_PACKET_SELF_ID_PORT_STATUS_PARENT:
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// Who's your daddy? We dont know the parent node at this time, so
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// we temporarily abuse node->color for remembering the entry in
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// the node->ports array where the parent node should be. Later,
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// when we handle the parent node, we fix up the reference.
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++parent_count;
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node->color = port_index;
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break;
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case PHY_PACKET_SELF_ID_PORT_STATUS_CHILD:
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node->ports[port_index] = child;
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// Fix up parent reference for this child node.
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child->ports[child->color] = node;
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child->color = card->color;
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child = fw_node(child->link.next);
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break;
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case PHY_PACKET_SELF_ID_PORT_STATUS_NCONN:
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case PHY_PACKET_SELF_ID_PORT_STATUS_NONE:
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default:
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break;
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}
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}
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// Check that the node reports exactly one parent port, except for the root, which
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// of course should have no parents.
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if ((enumerator.quadlet_count == 0 && parent_count != 0) ||
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(enumerator.quadlet_count > 0 && parent_count != 1)) {
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fw_err(card, "parent port inconsistency for node %d: "
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"parent_count=%d\n", phy_id, parent_count);
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return NULL;
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}
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/* Pop the child nodes off the stack and push the new node. */
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__list_del(h->prev, &stack);
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list_add_tail(&node->link, &stack);
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stack_depth += 1 - child_port_count;
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if (node->phy_speed == SCODE_BETA && parent_count + child_port_count > 1)
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beta_repeaters_present = true;
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// If PHYs report different gap counts, set an invalid count which will force a gap
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// count reconfiguration and a reset.
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if (phy_packet_self_id_zero_get_gap_count(self_id_sequence[0]) != gap_count)
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gap_count = GAP_COUNT_MISMATCHED;
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update_hop_count(node);
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phy_id++;
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}
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card->root_node = node;
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card->irm_node = irm_node;
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card->gap_count = gap_count;
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card->beta_repeaters_present = beta_repeaters_present;
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return local_node;
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}
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typedef void (*fw_node_callback_t)(struct fw_card * card,
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struct fw_node * node,
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struct fw_node * parent);
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static void for_each_fw_node(struct fw_card *card, struct fw_node *root,
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fw_node_callback_t callback)
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{
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struct list_head list;
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struct fw_node *node, *next, *child, *parent;
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int i;
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INIT_LIST_HEAD(&list);
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fw_node_get(root);
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list_add_tail(&root->link, &list);
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parent = NULL;
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list_for_each_entry(node, &list, link) {
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node->color = card->color;
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for (i = 0; i < node->port_count; i++) {
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child = node->ports[i];
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if (!child)
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continue;
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if (child->color == card->color)
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parent = child;
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else {
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fw_node_get(child);
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list_add_tail(&child->link, &list);
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}
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}
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callback(card, node, parent);
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}
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list_for_each_entry_safe(node, next, &list, link)
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fw_node_put(node);
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}
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static void report_lost_node(struct fw_card *card,
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struct fw_node *node, struct fw_node *parent)
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{
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fw_node_event(card, node, FW_NODE_DESTROYED);
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fw_node_put(node);
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/* Topology has changed - reset bus manager retry counter */
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card->bm_retries = 0;
305
}
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static void report_found_node(struct fw_card *card,
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struct fw_node *node, struct fw_node *parent)
309
{
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int b_path = (node->phy_speed == SCODE_BETA);
311
312
if (parent != NULL) {
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/* min() macro doesn't work here with gcc 3.4 */
314
node->max_speed = parent->max_speed < node->phy_speed ?
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parent->max_speed : node->phy_speed;
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node->b_path = parent->b_path && b_path;
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} else {
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node->max_speed = node->phy_speed;
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node->b_path = b_path;
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}
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fw_node_event(card, node, FW_NODE_CREATED);
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/* Topology has changed - reset bus manager retry counter */
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card->bm_retries = 0;
326
}
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void fw_destroy_nodes(struct fw_card *card)
329
__must_hold(&card->lock)
330
{
331
lockdep_assert_held(&card->lock);
332
333
card->color++;
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if (card->local_node != NULL)
335
for_each_fw_node(card, card->local_node, report_lost_node);
336
card->local_node = NULL;
337
}
338
339
static void move_tree(struct fw_node *node0, struct fw_node *node1, int port)
340
{
341
struct fw_node *tree;
342
int i;
343
344
tree = node1->ports[port];
345
node0->ports[port] = tree;
346
for (i = 0; i < tree->port_count; i++) {
347
if (tree->ports[i] == node1) {
348
tree->ports[i] = node0;
349
break;
350
}
351
}
352
}
353
354
/*
355
* Compare the old topology tree for card with the new one specified by root.
356
* Queue the nodes and mark them as either found, lost or updated.
357
* Update the nodes in the card topology tree as we go.
358
*/
359
static void update_tree(struct fw_card *card, struct fw_node *root)
360
{
361
struct list_head list0, list1;
362
struct fw_node *node0, *node1, *next1;
363
int i, event;
364
365
INIT_LIST_HEAD(&list0);
366
list_add_tail(&card->local_node->link, &list0);
367
INIT_LIST_HEAD(&list1);
368
list_add_tail(&root->link, &list1);
369
370
node0 = fw_node(list0.next);
371
node1 = fw_node(list1.next);
372
373
while (&node0->link != &list0) {
374
WARN_ON(node0->port_count != node1->port_count);
375
376
if (node0->link_on && !node1->link_on)
377
event = FW_NODE_LINK_OFF;
378
else if (!node0->link_on && node1->link_on)
379
event = FW_NODE_LINK_ON;
380
else if (node1->initiated_reset && node1->link_on)
381
event = FW_NODE_INITIATED_RESET;
382
else
383
event = FW_NODE_UPDATED;
384
385
node0->node_id = node1->node_id;
386
node0->color = card->color;
387
node0->link_on = node1->link_on;
388
node0->initiated_reset = node1->initiated_reset;
389
node0->max_hops = node1->max_hops;
390
node1->color = card->color;
391
fw_node_event(card, node0, event);
392
393
if (card->root_node == node1)
394
card->root_node = node0;
395
if (card->irm_node == node1)
396
card->irm_node = node0;
397
398
for (i = 0; i < node0->port_count; i++) {
399
if (node0->ports[i] && node1->ports[i]) {
400
/*
401
* This port didn't change, queue the
402
* connected node for further
403
* investigation.
404
*/
405
if (node0->ports[i]->color == card->color)
406
continue;
407
list_add_tail(&node0->ports[i]->link, &list0);
408
list_add_tail(&node1->ports[i]->link, &list1);
409
} else if (node0->ports[i]) {
410
/*
411
* The nodes connected here were
412
* unplugged; unref the lost nodes and
413
* queue FW_NODE_LOST callbacks for
414
* them.
415
*/
416
417
for_each_fw_node(card, node0->ports[i],
418
report_lost_node);
419
node0->ports[i] = NULL;
420
} else if (node1->ports[i]) {
421
/*
422
* One or more node were connected to
423
* this port. Move the new nodes into
424
* the tree and queue FW_NODE_CREATED
425
* callbacks for them.
426
*/
427
move_tree(node0, node1, i);
428
for_each_fw_node(card, node0->ports[i],
429
report_found_node);
430
}
431
}
432
433
node0 = fw_node(node0->link.next);
434
next1 = fw_node(node1->link.next);
435
fw_node_put(node1);
436
node1 = next1;
437
}
438
}
439
440
static void update_topology_map(__be32 *buffer, size_t buffer_size, int root_node_id,
441
const u32 *self_ids, int self_id_count)
442
{
443
__be32 *map = buffer;
444
int node_count = (root_node_id & 0x3f) + 1;
445
446
memset(map, 0, buffer_size);
447
448
*map++ = cpu_to_be32((self_id_count + 2) << 16);
449
*map++ = cpu_to_be32(be32_to_cpu(buffer[1]) + 1);
450
*map++ = cpu_to_be32((node_count << 16) | self_id_count);
451
452
while (self_id_count--)
453
*map++ = cpu_to_be32p(self_ids++);
454
455
fw_compute_block_crc(buffer);
456
}
457
458
void fw_core_handle_bus_reset(struct fw_card *card, int node_id, int generation,
459
int self_id_count, u32 *self_ids, bool bm_abdicate)
460
{
461
struct fw_node *local_node;
462
463
trace_bus_reset_handle(card->index, generation, node_id, bm_abdicate, self_ids, self_id_count);
464
465
scoped_guard(spinlock, &card->lock) {
466
// If the selfID buffer is not the immediate successor of the
467
// previously processed one, we cannot reliably compare the
468
// old and new topologies.
469
if (!is_next_generation(generation, card->generation) && card->local_node != NULL) {
470
fw_destroy_nodes(card);
471
card->bm_retries = 0;
472
}
473
card->broadcast_channel_allocated = card->broadcast_channel_auto_allocated;
474
card->node_id = node_id;
475
// Update node_id before generation to prevent anybody from using
476
// a stale node_id together with a current generation.
477
smp_wmb();
478
card->generation = generation;
479
card->reset_jiffies = get_jiffies_64();
480
card->bm_node_id = 0xffff;
481
card->bm_abdicate = bm_abdicate;
482
483
local_node = build_tree(card, self_ids, self_id_count, generation);
484
485
card->color++;
486
487
if (local_node == NULL) {
488
fw_err(card, "topology build failed\n");
489
// FIXME: We need to issue a bus reset in this case.
490
} else if (card->local_node == NULL) {
491
card->local_node = local_node;
492
for_each_fw_node(card, local_node, report_found_node);
493
} else {
494
update_tree(card, local_node);
495
}
496
}
497
498
fw_schedule_bm_work(card, 0);
499
500
// Just used by transaction layer.
501
scoped_guard(spinlock, &card->topology_map.lock) {
502
update_topology_map(card->topology_map.buffer, sizeof(card->topology_map.buffer),
503
card->root_node->node_id, self_ids, self_id_count);
504
}
505
}
506
EXPORT_SYMBOL(fw_core_handle_bus_reset);
507
508