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xe_bo_create_from_data() last use was removed in 2023 by commit0e1a47fcab
("drm/xe: Add a helper for DRM device-lifetime BO create") xe_rtp_match_first_gslice_fused_off() last use was removed in 2023 by commit4e124151fc
("drm/xe/dg2: Drop pre-production workarounds") Remove them, and xe_dss_mask_empty whose last use was by xe_rtp_match_first_gslice_fused_off(). (Xe has a bunch ofother symbols that have been added but not used, given how new it is, I've left those, as opposed to these that had the code that used them removed). Reviewed-by: Lucas De Marchi <lucas.demarchi@intel.com> Signed-off-by: Dr. David Alan Gilbert <linux@treblig.org> Link: https://lore.kernel.org/r/20250713152531.219326-1-linux@treblig.org Signed-off-by: Lucas De Marchi <lucas.demarchi@intel.com>
366 lines
9.7 KiB
C
366 lines
9.7 KiB
C
// SPDX-License-Identifier: MIT
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/*
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* Copyright © 2022 Intel Corporation
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*/
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#include "xe_rtp.h"
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#include <kunit/visibility.h>
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#include <uapi/drm/xe_drm.h>
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#include "xe_gt.h"
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#include "xe_gt_topology.h"
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#include "xe_macros.h"
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#include "xe_reg_sr.h"
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#include "xe_sriov.h"
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/**
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* DOC: Register Table Processing
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*
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* Internal infrastructure to define how registers should be updated based on
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* rules and actions. This can be used to define tables with multiple entries
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* (one per register) that will be walked over at some point in time to apply
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* the values to the registers that have matching rules.
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*/
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static bool has_samedia(const struct xe_device *xe)
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{
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return xe->info.media_verx100 >= 1300;
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}
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static bool rule_matches(const struct xe_device *xe,
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struct xe_gt *gt,
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struct xe_hw_engine *hwe,
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const struct xe_rtp_rule *rules,
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unsigned int n_rules)
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{
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const struct xe_rtp_rule *r;
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unsigned int i, rcount = 0;
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bool match;
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for (r = rules, i = 0; i < n_rules; r = &rules[++i]) {
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switch (r->match_type) {
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case XE_RTP_MATCH_OR:
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/*
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* This is only reached if a complete set of
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* rules passed or none were evaluated. For both cases,
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* shortcut the other rules and return the proper value.
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*/
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goto done;
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case XE_RTP_MATCH_PLATFORM:
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match = xe->info.platform == r->platform;
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break;
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case XE_RTP_MATCH_SUBPLATFORM:
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match = xe->info.platform == r->platform &&
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xe->info.subplatform == r->subplatform;
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break;
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case XE_RTP_MATCH_GRAPHICS_VERSION:
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if (drm_WARN_ON(&xe->drm, !gt))
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return false;
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match = xe->info.graphics_verx100 == r->ver_start &&
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(!has_samedia(xe) || !xe_gt_is_media_type(gt));
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break;
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case XE_RTP_MATCH_GRAPHICS_VERSION_RANGE:
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if (drm_WARN_ON(&xe->drm, !gt))
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return false;
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match = xe->info.graphics_verx100 >= r->ver_start &&
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xe->info.graphics_verx100 <= r->ver_end &&
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(!has_samedia(xe) || !xe_gt_is_media_type(gt));
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break;
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case XE_RTP_MATCH_GRAPHICS_VERSION_ANY_GT:
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if (drm_WARN_ON(&xe->drm, !gt))
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return false;
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match = xe->info.graphics_verx100 == r->ver_start;
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break;
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case XE_RTP_MATCH_GRAPHICS_STEP:
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if (drm_WARN_ON(&xe->drm, !gt))
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return false;
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match = xe->info.step.graphics >= r->step_start &&
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xe->info.step.graphics < r->step_end &&
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(!has_samedia(xe) || !xe_gt_is_media_type(gt));
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break;
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case XE_RTP_MATCH_MEDIA_VERSION:
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if (drm_WARN_ON(&xe->drm, !gt))
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return false;
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match = xe->info.media_verx100 == r->ver_start &&
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(!has_samedia(xe) || xe_gt_is_media_type(gt));
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break;
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case XE_RTP_MATCH_MEDIA_VERSION_RANGE:
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if (drm_WARN_ON(&xe->drm, !gt))
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return false;
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match = xe->info.media_verx100 >= r->ver_start &&
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xe->info.media_verx100 <= r->ver_end &&
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(!has_samedia(xe) || xe_gt_is_media_type(gt));
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break;
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case XE_RTP_MATCH_MEDIA_STEP:
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if (drm_WARN_ON(&xe->drm, !gt))
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return false;
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match = xe->info.step.media >= r->step_start &&
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xe->info.step.media < r->step_end &&
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(!has_samedia(xe) || xe_gt_is_media_type(gt));
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break;
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case XE_RTP_MATCH_MEDIA_VERSION_ANY_GT:
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if (drm_WARN_ON(&xe->drm, !gt))
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return false;
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match = xe->info.media_verx100 == r->ver_start;
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break;
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case XE_RTP_MATCH_INTEGRATED:
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match = !xe->info.is_dgfx;
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break;
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case XE_RTP_MATCH_DISCRETE:
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match = xe->info.is_dgfx;
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break;
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case XE_RTP_MATCH_ENGINE_CLASS:
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if (drm_WARN_ON(&xe->drm, !hwe))
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return false;
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match = hwe->class == r->engine_class;
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break;
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case XE_RTP_MATCH_NOT_ENGINE_CLASS:
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if (drm_WARN_ON(&xe->drm, !hwe))
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return false;
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match = hwe->class != r->engine_class;
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break;
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case XE_RTP_MATCH_FUNC:
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if (drm_WARN_ON(&xe->drm, !gt))
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return false;
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match = r->match_func(gt, hwe);
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break;
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default:
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drm_warn(&xe->drm, "Invalid RTP match %u\n",
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r->match_type);
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match = false;
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}
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if (!match) {
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/*
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* Advance rules until we find XE_RTP_MATCH_OR to check
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* if there's another set of conditions to check
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*/
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while (++i < n_rules && rules[i].match_type != XE_RTP_MATCH_OR)
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;
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if (i >= n_rules)
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return false;
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rcount = 0;
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} else {
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rcount++;
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}
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}
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done:
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if (drm_WARN_ON(&xe->drm, !rcount))
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return false;
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return true;
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}
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static void rtp_add_sr_entry(const struct xe_rtp_action *action,
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struct xe_gt *gt,
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u32 mmio_base,
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struct xe_reg_sr *sr)
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{
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struct xe_reg_sr_entry sr_entry = {
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.reg = action->reg,
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.clr_bits = action->clr_bits,
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.set_bits = action->set_bits,
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.read_mask = action->read_mask,
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};
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sr_entry.reg.addr += mmio_base;
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xe_reg_sr_add(sr, &sr_entry, gt);
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}
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static bool rtp_process_one_sr(const struct xe_rtp_entry_sr *entry,
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struct xe_device *xe, struct xe_gt *gt,
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struct xe_hw_engine *hwe, struct xe_reg_sr *sr)
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{
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const struct xe_rtp_action *action;
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u32 mmio_base;
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unsigned int i;
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if (!rule_matches(xe, gt, hwe, entry->rules, entry->n_rules))
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return false;
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for (i = 0, action = &entry->actions[0]; i < entry->n_actions; action++, i++) {
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if ((entry->flags & XE_RTP_ENTRY_FLAG_FOREACH_ENGINE) ||
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(action->flags & XE_RTP_ACTION_FLAG_ENGINE_BASE))
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mmio_base = hwe->mmio_base;
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else
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mmio_base = 0;
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rtp_add_sr_entry(action, gt, mmio_base, sr);
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}
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return true;
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}
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static void rtp_get_context(struct xe_rtp_process_ctx *ctx,
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struct xe_hw_engine **hwe,
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struct xe_gt **gt,
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struct xe_device **xe)
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{
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switch (ctx->type) {
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case XE_RTP_PROCESS_TYPE_DEVICE:
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*hwe = NULL;
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*gt = NULL;
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*xe = ctx->xe;
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break;
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case XE_RTP_PROCESS_TYPE_GT:
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*hwe = NULL;
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*gt = ctx->gt;
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*xe = gt_to_xe(*gt);
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break;
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case XE_RTP_PROCESS_TYPE_ENGINE:
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*hwe = ctx->hwe;
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*gt = (*hwe)->gt;
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*xe = gt_to_xe(*gt);
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break;
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}
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}
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/**
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* xe_rtp_process_ctx_enable_active_tracking - Enable tracking of active entries
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*
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* Set additional metadata to track what entries are considered "active", i.e.
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* their rules match the condition. Bits are never cleared: entries with
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* matching rules set the corresponding bit in the bitmap.
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*
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* @ctx: The context for processing the table
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* @active_entries: bitmap to store the active entries
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* @n_entries: number of entries to be processed
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*/
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void xe_rtp_process_ctx_enable_active_tracking(struct xe_rtp_process_ctx *ctx,
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unsigned long *active_entries,
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size_t n_entries)
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{
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ctx->active_entries = active_entries;
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ctx->n_entries = n_entries;
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}
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EXPORT_SYMBOL_IF_KUNIT(xe_rtp_process_ctx_enable_active_tracking);
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static void rtp_mark_active(struct xe_device *xe,
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struct xe_rtp_process_ctx *ctx,
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unsigned int idx)
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{
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if (!ctx->active_entries)
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return;
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if (drm_WARN_ON(&xe->drm, idx >= ctx->n_entries))
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return;
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bitmap_set(ctx->active_entries, idx, 1);
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}
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/**
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* xe_rtp_process_to_sr - Process all rtp @entries, adding the matching ones to
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* the save-restore argument.
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* @ctx: The context for processing the table, with one of device, gt or hwe
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* @entries: Table with RTP definitions
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* @n_entries: Number of entries to process, usually ARRAY_SIZE(entries)
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* @sr: Save-restore struct where matching rules execute the action. This can be
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* viewed as the "coalesced view" of multiple the tables. The bits for each
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* register set are expected not to collide with previously added entries
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*
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* Walk the table pointed by @entries (with an empty sentinel) and add all
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* entries with matching rules to @sr. If @hwe is not NULL, its mmio_base is
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* used to calculate the right register offset
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*/
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void xe_rtp_process_to_sr(struct xe_rtp_process_ctx *ctx,
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const struct xe_rtp_entry_sr *entries,
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size_t n_entries,
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struct xe_reg_sr *sr)
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{
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const struct xe_rtp_entry_sr *entry;
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struct xe_hw_engine *hwe = NULL;
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struct xe_gt *gt = NULL;
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struct xe_device *xe = NULL;
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rtp_get_context(ctx, &hwe, >, &xe);
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xe_assert(xe, entries);
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for (entry = entries; entry - entries < n_entries; entry++) {
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bool match = false;
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if (entry->flags & XE_RTP_ENTRY_FLAG_FOREACH_ENGINE) {
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struct xe_hw_engine *each_hwe;
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enum xe_hw_engine_id id;
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for_each_hw_engine(each_hwe, gt, id)
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match |= rtp_process_one_sr(entry, xe, gt,
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each_hwe, sr);
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} else {
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match = rtp_process_one_sr(entry, xe, gt, hwe, sr);
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}
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if (match)
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rtp_mark_active(xe, ctx, entry - entries);
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}
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}
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EXPORT_SYMBOL_IF_KUNIT(xe_rtp_process_to_sr);
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/**
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* xe_rtp_process - Process all rtp @entries, without running any action
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* @ctx: The context for processing the table, with one of device, gt or hwe
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* @entries: Table with RTP definitions
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*
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* Walk the table pointed by @entries (with an empty sentinel), executing the
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* rules. One difference from xe_rtp_process_to_sr(): there is no action
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* associated with each entry since this uses struct xe_rtp_entry. Its main use
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* is for marking active workarounds via
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* xe_rtp_process_ctx_enable_active_tracking().
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*/
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void xe_rtp_process(struct xe_rtp_process_ctx *ctx,
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const struct xe_rtp_entry *entries)
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{
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const struct xe_rtp_entry *entry;
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struct xe_hw_engine *hwe;
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struct xe_gt *gt;
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struct xe_device *xe;
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rtp_get_context(ctx, &hwe, >, &xe);
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for (entry = entries; entry && entry->rules; entry++) {
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if (!rule_matches(xe, gt, hwe, entry->rules, entry->n_rules))
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continue;
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rtp_mark_active(xe, ctx, entry - entries);
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}
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}
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EXPORT_SYMBOL_IF_KUNIT(xe_rtp_process);
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bool xe_rtp_match_even_instance(const struct xe_gt *gt,
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const struct xe_hw_engine *hwe)
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{
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return hwe->instance % 2 == 0;
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}
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bool xe_rtp_match_first_render_or_compute(const struct xe_gt *gt,
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const struct xe_hw_engine *hwe)
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{
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u64 render_compute_mask = gt->info.engine_mask &
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(XE_HW_ENGINE_CCS_MASK | XE_HW_ENGINE_RCS_MASK);
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return render_compute_mask &&
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hwe->engine_id == __ffs(render_compute_mask);
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}
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bool xe_rtp_match_not_sriov_vf(const struct xe_gt *gt,
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const struct xe_hw_engine *hwe)
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{
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return !IS_SRIOV_VF(gt_to_xe(gt));
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}
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