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Invalidate LMTT immediately after removing VF's LMTT page tables and clearing root PTE in the LMTT PD to avoid any invalid access by the hardware (and VF) due to stale data. Signed-off-by: Michal Wajdeczko <michal.wajdeczko@intel.com> Cc: Michał Winiarski <michal.winiarski@intel.com> Cc: Piotr Piórkowski <piotr.piorkowski@intel.com> Cc: Matthew Brost <matthew.brost@intel.com> Reviewed-by: Matthew Brost <matthew.brost@intel.com> Link: https://lore.kernel.org/r/20250711193316.1920-6-michal.wajdeczko@intel.com
572 lines
14 KiB
C
572 lines
14 KiB
C
// SPDX-License-Identifier: MIT
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/*
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* Copyright © 2023 Intel Corporation
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*/
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#include <linux/align.h>
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#include <drm/drm_managed.h>
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#include "regs/xe_gt_regs.h"
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#include "xe_assert.h"
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#include "xe_bo.h"
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#include "xe_gt_tlb_invalidation.h"
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#include "xe_lmtt.h"
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#include "xe_map.h"
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#include "xe_mmio.h"
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#include "xe_res_cursor.h"
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#include "xe_sriov.h"
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#include "xe_sriov_printk.h"
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/**
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* DOC: Local Memory Translation Table
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*
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* The Local Memory Translation Table (LMTT) provides additional abstraction
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* when Virtual Function (VF) is accessing device Local Memory (VRAM).
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*
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* The Root LMTT Page Directory contains one entry for each VF. Entries are
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* indexed by the function number (1-based, index 0 is unused).
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*
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* See `Two-Level LMTT Structure`_ and `Multi-Level LMTT Structure`_.
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*/
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#define lmtt_assert(lmtt, condition) xe_tile_assert(lmtt_to_tile(lmtt), condition)
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#define lmtt_debug(lmtt, msg...) xe_sriov_dbg_verbose(lmtt_to_xe(lmtt), "LMTT: " msg)
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static bool xe_has_multi_level_lmtt(struct xe_device *xe)
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{
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return GRAPHICS_VERx100(xe) >= 1260;
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}
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static struct xe_tile *lmtt_to_tile(struct xe_lmtt *lmtt)
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{
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return container_of(lmtt, struct xe_tile, sriov.pf.lmtt);
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}
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static struct xe_device *lmtt_to_xe(struct xe_lmtt *lmtt)
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{
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return tile_to_xe(lmtt_to_tile(lmtt));
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}
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static u64 lmtt_page_size(struct xe_lmtt *lmtt)
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{
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return BIT_ULL(lmtt->ops->lmtt_pte_shift(0));
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}
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static struct xe_lmtt_pt *lmtt_pt_alloc(struct xe_lmtt *lmtt, unsigned int level)
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{
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unsigned int num_entries = level ? lmtt->ops->lmtt_pte_num(level) : 0;
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struct xe_lmtt_pt *pt;
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struct xe_bo *bo;
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int err;
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pt = kzalloc(struct_size(pt, entries, num_entries), GFP_KERNEL);
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if (!pt) {
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err = -ENOMEM;
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goto out;
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}
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bo = xe_bo_create_pin_map(lmtt_to_xe(lmtt), lmtt_to_tile(lmtt), NULL,
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PAGE_ALIGN(lmtt->ops->lmtt_pte_size(level) *
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lmtt->ops->lmtt_pte_num(level)),
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ttm_bo_type_kernel,
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XE_BO_FLAG_VRAM_IF_DGFX(lmtt_to_tile(lmtt)) |
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XE_BO_FLAG_NEEDS_64K);
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if (IS_ERR(bo)) {
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err = PTR_ERR(bo);
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goto out_free_pt;
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}
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lmtt_assert(lmtt, xe_bo_is_vram(bo));
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lmtt_debug(lmtt, "level=%u addr=%#llx\n", level, (u64)xe_bo_main_addr(bo, XE_PAGE_SIZE));
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xe_map_memset(lmtt_to_xe(lmtt), &bo->vmap, 0, 0, xe_bo_size(bo));
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pt->level = level;
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pt->bo = bo;
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return pt;
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out_free_pt:
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kfree(pt);
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out:
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return ERR_PTR(err);
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}
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static void lmtt_pt_free(struct xe_lmtt_pt *pt)
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{
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lmtt_debug(&pt->bo->tile->sriov.pf.lmtt, "level=%u addr=%llx\n",
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pt->level, (u64)xe_bo_main_addr(pt->bo, XE_PAGE_SIZE));
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xe_bo_unpin_map_no_vm(pt->bo);
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kfree(pt);
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}
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static int lmtt_init_pd(struct xe_lmtt *lmtt)
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{
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struct xe_lmtt_pt *pd;
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lmtt_assert(lmtt, !lmtt->pd);
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lmtt_assert(lmtt, lmtt->ops->lmtt_root_pd_level());
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pd = lmtt_pt_alloc(lmtt, lmtt->ops->lmtt_root_pd_level());
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if (IS_ERR(pd))
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return PTR_ERR(pd);
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lmtt->pd = pd;
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return 0;
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}
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static void lmtt_fini_pd(struct xe_lmtt *lmtt)
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{
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struct xe_lmtt_pt *pd = lmtt->pd;
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unsigned int num_entries = lmtt->ops->lmtt_pte_num(pd->level);
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unsigned int n = 0;
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/* make sure we don't leak */
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for (n = 0; n < num_entries; n++)
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lmtt_assert(lmtt, !pd->entries[n]);
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lmtt->pd = NULL;
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lmtt_pt_free(pd);
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}
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static void fini_lmtt(struct drm_device *drm, void *arg)
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{
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struct xe_lmtt *lmtt = arg;
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lmtt_assert(lmtt, !(!!lmtt->ops ^ !!lmtt->pd));
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if (!lmtt->pd)
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return;
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lmtt_fini_pd(lmtt);
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lmtt->ops = NULL;
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}
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/**
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* xe_lmtt_init - LMTT software initialization.
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* @lmtt: the &xe_lmtt to initialize
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*
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* The LMTT initialization requires two steps.
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*
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* The xe_lmtt_init() checks if LMTT is required on current device and selects
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* and initialize proper variant of the LMTT Root Directory. Currently supported
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* variants are `Two-Level LMTT Structure`_ and `Multi-Level LMTT Structure`_.
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*
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* In next step xe_lmtt_init_hw() will register this directory on the hardware.
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*
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* Notes:
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* The LMTT allocations are managed and will be implicitly released on driver unload.
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* This function shall be called only once and only when running as a PF driver.
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* Any LMTT initialization failure should block VFs enabling.
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*
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* Return: 0 on success or a negative error code on failure.
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*/
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int xe_lmtt_init(struct xe_lmtt *lmtt)
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{
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struct xe_device *xe = lmtt_to_xe(lmtt);
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int err;
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lmtt_assert(lmtt, IS_SRIOV_PF(xe));
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lmtt_assert(lmtt, !lmtt->ops);
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if (!xe_device_has_lmtt(xe))
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return 0;
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if (xe_has_multi_level_lmtt(xe))
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lmtt->ops = &lmtt_ml_ops;
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else
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lmtt->ops = &lmtt_2l_ops;
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err = lmtt_init_pd(lmtt);
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if (unlikely(err))
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goto fail;
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return drmm_add_action_or_reset(&xe->drm, fini_lmtt, lmtt);
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fail:
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lmtt->ops = NULL;
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return err;
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}
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static void lmtt_setup_dir_ptr(struct xe_lmtt *lmtt)
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{
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struct xe_tile *tile = lmtt_to_tile(lmtt);
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struct xe_device *xe = tile_to_xe(tile);
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dma_addr_t offset = xe_bo_main_addr(lmtt->pd->bo, XE_PAGE_SIZE);
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lmtt_debug(lmtt, "DIR offset %pad\n", &offset);
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lmtt_assert(lmtt, xe_bo_is_vram(lmtt->pd->bo));
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lmtt_assert(lmtt, IS_ALIGNED(offset, SZ_64K));
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xe_mmio_write32(&tile->mmio,
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GRAPHICS_VER(xe) >= 20 ? XE2_LMEM_CFG : LMEM_CFG,
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LMEM_EN | REG_FIELD_PREP(LMTT_DIR_PTR, offset / SZ_64K));
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}
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/**
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* xe_lmtt_init_hw - Perform LMTT hardware initialization.
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* @lmtt: the &xe_lmtt to initialize
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*
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* This function is a second step of the LMTT initialization.
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* This function registers LMTT Root Directory prepared in xe_lmtt_init().
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*
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* This function shall be called after every hardware reset.
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* This function shall be called only when running as a PF driver.
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*/
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void xe_lmtt_init_hw(struct xe_lmtt *lmtt)
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{
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if (!lmtt->pd)
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return;
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lmtt_setup_dir_ptr(lmtt);
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}
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static int lmtt_invalidate_hw(struct xe_lmtt *lmtt)
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{
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struct xe_gt_tlb_invalidation_fence fences[XE_MAX_GT_PER_TILE];
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struct xe_gt_tlb_invalidation_fence *fence = fences;
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struct xe_tile *tile = lmtt_to_tile(lmtt);
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struct xe_gt *gt;
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int result = 0;
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int err;
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u8 id;
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for_each_gt_on_tile(gt, tile, id) {
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xe_gt_tlb_invalidation_fence_init(gt, fence, true);
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err = xe_gt_tlb_invalidation_all(gt, fence);
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result = result ?: err;
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fence++;
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}
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lmtt_debug(lmtt, "num_fences=%d err=%d\n", (int)(fence - fences), result);
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/*
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* It is fine to wait for all fences, even for those which covers the
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* invalidation request that failed, as such fence should be already
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* marked as signaled.
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*/
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fence = fences;
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for_each_gt_on_tile(gt, tile, id)
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xe_gt_tlb_invalidation_fence_wait(fence++);
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return result;
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}
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/**
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* xe_lmtt_invalidate_hw - Invalidate LMTT hardware.
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* @lmtt: the &xe_lmtt to invalidate
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*
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* Send requests to all GuCs on this tile to invalidate all TLBs.
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*
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* This function should be called only when running as a PF driver.
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*/
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void xe_lmtt_invalidate_hw(struct xe_lmtt *lmtt)
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{
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struct xe_device *xe = lmtt_to_xe(lmtt);
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int err;
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lmtt_assert(lmtt, IS_SRIOV_PF(xe));
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err = lmtt_invalidate_hw(lmtt);
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if (err)
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xe_sriov_warn(xe, "LMTT%u invalidation failed (%pe)",
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lmtt_to_tile(lmtt)->id, ERR_PTR(err));
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}
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static void lmtt_write_pte(struct xe_lmtt *lmtt, struct xe_lmtt_pt *pt,
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u64 pte, unsigned int idx)
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{
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unsigned int level = pt->level;
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lmtt_assert(lmtt, idx <= lmtt->ops->lmtt_pte_num(level));
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lmtt_debug(lmtt, "WRITE level=%u index=%u pte=%#llx\n", level, idx, pte);
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switch (lmtt->ops->lmtt_pte_size(level)) {
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case sizeof(u32):
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lmtt_assert(lmtt, !overflows_type(pte, u32));
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lmtt_assert(lmtt, !pte || !iosys_map_rd(&pt->bo->vmap, idx * sizeof(u32), u32));
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xe_map_wr(lmtt_to_xe(lmtt), &pt->bo->vmap, idx * sizeof(u32), u32, pte);
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break;
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case sizeof(u64):
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lmtt_assert(lmtt, !pte || !iosys_map_rd(&pt->bo->vmap, idx * sizeof(u64), u64));
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xe_map_wr(lmtt_to_xe(lmtt), &pt->bo->vmap, idx * sizeof(u64), u64, pte);
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break;
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default:
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lmtt_assert(lmtt, !!!"invalid pte size");
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}
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}
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static void lmtt_destroy_pt(struct xe_lmtt *lmtt, struct xe_lmtt_pt *pd)
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{
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unsigned int num_entries = pd->level ? lmtt->ops->lmtt_pte_num(pd->level) : 0;
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struct xe_lmtt_pt *pt;
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unsigned int i;
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for (i = 0; i < num_entries; i++) {
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pt = pd->entries[i];
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pd->entries[i] = NULL;
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if (!pt)
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continue;
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lmtt_destroy_pt(lmtt, pt);
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}
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lmtt_pt_free(pd);
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}
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static void lmtt_drop_pages(struct xe_lmtt *lmtt, unsigned int vfid)
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{
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struct xe_lmtt_pt *pd = lmtt->pd;
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struct xe_lmtt_pt *pt;
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pt = pd->entries[vfid];
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pd->entries[vfid] = NULL;
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if (!pt)
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return;
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lmtt_write_pte(lmtt, pd, LMTT_PTE_INVALID, vfid);
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lmtt_invalidate_hw(lmtt);
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lmtt_assert(lmtt, pd->level > 0);
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lmtt_assert(lmtt, pt->level == pd->level - 1);
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lmtt_destroy_pt(lmtt, pt);
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}
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static int __lmtt_alloc_range(struct xe_lmtt *lmtt, struct xe_lmtt_pt *pd,
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u64 start, u64 end)
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{
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u64 pte_addr_shift = BIT_ULL(lmtt->ops->lmtt_pte_shift(pd->level));
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u64 offset;
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int err;
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lmtt_assert(lmtt, pd->level > 0);
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offset = start;
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while (offset < end) {
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struct xe_lmtt_pt *pt;
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u64 next, pde, pt_addr;
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unsigned int idx;
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pt = lmtt_pt_alloc(lmtt, pd->level - 1);
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if (IS_ERR(pt))
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return PTR_ERR(pt);
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pt_addr = xe_bo_main_addr(pt->bo, XE_PAGE_SIZE);
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idx = lmtt->ops->lmtt_pte_index(offset, pd->level);
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pde = lmtt->ops->lmtt_pte_encode(pt_addr, pd->level);
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lmtt_write_pte(lmtt, pd, pde, idx);
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pd->entries[idx] = pt;
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next = min(end, round_up(offset + 1, pte_addr_shift));
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if (pt->level != 0) {
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err = __lmtt_alloc_range(lmtt, pt, offset, next);
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if (err)
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return err;
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}
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offset = next;
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}
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return 0;
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}
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static int lmtt_alloc_range(struct xe_lmtt *lmtt, unsigned int vfid, u64 start, u64 end)
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{
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struct xe_lmtt_pt *pd = lmtt->pd;
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struct xe_lmtt_pt *pt;
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u64 pt_addr;
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u64 pde;
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int err;
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lmtt_assert(lmtt, pd->level > 0);
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lmtt_assert(lmtt, vfid <= lmtt->ops->lmtt_pte_num(pd->level));
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lmtt_assert(lmtt, IS_ALIGNED(start, lmtt_page_size(lmtt)));
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lmtt_assert(lmtt, IS_ALIGNED(end, lmtt_page_size(lmtt)));
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if (pd->entries[vfid])
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return -ENOTEMPTY;
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pt = lmtt_pt_alloc(lmtt, pd->level - 1);
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if (IS_ERR(pt))
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return PTR_ERR(pt);
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pt_addr = xe_bo_main_addr(pt->bo, XE_PAGE_SIZE);
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pde = lmtt->ops->lmtt_pte_encode(pt_addr, pd->level);
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lmtt_write_pte(lmtt, pd, pde, vfid);
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pd->entries[vfid] = pt;
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if (pt->level != 0) {
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err = __lmtt_alloc_range(lmtt, pt, start, end);
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if (err)
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goto out_free_pt;
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}
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return 0;
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out_free_pt:
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lmtt_pt_free(pt);
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return err;
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}
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static struct xe_lmtt_pt *lmtt_leaf_pt(struct xe_lmtt *lmtt, unsigned int vfid, u64 addr)
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{
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struct xe_lmtt_pt *pd = lmtt->pd;
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struct xe_lmtt_pt *pt;
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lmtt_assert(lmtt, vfid <= lmtt->ops->lmtt_pte_num(pd->level));
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pt = pd->entries[vfid];
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while (pt->level) {
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lmtt_assert(lmtt, lmtt->ops->lmtt_pte_index(addr, pt->level) <=
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lmtt->ops->lmtt_pte_num(pt->level));
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pt = pt->entries[lmtt->ops->lmtt_pte_index(addr, pt->level)];
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addr >>= lmtt->ops->lmtt_pte_shift(pt->level);
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}
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lmtt_assert(lmtt, lmtt->ops->lmtt_pte_index(addr, pt->level) <=
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lmtt->ops->lmtt_pte_num(pt->level));
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lmtt_assert(lmtt, pt->level != pd->level);
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lmtt_assert(lmtt, pt->level == 0);
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return pt;
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}
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static void lmtt_insert_bo(struct xe_lmtt *lmtt, unsigned int vfid, struct xe_bo *bo, u64 start)
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{
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u64 page_size = lmtt_page_size(lmtt);
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struct xe_res_cursor cur;
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struct xe_lmtt_pt *pt;
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u64 addr, vram_offset;
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lmtt_assert(lmtt, IS_ALIGNED(start, page_size));
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lmtt_assert(lmtt, IS_ALIGNED(xe_bo_size(bo), page_size));
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lmtt_assert(lmtt, xe_bo_is_vram(bo));
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vram_offset = vram_region_gpu_offset(bo->ttm.resource);
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xe_res_first(bo->ttm.resource, 0, xe_bo_size(bo), &cur);
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while (cur.remaining) {
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addr = xe_res_dma(&cur);
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addr += vram_offset; /* XXX */
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pt = lmtt_leaf_pt(lmtt, vfid, start);
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lmtt_write_pte(lmtt, pt, lmtt->ops->lmtt_pte_encode(addr, 0),
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lmtt->ops->lmtt_pte_index(start, 0));
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xe_res_next(&cur, page_size);
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start += page_size;
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}
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}
|
|
|
|
/**
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|
* xe_lmtt_prepare_pages - Create VF's LMTT Page Tables.
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|
* @lmtt: the &xe_lmtt to update
|
|
* @vfid: the VF identifier (1-based)
|
|
* @range: top range of LMEM offset to be supported
|
|
*
|
|
* This function creates empty LMTT page tables for given VF to support
|
|
* up to maximum #range LMEM offset. The LMTT page tables created by this
|
|
* function must be released using xe_lmtt_drop_pages() function.
|
|
*
|
|
* Notes:
|
|
* This function shall be called only after successful LMTT initialization.
|
|
* See xe_lmtt_init().
|
|
*
|
|
* Return: 0 on success or a negative error code on failure.
|
|
*/
|
|
int xe_lmtt_prepare_pages(struct xe_lmtt *lmtt, unsigned int vfid, u64 range)
|
|
{
|
|
lmtt_assert(lmtt, lmtt->pd);
|
|
lmtt_assert(lmtt, vfid);
|
|
|
|
return lmtt_alloc_range(lmtt, vfid, 0, range);
|
|
}
|
|
|
|
/**
|
|
* xe_lmtt_populate_pages - Update VF's LMTT Page Table Entries.
|
|
* @lmtt: the &xe_lmtt to update
|
|
* @vfid: the VF identifier (1-based)
|
|
* @bo: the buffer object with LMEM allocation to be mapped
|
|
* @offset: the offset at which #bo should be mapped
|
|
*
|
|
* This function updates VF's LMTT entries to use given buffer object as a backstore.
|
|
*
|
|
* Notes:
|
|
* This function shall be called only after successful preparation of the
|
|
* VF's LMTT Page Tables. See xe_lmtt_prepare().
|
|
*
|
|
* Return: 0 on success or a negative error code on failure.
|
|
*/
|
|
int xe_lmtt_populate_pages(struct xe_lmtt *lmtt, unsigned int vfid, struct xe_bo *bo, u64 offset)
|
|
{
|
|
lmtt_assert(lmtt, lmtt->pd);
|
|
lmtt_assert(lmtt, vfid);
|
|
|
|
lmtt_insert_bo(lmtt, vfid, bo, offset);
|
|
return 0;
|
|
}
|
|
|
|
/**
|
|
* xe_lmtt_drop_pages - Remove VF's LMTT Pages.
|
|
* @lmtt: the &xe_lmtt to update
|
|
* @vfid: the VF identifier (1-based)
|
|
*
|
|
* This function removes all LMTT Page Tables prepared by xe_lmtt_prepare_pages().
|
|
*
|
|
* This function shall be called only after successful LMTT initialization.
|
|
* See xe_lmtt_init().
|
|
*/
|
|
void xe_lmtt_drop_pages(struct xe_lmtt *lmtt, unsigned int vfid)
|
|
{
|
|
lmtt_assert(lmtt, lmtt->pd);
|
|
lmtt_assert(lmtt, vfid);
|
|
|
|
lmtt_drop_pages(lmtt, vfid);
|
|
}
|
|
|
|
/**
|
|
* xe_lmtt_estimate_pt_size - Estimate size of LMTT PT allocations.
|
|
* @lmtt: the &xe_lmtt
|
|
* @size: the size of the LMEM to be mapped over LMTT (including any offset)
|
|
*
|
|
* This function shall be called only by PF.
|
|
*
|
|
* Return: size of the PT allocation(s) needed to support given LMEM size.
|
|
*/
|
|
u64 xe_lmtt_estimate_pt_size(struct xe_lmtt *lmtt, u64 size)
|
|
{
|
|
unsigned int level = 0;
|
|
u64 pt_size;
|
|
|
|
lmtt_assert(lmtt, IS_SRIOV_PF(lmtt_to_xe(lmtt)));
|
|
lmtt_assert(lmtt, xe_device_has_lmtt(lmtt_to_xe(lmtt)));
|
|
lmtt_assert(lmtt, lmtt->ops);
|
|
|
|
pt_size = PAGE_ALIGN(lmtt->ops->lmtt_pte_size(level) *
|
|
lmtt->ops->lmtt_pte_num(level));
|
|
|
|
while (++level < lmtt->ops->lmtt_root_pd_level()) {
|
|
pt_size *= lmtt->ops->lmtt_pte_index(size, level) + 1;
|
|
pt_size += PAGE_ALIGN(lmtt->ops->lmtt_pte_size(level) *
|
|
lmtt->ops->lmtt_pte_num(level));
|
|
}
|
|
|
|
return pt_size;
|
|
}
|
|
|
|
#if IS_BUILTIN(CONFIG_DRM_XE_KUNIT_TEST)
|
|
#include "tests/xe_lmtt_test.c"
|
|
#endif
|