507 lines
12 KiB
C
507 lines
12 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_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 | XE_BO_FLAG_PINNED);
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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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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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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 (!IS_DGFX(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 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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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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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_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(bo->size, 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, bo->size, &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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/**
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* xe_lmtt_prepare_pages - Create VF's LMTT Page Tables.
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* @lmtt: the &xe_lmtt to update
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* @vfid: the VF identifier (1-based)
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* @range: top range of LMEM offset to be supported
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*
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* This function creates empty LMTT page tables for given VF to support
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* up to maximum #range LMEM offset. The LMTT page tables created by this
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* function must be released using xe_lmtt_drop_pages() function.
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*
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* Notes:
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* This function shall be called only after successful LMTT initialization.
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* See xe_lmtt_init().
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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_prepare_pages(struct xe_lmtt *lmtt, unsigned int vfid, u64 range)
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{
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lmtt_assert(lmtt, lmtt->pd);
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lmtt_assert(lmtt, vfid);
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return lmtt_alloc_range(lmtt, vfid, 0, range);
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}
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/**
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* xe_lmtt_populate_pages - Update VF's LMTT Page Table Entries.
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* @lmtt: the &xe_lmtt to update
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* @vfid: the VF identifier (1-based)
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* @bo: the buffer object with LMEM allocation to be mapped
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* @offset: the offset at which #bo should be mapped
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*
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* This function updates VF's LMTT entries to use given buffer object as a backstore.
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*
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* Notes:
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* This function shall be called only after successful preparation of the
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* VF's LMTT Page Tables. See xe_lmtt_prepare().
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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_populate_pages(struct xe_lmtt *lmtt, unsigned int vfid, struct xe_bo *bo, u64 offset)
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{
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lmtt_assert(lmtt, lmtt->pd);
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lmtt_assert(lmtt, vfid);
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lmtt_insert_bo(lmtt, vfid, bo, offset);
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return 0;
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}
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/**
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* xe_lmtt_drop_pages - Remove VF's LMTT Pages.
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* @lmtt: the &xe_lmtt to update
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* @vfid: the VF identifier (1-based)
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*
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* This function removes all LMTT Page Tables prepared by xe_lmtt_prepare_pages().
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*
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* This function shall be called only after successful LMTT initialization.
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* See xe_lmtt_init().
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*/
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void xe_lmtt_drop_pages(struct xe_lmtt *lmtt, unsigned int vfid)
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{
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lmtt_assert(lmtt, lmtt->pd);
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lmtt_assert(lmtt, vfid);
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lmtt_drop_pages(lmtt, vfid);
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}
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/**
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* xe_lmtt_estimate_pt_size - Estimate size of LMTT PT allocations.
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* @lmtt: the &xe_lmtt
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* @size: the size of the LMEM to be mapped over LMTT (including any offset)
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*
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* This function shall be called only by PF.
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*
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* Return: size of the PT allocation(s) needed to support given LMEM size.
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*/
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u64 xe_lmtt_estimate_pt_size(struct xe_lmtt *lmtt, u64 size)
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{
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unsigned int level = 0;
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u64 pt_size;
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lmtt_assert(lmtt, IS_SRIOV_PF(lmtt_to_xe(lmtt)));
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lmtt_assert(lmtt, IS_DGFX(lmtt_to_xe(lmtt)));
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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
|