504 lines
13 KiB
C
504 lines
13 KiB
C
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// 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 "xe_gsc_proxy.h"
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#include <linux/component.h>
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#include <linux/delay.h>
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#include <drm/drm_managed.h>
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#include <drm/intel/i915_component.h>
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#include <drm/intel/i915_gsc_proxy_mei_interface.h>
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#include "abi/gsc_proxy_commands_abi.h"
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#include "regs/xe_gsc_regs.h"
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#include "xe_bo.h"
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#include "xe_force_wake.h"
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#include "xe_gsc.h"
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#include "xe_gsc_submit.h"
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#include "xe_gt.h"
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#include "xe_gt_printk.h"
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#include "xe_map.h"
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#include "xe_mmio.h"
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#include "xe_pm.h"
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/*
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* GSC proxy:
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* The GSC uC needs to communicate with the CSME to perform certain operations.
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* Since the GSC can't perform this communication directly on platforms where it
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* is integrated in GT, the graphics driver needs to transfer the messages from
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* GSC to CSME and back. The proxy flow must be manually started after the GSC
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* is loaded to signal to GSC that we're ready to handle its messages and allow
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* it to query its init data from CSME; GSC will then trigger an HECI2 interrupt
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* if it needs to send messages to CSME again.
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* The proxy flow is as follow:
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* 1 - Xe submits a request to GSC asking for the message to CSME
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* 2 - GSC replies with the proxy header + payload for CSME
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* 3 - Xe sends the reply from GSC as-is to CSME via the mei proxy component
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* 4 - CSME replies with the proxy header + payload for GSC
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* 5 - Xe submits a request to GSC with the reply from CSME
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* 6 - GSC replies either with a new header + payload (same as step 2, so we
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* restart from there) or with an end message.
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*/
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/*
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* The component should load quite quickly in most cases, but it could take
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* a bit. Using a very big timeout just to cover the worst case scenario
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*/
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#define GSC_PROXY_INIT_TIMEOUT_MS 20000
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/* shorthand define for code compactness */
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#define PROXY_HDR_SIZE (sizeof(struct xe_gsc_proxy_header))
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/* the protocol supports up to 32K in each direction */
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#define GSC_PROXY_BUFFER_SIZE SZ_32K
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#define GSC_PROXY_CHANNEL_SIZE (GSC_PROXY_BUFFER_SIZE * 2)
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static struct xe_gt *
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gsc_to_gt(struct xe_gsc *gsc)
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{
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return container_of(gsc, struct xe_gt, uc.gsc);
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}
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bool xe_gsc_proxy_init_done(struct xe_gsc *gsc)
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{
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struct xe_gt *gt = gsc_to_gt(gsc);
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u32 fwsts1 = xe_mmio_read32(>->mmio, HECI_FWSTS1(MTL_GSC_HECI1_BASE));
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return REG_FIELD_GET(HECI1_FWSTS1_CURRENT_STATE, fwsts1) ==
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HECI1_FWSTS1_PROXY_STATE_NORMAL;
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}
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static void __gsc_proxy_irq_rmw(struct xe_gsc *gsc, u32 clr, u32 set)
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{
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struct xe_gt *gt = gsc_to_gt(gsc);
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/* make sure we never accidentally write the RST bit */
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clr |= HECI_H_CSR_RST;
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xe_mmio_rmw32(>->mmio, HECI_H_CSR(MTL_GSC_HECI2_BASE), clr, set);
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}
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static void gsc_proxy_irq_clear(struct xe_gsc *gsc)
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{
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/* The status bit is cleared by writing to it */
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__gsc_proxy_irq_rmw(gsc, 0, HECI_H_CSR_IS);
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}
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static void gsc_proxy_irq_toggle(struct xe_gsc *gsc, bool enabled)
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{
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u32 set = enabled ? HECI_H_CSR_IE : 0;
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u32 clr = enabled ? 0 : HECI_H_CSR_IE;
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__gsc_proxy_irq_rmw(gsc, clr, set);
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}
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static int proxy_send_to_csme(struct xe_gsc *gsc, u32 size)
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{
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struct xe_gt *gt = gsc_to_gt(gsc);
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struct i915_gsc_proxy_component *comp = gsc->proxy.component;
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int ret;
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ret = comp->ops->send(comp->mei_dev, gsc->proxy.to_csme, size);
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if (ret < 0) {
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xe_gt_err(gt, "Failed to send CSME proxy message\n");
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return ret;
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}
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ret = comp->ops->recv(comp->mei_dev, gsc->proxy.from_csme, GSC_PROXY_BUFFER_SIZE);
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if (ret < 0) {
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xe_gt_err(gt, "Failed to receive CSME proxy message\n");
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return ret;
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}
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return ret;
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}
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static int proxy_send_to_gsc(struct xe_gsc *gsc, u32 size)
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{
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struct xe_gt *gt = gsc_to_gt(gsc);
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u64 addr_in = xe_bo_ggtt_addr(gsc->proxy.bo);
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u64 addr_out = addr_in + GSC_PROXY_BUFFER_SIZE;
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int err;
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/* the message must contain at least the gsc and proxy headers */
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if (size > GSC_PROXY_BUFFER_SIZE) {
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xe_gt_err(gt, "Invalid GSC proxy message size: %u\n", size);
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return -EINVAL;
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}
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err = xe_gsc_pkt_submit_kernel(gsc, addr_in, size,
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addr_out, GSC_PROXY_BUFFER_SIZE);
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if (err) {
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xe_gt_err(gt, "Failed to submit gsc proxy rq (%pe)\n", ERR_PTR(err));
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return err;
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}
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return 0;
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}
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static int validate_proxy_header(struct xe_gsc_proxy_header *header,
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u32 source, u32 dest, u32 max_size)
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{
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u32 type = FIELD_GET(GSC_PROXY_TYPE, header->hdr);
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u32 length = FIELD_GET(GSC_PROXY_PAYLOAD_LENGTH, header->hdr);
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if (header->destination != dest || header->source != source)
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return -ENOEXEC;
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if (length + PROXY_HDR_SIZE > max_size)
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return -E2BIG;
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switch (type) {
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case GSC_PROXY_MSG_TYPE_PROXY_PAYLOAD:
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if (length > 0)
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break;
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fallthrough;
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case GSC_PROXY_MSG_TYPE_PROXY_INVALID:
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return -EIO;
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default:
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break;
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}
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return 0;
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}
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#define proxy_header_wr(xe_, map_, offset_, field_, val_) \
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xe_map_wr_field(xe_, map_, offset_, struct xe_gsc_proxy_header, field_, val_)
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#define proxy_header_rd(xe_, map_, offset_, field_) \
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xe_map_rd_field(xe_, map_, offset_, struct xe_gsc_proxy_header, field_)
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static u32 emit_proxy_header(struct xe_device *xe, struct iosys_map *map, u32 offset)
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{
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xe_map_memset(xe, map, offset, 0, PROXY_HDR_SIZE);
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proxy_header_wr(xe, map, offset, hdr,
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FIELD_PREP(GSC_PROXY_TYPE, GSC_PROXY_MSG_TYPE_PROXY_QUERY) |
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FIELD_PREP(GSC_PROXY_PAYLOAD_LENGTH, 0));
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proxy_header_wr(xe, map, offset, source, GSC_PROXY_ADDRESSING_KMD);
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proxy_header_wr(xe, map, offset, destination, GSC_PROXY_ADDRESSING_GSC);
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proxy_header_wr(xe, map, offset, status, 0);
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return offset + PROXY_HDR_SIZE;
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}
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static int proxy_query(struct xe_gsc *gsc)
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{
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struct xe_gt *gt = gsc_to_gt(gsc);
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struct xe_device *xe = gt_to_xe(gt);
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struct xe_gsc_proxy_header *to_csme_hdr = gsc->proxy.to_csme;
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void *to_csme_payload = gsc->proxy.to_csme + PROXY_HDR_SIZE;
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u32 wr_offset;
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u32 reply_offset;
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u32 size;
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int ret;
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wr_offset = xe_gsc_emit_header(xe, &gsc->proxy.to_gsc, 0,
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HECI_MEADDRESS_PROXY, 0, PROXY_HDR_SIZE);
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wr_offset = emit_proxy_header(xe, &gsc->proxy.to_gsc, wr_offset);
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size = wr_offset;
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while (1) {
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/*
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* Poison the GSC response header space to make sure we don't
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* read a stale reply.
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*/
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xe_gsc_poison_header(xe, &gsc->proxy.from_gsc, 0);
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/* send proxy message to GSC */
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ret = proxy_send_to_gsc(gsc, size);
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if (ret)
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goto proxy_error;
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/* check the reply from GSC */
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ret = xe_gsc_read_out_header(xe, &gsc->proxy.from_gsc, 0,
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PROXY_HDR_SIZE, &reply_offset);
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if (ret) {
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xe_gt_err(gt, "Invalid gsc header in proxy reply (%pe)\n",
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ERR_PTR(ret));
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goto proxy_error;
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}
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/* copy the proxy header reply from GSC */
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xe_map_memcpy_from(xe, to_csme_hdr, &gsc->proxy.from_gsc,
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reply_offset, PROXY_HDR_SIZE);
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/* stop if this was the last message */
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if (FIELD_GET(GSC_PROXY_TYPE, to_csme_hdr->hdr) == GSC_PROXY_MSG_TYPE_PROXY_END)
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break;
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/* make sure the GSC-to-CSME proxy header is sane */
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ret = validate_proxy_header(to_csme_hdr,
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GSC_PROXY_ADDRESSING_GSC,
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GSC_PROXY_ADDRESSING_CSME,
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GSC_PROXY_BUFFER_SIZE - reply_offset);
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if (ret) {
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xe_gt_err(gt, "invalid GSC to CSME proxy header! (%pe)\n",
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ERR_PTR(ret));
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goto proxy_error;
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}
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/* copy the rest of the message */
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size = FIELD_GET(GSC_PROXY_PAYLOAD_LENGTH, to_csme_hdr->hdr);
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xe_map_memcpy_from(xe, to_csme_payload, &gsc->proxy.from_gsc,
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reply_offset + PROXY_HDR_SIZE, size);
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/* send the GSC message to the CSME */
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ret = proxy_send_to_csme(gsc, size + PROXY_HDR_SIZE);
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if (ret < 0)
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goto proxy_error;
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/* reply size from CSME, including the proxy header */
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size = ret;
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if (size < PROXY_HDR_SIZE) {
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xe_gt_err(gt, "CSME to GSC proxy msg too small: 0x%x\n", size);
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ret = -EPROTO;
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goto proxy_error;
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}
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/* make sure the CSME-to-GSC proxy header is sane */
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ret = validate_proxy_header(gsc->proxy.from_csme,
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GSC_PROXY_ADDRESSING_CSME,
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GSC_PROXY_ADDRESSING_GSC,
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GSC_PROXY_BUFFER_SIZE - reply_offset);
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if (ret) {
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xe_gt_err(gt, "invalid CSME to GSC proxy header! %d\n", ret);
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goto proxy_error;
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}
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/* Emit a new header for sending the reply to the GSC */
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wr_offset = xe_gsc_emit_header(xe, &gsc->proxy.to_gsc, 0,
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HECI_MEADDRESS_PROXY, 0, size);
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/* copy the CSME reply and update the total msg size to include the GSC header */
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xe_map_memcpy_to(xe, &gsc->proxy.to_gsc, wr_offset, gsc->proxy.from_csme, size);
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size += wr_offset;
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}
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proxy_error:
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return ret < 0 ? ret : 0;
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}
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int xe_gsc_proxy_request_handler(struct xe_gsc *gsc)
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{
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struct xe_gt *gt = gsc_to_gt(gsc);
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int slept;
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int err;
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if (!gsc->proxy.component_added)
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return -ENODEV;
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/* when GSC is loaded, we can queue this before the component is bound */
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for (slept = 0; slept < GSC_PROXY_INIT_TIMEOUT_MS; slept += 100) {
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if (gsc->proxy.component)
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break;
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msleep(100);
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}
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mutex_lock(&gsc->proxy.mutex);
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if (!gsc->proxy.component) {
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xe_gt_err(gt, "GSC proxy component not bound!\n");
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err = -EIO;
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} else {
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/*
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* clear the pending interrupt and allow new proxy requests to
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* be generated while we handle the current one
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*/
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gsc_proxy_irq_clear(gsc);
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err = proxy_query(gsc);
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}
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mutex_unlock(&gsc->proxy.mutex);
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return err;
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}
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void xe_gsc_proxy_irq_handler(struct xe_gsc *gsc, u32 iir)
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{
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struct xe_gt *gt = gsc_to_gt(gsc);
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if (unlikely(!iir))
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return;
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if (!gsc->proxy.component) {
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xe_gt_err(gt, "GSC proxy irq received without the component being bound!\n");
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return;
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}
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spin_lock(&gsc->lock);
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gsc->work_actions |= GSC_ACTION_SW_PROXY;
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spin_unlock(&gsc->lock);
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queue_work(gsc->wq, &gsc->work);
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}
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static int xe_gsc_proxy_component_bind(struct device *xe_kdev,
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struct device *mei_kdev, void *data)
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{
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struct xe_device *xe = kdev_to_xe_device(xe_kdev);
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struct xe_gt *gt = xe->tiles[0].media_gt;
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struct xe_gsc *gsc = >->uc.gsc;
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mutex_lock(&gsc->proxy.mutex);
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gsc->proxy.component = data;
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gsc->proxy.component->mei_dev = mei_kdev;
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mutex_unlock(&gsc->proxy.mutex);
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return 0;
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}
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static void xe_gsc_proxy_component_unbind(struct device *xe_kdev,
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struct device *mei_kdev, void *data)
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{
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struct xe_device *xe = kdev_to_xe_device(xe_kdev);
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struct xe_gt *gt = xe->tiles[0].media_gt;
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struct xe_gsc *gsc = >->uc.gsc;
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xe_gsc_wait_for_worker_completion(gsc);
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mutex_lock(&gsc->proxy.mutex);
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gsc->proxy.component = NULL;
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mutex_unlock(&gsc->proxy.mutex);
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}
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static const struct component_ops xe_gsc_proxy_component_ops = {
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.bind = xe_gsc_proxy_component_bind,
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.unbind = xe_gsc_proxy_component_unbind,
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};
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static int proxy_channel_alloc(struct xe_gsc *gsc)
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{
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struct xe_gt *gt = gsc_to_gt(gsc);
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struct xe_tile *tile = gt_to_tile(gt);
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struct xe_device *xe = gt_to_xe(gt);
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struct xe_bo *bo;
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void *csme;
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csme = drmm_kzalloc(&xe->drm, GSC_PROXY_CHANNEL_SIZE, GFP_KERNEL);
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if (!csme)
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return -ENOMEM;
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bo = xe_managed_bo_create_pin_map(xe, tile, GSC_PROXY_CHANNEL_SIZE,
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XE_BO_FLAG_SYSTEM |
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XE_BO_FLAG_GGTT);
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if (IS_ERR(bo))
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return PTR_ERR(bo);
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gsc->proxy.bo = bo;
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gsc->proxy.to_gsc = IOSYS_MAP_INIT_OFFSET(&bo->vmap, 0);
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gsc->proxy.from_gsc = IOSYS_MAP_INIT_OFFSET(&bo->vmap, GSC_PROXY_BUFFER_SIZE);
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gsc->proxy.to_csme = csme;
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gsc->proxy.from_csme = csme + GSC_PROXY_BUFFER_SIZE;
|
||
|
|
||
|
return 0;
|
||
|
}
|
||
|
|
||
|
/**
|
||
|
* xe_gsc_proxy_init() - init objects and MEI component required by GSC proxy
|
||
|
* @gsc: the GSC uC
|
||
|
*
|
||
|
* Return: 0 if the initialization was successful, a negative errno otherwise.
|
||
|
*/
|
||
|
int xe_gsc_proxy_init(struct xe_gsc *gsc)
|
||
|
{
|
||
|
int err;
|
||
|
struct xe_gt *gt = gsc_to_gt(gsc);
|
||
|
struct xe_tile *tile = gt_to_tile(gt);
|
||
|
struct xe_device *xe = tile_to_xe(tile);
|
||
|
|
||
|
mutex_init(&gsc->proxy.mutex);
|
||
|
|
||
|
if (!IS_ENABLED(CONFIG_INTEL_MEI_GSC_PROXY)) {
|
||
|
xe_gt_info(gt, "can't init GSC proxy due to missing mei component\n");
|
||
|
return -ENODEV;
|
||
|
}
|
||
|
|
||
|
/* no multi-tile devices with this feature yet */
|
||
|
if (tile->id > 0) {
|
||
|
xe_gt_err(gt, "unexpected GSC proxy init on tile %u\n", tile->id);
|
||
|
return -EINVAL;
|
||
|
}
|
||
|
|
||
|
err = proxy_channel_alloc(gsc);
|
||
|
if (err)
|
||
|
return err;
|
||
|
|
||
|
err = component_add_typed(xe->drm.dev, &xe_gsc_proxy_component_ops,
|
||
|
I915_COMPONENT_GSC_PROXY);
|
||
|
if (err < 0) {
|
||
|
xe_gt_err(gt, "Failed to add GSC_PROXY component (%pe)\n", ERR_PTR(err));
|
||
|
return err;
|
||
|
}
|
||
|
|
||
|
gsc->proxy.component_added = true;
|
||
|
|
||
|
/* the component must be removed before unload, so can't use drmm for cleanup */
|
||
|
|
||
|
return 0;
|
||
|
}
|
||
|
|
||
|
/**
|
||
|
* xe_gsc_proxy_remove() - remove the GSC proxy MEI component
|
||
|
* @gsc: the GSC uC
|
||
|
*/
|
||
|
void xe_gsc_proxy_remove(struct xe_gsc *gsc)
|
||
|
{
|
||
|
struct xe_gt *gt = gsc_to_gt(gsc);
|
||
|
struct xe_device *xe = gt_to_xe(gt);
|
||
|
unsigned int fw_ref = 0;
|
||
|
|
||
|
if (!gsc->proxy.component_added)
|
||
|
return;
|
||
|
|
||
|
/* disable HECI2 IRQs */
|
||
|
xe_pm_runtime_get(xe);
|
||
|
fw_ref = xe_force_wake_get(gt_to_fw(gt), XE_FW_GSC);
|
||
|
if (!fw_ref)
|
||
|
xe_gt_err(gt, "failed to get forcewake to disable GSC interrupts\n");
|
||
|
|
||
|
/* try do disable irq even if forcewake failed */
|
||
|
gsc_proxy_irq_toggle(gsc, false);
|
||
|
|
||
|
xe_force_wake_put(gt_to_fw(gt), fw_ref);
|
||
|
xe_pm_runtime_put(xe);
|
||
|
|
||
|
xe_gsc_wait_for_worker_completion(gsc);
|
||
|
|
||
|
component_del(xe->drm.dev, &xe_gsc_proxy_component_ops);
|
||
|
gsc->proxy.component_added = false;
|
||
|
}
|
||
|
|
||
|
/**
|
||
|
* xe_gsc_proxy_start() - start the proxy by submitting the first request
|
||
|
* @gsc: the GSC uC
|
||
|
*
|
||
|
* Return: 0 if the proxy are now enabled, a negative errno otherwise.
|
||
|
*/
|
||
|
int xe_gsc_proxy_start(struct xe_gsc *gsc)
|
||
|
{
|
||
|
int err;
|
||
|
|
||
|
/* enable the proxy interrupt in the GSC shim layer */
|
||
|
gsc_proxy_irq_toggle(gsc, true);
|
||
|
|
||
|
/*
|
||
|
* The handling of the first proxy request must be manually triggered to
|
||
|
* notify the GSC that we're ready to support the proxy flow.
|
||
|
*/
|
||
|
err = xe_gsc_proxy_request_handler(gsc);
|
||
|
if (err)
|
||
|
return err;
|
||
|
|
||
|
if (!xe_gsc_proxy_init_done(gsc)) {
|
||
|
xe_gt_err(gsc_to_gt(gsc), "GSC FW reports proxy init not completed\n");
|
||
|
return -EIO;
|
||
|
}
|
||
|
|
||
|
return 0;
|
||
|
}
|