288 lines
8.0 KiB
C
288 lines
8.0 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 <drm/intel/i915_hdcp_interface.h>
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#include "gem/i915_gem_region.h"
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#include "gt/intel_gt.h"
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#include "gt/uc/intel_gsc_uc_heci_cmd_submit.h"
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#include "i915_drv.h"
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#include "i915_utils.h"
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#include "intel_hdcp_gsc.h"
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#include "intel_hdcp_gsc_message.h"
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struct intel_hdcp_gsc_message {
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struct i915_vma *vma;
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void *hdcp_cmd_in;
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void *hdcp_cmd_out;
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};
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bool intel_hdcp_gsc_cs_required(struct intel_display *display)
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{
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return DISPLAY_VER(display) >= 14;
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}
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bool intel_hdcp_gsc_check_status(struct intel_display *display)
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{
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struct drm_i915_private *i915 = to_i915(display->drm);
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struct intel_gt *gt = i915->media_gt;
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struct intel_gsc_uc *gsc = gt ? >->uc.gsc : NULL;
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if (!gsc || !intel_uc_fw_is_running(&gsc->fw)) {
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drm_dbg_kms(display->drm,
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"GSC components required for HDCP2.2 are not ready\n");
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return false;
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}
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return true;
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}
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/*This function helps allocate memory for the command that we will send to gsc cs */
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static int intel_hdcp_gsc_initialize_message(struct drm_i915_private *i915,
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struct intel_hdcp_gsc_message *hdcp_message)
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{
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struct intel_gt *gt = i915->media_gt;
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struct drm_i915_gem_object *obj = NULL;
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struct i915_vma *vma = NULL;
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void *cmd_in, *cmd_out;
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int err;
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/* allocate object of two page for HDCP command memory and store it */
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obj = i915_gem_object_create_shmem(i915, 2 * PAGE_SIZE);
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if (IS_ERR(obj)) {
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drm_err(&i915->drm, "Failed to allocate HDCP streaming command!\n");
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return PTR_ERR(obj);
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}
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cmd_in = i915_gem_object_pin_map_unlocked(obj, intel_gt_coherent_map_type(gt, obj, true));
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if (IS_ERR(cmd_in)) {
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drm_err(&i915->drm, "Failed to map gsc message page!\n");
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err = PTR_ERR(cmd_in);
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goto out_unpin;
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}
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cmd_out = cmd_in + PAGE_SIZE;
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vma = i915_vma_instance(obj, >->ggtt->vm, NULL);
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if (IS_ERR(vma)) {
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err = PTR_ERR(vma);
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goto out_unmap;
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}
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err = i915_vma_pin(vma, 0, 0, PIN_GLOBAL | PIN_HIGH);
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if (err)
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goto out_unmap;
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memset(cmd_in, 0, obj->base.size);
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hdcp_message->hdcp_cmd_in = cmd_in;
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hdcp_message->hdcp_cmd_out = cmd_out;
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hdcp_message->vma = vma;
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return 0;
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out_unmap:
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i915_gem_object_unpin_map(obj);
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out_unpin:
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i915_gem_object_put(obj);
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return err;
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}
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static const struct i915_hdcp_ops gsc_hdcp_ops = {
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.initiate_hdcp2_session = intel_hdcp_gsc_initiate_session,
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.verify_receiver_cert_prepare_km =
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intel_hdcp_gsc_verify_receiver_cert_prepare_km,
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.verify_hprime = intel_hdcp_gsc_verify_hprime,
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.store_pairing_info = intel_hdcp_gsc_store_pairing_info,
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.initiate_locality_check = intel_hdcp_gsc_initiate_locality_check,
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.verify_lprime = intel_hdcp_gsc_verify_lprime,
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.get_session_key = intel_hdcp_gsc_get_session_key,
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.repeater_check_flow_prepare_ack =
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intel_hdcp_gsc_repeater_check_flow_prepare_ack,
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.verify_mprime = intel_hdcp_gsc_verify_mprime,
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.enable_hdcp_authentication = intel_hdcp_gsc_enable_authentication,
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.close_hdcp_session = intel_hdcp_gsc_close_session,
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};
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static int intel_hdcp_gsc_hdcp2_init(struct intel_display *display)
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{
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struct drm_i915_private *i915 = to_i915(display->drm);
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struct intel_hdcp_gsc_message *hdcp_message;
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int ret;
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hdcp_message = kzalloc(sizeof(*hdcp_message), GFP_KERNEL);
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if (!hdcp_message)
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return -ENOMEM;
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/*
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* NOTE: No need to lock the comp mutex here as it is already
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* going to be taken before this function called
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*/
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display->hdcp.hdcp_message = hdcp_message;
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ret = intel_hdcp_gsc_initialize_message(i915, hdcp_message);
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if (ret)
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drm_err(display->drm, "Could not initialize hdcp_message\n");
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return ret;
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}
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static void intel_hdcp_gsc_free_message(struct intel_display *display)
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{
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struct intel_hdcp_gsc_message *hdcp_message =
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display->hdcp.hdcp_message;
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hdcp_message->hdcp_cmd_in = NULL;
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hdcp_message->hdcp_cmd_out = NULL;
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i915_vma_unpin_and_release(&hdcp_message->vma, I915_VMA_RELEASE_MAP);
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kfree(hdcp_message);
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}
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int intel_hdcp_gsc_init(struct intel_display *display)
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{
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struct i915_hdcp_arbiter *data;
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int ret;
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data = kzalloc(sizeof(struct i915_hdcp_arbiter), GFP_KERNEL);
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if (!data)
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return -ENOMEM;
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mutex_lock(&display->hdcp.hdcp_mutex);
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display->hdcp.arbiter = data;
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display->hdcp.arbiter->hdcp_dev = display->drm->dev;
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display->hdcp.arbiter->ops = &gsc_hdcp_ops;
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ret = intel_hdcp_gsc_hdcp2_init(display);
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mutex_unlock(&display->hdcp.hdcp_mutex);
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return ret;
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}
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void intel_hdcp_gsc_fini(struct intel_display *display)
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{
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intel_hdcp_gsc_free_message(display);
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kfree(display->hdcp.arbiter);
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}
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static int intel_gsc_send_sync(struct drm_i915_private *i915,
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struct intel_gsc_mtl_header *header_in,
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struct intel_gsc_mtl_header *header_out,
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u64 addr_in, u64 addr_out,
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size_t msg_out_len)
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{
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struct intel_gt *gt = i915->media_gt;
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int ret;
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ret = intel_gsc_uc_heci_cmd_submit_packet(>->uc.gsc, addr_in,
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header_in->message_size,
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addr_out,
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msg_out_len + sizeof(*header_out));
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if (ret) {
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drm_err(&i915->drm, "failed to send gsc HDCP msg (%d)\n", ret);
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return ret;
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}
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/*
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* Checking validity marker and header status to see if some error has
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* blocked us from sending message to gsc cs
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*/
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if (header_out->validity_marker != GSC_HECI_VALIDITY_MARKER) {
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drm_err(&i915->drm, "invalid validity marker\n");
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return -EINVAL;
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}
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if (header_out->status != 0) {
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drm_err(&i915->drm, "header status indicates error %d\n",
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header_out->status);
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return -EINVAL;
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}
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if (header_out->flags & GSC_OUTFLAG_MSG_PENDING) {
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header_in->gsc_message_handle = header_out->gsc_message_handle;
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return -EAGAIN;
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}
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return 0;
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}
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/*
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* This function can now be used for sending requests and will also handle
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* receipt of reply messages hence no different function of message retrieval
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* is required. We will initialize intel_hdcp_gsc_message structure then add
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* gsc cs memory header as stated in specs after which the normal HDCP payload
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* will follow
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*/
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ssize_t intel_hdcp_gsc_msg_send(struct drm_i915_private *i915, u8 *msg_in,
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size_t msg_in_len, u8 *msg_out,
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size_t msg_out_len)
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{
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struct intel_gt *gt = i915->media_gt;
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struct intel_gsc_mtl_header *header_in, *header_out;
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const size_t max_msg_size = PAGE_SIZE - sizeof(*header_in);
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struct intel_hdcp_gsc_message *hdcp_message;
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u64 addr_in, addr_out, host_session_id;
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u32 reply_size, msg_size_in, msg_size_out;
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int ret, tries = 0;
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if (!intel_uc_uses_gsc_uc(>->uc))
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return -ENODEV;
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if (msg_in_len > max_msg_size || msg_out_len > max_msg_size)
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return -ENOSPC;
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msg_size_in = msg_in_len + sizeof(*header_in);
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msg_size_out = msg_out_len + sizeof(*header_out);
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hdcp_message = i915->display.hdcp.hdcp_message;
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header_in = hdcp_message->hdcp_cmd_in;
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header_out = hdcp_message->hdcp_cmd_out;
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addr_in = i915_ggtt_offset(hdcp_message->vma);
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addr_out = addr_in + PAGE_SIZE;
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memset(header_in, 0, msg_size_in);
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memset(header_out, 0, msg_size_out);
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get_random_bytes(&host_session_id, sizeof(u64));
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intel_gsc_uc_heci_cmd_emit_mtl_header(header_in, HECI_MEADDRESS_HDCP,
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msg_size_in, host_session_id);
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memcpy(hdcp_message->hdcp_cmd_in + sizeof(*header_in), msg_in, msg_in_len);
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/*
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* Keep sending request in case the pending bit is set no need to add
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* message handle as we are using same address hence loc. of header is
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* same and it will contain the message handle. we will send the message
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* 20 times each message 50 ms apart
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*/
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do {
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ret = intel_gsc_send_sync(i915, header_in, header_out, addr_in,
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addr_out, msg_out_len);
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/* Only try again if gsc says so */
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if (ret != -EAGAIN)
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break;
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msleep(50);
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} while (++tries < 20);
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if (ret)
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goto err;
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/* we use the same mem for the reply, so header is in the same loc */
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reply_size = header_out->message_size - sizeof(*header_out);
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if (reply_size > msg_out_len) {
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drm_warn(&i915->drm, "caller with insufficient HDCP reply size %u (%d)\n",
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reply_size, (u32)msg_out_len);
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reply_size = msg_out_len;
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} else if (reply_size != msg_out_len) {
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drm_dbg_kms(&i915->drm, "caller unexpected HCDP reply size %u (%d)\n",
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reply_size, (u32)msg_out_len);
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}
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memcpy(msg_out, hdcp_message->hdcp_cmd_out + sizeof(*header_out), msg_out_len);
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err:
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return ret;
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}
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