texture-amf.cpp 51 KB

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  1. #include <util/threading.h>
  2. #include <opts-parser.h>
  3. #include <obs-module.h>
  4. #include <obs-avc.h>
  5. #include "obs-ffmpeg-config.h"
  6. #include <unordered_map>
  7. #include <cstdlib>
  8. #include <memory>
  9. #include <string>
  10. #include <vector>
  11. #include <mutex>
  12. #include <deque>
  13. #include <map>
  14. #include "external/AMF/include/components/VideoEncoderHEVC.h"
  15. #include "external/AMF/include/components/VideoEncoderVCE.h"
  16. #include "external/AMF/include/core/Factory.h"
  17. #include "external/AMF/include/core/Trace.h"
  18. #include <dxgi.h>
  19. #include <d3d11.h>
  20. #include <d3d11_1.h>
  21. #include <util/windows/HRError.hpp>
  22. #include <util/windows/ComPtr.hpp>
  23. #include <util/platform.h>
  24. #include <util/util.hpp>
  25. #include <util/pipe.h>
  26. #include <util/dstr.h>
  27. using namespace amf;
  28. /* ========================================================================= */
  29. /* Junk */
  30. #define do_log(level, format, ...) \
  31. blog(level, "[%s: '%s'] " format, enc->encoder_str, \
  32. obs_encoder_get_name(enc->encoder), ##__VA_ARGS__)
  33. #define error(format, ...) do_log(LOG_ERROR, format, ##__VA_ARGS__)
  34. #define warn(format, ...) do_log(LOG_WARNING, format, ##__VA_ARGS__)
  35. #define info(format, ...) do_log(LOG_INFO, format, ##__VA_ARGS__)
  36. #define debug(format, ...) do_log(LOG_DEBUG, format, ##__VA_ARGS__)
  37. struct amf_error {
  38. const char *str;
  39. AMF_RESULT res;
  40. inline amf_error(const char *str, AMF_RESULT res) : str(str), res(res)
  41. {
  42. }
  43. };
  44. struct handle_tex {
  45. uint32_t handle;
  46. ComPtr<ID3D11Texture2D> tex;
  47. ComPtr<IDXGIKeyedMutex> km;
  48. };
  49. struct adapter_caps {
  50. bool is_amd = false;
  51. bool supports_avc = false;
  52. bool supports_hevc = false;
  53. };
  54. /* ------------------------------------------------------------------------- */
  55. static std::map<uint32_t, adapter_caps> caps;
  56. static bool h264_supported = false;
  57. static AMFFactory *amf_factory = nullptr;
  58. static AMFTrace *amf_trace = nullptr;
  59. static HMODULE amf_module = nullptr;
  60. static uint64_t amf_version = 0;
  61. /* ========================================================================= */
  62. /* Main Implementation */
  63. enum class amf_codec_type {
  64. AVC,
  65. HEVC,
  66. };
  67. struct amf_base {
  68. obs_encoder_t *encoder;
  69. const char *encoder_str;
  70. amf_codec_type codec;
  71. bool fallback;
  72. AMFContextPtr amf_context;
  73. AMFComponentPtr amf_encoder;
  74. AMFBufferPtr packet_data;
  75. AMFRate amf_frame_rate;
  76. AMFBufferPtr header;
  77. std::deque<AMFDataPtr> queued_packets;
  78. AMF_VIDEO_CONVERTER_COLOR_PROFILE_ENUM amf_color_profile;
  79. AMF_COLOR_TRANSFER_CHARACTERISTIC_ENUM amf_characteristic;
  80. AMF_COLOR_PRIMARIES_ENUM amf_primaries;
  81. AMF_SURFACE_FORMAT amf_format;
  82. amf_int64 max_throughput = 0;
  83. amf_int64 throughput = 0;
  84. int64_t dts_offset = 0;
  85. uint32_t cx;
  86. uint32_t cy;
  87. uint32_t linesize = 0;
  88. int fps_num;
  89. int fps_den;
  90. bool full_range;
  91. bool bframes_supported = false;
  92. bool first_update = true;
  93. inline amf_base(bool fallback) : fallback(fallback) {}
  94. virtual ~amf_base() = default;
  95. virtual void init() = 0;
  96. };
  97. using d3dtex_t = ComPtr<ID3D11Texture2D>;
  98. using buf_t = std::vector<uint8_t>;
  99. struct amf_texencode : amf_base, public AMFSurfaceObserver {
  100. volatile bool destroying = false;
  101. std::vector<handle_tex> input_textures;
  102. std::mutex textures_mutex;
  103. std::vector<d3dtex_t> available_textures;
  104. std::unordered_map<AMFSurface *, d3dtex_t> active_textures;
  105. ComPtr<ID3D11Device> device;
  106. ComPtr<ID3D11DeviceContext> context;
  107. inline amf_texencode() : amf_base(false) {}
  108. ~amf_texencode() { os_atomic_set_bool(&destroying, true); }
  109. void AMF_STD_CALL OnSurfaceDataRelease(amf::AMFSurface *surf) override
  110. {
  111. if (os_atomic_load_bool(&destroying))
  112. return;
  113. std::scoped_lock lock(textures_mutex);
  114. auto it = active_textures.find(surf);
  115. if (it != active_textures.end()) {
  116. available_textures.push_back(it->second);
  117. active_textures.erase(it);
  118. }
  119. }
  120. void init() override
  121. {
  122. AMF_RESULT res = amf_context->InitDX11(device, AMF_DX11_1);
  123. if (res != AMF_OK)
  124. throw amf_error("InitDX11 failed", res);
  125. }
  126. };
  127. struct amf_fallback : amf_base, public AMFSurfaceObserver {
  128. volatile bool destroying = false;
  129. std::mutex buffers_mutex;
  130. std::vector<buf_t> available_buffers;
  131. std::unordered_map<AMFSurface *, buf_t> active_buffers;
  132. inline amf_fallback() : amf_base(true) {}
  133. ~amf_fallback() { os_atomic_set_bool(&destroying, true); }
  134. void AMF_STD_CALL OnSurfaceDataRelease(amf::AMFSurface *surf) override
  135. {
  136. if (os_atomic_load_bool(&destroying))
  137. return;
  138. std::scoped_lock lock(buffers_mutex);
  139. auto it = active_buffers.find(surf);
  140. if (it != active_buffers.end()) {
  141. available_buffers.push_back(std::move(it->second));
  142. active_buffers.erase(it);
  143. }
  144. }
  145. void init() override
  146. {
  147. AMF_RESULT res = amf_context->InitDX11(nullptr, AMF_DX11_1);
  148. if (res != AMF_OK)
  149. throw amf_error("InitDX11 failed", res);
  150. }
  151. };
  152. /* ------------------------------------------------------------------------- */
  153. /* More garbage */
  154. template<typename T>
  155. static bool get_amf_property(amf_base *enc, const wchar_t *name, T *value)
  156. {
  157. AMF_RESULT res = enc->amf_encoder->GetProperty(name, value);
  158. return res == AMF_OK;
  159. }
  160. template<typename T>
  161. static void set_amf_property(amf_base *enc, const wchar_t *name, const T &value)
  162. {
  163. AMF_RESULT res = enc->amf_encoder->SetProperty(name, value);
  164. if (res != AMF_OK)
  165. error("Failed to set property '%ls': %ls", name,
  166. amf_trace->GetResultText(res));
  167. }
  168. #define set_avc_property(enc, name, value) \
  169. set_amf_property(enc, AMF_VIDEO_ENCODER_##name, value)
  170. #define set_hevc_property(enc, name, value) \
  171. set_amf_property(enc, AMF_VIDEO_ENCODER_HEVC_##name, value)
  172. #define get_avc_property(enc, name, value) \
  173. get_amf_property(enc, AMF_VIDEO_ENCODER_##name, value)
  174. #define get_hevc_property(enc, name, value) \
  175. get_amf_property(enc, AMF_VIDEO_ENCODER_HEVC_##name, value)
  176. #define get_opt_name(name) \
  177. ((enc->codec == amf_codec_type::AVC) ? AMF_VIDEO_ENCODER_##name \
  178. : AMF_VIDEO_ENCODER_HEVC_##name)
  179. #define set_opt(name, value) set_amf_property(enc, get_opt_name(name), value)
  180. #define get_opt(name, value) get_amf_property(enc, get_opt_name(name), value)
  181. #define set_avc_opt(name, value) set_avc_property(enc, name, value)
  182. #define set_hevc_opt(name, value) set_hevc_property(enc, name, value)
  183. #define set_enum_opt(name, value) \
  184. set_amf_property(enc, get_opt_name(name), get_opt_name(name##_##value))
  185. #define set_avc_enum(name, value) \
  186. set_avc_property(enc, name, AMF_VIDEO_ENCODER_##name##_##value)
  187. #define set_hevc_enum(name, value) \
  188. set_hevc_property(enc, name, AMF_VIDEO_ENCODER_HEVC_##name##_##value)
  189. /* ------------------------------------------------------------------------- */
  190. /* Implementation */
  191. static HMODULE get_lib(const char *lib)
  192. {
  193. HMODULE mod = GetModuleHandleA(lib);
  194. if (mod)
  195. return mod;
  196. return LoadLibraryA(lib);
  197. }
  198. #define AMD_VENDOR_ID 0x1002
  199. typedef HRESULT(WINAPI *CREATEDXGIFACTORY1PROC)(REFIID, void **);
  200. static bool amf_init_d3d11(amf_texencode *enc)
  201. try {
  202. HMODULE dxgi = get_lib("DXGI.dll");
  203. HMODULE d3d11 = get_lib("D3D11.dll");
  204. CREATEDXGIFACTORY1PROC create_dxgi;
  205. PFN_D3D11_CREATE_DEVICE create_device;
  206. ComPtr<IDXGIFactory> factory;
  207. ComPtr<ID3D11Device> device;
  208. ComPtr<ID3D11DeviceContext> context;
  209. ComPtr<IDXGIAdapter> adapter;
  210. DXGI_ADAPTER_DESC desc;
  211. HRESULT hr;
  212. if (!dxgi || !d3d11)
  213. throw "Couldn't get D3D11/DXGI libraries? "
  214. "That definitely shouldn't be possible.";
  215. create_dxgi = (CREATEDXGIFACTORY1PROC)GetProcAddress(
  216. dxgi, "CreateDXGIFactory1");
  217. create_device = (PFN_D3D11_CREATE_DEVICE)GetProcAddress(
  218. d3d11, "D3D11CreateDevice");
  219. if (!create_dxgi || !create_device)
  220. throw "Failed to load D3D11/DXGI procedures";
  221. hr = create_dxgi(__uuidof(IDXGIFactory2), (void **)&factory);
  222. if (FAILED(hr))
  223. throw HRError("CreateDXGIFactory1 failed", hr);
  224. obs_video_info ovi;
  225. obs_get_video_info(&ovi);
  226. hr = factory->EnumAdapters(ovi.adapter, &adapter);
  227. if (FAILED(hr))
  228. throw HRError("EnumAdapters failed", hr);
  229. adapter->GetDesc(&desc);
  230. if (desc.VendorId != AMD_VENDOR_ID)
  231. throw "Seems somehow AMF is trying to initialize "
  232. "on a non-AMD adapter";
  233. hr = create_device(adapter, D3D_DRIVER_TYPE_UNKNOWN, nullptr, 0,
  234. nullptr, 0, D3D11_SDK_VERSION, &device, nullptr,
  235. &context);
  236. if (FAILED(hr))
  237. throw HRError("D3D11CreateDevice failed", hr);
  238. enc->device = device;
  239. enc->context = context;
  240. return true;
  241. } catch (const HRError &err) {
  242. error("%s: %s: 0x%lX", __FUNCTION__, err.str, err.hr);
  243. return false;
  244. } catch (const char *err) {
  245. error("%s: %s", __FUNCTION__, err);
  246. return false;
  247. }
  248. static void add_output_tex(amf_texencode *enc,
  249. ComPtr<ID3D11Texture2D> &output_tex,
  250. ID3D11Texture2D *from)
  251. {
  252. ID3D11Device *device = enc->device;
  253. HRESULT hr;
  254. D3D11_TEXTURE2D_DESC desc;
  255. from->GetDesc(&desc);
  256. desc.BindFlags = D3D11_BIND_RENDER_TARGET | D3D11_BIND_SHADER_RESOURCE;
  257. desc.MiscFlags = 0;
  258. hr = device->CreateTexture2D(&desc, nullptr, &output_tex);
  259. if (FAILED(hr))
  260. throw HRError("Failed to create texture", hr);
  261. }
  262. static inline bool get_available_tex(amf_texencode *enc,
  263. ComPtr<ID3D11Texture2D> &output_tex)
  264. {
  265. std::scoped_lock lock(enc->textures_mutex);
  266. if (enc->available_textures.size()) {
  267. output_tex = enc->available_textures.back();
  268. enc->available_textures.pop_back();
  269. return true;
  270. }
  271. return false;
  272. }
  273. static inline void get_output_tex(amf_texencode *enc,
  274. ComPtr<ID3D11Texture2D> &output_tex,
  275. ID3D11Texture2D *from)
  276. {
  277. if (!get_available_tex(enc, output_tex))
  278. add_output_tex(enc, output_tex, from);
  279. }
  280. static void get_tex_from_handle(amf_texencode *enc, uint32_t handle,
  281. IDXGIKeyedMutex **km_out,
  282. ID3D11Texture2D **tex_out)
  283. {
  284. ID3D11Device *device = enc->device;
  285. ComPtr<ID3D11Texture2D> tex;
  286. HRESULT hr;
  287. for (size_t i = 0; i < enc->input_textures.size(); i++) {
  288. struct handle_tex &ht = enc->input_textures[i];
  289. if (ht.handle == handle) {
  290. ht.km.CopyTo(km_out);
  291. ht.tex.CopyTo(tex_out);
  292. return;
  293. }
  294. }
  295. hr = device->OpenSharedResource((HANDLE)(uintptr_t)handle,
  296. __uuidof(ID3D11Resource),
  297. (void **)&tex);
  298. if (FAILED(hr))
  299. throw HRError("OpenSharedResource failed", hr);
  300. ComQIPtr<IDXGIKeyedMutex> km(tex);
  301. if (!km)
  302. throw "QueryInterface(IDXGIKeyedMutex) failed";
  303. tex->SetEvictionPriority(DXGI_RESOURCE_PRIORITY_MAXIMUM);
  304. struct handle_tex new_ht = {handle, tex, km};
  305. enc->input_textures.push_back(std::move(new_ht));
  306. *km_out = km.Detach();
  307. *tex_out = tex.Detach();
  308. }
  309. static constexpr amf_int64 macroblock_size = 16;
  310. static inline void calc_throughput(amf_base *enc)
  311. {
  312. amf_int64 mb_cx =
  313. ((amf_int64)enc->cx + (macroblock_size - 1)) / macroblock_size;
  314. amf_int64 mb_cy =
  315. ((amf_int64)enc->cy + (macroblock_size - 1)) / macroblock_size;
  316. amf_int64 mb_frame = mb_cx * mb_cy;
  317. enc->throughput =
  318. mb_frame * (amf_int64)enc->fps_num / (amf_int64)enc->fps_den;
  319. }
  320. static inline void check_preset_compatibility(amf_base *enc,
  321. const char *&preset)
  322. {
  323. /* 1.8 * current base throughput == quality,
  324. * 1.1 * current base throughput == balanced */
  325. static constexpr amf_int64 throughput_quality_mul = 18;
  326. static constexpr amf_int64 throughput_balanced_mul = 11;
  327. /* if the throughput * 1.8 is lower than the max throughput, switch to
  328. * a lower preset */
  329. if (astrcmpi(preset, "quality") == 0) {
  330. if (!enc->max_throughput) {
  331. preset = "balanced";
  332. } else {
  333. amf_int64 req_throughput =
  334. enc->throughput * throughput_quality_mul / 10;
  335. if (enc->max_throughput < req_throughput)
  336. preset = "balanced";
  337. }
  338. }
  339. if (astrcmpi(preset, "balanced") == 0) {
  340. amf_int64 req_throughput =
  341. enc->throughput * throughput_balanced_mul / 10;
  342. if (enc->max_throughput && enc->max_throughput < req_throughput)
  343. preset = "speed";
  344. }
  345. }
  346. static inline int64_t convert_to_amf_ts(amf_base *enc, int64_t ts)
  347. {
  348. constexpr int64_t amf_timebase = AMF_SECOND;
  349. return ts * amf_timebase / (int64_t)enc->fps_den;
  350. }
  351. static inline int64_t convert_to_obs_ts(amf_base *enc, int64_t ts)
  352. {
  353. constexpr int64_t amf_timebase = AMF_SECOND;
  354. return ts * (int64_t)enc->fps_den / amf_timebase;
  355. }
  356. static void convert_to_encoder_packet(amf_base *enc, AMFDataPtr &data,
  357. encoder_packet *packet)
  358. {
  359. if (!data)
  360. return;
  361. enc->packet_data = AMFBufferPtr(data);
  362. data->GetProperty(L"PTS", &packet->pts);
  363. bool hevc = enc->codec == amf_codec_type::HEVC;
  364. const wchar_t *get_output_type =
  365. hevc ? AMF_VIDEO_ENCODER_HEVC_OUTPUT_DATA_TYPE
  366. : AMF_VIDEO_ENCODER_OUTPUT_DATA_TYPE;
  367. uint64_t type;
  368. data->GetProperty(get_output_type, &type);
  369. switch (type) {
  370. case AMF_VIDEO_ENCODER_OUTPUT_DATA_TYPE_IDR:
  371. packet->priority = OBS_NAL_PRIORITY_HIGHEST;
  372. break;
  373. case AMF_VIDEO_ENCODER_OUTPUT_DATA_TYPE_I:
  374. packet->priority = OBS_NAL_PRIORITY_HIGH;
  375. break;
  376. case AMF_VIDEO_ENCODER_OUTPUT_DATA_TYPE_P:
  377. packet->priority = OBS_NAL_PRIORITY_LOW;
  378. break;
  379. case AMF_VIDEO_ENCODER_OUTPUT_DATA_TYPE_B:
  380. packet->priority = OBS_NAL_PRIORITY_DISPOSABLE;
  381. break;
  382. }
  383. packet->data = (uint8_t *)enc->packet_data->GetNative();
  384. packet->size = enc->packet_data->GetSize();
  385. packet->type = OBS_ENCODER_VIDEO;
  386. packet->dts = convert_to_obs_ts(enc, data->GetPts());
  387. packet->keyframe = type == AMF_VIDEO_ENCODER_OUTPUT_DATA_TYPE_IDR;
  388. if (enc->dts_offset)
  389. packet->dts -= enc->dts_offset;
  390. }
  391. #ifndef SEC_TO_NSEC
  392. #define SEC_TO_NSEC 1000000000ULL
  393. #endif
  394. static void amf_encode_base(amf_base *enc, AMFSurface *amf_surf,
  395. encoder_packet *packet, bool *received_packet)
  396. {
  397. auto &queued_packets = enc->queued_packets;
  398. uint64_t ts_start = os_gettime_ns();
  399. AMF_RESULT res;
  400. *received_packet = false;
  401. bool waiting = true;
  402. while (waiting) {
  403. /* ----------------------------------- */
  404. /* submit frame */
  405. res = enc->amf_encoder->SubmitInput(amf_surf);
  406. if (res == AMF_OK || res == AMF_NEED_MORE_INPUT) {
  407. waiting = false;
  408. } else if (res == AMF_INPUT_FULL) {
  409. os_sleep_ms(1);
  410. uint64_t duration = os_gettime_ns() - ts_start;
  411. constexpr uint64_t timeout = 5 * SEC_TO_NSEC;
  412. if (duration >= timeout) {
  413. throw amf_error("SubmitInput timed out", res);
  414. }
  415. } else {
  416. throw amf_error("SubmitInput failed", res);
  417. }
  418. /* ----------------------------------- */
  419. /* query as many packets as possible */
  420. AMFDataPtr new_packet;
  421. do {
  422. res = enc->amf_encoder->QueryOutput(&new_packet);
  423. if (new_packet)
  424. queued_packets.push_back(new_packet);
  425. if (res != AMF_REPEAT && res != AMF_OK) {
  426. throw amf_error("QueryOutput failed", res);
  427. }
  428. } while (!!new_packet);
  429. }
  430. /* ----------------------------------- */
  431. /* return a packet if available */
  432. if (queued_packets.size()) {
  433. AMFDataPtr amf_out;
  434. amf_out = queued_packets.front();
  435. queued_packets.pop_front();
  436. *received_packet = true;
  437. convert_to_encoder_packet(enc, amf_out, packet);
  438. }
  439. }
  440. static bool amf_encode_tex(void *data, uint32_t handle, int64_t pts,
  441. uint64_t lock_key, uint64_t *next_key,
  442. encoder_packet *packet, bool *received_packet)
  443. try {
  444. amf_texencode *enc = (amf_texencode *)data;
  445. ID3D11DeviceContext *context = enc->context;
  446. ComPtr<ID3D11Texture2D> output_tex;
  447. ComPtr<ID3D11Texture2D> input_tex;
  448. ComPtr<IDXGIKeyedMutex> km;
  449. AMFSurfacePtr amf_surf;
  450. AMF_RESULT res;
  451. if (handle == GS_INVALID_HANDLE) {
  452. *next_key = lock_key;
  453. throw "Encode failed: bad texture handle";
  454. }
  455. /* ------------------------------------ */
  456. /* get the input tex */
  457. get_tex_from_handle(enc, handle, &km, &input_tex);
  458. /* ------------------------------------ */
  459. /* get an output tex */
  460. get_output_tex(enc, output_tex, input_tex);
  461. /* ------------------------------------ */
  462. /* copy to output tex */
  463. km->AcquireSync(lock_key, INFINITE);
  464. context->CopyResource((ID3D11Resource *)output_tex.Get(),
  465. (ID3D11Resource *)input_tex.Get());
  466. context->Flush();
  467. km->ReleaseSync(*next_key);
  468. /* ------------------------------------ */
  469. /* map output tex to amf surface */
  470. res = enc->amf_context->CreateSurfaceFromDX11Native(output_tex,
  471. &amf_surf, enc);
  472. if (res != AMF_OK)
  473. throw amf_error("CreateSurfaceFromDX11Native failed", res);
  474. int64_t last_ts = convert_to_amf_ts(enc, pts - 1);
  475. int64_t cur_ts = convert_to_amf_ts(enc, pts);
  476. amf_surf->SetPts(cur_ts);
  477. amf_surf->SetProperty(L"PTS", pts);
  478. {
  479. std::scoped_lock lock(enc->textures_mutex);
  480. enc->active_textures[amf_surf.GetPtr()] = output_tex;
  481. }
  482. /* ------------------------------------ */
  483. /* do actual encode */
  484. amf_encode_base(enc, amf_surf, packet, received_packet);
  485. return true;
  486. } catch (const char *err) {
  487. amf_texencode *enc = (amf_texencode *)data;
  488. error("%s: %s", __FUNCTION__, err);
  489. return false;
  490. } catch (const amf_error &err) {
  491. amf_texencode *enc = (amf_texencode *)data;
  492. error("%s: %s: %ls", __FUNCTION__, err.str,
  493. amf_trace->GetResultText(err.res));
  494. *received_packet = false;
  495. return false;
  496. } catch (const HRError &err) {
  497. amf_texencode *enc = (amf_texencode *)data;
  498. error("%s: %s: 0x%lX", __FUNCTION__, err.str, err.hr);
  499. *received_packet = false;
  500. return false;
  501. }
  502. static buf_t alloc_buf(amf_fallback *enc)
  503. {
  504. buf_t buf;
  505. size_t size;
  506. if (enc->amf_format == AMF_SURFACE_NV12) {
  507. size = enc->linesize * enc->cy * 2;
  508. } else if (enc->amf_format == AMF_SURFACE_RGBA) {
  509. size = enc->linesize * enc->cy * 4;
  510. } else if (enc->amf_format == AMF_SURFACE_P010) {
  511. size = enc->linesize * enc->cy * 2 * 2;
  512. } else {
  513. throw "Invalid amf_format";
  514. }
  515. buf.resize(size);
  516. return buf;
  517. }
  518. static buf_t get_buf(amf_fallback *enc)
  519. {
  520. std::scoped_lock lock(enc->buffers_mutex);
  521. buf_t buf;
  522. if (enc->available_buffers.size()) {
  523. buf = std::move(enc->available_buffers.back());
  524. enc->available_buffers.pop_back();
  525. } else {
  526. buf = alloc_buf(enc);
  527. }
  528. return buf;
  529. }
  530. static inline void copy_frame_data(amf_fallback *enc, buf_t &buf,
  531. struct encoder_frame *frame)
  532. {
  533. uint8_t *dst = &buf[0];
  534. if (enc->amf_format == AMF_SURFACE_NV12 ||
  535. enc->amf_format == AMF_SURFACE_P010) {
  536. size_t size = enc->linesize * enc->cy;
  537. memcpy(&buf[0], frame->data[0], size);
  538. memcpy(&buf[size], frame->data[1], size / 2);
  539. } else if (enc->amf_format == AMF_SURFACE_RGBA) {
  540. memcpy(dst, frame->data[0], enc->linesize * enc->cy);
  541. }
  542. }
  543. static bool amf_encode_fallback(void *data, struct encoder_frame *frame,
  544. struct encoder_packet *packet,
  545. bool *received_packet)
  546. try {
  547. amf_fallback *enc = (amf_fallback *)data;
  548. AMFSurfacePtr amf_surf;
  549. AMF_RESULT res;
  550. buf_t buf;
  551. if (!enc->linesize)
  552. enc->linesize = frame->linesize[0];
  553. buf = get_buf(enc);
  554. copy_frame_data(enc, buf, frame);
  555. res = enc->amf_context->CreateSurfaceFromHostNative(
  556. enc->amf_format, enc->cx, enc->cy, enc->linesize, 0, &buf[0],
  557. &amf_surf, enc);
  558. if (res != AMF_OK)
  559. throw amf_error("CreateSurfaceFromHostNative failed", res);
  560. int64_t last_ts = convert_to_amf_ts(enc, frame->pts - 1);
  561. int64_t cur_ts = convert_to_amf_ts(enc, frame->pts);
  562. amf_surf->SetPts(cur_ts);
  563. amf_surf->SetProperty(L"PTS", frame->pts);
  564. {
  565. std::scoped_lock lock(enc->buffers_mutex);
  566. enc->active_buffers[amf_surf.GetPtr()] = std::move(buf);
  567. }
  568. /* ------------------------------------ */
  569. /* do actual encode */
  570. amf_encode_base(enc, amf_surf, packet, received_packet);
  571. return true;
  572. } catch (const amf_error &err) {
  573. amf_fallback *enc = (amf_fallback *)data;
  574. error("%s: %s: %ls", __FUNCTION__, err.str,
  575. amf_trace->GetResultText(err.res));
  576. *received_packet = false;
  577. return false;
  578. } catch (const char *err) {
  579. amf_fallback *enc = (amf_fallback *)data;
  580. error("%s: %s", __FUNCTION__, err);
  581. *received_packet = false;
  582. return false;
  583. }
  584. static bool amf_extra_data(void *data, uint8_t **header, size_t *size)
  585. {
  586. amf_base *enc = (amf_base *)data;
  587. if (!enc->header)
  588. return false;
  589. *header = (uint8_t *)enc->header->GetNative();
  590. *size = enc->header->GetSize();
  591. return true;
  592. }
  593. static void h264_video_info_fallback(void *, struct video_scale_info *info)
  594. {
  595. switch (info->format) {
  596. case VIDEO_FORMAT_RGBA:
  597. case VIDEO_FORMAT_BGRA:
  598. case VIDEO_FORMAT_BGRX:
  599. info->format = VIDEO_FORMAT_RGBA;
  600. break;
  601. default:
  602. info->format = VIDEO_FORMAT_NV12;
  603. break;
  604. }
  605. }
  606. static void h265_video_info_fallback(void *, struct video_scale_info *info)
  607. {
  608. switch (info->format) {
  609. case VIDEO_FORMAT_RGBA:
  610. case VIDEO_FORMAT_BGRA:
  611. case VIDEO_FORMAT_BGRX:
  612. info->format = VIDEO_FORMAT_RGBA;
  613. break;
  614. case VIDEO_FORMAT_I010:
  615. case VIDEO_FORMAT_P010:
  616. info->format = VIDEO_FORMAT_P010;
  617. break;
  618. default:
  619. info->format = VIDEO_FORMAT_NV12;
  620. }
  621. }
  622. static bool amf_create_encoder(amf_base *enc)
  623. try {
  624. AMF_RESULT res;
  625. /* ------------------------------------ */
  626. /* get video info */
  627. struct obs_video_info ovi;
  628. obs_get_video_info(&ovi);
  629. struct video_scale_info info;
  630. info.format = ovi.output_format;
  631. info.colorspace = ovi.colorspace;
  632. info.range = ovi.range;
  633. if (enc->fallback) {
  634. if (enc->codec == amf_codec_type::AVC)
  635. h264_video_info_fallback(NULL, &info);
  636. else
  637. h265_video_info_fallback(NULL, &info);
  638. }
  639. enc->cx = obs_encoder_get_width(enc->encoder);
  640. enc->cy = obs_encoder_get_height(enc->encoder);
  641. enc->amf_frame_rate = AMFConstructRate(ovi.fps_num, ovi.fps_den);
  642. enc->fps_num = (int)ovi.fps_num;
  643. enc->fps_den = (int)ovi.fps_den;
  644. enc->full_range = info.range == VIDEO_RANGE_FULL;
  645. switch (info.colorspace) {
  646. case VIDEO_CS_601:
  647. enc->amf_color_profile =
  648. enc->full_range
  649. ? AMF_VIDEO_CONVERTER_COLOR_PROFILE_FULL_601
  650. : AMF_VIDEO_CONVERTER_COLOR_PROFILE_601;
  651. enc->amf_primaries = AMF_COLOR_PRIMARIES_SMPTE170M;
  652. enc->amf_characteristic =
  653. AMF_COLOR_TRANSFER_CHARACTERISTIC_SMPTE170M;
  654. break;
  655. case VIDEO_CS_DEFAULT:
  656. case VIDEO_CS_709:
  657. enc->amf_color_profile =
  658. enc->full_range
  659. ? AMF_VIDEO_CONVERTER_COLOR_PROFILE_FULL_709
  660. : AMF_VIDEO_CONVERTER_COLOR_PROFILE_709;
  661. enc->amf_primaries = AMF_COLOR_PRIMARIES_BT709;
  662. enc->amf_characteristic =
  663. AMF_COLOR_TRANSFER_CHARACTERISTIC_BT709;
  664. break;
  665. case VIDEO_CS_SRGB:
  666. enc->amf_color_profile =
  667. enc->full_range
  668. ? AMF_VIDEO_CONVERTER_COLOR_PROFILE_FULL_709
  669. : AMF_VIDEO_CONVERTER_COLOR_PROFILE_709;
  670. enc->amf_primaries = AMF_COLOR_PRIMARIES_BT709;
  671. enc->amf_characteristic =
  672. AMF_COLOR_TRANSFER_CHARACTERISTIC_IEC61966_2_1;
  673. break;
  674. case VIDEO_CS_2100_HLG:
  675. enc->amf_color_profile =
  676. enc->full_range
  677. ? AMF_VIDEO_CONVERTER_COLOR_PROFILE_FULL_2020
  678. : AMF_VIDEO_CONVERTER_COLOR_PROFILE_2020;
  679. enc->amf_primaries = AMF_COLOR_PRIMARIES_BT2020;
  680. enc->amf_characteristic =
  681. AMF_COLOR_TRANSFER_CHARACTERISTIC_ARIB_STD_B67;
  682. break;
  683. case VIDEO_CS_2100_PQ:
  684. enc->amf_color_profile =
  685. enc->full_range
  686. ? AMF_VIDEO_CONVERTER_COLOR_PROFILE_FULL_2020
  687. : AMF_VIDEO_CONVERTER_COLOR_PROFILE_2020;
  688. enc->amf_primaries = AMF_COLOR_PRIMARIES_BT2020;
  689. enc->amf_characteristic =
  690. AMF_COLOR_TRANSFER_CHARACTERISTIC_SMPTE2084;
  691. break;
  692. }
  693. switch (info.format) {
  694. case VIDEO_FORMAT_NV12:
  695. enc->amf_format = AMF_SURFACE_NV12;
  696. break;
  697. case VIDEO_FORMAT_P010:
  698. enc->amf_format = AMF_SURFACE_P010;
  699. break;
  700. case VIDEO_FORMAT_RGBA:
  701. enc->amf_format = AMF_SURFACE_RGBA;
  702. break;
  703. }
  704. /* ------------------------------------ */
  705. /* create encoder */
  706. res = amf_factory->CreateContext(&enc->amf_context);
  707. if (res != AMF_OK)
  708. throw amf_error("CreateContext failed", res);
  709. enc->init();
  710. res = amf_factory->CreateComponent(enc->amf_context,
  711. enc->codec == amf_codec_type::HEVC
  712. ? AMFVideoEncoder_HEVC
  713. : AMFVideoEncoderVCE_AVC,
  714. &enc->amf_encoder);
  715. if (res != AMF_OK)
  716. throw amf_error("CreateComponent failed", res);
  717. calc_throughput(enc);
  718. return true;
  719. } catch (const amf_error &err) {
  720. error("%s: %s: %ls", __FUNCTION__, err.str,
  721. amf_trace->GetResultText(err.res));
  722. return false;
  723. }
  724. static void amf_destroy(void *data)
  725. {
  726. amf_base *enc = (amf_base *)data;
  727. delete enc;
  728. }
  729. static void check_texture_encode_capability(obs_encoder_t *encoder, bool hevc)
  730. {
  731. obs_video_info ovi;
  732. obs_get_video_info(&ovi);
  733. if (obs_encoder_scaling_enabled(encoder))
  734. throw "Encoder scaling is active";
  735. if (hevc) {
  736. if (!obs_nv12_tex_active() && !obs_p010_tex_active())
  737. throw "NV12/P010 textures aren't active";
  738. } else if (!obs_nv12_tex_active()) {
  739. throw "NV12 textures aren't active";
  740. }
  741. video_t *video = obs_encoder_video(encoder);
  742. const struct video_output_info *voi = video_output_get_info(video);
  743. switch (voi->format) {
  744. case VIDEO_FORMAT_I010:
  745. case VIDEO_FORMAT_P010:
  746. break;
  747. default:
  748. switch (voi->colorspace) {
  749. case VIDEO_CS_2100_PQ:
  750. case VIDEO_CS_2100_HLG:
  751. throw "OBS does not support 8-bit output of Rec. 2100";
  752. }
  753. }
  754. if ((hevc && !caps[ovi.adapter].supports_hevc) ||
  755. (!hevc && !caps[ovi.adapter].supports_avc))
  756. throw "Wrong adapter";
  757. }
  758. #include "texture-amf-opts.hpp"
  759. static void amf_defaults(obs_data_t *settings)
  760. {
  761. obs_data_set_default_int(settings, "bitrate", 2500);
  762. obs_data_set_default_int(settings, "cqp", 20);
  763. obs_data_set_default_string(settings, "rate_control", "CBR");
  764. obs_data_set_default_string(settings, "preset", "quality");
  765. obs_data_set_default_string(settings, "profile", "high");
  766. }
  767. static bool rate_control_modified(obs_properties_t *ppts, obs_property_t *p,
  768. obs_data_t *settings)
  769. {
  770. const char *rc = obs_data_get_string(settings, "rate_control");
  771. bool cqp = astrcmpi(rc, "CQP") == 0;
  772. p = obs_properties_get(ppts, "bitrate");
  773. obs_property_set_visible(p, !cqp);
  774. p = obs_properties_get(ppts, "cqp");
  775. obs_property_set_visible(p, cqp);
  776. return true;
  777. }
  778. static obs_properties_t *amf_properties_internal(amf_codec_type codec)
  779. {
  780. obs_properties_t *props = obs_properties_create();
  781. obs_property_t *p;
  782. p = obs_properties_add_list(props, "rate_control",
  783. obs_module_text("RateControl"),
  784. OBS_COMBO_TYPE_LIST,
  785. OBS_COMBO_FORMAT_STRING);
  786. obs_property_list_add_string(p, "CBR", "CBR");
  787. obs_property_list_add_string(p, "CQP", "CQP");
  788. obs_property_list_add_string(p, "VBR", "VBR");
  789. obs_property_set_modified_callback(p, rate_control_modified);
  790. p = obs_properties_add_int(props, "bitrate", obs_module_text("Bitrate"),
  791. 50, 100000, 50);
  792. obs_property_int_set_suffix(p, " Kbps");
  793. obs_properties_add_int(props, "cqp", obs_module_text("NVENC.CQLevel"),
  794. 1, 30, 1);
  795. p = obs_properties_add_int(props, "keyint_sec",
  796. obs_module_text("KeyframeIntervalSec"), 0,
  797. 10, 1);
  798. obs_property_int_set_suffix(p, " s");
  799. p = obs_properties_add_list(props, "preset", obs_module_text("Preset"),
  800. OBS_COMBO_TYPE_LIST,
  801. OBS_COMBO_FORMAT_STRING);
  802. #define add_preset(val) \
  803. obs_property_list_add_string(p, obs_module_text("AMF.Preset." val), val)
  804. add_preset("quality");
  805. add_preset("balanced");
  806. add_preset("speed");
  807. #undef add_preset
  808. if (amf_codec_type::AVC == codec) {
  809. p = obs_properties_add_list(props, "profile",
  810. obs_module_text("Profile"),
  811. OBS_COMBO_TYPE_LIST,
  812. OBS_COMBO_FORMAT_STRING);
  813. #define add_profile(val) obs_property_list_add_string(p, val, val)
  814. add_profile("high");
  815. add_profile("main");
  816. add_profile("baseline");
  817. #undef add_profile
  818. obs_properties_add_int(props, "bf", obs_module_text("BFrames"),
  819. 0, 5, 1);
  820. }
  821. p = obs_properties_add_text(props, "ffmpeg_opts",
  822. obs_module_text("AMFOpts"),
  823. OBS_TEXT_DEFAULT);
  824. obs_property_set_long_description(p,
  825. obs_module_text("AMFOpts.ToolTip"));
  826. return props;
  827. }
  828. static obs_properties_t *amf_avc_properties(void *unused)
  829. {
  830. UNUSED_PARAMETER(unused);
  831. return amf_properties_internal(amf_codec_type::AVC);
  832. }
  833. static obs_properties_t *amf_hevc_properties(void *unused)
  834. {
  835. UNUSED_PARAMETER(unused);
  836. return amf_properties_internal(amf_codec_type::HEVC);
  837. }
  838. /* ========================================================================= */
  839. /* AVC Implementation */
  840. static const char *amf_avc_get_name(void *)
  841. {
  842. return "AMD HW H.264";
  843. }
  844. static inline int get_avc_preset(amf_base *enc, obs_data_t *settings)
  845. {
  846. const char *preset = obs_data_get_string(settings, "preset");
  847. check_preset_compatibility(enc, preset);
  848. if (astrcmpi(preset, "quality") == 0)
  849. return AMF_VIDEO_ENCODER_QUALITY_PRESET_QUALITY;
  850. else if (astrcmpi(preset, "speed") == 0)
  851. return AMF_VIDEO_ENCODER_QUALITY_PRESET_SPEED;
  852. return AMF_VIDEO_ENCODER_QUALITY_PRESET_BALANCED;
  853. }
  854. static inline int get_avc_rate_control(const char *rc_str)
  855. {
  856. if (astrcmpi(rc_str, "cqp") == 0)
  857. return AMF_VIDEO_ENCODER_RATE_CONTROL_METHOD_CONSTANT_QP;
  858. else if (astrcmpi(rc_str, "vbr") == 0)
  859. return AMF_VIDEO_ENCODER_RATE_CONTROL_METHOD_PEAK_CONSTRAINED_VBR;
  860. return AMF_VIDEO_ENCODER_RATE_CONTROL_METHOD_CBR;
  861. }
  862. static inline int get_avc_profile(obs_data_t *settings)
  863. {
  864. const char *profile = obs_data_get_string(settings, "profile");
  865. if (astrcmpi(profile, "baseline") == 0)
  866. return AMF_VIDEO_ENCODER_PROFILE_BASELINE;
  867. else if (astrcmpi(profile, "main") == 0)
  868. return AMF_VIDEO_ENCODER_PROFILE_MAIN;
  869. else if (astrcmpi(profile, "constrained_baseline") == 0)
  870. return AMF_VIDEO_ENCODER_PROFILE_CONSTRAINED_BASELINE;
  871. else if (astrcmpi(profile, "constrained_high") == 0)
  872. return AMF_VIDEO_ENCODER_PROFILE_CONSTRAINED_HIGH;
  873. return AMF_VIDEO_ENCODER_PROFILE_HIGH;
  874. }
  875. static void amf_avc_update_data(amf_base *enc, int rc, int64_t bitrate,
  876. int64_t qp)
  877. {
  878. if (rc != AMF_VIDEO_ENCODER_RATE_CONTROL_METHOD_CONSTANT_QP) {
  879. set_avc_property(enc, TARGET_BITRATE, bitrate);
  880. set_avc_property(enc, PEAK_BITRATE, bitrate);
  881. set_avc_property(enc, VBV_BUFFER_SIZE, bitrate);
  882. if (rc == AMF_VIDEO_ENCODER_RATE_CONTROL_METHOD_CBR) {
  883. set_avc_property(enc, FILLER_DATA_ENABLE, true);
  884. }
  885. } else {
  886. set_avc_property(enc, QP_I, qp);
  887. set_avc_property(enc, QP_P, qp);
  888. set_avc_property(enc, QP_B, qp);
  889. }
  890. }
  891. static bool amf_avc_update(void *data, obs_data_t *settings)
  892. try {
  893. amf_base *enc = (amf_base *)data;
  894. if (enc->first_update) {
  895. enc->first_update = false;
  896. return true;
  897. }
  898. int64_t bitrate = obs_data_get_int(settings, "bitrate");
  899. int64_t qp = obs_data_get_int(settings, "cqp");
  900. const char *rc_str = obs_data_get_string(settings, "rate_control");
  901. int rc = get_avc_rate_control(rc_str);
  902. AMF_RESULT res;
  903. amf_avc_update_data(enc, rc, bitrate * 1000, qp);
  904. res = enc->amf_encoder->ReInit(enc->cx, enc->cy);
  905. if (res != AMF_OK)
  906. throw amf_error("AMFComponent::Init failed", res);
  907. return true;
  908. } catch (const amf_error &err) {
  909. amf_base *enc = (amf_base *)data;
  910. error("%s: %s: %ls", __FUNCTION__, err.str,
  911. amf_trace->GetResultText(err.res));
  912. return false;
  913. }
  914. static bool amf_avc_init(void *data, obs_data_t *settings)
  915. {
  916. amf_base *enc = (amf_base *)data;
  917. int64_t bitrate = obs_data_get_int(settings, "bitrate");
  918. int64_t qp = obs_data_get_int(settings, "cqp");
  919. const char *preset = obs_data_get_string(settings, "preset");
  920. const char *profile = obs_data_get_string(settings, "profile");
  921. const char *rc_str = obs_data_get_string(settings, "rate_control");
  922. int64_t bf = obs_data_get_int(settings, "bf");
  923. check_preset_compatibility(enc, preset);
  924. if (enc->bframes_supported) {
  925. set_avc_property(enc, MAX_CONSECUTIVE_BPICTURES, 3);
  926. set_avc_property(enc, B_PIC_PATTERN, bf);
  927. } else if (bf != 0) {
  928. warn("B-Frames set to %lld but b-frames are not "
  929. "supported by this device",
  930. bf);
  931. bf = 0;
  932. }
  933. int rc = get_avc_rate_control(rc_str);
  934. set_avc_property(enc, RATE_CONTROL_METHOD, rc);
  935. set_avc_property(enc, ENABLE_VBAQ, true);
  936. amf_avc_update_data(enc, rc, bitrate * 1000, qp);
  937. set_avc_property(enc, ENFORCE_HRD, true);
  938. set_avc_property(enc, HIGH_MOTION_QUALITY_BOOST_ENABLE, false);
  939. int keyint_sec = (int)obs_data_get_int(settings, "keyint_sec");
  940. int gop_size = (keyint_sec) ? keyint_sec * enc->fps_num / enc->fps_den
  941. : 250;
  942. set_avc_property(enc, IDR_PERIOD, gop_size);
  943. bool repeat_headers = obs_data_get_bool(settings, "repeat_headers");
  944. if (repeat_headers)
  945. set_avc_property(enc, HEADER_INSERTION_SPACING, gop_size);
  946. set_avc_property(enc, DE_BLOCKING_FILTER, true);
  947. const char *ffmpeg_opts = obs_data_get_string(settings, "ffmpeg_opts");
  948. if (ffmpeg_opts && *ffmpeg_opts) {
  949. struct obs_options opts = obs_parse_options(ffmpeg_opts);
  950. for (size_t i = 0; i < opts.count; i++) {
  951. amf_apply_opt(enc, &opts.options[i]);
  952. }
  953. obs_free_options(opts);
  954. }
  955. if (!ffmpeg_opts || !*ffmpeg_opts)
  956. ffmpeg_opts = "(none)";
  957. info("settings:\n"
  958. "\trate_control: %s\n"
  959. "\tbitrate: %d\n"
  960. "\tcqp: %d\n"
  961. "\tkeyint: %d\n"
  962. "\tpreset: %s\n"
  963. "\tprofile: %s\n"
  964. "\tb-frames: %d\n"
  965. "\twidth: %d\n"
  966. "\theight: %d\n"
  967. "\tparams: %s",
  968. rc_str, bitrate, qp, gop_size, preset, profile, bf, enc->cx,
  969. enc->cy, ffmpeg_opts);
  970. return true;
  971. }
  972. static void amf_avc_create_internal(amf_base *enc, obs_data_t *settings)
  973. {
  974. AMF_RESULT res;
  975. AMFVariant p;
  976. enc->codec = amf_codec_type::AVC;
  977. if (!amf_create_encoder(enc))
  978. throw "Failed to create encoder";
  979. AMFCapsPtr caps;
  980. res = enc->amf_encoder->GetCaps(&caps);
  981. if (res == AMF_OK) {
  982. caps->GetProperty(AMF_VIDEO_ENCODER_CAP_BFRAMES,
  983. &enc->bframes_supported);
  984. caps->GetProperty(AMF_VIDEO_ENCODER_CAP_MAX_THROUGHPUT,
  985. &enc->max_throughput);
  986. }
  987. set_avc_property(enc, FRAMESIZE, AMFConstructSize(enc->cx, enc->cy));
  988. set_avc_property(enc, USAGE, AMF_VIDEO_ENCODER_USAGE_TRANSCODING);
  989. set_avc_property(enc, QUALITY_PRESET, get_avc_preset(enc, settings));
  990. set_avc_property(enc, PROFILE, get_avc_profile(settings));
  991. set_avc_property(enc, LOWLATENCY_MODE, false);
  992. set_avc_property(enc, CABAC_ENABLE, AMF_VIDEO_ENCODER_UNDEFINED);
  993. set_avc_property(enc, PREENCODE_ENABLE, true);
  994. set_avc_property(enc, OUTPUT_COLOR_PROFILE, enc->amf_color_profile);
  995. set_avc_property(enc, OUTPUT_TRANSFER_CHARACTERISTIC,
  996. enc->amf_characteristic);
  997. set_avc_property(enc, OUTPUT_COLOR_PRIMARIES, enc->amf_primaries);
  998. set_avc_property(enc, FULL_RANGE_COLOR, enc->full_range);
  999. amf_avc_init(enc, settings);
  1000. res = enc->amf_encoder->Init(enc->amf_format, enc->cx, enc->cy);
  1001. if (res != AMF_OK)
  1002. throw amf_error("AMFComponent::Init failed", res);
  1003. set_avc_property(enc, FRAMERATE, enc->amf_frame_rate);
  1004. res = enc->amf_encoder->GetProperty(AMF_VIDEO_ENCODER_EXTRADATA, &p);
  1005. if (res == AMF_OK && p.type == AMF_VARIANT_INTERFACE)
  1006. enc->header = AMFBufferPtr(p.pInterface);
  1007. if (enc->bframes_supported) {
  1008. amf_int64 b_frames = 0;
  1009. amf_int64 b_max = 0;
  1010. if (get_avc_property(enc, B_PIC_PATTERN, &b_frames) &&
  1011. get_avc_property(enc, MAX_CONSECUTIVE_BPICTURES, &b_max))
  1012. enc->dts_offset = b_frames + 1;
  1013. else
  1014. enc->dts_offset = 0;
  1015. }
  1016. }
  1017. static void *amf_avc_create_texencode(obs_data_t *settings,
  1018. obs_encoder_t *encoder)
  1019. try {
  1020. check_texture_encode_capability(encoder, false);
  1021. std::unique_ptr<amf_texencode> enc = std::make_unique<amf_texencode>();
  1022. enc->encoder = encoder;
  1023. enc->encoder_str = "texture-amf-h264";
  1024. if (!amf_init_d3d11(enc.get()))
  1025. throw "Failed to create D3D11";
  1026. amf_avc_create_internal(enc.get(), settings);
  1027. return enc.release();
  1028. } catch (const amf_error &err) {
  1029. blog(LOG_ERROR, "[texture-amf-h264] %s: %s: %ls", __FUNCTION__, err.str,
  1030. amf_trace->GetResultText(err.res));
  1031. return obs_encoder_create_rerouted(encoder, "h264_fallback_amf");
  1032. } catch (const char *err) {
  1033. blog(LOG_ERROR, "[texture-amf-h264] %s: %s", __FUNCTION__, err);
  1034. return obs_encoder_create_rerouted(encoder, "h264_fallback_amf");
  1035. }
  1036. static void *amf_avc_create_fallback(obs_data_t *settings,
  1037. obs_encoder_t *encoder)
  1038. try {
  1039. std::unique_ptr<amf_fallback> enc = std::make_unique<amf_fallback>();
  1040. enc->encoder = encoder;
  1041. enc->encoder_str = "fallback-amf-h264";
  1042. video_t *video = obs_encoder_video(encoder);
  1043. const struct video_output_info *voi = video_output_get_info(video);
  1044. switch (voi->format) {
  1045. case VIDEO_FORMAT_I010:
  1046. case VIDEO_FORMAT_P010: {
  1047. const char *const text =
  1048. obs_module_text("AMF.10bitUnsupportedAvc");
  1049. obs_encoder_set_last_error(encoder, text);
  1050. throw text;
  1051. }
  1052. default:
  1053. switch (voi->colorspace) {
  1054. case VIDEO_CS_2100_PQ:
  1055. case VIDEO_CS_2100_HLG: {
  1056. const char *const text =
  1057. obs_module_text("AMF.8bitUnsupportedHdr");
  1058. obs_encoder_set_last_error(encoder, text);
  1059. throw text;
  1060. }
  1061. }
  1062. }
  1063. amf_avc_create_internal(enc.get(), settings);
  1064. return enc.release();
  1065. } catch (const amf_error &err) {
  1066. blog(LOG_ERROR, "[fallback-amf-h264] %s: %s: %ls", __FUNCTION__,
  1067. err.str, amf_trace->GetResultText(err.res));
  1068. return nullptr;
  1069. } catch (const char *err) {
  1070. blog(LOG_ERROR, "[fallback-amf-h264] %s: %s", __FUNCTION__, err);
  1071. return nullptr;
  1072. }
  1073. static void register_avc()
  1074. {
  1075. struct obs_encoder_info amf_encoder_info = {};
  1076. amf_encoder_info.id = "h264_texture_amf";
  1077. amf_encoder_info.type = OBS_ENCODER_VIDEO;
  1078. amf_encoder_info.codec = "h264";
  1079. amf_encoder_info.get_name = amf_avc_get_name;
  1080. amf_encoder_info.create = amf_avc_create_texencode;
  1081. amf_encoder_info.destroy = amf_destroy;
  1082. amf_encoder_info.update = amf_avc_update;
  1083. amf_encoder_info.encode_texture = amf_encode_tex;
  1084. amf_encoder_info.get_defaults = amf_defaults;
  1085. amf_encoder_info.get_properties = amf_avc_properties;
  1086. amf_encoder_info.get_extra_data = amf_extra_data;
  1087. amf_encoder_info.caps = OBS_ENCODER_CAP_PASS_TEXTURE |
  1088. OBS_ENCODER_CAP_DYN_BITRATE;
  1089. obs_register_encoder(&amf_encoder_info);
  1090. amf_encoder_info.id = "h264_fallback_amf";
  1091. amf_encoder_info.caps = OBS_ENCODER_CAP_INTERNAL |
  1092. OBS_ENCODER_CAP_DYN_BITRATE;
  1093. amf_encoder_info.encode_texture = nullptr;
  1094. amf_encoder_info.create = amf_avc_create_fallback;
  1095. amf_encoder_info.encode = amf_encode_fallback;
  1096. amf_encoder_info.get_video_info = h264_video_info_fallback;
  1097. obs_register_encoder(&amf_encoder_info);
  1098. }
  1099. /* ========================================================================= */
  1100. /* HEVC Implementation */
  1101. #if ENABLE_HEVC
  1102. static const char *amf_hevc_get_name(void *)
  1103. {
  1104. return "AMD HW H.265 (HEVC)";
  1105. }
  1106. static inline int get_hevc_preset(amf_base *enc, obs_data_t *settings)
  1107. {
  1108. const char *preset = obs_data_get_string(settings, "preset");
  1109. check_preset_compatibility(enc, preset);
  1110. if (astrcmpi(preset, "balanced") == 0)
  1111. return AMF_VIDEO_ENCODER_HEVC_QUALITY_PRESET_BALANCED;
  1112. else if (astrcmpi(preset, "speed") == 0)
  1113. return AMF_VIDEO_ENCODER_HEVC_QUALITY_PRESET_SPEED;
  1114. return AMF_VIDEO_ENCODER_HEVC_QUALITY_PRESET_QUALITY;
  1115. }
  1116. static inline int get_hevc_rate_control(const char *rc_str)
  1117. {
  1118. if (astrcmpi(rc_str, "cqp") == 0)
  1119. return AMF_VIDEO_ENCODER_HEVC_RATE_CONTROL_METHOD_CONSTANT_QP;
  1120. else if (astrcmpi(rc_str, "vbr") == 0)
  1121. return AMF_VIDEO_ENCODER_HEVC_RATE_CONTROL_METHOD_PEAK_CONSTRAINED_VBR;
  1122. return AMF_VIDEO_ENCODER_HEVC_RATE_CONTROL_METHOD_CBR;
  1123. }
  1124. static void amf_hevc_update_data(amf_base *enc, int rc, int64_t bitrate,
  1125. int64_t qp)
  1126. {
  1127. if (rc != AMF_VIDEO_ENCODER_RATE_CONTROL_METHOD_CONSTANT_QP) {
  1128. set_hevc_property(enc, TARGET_BITRATE, bitrate);
  1129. set_hevc_property(enc, PEAK_BITRATE, bitrate);
  1130. set_hevc_property(enc, VBV_BUFFER_SIZE, bitrate);
  1131. if (rc == AMF_VIDEO_ENCODER_HEVC_RATE_CONTROL_METHOD_CBR) {
  1132. set_hevc_property(enc, FILLER_DATA_ENABLE, true);
  1133. }
  1134. } else {
  1135. set_hevc_property(enc, QP_I, qp);
  1136. set_hevc_property(enc, QP_P, qp);
  1137. }
  1138. }
  1139. static bool amf_hevc_update(void *data, obs_data_t *settings)
  1140. try {
  1141. amf_base *enc = (amf_base *)data;
  1142. if (enc->first_update) {
  1143. enc->first_update = false;
  1144. return true;
  1145. }
  1146. int64_t bitrate = obs_data_get_int(settings, "bitrate");
  1147. int64_t qp = obs_data_get_int(settings, "cqp");
  1148. const char *rc_str = obs_data_get_string(settings, "rate_control");
  1149. int rc = get_hevc_rate_control(rc_str);
  1150. AMF_RESULT res;
  1151. amf_hevc_update_data(enc, rc, bitrate * 1000, qp);
  1152. res = enc->amf_encoder->ReInit(enc->cx, enc->cy);
  1153. if (res != AMF_OK)
  1154. throw amf_error("AMFComponent::Init failed", res);
  1155. return true;
  1156. } catch (const amf_error &err) {
  1157. amf_base *enc = (amf_base *)data;
  1158. error("%s: %s: %ls", __FUNCTION__, err.str,
  1159. amf_trace->GetResultText(err.res));
  1160. return false;
  1161. }
  1162. static bool amf_hevc_init(void *data, obs_data_t *settings)
  1163. {
  1164. amf_base *enc = (amf_base *)data;
  1165. int64_t bitrate = obs_data_get_int(settings, "bitrate");
  1166. int64_t qp = obs_data_get_int(settings, "cqp");
  1167. const char *preset = obs_data_get_string(settings, "preset");
  1168. const char *profile = obs_data_get_string(settings, "profile");
  1169. const char *rc_str = obs_data_get_string(settings, "rate_control");
  1170. int rc = get_hevc_rate_control(rc_str);
  1171. set_hevc_property(enc, RATE_CONTROL_METHOD, rc);
  1172. set_hevc_property(enc, ENABLE_VBAQ, true);
  1173. amf_hevc_update_data(enc, rc, bitrate * 1000, qp);
  1174. set_hevc_property(enc, ENFORCE_HRD, true);
  1175. set_hevc_property(enc, HIGH_MOTION_QUALITY_BOOST_ENABLE, false);
  1176. int keyint_sec = (int)obs_data_get_int(settings, "keyint_sec");
  1177. int gop_size = (keyint_sec) ? keyint_sec * enc->fps_num / enc->fps_den
  1178. : 250;
  1179. set_hevc_property(enc, GOP_SIZE, gop_size);
  1180. const char *ffmpeg_opts = obs_data_get_string(settings, "ffmpeg_opts");
  1181. if (ffmpeg_opts && *ffmpeg_opts) {
  1182. struct obs_options opts = obs_parse_options(ffmpeg_opts);
  1183. for (size_t i = 0; i < opts.count; i++) {
  1184. amf_apply_opt(enc, &opts.options[i]);
  1185. }
  1186. obs_free_options(opts);
  1187. }
  1188. if (!ffmpeg_opts || !*ffmpeg_opts)
  1189. ffmpeg_opts = "(none)";
  1190. info("settings:\n"
  1191. "\trate_control: %s\n"
  1192. "\tbitrate: %d\n"
  1193. "\tcqp: %d\n"
  1194. "\tkeyint: %d\n"
  1195. "\tpreset: %s\n"
  1196. "\tprofile: %s\n"
  1197. "\twidth: %d\n"
  1198. "\theight: %d\n"
  1199. "\tparams: %s",
  1200. rc_str, bitrate, qp, gop_size, preset, profile, enc->cx, enc->cy,
  1201. ffmpeg_opts);
  1202. return true;
  1203. }
  1204. static inline bool is_hlg(amf_base *enc)
  1205. {
  1206. return enc->amf_characteristic ==
  1207. AMF_COLOR_TRANSFER_CHARACTERISTIC_ARIB_STD_B67;
  1208. }
  1209. static inline bool is_pq(amf_base *enc)
  1210. {
  1211. return enc->amf_characteristic ==
  1212. AMF_COLOR_TRANSFER_CHARACTERISTIC_SMPTE2084;
  1213. }
  1214. constexpr amf_uint16 amf_hdr_primary(uint32_t num, uint32_t den)
  1215. {
  1216. return (amf_uint16)(num * 50000 / den);
  1217. }
  1218. constexpr amf_uint32 lum_mul = 10000;
  1219. constexpr amf_uint32 amf_make_lum(amf_uint32 val)
  1220. {
  1221. return val * lum_mul;
  1222. }
  1223. static void amf_hevc_create_internal(amf_base *enc, obs_data_t *settings)
  1224. {
  1225. AMF_RESULT res;
  1226. AMFVariant p;
  1227. enc->codec = amf_codec_type::HEVC;
  1228. if (!amf_create_encoder(enc))
  1229. throw "Failed to create encoder";
  1230. AMFCapsPtr caps;
  1231. res = enc->amf_encoder->GetCaps(&caps);
  1232. if (res == AMF_OK) {
  1233. caps->GetProperty(AMF_VIDEO_ENCODER_HEVC_CAP_MAX_THROUGHPUT,
  1234. &enc->max_throughput);
  1235. }
  1236. const bool is10bit = enc->amf_format == AMF_SURFACE_P010;
  1237. const bool pq = is_pq(enc);
  1238. const bool hlg = is_hlg(enc);
  1239. const bool is_hdr = pq || hlg;
  1240. set_hevc_property(enc, FRAMESIZE, AMFConstructSize(enc->cx, enc->cy));
  1241. set_hevc_property(enc, USAGE, AMF_VIDEO_ENCODER_USAGE_TRANSCODING);
  1242. set_hevc_property(enc, QUALITY_PRESET, get_hevc_preset(enc, settings));
  1243. set_hevc_property(enc, COLOR_BIT_DEPTH,
  1244. is10bit ? AMF_COLOR_BIT_DEPTH_10
  1245. : AMF_COLOR_BIT_DEPTH_8);
  1246. set_hevc_property(enc, PROFILE,
  1247. is10bit ? AMF_VIDEO_ENCODER_HEVC_PROFILE_MAIN_10
  1248. : AMF_VIDEO_ENCODER_HEVC_PROFILE_MAIN);
  1249. set_hevc_property(enc, LOWLATENCY_MODE, false);
  1250. set_hevc_property(enc, OUTPUT_COLOR_PROFILE, enc->amf_color_profile);
  1251. set_hevc_property(enc, OUTPUT_TRANSFER_CHARACTERISTIC,
  1252. enc->amf_characteristic);
  1253. set_hevc_property(enc, OUTPUT_COLOR_PRIMARIES, enc->amf_primaries);
  1254. set_hevc_property(enc, NOMINAL_RANGE, enc->full_range);
  1255. if (is_hdr) {
  1256. const int hdr_nominal_peak_level =
  1257. pq ? (int)obs_get_video_hdr_nominal_peak_level()
  1258. : (hlg ? 1000 : 0);
  1259. AMFBufferPtr buf;
  1260. enc->amf_context->AllocBuffer(AMF_MEMORY_HOST,
  1261. sizeof(AMFHDRMetadata), &buf);
  1262. AMFHDRMetadata *md = (AMFHDRMetadata *)buf->GetNative();
  1263. md->redPrimary[0] = amf_hdr_primary(17, 25);
  1264. md->redPrimary[1] = amf_hdr_primary(8, 25);
  1265. md->greenPrimary[0] = amf_hdr_primary(53, 200);
  1266. md->greenPrimary[1] = amf_hdr_primary(69, 100);
  1267. md->bluePrimary[0] = amf_hdr_primary(3, 20);
  1268. md->bluePrimary[1] = amf_hdr_primary(3, 50);
  1269. md->whitePoint[0] = amf_hdr_primary(3127, 10000);
  1270. md->whitePoint[1] = amf_hdr_primary(329, 1000);
  1271. md->minMasteringLuminance = 0;
  1272. md->maxMasteringLuminance =
  1273. amf_make_lum(hdr_nominal_peak_level);
  1274. md->maxContentLightLevel = hdr_nominal_peak_level;
  1275. md->maxFrameAverageLightLevel = hdr_nominal_peak_level;
  1276. set_hevc_property(enc, INPUT_HDR_METADATA, buf);
  1277. }
  1278. amf_hevc_init(enc, settings);
  1279. res = enc->amf_encoder->Init(enc->amf_format, enc->cx, enc->cy);
  1280. if (res != AMF_OK)
  1281. throw amf_error("AMFComponent::Init failed", res);
  1282. set_hevc_property(enc, FRAMERATE, enc->amf_frame_rate);
  1283. res = enc->amf_encoder->GetProperty(AMF_VIDEO_ENCODER_HEVC_EXTRADATA,
  1284. &p);
  1285. if (res == AMF_OK && p.type == AMF_VARIANT_INTERFACE)
  1286. enc->header = AMFBufferPtr(p.pInterface);
  1287. }
  1288. static void *amf_hevc_create_texencode(obs_data_t *settings,
  1289. obs_encoder_t *encoder)
  1290. try {
  1291. check_texture_encode_capability(encoder, true);
  1292. std::unique_ptr<amf_texencode> enc = std::make_unique<amf_texencode>();
  1293. enc->encoder = encoder;
  1294. enc->encoder_str = "texture-amf-h265";
  1295. if (!amf_init_d3d11(enc.get()))
  1296. throw "Failed to create D3D11";
  1297. amf_hevc_create_internal(enc.get(), settings);
  1298. return enc.release();
  1299. } catch (const amf_error &err) {
  1300. blog(LOG_ERROR, "[texture-amf-h265] %s: %s: %ls", __FUNCTION__, err.str,
  1301. amf_trace->GetResultText(err.res));
  1302. return obs_encoder_create_rerouted(encoder, "h265_fallback_amf");
  1303. } catch (const char *err) {
  1304. blog(LOG_ERROR, "[texture-amf-h265] %s: %s", __FUNCTION__, err);
  1305. return obs_encoder_create_rerouted(encoder, "h265_fallback_amf");
  1306. }
  1307. static void *amf_hevc_create_fallback(obs_data_t *settings,
  1308. obs_encoder_t *encoder)
  1309. try {
  1310. std::unique_ptr<amf_fallback> enc = std::make_unique<amf_fallback>();
  1311. enc->encoder = encoder;
  1312. enc->encoder_str = "fallback-amf-h265";
  1313. video_t *video = obs_encoder_video(encoder);
  1314. const struct video_output_info *voi = video_output_get_info(video);
  1315. switch (voi->format) {
  1316. case VIDEO_FORMAT_I010:
  1317. case VIDEO_FORMAT_P010:
  1318. break;
  1319. default:
  1320. switch (voi->colorspace) {
  1321. case VIDEO_CS_2100_PQ:
  1322. case VIDEO_CS_2100_HLG: {
  1323. const char *const text =
  1324. obs_module_text("AMF.8bitUnsupportedHdr");
  1325. obs_encoder_set_last_error(encoder, text);
  1326. throw text;
  1327. }
  1328. }
  1329. }
  1330. amf_hevc_create_internal(enc.get(), settings);
  1331. return enc.release();
  1332. } catch (const amf_error &err) {
  1333. blog(LOG_ERROR, "[fallback-amf-h265] %s: %s: %ls", __FUNCTION__,
  1334. err.str, amf_trace->GetResultText(err.res));
  1335. return nullptr;
  1336. } catch (const char *err) {
  1337. blog(LOG_ERROR, "[fallback-amf-h265] %s: %s", __FUNCTION__, err);
  1338. return nullptr;
  1339. }
  1340. static void register_hevc()
  1341. {
  1342. struct obs_encoder_info amf_encoder_info = {};
  1343. amf_encoder_info.id = "h265_texture_amf";
  1344. amf_encoder_info.type = OBS_ENCODER_VIDEO;
  1345. amf_encoder_info.codec = "hevc";
  1346. amf_encoder_info.get_name = amf_hevc_get_name;
  1347. amf_encoder_info.create = amf_hevc_create_texencode;
  1348. amf_encoder_info.destroy = amf_destroy;
  1349. amf_encoder_info.update = amf_hevc_update;
  1350. amf_encoder_info.encode_texture = amf_encode_tex;
  1351. amf_encoder_info.get_defaults = amf_defaults;
  1352. amf_encoder_info.get_properties = amf_hevc_properties;
  1353. amf_encoder_info.get_extra_data = amf_extra_data;
  1354. amf_encoder_info.caps = OBS_ENCODER_CAP_PASS_TEXTURE |
  1355. OBS_ENCODER_CAP_DYN_BITRATE;
  1356. obs_register_encoder(&amf_encoder_info);
  1357. amf_encoder_info.id = "h265_fallback_amf";
  1358. amf_encoder_info.caps = OBS_ENCODER_CAP_INTERNAL |
  1359. OBS_ENCODER_CAP_DYN_BITRATE;
  1360. amf_encoder_info.encode_texture = nullptr;
  1361. amf_encoder_info.create = amf_hevc_create_fallback;
  1362. amf_encoder_info.encode = amf_encode_fallback;
  1363. amf_encoder_info.get_video_info = h265_video_info_fallback;
  1364. obs_register_encoder(&amf_encoder_info);
  1365. }
  1366. #endif //ENABLE_HEVC
  1367. /* ========================================================================= */
  1368. /* Global Stuff */
  1369. extern "C" void amf_load(void)
  1370. try {
  1371. AMF_RESULT res;
  1372. HMODULE amf_module_test;
  1373. /* Check if the DLL is present before running the more expensive */
  1374. /* obs-amf-test.exe, but load it as data so it can't crash us */
  1375. amf_module_test =
  1376. LoadLibraryExW(AMF_DLL_NAME, nullptr, LOAD_LIBRARY_AS_DATAFILE);
  1377. if (!amf_module_test)
  1378. throw "No AMF library";
  1379. FreeLibrary(amf_module_test);
  1380. /* ----------------------------------- */
  1381. /* Check for AVC/HEVC support */
  1382. BPtr<char> test_exe = os_get_executable_path_ptr("obs-amf-test.exe");
  1383. std::string caps_str;
  1384. os_process_pipe_t *pp = os_process_pipe_create(test_exe, "r");
  1385. if (!pp)
  1386. throw "Failed to launch the AMF test process I guess";
  1387. for (;;) {
  1388. char data[2048];
  1389. size_t len =
  1390. os_process_pipe_read(pp, (uint8_t *)data, sizeof(data));
  1391. if (!len)
  1392. break;
  1393. caps_str.append(data, len);
  1394. }
  1395. os_process_pipe_destroy(pp);
  1396. if (caps_str.empty())
  1397. throw "Seems the AMF test subprocess crashed. "
  1398. "Better there than here I guess. "
  1399. "Let's just skip loading AMF then I suppose.";
  1400. ConfigFile config;
  1401. if (config.OpenString(caps_str.c_str()) != 0)
  1402. throw "Failed to open config string";
  1403. const char *error = config_get_string(config, "error", "string");
  1404. if (error)
  1405. throw std::string(error);
  1406. uint32_t adapter_count = (uint32_t)config_num_sections(config);
  1407. bool avc_supported = false;
  1408. bool hevc_supported = false;
  1409. for (uint32_t i = 0; i < adapter_count; i++) {
  1410. std::string section = std::to_string(i);
  1411. adapter_caps &info = caps[i];
  1412. info.is_amd =
  1413. config_get_bool(config, section.c_str(), "is_amd");
  1414. info.supports_avc = config_get_bool(config, section.c_str(),
  1415. "supports_avc");
  1416. info.supports_hevc = config_get_bool(config, section.c_str(),
  1417. "supports_hevc");
  1418. avc_supported |= info.supports_avc;
  1419. hevc_supported |= info.supports_hevc;
  1420. }
  1421. if (!avc_supported && !hevc_supported)
  1422. throw "Neither AVC nor HEVC are supported by any devices";
  1423. /* ----------------------------------- */
  1424. /* Init AMF */
  1425. amf_module = LoadLibraryW(AMF_DLL_NAME);
  1426. if (!amf_module)
  1427. throw "AMF library failed to load";
  1428. AMFInit_Fn init =
  1429. (AMFInit_Fn)GetProcAddress(amf_module, AMF_INIT_FUNCTION_NAME);
  1430. if (!init)
  1431. throw "Failed to get AMFInit address";
  1432. res = init(AMF_FULL_VERSION, &amf_factory);
  1433. if (res != AMF_OK)
  1434. throw amf_error("AMFInit failed", res);
  1435. res = amf_factory->GetTrace(&amf_trace);
  1436. if (res != AMF_OK)
  1437. throw amf_error("GetTrace failed", res);
  1438. AMFQueryVersion_Fn get_ver = (AMFQueryVersion_Fn)GetProcAddress(
  1439. amf_module, AMF_QUERY_VERSION_FUNCTION_NAME);
  1440. if (!get_ver)
  1441. throw "Failed to get AMFQueryVersion address";
  1442. res = get_ver(&amf_version);
  1443. if (res != AMF_OK)
  1444. throw amf_error("AMFQueryVersion failed", res);
  1445. #ifndef DEBUG_AMF_STUFF
  1446. amf_trace->EnableWriter(AMF_TRACE_WRITER_DEBUG_OUTPUT, false);
  1447. amf_trace->EnableWriter(AMF_TRACE_WRITER_CONSOLE, false);
  1448. #endif
  1449. /* ----------------------------------- */
  1450. /* Register encoders */
  1451. if (avc_supported)
  1452. register_avc();
  1453. #if ENABLE_HEVC
  1454. if (hevc_supported)
  1455. register_hevc();
  1456. #endif
  1457. } catch (const std::string &str) {
  1458. /* doing debug here because string exceptions indicate the user is
  1459. * probably not using AMD */
  1460. blog(LOG_DEBUG, "%s: %s", __FUNCTION__, str.c_str());
  1461. } catch (const char *str) {
  1462. /* doing debug here because string exceptions indicate the user is
  1463. * probably not using AMD */
  1464. blog(LOG_DEBUG, "%s: %s", __FUNCTION__, str);
  1465. } catch (const amf_error &err) {
  1466. /* doing an error here because it means at least the library has loaded
  1467. * successfully, so they probably have AMD at this point */
  1468. blog(LOG_ERROR, "%s: %s: 0x%lX", __FUNCTION__, err.str,
  1469. (uint32_t)err.res);
  1470. }
  1471. extern "C" void amf_unload(void)
  1472. {
  1473. if (amf_module && amf_trace) {
  1474. amf_trace->TraceFlush();
  1475. amf_trace->UnregisterWriter(L"obs_amf_trace_writer");
  1476. }
  1477. }