Bitmap.cpp 21 KB

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  1. /*
  2. * Copyright (c) 2018-2021, Andreas Kling <kling@serenityos.org>
  3. *
  4. * SPDX-License-Identifier: BSD-2-Clause
  5. */
  6. #include <AK/Checked.h>
  7. #include <AK/LexicalPath.h>
  8. #include <AK/Memory.h>
  9. #include <AK/MemoryStream.h>
  10. #include <AK/Optional.h>
  11. #include <AK/ScopeGuard.h>
  12. #include <AK/String.h>
  13. #include <AK/Try.h>
  14. #include <LibCore/MappedFile.h>
  15. #include <LibCore/System.h>
  16. #include <LibGfx/Bitmap.h>
  17. #include <LibGfx/ImageDecoder.h>
  18. #include <LibGfx/ShareableBitmap.h>
  19. #include <errno.h>
  20. #include <fcntl.h>
  21. #include <stdio.h>
  22. #include <sys/mman.h>
  23. namespace Gfx {
  24. struct BackingStore {
  25. void* data { nullptr };
  26. size_t pitch { 0 };
  27. size_t size_in_bytes { 0 };
  28. };
  29. size_t Bitmap::minimum_pitch(size_t physical_width, BitmapFormat format)
  30. {
  31. size_t element_size;
  32. switch (determine_storage_format(format)) {
  33. case StorageFormat::Indexed8:
  34. element_size = 1;
  35. break;
  36. case StorageFormat::BGRx8888:
  37. case StorageFormat::BGRA8888:
  38. case StorageFormat::RGBA8888:
  39. element_size = 4;
  40. break;
  41. default:
  42. VERIFY_NOT_REACHED();
  43. }
  44. return physical_width * element_size;
  45. }
  46. static bool size_would_overflow(BitmapFormat format, IntSize const& size, int scale_factor)
  47. {
  48. if (size.width() < 0 || size.height() < 0)
  49. return true;
  50. // This check is a bit arbitrary, but should protect us from most shenanigans:
  51. if (size.width() >= INT16_MAX || size.height() >= INT16_MAX || scale_factor < 1 || scale_factor > 4)
  52. return true;
  53. // In contrast, this check is absolutely necessary:
  54. size_t pitch = Bitmap::minimum_pitch(size.width() * scale_factor, format);
  55. return Checked<size_t>::multiplication_would_overflow(pitch, size.height() * scale_factor);
  56. }
  57. ErrorOr<NonnullRefPtr<Bitmap>> Bitmap::try_create(BitmapFormat format, IntSize const& size, int scale_factor)
  58. {
  59. auto backing_store = TRY(Bitmap::allocate_backing_store(format, size, scale_factor));
  60. return AK::adopt_nonnull_ref_or_enomem(new (nothrow) Bitmap(format, size, scale_factor, backing_store));
  61. }
  62. ErrorOr<NonnullRefPtr<Bitmap>> Bitmap::try_create_shareable(BitmapFormat format, IntSize const& size, int scale_factor)
  63. {
  64. if (size_would_overflow(format, size, scale_factor))
  65. return Error::from_string_literal("Gfx::Bitmap::try_create_shareable size overflow");
  66. auto const pitch = minimum_pitch(size.width() * scale_factor, format);
  67. auto const data_size = size_in_bytes(pitch, size.height() * scale_factor);
  68. auto buffer = TRY(Core::AnonymousBuffer::create_with_size(round_up_to_power_of_two(data_size, PAGE_SIZE)));
  69. auto bitmap = TRY(Bitmap::try_create_with_anonymous_buffer(format, buffer, size, scale_factor, {}));
  70. return bitmap;
  71. }
  72. Bitmap::Bitmap(BitmapFormat format, IntSize const& size, int scale_factor, BackingStore const& backing_store)
  73. : m_size(size)
  74. , m_scale(scale_factor)
  75. , m_data(backing_store.data)
  76. , m_pitch(backing_store.pitch)
  77. , m_format(format)
  78. {
  79. VERIFY(!m_size.is_empty());
  80. VERIFY(!size_would_overflow(format, size, scale_factor));
  81. VERIFY(m_data);
  82. VERIFY(backing_store.size_in_bytes == size_in_bytes());
  83. allocate_palette_from_format(format, {});
  84. m_needs_munmap = true;
  85. }
  86. ErrorOr<NonnullRefPtr<Bitmap>> Bitmap::try_create_wrapper(BitmapFormat format, IntSize const& size, int scale_factor, size_t pitch, void* data)
  87. {
  88. if (size_would_overflow(format, size, scale_factor))
  89. return Error::from_string_literal("Gfx::Bitmap::try_create_wrapper size overflow");
  90. return adopt_ref(*new Bitmap(format, size, scale_factor, pitch, data));
  91. }
  92. ErrorOr<NonnullRefPtr<Bitmap>> Bitmap::try_load_from_file(StringView path, int scale_factor)
  93. {
  94. if (scale_factor > 1 && path.starts_with("/res/"sv)) {
  95. LexicalPath lexical_path { path };
  96. StringBuilder highdpi_icon_path;
  97. TRY(highdpi_icon_path.try_appendff("{}/{}-{}x.{}", lexical_path.dirname(), lexical_path.title(), scale_factor, lexical_path.extension()));
  98. auto highdpi_icon_string = highdpi_icon_path.string_view();
  99. auto fd = TRY(Core::System::open(highdpi_icon_string, O_RDONLY));
  100. auto bitmap = TRY(try_load_from_fd_and_close(fd, highdpi_icon_string));
  101. if (bitmap->width() % scale_factor != 0 || bitmap->height() % scale_factor != 0)
  102. return Error::from_string_literal("Bitmap::try_load_from_file: HighDPI image size should be divisible by scale factor");
  103. bitmap->m_size.set_width(bitmap->width() / scale_factor);
  104. bitmap->m_size.set_height(bitmap->height() / scale_factor);
  105. bitmap->m_scale = scale_factor;
  106. return bitmap;
  107. }
  108. auto fd = TRY(Core::System::open(path, O_RDONLY));
  109. return try_load_from_fd_and_close(fd, path);
  110. }
  111. ErrorOr<NonnullRefPtr<Bitmap>> Bitmap::try_load_from_fd_and_close(int fd, StringView path)
  112. {
  113. auto file = TRY(Core::MappedFile::map_from_fd_and_close(fd, path));
  114. if (auto decoder = ImageDecoder::try_create(file->bytes())) {
  115. auto frame = TRY(decoder->frame(0));
  116. if (auto& bitmap = frame.image)
  117. return bitmap.release_nonnull();
  118. }
  119. return Error::from_string_literal("Gfx::Bitmap unable to load from fd");
  120. }
  121. Bitmap::Bitmap(BitmapFormat format, IntSize const& size, int scale_factor, size_t pitch, void* data)
  122. : m_size(size)
  123. , m_scale(scale_factor)
  124. , m_data(data)
  125. , m_pitch(pitch)
  126. , m_format(format)
  127. {
  128. VERIFY(pitch >= minimum_pitch(size.width() * scale_factor, format));
  129. VERIFY(!size_would_overflow(format, size, scale_factor));
  130. // FIXME: assert that `data` is actually long enough!
  131. allocate_palette_from_format(format, {});
  132. }
  133. static bool check_size(IntSize const& size, int scale_factor, BitmapFormat format, unsigned actual_size)
  134. {
  135. // FIXME: Code duplication of size_in_bytes() and m_pitch
  136. unsigned expected_size_min = Bitmap::minimum_pitch(size.width() * scale_factor, format) * size.height() * scale_factor;
  137. unsigned expected_size_max = round_up_to_power_of_two(expected_size_min, PAGE_SIZE);
  138. if (expected_size_min > actual_size || actual_size > expected_size_max) {
  139. // Getting here is most likely an error.
  140. dbgln("Constructing a shared bitmap for format {} and size {} @ {}x, which demands {} bytes, which rounds up to at most {}.",
  141. static_cast<int>(format),
  142. size,
  143. scale_factor,
  144. expected_size_min,
  145. expected_size_max);
  146. dbgln("However, we were given {} bytes, which is outside this range?! Refusing cowardly.", actual_size);
  147. return false;
  148. }
  149. return true;
  150. }
  151. ErrorOr<NonnullRefPtr<Bitmap>> Bitmap::try_create_with_anonymous_buffer(BitmapFormat format, Core::AnonymousBuffer buffer, IntSize const& size, int scale_factor, Vector<ARGB32> const& palette)
  152. {
  153. if (size_would_overflow(format, size, scale_factor))
  154. return Error::from_string_literal("Gfx::Bitmap::try_create_with_anonymous_buffer size overflow");
  155. return adopt_nonnull_ref_or_enomem(new (nothrow) Bitmap(format, move(buffer), size, scale_factor, palette));
  156. }
  157. /// Read a bitmap as described by:
  158. /// - actual size
  159. /// - width
  160. /// - height
  161. /// - scale_factor
  162. /// - format
  163. /// - palette count
  164. /// - palette data (= palette count * BGRA8888)
  165. /// - image data (= actual size * u8)
  166. ErrorOr<NonnullRefPtr<Bitmap>> Bitmap::try_create_from_serialized_byte_buffer(ByteBuffer&& buffer)
  167. {
  168. InputMemoryStream stream { buffer };
  169. size_t actual_size;
  170. unsigned width;
  171. unsigned height;
  172. unsigned scale_factor;
  173. BitmapFormat format;
  174. unsigned palette_size;
  175. Vector<ARGB32> palette;
  176. auto read = [&]<typename T>(T& value) {
  177. if (stream.read({ &value, sizeof(T) }) != sizeof(T))
  178. return false;
  179. return true;
  180. };
  181. if (!read(actual_size) || !read(width) || !read(height) || !read(scale_factor) || !read(format) || !read(palette_size))
  182. return Error::from_string_literal("Gfx::Bitmap::try_create_from_serialized_byte_buffer: decode failed");
  183. if (format > BitmapFormat::BGRA8888 || format < BitmapFormat::Indexed1)
  184. return Error::from_string_literal("Gfx::Bitmap::try_create_from_serialized_byte_buffer: decode failed");
  185. if (!check_size({ width, height }, scale_factor, format, actual_size))
  186. return Error::from_string_literal("Gfx::Bitmap::try_create_from_serialized_byte_buffer: decode failed");
  187. palette.ensure_capacity(palette_size);
  188. for (size_t i = 0; i < palette_size; ++i) {
  189. if (!read(palette[i]))
  190. return Error::from_string_literal("Gfx::Bitmap::try_create_from_serialized_byte_buffer: decode failed");
  191. }
  192. if (stream.remaining() < actual_size)
  193. return Error::from_string_literal("Gfx::Bitmap::try_create_from_serialized_byte_buffer: decode failed");
  194. auto data = stream.bytes().slice(stream.offset(), actual_size);
  195. auto bitmap = TRY(Bitmap::try_create(format, { width, height }, scale_factor));
  196. bitmap->m_palette = new ARGB32[palette_size];
  197. memcpy(bitmap->m_palette, palette.data(), palette_size * sizeof(ARGB32));
  198. data.copy_to({ bitmap->scanline(0), bitmap->size_in_bytes() });
  199. return bitmap;
  200. }
  201. ByteBuffer Bitmap::serialize_to_byte_buffer() const
  202. {
  203. // FIXME: Somehow handle possible OOM situation here.
  204. auto buffer = ByteBuffer::create_uninitialized(sizeof(size_t) + 4 * sizeof(unsigned) + sizeof(BitmapFormat) + sizeof(ARGB32) * palette_size(m_format) + size_in_bytes()).release_value_but_fixme_should_propagate_errors();
  205. OutputMemoryStream stream { buffer };
  206. auto write = [&]<typename T>(T value) {
  207. if (stream.write({ &value, sizeof(T) }) != sizeof(T))
  208. return false;
  209. return true;
  210. };
  211. auto palette = palette_to_vector();
  212. if (!write(size_in_bytes()) || !write((unsigned)size().width()) || !write((unsigned)size().height()) || !write((unsigned)scale()) || !write(m_format) || !write((unsigned)palette.size()))
  213. return {};
  214. for (auto& p : palette) {
  215. if (!write(p))
  216. return {};
  217. }
  218. auto size = size_in_bytes();
  219. VERIFY(stream.remaining() == size);
  220. if (stream.write({ scanline(0), size }) != size)
  221. return {};
  222. return buffer;
  223. }
  224. Bitmap::Bitmap(BitmapFormat format, Core::AnonymousBuffer buffer, IntSize const& size, int scale_factor, Vector<ARGB32> const& palette)
  225. : m_size(size)
  226. , m_scale(scale_factor)
  227. , m_data(buffer.data<void>())
  228. , m_pitch(minimum_pitch(size.width() * scale_factor, format))
  229. , m_format(format)
  230. , m_buffer(move(buffer))
  231. {
  232. VERIFY(!is_indexed() || !palette.is_empty());
  233. VERIFY(!size_would_overflow(format, size, scale_factor));
  234. if (is_indexed(m_format))
  235. allocate_palette_from_format(m_format, palette);
  236. }
  237. ErrorOr<NonnullRefPtr<Gfx::Bitmap>> Bitmap::clone() const
  238. {
  239. auto new_bitmap = TRY(Bitmap::try_create(format(), size(), scale()));
  240. VERIFY(size_in_bytes() == new_bitmap->size_in_bytes());
  241. memcpy(new_bitmap->scanline(0), scanline(0), size_in_bytes());
  242. return new_bitmap;
  243. }
  244. ErrorOr<NonnullRefPtr<Gfx::Bitmap>> Bitmap::rotated(Gfx::RotationDirection rotation_direction) const
  245. {
  246. auto new_bitmap = TRY(Gfx::Bitmap::try_create(this->format(), { height(), width() }, scale()));
  247. auto w = this->physical_width();
  248. auto h = this->physical_height();
  249. for (int i = 0; i < w; i++) {
  250. for (int j = 0; j < h; j++) {
  251. Color color;
  252. if (rotation_direction == Gfx::RotationDirection::CounterClockwise)
  253. color = this->get_pixel(w - i - 1, j);
  254. else
  255. color = this->get_pixel(i, h - j - 1);
  256. new_bitmap->set_pixel(j, i, color);
  257. }
  258. }
  259. return new_bitmap;
  260. }
  261. ErrorOr<NonnullRefPtr<Gfx::Bitmap>> Bitmap::flipped(Gfx::Orientation orientation) const
  262. {
  263. auto new_bitmap = TRY(Gfx::Bitmap::try_create(this->format(), { width(), height() }, scale()));
  264. auto w = this->physical_width();
  265. auto h = this->physical_height();
  266. for (int i = 0; i < w; i++) {
  267. for (int j = 0; j < h; j++) {
  268. Color color = this->get_pixel(i, j);
  269. if (orientation == Orientation::Vertical)
  270. new_bitmap->set_pixel(i, h - j - 1, color);
  271. else
  272. new_bitmap->set_pixel(w - i - 1, j, color);
  273. }
  274. }
  275. return new_bitmap;
  276. }
  277. ErrorOr<NonnullRefPtr<Gfx::Bitmap>> Bitmap::scaled(int sx, int sy) const
  278. {
  279. VERIFY(sx >= 0 && sy >= 0);
  280. if (sx == 1 && sy == 1)
  281. return NonnullRefPtr { *this };
  282. auto new_bitmap = TRY(Gfx::Bitmap::try_create(format(), { width() * sx, height() * sy }, scale()));
  283. auto old_width = physical_width();
  284. auto old_height = physical_height();
  285. for (int y = 0; y < old_height; y++) {
  286. for (int x = 0; x < old_width; x++) {
  287. auto color = get_pixel(x, y);
  288. auto base_x = x * sx;
  289. auto base_y = y * sy;
  290. for (int new_y = base_y; new_y < base_y + sy; new_y++) {
  291. for (int new_x = base_x; new_x < base_x + sx; new_x++) {
  292. new_bitmap->set_pixel(new_x, new_y, color);
  293. }
  294. }
  295. }
  296. }
  297. return new_bitmap;
  298. }
  299. // http://fourier.eng.hmc.edu/e161/lectures/resize/node3.html
  300. ErrorOr<NonnullRefPtr<Gfx::Bitmap>> Bitmap::scaled(float sx, float sy) const
  301. {
  302. VERIFY(sx >= 0.0f && sy >= 0.0f);
  303. if (floorf(sx) == sx && floorf(sy) == sy)
  304. return scaled(static_cast<int>(sx), static_cast<int>(sy));
  305. int scaled_width = (int)ceilf(sx * (float)width());
  306. int scaled_height = (int)ceilf(sy * (float)height());
  307. auto new_bitmap = TRY(Gfx::Bitmap::try_create(format(), { scaled_width, scaled_height }, scale()));
  308. auto old_width = physical_width();
  309. auto old_height = physical_height();
  310. auto new_width = new_bitmap->physical_width();
  311. auto new_height = new_bitmap->physical_height();
  312. // The interpolation goes out of bounds on the bottom- and right-most edges.
  313. // We handle those in two specialized loops not only to make them faster, but
  314. // also to avoid four branch checks for every pixel.
  315. for (int y = 0; y < new_height - 1; y++) {
  316. for (int x = 0; x < new_width - 1; x++) {
  317. auto p = static_cast<float>(x) * static_cast<float>(old_width - 1) / static_cast<float>(new_width - 1);
  318. auto q = static_cast<float>(y) * static_cast<float>(old_height - 1) / static_cast<float>(new_height - 1);
  319. int i = floorf(p);
  320. int j = floorf(q);
  321. float u = p - static_cast<float>(i);
  322. float v = q - static_cast<float>(j);
  323. auto a = get_pixel(i, j);
  324. auto b = get_pixel(i + 1, j);
  325. auto c = get_pixel(i, j + 1);
  326. auto d = get_pixel(i + 1, j + 1);
  327. auto e = a.interpolate(b, u);
  328. auto f = c.interpolate(d, u);
  329. auto color = e.interpolate(f, v);
  330. new_bitmap->set_pixel(x, y, color);
  331. }
  332. }
  333. // Bottom strip (excluding last pixel)
  334. auto old_bottom_y = old_height - 1;
  335. auto new_bottom_y = new_height - 1;
  336. for (int x = 0; x < new_width - 1; x++) {
  337. auto p = static_cast<float>(x) * static_cast<float>(old_width - 1) / static_cast<float>(new_width - 1);
  338. int i = floorf(p);
  339. float u = p - static_cast<float>(i);
  340. auto a = get_pixel(i, old_bottom_y);
  341. auto b = get_pixel(i + 1, old_bottom_y);
  342. auto color = a.interpolate(b, u);
  343. new_bitmap->set_pixel(x, new_bottom_y, color);
  344. }
  345. // Right strip (excluding last pixel)
  346. auto old_right_x = old_width - 1;
  347. auto new_right_x = new_width - 1;
  348. for (int y = 0; y < new_height - 1; y++) {
  349. auto q = static_cast<float>(y) * static_cast<float>(old_height - 1) / static_cast<float>(new_height - 1);
  350. int j = floorf(q);
  351. float v = q - static_cast<float>(j);
  352. auto c = get_pixel(old_right_x, j);
  353. auto d = get_pixel(old_right_x, j + 1);
  354. auto color = c.interpolate(d, v);
  355. new_bitmap->set_pixel(new_right_x, y, color);
  356. }
  357. // Bottom-right pixel
  358. new_bitmap->set_pixel(new_width - 1, new_height - 1, get_pixel(physical_width() - 1, physical_height() - 1));
  359. return new_bitmap;
  360. }
  361. ErrorOr<NonnullRefPtr<Gfx::Bitmap>> Bitmap::cropped(Gfx::IntRect crop) const
  362. {
  363. auto new_bitmap = TRY(Gfx::Bitmap::try_create(format(), { crop.width(), crop.height() }, 1));
  364. for (int y = 0; y < crop.height(); ++y) {
  365. for (int x = 0; x < crop.width(); ++x) {
  366. int global_x = x + crop.left();
  367. int global_y = y + crop.top();
  368. if (global_x >= physical_width() || global_y >= physical_height() || global_x < 0 || global_y < 0) {
  369. new_bitmap->set_pixel(x, y, Gfx::Color::Black);
  370. } else {
  371. new_bitmap->set_pixel(x, y, get_pixel(global_x, global_y));
  372. }
  373. }
  374. }
  375. return new_bitmap;
  376. }
  377. ErrorOr<NonnullRefPtr<Bitmap>> Bitmap::to_bitmap_backed_by_anonymous_buffer() const
  378. {
  379. if (m_buffer.is_valid())
  380. return NonnullRefPtr { *this };
  381. auto buffer = TRY(Core::AnonymousBuffer::create_with_size(round_up_to_power_of_two(size_in_bytes(), PAGE_SIZE)));
  382. auto bitmap = TRY(Bitmap::try_create_with_anonymous_buffer(m_format, move(buffer), size(), scale(), palette_to_vector()));
  383. memcpy(bitmap->scanline(0), scanline(0), size_in_bytes());
  384. return bitmap;
  385. }
  386. void Bitmap::invert()
  387. {
  388. for (auto y = 0; y < height(); y++) {
  389. for (auto x = 0; x < width(); x++)
  390. set_pixel(x, y, get_pixel(x, y).inverted());
  391. }
  392. }
  393. Bitmap::~Bitmap()
  394. {
  395. if (m_needs_munmap) {
  396. int rc = munmap(m_data, size_in_bytes());
  397. VERIFY(rc == 0);
  398. }
  399. m_data = nullptr;
  400. delete[] m_palette;
  401. }
  402. void Bitmap::set_mmap_name([[maybe_unused]] String const& name)
  403. {
  404. VERIFY(m_needs_munmap);
  405. #ifdef __serenity__
  406. ::set_mmap_name(m_data, size_in_bytes(), name.characters());
  407. #endif
  408. }
  409. void Bitmap::fill(Color color)
  410. {
  411. VERIFY(!is_indexed(m_format));
  412. for (int y = 0; y < physical_height(); ++y) {
  413. auto* scanline = this->scanline(y);
  414. fast_u32_fill(scanline, color.value(), physical_width());
  415. }
  416. }
  417. void Bitmap::set_volatile()
  418. {
  419. if (m_volatile)
  420. return;
  421. #ifdef __serenity__
  422. int rc = madvise(m_data, size_in_bytes(), MADV_SET_VOLATILE);
  423. if (rc < 0) {
  424. perror("madvise(MADV_SET_VOLATILE)");
  425. VERIFY_NOT_REACHED();
  426. }
  427. #endif
  428. m_volatile = true;
  429. }
  430. [[nodiscard]] bool Bitmap::set_nonvolatile(bool& was_purged)
  431. {
  432. if (!m_volatile) {
  433. was_purged = false;
  434. return true;
  435. }
  436. #ifdef __serenity__
  437. int rc = madvise(m_data, size_in_bytes(), MADV_SET_NONVOLATILE);
  438. if (rc < 0) {
  439. if (errno == ENOMEM) {
  440. was_purged = true;
  441. return false;
  442. }
  443. perror("madvise(MADV_SET_NONVOLATILE)");
  444. VERIFY_NOT_REACHED();
  445. }
  446. was_purged = rc != 0;
  447. #endif
  448. m_volatile = false;
  449. return true;
  450. }
  451. Gfx::ShareableBitmap Bitmap::to_shareable_bitmap() const
  452. {
  453. auto bitmap_or_error = to_bitmap_backed_by_anonymous_buffer();
  454. if (bitmap_or_error.is_error())
  455. return {};
  456. return Gfx::ShareableBitmap { bitmap_or_error.release_value_but_fixme_should_propagate_errors(), Gfx::ShareableBitmap::ConstructWithKnownGoodBitmap };
  457. }
  458. ErrorOr<BackingStore> Bitmap::allocate_backing_store(BitmapFormat format, IntSize const& size, int scale_factor)
  459. {
  460. if (size_would_overflow(format, size, scale_factor))
  461. return Error::from_string_literal("Gfx::Bitmap backing store size overflow");
  462. auto const pitch = minimum_pitch(size.width() * scale_factor, format);
  463. auto const data_size_in_bytes = size_in_bytes(pitch, size.height() * scale_factor);
  464. int map_flags = MAP_ANONYMOUS | MAP_PRIVATE;
  465. #ifdef __serenity__
  466. map_flags |= MAP_PURGEABLE;
  467. void* data = mmap_with_name(nullptr, data_size_in_bytes, PROT_READ | PROT_WRITE, map_flags, 0, 0, String::formatted("GraphicsBitmap [{}]", size).characters());
  468. #else
  469. void* data = mmap(nullptr, data_size_in_bytes, PROT_READ | PROT_WRITE, map_flags, -1, 0);
  470. #endif
  471. if (data == MAP_FAILED)
  472. return Error::from_errno(errno);
  473. return BackingStore { data, pitch, data_size_in_bytes };
  474. }
  475. void Bitmap::allocate_palette_from_format(BitmapFormat format, Vector<ARGB32> const& source_palette)
  476. {
  477. size_t size = palette_size(format);
  478. if (size == 0)
  479. return;
  480. m_palette = new ARGB32[size];
  481. if (!source_palette.is_empty()) {
  482. VERIFY(source_palette.size() == size);
  483. memcpy(m_palette, source_palette.data(), size * sizeof(ARGB32));
  484. }
  485. }
  486. Vector<ARGB32> Bitmap::palette_to_vector() const
  487. {
  488. Vector<ARGB32> vector;
  489. auto size = palette_size(m_format);
  490. vector.ensure_capacity(size);
  491. for (size_t i = 0; i < size; ++i)
  492. vector.unchecked_append(palette_color(i).value());
  493. return vector;
  494. }
  495. bool Bitmap::visually_equals(Bitmap const& other) const
  496. {
  497. auto own_width = width();
  498. auto own_height = height();
  499. if (other.width() != own_width || other.height() != own_height)
  500. return false;
  501. for (auto y = 0; y < own_height; ++y) {
  502. for (auto x = 0; x < own_width; ++x) {
  503. if (get_pixel(x, y) != other.get_pixel(x, y))
  504. return false;
  505. }
  506. }
  507. return true;
  508. }
  509. Optional<Color> Bitmap::solid_color(u8 alpha_threshold) const
  510. {
  511. Optional<Color> color;
  512. for (auto y = 0; y < height(); ++y) {
  513. for (auto x = 0; x < width(); ++x) {
  514. auto const& pixel = get_pixel(x, y);
  515. if (has_alpha_channel() && pixel.alpha() <= alpha_threshold)
  516. continue;
  517. if (!color.has_value())
  518. color = pixel;
  519. else if (pixel != color)
  520. return {};
  521. }
  522. }
  523. return color;
  524. }
  525. }