GridFormattingContext.cpp 112 KB

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  1. /*
  2. * Copyright (c) 2023, Aliaksandr Kalenik <kalenik.aliaksandr@gmail.com>
  3. * Copyright (c) 2022-2023, Martin Falisse <mfalisse@outlook.com>
  4. *
  5. * SPDX-License-Identifier: BSD-2-Clause
  6. */
  7. #include <LibWeb/DOM/Node.h>
  8. #include <LibWeb/Layout/Box.h>
  9. #include <LibWeb/Layout/GridFormattingContext.h>
  10. #include <LibWeb/Layout/ReplacedBox.h>
  11. namespace Web::Layout {
  12. GridFormattingContext::GridTrack GridFormattingContext::GridTrack::create_from_definition(CSS::ExplicitGridTrack const& definition)
  13. {
  14. // NOTE: repeat() is expected to be expanded beforehand.
  15. VERIFY(!definition.is_repeat());
  16. if (definition.is_fit_content()) {
  17. return GridTrack {
  18. .min_track_sizing_function = CSS::GridSize::make_auto(),
  19. .max_track_sizing_function = definition.fit_content().max_grid_size(),
  20. };
  21. }
  22. if (definition.is_minmax()) {
  23. return GridTrack {
  24. .min_track_sizing_function = definition.minmax().min_grid_size(),
  25. .max_track_sizing_function = definition.minmax().max_grid_size(),
  26. };
  27. }
  28. // https://drafts.csswg.org/css-grid-2/#algo-terms
  29. // min track sizing function:
  30. // If the track was sized with a minmax() function, this is the first argument to that function.
  31. // If the track was sized with a <flex> value or fit-content() function, auto. Otherwise, the track’s sizing function.
  32. auto min_track_sizing_function = definition.grid_size();
  33. if (min_track_sizing_function.is_flexible_length()) {
  34. min_track_sizing_function = CSS::GridSize::make_auto();
  35. }
  36. auto max_track_sizing_function = definition.grid_size();
  37. return GridTrack {
  38. .min_track_sizing_function = min_track_sizing_function,
  39. .max_track_sizing_function = max_track_sizing_function,
  40. };
  41. }
  42. GridFormattingContext::GridTrack GridFormattingContext::GridTrack::create_auto()
  43. {
  44. return GridTrack {
  45. .min_track_sizing_function = CSS::GridSize::make_auto(),
  46. .max_track_sizing_function = CSS::GridSize::make_auto(),
  47. };
  48. }
  49. GridFormattingContext::GridTrack GridFormattingContext::GridTrack::create_gap(CSSPixels size)
  50. {
  51. return GridTrack {
  52. .min_track_sizing_function = CSS::GridSize(CSS::Length::make_px(size)),
  53. .max_track_sizing_function = CSS::GridSize(CSS::Length::make_px(size)),
  54. .base_size = size,
  55. .is_gap = true,
  56. };
  57. }
  58. GridFormattingContext::GridFormattingContext(LayoutState& state, Box const& grid_container, FormattingContext* parent)
  59. : FormattingContext(Type::Grid, state, grid_container, parent)
  60. {
  61. }
  62. GridFormattingContext::~GridFormattingContext() = default;
  63. CSSPixels GridFormattingContext::resolve_definite_track_size(CSS::GridSize const& grid_size, AvailableSpace const& available_space)
  64. {
  65. VERIFY(grid_size.is_definite());
  66. switch (grid_size.type()) {
  67. case CSS::GridSize::Type::LengthPercentage: {
  68. if (!grid_size.length_percentage().is_auto()) {
  69. return grid_size.css_size().to_px(grid_container(), available_space.width.to_px_or_zero());
  70. }
  71. break;
  72. }
  73. default:
  74. VERIFY_NOT_REACHED();
  75. }
  76. return 0;
  77. }
  78. int GridFormattingContext::count_of_repeated_auto_fill_or_fit_tracks(GridDimension dimension)
  79. {
  80. // https://www.w3.org/TR/css-grid-2/#auto-repeat
  81. // 7.2.3.2. Repeat-to-fill: auto-fill and auto-fit repetitions
  82. // On a subgridded axis, the auto-fill keyword is only valid once per <line-name-list>, and repeats
  83. // enough times for the name list to match the subgrid’s specified grid span (falling back to 0 if
  84. // the span is already fulfilled).
  85. // Otherwise on a standalone axis, when auto-fill is given as the repetition number
  86. // If the grid container has a definite size or max size in the relevant axis, then the number of
  87. // repetitions is the largest possible positive integer that does not cause the grid to overflow the
  88. // content box of its grid container
  89. auto const& grid_computed_values = grid_container().computed_values();
  90. auto const& track_list = dimension == GridDimension::Row ? grid_computed_values.grid_template_rows().track_list() : grid_computed_values.grid_template_columns().track_list();
  91. CSSPixels size_of_repeated_tracks = 0;
  92. // (treating each track as its max track sizing function if that is definite or its minimum track sizing
  93. // function otherwise, flooring the max track sizing function by the min track sizing function if both
  94. // are definite, and taking gap into account)
  95. auto const& repeat_track_list = track_list.first().repeat().grid_track_size_list().track_list();
  96. for (auto const& explicit_grid_track : repeat_track_list) {
  97. auto const& track_sizing_function = explicit_grid_track;
  98. CSSPixels track_size = 0;
  99. if (track_sizing_function.is_minmax()) {
  100. auto const& min_size = track_sizing_function.minmax().min_grid_size();
  101. auto const& max_size = track_sizing_function.minmax().max_grid_size();
  102. if (max_size.is_definite()) {
  103. track_size = resolve_definite_track_size(max_size, *m_available_space);
  104. if (min_size.is_definite())
  105. track_size = min(track_size, resolve_definite_track_size(min_size, *m_available_space));
  106. } else if (min_size.is_definite()) {
  107. track_size = resolve_definite_track_size(min_size, *m_available_space);
  108. } else {
  109. VERIFY_NOT_REACHED();
  110. }
  111. } else {
  112. track_size = resolve_definite_track_size(track_sizing_function.grid_size(), *m_available_space);
  113. }
  114. size_of_repeated_tracks += track_size;
  115. }
  116. if (size_of_repeated_tracks == 0)
  117. return 0;
  118. auto const& available_size = dimension == GridDimension::Column ? m_available_space->width : m_available_space->height;
  119. auto free_space = get_free_space(*m_available_space, dimension).to_px_or_zero();
  120. auto const& gap = dimension == GridDimension::Column ? grid_computed_values.column_gap() : grid_computed_values.row_gap();
  121. auto gap_px = gap.to_px(grid_container(), available_size.to_px_or_zero());
  122. auto size_of_repeated_tracks_with_gap = size_of_repeated_tracks + repeat_track_list.size() * gap_px;
  123. // If any number of repetitions would overflow, then 1 repetition.
  124. if (free_space <= size_of_repeated_tracks_with_gap) {
  125. return 1;
  126. }
  127. // Otherwise, if the grid container has a definite min size in the relevant axis, the number of repetitions is the
  128. // smallest possible positive integer that fulfills that minimum requirement
  129. else if (available_size.is_definite()) {
  130. // NOTE: Gap size is added to free space to compensate for the fact that the last track does not have a gap
  131. auto number_of_repetitions = ((free_space + gap_px) / size_of_repeated_tracks_with_gap).to_int();
  132. return max(1, number_of_repetitions);
  133. }
  134. // Otherwise, the specified track list repeats only once.
  135. return 1;
  136. // For the purpose of finding the number of auto-repeated tracks in a standalone axis, the UA must
  137. // floor the track size to a UA-specified value to avoid division by zero. It is suggested that this
  138. // floor be 1px.
  139. }
  140. GridFormattingContext::PlacementPosition GridFormattingContext::resolve_grid_position(Box const& child_box, GridDimension const dimension)
  141. {
  142. auto const& computed_values = child_box.computed_values();
  143. auto const& placement_start = dimension == GridDimension::Row ? computed_values.grid_row_start() : computed_values.grid_column_start();
  144. auto const& placement_end = dimension == GridDimension::Row ? computed_values.grid_row_end() : computed_values.grid_column_end();
  145. PlacementPosition result;
  146. if (placement_start.has_line_number() && placement_start.line_number() > 0)
  147. result.start = placement_start.line_number() - 1;
  148. else if (placement_start.has_line_number()) {
  149. auto explicit_line_count = dimension == GridDimension::Row ? m_explicit_rows_line_count : m_explicit_columns_line_count;
  150. result.start = explicit_line_count + placement_start.line_number();
  151. }
  152. if (placement_end.has_line_number())
  153. result.end = placement_end.line_number() - 1;
  154. if (result.end < 0) {
  155. if (dimension == GridDimension::Row)
  156. result.end = m_occupation_grid.row_count() + result.end + 2;
  157. else
  158. result.end = m_occupation_grid.column_count() + result.end + 2;
  159. }
  160. if (placement_start.has_line_number() && placement_end.is_span())
  161. result.span = placement_end.span();
  162. if (placement_end.has_line_number() && placement_start.is_span()) {
  163. result.span = placement_start.span();
  164. result.start = result.end - result.span;
  165. // FIXME: Remove me once have implemented spans overflowing into negative indexes, e.g., grid-row: span 2 / 1
  166. if (result.start < 0)
  167. result.start = 0;
  168. }
  169. if (placement_end.has_identifier()) {
  170. auto area_end_line_name = MUST(String::formatted("{}-end", placement_end.identifier()));
  171. if (auto area_end_line_index = get_line_index_by_line_name(dimension, area_end_line_name); area_end_line_index.has_value()) {
  172. result.end = area_end_line_index.value();
  173. } else if (auto line_name_index = get_line_index_by_line_name(dimension, placement_end.identifier()); line_name_index.has_value()) {
  174. result.end = line_name_index.value();
  175. } else {
  176. result.end = 1;
  177. }
  178. result.start = result.end - 1;
  179. }
  180. if (placement_start.has_identifier()) {
  181. auto area_start_line_name = MUST(String::formatted("{}-start", placement_start.identifier()));
  182. if (auto area_start_line_index = get_line_index_by_line_name(dimension, area_start_line_name); area_start_line_index.has_value()) {
  183. result.start = area_start_line_index.value();
  184. } else if (auto line_name_index = get_line_index_by_line_name(dimension, placement_start.identifier()); line_name_index.has_value()) {
  185. result.start = line_name_index.value();
  186. } else {
  187. result.start = 0;
  188. }
  189. }
  190. if (placement_start.is_positioned() && placement_end.is_positioned()) {
  191. if (result.start > result.end)
  192. swap(result.start, result.end);
  193. if (result.start != result.end)
  194. result.span = result.end - result.start;
  195. }
  196. // FIXME: Have yet to find the spec for this.
  197. if (!placement_start.is_positioned() && placement_end.is_positioned() && result.end == 0)
  198. result.start = 0;
  199. // If the placement contains two spans, remove the one contributed by the end grid-placement
  200. // property.
  201. if (placement_start.is_span() && placement_end.is_span())
  202. result.span = placement_start.span();
  203. return result;
  204. }
  205. void GridFormattingContext::place_item_with_row_and_column_position(Box const& child_box)
  206. {
  207. auto row_placement_position = resolve_grid_position(child_box, GridDimension::Row);
  208. auto column_placement_position = resolve_grid_position(child_box, GridDimension::Column);
  209. auto row_start = row_placement_position.start;
  210. auto row_span = row_placement_position.span;
  211. auto column_start = column_placement_position.start;
  212. auto column_span = column_placement_position.span;
  213. record_grid_placement(GridItem {
  214. .box = child_box,
  215. .row = row_start,
  216. .row_span = row_span,
  217. .column = column_start,
  218. .column_span = column_span });
  219. }
  220. void GridFormattingContext::place_item_with_row_position(Box const& child_box)
  221. {
  222. auto placement_position = resolve_grid_position(child_box, GridDimension::Row);
  223. auto row_start = placement_position.start;
  224. size_t row_span = placement_position.span;
  225. auto const& grid_column_start = child_box.computed_values().grid_column_start();
  226. int column_start = 0;
  227. size_t column_span = grid_column_start.is_span() ? grid_column_start.span() : 1;
  228. bool found_available_column = false;
  229. for (size_t column_index = column_start; column_index < m_occupation_grid.column_count(); column_index++) {
  230. if (!m_occupation_grid.is_occupied(column_index, row_start)) {
  231. found_available_column = true;
  232. column_start = column_index;
  233. break;
  234. }
  235. }
  236. if (!found_available_column) {
  237. column_start = m_occupation_grid.column_count();
  238. }
  239. record_grid_placement(GridItem {
  240. .box = child_box,
  241. .row = row_start,
  242. .row_span = row_span,
  243. .column = column_start,
  244. .column_span = column_span });
  245. }
  246. void GridFormattingContext::place_item_with_column_position(Box const& child_box, int& auto_placement_cursor_x, int& auto_placement_cursor_y)
  247. {
  248. auto placement_position = resolve_grid_position(child_box, GridDimension::Column);
  249. auto column_start = placement_position.start;
  250. size_t column_span = placement_position.span;
  251. auto const& grid_row_start = child_box.computed_values().grid_row_start();
  252. size_t row_span = grid_row_start.is_span() ? grid_row_start.span() : 1;
  253. // 4.1.1.1. Set the column position of the cursor to the grid item's column-start line. If this is
  254. // less than the previous column position of the cursor, increment the row position by 1.
  255. if (column_start < auto_placement_cursor_x)
  256. auto_placement_cursor_y++;
  257. auto_placement_cursor_x = column_start;
  258. // 4.1.1.2. Increment the cursor's row position until a value is found where the grid item does not
  259. // overlap any occupied grid cells (creating new rows in the implicit grid as necessary).
  260. while (true) {
  261. if (!m_occupation_grid.is_occupied(column_start, auto_placement_cursor_y)) {
  262. break;
  263. }
  264. auto_placement_cursor_y++;
  265. }
  266. // 4.1.1.3. Set the item's row-start line to the cursor's row position, and set the item's row-end
  267. // line according to its span from that position.
  268. record_grid_placement(GridItem {
  269. .box = child_box,
  270. .row = auto_placement_cursor_y,
  271. .row_span = row_span,
  272. .column = column_start,
  273. .column_span = column_span });
  274. }
  275. FoundUnoccupiedPlace OccupationGrid::find_unoccupied_place(GridDimension dimension, int& column_index, int& row_index, int column_span, int row_span) const
  276. {
  277. if (dimension == GridDimension::Column) {
  278. while (row_index <= max_row_index()) {
  279. while (column_index <= max_column_index()) {
  280. auto enough_span_for_span = column_index + column_span - 1 <= max_column_index();
  281. if (enough_span_for_span && !is_occupied(column_index, row_index))
  282. return FoundUnoccupiedPlace::Yes;
  283. column_index++;
  284. }
  285. row_index++;
  286. column_index = min_column_index();
  287. }
  288. } else {
  289. while (column_index <= max_column_index()) {
  290. while (row_index <= max_row_index()) {
  291. auto enough_span_for_span = row_index + row_span - 1 <= max_row_index();
  292. if (enough_span_for_span && !is_occupied(column_index, row_index))
  293. return FoundUnoccupiedPlace::Yes;
  294. row_index++;
  295. }
  296. column_index++;
  297. row_index = min_row_index();
  298. }
  299. }
  300. return FoundUnoccupiedPlace::No;
  301. }
  302. void GridFormattingContext::place_item_with_no_declared_position(Box const& child_box, int& auto_placement_cursor_x, int& auto_placement_cursor_y)
  303. {
  304. auto const& computed_values = child_box.computed_values();
  305. auto const& grid_row_start = computed_values.grid_row_start();
  306. auto const& grid_row_end = computed_values.grid_row_end();
  307. auto const& grid_column_start = computed_values.grid_column_start();
  308. auto const& grid_column_end = computed_values.grid_column_end();
  309. auto column_start = 0;
  310. size_t column_span = 1;
  311. if (grid_column_start.is_span())
  312. column_span = grid_column_start.span();
  313. else if (grid_column_end.is_span())
  314. column_span = grid_column_end.span();
  315. auto row_start = 0;
  316. size_t row_span = 1;
  317. if (grid_row_start.is_span())
  318. row_span = grid_row_start.span();
  319. else if (grid_row_end.is_span())
  320. row_span = grid_row_end.span();
  321. auto const& auto_flow = grid_container().computed_values().grid_auto_flow();
  322. auto dimension = auto_flow.row ? GridDimension::Column : GridDimension::Row;
  323. // 4.1.2.1. Increment the column position of the auto-placement cursor until either this item's grid
  324. // area does not overlap any occupied grid cells, or the cursor's column position, plus the item's
  325. // column span, overflow the number of columns in the implicit grid, as determined earlier in this
  326. // algorithm.
  327. auto found_unoccupied_area = m_occupation_grid.find_unoccupied_place(dimension, auto_placement_cursor_x, auto_placement_cursor_y, column_span, row_span);
  328. // 4.1.2.2. If a non-overlapping position was found in the previous step, set the item's row-start
  329. // and column-start lines to the cursor's position. Otherwise, increment the auto-placement cursor's
  330. // row position (creating new rows in the implicit grid as necessary), set its column position to the
  331. // start-most column line in the implicit grid, and return to the previous step.
  332. if (found_unoccupied_area == FoundUnoccupiedPlace::Yes) {
  333. column_start = auto_placement_cursor_x;
  334. row_start = auto_placement_cursor_y;
  335. auto_placement_cursor_x += column_span - 1;
  336. auto_placement_cursor_y += row_span - 1;
  337. if (dimension == GridDimension::Column) {
  338. auto_placement_cursor_x++;
  339. auto_placement_cursor_y = m_occupation_grid.min_row_index();
  340. } else {
  341. auto_placement_cursor_y++;
  342. auto_placement_cursor_x = m_occupation_grid.min_column_index();
  343. }
  344. } else {
  345. column_start = auto_placement_cursor_x;
  346. row_start = auto_placement_cursor_y;
  347. auto_placement_cursor_x += column_span - 1;
  348. auto_placement_cursor_y += row_span - 1;
  349. }
  350. record_grid_placement(GridItem {
  351. .box = child_box,
  352. .row = row_start,
  353. .row_span = row_span,
  354. .column = column_start,
  355. .column_span = column_span });
  356. }
  357. void GridFormattingContext::record_grid_placement(GridItem grid_item)
  358. {
  359. m_occupation_grid.set_occupied(grid_item.column, grid_item.column + grid_item.column_span, grid_item.row, grid_item.row + grid_item.row_span);
  360. m_grid_items.append(grid_item);
  361. }
  362. void GridFormattingContext::initialize_grid_tracks_from_definition(GridDimension dimension)
  363. {
  364. auto const& grid_computed_values = grid_container().computed_values();
  365. auto const& tracks_definition = dimension == GridDimension::Column ? grid_computed_values.grid_template_columns().track_list() : grid_computed_values.grid_template_rows().track_list();
  366. auto& tracks = dimension == GridDimension::Column ? m_grid_columns : m_grid_rows;
  367. for (auto const& track_definition : tracks_definition) {
  368. int repeat_count = 1;
  369. if (track_definition.is_repeat()) {
  370. if (track_definition.repeat().is_auto_fill() || track_definition.repeat().is_auto_fit())
  371. repeat_count = count_of_repeated_auto_fill_or_fit_tracks(dimension);
  372. else
  373. repeat_count = track_definition.repeat().repeat_count();
  374. }
  375. for (auto _ = 0; _ < repeat_count; _++) {
  376. switch (track_definition.type()) {
  377. case CSS::ExplicitGridTrack::Type::Default:
  378. case CSS::ExplicitGridTrack::Type::FitContent:
  379. case CSS::ExplicitGridTrack::Type::MinMax:
  380. tracks.append(GridTrack::create_from_definition(track_definition));
  381. break;
  382. case CSS::ExplicitGridTrack::Type::Repeat:
  383. for (auto& explicit_grid_track : track_definition.repeat().grid_track_size_list().track_list()) {
  384. tracks.append(GridTrack::create_from_definition(explicit_grid_track));
  385. }
  386. break;
  387. default:
  388. VERIFY_NOT_REACHED();
  389. }
  390. }
  391. }
  392. }
  393. void GridFormattingContext::initialize_grid_tracks_for_columns_and_rows()
  394. {
  395. auto const& grid_computed_values = grid_container().computed_values();
  396. auto const& grid_auto_columns = grid_computed_values.grid_auto_columns().track_list();
  397. size_t implicit_column_index = 0;
  398. // NOTE: If there are implicit tracks created by items with negative indexes they should prepend explicitly defined tracks
  399. auto negative_index_implied_column_tracks_count = abs(m_occupation_grid.min_column_index());
  400. for (int column_index = 0; column_index < negative_index_implied_column_tracks_count; column_index++) {
  401. if (grid_auto_columns.size() > 0) {
  402. auto definition = grid_auto_columns[implicit_column_index % grid_auto_columns.size()];
  403. m_grid_columns.append(GridTrack::create_from_definition(definition));
  404. } else {
  405. m_grid_columns.append(GridTrack::create_auto());
  406. }
  407. implicit_column_index++;
  408. }
  409. initialize_grid_tracks_from_definition(GridDimension::Column);
  410. for (size_t column_index = m_grid_columns.size(); column_index < m_occupation_grid.column_count(); column_index++) {
  411. if (grid_auto_columns.size() > 0) {
  412. auto definition = grid_auto_columns[implicit_column_index % grid_auto_columns.size()];
  413. m_grid_columns.append(GridTrack::create_from_definition(definition));
  414. } else {
  415. m_grid_columns.append(GridTrack::create_auto());
  416. }
  417. implicit_column_index++;
  418. }
  419. auto const& grid_auto_rows = grid_computed_values.grid_auto_rows().track_list();
  420. size_t implicit_row_index = 0;
  421. // NOTE: If there are implicit tracks created by items with negative indexes they should prepend explicitly defined tracks
  422. auto negative_index_implied_row_tracks_count = abs(m_occupation_grid.min_row_index());
  423. for (int row_index = 0; row_index < negative_index_implied_row_tracks_count; row_index++) {
  424. if (grid_auto_rows.size() > 0) {
  425. auto definition = grid_auto_rows[implicit_row_index % grid_auto_rows.size()];
  426. m_grid_rows.append(GridTrack::create_from_definition(definition));
  427. } else {
  428. m_grid_rows.append(GridTrack::create_auto());
  429. }
  430. implicit_row_index++;
  431. }
  432. initialize_grid_tracks_from_definition(GridDimension::Row);
  433. for (size_t row_index = m_grid_rows.size(); row_index < m_occupation_grid.row_count(); row_index++) {
  434. if (grid_auto_rows.size() > 0) {
  435. auto definition = grid_auto_rows[implicit_row_index % grid_auto_rows.size()];
  436. m_grid_rows.append(GridTrack::create_from_definition(definition));
  437. } else {
  438. m_grid_rows.append(GridTrack::create_auto());
  439. }
  440. implicit_row_index++;
  441. }
  442. }
  443. void GridFormattingContext::initialize_gap_tracks(AvailableSpace const& available_space)
  444. {
  445. // https://www.w3.org/TR/css-grid-2/#gutters
  446. // 11.1. Gutters: the row-gap, column-gap, and gap properties
  447. // For the purpose of track sizing, each gutter is treated as an extra, empty, fixed-size track of
  448. // the specified size, which is spanned by any grid items that span across its corresponding grid
  449. // line.
  450. if (!grid_container().computed_values().column_gap().is_auto() && m_grid_columns.size() > 0) {
  451. auto column_gap_width = grid_container().computed_values().column_gap().to_px(grid_container(), available_space.width.to_px_or_zero());
  452. m_column_gap_tracks.ensure_capacity(m_grid_columns.size() - 1);
  453. for (size_t column_index = 0; column_index < m_grid_columns.size(); column_index++) {
  454. m_grid_columns_and_gaps.append(m_grid_columns[column_index]);
  455. if (column_index != m_grid_columns.size() - 1) {
  456. m_column_gap_tracks.append(GridTrack::create_gap(column_gap_width));
  457. m_grid_columns_and_gaps.append(m_column_gap_tracks.last());
  458. }
  459. }
  460. } else {
  461. for (auto& track : m_grid_columns) {
  462. m_grid_columns_and_gaps.append(track);
  463. }
  464. }
  465. if (!grid_container().computed_values().row_gap().is_auto() && m_grid_rows.size() > 0) {
  466. auto row_gap_height = grid_container().computed_values().row_gap().to_px(grid_container(), available_space.height.to_px_or_zero());
  467. m_row_gap_tracks.ensure_capacity(m_grid_rows.size() - 1);
  468. for (size_t row_index = 0; row_index < m_grid_rows.size(); row_index++) {
  469. m_grid_rows_and_gaps.append(m_grid_rows[row_index]);
  470. if (row_index != m_grid_rows.size() - 1) {
  471. m_row_gap_tracks.append(GridTrack::create_gap(row_gap_height));
  472. m_grid_rows_and_gaps.append(m_row_gap_tracks.last());
  473. }
  474. }
  475. } else {
  476. for (auto& track : m_grid_rows) {
  477. m_grid_rows_and_gaps.append(track);
  478. }
  479. }
  480. }
  481. void GridFormattingContext::initialize_track_sizes(GridDimension const dimension)
  482. {
  483. // https://www.w3.org/TR/css-grid-2/#algo-init
  484. // 12.4. Initialize Track Sizes
  485. // Initialize each track’s base size and growth limit.
  486. auto& tracks_and_gaps = dimension == GridDimension::Column ? m_grid_columns_and_gaps : m_grid_rows_and_gaps;
  487. auto& available_size = dimension == GridDimension::Column ? m_available_space->width : m_available_space->height;
  488. for (auto& track : tracks_and_gaps) {
  489. if (track.is_gap)
  490. continue;
  491. if (track.min_track_sizing_function.is_fixed(available_size)) {
  492. track.base_size = track.min_track_sizing_function.css_size().to_px(grid_container(), available_size.to_px_or_zero());
  493. } else if (track.min_track_sizing_function.is_intrinsic(available_size)) {
  494. track.base_size = 0;
  495. }
  496. if (track.max_track_sizing_function.is_fixed(available_size)) {
  497. track.growth_limit = track.max_track_sizing_function.css_size().to_px(grid_container(), available_size.to_px_or_zero());
  498. } else if (track.max_track_sizing_function.is_flexible_length()) {
  499. track.growth_limit = {};
  500. } else if (track.max_track_sizing_function.is_intrinsic(available_size)) {
  501. track.growth_limit = {};
  502. } else {
  503. VERIFY_NOT_REACHED();
  504. }
  505. // In all cases, if the growth limit is less than the base size, increase the growth limit to match
  506. // the base size.
  507. if (track.growth_limit.has_value() && track.growth_limit.value() < track.base_size)
  508. track.growth_limit = track.base_size;
  509. }
  510. }
  511. void GridFormattingContext::resolve_intrinsic_track_sizes(GridDimension const dimension)
  512. {
  513. // https://www.w3.org/TR/css-grid-2/#algo-content
  514. // 12.5. Resolve Intrinsic Track Sizes
  515. // This step resolves intrinsic track sizing functions to absolute lengths. First it resolves those
  516. // sizes based on items that are contained wholly within a single track. Then it gradually adds in
  517. // the space requirements of items that span multiple tracks, evenly distributing the extra space
  518. // across those tracks insofar as possible.
  519. auto& tracks_and_gaps = dimension == GridDimension::Column ? m_grid_columns_and_gaps : m_grid_rows_and_gaps;
  520. // FIXME: 1. Shim baseline-aligned items so their intrinsic size contributions reflect their baseline alignment.
  521. // 2. Size tracks to fit non-spanning items:
  522. increase_sizes_to_accommodate_spanning_items_crossing_content_sized_tracks(dimension, 1);
  523. // 3. Increase sizes to accommodate spanning items crossing content-sized tracks: Next, consider the
  524. // items with a span of 2 that do not span a track with a flexible sizing function.
  525. // Repeat incrementally for items with greater spans until all items have been considered.
  526. size_t max_item_span = 1;
  527. for (auto& item : m_grid_items)
  528. max_item_span = max(item.span(dimension), max_item_span);
  529. for (size_t span = 2; span <= max_item_span; span++)
  530. increase_sizes_to_accommodate_spanning_items_crossing_content_sized_tracks(dimension, span);
  531. // 4. Increase sizes to accommodate spanning items crossing flexible tracks: Next, repeat the previous
  532. // step instead considering (together, rather than grouped by span size) all items that do span a
  533. // track with a flexible sizing function while
  534. increase_sizes_to_accommodate_spanning_items_crossing_flexible_tracks(dimension);
  535. // 5. If any track still has an infinite growth limit (because, for example, it had no items placed in
  536. // it or it is a flexible track), set its growth limit to its base size.
  537. for (auto& track : tracks_and_gaps) {
  538. if (!track.growth_limit.has_value())
  539. track.growth_limit = track.base_size;
  540. }
  541. }
  542. template<typename Match>
  543. void GridFormattingContext::distribute_extra_space_across_spanned_tracks_base_size(GridDimension dimension, CSSPixels item_size_contribution, SpaceDistributionPhase phase, Vector<GridTrack&>& spanned_tracks, Match matcher)
  544. {
  545. auto& available_size = dimension == GridDimension::Column ? m_available_space->width : m_available_space->height;
  546. Vector<GridTrack&> affected_tracks;
  547. for (auto& track : spanned_tracks) {
  548. if (matcher(track))
  549. affected_tracks.append(track);
  550. }
  551. if (affected_tracks.size() == 0)
  552. return;
  553. for (auto& track : affected_tracks)
  554. track.item_incurred_increase = 0;
  555. // 1. Find the space to distribute:
  556. CSSPixels spanned_tracks_sizes_sum = 0;
  557. for (auto& track : spanned_tracks)
  558. spanned_tracks_sizes_sum += track.base_size;
  559. // Subtract the corresponding size of every spanned track from the item’s size contribution to find the item’s
  560. // remaining size contribution.
  561. auto extra_space = max(CSSPixels(0), item_size_contribution - spanned_tracks_sizes_sum);
  562. // 2. Distribute space up to limits:
  563. while (extra_space > 0) {
  564. auto all_frozen = all_of(affected_tracks, [](auto const& track) { return track.base_size_frozen; });
  565. if (all_frozen)
  566. break;
  567. // Find the item-incurred increase for each spanned track with an affected size by: distributing the space
  568. // equally among such tracks, freezing a track’s item-incurred increase as its affected size + item-incurred
  569. // increase reaches its limit
  570. CSSPixels increase_per_track = max(CSSPixels::smallest_positive_value(), extra_space / affected_tracks.size());
  571. for (auto& track : affected_tracks) {
  572. if (track.base_size_frozen)
  573. continue;
  574. auto increase = min(increase_per_track, extra_space);
  575. if (track.growth_limit.has_value()) {
  576. auto maximum_increase = track.growth_limit.value() - track.base_size;
  577. if (track.item_incurred_increase + increase >= maximum_increase) {
  578. track.base_size_frozen = true;
  579. increase = maximum_increase - track.item_incurred_increase;
  580. }
  581. }
  582. track.item_incurred_increase += increase;
  583. extra_space -= increase;
  584. }
  585. }
  586. // 3. Distribute space beyond limits
  587. if (extra_space > 0) {
  588. Vector<GridTrack&> tracks_to_grow_beyond_limits;
  589. // If space remains after all tracks are frozen, unfreeze and continue to
  590. // distribute space to the item-incurred increase of...
  591. if (phase == SpaceDistributionPhase::AccommodateMinimumContribution || phase == SpaceDistributionPhase::AccommodateMinContentContribution) {
  592. // when accommodating minimum contributions or accommodating min-content contributions: any affected track
  593. // that happens to also have an intrinsic max track sizing function
  594. for (auto& track : affected_tracks) {
  595. if (track.max_track_sizing_function.is_intrinsic(available_size))
  596. tracks_to_grow_beyond_limits.append(track);
  597. }
  598. // if there are no such tracks, then all affected tracks.
  599. if (tracks_to_grow_beyond_limits.size() == 0)
  600. tracks_to_grow_beyond_limits = affected_tracks;
  601. }
  602. // FIXME: when accommodating max-content contributions: any affected track that happens to also have a
  603. // max-content max track sizing function; if there are no such tracks, then all affected tracks.
  604. CSSPixels increase_per_track = extra_space / affected_tracks.size();
  605. for (auto& track : affected_tracks) {
  606. auto increase = min(increase_per_track, extra_space);
  607. track.item_incurred_increase += increase;
  608. extra_space -= increase;
  609. }
  610. }
  611. // 4. For each affected track, if the track’s item-incurred increase is larger than the track’s planned increase
  612. // set the track’s planned increase to that value.
  613. for (auto& track : affected_tracks) {
  614. if (track.item_incurred_increase > track.planned_increase)
  615. track.planned_increase = track.item_incurred_increase;
  616. }
  617. }
  618. template<typename Match>
  619. void GridFormattingContext::distribute_extra_space_across_spanned_tracks_growth_limit(CSSPixels item_size_contribution, Vector<GridTrack&>& spanned_tracks, Match matcher)
  620. {
  621. Vector<GridTrack&> affected_tracks;
  622. for (auto& track : spanned_tracks) {
  623. if (matcher(track))
  624. affected_tracks.append(track);
  625. }
  626. for (auto& track : affected_tracks)
  627. track.item_incurred_increase = 0;
  628. if (affected_tracks.size() == 0)
  629. return;
  630. // 1. Find the space to distribute:
  631. CSSPixels spanned_tracks_sizes_sum = 0;
  632. for (auto& track : spanned_tracks) {
  633. if (track.growth_limit.has_value()) {
  634. spanned_tracks_sizes_sum += track.growth_limit.value();
  635. } else {
  636. spanned_tracks_sizes_sum += track.base_size;
  637. }
  638. }
  639. // Subtract the corresponding size of every spanned track from the item’s size contribution to find the item’s
  640. // remaining size contribution.
  641. auto extra_space = max(CSSPixels(0), item_size_contribution - spanned_tracks_sizes_sum);
  642. // 2. Distribute space up to limits:
  643. while (extra_space > 0) {
  644. auto all_frozen = all_of(affected_tracks, [](auto const& track) { return track.growth_limit_frozen; });
  645. if (all_frozen)
  646. break;
  647. // Find the item-incurred increase for each spanned track with an affected size by: distributing the space
  648. // equally among such tracks, freezing a track’s item-incurred increase as its affected size + item-incurred
  649. // increase reaches its limit
  650. CSSPixels increase_per_track = max(CSSPixels::smallest_positive_value(), extra_space / affected_tracks.size());
  651. for (auto& track : affected_tracks) {
  652. if (track.growth_limit_frozen)
  653. continue;
  654. auto increase = min(increase_per_track, extra_space);
  655. // For growth limits, the limit is infinity if it is marked as infinitely growable, and equal to the
  656. // growth limit otherwise.
  657. if (!track.infinitely_growable && track.growth_limit.has_value()) {
  658. auto maximum_increase = track.growth_limit.value() - track.base_size;
  659. if (track.item_incurred_increase + increase >= maximum_increase) {
  660. track.growth_limit_frozen = true;
  661. increase = maximum_increase - track.item_incurred_increase;
  662. }
  663. }
  664. track.item_incurred_increase += increase;
  665. extra_space -= increase;
  666. }
  667. }
  668. // FIXME: 3. Distribute space beyond limits
  669. // 4. For each affected track, if the track’s item-incurred increase is larger than the track’s planned increase
  670. // set the track’s planned increase to that value.
  671. for (auto& track : spanned_tracks) {
  672. if (track.item_incurred_increase > track.planned_increase)
  673. track.planned_increase = track.item_incurred_increase;
  674. }
  675. }
  676. void GridFormattingContext::increase_sizes_to_accommodate_spanning_items_crossing_content_sized_tracks(GridDimension const dimension, size_t span)
  677. {
  678. auto& available_size = dimension == GridDimension::Column ? m_available_space->width : m_available_space->height;
  679. auto& tracks = dimension == GridDimension::Column ? m_grid_columns : m_grid_rows;
  680. for (auto& item : m_grid_items) {
  681. auto const item_span = item.span(dimension);
  682. if (item_span != span)
  683. continue;
  684. Vector<GridTrack&> spanned_tracks;
  685. for_each_spanned_track_by_item(item, dimension, [&](GridTrack& track) {
  686. spanned_tracks.append(track);
  687. });
  688. auto item_spans_tracks_with_flexible_sizing_function = any_of(spanned_tracks, [](auto& track) {
  689. return track.max_track_sizing_function.is_flexible_length();
  690. });
  691. if (item_spans_tracks_with_flexible_sizing_function)
  692. continue;
  693. // 1. For intrinsic minimums: First increase the base size of tracks with an intrinsic min track sizing
  694. // function by distributing extra space as needed to accommodate these items’ minimum contributions.
  695. auto item_size_contribution = [&] {
  696. // If the grid container is being sized under a min- or max-content constraint, use the items’ limited
  697. // min-content contributions in place of their minimum contributions here.
  698. if (available_size.is_intrinsic_sizing_constraint())
  699. return calculate_limited_min_content_contribution(item, dimension);
  700. return calculate_minimum_contribution(item, dimension);
  701. }();
  702. distribute_extra_space_across_spanned_tracks_base_size(dimension, item_size_contribution, SpaceDistributionPhase::AccommodateMinimumContribution, spanned_tracks, [&](GridTrack const& track) {
  703. return track.min_track_sizing_function.is_intrinsic(available_size);
  704. });
  705. for (auto& track : spanned_tracks) {
  706. track.base_size += track.planned_increase;
  707. track.planned_increase = 0;
  708. }
  709. // 2. For content-based minimums: Next continue to increase the base size of tracks with a min track
  710. // sizing function of min-content or max-content by distributing extra space as needed to account for
  711. // these items' min-content contributions.
  712. auto item_min_content_contribution = calculate_min_content_contribution(item, dimension);
  713. distribute_extra_space_across_spanned_tracks_base_size(dimension, item_min_content_contribution, SpaceDistributionPhase::AccommodateMinContentContribution, spanned_tracks, [&](GridTrack const& track) {
  714. return track.min_track_sizing_function.is_min_content() || track.min_track_sizing_function.is_max_content();
  715. });
  716. for (auto& track : spanned_tracks) {
  717. track.base_size += track.planned_increase;
  718. track.planned_increase = 0;
  719. }
  720. // 3. For max-content minimums: Next, if the grid container is being sized under a max-content constraint,
  721. // continue to increase the base size of tracks with a min track sizing function of auto or max-content by
  722. // distributing extra space as needed to account for these items' limited max-content contributions.
  723. if (available_size.is_max_content()) {
  724. auto item_limited_max_content_contribution = calculate_limited_max_content_contribution(item, dimension);
  725. distribute_extra_space_across_spanned_tracks_base_size(dimension, item_limited_max_content_contribution, SpaceDistributionPhase::AccommodateMaxContentContribution, spanned_tracks, [&](GridTrack const& track) {
  726. return track.min_track_sizing_function.is_auto(available_size) || track.min_track_sizing_function.is_max_content();
  727. });
  728. for (auto& track : spanned_tracks) {
  729. track.base_size += track.planned_increase;
  730. track.planned_increase = 0;
  731. }
  732. }
  733. // 4. If at this point any track’s growth limit is now less than its base size, increase its growth limit to
  734. // match its base size.
  735. for (auto& track : tracks) {
  736. if (track.growth_limit.has_value() && track.growth_limit.value() < track.base_size)
  737. track.growth_limit = track.base_size;
  738. }
  739. // 5. For intrinsic maximums: Next increase the growth limit of tracks with an intrinsic max track sizing
  740. distribute_extra_space_across_spanned_tracks_growth_limit(item_min_content_contribution, spanned_tracks, [&](GridTrack const& track) {
  741. return track.max_track_sizing_function.is_intrinsic(available_size);
  742. });
  743. for (auto& track : spanned_tracks) {
  744. if (!track.growth_limit.has_value()) {
  745. // If the affected size is an infinite growth limit, set it to the track’s base size plus the planned increase.
  746. track.growth_limit = track.base_size + track.planned_increase;
  747. // Mark any tracks whose growth limit changed from infinite to finite in this step as infinitely growable
  748. // for the next step.
  749. track.infinitely_growable = true;
  750. } else {
  751. track.growth_limit.value() += track.planned_increase;
  752. }
  753. track.planned_increase = 0;
  754. }
  755. // 6. For max-content maximums: Lastly continue to increase the growth limit of tracks with a max track
  756. // sizing function of max-content by distributing extra space as needed to account for these items' max-
  757. // content contributions. However, limit the growth of any fit-content() tracks by their fit-content() argument.
  758. auto item_max_content_contribution = calculate_max_content_contribution(item, dimension);
  759. distribute_extra_space_across_spanned_tracks_growth_limit(item_max_content_contribution, spanned_tracks, [&](GridTrack const& track) {
  760. return track.max_track_sizing_function.is_max_content() || track.max_track_sizing_function.is_auto(available_size) || track.max_track_sizing_function.is_fit_content();
  761. });
  762. for (auto& track : spanned_tracks) {
  763. if (track.max_track_sizing_function.is_fit_content()) {
  764. track.growth_limit = css_clamp(
  765. track.planned_increase,
  766. track.base_size,
  767. track.max_track_sizing_function.css_size().to_px(grid_container(), available_size.to_px_or_zero()));
  768. } else if (!track.growth_limit.has_value()) {
  769. // If the affected size is an infinite growth limit, set it to the track’s base size plus the planned increase.
  770. track.growth_limit = track.base_size + track.planned_increase;
  771. } else {
  772. track.growth_limit.value() += track.planned_increase;
  773. }
  774. track.planned_increase = 0;
  775. }
  776. }
  777. }
  778. void GridFormattingContext::increase_sizes_to_accommodate_spanning_items_crossing_flexible_tracks(GridDimension const dimension)
  779. {
  780. auto& tracks = dimension == GridDimension::Column ? m_grid_columns : m_grid_rows;
  781. for (auto& item : m_grid_items) {
  782. Vector<GridTrack&> spanned_tracks;
  783. for_each_spanned_track_by_item(item, dimension, [&](GridTrack& track) {
  784. spanned_tracks.append(track);
  785. });
  786. auto item_spans_tracks_with_flexible_sizing_function = any_of(spanned_tracks, [](auto& track) {
  787. return track.max_track_sizing_function.is_flexible_length();
  788. });
  789. if (!item_spans_tracks_with_flexible_sizing_function)
  790. continue;
  791. // 1. For intrinsic minimums: First increase the base size of tracks with an intrinsic min track sizing
  792. // function by distributing extra space as needed to accommodate these items’ minimum contributions.
  793. auto item_minimum_contribution = calculate_minimum_contribution(item, dimension);
  794. distribute_extra_space_across_spanned_tracks_base_size(dimension,
  795. item_minimum_contribution, SpaceDistributionPhase::AccommodateMinimumContribution, spanned_tracks, [&](GridTrack const& track) {
  796. return track.max_track_sizing_function.is_flexible_length();
  797. });
  798. for (auto& track : spanned_tracks) {
  799. track.base_size += track.planned_increase;
  800. track.planned_increase = 0;
  801. }
  802. // 4. If at this point any track’s growth limit is now less than its base size, increase its growth limit to
  803. // match its base size.
  804. for (auto& track : tracks) {
  805. if (track.growth_limit.has_value() && track.growth_limit.value() < track.base_size)
  806. track.growth_limit = track.base_size;
  807. }
  808. }
  809. }
  810. void GridFormattingContext::maximize_tracks_using_available_size(AvailableSpace const& available_space, GridDimension const dimension)
  811. {
  812. // https://www.w3.org/TR/css-grid-2/#algo-grow-tracks
  813. // 12.6. Maximize Tracks
  814. auto& tracks = dimension == GridDimension::Column ? m_grid_columns : m_grid_rows;
  815. auto get_free_space_px = [&]() -> CSSPixels {
  816. // For the purpose of this step: if sizing the grid container under a max-content constraint, the
  817. // free space is infinite; if sizing under a min-content constraint, the free space is zero.
  818. auto free_space = get_free_space(available_space, dimension);
  819. if (free_space.is_max_content() || free_space.is_indefinite()) {
  820. return CSSPixels::max();
  821. } else if (free_space.is_min_content()) {
  822. return 0;
  823. } else {
  824. return free_space.to_px_or_zero();
  825. }
  826. };
  827. auto free_space_px = get_free_space_px();
  828. // If the free space is positive, distribute it equally to the base sizes of all tracks, freezing
  829. // tracks as they reach their growth limits (and continuing to grow the unfrozen tracks as needed).
  830. while (free_space_px > 0) {
  831. auto free_space_to_distribute_per_track = free_space_px / tracks.size();
  832. for (auto& track : tracks) {
  833. if (track.base_size_frozen)
  834. continue;
  835. VERIFY(track.growth_limit.has_value());
  836. track.base_size = min(track.growth_limit.value(), track.base_size + free_space_to_distribute_per_track);
  837. }
  838. if (get_free_space_px() == free_space_px)
  839. break;
  840. free_space_px = get_free_space_px();
  841. }
  842. }
  843. void GridFormattingContext::maximize_tracks(GridDimension const dimension)
  844. {
  845. // https://www.w3.org/TR/css-grid-2/#algo-grow-tracks
  846. // 12.6. Maximize Tracks
  847. auto& tracks = dimension == GridDimension::Column ? m_grid_columns : m_grid_rows;
  848. Vector<CSSPixels> saved_base_sizes;
  849. for (auto& track : tracks)
  850. saved_base_sizes.append(track.base_size);
  851. maximize_tracks_using_available_size(*m_available_space, dimension);
  852. // If this would cause the grid to be larger than the grid container’s inner size as limited by its
  853. // max-width/height, then redo this step, treating the available grid space as equal to the grid
  854. // container’s inner size when it’s sized to its max-width/height.
  855. CSSPixels grid_container_inner_size = 0;
  856. for (auto& track : tracks)
  857. grid_container_inner_size += track.base_size;
  858. auto const& available_size = dimension == GridDimension::Column ? m_available_space->width : m_available_space->height;
  859. auto const& computed_values = grid_container().computed_values();
  860. auto should_treat_grid_container_maximum_size_as_none = [&] {
  861. if (dimension == GridDimension::Column)
  862. return should_treat_max_width_as_none(grid_container(), available_size);
  863. return !computed_values.max_height().is_auto();
  864. }();
  865. if (!should_treat_grid_container_maximum_size_as_none) {
  866. auto maximum_size = calculate_grid_container_maximum_size(dimension);
  867. if (grid_container_inner_size > maximum_size) {
  868. for (size_t i = 0; i < tracks.size(); i++)
  869. tracks[i].base_size = saved_base_sizes[i];
  870. auto available_space_with_max_width = *m_available_space;
  871. if (dimension == GridDimension::Column)
  872. available_space_with_max_width.width = AvailableSize::make_definite(maximum_size);
  873. else
  874. available_space_with_max_width.height = AvailableSize::make_definite(maximum_size);
  875. maximize_tracks_using_available_size(available_space_with_max_width, dimension);
  876. }
  877. }
  878. }
  879. void GridFormattingContext::expand_flexible_tracks(GridDimension const dimension)
  880. {
  881. // https://drafts.csswg.org/css-grid/#algo-flex-tracks
  882. // 12.7. Expand Flexible Tracks
  883. // This step sizes flexible tracks using the largest value it can assign to an fr without exceeding
  884. // the available space.
  885. auto& tracks_and_gaps = dimension == GridDimension::Column ? m_grid_columns_and_gaps : m_grid_rows_and_gaps;
  886. auto& tracks = dimension == GridDimension::Column ? m_grid_columns : m_grid_rows;
  887. auto& available_size = dimension == GridDimension::Column ? m_available_space->width : m_available_space->height;
  888. // FIXME: This should idealy take a Span, as that is more idomatic, but Span does not yet support holding references
  889. auto find_the_size_of_an_fr = [&](Vector<GridTrack&> const& tracks, CSSPixels space_to_fill) -> CSSPixelFraction {
  890. // https://www.w3.org/TR/css-grid-2/#algo-find-fr-size
  891. // 1. Let leftover space be the space to fill minus the base sizes of the non-flexible grid tracks.
  892. auto leftover_space = space_to_fill;
  893. for (auto& track : tracks) {
  894. if (!track.max_track_sizing_function.is_flexible_length()) {
  895. leftover_space -= track.base_size;
  896. }
  897. }
  898. // 2. Let flex factor sum be the sum of the flex factors of the flexible tracks.
  899. // If this value is less than 1, set it to 1 instead.
  900. CSSPixels flex_factor_sum = 0;
  901. for (auto& track : tracks) {
  902. if (track.max_track_sizing_function.is_flexible_length())
  903. flex_factor_sum += CSSPixels::nearest_value_for(track.max_track_sizing_function.flex_factor());
  904. }
  905. if (flex_factor_sum < 1)
  906. flex_factor_sum = 1;
  907. // 3. Let the hypothetical fr size be the leftover space divided by the flex factor sum.
  908. auto hypothetical_fr_size = leftover_space / flex_factor_sum;
  909. // FIXME: 4. If the product of the hypothetical fr size and a flexible track’s flex factor is less than the track’s
  910. // base size, restart this algorithm treating all such tracks as inflexible.
  911. // 5. Return the hypothetical fr size.
  912. return hypothetical_fr_size;
  913. };
  914. // First, find the grid’s used flex fraction:
  915. auto flex_fraction = [&]() -> CSSPixelFraction {
  916. auto free_space = get_free_space(*m_available_space, dimension);
  917. // If the free space is zero or if sizing the grid container under a min-content constraint:
  918. if ((free_space.is_definite() && free_space.to_px_or_zero() == 0) || available_size.is_min_content()) {
  919. // The used flex fraction is zero.
  920. return 0;
  921. // Otherwise, if the free space is a definite length:
  922. } else if (free_space.is_definite()) {
  923. // The used flex fraction is the result of finding the size of an fr using all of the grid tracks and a space
  924. // to fill of the available grid space.
  925. return find_the_size_of_an_fr(tracks_and_gaps, available_size.to_px_or_zero());
  926. } else {
  927. // Otherwise, if the free space is an indefinite length:
  928. // The used flex fraction is the maximum of:
  929. CSSPixelFraction result = 0;
  930. // For each flexible track, if the flexible track’s flex factor is greater than one, the result of dividing
  931. // the track’s base size by its flex factor; otherwise, the track’s base size.
  932. for (auto& track : tracks) {
  933. if (track.max_track_sizing_function.is_flexible_length()) {
  934. if (track.max_track_sizing_function.flex_factor() > 1) {
  935. result = max(result, track.base_size / CSSPixels::nearest_value_for(track.max_track_sizing_function.flex_factor()));
  936. } else {
  937. result = max(result, track.base_size / 1);
  938. }
  939. }
  940. }
  941. // For each grid item that crosses a flexible track, the result of finding the size of an fr using all the
  942. // grid tracks that the item crosses and a space to fill of the item’s max-content contribution.
  943. for (auto& item : m_grid_items) {
  944. Vector<GridTrack&> spanned_tracks;
  945. bool crosses_flexible_track = false;
  946. for_each_spanned_track_by_item(item, dimension, [&](GridTrack& track) {
  947. spanned_tracks.append(track);
  948. if (track.max_track_sizing_function.is_flexible_length())
  949. crosses_flexible_track = true;
  950. });
  951. if (crosses_flexible_track)
  952. result = max(result, find_the_size_of_an_fr(spanned_tracks, calculate_max_content_contribution(item, dimension)));
  953. }
  954. return result;
  955. }
  956. }();
  957. // For each flexible track, if the product of the used flex fraction and the track’s flex factor is greater than
  958. // the track’s base size, set its base size to that product.
  959. for (auto& track : tracks_and_gaps) {
  960. if (track.max_track_sizing_function.is_flexible_length()) {
  961. auto scaled_fraction = CSSPixels::nearest_value_for(track.max_track_sizing_function.flex_factor()) * flex_fraction;
  962. if (scaled_fraction > track.base_size) {
  963. track.base_size = scaled_fraction;
  964. }
  965. }
  966. }
  967. }
  968. void GridFormattingContext::stretch_auto_tracks(GridDimension const dimension)
  969. {
  970. // https://www.w3.org/TR/css-grid-2/#algo-stretch
  971. // 12.8. Stretch auto Tracks
  972. // This step expands tracks that have an auto max track sizing function by dividing any remaining positive,
  973. // definite free space equally amongst them. If the free space is indefinite, but the grid container has a
  974. // definite min-width/height, use that size to calculate the free space for this step instead.
  975. auto content_distribution_property_is_normal_or_stretch = false;
  976. if (dimension == GridDimension::Column) {
  977. auto const& justify_content = grid_container().computed_values().justify_content();
  978. content_distribution_property_is_normal_or_stretch = justify_content == CSS::JustifyContent::Normal || justify_content == CSS::JustifyContent::Stretch;
  979. } else {
  980. auto const& align_content = grid_container().computed_values().align_content();
  981. content_distribution_property_is_normal_or_stretch = align_content == CSS::AlignContent::Normal || align_content == CSS::AlignContent::Stretch;
  982. }
  983. if (!content_distribution_property_is_normal_or_stretch)
  984. return;
  985. auto& tracks_and_gaps = dimension == GridDimension::Column ? m_grid_columns_and_gaps : m_grid_rows_and_gaps;
  986. auto& available_size = dimension == GridDimension::Column ? m_available_space->width : m_available_space->height;
  987. auto count_of_auto_max_sizing_tracks = 0;
  988. for (auto& track : tracks_and_gaps) {
  989. if (track.max_track_sizing_function.is_auto(available_size))
  990. count_of_auto_max_sizing_tracks++;
  991. }
  992. if (count_of_auto_max_sizing_tracks == 0)
  993. return;
  994. CSSPixels remaining_space = get_free_space(*m_available_space, dimension).to_px_or_zero();
  995. auto remaining_space_to_distribute_per_track = remaining_space / count_of_auto_max_sizing_tracks;
  996. for (auto& track : tracks_and_gaps) {
  997. if (!track.max_track_sizing_function.is_auto(available_size))
  998. continue;
  999. track.base_size += remaining_space_to_distribute_per_track;
  1000. }
  1001. }
  1002. void GridFormattingContext::run_track_sizing(GridDimension const dimension)
  1003. {
  1004. // https://www.w3.org/TR/css-grid-2/#algo-track-sizing
  1005. // 12.3. Track Sizing Algorithm
  1006. // 1. Initialize Track Sizes
  1007. initialize_track_sizes(dimension);
  1008. // 2. Resolve Intrinsic Track Sizes
  1009. resolve_intrinsic_track_sizes(dimension);
  1010. // 3. Maximize Tracks
  1011. maximize_tracks(dimension);
  1012. // 4. Expand Flexible Tracks
  1013. expand_flexible_tracks(dimension);
  1014. // 5. Expand Stretched auto Tracks
  1015. stretch_auto_tracks(dimension);
  1016. // If calculating the layout of a grid item in this step depends on the available space in the block
  1017. // axis, assume the available space that it would have if any row with a definite max track sizing
  1018. // function had that size and all other rows were infinite. If both the grid container and all
  1019. // tracks have definite sizes, also apply align-content to find the final effective size of any gaps
  1020. // spanned by such items; otherwise ignore the effects of track alignment in this estimation.
  1021. }
  1022. void GridFormattingContext::build_grid_areas()
  1023. {
  1024. // https://www.w3.org/TR/css-grid-2/#grid-template-areas-property
  1025. // If a named grid area spans multiple grid cells, but those cells do not form a single
  1026. // filled-in rectangle, the declaration is invalid.
  1027. auto const& rows = grid_container().computed_values().grid_template_areas();
  1028. HashMap<String, GridArea> grid_areas;
  1029. auto find_area_rectangle = [&](size_t x_start, size_t y_start, String const& name) {
  1030. bool invalid = false;
  1031. size_t x_end = x_start;
  1032. size_t y_end = y_start;
  1033. while (x_end < rows[y_start].size() && rows[y_start][x_end] == name)
  1034. x_end++;
  1035. while (y_end < rows.size() && rows[y_end][x_start] == name)
  1036. y_end++;
  1037. for (size_t y = y_start; y < y_end; y++) {
  1038. for (size_t x = x_start; x < x_end; x++) {
  1039. if (rows[y][x] != name) {
  1040. // If a named grid area spans multiple grid cells, but those cells do not form a single filled-in rectangle, the declaration is invalid.
  1041. invalid = true;
  1042. break;
  1043. }
  1044. }
  1045. }
  1046. grid_areas.set(name, { name, y_start, y_end, x_start, x_end, invalid });
  1047. };
  1048. for (size_t y = 0; y < rows.size(); y++) {
  1049. for (size_t x = 0; x < rows[y].size(); x++) {
  1050. auto name = rows[y][x];
  1051. if (auto grid_area = grid_areas.get(name); grid_area.has_value())
  1052. continue;
  1053. find_area_rectangle(x, y, name);
  1054. }
  1055. }
  1056. size_t max_column_line_index_of_area = 0;
  1057. size_t max_row_line_index_of_area = 0;
  1058. for (auto const& grid_area : grid_areas) {
  1059. max_column_line_index_of_area = max(max_column_line_index_of_area, grid_area.value.column_end);
  1060. max_row_line_index_of_area = max(max_row_line_index_of_area, grid_area.value.row_end);
  1061. }
  1062. if (max_column_line_index_of_area >= m_column_lines.size())
  1063. m_column_lines.resize(max_column_line_index_of_area + 1);
  1064. if (max_row_line_index_of_area >= m_row_lines.size())
  1065. m_row_lines.resize(max_row_line_index_of_area + 1);
  1066. // https://www.w3.org/TR/css-grid-2/#implicitly-assigned-line-name
  1067. // 7.3.2. Implicitly-Assigned Line Names
  1068. // The grid-template-areas property generates implicitly-assigned line names from the named grid areas in the
  1069. // template. For each named grid area foo, four implicitly-assigned line names are created: two named foo-start,
  1070. // naming the row-start and column-start lines of the named grid area, and two named foo-end, naming the row-end
  1071. // and column-end lines of the named grid area.
  1072. for (auto const& it : grid_areas) {
  1073. auto const& grid_area = it.value;
  1074. m_column_lines[grid_area.column_start].names.append(MUST(String::formatted("{}-start", grid_area.name)));
  1075. m_column_lines[grid_area.column_end].names.append(MUST(String::formatted("{}-end", grid_area.name)));
  1076. m_row_lines[grid_area.row_start].names.append(MUST(String::formatted("{}-start", grid_area.name)));
  1077. m_row_lines[grid_area.row_end].names.append(MUST(String::formatted("{}-end", grid_area.name)));
  1078. }
  1079. }
  1080. void GridFormattingContext::place_grid_items()
  1081. {
  1082. auto grid_template_columns = grid_container().computed_values().grid_template_columns();
  1083. auto grid_template_rows = grid_container().computed_values().grid_template_rows();
  1084. auto column_tracks_count = m_column_lines.size() - 1;
  1085. auto row_tracks_count = m_row_lines.size() - 1;
  1086. // https://drafts.csswg.org/css-grid/#overview-placement
  1087. // 2.2. Placing Items
  1088. // The contents of the grid container are organized into individual grid items (analogous to
  1089. // flex items), which are then assigned to predefined areas in the grid. They can be explicitly
  1090. // placed using coordinates through the grid-placement properties or implicitly placed into
  1091. // empty areas using auto-placement.
  1092. HashMap<int, Vector<JS::NonnullGCPtr<Box const>>> order_item_bucket;
  1093. grid_container().for_each_child_of_type<Box>([&](Box& child_box) {
  1094. if (can_skip_is_anonymous_text_run(child_box))
  1095. return IterationDecision::Continue;
  1096. if (child_box.is_out_of_flow(*this))
  1097. return IterationDecision::Continue;
  1098. child_box.set_grid_item(true);
  1099. auto& order_bucket = order_item_bucket.ensure(child_box.computed_values().order());
  1100. order_bucket.append(child_box);
  1101. return IterationDecision::Continue;
  1102. });
  1103. m_occupation_grid = OccupationGrid(column_tracks_count, row_tracks_count);
  1104. // https://drafts.csswg.org/css-grid/#auto-placement-algo
  1105. // 8.5. Grid Item Placement Algorithm
  1106. auto keys = order_item_bucket.keys();
  1107. quick_sort(keys, [](auto& a, auto& b) { return a < b; });
  1108. // FIXME: 0. Generate anonymous grid items
  1109. // 1. Position anything that's not auto-positioned.
  1110. for (auto key : keys) {
  1111. auto& boxes_to_place = order_item_bucket.get(key).value();
  1112. for (size_t i = 0; i < boxes_to_place.size(); i++) {
  1113. auto const& child_box = boxes_to_place[i];
  1114. auto const& computed_values = child_box->computed_values();
  1115. if (is_auto_positioned_track(computed_values.grid_row_start(), computed_values.grid_row_end())
  1116. || is_auto_positioned_track(computed_values.grid_column_start(), computed_values.grid_column_end()))
  1117. continue;
  1118. place_item_with_row_and_column_position(child_box);
  1119. boxes_to_place.remove(i);
  1120. i--;
  1121. }
  1122. }
  1123. // 2. Process the items locked to a given row.
  1124. // FIXME: Do "dense" packing
  1125. for (auto key : keys) {
  1126. auto& boxes_to_place = order_item_bucket.get(key).value();
  1127. for (size_t i = 0; i < boxes_to_place.size(); i++) {
  1128. auto const& child_box = boxes_to_place[i];
  1129. auto const& computed_values = child_box->computed_values();
  1130. if (is_auto_positioned_track(computed_values.grid_row_start(), computed_values.grid_row_end()))
  1131. continue;
  1132. place_item_with_row_position(child_box);
  1133. boxes_to_place.remove(i);
  1134. i--;
  1135. }
  1136. }
  1137. // 3. Determine the columns in the implicit grid.
  1138. // NOTE: "implicit grid" here is the same as the m_occupation_grid
  1139. // 3.1. Start with the columns from the explicit grid.
  1140. // NOTE: Done in step 1.
  1141. // 3.2. Among all the items with a definite column position (explicitly positioned items, items
  1142. // positioned in the previous step, and items not yet positioned but with a definite column) add
  1143. // columns to the beginning and end of the implicit grid as necessary to accommodate those items.
  1144. // NOTE: "Explicitly positioned items" and "items positioned in the previous step" done in step 1
  1145. // and 2, respectively. Adding columns for "items not yet positioned but with a definite column"
  1146. // will be done in step 4.
  1147. // 3.3. If the largest column span among all the items without a definite column position is larger
  1148. // than the width of the implicit grid, add columns to the end of the implicit grid to accommodate
  1149. // that column span.
  1150. for (auto key : keys) {
  1151. auto& boxes_to_place = order_item_bucket.get(key).value();
  1152. for (auto const& child_box : boxes_to_place) {
  1153. auto const& grid_column_start = child_box->computed_values().grid_column_start();
  1154. auto const& grid_column_end = child_box->computed_values().grid_column_end();
  1155. int column_span = 1;
  1156. if (grid_column_start.is_span())
  1157. column_span = grid_column_start.span();
  1158. else if (grid_column_end.is_span())
  1159. column_span = grid_column_end.span();
  1160. if (column_span - 1 > m_occupation_grid.max_column_index())
  1161. m_occupation_grid.set_max_column_index(column_span - 1);
  1162. }
  1163. }
  1164. // 4. Position the remaining grid items.
  1165. // For each grid item that hasn't been positioned by the previous steps, in order-modified document
  1166. // order:
  1167. auto auto_placement_cursor_x = 0;
  1168. auto auto_placement_cursor_y = 0;
  1169. for (auto key : keys) {
  1170. auto& boxes_to_place = order_item_bucket.get(key).value();
  1171. for (size_t i = 0; i < boxes_to_place.size(); i++) {
  1172. auto const& child_box = boxes_to_place[i];
  1173. auto const& computed_values = child_box->computed_values();
  1174. // 4.1. For sparse packing:
  1175. // FIXME: no distinction made. See #4.2
  1176. // 4.1.1. If the item has a definite column position:
  1177. if (!is_auto_positioned_track(computed_values.grid_column_start(), computed_values.grid_column_end()))
  1178. place_item_with_column_position(child_box, auto_placement_cursor_x, auto_placement_cursor_y);
  1179. // 4.1.2. If the item has an automatic grid position in both axes:
  1180. else
  1181. place_item_with_no_declared_position(child_box, auto_placement_cursor_x, auto_placement_cursor_y);
  1182. boxes_to_place.remove(i);
  1183. i--;
  1184. // FIXME: 4.2. For dense packing:
  1185. }
  1186. }
  1187. // NOTE: When final implicit grid sizes are known, we can offset their positions so leftmost grid track has 0 index.
  1188. for (auto& item : m_grid_items) {
  1189. item.row = item.row - m_occupation_grid.min_row_index();
  1190. item.column = item.column - m_occupation_grid.min_column_index();
  1191. }
  1192. }
  1193. void GridFormattingContext::determine_grid_container_height()
  1194. {
  1195. CSSPixels total_y = 0;
  1196. for (auto& grid_row : m_grid_rows_and_gaps)
  1197. total_y += grid_row.base_size;
  1198. m_automatic_content_height = total_y;
  1199. }
  1200. CSS::JustifyItems GridFormattingContext::justification_for_item(Box const& box) const
  1201. {
  1202. switch (box.computed_values().justify_self()) {
  1203. case CSS::JustifySelf::Auto:
  1204. return grid_container().computed_values().justify_items();
  1205. case CSS::JustifySelf::End:
  1206. return CSS::JustifyItems::End;
  1207. case CSS::JustifySelf::Normal:
  1208. return CSS::JustifyItems::Normal;
  1209. case CSS::JustifySelf::SelfStart:
  1210. return CSS::JustifyItems::SelfStart;
  1211. case CSS::JustifySelf::SelfEnd:
  1212. return CSS::JustifyItems::SelfEnd;
  1213. case CSS::JustifySelf::FlexStart:
  1214. return CSS::JustifyItems::FlexStart;
  1215. case CSS::JustifySelf::FlexEnd:
  1216. return CSS::JustifyItems::FlexEnd;
  1217. case CSS::JustifySelf::Center:
  1218. return CSS::JustifyItems::Center;
  1219. case CSS::JustifySelf::Baseline:
  1220. return CSS::JustifyItems::Baseline;
  1221. case CSS::JustifySelf::Start:
  1222. return CSS::JustifyItems::Start;
  1223. case CSS::JustifySelf::Stretch:
  1224. return CSS::JustifyItems::Stretch;
  1225. case CSS::JustifySelf::Safe:
  1226. return CSS::JustifyItems::Safe;
  1227. case CSS::JustifySelf::Unsafe:
  1228. return CSS::JustifyItems::Unsafe;
  1229. default:
  1230. VERIFY_NOT_REACHED();
  1231. }
  1232. }
  1233. CSS::AlignItems GridFormattingContext::alignment_for_item(Box const& box) const
  1234. {
  1235. switch (box.computed_values().align_self()) {
  1236. case CSS::AlignSelf::Auto:
  1237. return grid_container().computed_values().align_items();
  1238. case CSS::AlignSelf::End:
  1239. return CSS::AlignItems::End;
  1240. case CSS::AlignSelf::Normal:
  1241. return CSS::AlignItems::Normal;
  1242. case CSS::AlignSelf::SelfStart:
  1243. return CSS::AlignItems::SelfStart;
  1244. case CSS::AlignSelf::SelfEnd:
  1245. return CSS::AlignItems::SelfEnd;
  1246. case CSS::AlignSelf::FlexStart:
  1247. return CSS::AlignItems::FlexStart;
  1248. case CSS::AlignSelf::FlexEnd:
  1249. return CSS::AlignItems::FlexEnd;
  1250. case CSS::AlignSelf::Center:
  1251. return CSS::AlignItems::Center;
  1252. case CSS::AlignSelf::Baseline:
  1253. return CSS::AlignItems::Baseline;
  1254. case CSS::AlignSelf::Start:
  1255. return CSS::AlignItems::Start;
  1256. case CSS::AlignSelf::Stretch:
  1257. return CSS::AlignItems::Stretch;
  1258. case CSS::AlignSelf::Safe:
  1259. return CSS::AlignItems::Safe;
  1260. case CSS::AlignSelf::Unsafe:
  1261. return CSS::AlignItems::Unsafe;
  1262. default:
  1263. VERIFY_NOT_REACHED();
  1264. }
  1265. }
  1266. void GridFormattingContext::resolve_grid_item_widths()
  1267. {
  1268. for (auto& item : m_grid_items) {
  1269. CSSPixels containing_block_width = containing_block_size_for_item(item, GridDimension::Column);
  1270. auto& box_state = m_state.get_mutable(item.box);
  1271. auto const& computed_values = item.box->computed_values();
  1272. auto const& computed_width = computed_values.width();
  1273. struct ItemAlignment {
  1274. CSSPixels margin_left;
  1275. CSSPixels margin_right;
  1276. CSSPixels width;
  1277. };
  1278. ItemAlignment initial {
  1279. .margin_left = box_state.margin_left,
  1280. .margin_right = box_state.margin_right,
  1281. .width = box_state.content_width()
  1282. };
  1283. auto try_compute_width = [&](CSSPixels a_width) -> ItemAlignment {
  1284. ItemAlignment result = initial;
  1285. result.width = a_width;
  1286. // Auto margins absorb positive free space prior to alignment via the box alignment properties.
  1287. auto free_space_left_for_margins = containing_block_width - result.width - box_state.border_left - box_state.border_right - box_state.padding_left - box_state.padding_right - box_state.margin_left - box_state.margin_right;
  1288. if (computed_values.margin().left().is_auto() && computed_values.margin().right().is_auto()) {
  1289. result.margin_left = free_space_left_for_margins / 2;
  1290. result.margin_right = free_space_left_for_margins / 2;
  1291. } else if (computed_values.margin().left().is_auto()) {
  1292. result.margin_left = free_space_left_for_margins;
  1293. } else if (computed_values.margin().right().is_auto()) {
  1294. result.margin_right = free_space_left_for_margins;
  1295. } else if (computed_values.width().is_auto()) {
  1296. result.width += free_space_left_for_margins;
  1297. }
  1298. auto free_space_left_for_alignment = containing_block_width - a_width - box_state.border_left - box_state.border_right - box_state.padding_left - box_state.padding_right - box_state.margin_left - box_state.margin_right;
  1299. switch (justification_for_item(item.box)) {
  1300. case CSS::JustifyItems::Normal:
  1301. case CSS::JustifyItems::Stretch:
  1302. break;
  1303. case CSS::JustifyItems::Center:
  1304. result.margin_left += free_space_left_for_alignment / 2;
  1305. result.margin_right += free_space_left_for_alignment / 2;
  1306. result.width = a_width;
  1307. break;
  1308. case CSS::JustifyItems::Start:
  1309. case CSS::JustifyItems::FlexStart:
  1310. result.margin_right += free_space_left_for_alignment;
  1311. result.width = a_width;
  1312. break;
  1313. case CSS::JustifyItems::End:
  1314. case CSS::JustifyItems::FlexEnd:
  1315. result.margin_left += free_space_left_for_alignment;
  1316. result.width = a_width;
  1317. break;
  1318. default:
  1319. break;
  1320. }
  1321. return result;
  1322. };
  1323. ItemAlignment used_alignment;
  1324. AvailableSpace available_space { AvailableSize::make_definite(containing_block_width), AvailableSize::make_indefinite() };
  1325. if (computed_width.is_auto()) {
  1326. used_alignment = try_compute_width(calculate_fit_content_width(item.box, available_space));
  1327. } else if (computed_width.is_fit_content()) {
  1328. used_alignment = try_compute_width(calculate_fit_content_width(item.box, available_space));
  1329. } else {
  1330. auto width_px = calculate_inner_width(item.box, available_space.width, computed_width);
  1331. used_alignment = try_compute_width(width_px);
  1332. }
  1333. if (!should_treat_max_width_as_none(item.box, m_available_space->width)) {
  1334. auto max_width_px = calculate_inner_width(item.box, available_space.width, computed_values.max_width());
  1335. auto max_width_alignment = try_compute_width(max_width_px);
  1336. if (used_alignment.width > max_width_alignment.width) {
  1337. used_alignment = max_width_alignment;
  1338. }
  1339. }
  1340. if (!computed_values.min_width().is_auto()) {
  1341. auto min_width_px = calculate_inner_width(item.box, available_space.width, computed_values.min_width());
  1342. auto min_width_alignment = try_compute_width(min_width_px);
  1343. if (used_alignment.width < min_width_alignment.width) {
  1344. used_alignment = min_width_alignment;
  1345. }
  1346. }
  1347. box_state.margin_left = used_alignment.margin_left;
  1348. box_state.margin_right = used_alignment.margin_right;
  1349. box_state.set_content_width(used_alignment.width);
  1350. }
  1351. }
  1352. void GridFormattingContext::resolve_grid_item_heights()
  1353. {
  1354. for (auto& item : m_grid_items) {
  1355. CSSPixels containing_block_height = containing_block_size_for_item(item, GridDimension::Row);
  1356. auto& box_state = m_state.get_mutable(item.box);
  1357. auto const& computed_values = item.box->computed_values();
  1358. auto const& computed_height = computed_values.height();
  1359. struct ItemAlignment {
  1360. CSSPixels margin_top;
  1361. CSSPixels margin_bottom;
  1362. CSSPixels height;
  1363. };
  1364. ItemAlignment initial {
  1365. .margin_top = box_state.margin_top,
  1366. .margin_bottom = box_state.margin_bottom,
  1367. .height = box_state.content_height()
  1368. };
  1369. auto try_compute_height = [&](CSSPixels a_height) -> ItemAlignment {
  1370. ItemAlignment result = initial;
  1371. result.height = a_height;
  1372. CSSPixels height = a_height;
  1373. auto underflow_px = containing_block_height - height - box_state.border_top - box_state.border_bottom - box_state.padding_top - box_state.padding_bottom - box_state.margin_top - box_state.margin_bottom;
  1374. if (computed_values.margin().top().is_auto() && computed_values.margin().bottom().is_auto()) {
  1375. auto half_of_the_underflow = underflow_px / 2;
  1376. result.margin_top = half_of_the_underflow;
  1377. result.margin_bottom = half_of_the_underflow;
  1378. } else if (computed_values.margin().top().is_auto()) {
  1379. result.margin_top = underflow_px;
  1380. } else if (computed_values.margin().bottom().is_auto()) {
  1381. result.margin_bottom = underflow_px;
  1382. } else if (computed_values.height().is_auto()) {
  1383. height += underflow_px;
  1384. }
  1385. switch (alignment_for_item(item.box)) {
  1386. case CSS::AlignItems::Baseline:
  1387. // FIXME: Not implemented
  1388. case CSS::AlignItems::Stretch:
  1389. case CSS::AlignItems::Normal:
  1390. result.height = height;
  1391. break;
  1392. case CSS::AlignItems::Start:
  1393. case CSS::AlignItems::FlexStart:
  1394. case CSS::AlignItems::SelfStart:
  1395. result.margin_bottom += underflow_px;
  1396. break;
  1397. case CSS::AlignItems::End:
  1398. case CSS::AlignItems::SelfEnd:
  1399. case CSS::AlignItems::FlexEnd:
  1400. result.margin_top += underflow_px;
  1401. break;
  1402. case CSS::AlignItems::Center:
  1403. result.margin_top += underflow_px / 2;
  1404. result.margin_bottom += underflow_px / 2;
  1405. break;
  1406. default:
  1407. break;
  1408. }
  1409. return result;
  1410. };
  1411. ItemAlignment used_alignment;
  1412. if (computed_height.is_auto()) {
  1413. used_alignment = try_compute_height(calculate_fit_content_height(item.box, get_available_space_for_item(item)));
  1414. } else if (computed_height.is_fit_content()) {
  1415. used_alignment = try_compute_height(calculate_fit_content_height(item.box, get_available_space_for_item(item)));
  1416. } else {
  1417. used_alignment = try_compute_height(computed_height.to_px(grid_container(), containing_block_height));
  1418. }
  1419. if (!should_treat_max_height_as_none(item.box, m_available_space->height)) {
  1420. auto max_height_alignment = try_compute_height(computed_values.max_height().to_px(grid_container(), containing_block_height));
  1421. if (used_alignment.height > max_height_alignment.height) {
  1422. used_alignment = max_height_alignment;
  1423. }
  1424. }
  1425. if (!computed_values.min_height().is_auto()) {
  1426. auto min_height_alignment = try_compute_height(computed_values.min_height().to_px(grid_container(), containing_block_height));
  1427. if (used_alignment.height < min_height_alignment.height) {
  1428. used_alignment = min_height_alignment;
  1429. }
  1430. }
  1431. box_state.margin_top = used_alignment.margin_top;
  1432. box_state.margin_bottom = used_alignment.margin_bottom;
  1433. box_state.set_content_height(used_alignment.height);
  1434. }
  1435. }
  1436. void GridFormattingContext::resolve_items_box_metrics(GridDimension const dimension)
  1437. {
  1438. for (auto& item : m_grid_items) {
  1439. auto& box_state = m_state.get_mutable(item.box);
  1440. auto& computed_values = item.box->computed_values();
  1441. CSSPixels containing_block_width = containing_block_size_for_item(item, GridDimension::Column);
  1442. if (dimension == GridDimension::Column) {
  1443. box_state.padding_right = computed_values.padding().right().to_px(grid_container(), containing_block_width);
  1444. box_state.padding_left = computed_values.padding().left().to_px(grid_container(), containing_block_width);
  1445. box_state.margin_right = computed_values.margin().right().to_px(grid_container(), containing_block_width);
  1446. box_state.margin_left = computed_values.margin().left().to_px(grid_container(), containing_block_width);
  1447. box_state.border_right = computed_values.border_right().width;
  1448. box_state.border_left = computed_values.border_left().width;
  1449. } else {
  1450. box_state.padding_top = computed_values.padding().top().to_px(grid_container(), containing_block_width);
  1451. box_state.padding_bottom = computed_values.padding().bottom().to_px(grid_container(), containing_block_width);
  1452. box_state.margin_top = computed_values.margin().top().to_px(grid_container(), containing_block_width);
  1453. box_state.margin_bottom = computed_values.margin().bottom().to_px(grid_container(), containing_block_width);
  1454. box_state.border_top = computed_values.border_top().width;
  1455. box_state.border_bottom = computed_values.border_bottom().width;
  1456. }
  1457. }
  1458. }
  1459. void GridFormattingContext::collapse_auto_fit_tracks_if_needed(GridDimension const dimension)
  1460. {
  1461. // https://www.w3.org/TR/css-grid-2/#auto-repeat
  1462. // The auto-fit keyword behaves the same as auto-fill, except that after grid item placement any
  1463. // empty repeated tracks are collapsed. An empty track is one with no in-flow grid items placed into
  1464. // or spanning across it. (This can result in all tracks being collapsed, if they’re all empty.)
  1465. auto const& grid_computed_values = grid_container().computed_values();
  1466. auto const& tracks_definition = dimension == GridDimension::Column ? grid_computed_values.grid_template_columns().track_list() : grid_computed_values.grid_template_rows().track_list();
  1467. auto& tracks = dimension == GridDimension::Column ? m_grid_columns : m_grid_rows;
  1468. if (tracks_definition.size() == 1 && tracks_definition.first().is_repeat() && tracks_definition.first().repeat().is_auto_fit()) {
  1469. for (size_t track_index = 0; track_index < tracks.size(); track_index++) {
  1470. if (m_occupation_grid.is_occupied(dimension == GridDimension::Column ? track_index : 0, dimension == GridDimension::Row ? track_index : 0))
  1471. continue;
  1472. // NOTE: A collapsed track is treated as having a fixed track sizing function of 0px
  1473. tracks[track_index].min_track_sizing_function = CSS::GridSize(CSS::Length::make_px(0));
  1474. tracks[track_index].max_track_sizing_function = CSS::GridSize(CSS::Length::make_px(0));
  1475. }
  1476. }
  1477. }
  1478. CSSPixelRect GridFormattingContext::get_grid_area_rect(GridItem const& grid_item) const
  1479. {
  1480. auto const& row_gap = grid_container().computed_values().row_gap();
  1481. auto resolved_row_span = row_gap.is_auto() ? grid_item.row_span : grid_item.row_span * 2;
  1482. if (!row_gap.is_auto() && grid_item.gap_adjusted_row(grid_container()) == 0)
  1483. resolved_row_span -= 1;
  1484. if (grid_item.gap_adjusted_row(grid_container()) + resolved_row_span > m_grid_rows.size())
  1485. resolved_row_span = m_grid_rows_and_gaps.size() - grid_item.gap_adjusted_row(grid_container());
  1486. auto const& column_gap = grid_container().computed_values().column_gap();
  1487. auto resolved_column_span = column_gap.is_auto() ? grid_item.column_span : grid_item.column_span * 2;
  1488. if (!column_gap.is_auto() && grid_item.gap_adjusted_column(grid_container()) == 0)
  1489. resolved_column_span -= 1;
  1490. if (grid_item.gap_adjusted_column(grid_container()) + resolved_column_span > m_grid_columns_and_gaps.size())
  1491. resolved_column_span = m_grid_columns_and_gaps.size() - grid_item.gap_adjusted_column(grid_container());
  1492. int row_start = grid_item.gap_adjusted_row(grid_container());
  1493. int row_end = grid_item.gap_adjusted_row(grid_container()) + resolved_row_span;
  1494. int column_start = grid_item.gap_adjusted_column(grid_container());
  1495. int column_end = grid_item.gap_adjusted_column(grid_container()) + resolved_column_span;
  1496. auto grid_container_width = m_available_space->width.to_px_or_zero();
  1497. CSSPixels sum_base_size_of_columns = 0;
  1498. for (size_t i = 0; i < m_grid_columns_and_gaps.size(); i++)
  1499. sum_base_size_of_columns += m_grid_columns_and_gaps[i].base_size;
  1500. auto const& justify_content = grid_container().computed_values().justify_content();
  1501. CSSPixels x_start = 0;
  1502. CSSPixels x_end = 0;
  1503. if (justify_content == CSS::JustifyContent::Center) {
  1504. auto free_space = grid_container_width - sum_base_size_of_columns;
  1505. x_start = free_space / 2;
  1506. x_end = free_space / 2;
  1507. } else if (justify_content == CSS::JustifyContent::End) {
  1508. auto free_space = grid_container_width - sum_base_size_of_columns;
  1509. x_start = free_space;
  1510. x_end = free_space;
  1511. }
  1512. CSSPixels y_start = 0;
  1513. CSSPixels y_end = 0;
  1514. for (int i = 0; i < column_start; i++)
  1515. x_start += m_grid_columns_and_gaps[i].base_size;
  1516. for (int i = 0; i < column_end; i++)
  1517. x_end += m_grid_columns_and_gaps[i].base_size;
  1518. for (int i = 0; i < row_start; i++)
  1519. y_start += m_grid_rows_and_gaps[i].base_size;
  1520. for (int i = 0; i < row_end; i++) {
  1521. y_end += m_grid_rows_and_gaps[i].base_size;
  1522. }
  1523. return { x_start, y_start, x_end - x_start, y_end - y_start };
  1524. }
  1525. void GridFormattingContext::run(Box const&, LayoutMode, AvailableSpace const& available_space)
  1526. {
  1527. m_available_space = available_space;
  1528. init_grid_lines(GridDimension::Column);
  1529. init_grid_lines(GridDimension::Row);
  1530. build_grid_areas();
  1531. auto const& grid_computed_values = grid_container().computed_values();
  1532. // NOTE: We store explicit grid sizes to later use in determining the position of items with negative index.
  1533. m_explicit_columns_line_count = m_column_lines.size();
  1534. m_explicit_rows_line_count = m_row_lines.size();
  1535. place_grid_items();
  1536. initialize_grid_tracks_for_columns_and_rows();
  1537. initialize_gap_tracks(available_space);
  1538. collapse_auto_fit_tracks_if_needed(GridDimension::Column);
  1539. collapse_auto_fit_tracks_if_needed(GridDimension::Row);
  1540. for (auto& item : m_grid_items) {
  1541. auto& box_state = m_state.get_mutable(item.box);
  1542. auto& computed_values = item.box->computed_values();
  1543. // NOTE: As the containing blocks of grid items are created by implicit grid areas that are not present in the
  1544. // layout tree, the initial value of has_definite_width/height computed by LayoutState::UsedValues::set_node
  1545. // will be incorrect for anything other (auto, percentage, calculated) than fixed lengths.
  1546. // Therefor, it becomes necessary to reset this value to indefinite.
  1547. // TODO: Handle this in LayoutState::UsedValues::set_node
  1548. if (!computed_values.width().is_length())
  1549. box_state.set_indefinite_content_width();
  1550. if (!computed_values.height().is_length())
  1551. box_state.set_indefinite_content_height();
  1552. if (item.box->is_replaced_box()) {
  1553. auto& replaced_box = static_cast<Layout::ReplacedBox const&>(*item.box);
  1554. // FIXME: This const_cast is gross.
  1555. const_cast<Layout::ReplacedBox&>(replaced_box).prepare_for_replaced_layout();
  1556. }
  1557. }
  1558. // Do the first pass of resolving grid items box metrics to compute values that are independent of a track width
  1559. resolve_items_box_metrics(GridDimension::Column);
  1560. run_track_sizing(GridDimension::Column);
  1561. // Do the second pass of resolving box metrics to compute values that depend on a track width
  1562. resolve_items_box_metrics(GridDimension::Column);
  1563. // Once the sizes of column tracks, which determine the widths of the grid areas forming the containing blocks
  1564. // for grid items, ara calculated, it becomes possible to determine the final widths of the grid items.
  1565. resolve_grid_item_widths();
  1566. // Do the first pass of resolving grid items box metrics to compute values that are independent of a track height
  1567. resolve_items_box_metrics(GridDimension::Row);
  1568. run_track_sizing(GridDimension::Row);
  1569. // Do the second pass of resolving box metrics to compute values that depend on a track height
  1570. resolve_items_box_metrics(GridDimension::Row);
  1571. resolve_grid_item_heights();
  1572. determine_grid_container_height();
  1573. auto const& containing_block_state = m_state.get(*grid_container().containing_block());
  1574. auto height_of_containing_block = containing_block_state.content_height();
  1575. auto height_of_container_block_as_available_size = AvailableSize::make_definite(height_of_containing_block);
  1576. CSSPixels min_height = 0;
  1577. if (!grid_computed_values.min_height().is_auto())
  1578. min_height = calculate_inner_height(grid_container(), height_of_container_block_as_available_size, grid_computed_values.min_height());
  1579. // If automatic grid container height is less than min-height, we need to re-run the track sizing algorithm
  1580. if (m_automatic_content_height < min_height) {
  1581. resolve_items_box_metrics(GridDimension::Row);
  1582. AvailableSize width(available_space.width);
  1583. AvailableSize height(AvailableSize::make_definite(min_height));
  1584. m_available_space = AvailableSpace(width, height);
  1585. run_track_sizing(GridDimension::Row);
  1586. resolve_items_box_metrics(GridDimension::Row);
  1587. resolve_grid_item_heights();
  1588. determine_grid_container_height();
  1589. }
  1590. if (available_space.height.is_intrinsic_sizing_constraint() || available_space.width.is_intrinsic_sizing_constraint()) {
  1591. determine_intrinsic_size_of_grid_container(available_space);
  1592. return;
  1593. }
  1594. for (auto& grid_item : m_grid_items) {
  1595. auto& grid_item_box_state = m_state.get_mutable(grid_item.box);
  1596. CSSPixelPoint margin_offset = { grid_item_box_state.margin_box_left(), grid_item_box_state.margin_box_top() };
  1597. grid_item_box_state.offset = get_grid_area_rect(grid_item).top_left() + margin_offset;
  1598. compute_inset(grid_item.box);
  1599. auto available_space_for_children = AvailableSpace(AvailableSize::make_definite(grid_item_box_state.content_width()), AvailableSize::make_definite(grid_item_box_state.content_height()));
  1600. if (auto independent_formatting_context = layout_inside(grid_item.box, LayoutMode::Normal, available_space_for_children))
  1601. independent_formatting_context->parent_context_did_dimension_child_root_box();
  1602. }
  1603. }
  1604. void GridFormattingContext::layout_absolutely_positioned_element(Box const& box, AvailableSpace const& available_space)
  1605. {
  1606. auto& containing_block_state = m_state.get_mutable(*box.containing_block());
  1607. auto& box_state = m_state.get_mutable(box);
  1608. auto const& computed_values = box.computed_values();
  1609. auto row_placement_position = resolve_grid_position(box, GridDimension::Row);
  1610. auto column_placement_position = resolve_grid_position(box, GridDimension::Column);
  1611. auto row_start = row_placement_position.start;
  1612. auto row_span = row_placement_position.span;
  1613. auto column_start = column_placement_position.start;
  1614. auto column_span = column_placement_position.span;
  1615. GridItem item { box, row_start, row_span, column_start, column_span };
  1616. // The border computed values are not changed by the compute_height & width calculations below.
  1617. // The spec only adjusts and computes sizes, insets and margins.
  1618. box_state.border_left = box.computed_values().border_left().width;
  1619. box_state.border_right = box.computed_values().border_right().width;
  1620. box_state.border_top = box.computed_values().border_top().width;
  1621. box_state.border_bottom = box.computed_values().border_bottom().width;
  1622. compute_width_for_absolutely_positioned_element(box, available_space);
  1623. // NOTE: We compute height before *and* after doing inside layout.
  1624. // This is done so that inside layout can resolve percentage heights.
  1625. // In some situations, e.g with non-auto top & bottom values, the height can be determined early.
  1626. compute_height_for_absolutely_positioned_element(box, available_space, BeforeOrAfterInsideLayout::Before);
  1627. auto independent_formatting_context = layout_inside(box, LayoutMode::Normal, box_state.available_inner_space_or_constraints_from(available_space));
  1628. compute_height_for_absolutely_positioned_element(box, available_space, BeforeOrAfterInsideLayout::After);
  1629. if (computed_values.inset().left().is_auto() && computed_values.inset().right().is_auto()) {
  1630. auto containing_block_width = containing_block_state.content_width();
  1631. auto width_left_for_alignment = containing_block_width - box_state.margin_box_width();
  1632. switch (justification_for_item(box)) {
  1633. case CSS::JustifyItems::Normal:
  1634. case CSS::JustifyItems::Stretch:
  1635. break;
  1636. case CSS::JustifyItems::Center:
  1637. box_state.inset_left = width_left_for_alignment / 2;
  1638. box_state.inset_right = width_left_for_alignment / 2;
  1639. break;
  1640. case CSS::JustifyItems::Start:
  1641. case CSS::JustifyItems::FlexStart:
  1642. box_state.inset_right = width_left_for_alignment;
  1643. break;
  1644. case CSS::JustifyItems::End:
  1645. case CSS::JustifyItems::FlexEnd:
  1646. box_state.inset_left = width_left_for_alignment;
  1647. break;
  1648. default:
  1649. break;
  1650. }
  1651. }
  1652. if (computed_values.inset().top().is_auto() && computed_values.inset().bottom().is_auto()) {
  1653. auto containing_block_height = containing_block_state.content_height();
  1654. auto height_left_for_alignment = containing_block_height - box_state.margin_box_height();
  1655. switch (alignment_for_item(box)) {
  1656. case CSS::AlignItems::Baseline:
  1657. // FIXME: Not implemented
  1658. case CSS::AlignItems::Stretch:
  1659. case CSS::AlignItems::Normal:
  1660. break;
  1661. case CSS::AlignItems::Start:
  1662. case CSS::AlignItems::FlexStart:
  1663. case CSS::AlignItems::SelfStart:
  1664. box_state.inset_bottom = height_left_for_alignment;
  1665. break;
  1666. case CSS::AlignItems::End:
  1667. case CSS::AlignItems::SelfEnd:
  1668. case CSS::AlignItems::FlexEnd: {
  1669. box_state.inset_top = height_left_for_alignment;
  1670. break;
  1671. }
  1672. case CSS::AlignItems::Center:
  1673. box_state.inset_top = height_left_for_alignment / 2;
  1674. box_state.inset_bottom = height_left_for_alignment / 2;
  1675. break;
  1676. default:
  1677. break;
  1678. }
  1679. }
  1680. // If an absolutely positioned element’s containing block is generated by a grid container,
  1681. // the containing block corresponds to the grid area determined by its grid-placement properties.
  1682. // The offset properties (top/right/bottom/left) then indicate offsets inwards from the corresponding
  1683. // edges of this containing block, as normal.
  1684. CSSPixelPoint used_offset;
  1685. auto grid_area_offset = get_grid_area_rect(item);
  1686. used_offset.set_x(grid_area_offset.x() + box_state.inset_left + box_state.margin_box_left());
  1687. used_offset.set_y(grid_area_offset.y() + box_state.inset_top + box_state.margin_box_top());
  1688. // NOTE: Absolutely positioned boxes are relative to the *padding edge* of the containing block.
  1689. used_offset.translate_by(-containing_block_state.padding_left, -containing_block_state.padding_top);
  1690. box_state.set_content_offset(used_offset);
  1691. if (independent_formatting_context)
  1692. independent_formatting_context->parent_context_did_dimension_child_root_box();
  1693. }
  1694. void GridFormattingContext::parent_context_did_dimension_child_root_box()
  1695. {
  1696. grid_container().for_each_child_of_type<Box>([&](Layout::Box& box) {
  1697. if (box.is_absolutely_positioned()) {
  1698. auto& cb_state = m_state.get(*box.containing_block());
  1699. auto available_width = AvailableSize::make_definite(cb_state.content_width() + cb_state.padding_left + cb_state.padding_right);
  1700. auto available_height = AvailableSize::make_definite(cb_state.content_height() + cb_state.padding_top + cb_state.padding_bottom);
  1701. layout_absolutely_positioned_element(box, AvailableSpace(available_width, available_height));
  1702. }
  1703. return IterationDecision::Continue;
  1704. });
  1705. }
  1706. void GridFormattingContext::determine_intrinsic_size_of_grid_container(AvailableSpace const& available_space)
  1707. {
  1708. // https://www.w3.org/TR/css-grid-1/#intrinsic-sizes
  1709. // The max-content size (min-content size) of a grid container is the sum of the grid container’s track sizes
  1710. // (including gutters) in the appropriate axis, when the grid is sized under a max-content constraint (min-content constraint).
  1711. if (available_space.height.is_intrinsic_sizing_constraint()) {
  1712. CSSPixels grid_container_height = 0;
  1713. for (auto& track : m_grid_rows_and_gaps) {
  1714. grid_container_height += track.base_size;
  1715. }
  1716. m_state.get_mutable(grid_container()).set_content_height(grid_container_height);
  1717. }
  1718. if (available_space.width.is_intrinsic_sizing_constraint()) {
  1719. CSSPixels grid_container_width = 0;
  1720. for (auto& track : m_grid_columns_and_gaps) {
  1721. grid_container_width += track.base_size;
  1722. }
  1723. m_state.get_mutable(grid_container()).set_content_width(grid_container_width);
  1724. }
  1725. }
  1726. CSSPixels GridFormattingContext::automatic_content_width() const
  1727. {
  1728. return m_state.get(grid_container()).content_width();
  1729. }
  1730. CSSPixels GridFormattingContext::automatic_content_height() const
  1731. {
  1732. return m_automatic_content_height;
  1733. }
  1734. bool GridFormattingContext::is_auto_positioned_track(CSS::GridTrackPlacement const& grid_track_start, CSS::GridTrackPlacement const& grid_track_end) const
  1735. {
  1736. return grid_track_start.is_auto_positioned() && grid_track_end.is_auto_positioned();
  1737. }
  1738. AvailableSize GridFormattingContext::get_free_space(AvailableSpace const& available_space, GridDimension const dimension) const
  1739. {
  1740. // https://www.w3.org/TR/css-grid-2/#algo-terms
  1741. // free space: Equal to the available grid space minus the sum of the base sizes of all the grid
  1742. // tracks (including gutters), floored at zero. If available grid space is indefinite, the free
  1743. // space is indefinite as well.
  1744. auto& available_size = dimension == GridDimension::Column ? available_space.width : available_space.height;
  1745. auto& tracks = dimension == GridDimension::Column ? m_grid_columns_and_gaps : m_grid_rows_and_gaps;
  1746. if (available_size.is_definite()) {
  1747. CSSPixels sum_base_sizes = 0;
  1748. for (auto& track : tracks)
  1749. sum_base_sizes += track.base_size;
  1750. return AvailableSize::make_definite(max(CSSPixels(0), available_size.to_px_or_zero() - sum_base_sizes));
  1751. }
  1752. return available_size;
  1753. }
  1754. Optional<int> GridFormattingContext::get_line_index_by_line_name(GridDimension dimension, String const& line_name)
  1755. {
  1756. auto const& lines = dimension == GridDimension::Column ? m_column_lines : m_row_lines;
  1757. for (size_t line_index = 0; line_index < lines.size(); line_index++) {
  1758. for (auto const& name : lines[line_index].names) {
  1759. if (name == line_name)
  1760. return static_cast<int>(line_index);
  1761. }
  1762. }
  1763. return {};
  1764. }
  1765. void GridFormattingContext::init_grid_lines(GridDimension dimension)
  1766. {
  1767. auto const& grid_computed_values = grid_container().computed_values();
  1768. auto const& lines_definition = dimension == GridDimension::Column ? grid_computed_values.grid_template_columns() : grid_computed_values.grid_template_rows();
  1769. auto& lines = dimension == GridDimension::Column ? m_column_lines : m_row_lines;
  1770. Vector<String> line_names;
  1771. Function<void(CSS::GridTrackSizeList const&)> expand_lines_definition = [&](CSS::GridTrackSizeList const& lines_definition) {
  1772. for (auto const& item : lines_definition.list()) {
  1773. if (item.has<CSS::GridLineNames>()) {
  1774. line_names.extend(item.get<CSS::GridLineNames>().names);
  1775. } else if (item.has<CSS::ExplicitGridTrack>()) {
  1776. auto const& explicit_track = item.get<CSS::ExplicitGridTrack>();
  1777. if (explicit_track.is_default() || explicit_track.is_minmax() || explicit_track.is_fit_content()) {
  1778. lines.append({ .names = line_names });
  1779. line_names.clear();
  1780. } else if (explicit_track.is_repeat()) {
  1781. int repeat_count = 0;
  1782. if (explicit_track.repeat().is_auto_fill() || explicit_track.repeat().is_auto_fit())
  1783. repeat_count = count_of_repeated_auto_fill_or_fit_tracks(dimension);
  1784. else
  1785. repeat_count = explicit_track.repeat().repeat_count();
  1786. auto const& repeat_track = explicit_track.repeat();
  1787. for (int i = 0; i < repeat_count; i++)
  1788. expand_lines_definition(repeat_track.grid_track_size_list());
  1789. } else {
  1790. VERIFY_NOT_REACHED();
  1791. }
  1792. }
  1793. }
  1794. };
  1795. expand_lines_definition(lines_definition);
  1796. lines.append({ .names = line_names });
  1797. }
  1798. void OccupationGrid::set_occupied(int column_start, int column_end, int row_start, int row_end)
  1799. {
  1800. for (int row_index = row_start; row_index < row_end; row_index++) {
  1801. for (int column_index = column_start; column_index < column_end; column_index++) {
  1802. m_min_column_index = min(m_min_column_index, column_index);
  1803. m_max_column_index = max(m_max_column_index, column_index);
  1804. m_min_row_index = min(m_min_row_index, row_index);
  1805. m_max_row_index = max(m_max_row_index, row_index);
  1806. m_occupation_grid.set(GridPosition { .row = row_index, .column = column_index });
  1807. }
  1808. }
  1809. }
  1810. bool OccupationGrid::is_occupied(int column_index, int row_index) const
  1811. {
  1812. return m_occupation_grid.contains(GridPosition { row_index, column_index });
  1813. }
  1814. int GridItem::gap_adjusted_row(Box const& grid_box) const
  1815. {
  1816. return grid_box.computed_values().row_gap().is_auto() ? row : row * 2;
  1817. }
  1818. int GridItem::gap_adjusted_column(Box const& grid_box) const
  1819. {
  1820. return grid_box.computed_values().column_gap().is_auto() ? column : column * 2;
  1821. }
  1822. CSSPixels GridFormattingContext::calculate_grid_container_maximum_size(GridDimension const dimension) const
  1823. {
  1824. auto const& computed_values = grid_container().computed_values();
  1825. if (dimension == GridDimension::Column)
  1826. return calculate_inner_width(grid_container(), m_available_space->width, computed_values.max_width());
  1827. return calculate_inner_height(grid_container(), m_available_space->height, computed_values.max_height());
  1828. }
  1829. CSS::Size const& GridFormattingContext::get_item_preferred_size(GridItem const& item, GridDimension const dimension) const
  1830. {
  1831. if (dimension == GridDimension::Column)
  1832. return item.box->computed_values().width();
  1833. return item.box->computed_values().height();
  1834. }
  1835. CSSPixels GridFormattingContext::calculate_min_content_size(GridItem const& item, GridDimension const dimension) const
  1836. {
  1837. if (dimension == GridDimension::Column) {
  1838. return calculate_min_content_width(item.box);
  1839. } else {
  1840. return calculate_min_content_height(item.box, get_available_space_for_item(item).width.to_px_or_zero());
  1841. }
  1842. }
  1843. CSSPixels GridFormattingContext::calculate_max_content_size(GridItem const& item, GridDimension const dimension) const
  1844. {
  1845. if (dimension == GridDimension::Column) {
  1846. return calculate_max_content_width(item.box);
  1847. } else {
  1848. return calculate_max_content_height(item.box, get_available_space_for_item(item).width.to_px_or_zero());
  1849. }
  1850. }
  1851. CSSPixels GridFormattingContext::containing_block_size_for_item(GridItem const& item, GridDimension const dimension) const
  1852. {
  1853. CSSPixels containing_block_size = 0;
  1854. for_each_spanned_track_by_item(item, dimension, [&](GridTrack const& track) {
  1855. containing_block_size += track.base_size;
  1856. });
  1857. return containing_block_size;
  1858. }
  1859. AvailableSpace GridFormattingContext::get_available_space_for_item(GridItem const& item) const
  1860. {
  1861. auto& item_box_state = m_state.get(item.box);
  1862. AvailableSize available_width = item_box_state.has_definite_width() ? AvailableSize::make_definite(item_box_state.content_width()) : AvailableSize::make_indefinite();
  1863. AvailableSize available_height = item_box_state.has_definite_height() ? AvailableSize::make_definite(item_box_state.content_height()) : AvailableSize::make_indefinite();
  1864. return AvailableSpace(available_width, available_height);
  1865. }
  1866. static CSS::Size const& get_item_minimum_size(GridItem const& item, GridDimension const dimension)
  1867. {
  1868. if (dimension == GridDimension::Column)
  1869. return item.box->computed_values().min_width();
  1870. return item.box->computed_values().min_height();
  1871. }
  1872. static CSS::Size const& get_item_maximum_size(GridItem const& item, GridDimension const dimension)
  1873. {
  1874. if (dimension == GridDimension::Column)
  1875. return item.box->computed_values().max_width();
  1876. return item.box->computed_values().max_height();
  1877. }
  1878. CSSPixels GridFormattingContext::calculate_min_content_contribution(GridItem const& item, GridDimension const dimension) const
  1879. {
  1880. auto available_space_for_item = get_available_space_for_item(item);
  1881. auto should_treat_preferred_size_as_auto = [&] {
  1882. if (dimension == GridDimension::Column)
  1883. return should_treat_width_as_auto(item.box, available_space_for_item);
  1884. return should_treat_height_as_auto(item.box, available_space_for_item);
  1885. }();
  1886. auto maxium_size = CSSPixels::max();
  1887. if (auto const& css_maximum_size = get_item_maximum_size(item, dimension); css_maximum_size.is_length()) {
  1888. maxium_size = css_maximum_size.length().to_px(item.box);
  1889. }
  1890. if (should_treat_preferred_size_as_auto) {
  1891. auto result = item.add_margin_box_sizes(calculate_min_content_size(item, dimension), dimension, m_state);
  1892. return min(result, maxium_size);
  1893. }
  1894. auto preferred_size = get_item_preferred_size(item, dimension);
  1895. auto containing_block_size = containing_block_size_for_item(item, dimension);
  1896. auto result = item.add_margin_box_sizes(preferred_size.to_px(grid_container(), containing_block_size), dimension, m_state);
  1897. return min(result, maxium_size);
  1898. }
  1899. CSSPixels GridFormattingContext::calculate_max_content_contribution(GridItem const& item, GridDimension const dimension) const
  1900. {
  1901. auto available_space_for_item = get_available_space_for_item(item);
  1902. auto should_treat_preferred_size_as_auto = [&] {
  1903. if (dimension == GridDimension::Column)
  1904. return should_treat_width_as_auto(item.box, available_space_for_item);
  1905. return should_treat_height_as_auto(item.box, available_space_for_item);
  1906. }();
  1907. auto maxium_size = CSSPixels::max();
  1908. if (auto const& css_maximum_size = get_item_maximum_size(item, dimension); css_maximum_size.is_length()) {
  1909. maxium_size = css_maximum_size.length().to_px(item.box);
  1910. }
  1911. auto preferred_size = get_item_preferred_size(item, dimension);
  1912. if (should_treat_preferred_size_as_auto || preferred_size.is_fit_content()) {
  1913. auto fit_content_size = dimension == GridDimension::Column ? calculate_fit_content_width(item.box, available_space_for_item) : calculate_fit_content_height(item.box, available_space_for_item);
  1914. auto result = item.add_margin_box_sizes(fit_content_size, dimension, m_state);
  1915. return min(result, maxium_size);
  1916. }
  1917. auto containing_block_size = containing_block_size_for_item(item, dimension);
  1918. auto result = item.add_margin_box_sizes(preferred_size.to_px(grid_container(), containing_block_size), dimension, m_state);
  1919. return min(result, maxium_size);
  1920. }
  1921. CSSPixels GridFormattingContext::calculate_limited_min_content_contribution(GridItem const& item, GridDimension const dimension) const
  1922. {
  1923. // The limited min-content contribution of an item is its min-content contribution,
  1924. // limited by the max track sizing function (which could be the argument to a fit-content() track
  1925. // sizing function) if that is fixed and ultimately floored by its minimum contribution.
  1926. auto min_content_contribution = calculate_min_content_contribution(item, dimension);
  1927. auto minimum_contribution = calculate_minimum_contribution(item, dimension);
  1928. if (min_content_contribution < minimum_contribution)
  1929. return minimum_contribution;
  1930. // FIXME: limit by max track sizing function instead of grid container maximum size
  1931. auto const& available_size = dimension == GridDimension::Column ? m_available_space->width : m_available_space->height;
  1932. if (!should_treat_max_width_as_none(grid_container(), available_size)) {
  1933. auto max_width = calculate_grid_container_maximum_size(dimension);
  1934. if (min_content_contribution > max_width)
  1935. return max_width;
  1936. }
  1937. return min_content_contribution;
  1938. }
  1939. CSSPixels GridFormattingContext::calculate_limited_max_content_contribution(GridItem const& item, GridDimension const dimension) const
  1940. {
  1941. // The limited max-content contribution of an item is its max-content contribution,
  1942. // limited by the max track sizing function (which could be the argument to a fit-content() track
  1943. // sizing function) if that is fixed and ultimately floored by its minimum contribution.
  1944. auto max_content_contribution = calculate_max_content_contribution(item, dimension);
  1945. auto minimum_contribution = calculate_minimum_contribution(item, dimension);
  1946. if (max_content_contribution < minimum_contribution)
  1947. return minimum_contribution;
  1948. // FIXME: limit by max track sizing function instead of grid container maximum size
  1949. auto const& available_size = dimension == GridDimension::Column ? m_available_space->width : m_available_space->height;
  1950. if (!should_treat_max_width_as_none(grid_container(), available_size)) {
  1951. auto max_width = calculate_grid_container_maximum_size(dimension);
  1952. if (max_content_contribution > max_width)
  1953. return max_width;
  1954. }
  1955. return max_content_contribution;
  1956. }
  1957. CSSPixels GridFormattingContext::content_size_suggestion(GridItem const& item, GridDimension const dimension) const
  1958. {
  1959. // The content size suggestion is the min-content size in the relevant axis
  1960. // FIXME: clamped, if it has a preferred aspect ratio, by any definite opposite-axis minimum and maximum sizes
  1961. // converted through the aspect ratio.
  1962. return calculate_min_content_size(item, dimension);
  1963. }
  1964. Optional<CSSPixels> GridFormattingContext::specified_size_suggestion(GridItem const& item, GridDimension const dimension) const
  1965. {
  1966. // https://www.w3.org/TR/css-grid-1/#specified-size-suggestion
  1967. // If the item’s preferred size in the relevant axis is definite, then the specified size suggestion is that size.
  1968. // It is otherwise undefined.
  1969. auto const& used_values = m_state.get(item.box);
  1970. auto has_definite_preferred_size = dimension == GridDimension::Column ? used_values.has_definite_width() : used_values.has_definite_height();
  1971. if (has_definite_preferred_size) {
  1972. // FIXME: consider margins, padding and borders because it is outer size.
  1973. auto containing_block_size = containing_block_size_for_item(item, dimension);
  1974. return get_item_preferred_size(item, dimension).to_px(item.box, containing_block_size);
  1975. }
  1976. return {};
  1977. }
  1978. CSSPixels GridFormattingContext::content_based_minimum_size(GridItem const& item, GridDimension const dimension) const
  1979. {
  1980. // https://www.w3.org/TR/css-grid-1/#content-based-minimum-size
  1981. // The content-based minimum size for a grid item in a given dimension is its specified size suggestion if it exists,
  1982. // otherwise its transferred size suggestion if that exists,
  1983. // else its content size suggestion, see below.
  1984. // In all cases, the size suggestion is additionally clamped by the maximum size in the affected axis, if it’s definite.
  1985. auto maximum_size = CSSPixels::max();
  1986. if (auto const& css_maximum_size = get_item_maximum_size(item, dimension); css_maximum_size.is_length()) {
  1987. maximum_size = css_maximum_size.length().to_px(item.box);
  1988. }
  1989. if (auto specified_size_suggestion = this->specified_size_suggestion(item, dimension); specified_size_suggestion.has_value()) {
  1990. return min(specified_size_suggestion.value(), maximum_size);
  1991. }
  1992. return min(content_size_suggestion(item, dimension), maximum_size);
  1993. }
  1994. CSSPixels GridFormattingContext::automatic_minimum_size(GridItem const& item, GridDimension const dimension) const
  1995. {
  1996. // To provide a more reasonable default minimum size for grid items, the used value of its automatic minimum size
  1997. // in a given axis is the content-based minimum size if all of the following are true:
  1998. // - it is not a scroll container
  1999. // - it spans at least one track in that axis whose min track sizing function is auto
  2000. // - if it spans more than one track in that axis, none of those tracks are flexible
  2001. auto const& tracks = dimension == GridDimension::Column ? m_grid_columns : m_grid_rows;
  2002. auto item_track_index = item.raw_position(dimension);
  2003. auto item_track_span = item.span(dimension);
  2004. AvailableSize const& available_size = dimension == GridDimension::Column ? m_available_space->width : m_available_space->height;
  2005. bool spans_auto_tracks = false;
  2006. bool spans_flexible_tracks = false;
  2007. for (size_t index = 0; index < item_track_span; index++) {
  2008. auto const& track = tracks[item_track_index + index];
  2009. if (track.max_track_sizing_function.is_flexible_length())
  2010. spans_flexible_tracks = true;
  2011. if (track.min_track_sizing_function.is_auto(available_size))
  2012. spans_auto_tracks = true;
  2013. }
  2014. if (spans_auto_tracks && !item.box->is_scroll_container() && (item_track_span == 1 || !spans_flexible_tracks)) {
  2015. return content_based_minimum_size(item, dimension);
  2016. }
  2017. // Otherwise, the automatic minimum size is zero, as usual.
  2018. return 0;
  2019. }
  2020. CSSPixels GridFormattingContext::calculate_minimum_contribution(GridItem const& item, GridDimension const dimension) const
  2021. {
  2022. // The minimum contribution of an item is the smallest outer size it can have.
  2023. // Specifically, if the item’s computed preferred size behaves as auto or depends on the size of its
  2024. // containing block in the relevant axis, its minimum contribution is the outer size that would
  2025. // result from assuming the item’s used minimum size as its preferred size; else the item’s minimum
  2026. // contribution is its min-content contribution. Because the minimum contribution often depends on
  2027. // the size of the item’s content, it is considered a type of intrinsic size contribution.
  2028. auto preferred_size = get_item_preferred_size(item, dimension);
  2029. auto should_treat_preferred_size_as_auto = [&] {
  2030. if (dimension == GridDimension::Column)
  2031. return should_treat_width_as_auto(item.box, get_available_space_for_item(item));
  2032. return should_treat_height_as_auto(item.box, get_available_space_for_item(item));
  2033. }();
  2034. if (should_treat_preferred_size_as_auto) {
  2035. auto minimum_size = get_item_minimum_size(item, dimension);
  2036. if (minimum_size.is_auto())
  2037. return item.add_margin_box_sizes(automatic_minimum_size(item, dimension), dimension, m_state);
  2038. auto containing_block_size = containing_block_size_for_item(item, dimension);
  2039. return item.add_margin_box_sizes(minimum_size.to_px(grid_container(), containing_block_size), dimension, m_state);
  2040. }
  2041. return calculate_min_content_contribution(item, dimension);
  2042. }
  2043. }
  2044. namespace AK {
  2045. template<>
  2046. struct Traits<Web::Layout::GridPosition> : public DefaultTraits<Web::Layout::GridPosition> {
  2047. static unsigned hash(Web::Layout::GridPosition const& key) { return pair_int_hash(key.row, key.column); }
  2048. };
  2049. }