FormattingContext.cpp 46 KB

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  1. /*
  2. * Copyright (c) 2020-2022, Andreas Kling <kling@serenityos.org>
  3. *
  4. * SPDX-License-Identifier: BSD-2-Clause
  5. */
  6. #include <LibWeb/Dump.h>
  7. #include <LibWeb/Layout/BlockFormattingContext.h>
  8. #include <LibWeb/Layout/Box.h>
  9. #include <LibWeb/Layout/FlexFormattingContext.h>
  10. #include <LibWeb/Layout/FormattingContext.h>
  11. #include <LibWeb/Layout/InlineFormattingContext.h>
  12. #include <LibWeb/Layout/ReplacedBox.h>
  13. #include <LibWeb/Layout/SVGFormattingContext.h>
  14. #include <LibWeb/Layout/SVGSVGBox.h>
  15. #include <LibWeb/Layout/TableBox.h>
  16. #include <LibWeb/Layout/TableCellBox.h>
  17. #include <LibWeb/Layout/TableFormattingContext.h>
  18. namespace Web::Layout {
  19. FormattingContext::FormattingContext(Type type, FormattingState& state, Box const& context_box, FormattingContext* parent)
  20. : m_type(type)
  21. , m_parent(parent)
  22. , m_context_box(context_box)
  23. , m_state(state)
  24. {
  25. }
  26. FormattingContext::~FormattingContext()
  27. {
  28. }
  29. bool FormattingContext::creates_block_formatting_context(const Box& box)
  30. {
  31. if (box.is_root_element())
  32. return true;
  33. if (box.is_floating())
  34. return true;
  35. if (box.is_absolutely_positioned())
  36. return true;
  37. if (box.is_inline_block())
  38. return true;
  39. if (is<TableCellBox>(box))
  40. return true;
  41. CSS::Overflow overflow_x = box.computed_values().overflow_x();
  42. if ((overflow_x != CSS::Overflow::Visible) && (overflow_x != CSS::Overflow::Clip))
  43. return true;
  44. CSS::Overflow overflow_y = box.computed_values().overflow_y();
  45. if ((overflow_y != CSS::Overflow::Visible) && (overflow_y != CSS::Overflow::Clip))
  46. return true;
  47. auto display = box.computed_values().display();
  48. if (display.is_flow_root_inside())
  49. return true;
  50. if (box.parent()) {
  51. auto parent_display = box.parent()->computed_values().display();
  52. if (parent_display.is_flex_inside()) {
  53. // FIXME: Flex items (direct children of the element with display: flex or inline-flex) if they are neither flex nor grid nor table containers themselves.
  54. if (!display.is_flex_inside())
  55. return true;
  56. }
  57. }
  58. // FIXME: table-caption
  59. // FIXME: anonymous table cells
  60. // FIXME: Elements with contain: layout, content, or paint.
  61. // FIXME: grid
  62. // FIXME: multicol
  63. // FIXME: column-span: all
  64. return false;
  65. }
  66. OwnPtr<FormattingContext> FormattingContext::create_independent_formatting_context_if_needed(FormattingState& state, Box const& child_box)
  67. {
  68. if (!child_box.can_have_children())
  69. return {};
  70. auto child_display = child_box.computed_values().display();
  71. if (is<SVGSVGBox>(child_box))
  72. return make<SVGFormattingContext>(state, child_box, this);
  73. if (child_display.is_flex_inside())
  74. return make<FlexFormattingContext>(state, child_box, this);
  75. if (creates_block_formatting_context(child_box))
  76. return make<BlockFormattingContext>(state, verify_cast<BlockContainer>(child_box), this);
  77. if (child_display.is_table_inside())
  78. return make<TableFormattingContext>(state, verify_cast<TableBox>(child_box), this);
  79. VERIFY(is_block_formatting_context());
  80. if (child_box.children_are_inline())
  81. return make<InlineFormattingContext>(state, verify_cast<BlockContainer>(child_box), static_cast<BlockFormattingContext&>(*this));
  82. // The child box is a block container that doesn't create its own BFC.
  83. // It will be formatted by this BFC.
  84. if (!child_display.is_flow_inside()) {
  85. dbgln("FIXME: Child box doesn't create BFC, but inside is also not flow! display={}", child_display.to_string());
  86. // HACK: Instead of crashing, create a dummy formatting context that does nothing.
  87. // FIXME: Remove this once it's no longer needed. It currently swallows problem with standalone
  88. // table-related boxes that don't get fixed up by CSS anonymous table box generation.
  89. struct DummyFormattingContext : public FormattingContext {
  90. DummyFormattingContext(FormattingState& state, Box const& box)
  91. : FormattingContext(Type::Block, state, box)
  92. {
  93. }
  94. virtual void run(Box const&, LayoutMode) override { }
  95. };
  96. return make<DummyFormattingContext>(state, child_box);
  97. }
  98. VERIFY(child_box.is_block_container());
  99. VERIFY(child_display.is_flow_inside());
  100. return {};
  101. }
  102. OwnPtr<FormattingContext> FormattingContext::layout_inside(Box const& child_box, LayoutMode layout_mode)
  103. {
  104. if (!child_box.can_have_children())
  105. return {};
  106. auto independent_formatting_context = create_independent_formatting_context_if_needed(m_state, child_box);
  107. if (independent_formatting_context)
  108. independent_formatting_context->run(child_box, layout_mode);
  109. else
  110. run(child_box, layout_mode);
  111. return independent_formatting_context;
  112. }
  113. static float greatest_child_width(FormattingState const& state, Box const& box)
  114. {
  115. float max_width = 0;
  116. if (box.children_are_inline()) {
  117. for (auto& child : state.get(verify_cast<BlockContainer>(box)).line_boxes) {
  118. max_width = max(max_width, child.width());
  119. }
  120. } else {
  121. box.for_each_child_of_type<Box>([&](auto& child) {
  122. max_width = max(max_width, state.get(child).border_box_width());
  123. });
  124. }
  125. return max_width;
  126. }
  127. FormattingContext::ShrinkToFitResult FormattingContext::calculate_shrink_to_fit_widths(Box const& box)
  128. {
  129. // Calculate the preferred width by formatting the content without breaking lines
  130. // other than where explicit line breaks occur.
  131. (void)layout_inside(box, LayoutMode::OnlyRequiredLineBreaks);
  132. float preferred_width = greatest_child_width(m_state, box);
  133. // Also calculate the preferred minimum width, e.g., by trying all possible line breaks.
  134. // CSS 2.2 does not define the exact algorithm.
  135. (void)layout_inside(box, LayoutMode::AllPossibleLineBreaks);
  136. float preferred_minimum_width = greatest_child_width(m_state, box);
  137. return { preferred_width, preferred_minimum_width };
  138. }
  139. static Gfx::FloatSize solve_replaced_size_constraint(FormattingState const& state, float w, float h, ReplacedBox const& box)
  140. {
  141. // 10.4 Minimum and maximum widths: 'min-width' and 'max-width'
  142. auto const& containing_block = *box.containing_block();
  143. auto const& containing_block_state = state.get(containing_block);
  144. auto width_of_containing_block = CSS::Length::make_px(containing_block_state.content_width);
  145. auto height_of_containing_block = CSS::Length::make_px(containing_block_state.content_height);
  146. auto specified_min_width = box.computed_values().min_width().has_value() ? box.computed_values().min_width()->resolved(box, width_of_containing_block).to_px(box) : 0;
  147. auto specified_max_width = box.computed_values().max_width().has_value() ? box.computed_values().max_width()->resolved(box, width_of_containing_block).to_px(box) : w;
  148. auto specified_min_height = box.computed_values().min_height().has_value() ? box.computed_values().min_height()->resolved(box, height_of_containing_block).to_px(box) : 0;
  149. auto specified_max_height = box.computed_values().max_height().has_value() ? box.computed_values().max_height()->resolved(box, height_of_containing_block).to_px(box) : h;
  150. auto min_width = min(specified_min_width, specified_max_width);
  151. auto max_width = max(specified_min_width, specified_max_width);
  152. auto min_height = min(specified_min_height, specified_max_height);
  153. auto max_height = max(specified_min_height, specified_max_height);
  154. if (w > max_width)
  155. return { w, max(max_width * h / w, min_height) };
  156. if (w < min_width)
  157. return { max_width, min(min_width * h / w, max_height) };
  158. if (h > max_height)
  159. return { max(max_height * w / h, min_width), max_height };
  160. if (h < min_height)
  161. return { min(min_height * w / h, max_width), min_height };
  162. if ((w > max_width && h > max_height) && (max_width / w < max_height / h))
  163. return { max_width, max(min_height, max_width * h / w) };
  164. if ((w > max_width && h > max_height) && (max_width / w > max_height / h))
  165. return { max(min_width, max_height * w / h), max_height };
  166. if ((w < min_width && h < min_height) && (min_width / w < min_height / h))
  167. return { min(max_width, min_height * w / h), min_height };
  168. if ((w < min_width && h < min_height) && (min_width / w > min_height / h))
  169. return { min_width, min(max_height, min_width * h / w) };
  170. if (w < min_width && h > max_height)
  171. return { min_width, max_height };
  172. if (w > max_width && h < min_height)
  173. return { max_width, min_height };
  174. return { w, h };
  175. }
  176. float FormattingContext::compute_auto_height_for_block_level_element(FormattingState const& state, Box const& box)
  177. {
  178. if (creates_block_formatting_context(box))
  179. return compute_auto_height_for_block_formatting_context_root(state, verify_cast<BlockContainer>(box));
  180. auto const& box_state = state.get(box);
  181. // https://www.w3.org/TR/CSS22/visudet.html#normal-block
  182. // 10.6.3 Block-level non-replaced elements in normal flow when 'overflow' computes to 'visible'
  183. // The element's height is the distance from its top content edge to the first applicable of the following:
  184. // 1. the bottom edge of the last line box, if the box establishes a inline formatting context with one or more lines
  185. if (box.children_are_inline() && !box_state.line_boxes.is_empty()) {
  186. // Find the top content edge (if negative).
  187. float top_content_edge = 0;
  188. for (auto const& fragment : box_state.line_boxes.first().fragments()) {
  189. float fragment_top_content_edge = fragment.offset().y() - fragment.border_box_top();
  190. if (fragment_top_content_edge < top_content_edge)
  191. top_content_edge = fragment_top_content_edge;
  192. }
  193. return box_state.line_boxes.last().bottom() - top_content_edge;
  194. }
  195. // 2. the bottom edge of the bottom (possibly collapsed) margin of its last in-flow child, if the child's bottom margin does not collapse with the element's bottom margin
  196. // FIXME: 3. the bottom border edge of the last in-flow child whose top margin doesn't collapse with the element's bottom margin
  197. if (!box.children_are_inline()) {
  198. Optional<float> top;
  199. Optional<float> bottom;
  200. box.for_each_child_of_type<Box>([&](Layout::Box& child_box) {
  201. if (child_box.is_absolutely_positioned() || child_box.is_floating())
  202. return;
  203. // FIXME: Handle margin collapsing.
  204. auto const& child_box_state = state.get(child_box);
  205. float child_box_top = child_box_state.offset.y() - child_box_state.border_box_top();
  206. float child_box_bottom = child_box_state.offset.y() + child_box_state.content_height + child_box_state.margin_box_bottom();
  207. if (!top.has_value() || child_box_top < top.value())
  208. top = child_box_top;
  209. if (!bottom.has_value() || child_box_bottom > bottom.value())
  210. bottom = child_box_bottom;
  211. });
  212. return bottom.value_or(0) - top.value_or(0);
  213. }
  214. // 4. zero, otherwise
  215. return 0;
  216. }
  217. // https://www.w3.org/TR/CSS22/visudet.html#root-height
  218. float FormattingContext::compute_auto_height_for_block_formatting_context_root(FormattingState const& state, BlockContainer const& root)
  219. {
  220. // 10.6.7 'Auto' heights for block formatting context roots
  221. Optional<float> top;
  222. Optional<float> bottom;
  223. if (root.children_are_inline()) {
  224. // If it only has inline-level children, the height is the distance between
  225. // the top content edge and the bottom of the bottommost line box.
  226. auto const& line_boxes = state.get(root).line_boxes;
  227. top = 0;
  228. if (!line_boxes.is_empty()) {
  229. // Find the top edge (if negative).
  230. for (auto const& fragment : line_boxes.first().fragments()) {
  231. float fragment_top_content_edge = fragment.offset().y();
  232. if (!top.has_value() || fragment_top_content_edge < *top)
  233. top = fragment_top_content_edge;
  234. }
  235. // Find the bottom edge.
  236. bottom = line_boxes.last().bottom();
  237. }
  238. } else {
  239. // If it has block-level children, the height is the distance between
  240. // the top margin-edge of the topmost block-level child box
  241. // and the bottom margin-edge of the bottommost block-level child box.
  242. root.for_each_child_of_type<Box>([&](Layout::Box& child_box) {
  243. // Absolutely positioned children are ignored,
  244. // and relatively positioned boxes are considered without their offset.
  245. // Note that the child box may be an anonymous block box.
  246. if (child_box.is_absolutely_positioned())
  247. return IterationDecision::Continue;
  248. // FIXME: This doesn't look right.
  249. if ((root.computed_values().overflow_y() == CSS::Overflow::Visible) && child_box.is_floating())
  250. return IterationDecision::Continue;
  251. auto const& child_box_state = state.get(child_box);
  252. float child_box_top = child_box_state.offset.y() - child_box_state.margin_box_top();
  253. float child_box_bottom = child_box_state.offset.y() + child_box_state.content_height + child_box_state.margin_box_bottom();
  254. if (!top.has_value() || child_box_top < top.value())
  255. top = child_box_top;
  256. if (!bottom.has_value() || child_box_bottom > bottom.value())
  257. bottom = child_box_bottom;
  258. return IterationDecision::Continue;
  259. });
  260. // In addition, if the element has any floating descendants
  261. // whose bottom margin edge is below the element's bottom content edge,
  262. // then the height is increased to include those edges.
  263. root.for_each_child_of_type<Box>([&](Layout::Box& child_box) {
  264. if (!child_box.is_floating())
  265. return IterationDecision::Continue;
  266. auto const& child_box_state = state.get(child_box);
  267. float child_box_bottom = child_box_state.offset.y() + child_box_state.content_height + child_box_state.margin_box_bottom();
  268. if (!bottom.has_value() || child_box_bottom > bottom.value())
  269. bottom = child_box_bottom;
  270. return IterationDecision::Continue;
  271. });
  272. }
  273. return bottom.value_or(0) - top.value_or(0);
  274. }
  275. // 10.3.2 Inline, replaced elements, https://www.w3.org/TR/CSS22/visudet.html#inline-replaced-width
  276. float FormattingContext::tentative_width_for_replaced_element(FormattingState const& state, ReplacedBox const& box, CSS::Length const& computed_width)
  277. {
  278. auto const& containing_block = *box.containing_block();
  279. auto height_of_containing_block = CSS::Length::make_px(state.get(containing_block).content_height);
  280. auto computed_height = box.computed_values().height().has_value() ? box.computed_values().height()->resolved(box, height_of_containing_block).resolved(box) : CSS::Length::make_auto();
  281. float used_width = computed_width.to_px(box);
  282. // If 'height' and 'width' both have computed values of 'auto' and the element also has an intrinsic width,
  283. // then that intrinsic width is the used value of 'width'.
  284. if (computed_height.is_auto() && computed_width.is_auto() && box.has_intrinsic_width())
  285. return box.intrinsic_width().value();
  286. // If 'height' and 'width' both have computed values of 'auto' and the element has no intrinsic width,
  287. // but does have an intrinsic height and intrinsic ratio;
  288. // or if 'width' has a computed value of 'auto',
  289. // 'height' has some other computed value, and the element does have an intrinsic ratio; then the used value of 'width' is:
  290. //
  291. // (used height) * (intrinsic ratio)
  292. if ((computed_height.is_auto() && computed_width.is_auto() && !box.has_intrinsic_width() && box.has_intrinsic_height() && box.has_intrinsic_aspect_ratio())
  293. || (computed_width.is_auto() && box.has_intrinsic_aspect_ratio())) {
  294. return compute_height_for_replaced_element(state, box) * box.intrinsic_aspect_ratio().value();
  295. }
  296. // If 'height' and 'width' both have computed values of 'auto' and the element has an intrinsic ratio but no intrinsic height or width,
  297. // then the used value of 'width' is undefined in CSS 2.2. However, it is suggested that, if the containing block's width does not itself
  298. // depend on the replaced element's width, then the used value of 'width' is calculated from the constraint equation used for block-level,
  299. // non-replaced elements in normal flow.
  300. // Otherwise, if 'width' has a computed value of 'auto', and the element has an intrinsic width, then that intrinsic width is the used value of 'width'.
  301. if (computed_width.is_auto() && box.has_intrinsic_width())
  302. return box.intrinsic_width().value();
  303. // Otherwise, if 'width' has a computed value of 'auto', but none of the conditions above are met, then the used value of 'width' becomes 300px.
  304. // If 300px is too wide to fit the device, UAs should use the width of the largest rectangle that has a 2:1 ratio and fits the device instead.
  305. if (computed_width.is_auto())
  306. return 300;
  307. return used_width;
  308. }
  309. void FormattingContext::compute_width_for_absolutely_positioned_element(Box const& box)
  310. {
  311. if (is<ReplacedBox>(box))
  312. compute_width_for_absolutely_positioned_replaced_element(verify_cast<ReplacedBox>(box));
  313. else
  314. compute_width_for_absolutely_positioned_non_replaced_element(box);
  315. }
  316. void FormattingContext::compute_height_for_absolutely_positioned_element(Box const& box)
  317. {
  318. if (is<ReplacedBox>(box))
  319. compute_height_for_absolutely_positioned_replaced_element(verify_cast<ReplacedBox>(box));
  320. else
  321. compute_height_for_absolutely_positioned_non_replaced_element(box);
  322. }
  323. float FormattingContext::compute_width_for_replaced_element(FormattingState const& state, ReplacedBox const& box)
  324. {
  325. // 10.3.4 Block-level, replaced elements in normal flow...
  326. // 10.3.2 Inline, replaced elements
  327. auto zero_value = CSS::Length::make_px(0);
  328. auto const& containing_block = *box.containing_block();
  329. auto width_of_containing_block = CSS::Length::make_px(state.get(containing_block).content_width);
  330. auto margin_left = box.computed_values().margin().left.resolved(box, width_of_containing_block).resolved(box);
  331. auto margin_right = box.computed_values().margin().right.resolved(box, width_of_containing_block).resolved(box);
  332. // A computed value of 'auto' for 'margin-left' or 'margin-right' becomes a used value of '0'.
  333. if (margin_left.is_auto())
  334. margin_left = zero_value;
  335. if (margin_right.is_auto())
  336. margin_right = zero_value;
  337. auto specified_width = box.computed_values().width().has_value() ? box.computed_values().width()->resolved(box, width_of_containing_block).resolved(box) : CSS::Length::make_auto();
  338. // 1. The tentative used width is calculated (without 'min-width' and 'max-width')
  339. auto used_width = tentative_width_for_replaced_element(state, box, specified_width);
  340. // 2. The tentative used width is greater than 'max-width', the rules above are applied again,
  341. // but this time using the computed value of 'max-width' as the computed value for 'width'.
  342. auto specified_max_width = box.computed_values().max_width().has_value() ? box.computed_values().max_width()->resolved(box, width_of_containing_block).resolved(box) : CSS::Length::make_auto();
  343. if (!specified_max_width.is_auto()) {
  344. if (used_width > specified_max_width.to_px(box)) {
  345. used_width = tentative_width_for_replaced_element(state, box, specified_max_width);
  346. }
  347. }
  348. // 3. If the resulting width is smaller than 'min-width', the rules above are applied again,
  349. // but this time using the value of 'min-width' as the computed value for 'width'.
  350. auto specified_min_width = box.computed_values().min_width().has_value() ? box.computed_values().min_width()->resolved(box, width_of_containing_block).resolved(box) : CSS::Length::make_auto();
  351. if (!specified_min_width.is_auto()) {
  352. if (used_width < specified_min_width.to_px(box)) {
  353. used_width = tentative_width_for_replaced_element(state, box, specified_min_width);
  354. }
  355. }
  356. return used_width;
  357. }
  358. // 10.6.2 Inline replaced elements, block-level replaced elements in normal flow, 'inline-block' replaced elements in normal flow and floating replaced elements
  359. // https://www.w3.org/TR/CSS22/visudet.html#inline-replaced-height
  360. float FormattingContext::tentative_height_for_replaced_element(FormattingState const& state, ReplacedBox const& box, CSS::Length const& computed_height)
  361. {
  362. auto const& containing_block = *box.containing_block();
  363. auto width_of_containing_block = CSS::Length::make_px(state.get(containing_block).content_width);
  364. auto computed_width = box.computed_values().width().has_value() ? box.computed_values().width()->resolved(box, width_of_containing_block).resolved(box) : CSS::Length::make_auto();
  365. // If 'height' and 'width' both have computed values of 'auto' and the element also has
  366. // an intrinsic height, then that intrinsic height is the used value of 'height'.
  367. if (computed_width.is_auto() && computed_height.is_auto() && box.has_intrinsic_height())
  368. return box.intrinsic_height().value();
  369. // Otherwise, if 'height' has a computed value of 'auto', and the element has an intrinsic ratio then the used value of 'height' is:
  370. //
  371. // (used width) / (intrinsic ratio)
  372. if (computed_height.is_auto() && box.has_intrinsic_aspect_ratio())
  373. return compute_width_for_replaced_element(state, box) / box.intrinsic_aspect_ratio().value();
  374. // Otherwise, if 'height' has a computed value of 'auto', and the element has an intrinsic height, then that intrinsic height is the used value of 'height'.
  375. if (computed_height.is_auto() && box.has_intrinsic_height())
  376. return box.intrinsic_height().value();
  377. // Otherwise, if 'height' has a computed value of 'auto', but none of the conditions above are met,
  378. // then the used value of 'height' must be set to the height of the largest rectangle that has a 2:1 ratio, has a height not greater than 150px,
  379. // and has a width not greater than the device width.
  380. if (computed_height.is_auto())
  381. return 150;
  382. return computed_height.to_px(box);
  383. }
  384. float FormattingContext::compute_height_for_replaced_element(FormattingState const& state, ReplacedBox const& box)
  385. {
  386. // 10.6.2 Inline replaced elements, block-level replaced elements in normal flow,
  387. // 'inline-block' replaced elements in normal flow and floating replaced elements
  388. auto const& containing_block = *box.containing_block();
  389. auto const& containing_block_state = state.get(containing_block);
  390. auto width_of_containing_block = CSS::Length::make_px(containing_block_state.content_width);
  391. auto height_of_containing_block = CSS::Length::make_px(containing_block_state.content_height);
  392. auto specified_width = box.computed_values().width().has_value() ? box.computed_values().width()->resolved(box, width_of_containing_block).resolved(box) : CSS::Length::make_auto();
  393. auto specified_height = box.computed_values().height().has_value() ? box.computed_values().height()->resolved(box, height_of_containing_block).resolved(box) : CSS::Length::make_auto();
  394. float used_height = tentative_height_for_replaced_element(state, box, specified_height);
  395. if (specified_width.is_auto() && specified_height.is_auto() && box.has_intrinsic_aspect_ratio()) {
  396. float w = tentative_width_for_replaced_element(state, box, specified_width);
  397. float h = used_height;
  398. used_height = solve_replaced_size_constraint(state, w, h, box).height();
  399. }
  400. return used_height;
  401. }
  402. void FormattingContext::compute_width_for_absolutely_positioned_non_replaced_element(Box const& box)
  403. {
  404. auto& containing_block_state = m_state.get(*box.containing_block());
  405. auto& box_state = m_state.get_mutable(box);
  406. auto width_of_containing_block = CSS::Length::make_px(containing_block_state.content_width);
  407. auto& computed_values = box.computed_values();
  408. auto zero_value = CSS::Length::make_px(0);
  409. auto margin_left = CSS::Length::make_auto();
  410. auto margin_right = CSS::Length::make_auto();
  411. const auto border_left = computed_values.border_left().width;
  412. const auto border_right = computed_values.border_right().width;
  413. const auto padding_left = computed_values.padding().left.resolved(box, width_of_containing_block).to_px(box);
  414. const auto padding_right = computed_values.padding().right.resolved(box, width_of_containing_block).to_px(box);
  415. auto try_compute_width = [&](const auto& a_width) {
  416. margin_left = computed_values.margin().left.resolved(box, width_of_containing_block).resolved(box);
  417. margin_right = computed_values.margin().right.resolved(box, width_of_containing_block).resolved(box);
  418. auto left = computed_values.offset().left.resolved(box, width_of_containing_block).resolved(box);
  419. auto right = computed_values.offset().right.resolved(box, width_of_containing_block).resolved(box);
  420. auto width = a_width;
  421. auto solve_for_left = [&] {
  422. return CSS::Length(containing_block_state.content_width - margin_left.to_px(box) - border_left - padding_left - width.to_px(box) - padding_right - border_right - margin_right.to_px(box) - right.to_px(box), CSS::Length::Type::Px);
  423. };
  424. auto solve_for_width = [&] {
  425. return CSS::Length(containing_block_state.content_width - left.to_px(box) - margin_left.to_px(box) - border_left - padding_left - padding_right - border_right - margin_right.to_px(box) - right.to_px(box), CSS::Length::Type::Px);
  426. };
  427. auto solve_for_right = [&] {
  428. return CSS::Length(containing_block_state.content_width - left.to_px(box) - margin_left.to_px(box) - border_left - padding_left - width.to_px(box) - padding_right - border_right - margin_right.to_px(box), CSS::Length::Type::Px);
  429. };
  430. // If all three of 'left', 'width', and 'right' are 'auto':
  431. if (left.is_auto() && width.is_auto() && right.is_auto()) {
  432. // First set any 'auto' values for 'margin-left' and 'margin-right' to 0.
  433. if (margin_left.is_auto())
  434. margin_left = CSS::Length::make_px(0);
  435. if (margin_right.is_auto())
  436. margin_right = CSS::Length::make_px(0);
  437. // Then, if the 'direction' property of the element establishing the static-position containing block
  438. // is 'ltr' set 'left' to the static position and apply rule number three below;
  439. // otherwise, set 'right' to the static position and apply rule number one below.
  440. // FIXME: This is very hackish.
  441. left = CSS::Length::make_px(0);
  442. goto Rule3;
  443. }
  444. if (!left.is_auto() && !width.is_auto() && !right.is_auto()) {
  445. // FIXME: This should be solved in a more complicated way.
  446. return width;
  447. }
  448. if (margin_left.is_auto())
  449. margin_left = CSS::Length::make_px(0);
  450. if (margin_right.is_auto())
  451. margin_right = CSS::Length::make_px(0);
  452. // 1. 'left' and 'width' are 'auto' and 'right' is not 'auto',
  453. // then the width is shrink-to-fit. Then solve for 'left'
  454. if (left.is_auto() && width.is_auto() && !right.is_auto()) {
  455. auto result = calculate_shrink_to_fit_widths(box);
  456. solve_for_left();
  457. auto available_width = solve_for_width();
  458. width = CSS::Length(min(max(result.preferred_minimum_width, available_width.to_px(box)), result.preferred_width), CSS::Length::Type::Px);
  459. }
  460. // 2. 'left' and 'right' are 'auto' and 'width' is not 'auto',
  461. // then if the 'direction' property of the element establishing
  462. // the static-position containing block is 'ltr' set 'left'
  463. // to the static position, otherwise set 'right' to the static position.
  464. // Then solve for 'left' (if 'direction is 'rtl') or 'right' (if 'direction' is 'ltr').
  465. else if (left.is_auto() && right.is_auto() && !width.is_auto()) {
  466. // FIXME: Check direction
  467. // FIXME: Use the static-position containing block
  468. left = zero_value;
  469. right = solve_for_right();
  470. }
  471. // 3. 'width' and 'right' are 'auto' and 'left' is not 'auto',
  472. // then the width is shrink-to-fit. Then solve for 'right'
  473. else if (width.is_auto() && right.is_auto() && !left.is_auto()) {
  474. Rule3:
  475. auto result = calculate_shrink_to_fit_widths(box);
  476. auto available_width = solve_for_width();
  477. width = CSS::Length(min(max(result.preferred_minimum_width, available_width.to_px(box)), result.preferred_width), CSS::Length::Type::Px);
  478. right = solve_for_right();
  479. }
  480. // 4. 'left' is 'auto', 'width' and 'right' are not 'auto', then solve for 'left'
  481. else if (left.is_auto() && !width.is_auto() && !right.is_auto()) {
  482. left = solve_for_left();
  483. }
  484. // 5. 'width' is 'auto', 'left' and 'right' are not 'auto', then solve for 'width'
  485. else if (width.is_auto() && !left.is_auto() && !right.is_auto()) {
  486. width = solve_for_width();
  487. }
  488. // 6. 'right' is 'auto', 'left' and 'width' are not 'auto', then solve for 'right'
  489. else if (right.is_auto() && !left.is_auto() && !width.is_auto()) {
  490. right = solve_for_right();
  491. }
  492. return width;
  493. };
  494. auto specified_width = computed_values.width().has_value() ? computed_values.width()->resolved(box, width_of_containing_block).resolved(box) : CSS::Length::make_auto();
  495. // 1. The tentative used width is calculated (without 'min-width' and 'max-width')
  496. auto used_width = try_compute_width(specified_width);
  497. // 2. The tentative used width is greater than 'max-width', the rules above are applied again,
  498. // but this time using the computed value of 'max-width' as the computed value for 'width'.
  499. auto specified_max_width = computed_values.max_width().has_value() ? computed_values.max_width()->resolved(box, width_of_containing_block).resolved(box) : CSS::Length::make_auto();
  500. if (!specified_max_width.is_auto()) {
  501. if (used_width.to_px(box) > specified_max_width.to_px(box)) {
  502. used_width = try_compute_width(specified_max_width);
  503. }
  504. }
  505. // 3. If the resulting width is smaller than 'min-width', the rules above are applied again,
  506. // but this time using the value of 'min-width' as the computed value for 'width'.
  507. auto specified_min_width = computed_values.min_width().has_value() ? computed_values.min_width()->resolved(box, width_of_containing_block).resolved(box) : CSS::Length::make_auto();
  508. if (!specified_min_width.is_auto()) {
  509. if (used_width.to_px(box) < specified_min_width.to_px(box)) {
  510. used_width = try_compute_width(specified_min_width);
  511. }
  512. }
  513. box_state.content_width = used_width.to_px(box);
  514. box_state.margin_left = margin_left.to_px(box);
  515. box_state.margin_right = margin_right.to_px(box);
  516. box_state.border_left = border_left;
  517. box_state.border_right = border_right;
  518. box_state.padding_left = padding_left;
  519. box_state.padding_right = padding_right;
  520. }
  521. void FormattingContext::compute_width_for_absolutely_positioned_replaced_element(ReplacedBox const& box)
  522. {
  523. // 10.3.8 Absolutely positioned, replaced elements
  524. // The used value of 'width' is determined as for inline replaced elements.
  525. // FIXME: This const_cast is gross.
  526. const_cast<ReplacedBox&>(box).prepare_for_replaced_layout();
  527. m_state.get_mutable(box).content_width = compute_width_for_replaced_element(m_state, box);
  528. }
  529. // https://www.w3.org/TR/CSS22/visudet.html#abs-non-replaced-height
  530. void FormattingContext::compute_height_for_absolutely_positioned_non_replaced_element(Box const& box)
  531. {
  532. // 10.6.4 Absolutely positioned, non-replaced elements
  533. // FIXME: The section below is partly on-spec, partly ad-hoc.
  534. auto& computed_values = box.computed_values();
  535. auto const& containing_block = *box.containing_block();
  536. auto const& containing_block_state = m_state.get(containing_block);
  537. auto& box_state = m_state.get_mutable(box);
  538. auto width_of_containing_block = CSS::Length::make_px(containing_block_state.content_width);
  539. auto height_of_containing_block = CSS::Length::make_px(containing_block_state.content_height);
  540. CSS::Length specified_top = computed_values.offset().top.resolved(box, height_of_containing_block).resolved(box);
  541. CSS::Length specified_bottom = computed_values.offset().bottom.resolved(box, height_of_containing_block).resolved(box);
  542. CSS::Length specified_height = CSS::Length::make_auto();
  543. if (computed_values.height().has_value() && computed_values.height()->is_percentage()
  544. && !(containing_block.computed_values().height().has_value() && containing_block.computed_values().height()->is_length() && containing_block.computed_values().height()->length().is_absolute())) {
  545. // specified_height is already auto
  546. } else {
  547. specified_height = computed_values.height().has_value() ? computed_values.height()->resolved(box, height_of_containing_block).resolved(box) : CSS::Length::make_auto();
  548. }
  549. auto specified_max_height = computed_values.max_height().has_value() ? computed_values.max_height()->resolved(box, height_of_containing_block).resolved(box) : CSS::Length::make_auto();
  550. auto specified_min_height = computed_values.min_height().has_value() ? computed_values.min_height()->resolved(box, height_of_containing_block).resolved(box) : CSS::Length::make_auto();
  551. box_state.margin_top = computed_values.margin().top.resolved(box, width_of_containing_block).to_px(box);
  552. box_state.margin_bottom = computed_values.margin().bottom.resolved(box, width_of_containing_block).to_px(box);
  553. box_state.border_top = computed_values.border_top().width;
  554. box_state.border_bottom = computed_values.border_bottom().width;
  555. box_state.padding_top = computed_values.padding().top.resolved(box, width_of_containing_block).to_px(box);
  556. box_state.padding_bottom = computed_values.padding().bottom.resolved(box, width_of_containing_block).to_px(box);
  557. if (specified_height.is_auto() && specified_top.is_auto() && specified_bottom.is_auto()) {
  558. specified_height = CSS::Length(compute_auto_height_for_block_level_element(m_state, box), CSS::Length::Type::Px);
  559. }
  560. else if (specified_height.is_auto() && !specified_top.is_auto() && specified_bottom.is_auto()) {
  561. specified_height = CSS::Length(compute_auto_height_for_block_level_element(m_state, box), CSS::Length::Type::Px);
  562. box_state.offset_bottom = containing_block_state.content_height - specified_height.to_px(box) - specified_top.to_px(box) - box_state.margin_top - box_state.padding_top - box_state.border_top - box_state.margin_bottom - box_state.padding_bottom - box_state.border_bottom;
  563. }
  564. else if (specified_height.is_auto() && !specified_top.is_auto() && !specified_bottom.is_auto()) {
  565. specified_height = CSS::Length(containing_block_state.content_height - specified_top.to_px(box) - box_state.margin_top - box_state.padding_top - box_state.border_top - specified_bottom.to_px(box) - box_state.margin_bottom - box_state.padding_bottom - box_state.border_bottom, CSS::Length::Type::Px);
  566. }
  567. if (!specified_height.is_auto()) {
  568. float used_height = specified_height.to_px(box);
  569. if (!specified_max_height.is_auto())
  570. used_height = min(used_height, specified_max_height.to_px(box));
  571. if (!specified_min_height.is_auto())
  572. used_height = max(used_height, specified_min_height.to_px(box));
  573. box_state.content_height = used_height;
  574. }
  575. }
  576. void FormattingContext::layout_absolutely_positioned_element(Box const& box)
  577. {
  578. auto const& containing_block_state = m_state.get(*box.containing_block());
  579. auto width_of_containing_block = CSS::Length::make_px(containing_block_state.content_width);
  580. auto height_of_containing_block = CSS::Length::make_px(containing_block_state.content_height);
  581. auto& box_state = m_state.get_mutable(box);
  582. auto specified_width = box.computed_values().width().has_value() ? box.computed_values().width()->resolved(box, width_of_containing_block).resolved(box) : CSS::Length::make_auto();
  583. compute_width_for_absolutely_positioned_element(box);
  584. auto independent_formatting_context = layout_inside(box, LayoutMode::Default);
  585. compute_height_for_absolutely_positioned_element(box);
  586. box_state.margin_left = box.computed_values().margin().left.resolved(box, width_of_containing_block).to_px(box);
  587. box_state.margin_top = box.computed_values().margin().top.resolved(box, height_of_containing_block).to_px(box);
  588. box_state.margin_right = box.computed_values().margin().right.resolved(box, width_of_containing_block).to_px(box);
  589. box_state.margin_bottom = box.computed_values().margin().bottom.resolved(box, height_of_containing_block).to_px(box);
  590. box_state.border_left = box.computed_values().border_left().width;
  591. box_state.border_right = box.computed_values().border_right().width;
  592. box_state.border_top = box.computed_values().border_top().width;
  593. box_state.border_bottom = box.computed_values().border_bottom().width;
  594. box_state.offset_left = box.computed_values().offset().left.resolved(box, width_of_containing_block).to_px(box);
  595. box_state.offset_top = box.computed_values().offset().top.resolved(box, height_of_containing_block).to_px(box);
  596. box_state.offset_right = box.computed_values().offset().right.resolved(box, width_of_containing_block).to_px(box);
  597. box_state.offset_bottom = box.computed_values().offset().bottom.resolved(box, height_of_containing_block).to_px(box);
  598. auto is_auto = [](auto const& length_percentage) {
  599. return length_percentage.is_length() && length_percentage.length().is_auto();
  600. };
  601. if (is_auto(box.computed_values().offset().left) && specified_width.is_auto() && is_auto(box.computed_values().offset().right)) {
  602. if (is_auto(box.computed_values().margin().left))
  603. box_state.margin_left = 0;
  604. if (is_auto(box.computed_values().margin().right))
  605. box_state.margin_right = 0;
  606. }
  607. Gfx::FloatPoint used_offset;
  608. if (!is_auto(box.computed_values().offset().left)) {
  609. float x_offset = box_state.offset_left
  610. + box_state.border_box_left();
  611. used_offset.set_x(x_offset + box_state.margin_left);
  612. } else if (!is_auto(box.computed_values().offset().right)) {
  613. float x_offset = 0
  614. - box_state.offset_right
  615. - box_state.border_box_right();
  616. used_offset.set_x(containing_block_state.content_width + x_offset - box_state.content_width - box_state.margin_right);
  617. } else {
  618. float x_offset = box_state.margin_box_left();
  619. used_offset.set_x(x_offset);
  620. }
  621. if (!is_auto(box.computed_values().offset().top)) {
  622. float y_offset = box_state.offset_top
  623. + box_state.border_box_top();
  624. used_offset.set_y(y_offset + box_state.margin_top);
  625. } else if (!is_auto(box.computed_values().offset().bottom)) {
  626. float y_offset = 0
  627. - box_state.offset_bottom
  628. - box_state.border_box_bottom();
  629. used_offset.set_y(containing_block_state.content_height + y_offset - box_state.content_height - box_state.margin_bottom);
  630. } else {
  631. float y_offset = box_state.margin_box_top();
  632. used_offset.set_y(y_offset);
  633. }
  634. box_state.offset = used_offset;
  635. if (independent_formatting_context)
  636. independent_formatting_context->parent_context_did_dimension_child_root_box();
  637. }
  638. void FormattingContext::compute_height_for_absolutely_positioned_replaced_element(ReplacedBox const& box)
  639. {
  640. // 10.6.5 Absolutely positioned, replaced elements
  641. // The used value of 'height' is determined as for inline replaced elements.
  642. m_state.get_mutable(box).content_height = compute_height_for_replaced_element(m_state, box);
  643. }
  644. void FormattingContext::compute_position(Box const& box)
  645. {
  646. // 9.4.3 Relative positioning
  647. // Once a box has been laid out according to the normal flow or floated, it may be shifted relative to this position.
  648. if (box.computed_values().position() != CSS::Position::Relative)
  649. return;
  650. auto& box_state = m_state.get_mutable(box);
  651. auto const& computed_values = box.computed_values();
  652. float width_of_containing_block = m_state.get(*box.containing_block()).content_width;
  653. auto width_of_containing_block_as_length = CSS::Length::make_px(width_of_containing_block);
  654. auto specified_left = computed_values.offset().left.resolved(box, width_of_containing_block_as_length).resolved(box);
  655. auto specified_right = computed_values.offset().right.resolved(box, width_of_containing_block_as_length).resolved(box);
  656. if (specified_left.is_auto() && specified_right.is_auto()) {
  657. // If both 'left' and 'right' are 'auto' (their initial values), the used values are '0' (i.e., the boxes stay in their original position).
  658. box_state.offset_left = 0;
  659. box_state.offset_right = 0;
  660. } else if (specified_left.is_auto()) {
  661. // If 'left' is 'auto', its used value is minus the value of 'right' (i.e., the boxes move to the left by the value of 'right').
  662. box_state.offset_right = specified_right.to_px(box);
  663. box_state.offset_left = 0 - box_state.offset_right;
  664. } else if (specified_right.is_auto()) {
  665. // If 'right' is specified as 'auto', its used value is minus the value of 'left'.
  666. box_state.offset_left = specified_left.to_px(box);
  667. box_state.offset_right = 0 - box_state.offset_left;
  668. } else {
  669. // If neither 'left' nor 'right' is 'auto', the position is over-constrained, and one of them has to be ignored.
  670. // If the 'direction' property of the containing block is 'ltr', the value of 'left' wins and 'right' becomes -'left'.
  671. // If 'direction' of the containing block is 'rtl', 'right' wins and 'left' is ignored.
  672. // FIXME: Check direction (assuming 'ltr' for now).
  673. box_state.offset_left = specified_left.to_px(box);
  674. box_state.offset_right = 0 - box_state.offset_left;
  675. }
  676. }
  677. FormattingState::IntrinsicSizes FormattingContext::calculate_intrinsic_sizes(Layout::Box const& box) const
  678. {
  679. // If we have cached intrinsic sizes for this box, use them.
  680. auto it = m_state.intrinsic_sizes.find(&box);
  681. if (it != m_state.intrinsic_sizes.end())
  682. return it->value;
  683. // Nothing cached, perform two throwaway layouts to determine the intrinsic sizes.
  684. // FIXME: This should handle replaced elements with "native" intrinsic size properly!
  685. auto& cached_box_sizes = m_state.intrinsic_sizes.ensure(&box);
  686. auto const& containing_block = *box.containing_block();
  687. {
  688. FormattingState throwaway_state(&m_state);
  689. throwaway_state.get_mutable(containing_block).content_width = INFINITY;
  690. throwaway_state.get_mutable(containing_block).content_height = INFINITY;
  691. auto independent_formatting_context = const_cast<FormattingContext*>(this)->create_independent_formatting_context_if_needed(throwaway_state, box);
  692. VERIFY(independent_formatting_context);
  693. independent_formatting_context->run(box, LayoutMode::OnlyRequiredLineBreaks);
  694. cached_box_sizes.max_content_size.set_width(greatest_child_width(throwaway_state, box));
  695. cached_box_sizes.max_content_size.set_height(BlockFormattingContext::compute_theoretical_height(throwaway_state, box));
  696. }
  697. {
  698. FormattingState throwaway_state(&m_state);
  699. throwaway_state.get_mutable(containing_block).content_width = 0;
  700. throwaway_state.get_mutable(containing_block).content_height = 0;
  701. auto independent_formatting_context = const_cast<FormattingContext*>(this)->create_independent_formatting_context_if_needed(throwaway_state, box);
  702. VERIFY(independent_formatting_context);
  703. independent_formatting_context->run(box, LayoutMode::AllPossibleLineBreaks);
  704. cached_box_sizes.min_content_size.set_width(greatest_child_width(throwaway_state, box));
  705. cached_box_sizes.min_content_size.set_height(BlockFormattingContext::compute_theoretical_height(throwaway_state, box));
  706. }
  707. return cached_box_sizes;
  708. }
  709. FormattingContext::MinAndMaxContentSize FormattingContext::calculate_min_and_max_content_width(Layout::Box const& box) const
  710. {
  711. auto const& sizes = calculate_intrinsic_sizes(box);
  712. return { sizes.min_content_size.width(), sizes.max_content_size.width() };
  713. }
  714. FormattingContext::MinAndMaxContentSize FormattingContext::calculate_min_and_max_content_height(Layout::Box const& box) const
  715. {
  716. auto const& sizes = calculate_intrinsic_sizes(box);
  717. return { sizes.min_content_size.height(), sizes.max_content_size.height() };
  718. }
  719. float FormattingContext::calculate_fit_content_size(float min_content_size, float max_content_size, Optional<float> available_space) const
  720. {
  721. // If the available space in a given axis is definite, equal to clamp(min-content size, stretch-fit size, max-content size)
  722. // (i.e. max(min-content size, min(max-content size, stretch-fit size))).
  723. if (available_space.has_value()) {
  724. // FIXME: Compute the real stretch-fit size.
  725. auto stretch_fit_size = *available_space;
  726. auto s = max(min_content_size, min(max_content_size, stretch_fit_size));
  727. return s;
  728. }
  729. // FIXME: When sizing under a min-content constraint, equal to the min-content size.
  730. // Otherwise, equal to the max-content size in that axis.
  731. return max_content_size;
  732. }
  733. float FormattingContext::calculate_fit_content_width(Layout::Box const& box, Optional<float> available_space) const
  734. {
  735. auto [min_content_size, max_content_size] = calculate_min_and_max_content_width(box);
  736. return calculate_fit_content_size(min_content_size, max_content_size, available_space);
  737. }
  738. float FormattingContext::calculate_fit_content_height(Layout::Box const& box, Optional<float> available_space) const
  739. {
  740. auto [min_content_size, max_content_size] = calculate_min_and_max_content_height(box);
  741. return calculate_fit_content_size(min_content_size, max_content_size, available_space);
  742. }
  743. }