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SPDX License Identifiers are a more compact / standardized way of representing file license information. See: https://spdx.dev/resources/use/#identifiers This was done with the `ambr` search and replace tool. ambr --no-parent-ignore --key-from-file --rep-from-file key.txt rep.txt *
574 lines
26 KiB
C++
574 lines
26 KiB
C++
/*
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* Copyright (c) 2020, Andreas Kling <kling@serenityos.org>
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*
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* SPDX-License-Identifier: BSD-2-Clause
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*/
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#include <LibWeb/CSS/Length.h>
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#include <LibWeb/DOM/Node.h>
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#include <LibWeb/Layout/BlockBox.h>
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#include <LibWeb/Layout/BlockFormattingContext.h>
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#include <LibWeb/Layout/Box.h>
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#include <LibWeb/Layout/InitialContainingBlockBox.h>
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#include <LibWeb/Layout/InlineFormattingContext.h>
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#include <LibWeb/Layout/ListItemBox.h>
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#include <LibWeb/Layout/ReplacedBox.h>
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#include <LibWeb/Page/Frame.h>
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namespace Web::Layout {
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BlockFormattingContext::BlockFormattingContext(Box& context_box, FormattingContext* parent)
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: FormattingContext(context_box, parent)
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{
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}
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BlockFormattingContext::~BlockFormattingContext()
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{
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}
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bool BlockFormattingContext::is_initial() const
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{
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return is<InitialContainingBlockBox>(context_box());
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}
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void BlockFormattingContext::run(Box& box, LayoutMode layout_mode)
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{
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if (is_initial()) {
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layout_initial_containing_block(layout_mode);
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return;
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}
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// FIXME: BFC currently computes the width+height of the target box.
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// This is necessary to be able to place absolutely positioned descendants.
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// The same work is also done by the parent BFC for each of its blocks..
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if (layout_mode == LayoutMode::Default)
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compute_width(box);
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if (box.children_are_inline()) {
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layout_inline_children(box, layout_mode);
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} else {
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layout_block_level_children(box, layout_mode);
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}
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if (layout_mode == LayoutMode::Default) {
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compute_height(box);
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box.for_each_child_of_type<Box>([&](auto& child_box) {
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if (child_box.is_absolutely_positioned()) {
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layout_absolutely_positioned_element(child_box);
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}
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return IterationDecision::Continue;
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});
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}
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}
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void BlockFormattingContext::compute_width(Box& box)
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{
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if (box.is_absolutely_positioned()) {
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compute_width_for_absolutely_positioned_element(box);
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return;
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}
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if (is<ReplacedBox>(box)) {
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// FIXME: This should not be done *by* ReplacedBox
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auto& replaced = downcast<ReplacedBox>(box);
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replaced.prepare_for_replaced_layout();
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compute_width_for_block_level_replaced_element_in_normal_flow(replaced);
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return;
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}
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if (box.is_floating()) {
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compute_width_for_floating_box(box);
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return;
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}
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auto& computed_values = box.computed_values();
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float width_of_containing_block = box.width_of_logical_containing_block();
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auto zero_value = CSS::Length::make_px(0);
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auto margin_left = CSS::Length::make_auto();
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auto margin_right = CSS::Length::make_auto();
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const auto padding_left = computed_values.padding().left.resolved_or_zero(box, width_of_containing_block);
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const auto padding_right = computed_values.padding().right.resolved_or_zero(box, width_of_containing_block);
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auto try_compute_width = [&](const auto& a_width) {
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CSS::Length width = a_width;
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margin_left = computed_values.margin().left.resolved_or_zero(box, width_of_containing_block);
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margin_right = computed_values.margin().right.resolved_or_zero(box, width_of_containing_block);
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float total_px = computed_values.border_left().width + computed_values.border_right().width;
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for (auto& value : { margin_left, padding_left, width, padding_right, margin_right }) {
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total_px += value.to_px(box);
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}
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if (!box.is_inline()) {
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// 10.3.3 Block-level, non-replaced elements in normal flow
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// If 'width' is not 'auto' and 'border-left-width' + 'padding-left' + 'width' + 'padding-right' + 'border-right-width' (plus any of 'margin-left' or 'margin-right' that are not 'auto') is larger than the width of the containing block, then any 'auto' values for 'margin-left' or 'margin-right' are, for the following rules, treated as zero.
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if (width.is_auto() && total_px > width_of_containing_block) {
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if (margin_left.is_auto())
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margin_left = zero_value;
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if (margin_right.is_auto())
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margin_right = zero_value;
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}
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// 10.3.3 cont'd.
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auto underflow_px = width_of_containing_block - total_px;
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if (width.is_auto()) {
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if (margin_left.is_auto())
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margin_left = zero_value;
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if (margin_right.is_auto())
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margin_right = zero_value;
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if (underflow_px >= 0) {
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width = CSS::Length(underflow_px, CSS::Length::Type::Px);
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} else {
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width = zero_value;
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margin_right = CSS::Length(margin_right.to_px(box) + underflow_px, CSS::Length::Type::Px);
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}
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} else {
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if (!margin_left.is_auto() && !margin_right.is_auto()) {
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margin_right = CSS::Length(margin_right.to_px(box) + underflow_px, CSS::Length::Type::Px);
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} else if (!margin_left.is_auto() && margin_right.is_auto()) {
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margin_right = CSS::Length(underflow_px, CSS::Length::Type::Px);
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} else if (margin_left.is_auto() && !margin_right.is_auto()) {
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margin_left = CSS::Length(underflow_px, CSS::Length::Type::Px);
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} else { // margin_left.is_auto() && margin_right.is_auto()
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auto half_of_the_underflow = CSS::Length(underflow_px / 2, CSS::Length::Type::Px);
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margin_left = half_of_the_underflow;
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margin_right = half_of_the_underflow;
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}
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}
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} else if (box.is_inline_block()) {
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// 10.3.9 'Inline-block', non-replaced elements in normal flow
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// A computed value of 'auto' for 'margin-left' or 'margin-right' becomes a used value of '0'.
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if (margin_left.is_auto())
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margin_left = zero_value;
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if (margin_right.is_auto())
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margin_right = zero_value;
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// If 'width' is 'auto', the used value is the shrink-to-fit width as for floating elements.
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if (width.is_auto()) {
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// Find the available width: in this case, this is the width of the containing
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// block minus the used values of 'margin-left', 'border-left-width', 'padding-left',
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// 'padding-right', 'border-right-width', 'margin-right', and the widths of any relevant scroll bars.
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float available_width = width_of_containing_block
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- margin_left.to_px(box) - computed_values.border_left().width - padding_left.to_px(box)
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- padding_right.to_px(box) - computed_values.border_right().width - margin_right.to_px(box);
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auto result = calculate_shrink_to_fit_widths(box);
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// Then the shrink-to-fit width is: min(max(preferred minimum width, available width), preferred width).
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width = CSS::Length(min(max(result.preferred_minimum_width, available_width), result.preferred_width), CSS::Length::Type::Px);
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}
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}
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return width;
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};
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auto specified_width = computed_values.width().resolved_or_auto(box, width_of_containing_block);
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// 1. The tentative used width is calculated (without 'min-width' and 'max-width')
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auto used_width = try_compute_width(specified_width);
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// 2. The tentative used width is greater than 'max-width', the rules above are applied again,
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// but this time using the computed value of 'max-width' as the computed value for 'width'.
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auto specified_max_width = computed_values.max_width().resolved_or_auto(box, width_of_containing_block);
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if (!specified_max_width.is_auto()) {
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if (used_width.to_px(box) > specified_max_width.to_px(box)) {
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used_width = try_compute_width(specified_max_width);
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}
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}
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// 3. If the resulting width is smaller than 'min-width', the rules above are applied again,
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// but this time using the value of 'min-width' as the computed value for 'width'.
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auto specified_min_width = computed_values.min_width().resolved_or_auto(box, width_of_containing_block);
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if (!specified_min_width.is_auto()) {
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if (used_width.to_px(box) < specified_min_width.to_px(box)) {
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used_width = try_compute_width(specified_min_width);
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}
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}
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box.set_width(used_width.to_px(box));
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box.box_model().margin.left = margin_left.to_px(box);
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box.box_model().margin.right = margin_right.to_px(box);
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box.box_model().border.left = computed_values.border_left().width;
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box.box_model().border.right = computed_values.border_right().width;
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box.box_model().padding.left = padding_left.to_px(box);
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box.box_model().padding.right = padding_right.to_px(box);
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}
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void BlockFormattingContext::compute_width_for_floating_box(Box& box)
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{
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// 10.3.5 Floating, non-replaced elements
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auto& computed_values = box.computed_values();
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float width_of_containing_block = box.width_of_logical_containing_block();
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auto zero_value = CSS::Length::make_px(0);
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auto margin_left = CSS::Length::make_auto();
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auto margin_right = CSS::Length::make_auto();
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const auto padding_left = computed_values.padding().left.resolved_or_zero(box, width_of_containing_block);
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const auto padding_right = computed_values.padding().right.resolved_or_zero(box, width_of_containing_block);
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// If 'margin-left', or 'margin-right' are computed as 'auto', their used value is '0'.
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if (margin_left.is_auto())
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margin_left = zero_value;
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if (margin_right.is_auto())
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margin_right = zero_value;
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auto width = computed_values.width().resolved_or_auto(box, width_of_containing_block);
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// If 'width' is computed as 'auto', the used value is the "shrink-to-fit" width.
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if (width.is_auto()) {
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// Find the available width: in this case, this is the width of the containing
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// block minus the used values of 'margin-left', 'border-left-width', 'padding-left',
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// 'padding-right', 'border-right-width', 'margin-right', and the widths of any relevant scroll bars.
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float available_width = width_of_containing_block
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- margin_left.to_px(box) - computed_values.border_left().width - padding_left.to_px(box)
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- padding_right.to_px(box) - computed_values.border_right().width - margin_right.to_px(box);
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auto result = calculate_shrink_to_fit_widths(box);
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// Then the shrink-to-fit width is: min(max(preferred minimum width, available width), preferred width).
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width = CSS::Length(min(max(result.preferred_minimum_width, available_width), result.preferred_width), CSS::Length::Type::Px);
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}
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float final_width = width.resolved_or_zero(box, width_of_containing_block).to_px(box);
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box.set_width(final_width);
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}
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void BlockFormattingContext::compute_width_for_block_level_replaced_element_in_normal_flow(ReplacedBox& box)
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{
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box.set_width(compute_width_for_replaced_element(box));
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}
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void BlockFormattingContext::compute_height(Box& box)
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{
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auto& computed_values = box.computed_values();
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auto& containing_block = *box.containing_block();
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// First, resolve the top/bottom parts of the surrounding box model.
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box.box_model().margin.top = computed_values.margin().top.resolved_or_zero(box, containing_block.width()).to_px(box);
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box.box_model().margin.bottom = computed_values.margin().bottom.resolved_or_zero(box, containing_block.width()).to_px(box);
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box.box_model().border.top = computed_values.border_top().width;
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box.box_model().border.bottom = computed_values.border_bottom().width;
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box.box_model().padding.top = computed_values.padding().top.resolved_or_zero(box, containing_block.width()).to_px(box);
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box.box_model().padding.bottom = computed_values.padding().bottom.resolved_or_zero(box, containing_block.width()).to_px(box);
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// Then work out what the height is, based on box type and CSS properties.
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float height = 0;
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if (is<ReplacedBox>(box)) {
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height = compute_height_for_replaced_element(downcast<ReplacedBox>(box));
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} else {
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if (box.computed_values().height().is_undefined_or_auto()) {
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height = compute_auto_height_for_block_level_element(box);
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} else {
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CSS::Length specified_height;
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if (computed_values.height().is_percentage() && !containing_block.computed_values().height().is_absolute()) {
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specified_height = CSS::Length::make_auto();
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} else {
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specified_height = computed_values.height().resolved_or_auto(box, containing_block.height());
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}
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auto specified_max_height = computed_values.max_height().resolved_or_auto(box, containing_block.height());
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if (!specified_height.is_auto()) {
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float used_height = specified_height.to_px(box);
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if (!specified_max_height.is_auto())
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used_height = min(used_height, specified_max_height.to_px(box));
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height = used_height;
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}
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}
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}
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box.set_height(height);
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}
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void BlockFormattingContext::compute_position(Box& box)
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{
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// 9.4.3 Relative positioning
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// Once a box has been laid out according to the normal flow or floated, it may be shifted relative to this position.
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auto& box_model = box.box_model();
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auto& computed_values = box.computed_values();
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float width_of_containing_block = box.width_of_logical_containing_block();
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auto specified_left = computed_values.offset().left.resolved_or_zero(box, width_of_containing_block);
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auto specified_right = computed_values.offset().right.resolved_or_zero(box, width_of_containing_block);
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if (specified_left.is_auto() && specified_right.is_auto()) {
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// If both 'left' and 'right' are 'auto' (their initial values), the used values are '0' (i.e., the boxes stay in their original position).
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box_model.offset.left = 0;
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box_model.offset.right = 0;
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} else if (specified_left.is_auto()) {
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// 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').
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box_model.offset.right = specified_right.to_px(box);
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box_model.offset.left = 0 - box_model.offset.right;
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} else if (specified_right.is_auto()) {
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// If 'right' is specified as 'auto', its used value is minus the value of 'left'.
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box_model.offset.left = specified_left.to_px(box);
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box_model.offset.right = 0 - box_model.offset.left;
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} else {
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// If neither 'left' nor 'right' is 'auto', the position is over-constrained, and one of them has to be ignored.
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// If the 'direction' property of the containing block is 'ltr', the value of 'left' wins and 'right' becomes -'left'.
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// If 'direction' of the containing block is 'rtl', 'right' wins and 'left' is ignored.
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// FIXME: Check direction (assuming 'ltr' for now).
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box_model.offset.left = specified_left.to_px(box);
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box_model.offset.right = 0 - box_model.offset.left;
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}
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}
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void BlockFormattingContext::layout_inline_children(Box& box, LayoutMode layout_mode)
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{
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InlineFormattingContext context(box, this);
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context.run(box, layout_mode);
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}
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void BlockFormattingContext::layout_block_level_children(Box& box, LayoutMode layout_mode)
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{
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float content_height = 0;
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float content_width = 0;
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box.for_each_child_of_type<Box>([&](auto& child_box) {
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if (child_box.is_absolutely_positioned())
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return IterationDecision::Continue;
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if (child_box.is_floating()) {
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layout_floating_child(child_box, box);
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return IterationDecision::Continue;
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}
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compute_width(child_box);
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layout_inside(child_box, layout_mode);
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compute_height(child_box);
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if (child_box.computed_values().position() == CSS::Position::Relative)
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compute_position(child_box);
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if (is<ReplacedBox>(child_box))
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place_block_level_replaced_element_in_normal_flow(child_box, box);
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else if (is<BlockBox>(child_box))
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place_block_level_non_replaced_element_in_normal_flow(child_box, box);
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// FIXME: This should be factored differently. It's uncool that we mutate the tree *during* layout!
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// Instead, we should generate the marker box during the tree build.
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if (is<ListItemBox>(child_box))
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downcast<ListItemBox>(child_box).layout_marker();
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content_height = max(content_height, child_box.effective_offset().y() + child_box.height() + child_box.box_model().margin_box().bottom);
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content_width = max(content_width, downcast<Box>(child_box).width());
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return IterationDecision::Continue;
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});
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if (layout_mode != LayoutMode::Default) {
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if (box.computed_values().width().is_undefined() || box.computed_values().width().is_auto())
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box.set_width(content_width);
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}
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}
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void BlockFormattingContext::place_block_level_replaced_element_in_normal_flow(Box& child_box, Box& containing_block)
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{
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VERIFY(!containing_block.is_absolutely_positioned());
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auto& replaced_element_box_model = child_box.box_model();
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replaced_element_box_model.margin.top = child_box.computed_values().margin().top.resolved_or_zero(containing_block, containing_block.width()).to_px(child_box);
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replaced_element_box_model.margin.bottom = child_box.computed_values().margin().bottom.resolved_or_zero(containing_block, containing_block.width()).to_px(child_box);
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replaced_element_box_model.border.top = child_box.computed_values().border_top().width;
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replaced_element_box_model.border.bottom = child_box.computed_values().border_bottom().width;
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replaced_element_box_model.padding.top = child_box.computed_values().padding().top.resolved_or_zero(containing_block, containing_block.width()).to_px(child_box);
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replaced_element_box_model.padding.bottom = child_box.computed_values().padding().bottom.resolved_or_zero(containing_block, containing_block.width()).to_px(child_box);
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float x = replaced_element_box_model.margin.left
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+ replaced_element_box_model.border.left
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+ replaced_element_box_model.padding.left
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+ replaced_element_box_model.offset.left;
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float y = replaced_element_box_model.margin_box().top + containing_block.box_model().offset.top;
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child_box.set_offset(x, y);
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}
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void BlockFormattingContext::place_block_level_non_replaced_element_in_normal_flow(Box& child_box, Box& containing_block)
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{
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auto& box_model = child_box.box_model();
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auto& computed_values = child_box.computed_values();
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box_model.margin.top = computed_values.margin().top.resolved_or_zero(containing_block, containing_block.width()).to_px(child_box);
|
|
box_model.margin.bottom = computed_values.margin().bottom.resolved_or_zero(containing_block, containing_block.width()).to_px(child_box);
|
|
box_model.border.top = computed_values.border_top().width;
|
|
box_model.border.bottom = computed_values.border_bottom().width;
|
|
box_model.padding.top = computed_values.padding().top.resolved_or_zero(containing_block, containing_block.width()).to_px(child_box);
|
|
box_model.padding.bottom = computed_values.padding().bottom.resolved_or_zero(containing_block, containing_block.width()).to_px(child_box);
|
|
|
|
float x = box_model.margin.left
|
|
+ box_model.border.left
|
|
+ box_model.padding.left
|
|
+ box_model.offset.left;
|
|
|
|
if (containing_block.computed_values().text_align() == CSS::TextAlign::LibwebCenter) {
|
|
x = (containing_block.width() / 2) - child_box.width() / 2;
|
|
}
|
|
|
|
float y = box_model.margin_box().top
|
|
+ box_model.offset.top;
|
|
|
|
// NOTE: Empty (0-height) preceding siblings have their margins collapsed with *their* preceding sibling, etc.
|
|
float collapsed_bottom_margin_of_preceding_siblings = 0;
|
|
|
|
auto* relevant_sibling = child_box.previous_sibling_of_type<Layout::BlockBox>();
|
|
while (relevant_sibling != nullptr) {
|
|
if (!relevant_sibling->is_absolutely_positioned() && !relevant_sibling->is_floating()) {
|
|
collapsed_bottom_margin_of_preceding_siblings = max(collapsed_bottom_margin_of_preceding_siblings, relevant_sibling->box_model().margin.bottom);
|
|
if (relevant_sibling->border_box_height() > 0)
|
|
break;
|
|
}
|
|
relevant_sibling = relevant_sibling->previous_sibling();
|
|
}
|
|
|
|
if (relevant_sibling) {
|
|
y += relevant_sibling->effective_offset().y()
|
|
+ relevant_sibling->height()
|
|
+ relevant_sibling->box_model().border_box().bottom;
|
|
|
|
// Collapse top margin with bottom margin of preceding siblings if needed
|
|
float my_margin_top = box_model.margin.top;
|
|
|
|
if (my_margin_top < 0 || collapsed_bottom_margin_of_preceding_siblings < 0) {
|
|
// Negative margins present.
|
|
float largest_negative_margin = -min(my_margin_top, collapsed_bottom_margin_of_preceding_siblings);
|
|
float largest_positive_margin = (my_margin_top < 0 && collapsed_bottom_margin_of_preceding_siblings < 0) ? 0 : max(my_margin_top, collapsed_bottom_margin_of_preceding_siblings);
|
|
float final_margin = largest_positive_margin - largest_negative_margin;
|
|
y += final_margin - my_margin_top;
|
|
} else if (collapsed_bottom_margin_of_preceding_siblings > my_margin_top) {
|
|
// Sibling's margin is larger than mine, adjust so we use sibling's.
|
|
y += collapsed_bottom_margin_of_preceding_siblings - my_margin_top;
|
|
}
|
|
}
|
|
|
|
if (child_box.computed_values().clear() == CSS::Clear::Left || child_box.computed_values().clear() == CSS::Clear::Both) {
|
|
if (!m_left_floating_boxes.is_empty()) {
|
|
float clearance_y = 0;
|
|
for (auto* floating_box : m_left_floating_boxes) {
|
|
clearance_y = max(clearance_y, floating_box->effective_offset().y() + floating_box->box_model().margin_box().bottom);
|
|
}
|
|
y = max(y, clearance_y);
|
|
m_left_floating_boxes.clear();
|
|
}
|
|
}
|
|
|
|
if (child_box.computed_values().clear() == CSS::Clear::Right || child_box.computed_values().clear() == CSS::Clear::Both) {
|
|
if (!m_right_floating_boxes.is_empty()) {
|
|
float clearance_y = 0;
|
|
for (auto* floating_box : m_right_floating_boxes) {
|
|
clearance_y = max(clearance_y, floating_box->effective_offset().y() + floating_box->box_model().margin_box().bottom);
|
|
}
|
|
y = max(y, clearance_y);
|
|
m_right_floating_boxes.clear();
|
|
}
|
|
}
|
|
|
|
child_box.set_offset(x, y);
|
|
}
|
|
|
|
void BlockFormattingContext::layout_initial_containing_block(LayoutMode layout_mode)
|
|
{
|
|
auto viewport_rect = context_box().frame().viewport_rect();
|
|
|
|
auto& icb = downcast<Layout::InitialContainingBlockBox>(context_box());
|
|
icb.build_stacking_context_tree();
|
|
|
|
icb.set_width(viewport_rect.width());
|
|
|
|
layout_block_level_children(context_box(), layout_mode);
|
|
|
|
VERIFY(!icb.children_are_inline());
|
|
|
|
// FIXME: The ICB should have the height of the viewport.
|
|
// Instead of auto-sizing the ICB, we should spill into overflow.
|
|
float lowest_bottom = 0;
|
|
icb.for_each_child_of_type<Box>([&](auto& child) {
|
|
lowest_bottom = max(lowest_bottom, child.absolute_rect().bottom());
|
|
});
|
|
|
|
// FIXME: This is a hack and should be managed by an overflow mechanism.
|
|
icb.set_height(max(static_cast<float>(viewport_rect.height()), lowest_bottom));
|
|
}
|
|
|
|
static Gfx::FloatRect rect_in_coordinate_space(const Box& box, const Box& context_box)
|
|
{
|
|
Gfx::FloatRect rect { box.effective_offset(), box.size() };
|
|
for (auto* ancestor = box.parent(); ancestor; ancestor = ancestor->parent()) {
|
|
if (is<Box>(*ancestor)) {
|
|
auto offset = downcast<Box>(*ancestor).effective_offset();
|
|
rect.move_by(offset);
|
|
}
|
|
if (ancestor == &context_box)
|
|
break;
|
|
}
|
|
return rect;
|
|
}
|
|
|
|
void BlockFormattingContext::layout_floating_child(Box& box, Box& containing_block)
|
|
{
|
|
VERIFY(box.is_floating());
|
|
|
|
compute_width(box);
|
|
layout_inside(box, LayoutMode::Default);
|
|
compute_height(box);
|
|
|
|
// First we place the box normally (to get the right y coordinate.)
|
|
place_block_level_non_replaced_element_in_normal_flow(box, containing_block);
|
|
|
|
// Then we float it to the left or right.
|
|
float x = box.effective_offset().x();
|
|
|
|
auto box_in_context_rect = rect_in_coordinate_space(box, context_box());
|
|
float y_in_context_box = box_in_context_rect.y();
|
|
|
|
// Next, float to the left and/or right
|
|
if (box.computed_values().float_() == CSS::Float::Left) {
|
|
if (!m_left_floating_boxes.is_empty()) {
|
|
auto& previous_floating_box = *m_left_floating_boxes.last();
|
|
auto previous_rect = rect_in_coordinate_space(previous_floating_box, context_box());
|
|
if (previous_rect.contains_vertically(y_in_context_box)) {
|
|
// This box touches another already floating box. Stack to the right.
|
|
x = previous_floating_box.effective_offset().x() + previous_floating_box.width();
|
|
} else {
|
|
// This box does not touch another floating box, go all the way to the left.
|
|
x = 0;
|
|
// Also, forget all previous left-floating boxes while we're here since they're no longer relevant.
|
|
m_left_floating_boxes.clear();
|
|
}
|
|
} else {
|
|
// This is the first left-floating box. Go all the way to the left.
|
|
x = 0;
|
|
}
|
|
m_left_floating_boxes.append(&box);
|
|
} else if (box.computed_values().float_() == CSS::Float::Right) {
|
|
if (!m_right_floating_boxes.is_empty()) {
|
|
auto& previous_floating_box = *m_right_floating_boxes.last();
|
|
auto previous_rect = rect_in_coordinate_space(previous_floating_box, context_box());
|
|
if (previous_rect.contains_vertically(y_in_context_box)) {
|
|
// This box touches another already floating box. Stack to the left.
|
|
x = previous_floating_box.effective_offset().x() - box.width();
|
|
} else {
|
|
// This box does not touch another floating box, go all the way to the right.
|
|
x = containing_block.width() - box.width();
|
|
// Also, forget all previous right-floating boxes while we're here since they're no longer relevant.
|
|
m_right_floating_boxes.clear();
|
|
}
|
|
} else {
|
|
// This is the first right-floating box. Go all the way to the right.
|
|
x = containing_block.width() - box.width();
|
|
}
|
|
m_right_floating_boxes.append(&box);
|
|
}
|
|
|
|
box.set_offset(x, box.effective_offset().y());
|
|
}
|
|
|
|
}
|