Say the environment once, and stop a hint read going uncounted
The eleventh sweep, over the built-in bounds work in2ac0843. `Painter::size_hint` refused to answer for a bounded widget by returning above the diagnostics, so that read was neither a hint hit nor a miss and `hint_read` recorded nothing. It is a miss now, with the reason on it. The two `for axis in Axis::BOTH` loops that `draw_widget` grew, both writing `own_holds`, are one loop, and the comment about combining the ask's holds no longer sits between a comment and the code it describes. `Declared::from_axes` lost its only caller with `Widgets::declared_lens`; `Bounds::from_axes` and `SizeRule::declared` never had one. The scenario shrinker printed a rule with derived `Debug`, which is 130 characters an axis in a line that carries every ancestor, in the one function whose job is output a tree can be rebuilt from. It prints its parts again. `bounds_cost` invented three environment-reading spellings where four copies of one `env` helper already existed; there is now one, in `tests/rig`, and the four copies are gone. It also verified 128 regions inside its measured loop, which the other rigs deliberately do before theirs; that measured 0.65% of the total, and none of it is layout. The 250-window row with a 300 cap was built by two tests, and the one that still explained itself tested less; they are one. The half of `a_cap_attribute_narrows_the_widgets_box` that the wrapper's removal left without its deciding assertion is the allocator's path instead, which nothing at the root covered. Format, workspace clippy under -D warnings with and without layout-diagnostics, 206 ordinary and 210 diagnostic tests, 400 depth-5 trees warm against cold in 64.19s, and the cold dump byte-identical to2ac0843across all 34,986 boxes.
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@@ -439,10 +439,14 @@ impl<'a> Painter<'a> {
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/// against this widget's rel base, which is the rel base a child asked with
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/// nothing narrowed gets. Asking counts as reading its size.
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pub fn size_hint<W: ?Sized>(&mut self, id: &StrongWidget<W>, axis: Axis) -> Option<LayoutLen> {
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if self.rsc.widgets().size_rules(id.id())[axis].bound != Bound::ANY {
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return None;
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}
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let hint = self.rsc.widgets().exact_len(id.id(), axis);
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// A bound is composed into a request rather than applied to a hint,
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// so a bounded widget cannot say its length without being asked: what
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// it comes to is a comparison only the ask or the allocator makes.
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// A miss rather than no read at all, so the counters see it.
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let bounded = self.rsc.widgets().size_rules(id.id())[axis].bound != Bound::ANY;
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let hint = (!bounded)
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.then(|| self.rsc.widgets().exact_len(id.id(), axis))
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.flatten();
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let rel_base = self.rel_base[axis];
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let resolved = hint.map(|hint| hint.within_len(rel_base));
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#[cfg(feature = "layout-diagnostics")]
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+22
-22
@@ -452,23 +452,34 @@ impl UiRenderState {
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x: ruled(Axis::X, size.x),
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y: ruled(Axis::Y, size.y),
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};
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// A bound is a promise about the length as well as about the box: a
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// widget that drew past the box it was given -- a text too tall for
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// it, an image at its own size under a cap -- is still held to what
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// its rule allows.
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// What the drawing read is combined with what the ask decided rather
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// than replacing it: a widget may widen its own ranges, and cannot
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// widen the ask's.
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let mut own_holds = own.and(info.ask_holds);
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for axis in Axis::BOTH {
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// A rule that is a fraction of the rel base is answered with the
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// rel base's own length, so the answer is that rel base's and not
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// just that many pixels of this window -- the same pin a widget
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// that read its rel base took for its drawing. A bound counts:
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// which side of it the box fell was decided against this rel
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// base, and the same box of a different one can fall on the other.
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if rules[axis].has_fraction() {
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own_holds[axis].rel_base = Some(info.rel_base[axis]);
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}
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// A bound is a promise about the length as well as about the box:
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// a widget that drew past the box it was given -- a text too tall
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// for it, an image at its own size under a cap -- is still held to
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// what its rule allows.
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//
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// Held here rather than taken from the box, even where the bound
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// decided that box. What a widget answers is its own, and a bound
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// that replaced the answer would make a share into a fixed length
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// the moment a box was long enough -- which is a length the span
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// dividing that box decided from this answer, so the two would
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// choose each other. A share is left alone here for the same reason:
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// it is a length only to whoever divides one, and the box that
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// divider gives is a box this widget is asked in, where the bound is
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// applied to it.
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// Widgets may widen their own read ranges, but not the ask's constraints.
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let mut own_holds = own.and(info.ask_holds);
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for axis in Axis::BOTH {
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// choose each other. A share is left alone here for the same
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// reason: it is a length only to whoever divides one, and the box
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// that divider gives is a box this widget is asked in, where the
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// bound is applied to it.
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let answer = size[axis];
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if answer.leftover != Weight::ZERO {
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continue;
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@@ -479,17 +490,6 @@ impl UiRenderState {
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size[axis] = held.into();
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}
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}
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// A rule that is a fraction of the rel base is answered with the
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// rel base's own length, so the answer is that rel base's and not just
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// that many pixels of this window -- the same pin a widget that read
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// its rel base took for its drawing. A bound counts: which side of it
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// the box fell was decided against this rel base, and the same box of
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// a different one can fall on the other.
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for axis in Axis::BOTH {
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if rules[axis].has_fraction() {
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own_holds[axis].rel_base = Some(info.rel_base[axis]);
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}
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}
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// A widget that clipped its contents to its box drew nothing outside
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// it, so reporting more than the box asks to be placed at a length it
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// does not occupy -- and its parent would place the part it cut off.
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@@ -169,6 +169,7 @@ impl RequestArena {
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let b = self.import(&pair.1, base);
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self.combine(op, a, b)
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}
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pub(crate) fn bounded(&mut self, request: RequestedLen, bound: Bound) -> RequestedLen {
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let request = match bound.min {
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Some(min) => self.combine(Op::Max, request, min.into()),
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@@ -1,5 +1,5 @@
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use crate::util::impl_axis_index;
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use crate::{Axis, LayoutLen, Len, Rel, SizeRequest};
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use crate::{LayoutLen, Len, Rel, SizeRequest, Weight};
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/// A preferred length and independent bounds on one axis. Without a
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/// request, the widget's drawing supplies the preferred length.
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@@ -45,10 +45,6 @@ impl SizeRule {
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rule
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}
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pub fn declared(&self) -> Option<Len> {
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self.exact().and_then(|len| len.declared())
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}
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/// A linear preferred length, before applying the independent bounds.
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pub fn exact(&self) -> Option<LayoutLen> {
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match self.request {
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@@ -63,7 +59,7 @@ impl SizeRule {
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let request = self.request.as_ref()?;
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match request {
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SizeRequest::Linear(len)
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if len.leftover == crate::Weight::ZERO || self.bound == Bound::ANY =>
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if len.leftover == Weight::ZERO || self.bound == Bound::ANY =>
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{
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None
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}
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@@ -121,13 +117,6 @@ impl Bounds {
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x: Bound::ANY,
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y: Bound::ANY,
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};
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pub fn from_axes(f: impl Fn(Axis) -> Bound) -> Self {
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Self {
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x: f(Axis::X),
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y: f(Axis::Y),
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}
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}
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}
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impl_axis_index!(Bounds => Bound);
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@@ -175,13 +164,6 @@ pub struct Declared {
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impl Declared {
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pub const NONE: Self = Self { x: None, y: None };
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pub fn from_axes(f: impl Fn(Axis) -> Option<Len>) -> Self {
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Self {
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x: f(Axis::X),
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y: f(Axis::Y),
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}
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}
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}
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impl_axis_index!(Declared => Option<Len>);
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@@ -1,8 +1,8 @@
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use std::sync::mpsc::{Receiver, Sender, channel};
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use crate::{
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Axis, AxisAlign, IdLike, Len, RegionAlign, SizeRule, SizeRules, StrongWidget, WeakWidget,
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Widget, WidgetData, WidgetId,
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Axis, AxisAlign, IdLike, Len, RegionAlign, SizeRequest, SizeRule, SizeRules, StrongWidget,
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WeakWidget, Widget, WidgetData, WidgetId,
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util::{DynBorrower, HashSet, SlotVec, forget_mut, to_mut},
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};
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@@ -146,7 +146,7 @@ impl Widgets {
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}
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/// Changes the preferred length without changing its bounds.
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pub fn set_len(&mut self, id: impl IdLike, axis: Axis, len: impl Into<crate::SizeRequest>) {
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pub fn set_len(&mut self, id: impl IdLike, axis: Axis, len: impl Into<SizeRequest>) {
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let id = id.id();
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let rule = SizeRule {
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request: Some(len.into()),
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@@ -63,10 +63,7 @@ widget_trait! {
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let len = len.into();
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move |state| {
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let id = self.add(state);
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state
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.ui_mut()
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.widgets
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.set_len(id, Axis::X, len);
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state.ui_mut().widgets.set_len(id, Axis::X, len);
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id
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}
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}
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@@ -113,10 +110,7 @@ widget_trait! {
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let len = len.into();
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move |state| {
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let id = self.add(state);
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state
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.ui_mut()
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.widgets
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.set_len(id, Axis::Y, len);
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state.ui_mut().widgets.set_len(id, Axis::Y, len);
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id
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}
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}
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+45
-17
@@ -1,17 +1,33 @@
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//! CPU comparison of bounds attributes and the former wrapper, using the
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//! same builder calls and geometry. Run the release executable under perf;
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//! process totals include the cold frame. MODE=plain|exact|cap, REDRAW=0|1.
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//! CPU comparison of a bounds attribute against the `MaxSize` wrapper it
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//! replaced, using the same builder calls and the same geometry. The wrapper
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//! is gone from this tree, so its side of the comparison is run by checking
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//! out a commit that still has it: the fixture is written to build the same
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//! way at both.
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//!
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//! MODE=cap FRAMES=2000 cargo test --release --test bounds_cost \
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//! -- --ignored --nocapture
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//!
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//! `MODE` is `plain`, `exact` or `cap`; `REDRAW=1` marks every widget for
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//! redraw each frame; `FRAMES` is how many resize frames to measure. Use
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//! repeated `perf stat -e instructions:u` runs on the executable directly.
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//! Process totals include the cold frame, so compare identical modes and
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//! frame counts. Wall time on this machine is not a stable comparison.
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mod rig;
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use iris::{harness::Harness, prelude::*};
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use rig::env;
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/// The two widths the loop alternates. The cap of 80 binds at 300 and does
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/// not at 100, so the measured frames cross it in both directions.
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const WIDTHS: [i32; 2] = [100, 300];
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#[test]
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#[ignore = "instruction-count measurement"]
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fn bounds_cost() {
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let mode = std::env::var("MODE").unwrap_or_else(|_| "cap".into());
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let redraw = std::env::var("REDRAW").is_ok_and(|value| value == "1");
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let frames = std::env::var("FRAMES")
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.ok()
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.and_then(|v| v.parse().ok())
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.unwrap_or(2000);
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let mode = env("MODE", "cap".to_string());
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let redraw = env("REDRAW", 0_u8) != 0;
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let frames = env("FRAMES", 2000_usize);
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let mut h = Harness::new((300, 512));
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let mut column = Span::empty(Dir::DOWN);
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let mut leaves = Vec::new();
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@@ -38,23 +54,35 @@ fn bounds_cost() {
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ids.len(),
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std::mem::size_of::<SizeRule>()
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);
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for frame in 0..frames {
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if redraw {
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for &id in &ids {
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h.rsc.widgets_mut().mark_for_redraw(id);
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}
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}
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let width = if frame % 2 == 0 { 100 } else { 300 };
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// That the fixture measures what it says is checked on both sides of the
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// crossing here rather than inside the measured loop, which is what the
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// other rigs do. Per frame it measured only 0.65% of the total (5.780B
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// against 5.743B instructions at MODE=cap, FRAMES=2000), but none of it
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// is the layout the number is about.
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for width in WIDTHS {
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h.resize((width, 512));
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h.frame();
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let expected = match mode.as_str() {
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"plain" => width / 2,
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"exact" => 40,
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"cap" => (width / 2).min(80),
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_ => unreachable!(),
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_ => unreachable!("the mode was checked while building"),
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};
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for id in &leaves {
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assert_eq!(h.region(id).unwrap().size().x, Px::from_int(expected));
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}
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println!(
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"width {width}: first leaf {}",
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h.region(&leaves[0]).unwrap()
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);
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}
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for frame in 0..frames {
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if redraw {
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for &id in &ids {
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h.rsc.widgets_mut().mark_for_redraw(id);
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}
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}
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h.resize((WIDTHS[frame % WIDTHS.len()], 512));
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h.frame();
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}
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}
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+41
-32
@@ -1005,46 +1005,72 @@ fn a_region_node_root_is_a_region_node() {
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assert_eq!(h.region(&probe).unwrap().size().x, Px::from_int(900));
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}
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/// A bound holds the length a widget reports as well as narrowing the box it
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/// is offered, and the two are not the same question. Here two 200-wide rects
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/// fill a row in a 250 window, so a cap of 300 leaves the box alone and only
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/// cuts what the row reports -- which the window then centres, past both its
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/// edges -- while a floor raises the report and the rects stay where the 250
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/// box put them.
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#[test]
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fn a_bound_holds_what_a_widget_answers() {
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let row = |rule: SizeRule| {
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let bounded_row = |rule: SizeRule| {
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let mut h = Harness::new((250, 200));
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let left = rect(Color::RED).width(200).add(&mut h.rsc);
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let right = rect(Color::BLUE).width(200).add(&mut h.rsc);
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let row = (left, right).span(Dir::RIGHT).add(&mut h.rsc);
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h.rsc.widgets_mut().set_size_rule(row, Axis::X, rule);
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h.set_root(row);
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(
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h.region(&row).unwrap().size().x,
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h.region(&left).unwrap().size().x,
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)
|
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(h, row, left)
|
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};
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let (capped, left) = row(SizeRule::max(Len::px(300.0)));
|
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assert_eq!(capped, Px::from_int(300), "the cap, not the 400 drawn");
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assert_eq!(left, Px::from_int(200), "the box the children were given");
|
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let (h, row, left) = bounded_row(SizeRule::max(Len::px(300.0)));
|
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assert_eq!(
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h.region(&row).unwrap().size().x,
|
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Px::from_int(300),
|
||||
"the cap, not the 400 drawn"
|
||||
);
|
||||
assert_eq!(
|
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h.region(&left).unwrap().size().x,
|
||||
Px::from_int(200),
|
||||
"the box the children were given"
|
||||
);
|
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assert_corners!(h, row, (-25, 0), (275, 200));
|
||||
|
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let (floored, _) = row(SizeRule::min(Len::px(600.0)));
|
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assert_eq!(floored, Px::from_int(600), "the floor, not the 400 drawn");
|
||||
let (h, row, _) = bounded_row(SizeRule::min(Len::px(600.0)));
|
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assert_eq!(
|
||||
h.region(&row).unwrap().size().x,
|
||||
Px::from_int(600),
|
||||
"the floor, not the 400 drawn"
|
||||
);
|
||||
|
||||
let (free, _) = row(SizeRule::FREE);
|
||||
assert_eq!(free, Px::from_int(400), "what it drew");
|
||||
let (h, row, _) = bounded_row(SizeRule::FREE);
|
||||
assert_eq!(
|
||||
h.region(&row).unwrap().size().x,
|
||||
Px::from_int(400),
|
||||
"what it drew"
|
||||
);
|
||||
}
|
||||
|
||||
/// A cap narrows the box the widget is asked in, whether a declaration of its
|
||||
/// own decides that box or the allocator divides a share into it. The cap is
|
||||
/// an attribute of the widget rather than something wrapped around it, which
|
||||
/// is what the id assertions say.
|
||||
#[test]
|
||||
fn a_cap_attribute_narrows_the_widgets_box() {
|
||||
let mut h = Harness::new((400, 200));
|
||||
// A fraction of its box, so it says what box it was asked in.
|
||||
let fills = rect(Color::RED).width(rel(1.0)).add(&mut h.rsc);
|
||||
let capped = fills.max_width(300).add(&mut h.rsc);
|
||||
assert_eq!(fills.id(), capped.id());
|
||||
h.set_root(capped);
|
||||
|
||||
assert_eq!(h.region(&fills).unwrap().size().x, Px::from_int(300));
|
||||
|
||||
// A share with nothing beside it: the cap is composed into the request
|
||||
// and the allocator answers with it rather than the whole 400.
|
||||
let mut h = Harness::new((400, 200));
|
||||
let share = rect(Color::RED).add(&mut h.rsc);
|
||||
let share = rect(Color::RED).width(leftover(1)).add(&mut h.rsc);
|
||||
let capped = share.max_width(300).add(&mut h.rsc);
|
||||
assert_eq!(share.id(), capped.id());
|
||||
h.set_root(capped);
|
||||
|
||||
assert_eq!(h.region(&share).unwrap().size().x, Px::from_int(300));
|
||||
}
|
||||
|
||||
@@ -1082,23 +1108,6 @@ fn a_cap_is_a_fraction_of_the_box_it_was_given() {
|
||||
assert_eq!(h.region(&probe).unwrap().size().x, Px::from_int(150));
|
||||
}
|
||||
|
||||
/// A cap is a promise about the length as well as the box: a widget whose
|
||||
/// content is longer than the box it was given reports what it drew, and the
|
||||
/// cap holds that down even though it never decided the box.
|
||||
#[test]
|
||||
fn a_cap_holds_an_answer_that_overflowed_its_box() {
|
||||
let mut h = Harness::new((250, 200));
|
||||
let left = rect(Color::RED).width(200).add(&mut h.rsc);
|
||||
let right = rect(Color::BLUE).width(200).add(&mut h.rsc);
|
||||
let row = (left, right).span(Dir::RIGHT).add(&mut h.rsc);
|
||||
h.rsc.widgets_mut().set_max_len(row, Axis::X, 300.into());
|
||||
h.set_root(row);
|
||||
|
||||
// The box is the 250 window, which the cap of 300 leaves alone, and the
|
||||
// row draws 400 of it. Its answer is the cap, and the window centres it.
|
||||
assert_corners!(h, row, (-25, 0), (275, 200));
|
||||
}
|
||||
|
||||
struct Offered {
|
||||
seen: Rc<Cell<PxVec2>>,
|
||||
answer: Size,
|
||||
|
||||
@@ -1,3 +1,4 @@
|
||||
mod rig;
|
||||
#[path = "scenario/mod.rs"]
|
||||
mod scenario;
|
||||
|
||||
@@ -5,8 +6,8 @@ use iris::prelude::*;
|
||||
use iris::random::{Edits, Plan, plan};
|
||||
|
||||
fn check_requests(edit: impl Fn(&mut Plan) + Sync) {
|
||||
let count = scenario::env("IRIS_DEFERRED_SEEDS", 20_u64);
|
||||
let depth = scenario::env("IRIS_DEFERRED_DEPTH", 4_usize);
|
||||
let count = rig::env("IRIS_DEFERRED_SEEDS", 20_u64);
|
||||
let depth = rig::env("IRIS_DEFERRED_DEPTH", 4_usize);
|
||||
let seeds = std::env::var("IRIS_DEFERRED_SEED")
|
||||
.ok()
|
||||
.and_then(|seed| seed.parse().ok())
|
||||
|
||||
+3
-1
@@ -11,11 +11,13 @@
|
||||
//! `IRIS_GENERATED_SEED`, `IRIS_GENERATED_SEEDS` and `IRIS_GENERATED_DEPTH`
|
||||
//! select what the long run covers.
|
||||
|
||||
mod rig;
|
||||
#[path = "scenario/mod.rs"]
|
||||
mod scenario;
|
||||
|
||||
use iris::random::{Edits, Plan, plan};
|
||||
use scenario::{ALL, Case, diverges, env, over_seeds};
|
||||
use rig::env;
|
||||
use scenario::{ALL, Case, diverges, over_seeds};
|
||||
|
||||
/// How deep the generator branches. The generator widens two to four ways per
|
||||
/// level, so depth is exponential in width and a deep narrow tree is not
|
||||
|
||||
@@ -16,9 +16,12 @@
|
||||
//! `IRIS_DIRTY` how many widgets `many` marks at once. `IRIS_UNBOUNDED=1`
|
||||
//! removes intrinsic bounds while preserving the rest of the generated tree.
|
||||
|
||||
mod rig;
|
||||
|
||||
use iris::harness::Harness;
|
||||
use iris::prelude::*;
|
||||
use iris::random::{Edits, Tree, build, plan};
|
||||
use rig::env;
|
||||
use std::time::Instant;
|
||||
|
||||
const OUTPUT: (f32, f32) = (1920.0, 1200.0);
|
||||
@@ -94,13 +97,6 @@ fn a_selected_widget_retains_its_layout_events() {
|
||||
diagnostics::clear_traced_widgets();
|
||||
}
|
||||
|
||||
fn env<T: std::str::FromStr>(name: &str, fallback: T) -> T {
|
||||
std::env::var(name)
|
||||
.ok()
|
||||
.and_then(|value| value.parse().ok())
|
||||
.unwrap_or(fallback)
|
||||
}
|
||||
|
||||
#[cfg(feature = "layout-diagnostics")]
|
||||
fn trace_selected(tree: &Tree) {
|
||||
let Ok(value) = std::env::var("IRIS_TRACE_INDEX") else {
|
||||
|
||||
@@ -11,15 +11,11 @@
|
||||
//! it is not drawn. `IRIS_UNBOUNDED=1` drops the trees' intrinsic bounds, as
|
||||
//! in the diagnostics rig, which compares the two paths over the same shapes.
|
||||
|
||||
mod rig;
|
||||
|
||||
use iris::harness::Harness;
|
||||
use iris::random::{Edits, build, plan};
|
||||
|
||||
fn env<T: std::str::FromStr>(name: &str, fallback: T) -> T {
|
||||
std::env::var(name)
|
||||
.ok()
|
||||
.and_then(|value| value.parse().ok())
|
||||
.unwrap_or(fallback)
|
||||
}
|
||||
use rig::env;
|
||||
|
||||
#[test]
|
||||
#[ignore = "a dump to diff across commits, not a check"]
|
||||
|
||||
@@ -18,8 +18,11 @@
|
||||
//! process totals include font loading and the cold frame, so compare identical
|
||||
//! row and frame counts. Wall time on this machine is not a stable comparison.
|
||||
|
||||
mod rig;
|
||||
|
||||
use iris::harness::Harness;
|
||||
use iris::prelude::*;
|
||||
use rig::env;
|
||||
use std::time::Instant;
|
||||
|
||||
/// xorshift64, so one seed is one set of paragraphs on any machine.
|
||||
@@ -81,13 +84,6 @@ fn words(rng: &mut Rng, least: usize, most: usize) -> String {
|
||||
|
||||
const OUTPUT: (f32, f32) = (900.0, 1200.0);
|
||||
|
||||
fn env<T: std::str::FromStr>(name: &str, fallback: T) -> T {
|
||||
std::env::var(name)
|
||||
.ok()
|
||||
.and_then(|value| value.parse().ok())
|
||||
.unwrap_or(fallback)
|
||||
}
|
||||
|
||||
/// A row of a fixed-width rect beside a column of one wrapping and one
|
||||
/// overflowing text: the shape that makes a container measure a child in a
|
||||
/// box it will not keep.
|
||||
|
||||
@@ -0,0 +1,12 @@
|
||||
//! What the rigs need and none of them should spell its own way. Every
|
||||
//! fuzzer and measurement here is run by hand with its parameters in the
|
||||
//! environment, so one reader is shared rather than copied into each target.
|
||||
|
||||
/// A rig's parameter from the environment, or its default. A switch is
|
||||
/// `env("NAME", 0_u8) != 0`, so `NAME=1` turns it on.
|
||||
pub fn env<T: std::str::FromStr>(name: &str, fallback: T) -> T {
|
||||
std::env::var(name)
|
||||
.ok()
|
||||
.and_then(|value| value.parse().ok())
|
||||
.unwrap_or(fallback)
|
||||
}
|
||||
+20
-11
@@ -30,13 +30,6 @@ pub fn over_seeds(seeds: Vec<u64>, run: impl Fn(u64) + Sync) {
|
||||
});
|
||||
}
|
||||
|
||||
pub fn env<T: std::str::FromStr>(name: &str, fallback: T) -> T {
|
||||
std::env::var(name)
|
||||
.ok()
|
||||
.and_then(|v| v.parse().ok())
|
||||
.unwrap_or(fallback)
|
||||
}
|
||||
|
||||
/// The window a tree is grown in, and the one a resize takes it to.
|
||||
const OUTER: (f32, f32) = (1920.0, 1200.0);
|
||||
const INNER: (f32, f32) = (640.0, 900.0);
|
||||
@@ -356,8 +349,24 @@ fn change(case: Case, warm: &mut Harness, tree: &mut Tree, plan: &Plan, rng: &mu
|
||||
/// out by hand. A failure is a lead; the fast test that replaces it has to be
|
||||
/// buildable from what the failure printed.
|
||||
fn describe(id: WidgetId, h: &Harness) -> String {
|
||||
let rules = h.rsc.widgets().size_rules(id).clone();
|
||||
let rule = |r: SizeRule| format!("{r:?}");
|
||||
let rules = h.rsc.widgets().size_rules(id);
|
||||
// The tree a failure names is written out again from what it printed, so
|
||||
// every part of a rule prints: the preferred length and the bounds are
|
||||
// independent, and a bound lumped into "no rule" could not be rebuilt.
|
||||
let rule = |r: &SizeRule| {
|
||||
let mut out = match &r.request {
|
||||
None => String::new(),
|
||||
Some(SizeRequest::Linear(len)) => format!("{len}"),
|
||||
Some(request) => format!("{request:?}"),
|
||||
};
|
||||
if let Some(min) = r.bound.min {
|
||||
out += &format!(">{}", LayoutLen::from(min));
|
||||
}
|
||||
if let Some(max) = r.bound.max {
|
||||
out += &format!("<{}", LayoutLen::from(max));
|
||||
}
|
||||
if out.is_empty() { "-".into() } else { out }
|
||||
};
|
||||
let align = h.rsc.widgets().alignment(id);
|
||||
let side = |a: AxisAlign| {
|
||||
if a == AxisAlign::NEG {
|
||||
@@ -373,8 +382,8 @@ fn describe(id: WidgetId, h: &Harness) -> String {
|
||||
// A rule and an alignment are properties of whatever carries them, so
|
||||
// they print with that widget rather than as widgets of their own.
|
||||
let mut out = describe_widget(id, h);
|
||||
if rules != SizeRules::default() {
|
||||
out += &format!("[x:{},y:{}]", rule(rules.x), rule(rules.y));
|
||||
if *rules != SizeRules::default() {
|
||||
out += &format!("[x:{},y:{}]", rule(&rules.x), rule(&rules.y));
|
||||
}
|
||||
if align != RegionAlign::default() {
|
||||
out += &format!("@{},{}", side(align.x), side(align.y));
|
||||
|
||||
+3
-1
@@ -17,11 +17,13 @@
|
||||
//! It is a fuzzer: run it once the ordinary tests pass, and turn what it
|
||||
//! finds into a test of its own rather than leaving a seed as the record.
|
||||
|
||||
mod rig;
|
||||
#[path = "scenario/mod.rs"]
|
||||
mod scenario;
|
||||
|
||||
use iris::random::{Edits, Plan, plan};
|
||||
use scenario::{ALL, Case, diverges, env, over_seeds};
|
||||
use rig::env;
|
||||
use scenario::{ALL, Case, diverges, over_seeds};
|
||||
|
||||
/// Takes the first simplification that still fails, until none does. The
|
||||
/// simplifications come biggest first, so this walks down rather than
|
||||
|
||||
Reference in new issue
Block a user