Rename the 'cretonne' crate to 'cretonne-codegen'.
This fixes the next part of #287.
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131
lib/codegen/src/regalloc/affinity.rs
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131
lib/codegen/src/regalloc/affinity.rs
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//! Value affinity for register allocation.
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//!
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//! An SSA value's affinity is a hint used to guide the register allocator. It specifies the class
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//! of allocation that is likely to cause the least amount of fixup moves in order to satisfy
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//! instruction operand constraints.
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//!
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//! For values that want to be in registers, the affinity hint includes a register class or
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//! subclass. This is just a hint, and the register allocator is allowed to pick a register from a
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//! larger register class instead.
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use ir::{AbiParam, ArgumentLoc};
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use isa::{ConstraintKind, OperandConstraint, RegClassIndex, RegInfo, TargetIsa};
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use std::fmt;
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/// Preferred register allocation for an SSA value.
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#[derive(Clone, Copy, Debug)]
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pub enum Affinity {
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/// No affinity.
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///
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/// This indicates a value that is not defined or used by any real instructions. It is a ghost
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/// value that won't appear in the final program.
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None,
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/// This value should be placed in a spill slot on the stack.
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Stack,
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/// This value prefers a register from the given register class.
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Reg(RegClassIndex),
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}
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impl Default for Affinity {
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fn default() -> Self {
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Affinity::None
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}
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}
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impl Affinity {
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/// Create an affinity that satisfies a single constraint.
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///
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/// This will never create an `Affinity::None`.
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/// Use the `Default` implementation for that.
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pub fn new(constraint: &OperandConstraint) -> Affinity {
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if constraint.kind == ConstraintKind::Stack {
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Affinity::Stack
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} else {
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Affinity::Reg(constraint.regclass.into())
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}
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}
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/// Create an affinity that matches an ABI argument for `isa`.
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pub fn abi(arg: &AbiParam, isa: &TargetIsa) -> Affinity {
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match arg.location {
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ArgumentLoc::Unassigned => Affinity::None,
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ArgumentLoc::Reg(_) => Affinity::Reg(isa.regclass_for_abi_type(arg.value_type).into()),
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ArgumentLoc::Stack(_) => Affinity::Stack,
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}
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}
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/// Is this the `None` affinity?
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pub fn is_none(self) -> bool {
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match self {
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Affinity::None => true,
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_ => false,
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}
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}
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/// Is this the `Reg` affinity?
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pub fn is_reg(self) -> bool {
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match self {
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Affinity::Reg(_) => true,
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_ => false,
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}
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}
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/// Is this the `Stack` affinity?
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pub fn is_stack(self) -> bool {
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match self {
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Affinity::Stack => true,
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_ => false,
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}
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}
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/// Merge an operand constraint into this affinity.
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///
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/// Note that this does not guarantee that the register allocator will pick a register that
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/// satisfies the constraint.
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pub fn merge(&mut self, constraint: &OperandConstraint, reg_info: &RegInfo) {
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match *self {
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Affinity::None => *self = Affinity::new(constraint),
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Affinity::Reg(rc) => {
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// If the preferred register class is a subclass of the constraint, there's no need
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// to change anything.
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if constraint.kind != ConstraintKind::Stack &&
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!constraint.regclass.has_subclass(rc)
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{
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// If the register classes don't overlap, `intersect` returns `None`, and we
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// just keep our previous affinity.
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if let Some(subclass) = constraint.regclass.intersect_index(reg_info.rc(rc)) {
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// This constraint shrinks our preferred register class.
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*self = Affinity::Reg(subclass);
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}
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}
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}
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Affinity::Stack => {}
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}
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}
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/// Return an object that can display this value affinity, using the register info from the
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/// target ISA.
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pub fn display<'a, R: Into<Option<&'a RegInfo>>>(self, regs: R) -> DisplayAffinity<'a> {
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DisplayAffinity(self, regs.into())
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}
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}
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/// Displaying an `Affinity` correctly requires the associated `RegInfo` from the target ISA.
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pub struct DisplayAffinity<'a>(Affinity, Option<&'a RegInfo>);
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impl<'a> fmt::Display for DisplayAffinity<'a> {
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fn fmt(&self, f: &mut fmt::Formatter) -> fmt::Result {
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match self.0 {
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Affinity::None => write!(f, "none"),
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Affinity::Stack => write!(f, "stack"),
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Affinity::Reg(rci) => {
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match self.1 {
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Some(regs) => write!(f, "{}", regs.rc(rci)),
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None => write!(f, "{}", rci),
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}
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}
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}
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}
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}
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