3096d9bf94
This makes it much saner for clients to use the library since they don't have to worry about shadowing one llvm with another.
376 lines
10 KiB
Rust
376 lines
10 KiB
Rust
// Copyright 2012-2013 The Rust Project Developers. See the COPYRIGHT
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// file at the top-level directory of this distribution and at
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// http://rust-lang.org/COPYRIGHT.
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//
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// Licensed under the Apache License, Version 2.0 <LICENSE-APACHE or
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// http://www.apache.org/licenses/LICENSE-2.0> or the MIT license
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// <LICENSE-MIT or http://opensource.org/licenses/MIT>, at your
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// option. This file may not be copied, modified, or distributed
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// except according to those terms.
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// The classification code for the x86_64 ABI is taken from the clay language
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// https://github.com/jckarter/clay/blob/master/compiler/src/externals.cpp
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#![allow(non_uppercase_pattern_statics)]
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use llvm;
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use llvm::{Integer, Pointer, Float, Double};
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use llvm::{Struct, Array, Attribute};
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use llvm::{StructRetAttribute, ByValAttribute, ZExtAttribute};
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use middle::trans::cabi::*;
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use middle::trans::context::CrateContext;
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use middle::trans::type_::Type;
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use std::cmp;
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#[deriving(Clone, PartialEq)]
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enum RegClass {
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NoClass,
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Int,
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SSEFs,
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SSEFv,
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SSEDs,
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SSEDv,
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SSEInt,
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SSEUp,
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X87,
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X87Up,
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ComplexX87,
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Memory
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}
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trait TypeMethods {
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fn is_reg_ty(&self) -> bool;
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}
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impl TypeMethods for Type {
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fn is_reg_ty(&self) -> bool {
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match self.kind() {
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Integer | Pointer | Float | Double => true,
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_ => false
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}
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}
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}
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impl RegClass {
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fn is_sse(&self) -> bool {
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match *self {
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SSEFs | SSEFv | SSEDs | SSEDv => true,
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_ => false
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}
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}
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}
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trait ClassList {
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fn is_pass_byval(&self) -> bool;
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fn is_ret_bysret(&self) -> bool;
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}
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impl<'a> ClassList for &'a [RegClass] {
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fn is_pass_byval(&self) -> bool {
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if self.len() == 0 { return false; }
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let class = self[0];
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class == Memory
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|| class == X87
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|| class == ComplexX87
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}
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fn is_ret_bysret(&self) -> bool {
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if self.len() == 0 { return false; }
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self[0] == Memory
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}
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}
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fn classify_ty(ty: Type) -> Vec<RegClass> {
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fn align(off: uint, ty: Type) -> uint {
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let a = ty_align(ty);
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return (off + a - 1u) / a * a;
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}
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fn ty_align(ty: Type) -> uint {
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match ty.kind() {
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Integer => {
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unsafe {
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((llvm::LLVMGetIntTypeWidth(ty.to_ref()) as uint) + 7) / 8
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}
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}
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Pointer => 8,
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Float => 4,
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Double => 8,
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Struct => {
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if ty.is_packed() {
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1
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} else {
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let str_tys = ty.field_types();
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str_tys.iter().fold(1, |a, t| cmp::max(a, ty_align(*t)))
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}
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}
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Array => {
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let elt = ty.element_type();
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ty_align(elt)
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}
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_ => fail!("ty_size: unhandled type")
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}
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}
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fn ty_size(ty: Type) -> uint {
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match ty.kind() {
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Integer => {
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unsafe {
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((llvm::LLVMGetIntTypeWidth(ty.to_ref()) as uint) + 7) / 8
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}
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}
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Pointer => 8,
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Float => 4,
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Double => 8,
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Struct => {
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let str_tys = ty.field_types();
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if ty.is_packed() {
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str_tys.iter().fold(0, |s, t| s + ty_size(*t))
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} else {
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let size = str_tys.iter().fold(0, |s, t| align(s, *t) + ty_size(*t));
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align(size, ty)
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}
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}
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Array => {
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let len = ty.array_length();
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let elt = ty.element_type();
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let eltsz = ty_size(elt);
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len * eltsz
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}
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_ => fail!("ty_size: unhandled type")
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}
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}
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fn all_mem(cls: &mut [RegClass]) {
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for elt in cls.mut_iter() {
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*elt = Memory;
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}
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}
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fn unify(cls: &mut [RegClass],
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i: uint,
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newv: RegClass) {
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if cls[i] == newv {
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return;
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} else if cls[i] == NoClass {
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cls[i] = newv;
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} else if newv == NoClass {
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return;
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} else if cls[i] == Memory || newv == Memory {
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cls[i] = Memory;
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} else if cls[i] == Int || newv == Int {
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cls[i] = Int;
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} else if cls[i] == X87 ||
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cls[i] == X87Up ||
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cls[i] == ComplexX87 ||
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newv == X87 ||
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newv == X87Up ||
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newv == ComplexX87 {
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cls[i] = Memory;
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} else {
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cls[i] = newv;
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}
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}
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fn classify_struct(tys: &[Type],
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cls: &mut [RegClass], i: uint,
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off: uint) {
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let mut field_off = off;
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for ty in tys.iter() {
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field_off = align(field_off, *ty);
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classify(*ty, cls, i, field_off);
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field_off += ty_size(*ty);
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}
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}
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fn classify(ty: Type,
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cls: &mut [RegClass], ix: uint,
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off: uint) {
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let t_align = ty_align(ty);
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let t_size = ty_size(ty);
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let misalign = off % t_align;
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if misalign != 0u {
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let mut i = off / 8u;
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let e = (off + t_size + 7u) / 8u;
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while i < e {
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unify(cls, ix + i, Memory);
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i += 1u;
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}
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return;
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}
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match ty.kind() {
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Integer |
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Pointer => {
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unify(cls, ix + off / 8u, Int);
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}
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Float => {
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if off % 8u == 4u {
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unify(cls, ix + off / 8u, SSEFv);
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} else {
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unify(cls, ix + off / 8u, SSEFs);
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}
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}
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Double => {
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unify(cls, ix + off / 8u, SSEDs);
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}
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Struct => {
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classify_struct(ty.field_types().as_slice(), cls, ix, off);
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}
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Array => {
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let len = ty.array_length();
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let elt = ty.element_type();
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let eltsz = ty_size(elt);
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let mut i = 0u;
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while i < len {
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classify(elt, cls, ix, off + i * eltsz);
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i += 1u;
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}
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}
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_ => fail!("classify: unhandled type")
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}
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}
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fn fixup(ty: Type, cls: &mut [RegClass]) {
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let mut i = 0u;
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let ty_kind = ty.kind();
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let e = cls.len();
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if cls.len() > 2u && (ty_kind == Struct || ty_kind == Array) {
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if cls[i].is_sse() {
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i += 1u;
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while i < e {
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if cls[i] != SSEUp {
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all_mem(cls);
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return;
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}
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i += 1u;
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}
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} else {
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all_mem(cls);
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return
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}
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} else {
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while i < e {
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if cls[i] == Memory {
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all_mem(cls);
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return;
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}
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if cls[i] == X87Up {
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// for darwin
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// cls[i] = SSEDs;
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all_mem(cls);
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return;
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}
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if cls[i] == SSEUp {
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cls[i] = SSEDv;
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} else if cls[i].is_sse() {
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i += 1;
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while i != e && cls[i] == SSEUp { i += 1u; }
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} else if cls[i] == X87 {
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i += 1;
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while i != e && cls[i] == X87Up { i += 1u; }
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} else {
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i += 1;
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}
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}
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}
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}
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let words = (ty_size(ty) + 7) / 8;
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let mut cls = Vec::from_elem(words, NoClass);
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if words > 4 {
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all_mem(cls.as_mut_slice());
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return cls;
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}
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classify(ty, cls.as_mut_slice(), 0, 0);
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fixup(ty, cls.as_mut_slice());
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return cls;
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}
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fn llreg_ty(ccx: &CrateContext, cls: &[RegClass]) -> Type {
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fn llvec_len(cls: &[RegClass]) -> uint {
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let mut len = 1u;
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for c in cls.iter() {
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if *c != SSEUp {
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break;
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}
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len += 1u;
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}
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return len;
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}
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let mut tys = Vec::new();
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let mut i = 0u;
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let e = cls.len();
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while i < e {
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match cls[i] {
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Int => {
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tys.push(Type::i64(ccx));
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}
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SSEFv => {
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let vec_len = llvec_len(cls.tailn(i + 1u));
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let vec_ty = Type::vector(&Type::f32(ccx), (vec_len * 2u) as u64);
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tys.push(vec_ty);
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i += vec_len;
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continue;
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}
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SSEFs => {
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tys.push(Type::f32(ccx));
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}
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SSEDs => {
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tys.push(Type::f64(ccx));
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}
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_ => fail!("llregtype: unhandled class")
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}
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i += 1u;
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}
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return Type::struct_(ccx, tys.as_slice(), false);
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}
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pub fn compute_abi_info(ccx: &CrateContext,
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atys: &[Type],
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rty: Type,
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ret_def: bool) -> FnType {
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fn x86_64_ty(ccx: &CrateContext,
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ty: Type,
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is_mem_cls: |cls: &[RegClass]| -> bool,
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ind_attr: Attribute)
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-> ArgType {
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if !ty.is_reg_ty() {
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let cls = classify_ty(ty);
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if is_mem_cls(cls.as_slice()) {
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ArgType::indirect(ty, Some(ind_attr))
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} else {
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ArgType::direct(ty,
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Some(llreg_ty(ccx, cls.as_slice())),
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None,
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None)
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}
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} else {
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let attr = if ty == Type::i1(ccx) { Some(ZExtAttribute) } else { None };
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ArgType::direct(ty, None, None, attr)
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}
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}
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let mut arg_tys = Vec::new();
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for t in atys.iter() {
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let ty = x86_64_ty(ccx, *t, |cls| cls.is_pass_byval(), ByValAttribute);
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arg_tys.push(ty);
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}
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let ret_ty = if ret_def {
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x86_64_ty(ccx, rty, |cls| cls.is_ret_bysret(), StructRetAttribute)
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} else {
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ArgType::direct(Type::void(ccx), None, None, None)
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};
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return FnType {
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arg_tys: arg_tys,
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ret_ty: ret_ty,
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};
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}
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