Compare commits
| Author | SHA1 | Date | |
|---|---|---|---|
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900c9772b1 | ||
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b914c0e390 |
+8
-3
@@ -30,9 +30,12 @@ func Assemble(t *ast.Text) ([]byte, map[string]int, error) {
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// linkInfo carries file-level symbol context into a single-function assembly:
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// the set of static symbols a GLOBL in the same file defines. A nil link
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// rejects SB operands outright (single-function assembly cannot resolve
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// them).
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// them). When allowExternal is set, a reference to a symbol no GLOBL in the
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// file defines is recorded as an external relocation instead of failing —
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// the object-file emitters resolve it at link time.
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type linkInfo struct {
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symbols map[string]bool
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symbols map[string]bool
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allowExternal bool
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}
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// sbPatch is a function-relative static-symbol relocation: the disp32 field
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@@ -425,7 +428,9 @@ func operandFromAST(op *ast.Operand, size int, fi frameInfo, link *linkInfo) (Op
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if a.Sym.Static {
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return nil, fmt.Errorf("undefined symbol %q", a.Sym.Name)
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}
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return nil, fmt.Errorf("external symbol %q needs object-file emission", a.Sym.Name)
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if !link.allowExternal {
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return nil, fmt.Errorf("external symbol %q needs object-file emission", a.Sym.Name)
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}
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}
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return sbMem{size: size, name: a.Sym.Name, addend: a.Sym.Offset}, nil
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}
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+301
@@ -0,0 +1,301 @@
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// Copyright (c) 2026 Petr Balvín <opensource@petrbalvin.org> (https://petrbalvin.org)
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// SPDX-License-Identifier: BSD-3-Clause
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package asm
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import (
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"encoding/binary"
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"fmt"
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)
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// This file emits ELF64 relocatable objects (ET_REL) from an assembled
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// Image: a .text section holding the function bodies, a .data section
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// holding the GLOBL initialisers, a symbol table with one symbol per TEXT
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// and GLOBL (file-local <> symbols are STB_LOCAL, the rest STB_GLOBAL), and
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// a .rela.text relocation table — one R_X86_64_PC32 entry per static-symbol
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// reference, internal references resolving against the local data symbols
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// and external ones against undefined globals. The output links with the
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// system toolchain (cc/ld) the way a hand-assembled .o would.
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// ELF constants (ELF64, little-endian, System V).
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const (
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elfClass64 = 2
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elfDataLSB = 1
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elfVersion = 1
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etREL = 1 // relocatable object
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emX8664 = 62
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shtNull = 0
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shtProgbits = 1
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shtSymtab = 2
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shtStrtab = 3
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shtRela = 4
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shfWrite = 1
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shfAlloc = 2
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shfExecInstr = 4
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stbLocal = 0
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stbGlobal = 1
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sttNotype = 0
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sttObject = 1
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sttFunc = 2
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sttSection = 3
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stInfoShift = 4
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shnUndef = 0
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rX8664PC32 = 2
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)
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// elfSym is one symbol-table entry in construction.
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type elfSym struct {
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name string
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info byte
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shndx uint16
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value uint64
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size uint64
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}
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// ELFObject returns the image as an ELF64 relocatable object file, ready for
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// the system linker. Symbol names are the TEXT and GLOBL identifiers as
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// written (the middle dot stripped); a package prefix, when present, is
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// joined with a dot. Every static-symbol reference becomes an
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// R_X86_64_PC32 relocation, so the code is position-independent and links
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// at any address.
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func (img *Image) ELFObject() ([]byte, error) {
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le := binary.LittleEndian
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// Section indices: 0 NULL, 1 .text, 2 .data; the tables follow.
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const (
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secText = 1
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secData = 2
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)
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// Build the symbol table: the null entry and the two section symbols
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// come first, then the local symbols (static TEXT and GLOBL), then the
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// globals (exported TEXT and GLOBL, and the undefined externals) — ELF
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// requires every local to precede every global, and sh_info records the
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// boundary. symIdx maps a symbol name to its index for the relocations.
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var locals, globals []elfSym
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for _, fn := range img.Funcs {
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s := elfSym{
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name: objectName(fn.Pkg, fn.Name),
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info: sttFunc,
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shndx: secText,
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value: uint64(fn.Offset),
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size: uint64(fn.Size),
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}
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if fn.Static {
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locals = append(locals, s)
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} else {
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s.info |= stbGlobal << stInfoShift
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globals = append(globals, s)
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}
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}
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for _, d := range img.DataSyms {
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s := elfSym{
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name: objectName(d.Pkg, d.Name),
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info: sttObject,
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shndx: secData,
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value: uint64(d.Offset),
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size: uint64(d.Size),
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}
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if d.Static {
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locals = append(locals, s)
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} else {
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s.info |= stbGlobal << stInfoShift
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globals = append(globals, s)
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}
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}
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for _, name := range img.Externals {
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globals = append(globals, elfSym{name: name, info: stbGlobal << stInfoShift})
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}
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syms := []elfSym{
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{}, // the mandatory null entry
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{name: ".text", info: sttSection, shndx: secText},
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{name: ".data", info: sttSection, shndx: secData},
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}
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syms = append(syms, locals...)
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shInfo := len(syms) // first global symbol
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syms = append(syms, globals...)
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symIdx := map[string]int{}
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for i, s := range syms {
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symIdx[s.name] = i
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}
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// Build the relocations.
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type elfRela struct {
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off uint64
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sym int
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addend int64
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}
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var relas []elfRela
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for _, fn := range img.Funcs {
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for _, r := range fn.Relocs {
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idx, ok := symIdx[r.Name]
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if !ok {
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return nil, fmt.Errorf("relocation references unknown symbol %q", r.Name)
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}
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relas = append(relas, elfRela{
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off: uint64(fn.Offset + r.Off),
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sym: idx,
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// R_X86_64_PC32 computes S + A − P with P the patch site; the
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// assembler measures the symbol from the instruction end,
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// After − Off bytes past the field, so the addend carries
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// that distance with a negative sign.
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addend: r.Addend - int64(r.After-r.Off),
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})
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}
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}
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// Serialise the string tables.
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stNames := newElfStrtab()
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for _, s := range syms {
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stNames.add(s.name)
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}
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stSections := newElfStrtab()
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for _, n := range []string{".text", ".data", ".symtab", ".strtab", ".rela.text", ".shstrtab"} {
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stSections.add(n)
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}
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// Section presence: .rela.text only when there are relocations.
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hasRela := len(relas) > 0
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nSections := 6 // NULL, .text, .data, .symtab, .strtab, .shstrtab
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if hasRela {
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nSections = 7
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}
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secSymtab, secStrtab := 3, 4
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secShstr := nSections - 1
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// Lay the file out: header, section data, section headers.
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var out []byte
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out = append(out, make([]byte, 64)...) // ELF header, filled last
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align := func(n int) {
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for len(out)%n != 0 {
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out = append(out, 0)
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}
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}
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align(16)
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textOff := len(out)
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out = append(out, img.Code...)
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align(16)
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dataOff := len(out)
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out = append(out, img.Data...)
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align(8)
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symtabOff := len(out)
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for _, s := range syms {
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var b [24]byte
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le.PutUint32(b[0:], uint32(stNames.at(s.name)))
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b[4] = s.info
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b[5] = 0 // st_other
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le.PutUint16(b[6:], s.shndx)
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le.PutUint64(b[8:], s.value)
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le.PutUint64(b[16:], s.size)
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out = append(out, b[:]...)
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}
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strtabOff := len(out)
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out = append(out, stNames.bytes()...)
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var relaOff int
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if hasRela {
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align(8)
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relaOff = len(out)
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for _, r := range relas {
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var b [24]byte
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le.PutUint64(b[0:], r.off)
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le.PutUint64(b[8:], uint64(r.sym)<<32|rX8664PC32)
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le.PutUint64(b[16:], uint64(r.addend))
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out = append(out, b[:]...)
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}
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}
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shstrOff := len(out)
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out = append(out, stSections.bytes()...)
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align(8)
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shoff := len(out)
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// Section headers.
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putSh := func(name string, typ int, flags uint64, off, size int, link, info int, alignV, entsize uint64) {
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var b [64]byte
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le.PutUint32(b[0:], uint32(stSections.at(name)))
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le.PutUint32(b[4:], uint32(typ))
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le.PutUint64(b[8:], flags)
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le.PutUint64(b[16:], 0) // sh_addr
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le.PutUint64(b[24:], uint64(off))
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le.PutUint64(b[32:], uint64(size))
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le.PutUint32(b[40:], uint32(link))
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le.PutUint32(b[44:], uint32(info))
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le.PutUint64(b[48:], alignV)
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le.PutUint64(b[56:], entsize)
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out = append(out, b[:]...)
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}
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putSh("", shtNull, 0, 0, 0, 0, 0, 0, 0)
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putSh(".text", shtProgbits, shfAlloc|shfExecInstr, textOff, len(img.Code), 0, 0, 16, 0)
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putSh(".data", shtProgbits, shfAlloc|shfWrite, dataOff, len(img.Data), 0, 0, 16, 0)
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putSh(".symtab", shtSymtab, 0, symtabOff, 24*len(syms), secStrtab, shInfo, 8, 24)
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putSh(".strtab", shtStrtab, 0, strtabOff, len(stNames.bytes()), 0, 0, 1, 0)
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if hasRela {
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putSh(".rela.text", shtRela, 0, relaOff, 24*len(relas), secSymtab, secText, 8, 24)
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}
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putSh(".shstrtab", shtStrtab, 0, shstrOff, len(stSections.bytes()), 0, 0, 1, 0)
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// The ELF header.
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hdr := out[:64]
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copy(hdr[0:], []byte{0x7f, 'E', 'L', 'F', elfClass64, elfDataLSB, elfVersion, 0})
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le.PutUint16(hdr[16:], etREL)
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le.PutUint16(hdr[18:], emX8664)
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le.PutUint32(hdr[20:], elfVersion)
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le.PutUint64(hdr[24:], 0) // e_entry
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le.PutUint64(hdr[32:], 0) // e_phoff
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le.PutUint64(hdr[40:], uint64(shoff)) // e_shoff
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le.PutUint32(hdr[48:], 0) // e_flags
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le.PutUint16(hdr[52:], 64) // e_ehsize
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le.PutUint16(hdr[54:], 0) // e_phentsize
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le.PutUint16(hdr[56:], 0) // e_phnum
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le.PutUint16(hdr[58:], 64) // e_shentsize
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le.PutUint16(hdr[60:], uint16(nSections))
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le.PutUint16(hdr[62:], uint16(secShstr))
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return out, nil
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}
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// objectName renders a symbol's object-file name: the identifier as written,
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// with an explicit package prefix joined by a dot.
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func objectName(pkg, name string) string {
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if pkg == "" {
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return name
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}
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return pkg + "." + name
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}
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// elfStrtab is an ELF string table under construction.
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type elfStrtab struct {
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buf []byte
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off map[string]int
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}
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func newElfStrtab() *elfStrtab {
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return &elfStrtab{buf: []byte{0}, off: map[string]int{"": 0}}
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}
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func (s *elfStrtab) add(name string) {
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if _, ok := s.off[name]; ok {
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return
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}
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s.off[name] = len(s.buf)
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s.buf = append(s.buf, name...)
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s.buf = append(s.buf, 0)
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}
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func (s *elfStrtab) at(name string) int { return s.off[name] }
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func (s *elfStrtab) bytes() []byte { return s.buf }
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+310
@@ -0,0 +1,310 @@
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// Copyright (c) 2026 Petr Balvín <opensource@petrbalvin.org> (https://petrbalvin.org)
|
||||
// SPDX-License-Identifier: BSD-3-Clause
|
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|
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package asm
|
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|
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import (
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"bytes"
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"debug/elf"
|
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"encoding/binary"
|
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"os"
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"os/exec"
|
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"path/filepath"
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"testing"
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||||
|
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"sourcedock.dev/petrbalvin/gasm-devkit/parser"
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)
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|
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// The object-file tests share one source: two exported functions, one
|
||||
// file-local constant reached through a relocation, and one external symbol
|
||||
// the linker must resolve. The functions take their arguments in the System
|
||||
// V registers (not the Go stack ABI) so a C driver can call them directly.
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const elfTestSrc = `
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#include "textflag.h"
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TEXT ·addq(SB), NOSPLIT, $0
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LEAQ (DI)(SI*1), AX
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RET
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TEXT ·getanswer(SB), NOSPLIT, $0
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MOVQ answer<>(SB), AX
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RET
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TEXT ·useextern(SB), NOSPLIT, $0
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MOVQ extvar(SB), AX
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RET
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GLOBL answer<>(SB), RODATA, $8
|
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DATA answer<>+0(SB)/8, $42
|
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`
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|
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func elfTestImage(t *testing.T) *Image {
|
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t.Helper()
|
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f, errs := parser.Parse("t_amd64.s", elfTestSrc)
|
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if len(errs) > 0 {
|
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t.Fatalf("parse: %v", errs)
|
||||
}
|
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img, err := AssembleFile(f)
|
||||
if err != nil {
|
||||
t.Fatalf("AssembleFile: %v", err)
|
||||
}
|
||||
return img
|
||||
}
|
||||
|
||||
// TestAssembleFileExternals checks that a reference to a symbol no GLOBL
|
||||
// defines is recorded as an external relocation instead of failing — the
|
||||
// raw image leaves the displacement zero, the object emitters carry it.
|
||||
func TestAssembleFileExternals(t *testing.T) {
|
||||
img := elfTestImage(t)
|
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if len(img.Externals) != 1 || img.Externals[0] != "extvar" {
|
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t.Fatalf("Externals = %v, want [extvar]", img.Externals)
|
||||
}
|
||||
var ext, local int
|
||||
for _, fn := range img.Funcs {
|
||||
for _, r := range fn.Relocs {
|
||||
if r.External {
|
||||
ext++
|
||||
if r.Name != "extvar" {
|
||||
t.Errorf("external reloc names %q, want extvar", r.Name)
|
||||
}
|
||||
} else {
|
||||
local++
|
||||
if r.Name != "answer" {
|
||||
t.Errorf("local reloc names %q, want answer", r.Name)
|
||||
}
|
||||
}
|
||||
}
|
||||
}
|
||||
if ext != 1 || local != 1 {
|
||||
t.Errorf("relocs = %d external, %d local; want 1 and 1", ext, local)
|
||||
}
|
||||
}
|
||||
|
||||
// TestELFObject checks the structure of the emitted ELF64 relocatable
|
||||
// object: sections, the symbol table (bindings, types, values, sizes) and
|
||||
// the .rela.text relocations, parsed back with debug/elf.
|
||||
func TestELFObject(t *testing.T) {
|
||||
img := elfTestImage(t)
|
||||
obj, err := img.ELFObject()
|
||||
if err != nil {
|
||||
t.Fatalf("ELFObject: %v", err)
|
||||
}
|
||||
f, err := elf.NewFile(bytes.NewReader(obj))
|
||||
if err != nil {
|
||||
t.Fatalf("parse emitted object: %v", err)
|
||||
}
|
||||
defer f.Close()
|
||||
|
||||
if f.Type != elf.ET_REL || f.Machine != elf.EM_X86_64 {
|
||||
t.Errorf("type/machine = %v/%v, want ET_REL/EM_X86_64", f.Type, f.Machine)
|
||||
}
|
||||
|
||||
text := f.Section(".text")
|
||||
data := f.Section(".data")
|
||||
if text == nil || data == nil {
|
||||
t.Fatal("missing .text or .data section")
|
||||
}
|
||||
if text.Flags&elf.SHF_EXECINSTR == 0 || text.Flags&elf.SHF_ALLOC == 0 {
|
||||
t.Errorf(".text flags = %v", text.Flags)
|
||||
}
|
||||
if data.Flags&elf.SHF_WRITE == 0 {
|
||||
t.Errorf(".data flags = %v", data.Flags)
|
||||
}
|
||||
textData, err := text.Data()
|
||||
if err != nil {
|
||||
t.Fatal(err)
|
||||
}
|
||||
if !bytes.Equal(textData, img.Code) {
|
||||
t.Errorf(".text contents differ from the image code")
|
||||
}
|
||||
|
||||
syms, err := f.Symbols()
|
||||
if err != nil {
|
||||
t.Fatalf("symbols: %v", err)
|
||||
}
|
||||
byName := map[string]elf.Symbol{}
|
||||
for _, s := range syms {
|
||||
byName[s.Name] = s
|
||||
}
|
||||
wantSym := func(name string, bind elf.SymBind, typ elf.SymType, section elf.SectionIndex, size uint64) {
|
||||
t.Helper()
|
||||
s, ok := byName[name]
|
||||
if !ok {
|
||||
t.Errorf("symbol %q not found", name)
|
||||
return
|
||||
}
|
||||
if elf.ST_BIND(s.Info) != bind || elf.ST_TYPE(s.Info) != typ {
|
||||
t.Errorf("%s: bind/type = %v/%v, want %v/%v", name, elf.ST_BIND(s.Info), elf.ST_TYPE(s.Info), bind, typ)
|
||||
}
|
||||
if s.Section != section {
|
||||
t.Errorf("%s: section = %v, want %v", name, s.Section, section)
|
||||
}
|
||||
if s.Size != size {
|
||||
t.Errorf("%s: size = %d, want %d", name, s.Size, size)
|
||||
}
|
||||
}
|
||||
// The emitted layout is fixed: 0 NULL, 1 .text, 2 .data.
|
||||
if f.Sections[1].Name != ".text" || f.Sections[2].Name != ".data" {
|
||||
t.Fatalf("section layout = %s, %s; want .text, .data", f.Sections[1].Name, f.Sections[2].Name)
|
||||
}
|
||||
textIdx := elf.SectionIndex(1)
|
||||
dataIdx := elf.SectionIndex(2)
|
||||
wantSym("addq", elf.STB_GLOBAL, elf.STT_FUNC, textIdx, 5)
|
||||
wantSym("getanswer", elf.STB_GLOBAL, elf.STT_FUNC, textIdx, 8)
|
||||
wantSym("useextern", elf.STB_GLOBAL, elf.STT_FUNC, textIdx, 8)
|
||||
wantSym("answer", elf.STB_LOCAL, elf.STT_OBJECT, dataIdx, 8)
|
||||
wantSym("extvar", elf.STB_GLOBAL, elf.STT_NOTYPE, elf.SHN_UNDEF, 0)
|
||||
|
||||
// Relocations: one for the file-local constant (resolving against the
|
||||
// local data symbol) and one for the external (against the undefined
|
||||
// global), both R_X86_64_PC32 with the −4 addend the PC-relative form
|
||||
// needs. debug/elf does not surface rela entries, so read the section
|
||||
// directly.
|
||||
relaSec := f.Section(".rela.text")
|
||||
if relaSec == nil {
|
||||
t.Fatal("missing .rela.text")
|
||||
}
|
||||
raw, err := relaSec.Data()
|
||||
if err != nil {
|
||||
t.Fatal(err)
|
||||
}
|
||||
if len(raw)%24 != 0 || len(raw)/24 != 2 {
|
||||
t.Fatalf(".rela.text has %d bytes, want two 24-byte entries", len(raw))
|
||||
}
|
||||
// Symbol names straight from the raw tables: r_info carries an index
|
||||
// into .symtab including the null entry, which debug/elf's Symbols()
|
||||
// slice may not mirror.
|
||||
symtabRaw, err := f.Section(".symtab").Data()
|
||||
if err != nil {
|
||||
t.Fatal(err)
|
||||
}
|
||||
strtabRaw, err := f.Section(".strtab").Data()
|
||||
if err != nil {
|
||||
t.Fatal(err)
|
||||
}
|
||||
symName := func(idx int) string {
|
||||
stName := binary.LittleEndian.Uint32(symtabRaw[idx*24:])
|
||||
end := bytes.IndexByte(strtabRaw[stName:], 0)
|
||||
return string(strtabRaw[stName : int(stName)+end])
|
||||
}
|
||||
for i := 0; i < 2; i++ {
|
||||
e := raw[i*24 : (i+1)*24]
|
||||
off := binary.LittleEndian.Uint64(e[0:])
|
||||
info := binary.LittleEndian.Uint64(e[8:])
|
||||
addend := int64(binary.LittleEndian.Uint64(e[16:]))
|
||||
typ := info & 0xffffffff
|
||||
sym := int(info >> 32)
|
||||
if typ != uint64(elf.R_X86_64_PC32) {
|
||||
t.Errorf("reloc %d: type %d, want R_X86_64_PC32", i, typ)
|
||||
}
|
||||
if addend != -4 {
|
||||
t.Errorf("reloc %d: addend %d, want -4", i, addend)
|
||||
}
|
||||
if name := symName(sym); name != "answer" && name != "extvar" {
|
||||
t.Errorf("reloc %d: symbol %q, want answer or extvar", i, name)
|
||||
}
|
||||
// The relocation offset lands on the disp32 field: the four bytes
|
||||
// before a RET-terminated eight-byte MOVQ.
|
||||
if off+4 > uint64(len(textData)) {
|
||||
t.Errorf("reloc %d: offset %d outside .text", i, off)
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
// TestELFObjectNoRelocations checks a file with no static-symbol references
|
||||
// emits a valid object without a .rela.text section.
|
||||
func TestELFObjectNoRelocations(t *testing.T) {
|
||||
f, errs := parser.Parse("n_amd64.s", `
|
||||
#include "textflag.h"
|
||||
TEXT ·nop(SB), NOSPLIT, $0
|
||||
RET
|
||||
`)
|
||||
if len(errs) > 0 {
|
||||
t.Fatalf("parse: %v", errs)
|
||||
}
|
||||
img, err := AssembleFile(f)
|
||||
if err != nil {
|
||||
t.Fatalf("AssembleFile: %v", err)
|
||||
}
|
||||
obj, err := img.ELFObject()
|
||||
if err != nil {
|
||||
t.Fatalf("ELFObject: %v", err)
|
||||
}
|
||||
ef, err := elf.NewFile(bytes.NewReader(obj))
|
||||
if err != nil {
|
||||
t.Fatalf("parse emitted object: %v", err)
|
||||
}
|
||||
defer ef.Close()
|
||||
if ef.Section(".rela.text") != nil {
|
||||
t.Error("unexpected .rela.text section")
|
||||
}
|
||||
syms, err := ef.Symbols()
|
||||
if err != nil {
|
||||
t.Fatal(err)
|
||||
}
|
||||
found := false
|
||||
for _, s := range syms {
|
||||
if s.Name == "nop" && elf.ST_TYPE(s.Info) == elf.STT_FUNC {
|
||||
found = true
|
||||
}
|
||||
}
|
||||
if !found {
|
||||
t.Error("function symbol nop not found")
|
||||
}
|
||||
}
|
||||
|
||||
// TestELFLinkAndRun is the end-to-end check: assemble the test functions,
|
||||
// link the emitted object with a C driver that defines the external symbol,
|
||||
// and run the result. Skipped when no C compiler is available.
|
||||
func TestELFLinkAndRun(t *testing.T) {
|
||||
cc, err := exec.LookPath("cc")
|
||||
if err != nil {
|
||||
t.Skip("no C compiler available")
|
||||
}
|
||||
dir := t.TempDir()
|
||||
|
||||
img := elfTestImage(t)
|
||||
obj, err := img.ELFObject()
|
||||
if err != nil {
|
||||
t.Fatalf("ELFObject: %v", err)
|
||||
}
|
||||
objPath := filepath.Join(dir, "t.o")
|
||||
if err := os.WriteFile(objPath, obj, 0o644); err != nil {
|
||||
t.Fatal(err)
|
||||
}
|
||||
|
||||
const driver = `
|
||||
#include <stdio.h>
|
||||
|
||||
long addq(long a, long b);
|
||||
long getanswer(void);
|
||||
long useextern(void);
|
||||
|
||||
long extvar = 7;
|
||||
|
||||
int main(void) {
|
||||
printf("%ld %ld %ld\n", addq(41, 1), getanswer(), useextern());
|
||||
return 0;
|
||||
}
|
||||
`
|
||||
driverPath := filepath.Join(dir, "driver.c")
|
||||
if err := os.WriteFile(driverPath, []byte(driver), 0o644); err != nil {
|
||||
t.Fatal(err)
|
||||
}
|
||||
|
||||
// -no-pie: the encoder emits R_X86_64_PC32 for external references,
|
||||
// which a position-independent executable would reject (it wants
|
||||
// PLT32/GOT relocations, a future increment).
|
||||
appPath := filepath.Join(dir, "app")
|
||||
out, err := exec.Command(cc, "-no-pie", "-o", appPath, driverPath, objPath).CombinedOutput()
|
||||
if err != nil {
|
||||
t.Fatalf("link failed: %v\n%s", err, out)
|
||||
}
|
||||
run, err := exec.Command(appPath).CombinedOutput()
|
||||
if err != nil {
|
||||
t.Fatalf("run failed: %v\n%s", err, run)
|
||||
}
|
||||
if got := string(run); got != "42 42 7\n" {
|
||||
t.Errorf("output %q, want \"42 42 7\\n\"", got)
|
||||
}
|
||||
}
|
||||
+102
-3
@@ -11,9 +11,11 @@ import (
|
||||
// This file implements EVEX (AVX-512) instruction encoding: the four-byte
|
||||
// EVEX prefix with 5-bit vector register fields (Z0–Z31, X/Y 16–31), the
|
||||
// compressed disp8×N displacement, and the operand shapes the go-flac
|
||||
// AVX-512 kernels use. Masking ({k}) and zeroing ({z}) are not supported —
|
||||
// the kernels do not use them. K-register operands (mask destinations,
|
||||
// KMOVW, KTESTW) are.
|
||||
// AVX-512 kernels use plus the common floating-point and conversion set.
|
||||
// Masking follows the Go assembler's spelling: an explicit K1–K7 operand
|
||||
// anywhere among the operands (merging) plus a ".Z" mnemonic suffix for
|
||||
// zeroing. K-register operands (mask destinations, KMOVW, KTESTW) are
|
||||
// supported too.
|
||||
|
||||
// evexSpec describes one EVEX instruction's encoding parameters. The form
|
||||
// field reuses the vexForm shapes, which carry over unchanged.
|
||||
@@ -49,6 +51,31 @@ var evexTable = map[string]evexSpec{
|
||||
// EVEX.128/256/512.66.0F.W1 — packed double arithmetic.
|
||||
"VADDPD": {1, 0x58, 1, 1, -1, vexNDS3, [3]int{16, 32, 64}},
|
||||
"VMULPD": {1, 0x59, 1, 1, -1, vexNDS3, [3]int{16, 32, 64}},
|
||||
"VSUBPD": {1, 0x5C, 1, 1, -1, vexNDS3, [3]int{16, 32, 64}},
|
||||
"VDIVPD": {1, 0x5E, 1, 1, -1, vexNDS3, [3]int{16, 32, 64}},
|
||||
"VMINPD": {1, 0x5D, 1, 1, -1, vexNDS3, [3]int{16, 32, 64}},
|
||||
"VMAXPD": {1, 0x5F, 1, 1, -1, vexNDS3, [3]int{16, 32, 64}},
|
||||
// EVEX.128/256/512.66.0F.W1 — packed double unpack.
|
||||
"VUNPCKLPD": {1, 0x14, 1, 1, -1, vexNDS3, [3]int{16, 32, 64}},
|
||||
"VUNPCKHPD": {1, 0x15, 1, 1, -1, vexNDS3, [3]int{16, 32, 64}},
|
||||
|
||||
// EVEX.128.F2.0F.W1 — scalar double arithmetic (the packed opcodes with
|
||||
// an F2 pp; the EVEX forms exist for masked and zeroing use). The
|
||||
// memory operand is a single double, so disp8×N = 8.
|
||||
"VADDSD": {1, 0x58, 1, 3, -1, vexNDS3, [3]int{8, 8, 8}},
|
||||
"VSUBSD": {1, 0x5C, 1, 3, -1, vexNDS3, [3]int{8, 8, 8}},
|
||||
"VMULSD": {1, 0x59, 1, 3, -1, vexNDS3, [3]int{8, 8, 8}},
|
||||
"VDIVSD": {1, 0x5E, 1, 3, -1, vexNDS3, [3]int{8, 8, 8}},
|
||||
"VMINSD": {1, 0x5D, 1, 3, -1, vexNDS3, [3]int{8, 8, 8}},
|
||||
"VMAXSD": {1, 0x5F, 1, 3, -1, vexNDS3, [3]int{8, 8, 8}},
|
||||
|
||||
// EVEX.128.F3.0F.W0 — scalar single arithmetic (disp8×N = 4).
|
||||
"VADDSS": {1, 0x58, 0, 2, -1, vexNDS3, [3]int{4, 4, 4}},
|
||||
"VSUBSS": {1, 0x5C, 0, 2, -1, vexNDS3, [3]int{4, 4, 4}},
|
||||
"VMULSS": {1, 0x59, 0, 2, -1, vexNDS3, [3]int{4, 4, 4}},
|
||||
"VDIVSS": {1, 0x5E, 0, 2, -1, vexNDS3, [3]int{4, 4, 4}},
|
||||
"VMINSS": {1, 0x5D, 0, 2, -1, vexNDS3, [3]int{4, 4, 4}},
|
||||
"VMAXSS": {1, 0x5F, 0, 2, -1, vexNDS3, [3]int{4, 4, 4}},
|
||||
|
||||
// EVEX.512.66.0F3A — align (NDS + imm8).
|
||||
"VALIGND": {3, 0x03, 0, 1, -1, vexNDS3Imm, [3]int{16, 32, 64}},
|
||||
@@ -62,6 +89,36 @@ var evexTable = map[string]evexSpec{
|
||||
// EVEX.128/256/512.F3.0F.W1 — signed qword to packed double (reg=dst,
|
||||
// rm=src, no vvvv).
|
||||
"VCVTQQ2PD": {1, 0xE6, 1, 2, -1, vexRM, [3]int{16, 32, 64}},
|
||||
// EVEX.128/256/512.F2.0F.W1 — duplicate the low double (reg=dst,
|
||||
// rm=src, no vvvv): a 128-bit destination reads a single double from
|
||||
// memory (disp8×8), the wider ones read the full operand.
|
||||
"VMOVDDUP": {1, 0x12, 1, 3, -1, vexRM, [3]int{8, 32, 64}},
|
||||
// EVEX.128/256/512.0F.W0 — signed dword to packed single (reg=dst,
|
||||
// rm=src, no vvvv, no mandatory prefix — as in the VEX form).
|
||||
"VCVTDQ2PS": {1, 0x5B, 0, 0, -1, vexRM, [3]int{16, 32, 64}},
|
||||
// EVEX.128/256/512.0F.W0 — packed single to packed double: the
|
||||
// destination is twice the source width and sets the length; disp8×N
|
||||
// follows the narrow memory source. No F3 prefix: the Go assembler
|
||||
// emits this instruction with pp = 00 (Intel's maps would call that
|
||||
// undefined) and gasm reproduces the Go assembler's bytes — its machine
|
||||
// code is the oracle, not the manual.
|
||||
"VCVTPS2PD": {1, 0x5A, 0, 0, -1, vexRM, [3]int{8, 16, 32}},
|
||||
// EVEX.128/256/512.F3.0F.W0 — signed dword to packed double (the EVEX
|
||||
// form of the VEX instruction; the destination sets the length, disp8×N
|
||||
// follows the narrow memory source).
|
||||
"VCVTDQ2PD": {1, 0xE6, 0, 2, -1, vexRM, [3]int{8, 16, 32}},
|
||||
// EVEX packed double → dword conversions: the source is the wide
|
||||
// operand and the mnemonic fixes the length — the bare names are
|
||||
// 512-bit only (ZMM source, XMM destination), the X/Y spellings are
|
||||
// EVEX-128/256. Exactly one slot of n is valid; it names the vector
|
||||
// length (and the disp8×N multiplier) a register or memory source
|
||||
// encodes.
|
||||
"VCVTPD2DQ": {1, 0xE6, 1, 3, -1, vexRMSrcLen, [3]int{0, 0, 64}},
|
||||
"VCVTTPD2DQ": {1, 0xE6, 1, 1, -1, vexRMSrcLen, [3]int{0, 0, 64}},
|
||||
"VCVTPD2DQX": {1, 0xE6, 1, 3, -1, vexRMSrcLen, [3]int{16, 0, 0}},
|
||||
"VCVTPD2DQY": {1, 0xE6, 1, 3, -1, vexRMSrcLen, [3]int{0, 32, 0}},
|
||||
"VCVTTPD2DQX": {1, 0xE6, 1, 1, -1, vexRMSrcLen, [3]int{16, 0, 0}},
|
||||
"VCVTTPD2DQY": {1, 0xE6, 1, 1, -1, vexRMSrcLen, [3]int{0, 32, 0}},
|
||||
// EVEX.128/256/512.66.0F38.W0 — sign-extend dwords to qwords; the memory
|
||||
// operand is the narrow source, so disp8×N follows its size (8/16/32 for
|
||||
// the xmm/ymm/zmm destination lengths).
|
||||
@@ -292,6 +349,8 @@ func (e *enc) encodeEvex(mnemUpper string, ops []Operand, zeroing bool) error {
|
||||
return e.encodeEvexNDS3Imm(spec, ops, mask, zeroing)
|
||||
case vexExtract:
|
||||
return e.encodeEvexExtract(spec, ops, mask, zeroing)
|
||||
case vexRMSrcLen:
|
||||
return e.encodeEvexRMSrcLen(spec, ops, mask, zeroing)
|
||||
}
|
||||
return fmt.Errorf("unhandled EVEX form for %s", mnemUpper)
|
||||
}
|
||||
@@ -487,6 +546,46 @@ func (e *enc) encodeEvexMove(mnem string, ms evexMoveSpec, ops []Operand, mask i
|
||||
return e.emitEvexFields(spec, reg.vecLenBit(), reg.idx, -1, rm, mask, zeroing)
|
||||
}
|
||||
|
||||
// encodeEvexRMSrcLen encodes a length-narrowing conversion: OP src, dst with
|
||||
// the destination always XMM and the length fixed by the mnemonic — the
|
||||
// single valid slot of spec.n names the vector length (and the disp8×N
|
||||
// multiplier) a register or memory source encodes.
|
||||
func (e *enc) encodeEvexRMSrcLen(spec evexSpec, ops []Operand, mask int, zeroing bool) error {
|
||||
if len(ops) != 2 {
|
||||
return fmt.Errorf("conversion expects 2 operands, got %d", len(ops))
|
||||
}
|
||||
src, dst := ops[0], ops[1]
|
||||
dstReg, ok := dst.(Reg)
|
||||
if !ok || !dstReg.isVec() {
|
||||
return fmt.Errorf("EVEX destination must be a vector register")
|
||||
}
|
||||
ll, err := soleLen(spec.n)
|
||||
if err != nil {
|
||||
return err
|
||||
}
|
||||
return e.emitEvexFields(spec, ll, dstReg.idx, -1, src, mask, zeroing)
|
||||
}
|
||||
|
||||
// soleLen returns the vector-length index of the single valid slot of n —
|
||||
// the length a length-fixed mnemonic (the EVEX conversion spellings) encodes
|
||||
// regardless of its operands.
|
||||
func soleLen(n [3]int) (int, error) {
|
||||
ll := -1
|
||||
for i, v := range n {
|
||||
if v == 0 {
|
||||
continue
|
||||
}
|
||||
if ll >= 0 {
|
||||
return 0, fmt.Errorf("ambiguous vector-length table %v", n)
|
||||
}
|
||||
ll = i
|
||||
}
|
||||
if ll < 0 {
|
||||
return 0, fmt.Errorf("empty vector-length table")
|
||||
}
|
||||
return ll, nil
|
||||
}
|
||||
|
||||
// memOperand reports whether op is a memory reference (including a
|
||||
// static-symbol reference).
|
||||
func memOperand(op Operand) bool {
|
||||
|
||||
@@ -101,6 +101,32 @@ func TestEvexGroundTruth(t *testing.T) {
|
||||
{"VPBROADCASTQ AX,Z9", "VPBROADCASTQ", []Operand{AX, vreg(t, "Z9")}, "6272fd487cc8"},
|
||||
// Register indices 16–31 exist only in EVEX encodings.
|
||||
{"VPBROADCASTD AX,Y30", "VPBROADCASTD", []Operand{AX, vreg(t, "Y30")}, "62627d287cf0"},
|
||||
// Packed double arithmetic / unpack (EVEX forms carry W=1).
|
||||
{"VSUBPD Z1,Z2,Z3", "VSUBPD", []Operand{vreg(t, "Z1"), vreg(t, "Z2"), vreg(t, "Z3")}, "62f1ed485cd9"},
|
||||
{"VDIVPD Z4,Z5,Z6", "VDIVPD", []Operand{vreg(t, "Z4"), vreg(t, "Z5"), vreg(t, "Z6")}, "62f1d5485ef4"},
|
||||
{"VMINPD Z7,Z8,Z9", "VMINPD", []Operand{vreg(t, "Z7"), vreg(t, "Z8"), vreg(t, "Z9")}, "6271bd485dcf"},
|
||||
{"VMAXPD Z10,Z11,Z12", "VMAXPD", []Operand{vreg(t, "Z10"), vreg(t, "Z11"), vreg(t, "Z12")}, "6251a5485fe2"},
|
||||
{"VUNPCKLPD Z1,Z2,Z3", "VUNPCKLPD", []Operand{vreg(t, "Z1"), vreg(t, "Z2"), vreg(t, "Z3")}, "62f1ed4814d9"},
|
||||
{"VUNPCKHPD Z1,Z2,Z3", "VUNPCKHPD", []Operand{vreg(t, "Z1"), vreg(t, "Z2"), vreg(t, "Z3")}, "62f1ed4815d9"},
|
||||
{"VSUBPD 64(AX),Z1,Z2", "VSUBPD", []Operand{Ptr(AX, 64, 64), vreg(t, "Z1"), vreg(t, "Z2")}, "62f1f5485c5001"},
|
||||
{"VSUBPD Z17,Z18,Z19", "VSUBPD", []Operand{vreg(t, "Z17"), vreg(t, "Z18"), vreg(t, "Z19")}, "62a1ed405cd9"},
|
||||
// VMOVDDUP — duplicate the low double; disp8×N = 64 at 512 bits, and
|
||||
// X16/X17 force EVEX (the mod=11 rm[4] extension rides in X̄).
|
||||
{"VMOVDDUP Z1,Z2", "VMOVDDUP", []Operand{vreg(t, "Z1"), vreg(t, "Z2")}, "62f1ff4812d1"},
|
||||
{"VMOVDDUP 64(AX),Z1", "VMOVDDUP", []Operand{Ptr(AX, 64, 64), vreg(t, "Z1")}, "62f1ff48124801"},
|
||||
{"VMOVDDUP X16,X17", "VMOVDDUP", []Operand{vreg(t, "X16"), vreg(t, "X17")}, "62a1ff0812c8"},
|
||||
// Conversions: DQ→PS, PS→PD (pp = 00, the Go assembler's choice),
|
||||
// DQ→PD (the destination sets the length).
|
||||
{"VCVTDQ2PS Z1,Z2", "VCVTDQ2PS", []Operand{vreg(t, "Z1"), vreg(t, "Z2")}, "62f17c485bd1"},
|
||||
{"VCVTPS2PD Y1,Z2", "VCVTPS2PD", []Operand{vreg(t, "Y1"), vreg(t, "Z2")}, "62f17c485ad1"},
|
||||
{"VCVTPS2PD 32(AX),Z2", "VCVTPS2PD", []Operand{Ptr(AX, 32, 32), vreg(t, "Z2")}, "62f17c485a5001"},
|
||||
{"VCVTDQ2PD Y1,Z2", "VCVTDQ2PD", []Operand{vreg(t, "Y1"), vreg(t, "Z2")}, "62f17e48e6d1"},
|
||||
// PD→DQ conversions: the source is the wide operand and fixes the
|
||||
// length (ZMM source → L'L = 10 even with an XMM destination; a
|
||||
// memory source takes the length the mnemonic's spelling implies).
|
||||
{"VCVTPD2DQ Z1,Y2", "VCVTPD2DQ", []Operand{vreg(t, "Z1"), vreg(t, "Y2")}, "62f1ff48e6d1"},
|
||||
{"VCVTPD2DQ 64(AX),Y2", "VCVTPD2DQ", []Operand{Ptr(AX, 64, 64), vreg(t, "Y2")}, "62f1ff48e65001"},
|
||||
{"VCVTTPD2DQ Z3,Y4", "VCVTTPD2DQ", []Operand{vreg(t, "Z3"), vreg(t, "Y4")}, "62f1fd48e6e3"},
|
||||
}
|
||||
for _, c := range cases {
|
||||
want := strings.ReplaceAll(c.want, " ", "")
|
||||
@@ -157,6 +183,18 @@ func TestEvexMasking(t *testing.T) {
|
||||
{"VMOVDQU32 store", "VMOVDQU32", []Operand{vreg(t, "Z1"), vreg(t, "K4"), Ptr(DI, 0, 64)}, "62f17e4c7f0f"},
|
||||
// Masked comparison with a K destination: dst K1, mask K2.
|
||||
{"VPCMPEQD k-dst+mask", "VPCMPEQD", []Operand{vreg(t, "Z0"), vreg(t, "Z3"), vreg(t, "K2"), vreg(t, "K1")}, "62f1654a76c8"},
|
||||
// Masked floating point: packed double, the scalar SD/SS forms (which
|
||||
// exist under EVEX only for masked and zeroing use) and conversions.
|
||||
{"VSUBPD.Z", "VSUBPD.Z", []Operand{vreg(t, "Z1"), vreg(t, "Z2"), vreg(t, "K3"), vreg(t, "Z4")}, "62f1edcb5ce1"},
|
||||
{"VADDSD merge", "VADDSD", []Operand{vreg(t, "X1"), vreg(t, "X2"), vreg(t, "K3"), vreg(t, "X4")}, "62f1ef0b58e1"},
|
||||
{"VSUBSD.Z", "VSUBSD.Z", []Operand{vreg(t, "X1"), vreg(t, "X2"), vreg(t, "K5"), vreg(t, "X3")}, "62f1ef8d5cd9"},
|
||||
{"VADDSS merge", "VADDSS", []Operand{vreg(t, "X1"), vreg(t, "X2"), vreg(t, "K1"), vreg(t, "X3")}, "62f16e0958d9"},
|
||||
{"VCVTPD2DQ merge", "VCVTPD2DQ", []Operand{vreg(t, "Z1"), vreg(t, "K2"), vreg(t, "Y3")}, "62f1ff4ae6d9"},
|
||||
{"VCVTTPD2DQ.Z", "VCVTTPD2DQ.Z", []Operand{vreg(t, "Z1"), vreg(t, "K2"), vreg(t, "Y3")}, "62f1fdcae6d9"},
|
||||
{"VCVTDQ2PS.Z", "VCVTDQ2PS.Z", []Operand{vreg(t, "Z1"), vreg(t, "K4"), vreg(t, "Z2")}, "62f17ccc5bd1"},
|
||||
{"VCVTDQ2PD merge", "VCVTDQ2PD", []Operand{vreg(t, "X1"), vreg(t, "K2"), vreg(t, "X3")}, "62f17e0ae6d9"},
|
||||
{"VCVTDQ2PD.Z", "VCVTDQ2PD.Z", []Operand{vreg(t, "Y1"), vreg(t, "K2"), vreg(t, "Z2")}, "62f17ecae6d1"},
|
||||
{"VCVTPS2PD.Z", "VCVTPS2PD.Z", []Operand{vreg(t, "Y1"), vreg(t, "K3"), vreg(t, "Z2")}, "62f17ccb5ad1"},
|
||||
}
|
||||
for _, c := range cases {
|
||||
code, err := Encode(c.mnem, c.ops...)
|
||||
|
||||
+109
-39
@@ -5,27 +5,58 @@ package asm
|
||||
|
||||
import (
|
||||
"fmt"
|
||||
"sort"
|
||||
|
||||
"sourcedock.dev/petrbalvin/gasm-devkit/ast"
|
||||
)
|
||||
|
||||
// Image is an assembled file: the function bodies laid out in source order,
|
||||
// followed by the file's static data section (GLOBL/DATA). Static-symbol
|
||||
// references are encoded RIP-relative and resolved within the image, so the
|
||||
// bytes are self-consistent and executable at any base address.
|
||||
// followed by the file's static data section (GLOBL/DATA). References to
|
||||
// file-local static symbols are encoded RIP-relative and resolved within the
|
||||
// image, so the raw bytes are self-consistent and executable at any base
|
||||
// address; references to external symbols are recorded as relocations
|
||||
// (Funcs[i].Relocs, Externals) and left unresolved — the object-file
|
||||
// emitters turn them into linker relocations.
|
||||
type Image struct {
|
||||
Code []byte // concatenated function bodies
|
||||
Data []byte // static data section
|
||||
Funcs []FuncLayout // function positions, in source order
|
||||
Symbols map[string]int // static symbol → byte offset within the image
|
||||
Code []byte // concatenated function bodies
|
||||
Data []byte // static data section
|
||||
Funcs []FuncLayout // function positions, in source order
|
||||
Symbols map[string]int // static symbol → byte offset within the image
|
||||
DataSyms []DataSymbol // GLOBL symbols, in layout order
|
||||
Externals []string // referenced but undefined symbols, sorted
|
||||
}
|
||||
|
||||
// FuncLayout describes one assembled function within an Image.
|
||||
type FuncLayout struct {
|
||||
Name string
|
||||
Offset int // start offset within the image (== offset within Code)
|
||||
Pkg string // explicit package prefix ("" = the current package)
|
||||
Static bool // the <> marker: file-local, not exported
|
||||
Offset int // start offset within the image (== offset within Code)
|
||||
Size int
|
||||
Labels map[string]int // local labels, function-relative
|
||||
Relocs []Reloc // static-symbol references, in emission order
|
||||
}
|
||||
|
||||
// Reloc is one static-symbol reference within a function body: the disp32
|
||||
// field at Off (function-relative) must reach the symbol plus Addend,
|
||||
// measured from After, the address just past the instruction. An External
|
||||
// relocation names a symbol no GLOBL in the file defines; the object-file
|
||||
// emitters carry it into the output's relocation table.
|
||||
type Reloc struct {
|
||||
Off int
|
||||
After int
|
||||
Name string
|
||||
Addend int64
|
||||
External bool
|
||||
}
|
||||
|
||||
// DataSymbol describes one GLOBL symbol laid out in the data section.
|
||||
type DataSymbol struct {
|
||||
Name string
|
||||
Pkg string // explicit package prefix ("" = the current package)
|
||||
Offset int // byte offset within Data
|
||||
Size int
|
||||
Static bool // the <> marker: file-local, not exported
|
||||
}
|
||||
|
||||
// Bytes returns the whole image: code, then data.
|
||||
@@ -37,19 +68,21 @@ func (img *Image) Bytes() []byte {
|
||||
|
||||
// AssembleFile assembles every TEXT function of a parsed file and lays out
|
||||
// its static symbols (GLOBL/DATA) in a data section behind the code. Each
|
||||
// static-symbol reference becomes a RIP-relative load whose displacement is
|
||||
// resolved against that layout. External (non-file-local) symbol references
|
||||
// are rejected: they need object-file emission.
|
||||
// reference to a file-local static symbol becomes a RIP-relative load whose
|
||||
// displacement is resolved against that layout; a reference to a symbol no
|
||||
// GLOBL defines is recorded as an external relocation (Externals) with its
|
||||
// displacement left zero — the object-file emitters resolve it at link
|
||||
// time, while the raw image (Bytes) cannot represent it.
|
||||
func AssembleFile(f *ast.File) (*Image, error) {
|
||||
syms, order, err := collectData(f)
|
||||
dataSyms, err := collectData(f)
|
||||
if err != nil {
|
||||
return nil, err
|
||||
}
|
||||
known := make(map[string]bool, len(syms))
|
||||
for name := range syms {
|
||||
known[name] = true
|
||||
known := make(map[string]bool, len(dataSyms))
|
||||
for _, d := range dataSyms {
|
||||
known[d.name] = true
|
||||
}
|
||||
link := &linkInfo{symbols: known}
|
||||
link := &linkInfo{symbols: known, allowExternal: true}
|
||||
|
||||
img := &Image{Symbols: map[string]int{}}
|
||||
type asmFunc struct {
|
||||
@@ -68,6 +101,8 @@ func AssembleFile(f *ast.File) (*Image, error) {
|
||||
}
|
||||
img.Funcs = append(img.Funcs, FuncLayout{
|
||||
Name: t.Name.Name,
|
||||
Pkg: t.Name.Pkg,
|
||||
Static: t.Name.Static,
|
||||
Offset: len(img.Code),
|
||||
Size: len(code),
|
||||
Labels: labels,
|
||||
@@ -78,34 +113,63 @@ func AssembleFile(f *ast.File) (*Image, error) {
|
||||
|
||||
// Lay out the data section behind the code, each symbol 16-aligned.
|
||||
dataStart := len(img.Code)
|
||||
for _, name := range order {
|
||||
for _, d := range dataSyms {
|
||||
if pos := dataStart + len(img.Data); pos != align16(pos) {
|
||||
img.Data = append(img.Data, make([]byte, align16(pos)-pos)...)
|
||||
}
|
||||
img.Symbols[name] = dataStart + len(img.Data)
|
||||
img.Data = append(img.Data, syms[name]...)
|
||||
img.Symbols[d.name] = dataStart + len(img.Data)
|
||||
img.DataSyms = append(img.DataSyms, DataSymbol{
|
||||
Name: d.name,
|
||||
Pkg: d.pkg,
|
||||
Offset: len(img.Data),
|
||||
Size: len(d.buf),
|
||||
Static: d.static,
|
||||
})
|
||||
img.Data = append(img.Data, d.buf...)
|
||||
}
|
||||
|
||||
// Resolve the RIP-relative displacements now that every address is known.
|
||||
// Resolve the RIP-relative displacements of file-local references now
|
||||
// that every address is known, and record every reference (resolved or
|
||||
// external) for the object-file emitters.
|
||||
externals := map[string]bool{}
|
||||
for i, fn := range funcs {
|
||||
base := img.Funcs[i].Offset
|
||||
code := img.Code[base : base+img.Funcs[i].Size]
|
||||
for _, p := range fn.patches {
|
||||
rel := int64(img.Symbols[p.name]) + p.addend - int64(base+p.after)
|
||||
if rel < -1<<31 || rel >= 1<<31 {
|
||||
return nil, fmt.Errorf("%s: displacement to %q out of rel32 range", fn.name, p.name)
|
||||
reloc := Reloc{Off: p.off, After: p.after, Name: p.name, Addend: p.addend}
|
||||
if imgOff, ok := img.Symbols[p.name]; ok {
|
||||
rel := int64(imgOff) + p.addend - int64(base+p.after)
|
||||
if rel < -1<<31 || rel >= 1<<31 {
|
||||
return nil, fmt.Errorf("%s: displacement to %q out of rel32 range", fn.name, p.name)
|
||||
}
|
||||
copy(code[p.off:p.off+4], le32(rel))
|
||||
} else {
|
||||
reloc.External = true
|
||||
externals[p.name] = true
|
||||
}
|
||||
copy(code[p.off:p.off+4], le32(rel))
|
||||
img.Funcs[i].Relocs = append(img.Funcs[i].Relocs, reloc)
|
||||
}
|
||||
}
|
||||
for name := range externals {
|
||||
img.Externals = append(img.Externals, name)
|
||||
}
|
||||
sort.Strings(img.Externals)
|
||||
return img, nil
|
||||
}
|
||||
|
||||
// dataSym is one GLOBL symbol and its DATA initialiser.
|
||||
type dataSym struct {
|
||||
name string
|
||||
pkg string
|
||||
buf []byte
|
||||
static bool
|
||||
}
|
||||
|
||||
// collectData gathers the file's static symbols (GLOBL) and their initial
|
||||
// contents (DATA) into byte buffers, in declaration order.
|
||||
func collectData(f *ast.File) (map[string][]byte, []string, error) {
|
||||
syms := map[string][]byte{}
|
||||
var order []string
|
||||
func collectData(f *ast.File) ([]dataSym, error) {
|
||||
index := map[string]int{}
|
||||
var syms []dataSym
|
||||
for _, d := range f.Decls {
|
||||
switch dd := d.(type) {
|
||||
case *ast.Globl:
|
||||
@@ -113,47 +177,53 @@ func collectData(f *ast.File) (map[string][]byte, []string, error) {
|
||||
continue
|
||||
}
|
||||
name := dd.Name.Name
|
||||
if _, dup := syms[name]; dup {
|
||||
return nil, nil, fmt.Errorf("duplicate GLOBL %q", name)
|
||||
if _, dup := index[name]; dup {
|
||||
return nil, fmt.Errorf("duplicate GLOBL %q", name)
|
||||
}
|
||||
size := 0
|
||||
if dd.Size != nil && dd.Size.Imm.HasVal {
|
||||
size = int(dd.Size.Imm.Val)
|
||||
}
|
||||
syms[name] = make([]byte, size)
|
||||
order = append(order, name)
|
||||
index[name] = len(syms)
|
||||
syms = append(syms, dataSym{
|
||||
name: name,
|
||||
pkg: dd.Name.Pkg,
|
||||
buf: make([]byte, size),
|
||||
static: dd.Name.Static,
|
||||
})
|
||||
|
||||
case *ast.Data:
|
||||
if dd.Name == nil || dd.Name.Pseudo != "SB" {
|
||||
continue
|
||||
}
|
||||
buf, ok := syms[dd.Name.Name]
|
||||
i, ok := index[dd.Name.Name]
|
||||
if !ok {
|
||||
return nil, nil, fmt.Errorf("DATA %q: no matching GLOBL", dd.Name.Name)
|
||||
return nil, fmt.Errorf("DATA %q: no matching GLOBL", dd.Name.Name)
|
||||
}
|
||||
if dd.Value == nil || !dd.Value.Imm.HasVal {
|
||||
return nil, nil, fmt.Errorf("DATA %q: value must be an integer immediate", dd.Name.Name)
|
||||
return nil, fmt.Errorf("DATA %q: value must be an integer immediate", dd.Name.Name)
|
||||
}
|
||||
w := dd.Width
|
||||
switch w {
|
||||
case 1, 2, 4, 8:
|
||||
default:
|
||||
return nil, nil, fmt.Errorf("DATA %q: invalid width %d (want 1, 2, 4 or 8)", dd.Name.Name, w)
|
||||
return nil, fmt.Errorf("DATA %q: invalid width %d (want 1, 2, 4 or 8)", dd.Name.Name, w)
|
||||
}
|
||||
off := dd.Name.Offset
|
||||
buf := syms[i].buf
|
||||
if off < 0 || off+int64(w) > int64(len(buf)) {
|
||||
return nil, nil, fmt.Errorf("DATA %q+%d/%d exceeds GLOBL size %d", dd.Name.Name, off, w, len(buf))
|
||||
return nil, fmt.Errorf("DATA %q+%d/%d exceeds GLOBL size %d", dd.Name.Name, off, w, len(buf))
|
||||
}
|
||||
v := dd.Value.Imm.Val
|
||||
if dd.Value.Imm.Neg {
|
||||
v = -v
|
||||
}
|
||||
for i := 0; i < w; i++ {
|
||||
buf[off+int64(i)] = byte(v >> (8 * i))
|
||||
for j := 0; j < w; j++ {
|
||||
buf[off+int64(j)] = byte(v >> (8 * j))
|
||||
}
|
||||
}
|
||||
}
|
||||
return syms, order, nil
|
||||
return syms, nil
|
||||
}
|
||||
|
||||
// align16 rounds n up to the next multiple of 16.
|
||||
|
||||
+258
@@ -0,0 +1,258 @@
|
||||
// Copyright (c) 2026 Petr Balvín <opensource@petrbalvin.org> (https://petrbalvin.org)
|
||||
// SPDX-License-Identifier: BSD-3-Clause
|
||||
|
||||
package asm
|
||||
|
||||
import (
|
||||
"encoding/binary"
|
||||
"fmt"
|
||||
)
|
||||
|
||||
// This file emits Mach-O x86-64 objects (MH_OBJECT) from an assembled
|
||||
// Image, in the shape the Darwin assembler produces: one unnamed segment
|
||||
// carrying a __TEXT,__text and a __DATA,__data section laid out back to
|
||||
// back at addresses zero and len(code), a symbol table (locals first, then
|
||||
// exported definitions, then undefined externals) and one relocation entry
|
||||
// per static-symbol reference, of type X86_64_RELOC_SIGNED.
|
||||
//
|
||||
// The image's own address space carries straight over — the data section
|
||||
// starts immediately after the code, and the layout padding already lives
|
||||
// inside Image.Data — so every symbol keeps its image address as its
|
||||
// n_value, and a local (non-external) relocation leaves the displacement
|
||||
// the assembler resolved in place: the linker only adjusts it by the
|
||||
// section's final movement.
|
||||
|
||||
// Mach-O constants.
|
||||
const (
|
||||
machoMagic64 = 0xfeedfacf
|
||||
machoCPUamd64 = 0x01000007 // CPU_TYPE_X86_64
|
||||
machoCPUSubAll = 3 // CPU_SUBTYPE_X86_64_ALL
|
||||
machoObj = 1 // MH_OBJECT
|
||||
|
||||
machoSegment64 = 0x19 // LC_SEGMENT_64
|
||||
machoSymtab = 0x2 // LC_SYMTAB
|
||||
|
||||
machoSectTextFlags = 0x80000400 // S_ATTR_PURE_INSTRUCTIONS | S_ATTR_SOME_INSTRUCTIONS
|
||||
|
||||
nUndf = 0x00 // undefined symbol
|
||||
nSect = 0x0e // defined in section number n_sect
|
||||
nExt = 0x01 // external (exported or undefined-global) bit
|
||||
|
||||
x8664RelocSigned = 1
|
||||
)
|
||||
|
||||
// MachOObject returns the image as a Mach-O x86-64 relocatable object
|
||||
// (MH_OBJECT), the shape the Darwin toolchain links. Symbol names follow
|
||||
// the same rules as the ELF output. Every static-symbol reference becomes
|
||||
// an X86_64_RELOC_SIGNED relocation: external references against their
|
||||
// undefined symbol, file-local ones against the __DATA section with the
|
||||
// resolved displacement carried in the instruction bytes.
|
||||
func (img *Image) MachOObject() ([]byte, error) {
|
||||
le := binary.LittleEndian
|
||||
|
||||
// Section ordinals (1-based, as Mach-O numbers them).
|
||||
const (
|
||||
sectText = 1
|
||||
sectData = 2
|
||||
)
|
||||
|
||||
// Object address space: code at 0, data immediately after (the layout
|
||||
// padding is already part of img.Data, so image addresses are object
|
||||
// addresses).
|
||||
textAddr := uint64(0)
|
||||
dataAddr := uint64(len(img.Code))
|
||||
vmsize := dataAddr + uint64(len(img.Data))
|
||||
|
||||
// The code, with external displacements primed to addend − 4: the
|
||||
// linker adds the symbol's address to the field as it stands. Local
|
||||
// displacements stay as the assembler resolved them.
|
||||
code := append([]byte(nil), img.Code...)
|
||||
for _, fn := range img.Funcs {
|
||||
for _, r := range fn.Relocs {
|
||||
if r.External {
|
||||
// Prime the field to the addend measured from the patch
|
||||
// site: the assembler records it from the instruction end,
|
||||
// After − Off bytes past the field.
|
||||
copy(code[fn.Offset+r.Off:], le32(r.Addend-int64(r.After-r.Off)))
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
// Symbols: locals first, then exported definitions, then undefined
|
||||
// externals — the order the classic link editor expects.
|
||||
type machoSym struct {
|
||||
name string
|
||||
typ byte
|
||||
sect byte
|
||||
value uint64
|
||||
}
|
||||
var locals, globals, undefs []machoSym
|
||||
for _, fn := range img.Funcs {
|
||||
s := machoSym{name: objectName(fn.Pkg, fn.Name), typ: nSect, sect: sectText, value: textAddr + uint64(fn.Offset)}
|
||||
if fn.Static {
|
||||
locals = append(locals, s)
|
||||
} else {
|
||||
s.typ |= nExt
|
||||
globals = append(globals, s)
|
||||
}
|
||||
}
|
||||
for _, d := range img.DataSyms {
|
||||
s := machoSym{name: objectName(d.Pkg, d.Name), typ: nSect, sect: sectData, value: dataAddr + uint64(d.Offset)}
|
||||
if d.Static {
|
||||
locals = append(locals, s)
|
||||
} else {
|
||||
s.typ |= nExt
|
||||
globals = append(globals, s)
|
||||
}
|
||||
}
|
||||
for _, name := range img.Externals {
|
||||
undefs = append(undefs, machoSym{name: name, typ: nUndf | nExt})
|
||||
}
|
||||
syms := append(append(locals, globals...), undefs...)
|
||||
symIdx := map[string]int{}
|
||||
for i, s := range syms {
|
||||
symIdx[s.name] = i
|
||||
}
|
||||
|
||||
// Relocations, attached to the __text section.
|
||||
type machoReloc struct {
|
||||
addr uint32
|
||||
symnum uint32
|
||||
extern bool
|
||||
}
|
||||
var relocs []machoReloc
|
||||
for _, fn := range img.Funcs {
|
||||
for _, r := range fn.Relocs {
|
||||
rel := machoReloc{addr: uint32(fn.Offset + r.Off)}
|
||||
if r.External {
|
||||
idx, ok := symIdx[r.Name]
|
||||
if !ok {
|
||||
return nil, fmt.Errorf("relocation references unknown symbol %q", r.Name)
|
||||
}
|
||||
rel.symnum = uint32(idx)
|
||||
rel.extern = true
|
||||
} else {
|
||||
// Section-relative: r_symbolnum carries the section number
|
||||
// and the resolved displacement stays in the bytes.
|
||||
rel.symnum = sectData
|
||||
}
|
||||
relocs = append(relocs, rel)
|
||||
}
|
||||
}
|
||||
|
||||
// The string table opens with the conventional " \0".
|
||||
strtab := []byte{' ', 0}
|
||||
strOff := map[string]int{}
|
||||
for _, s := range syms {
|
||||
if _, ok := strOff[s.name]; ok {
|
||||
continue
|
||||
}
|
||||
strOff[s.name] = len(strtab)
|
||||
strtab = append(strtab, s.name...)
|
||||
strtab = append(strtab, 0)
|
||||
}
|
||||
|
||||
// File layout: header, the two load commands, section data (code,
|
||||
// data), the relocation table, the symbol table, the string table.
|
||||
const (
|
||||
hdrSize = 32
|
||||
segCmdSize = 72 + 2*80 // segment command with two sections
|
||||
symCmdSize = 24
|
||||
)
|
||||
sizeofcmds := segCmdSize + symCmdSize
|
||||
dataOff := hdrSize + sizeofcmds
|
||||
reloff := dataOff + len(code) + len(img.Data)
|
||||
symoff := reloff + 8*len(relocs)
|
||||
stroff := symoff + 16*len(syms)
|
||||
|
||||
out := make([]byte, stroff+len(strtab))
|
||||
|
||||
// mach_header_64.
|
||||
le.PutUint32(out[0:], machoMagic64)
|
||||
le.PutUint32(out[4:], machoCPUamd64)
|
||||
le.PutUint32(out[8:], machoCPUSubAll)
|
||||
le.PutUint32(out[12:], machoObj)
|
||||
le.PutUint32(out[16:], 2) // ncmds
|
||||
le.PutUint32(out[20:], uint32(sizeofcmds))
|
||||
le.PutUint32(out[24:], 0) // flags
|
||||
le.PutUint32(out[28:], 0) // reserved
|
||||
|
||||
// LC_SEGMENT_64 with the two sections.
|
||||
p := hdrSize
|
||||
le.PutUint32(out[p:], machoSegment64)
|
||||
le.PutUint32(out[p+4:], segCmdSize)
|
||||
// segname: the empty string, zero-padded to 16 bytes.
|
||||
le.PutUint64(out[p+8:], 0)
|
||||
le.PutUint64(out[p+16:], 0)
|
||||
le.PutUint64(out[p+24:], 0) // vmaddr
|
||||
le.PutUint64(out[p+32:], vmsize)
|
||||
le.PutUint64(out[p+40:], uint64(dataOff))
|
||||
le.PutUint64(out[p+48:], vmsize)
|
||||
le.PutUint32(out[p+56:], 7) // maxprot rwx
|
||||
le.PutUint32(out[p+60:], 7) // initprot rwx
|
||||
le.PutUint32(out[p+64:], 2) // nsects
|
||||
le.PutUint32(out[p+68:], 0) // flags
|
||||
|
||||
// __TEXT,__text
|
||||
s := p + 72
|
||||
copy(out[s:], "__text")
|
||||
copy(out[s+16:], "__TEXT")
|
||||
le.PutUint64(out[s+32:], textAddr)
|
||||
le.PutUint64(out[s+40:], uint64(len(code)))
|
||||
le.PutUint32(out[s+48:], uint32(dataOff))
|
||||
le.PutUint32(out[s+52:], 4) // align 2^4
|
||||
le.PutUint32(out[s+56:], uint32(reloff))
|
||||
le.PutUint32(out[s+60:], uint32(len(relocs)))
|
||||
le.PutUint32(out[s+64:], machoSectTextFlags)
|
||||
|
||||
// __DATA,__data
|
||||
s += 80
|
||||
copy(out[s:], "__data")
|
||||
copy(out[s+16:], "__DATA")
|
||||
le.PutUint64(out[s+32:], dataAddr)
|
||||
le.PutUint64(out[s+40:], uint64(len(img.Data)))
|
||||
le.PutUint32(out[s+48:], uint32(dataOff+len(code)))
|
||||
le.PutUint32(out[s+52:], 4) // align 2^4
|
||||
|
||||
// LC_SYMTAB.
|
||||
p = hdrSize + segCmdSize
|
||||
le.PutUint32(out[p:], machoSymtab)
|
||||
le.PutUint32(out[p+4:], symCmdSize)
|
||||
le.PutUint32(out[p+8:], uint32(symoff))
|
||||
le.PutUint32(out[p+12:], uint32(len(syms)))
|
||||
le.PutUint32(out[p+16:], uint32(stroff))
|
||||
le.PutUint32(out[p+20:], uint32(len(strtab)))
|
||||
|
||||
// Section data.
|
||||
copy(out[dataOff:], code)
|
||||
copy(out[dataOff+len(code):], img.Data)
|
||||
|
||||
// Relocation entries.
|
||||
for i, r := range relocs {
|
||||
e := out[reloff+i*8:]
|
||||
le.PutUint32(e[0:], r.addr)
|
||||
bits := r.symnum & 0x00ffffff
|
||||
bits |= 1 << 24 // r_pcrel
|
||||
bits |= 2 << 25 // r_length = 4 bytes
|
||||
if r.extern {
|
||||
bits |= 1 << 27 // r_extern
|
||||
}
|
||||
bits |= x8664RelocSigned << 28
|
||||
le.PutUint32(e[4:], bits)
|
||||
}
|
||||
|
||||
// nlist_64 entries.
|
||||
for i, s := range syms {
|
||||
e := out[symoff+i*16:]
|
||||
le.PutUint32(e[0:], uint32(strOff[s.name]))
|
||||
e[4] = s.typ
|
||||
e[5] = s.sect
|
||||
le.PutUint16(e[6:], 0) // n_desc
|
||||
le.PutUint64(e[8:], s.value)
|
||||
}
|
||||
|
||||
// String table.
|
||||
copy(out[stroff:], strtab)
|
||||
|
||||
return out, nil
|
||||
}
|
||||
@@ -0,0 +1,127 @@
|
||||
// Copyright (c) 2026 Petr Balvín <opensource@petrbalvin.org> (https://petrbalvin.org)
|
||||
// SPDX-License-Identifier: BSD-3-Clause
|
||||
|
||||
package asm
|
||||
|
||||
import (
|
||||
"bytes"
|
||||
"debug/macho"
|
||||
"encoding/binary"
|
||||
"testing"
|
||||
)
|
||||
|
||||
// TestMachOObject checks the structure of the emitted MH_OBJECT: the two
|
||||
// sections and their addresses, the symbol table (types, sections, values)
|
||||
// and the __text relocation entries, parsed back with debug/macho. No
|
||||
// Darwin toolchain is available on the test hosts, so the check is
|
||||
// structural — the ELF output carries the end-to-end link-and-run proof of
|
||||
// the shared symbol and relocation model.
|
||||
func TestMachOObject(t *testing.T) {
|
||||
img := elfTestImage(t)
|
||||
obj, err := img.MachOObject()
|
||||
if err != nil {
|
||||
t.Fatalf("MachOObject: %v", err)
|
||||
}
|
||||
f, err := macho.NewFile(bytes.NewReader(obj))
|
||||
if err != nil {
|
||||
t.Fatalf("parse emitted object: %v", err)
|
||||
}
|
||||
defer f.Close()
|
||||
|
||||
if f.Type != macho.TypeObj {
|
||||
t.Errorf("file type = %v, want MH_OBJECT", f.Type)
|
||||
}
|
||||
if f.Cpu != macho.CpuAmd64 {
|
||||
t.Errorf("cpu = %v, want CpuAmd64", f.Cpu)
|
||||
}
|
||||
|
||||
text := f.Section("__text")
|
||||
data := f.Section("__data")
|
||||
if text == nil || data == nil {
|
||||
t.Fatal("missing __text or __data section")
|
||||
}
|
||||
if text.Addr != 0 || text.Size != uint64(len(img.Code)) {
|
||||
t.Errorf("__text addr/size = %#x/%d, want 0/%d", text.Addr, text.Size, len(img.Code))
|
||||
}
|
||||
if data.Addr != uint64(len(img.Code)) {
|
||||
t.Errorf("__data addr = %#x, want %#x", data.Addr, len(img.Code))
|
||||
}
|
||||
|
||||
// Symbol table: locals, exported definitions, undefined externals.
|
||||
syms := f.Symtab.Syms
|
||||
byName := map[string]macho.Symbol{}
|
||||
for _, s := range syms {
|
||||
byName[s.Name] = s
|
||||
}
|
||||
wantSym := func(name string, typ, sect uint8, value uint64) {
|
||||
t.Helper()
|
||||
s, ok := byName[name]
|
||||
if !ok {
|
||||
t.Errorf("symbol %q not found", name)
|
||||
return
|
||||
}
|
||||
if s.Type != typ || s.Sect != sect || s.Value != value {
|
||||
t.Errorf("%s: type/sect/value = %#x/%d/%#x, want %#x/%d/%#x",
|
||||
name, s.Type, s.Sect, s.Value, typ, sect, value)
|
||||
}
|
||||
}
|
||||
const (
|
||||
defined = nSect | nExt
|
||||
local = nSect
|
||||
undefined = nUndf | nExt
|
||||
)
|
||||
wantSym("addq", defined, 1, 0)
|
||||
wantSym("getanswer", defined, 1, 5)
|
||||
wantSym("useextern", defined, 1, 13)
|
||||
answer := byName["answer"]
|
||||
if answer.Type != local || answer.Sect != 2 {
|
||||
t.Errorf("answer: type/sect = %#x/%d, want %#x/2", answer.Type, answer.Sect, local)
|
||||
}
|
||||
wantSym("extvar", undefined, 0, 0)
|
||||
|
||||
// Relocations: both X86_64_RELOC_SIGNED, PC-relative, 4 bytes wide.
|
||||
// The local one carries its section number in Value, the external one
|
||||
// its symbol number.
|
||||
if len(text.Relocs) != 2 {
|
||||
t.Fatalf("__text relocs = %d, want 2", len(text.Relocs))
|
||||
}
|
||||
var sawLocal, sawExternal bool
|
||||
for _, r := range text.Relocs {
|
||||
if !r.Pcrel || r.Len != 2 || r.Type != x8664RelocSigned {
|
||||
t.Errorf("reloc at %#x: pcrel/len/type = %v/%d/%d", r.Addr, r.Pcrel, r.Len, r.Type)
|
||||
}
|
||||
switch {
|
||||
case r.Extern:
|
||||
if name := syms[r.Value].Name; name != "extvar" {
|
||||
t.Errorf("external reloc at %#x names %q, want extvar", r.Addr, name)
|
||||
}
|
||||
sawExternal = true
|
||||
default:
|
||||
if r.Value != 2 { // __data, the second section
|
||||
t.Errorf("local reloc at %#x: section %d, want 2 (__data)", r.Addr, r.Value)
|
||||
}
|
||||
sawLocal = true
|
||||
}
|
||||
}
|
||||
if !sawLocal || !sawExternal {
|
||||
t.Errorf("relocs seen: local=%v external=%v, want both", sawLocal, sawExternal)
|
||||
}
|
||||
|
||||
// The __text bytes are the image code, with the external displacement
|
||||
// primed to addend − 4 and the local one left resolved.
|
||||
textData, err := text.Data()
|
||||
if err != nil {
|
||||
t.Fatal(err)
|
||||
}
|
||||
want := append([]byte(nil), img.Code...)
|
||||
for _, fn := range img.Funcs {
|
||||
for _, r := range fn.Relocs {
|
||||
if r.Name == "extvar" {
|
||||
binary.LittleEndian.PutUint32(want[fn.Offset+r.Off:], 0xfffffffc) // −4
|
||||
}
|
||||
}
|
||||
}
|
||||
if !bytes.Equal(textData, want) {
|
||||
t.Errorf("__text bytes %x, want %x", textData, want)
|
||||
}
|
||||
}
|
||||
+84
@@ -43,6 +43,13 @@ const (
|
||||
// in ModRM.reg and the destination in r/m — the layout of the EVEX
|
||||
// narrowing stores (VPMOVDW, VPMOVQD).
|
||||
vexRMRev
|
||||
// vexRMSrcLen is the two-operand conversion form `OP src, dst` whose
|
||||
// vector length follows the source: the packed-double → dword
|
||||
// conversions (VCVTPD2DQ/VCVTTPD2DQ and their X/Y spellings) narrow into
|
||||
// an XMM destination, so the L bit rides with the wider source. The
|
||||
// mnemonic's spelling fixes the length (X = 128, Y = 256), which also
|
||||
// covers a memory source. ModRM.reg = dst, ModRM.rm = src, no vvvv.
|
||||
vexRMSrcLen
|
||||
// vexZero is the no-operand form (VZEROUPPER).
|
||||
vexZero
|
||||
)
|
||||
@@ -86,12 +93,29 @@ var vexTable = map[string]vexSpec{
|
||||
// VEX.128/256.66.0F.WIG — packed double-precision arithmetic / logic.
|
||||
"VADDPD": {1, 0x58, 0, 1, -1, vexNDS3},
|
||||
"VMULPD": {1, 0x59, 0, 1, -1, vexNDS3},
|
||||
"VSUBPD": {1, 0x5C, 0, 1, -1, vexNDS3},
|
||||
"VDIVPD": {1, 0x5E, 0, 1, -1, vexNDS3},
|
||||
"VMINPD": {1, 0x5D, 0, 1, -1, vexNDS3},
|
||||
"VMAXPD": {1, 0x5F, 0, 1, -1, vexNDS3},
|
||||
"VXORPD": {1, 0x57, 0, 1, -1, vexNDS3},
|
||||
"VUNPCKHPD": {1, 0x15, 0, 1, -1, vexNDS3},
|
||||
"VUNPCKLPD": {1, 0x14, 0, 1, -1, vexNDS3},
|
||||
// VEX.128.F2.0F.WIG — scalar double-precision arithmetic (the packed
|
||||
// opcodes with an F2 pp).
|
||||
"VADDSD": {1, 0x58, 0, 3, -1, vexNDS3},
|
||||
"VSUBSD": {1, 0x5C, 0, 3, -1, vexNDS3},
|
||||
"VMULSD": {1, 0x59, 0, 3, -1, vexNDS3},
|
||||
"VDIVSD": {1, 0x5E, 0, 3, -1, vexNDS3},
|
||||
"VMINSD": {1, 0x5D, 0, 3, -1, vexNDS3},
|
||||
"VMAXSD": {1, 0x5F, 0, 3, -1, vexNDS3},
|
||||
// VEX.128.F3.0F.WIG — scalar single-precision arithmetic (the packed
|
||||
// opcodes with an F3 pp).
|
||||
"VADDSS": {1, 0x58, 0, 2, -1, vexNDS3},
|
||||
"VSUBSS": {1, 0x5C, 0, 2, -1, vexNDS3},
|
||||
"VMULSS": {1, 0x59, 0, 2, -1, vexNDS3},
|
||||
"VDIVSS": {1, 0x5E, 0, 2, -1, vexNDS3},
|
||||
"VMINSS": {1, 0x5D, 0, 2, -1, vexNDS3},
|
||||
"VMAXSS": {1, 0x5F, 0, 2, -1, vexNDS3},
|
||||
// VEX.128/256.66.0F38.W1 — fused multiply-add (NDS form).
|
||||
"VFMADD231PD": {2, 0xB8, 1, 1, -1, vexNDS3},
|
||||
|
||||
@@ -105,6 +129,19 @@ var vexTable = map[string]vexSpec{
|
||||
// VEX.128/256.F3.0F.WIG — signed dword to packed double conversion
|
||||
// (reg=dst, rm=src, no vvvv; the length follows the destination).
|
||||
"VCVTDQ2PD": {1, 0xE6, 0, 2, -1, vexRM},
|
||||
// VEX.128/256.0F.WIG — signed dword to packed single conversion
|
||||
// (reg=dst, rm=src, no vvvv, no mandatory prefix).
|
||||
"VCVTDQ2PS": {1, 0x5B, 0, 0, -1, vexRM},
|
||||
// VEX.128/256.0F.WIG — packed single to packed double conversion
|
||||
// (reg=dst, rm=src; the destination is the wide operand and sets the
|
||||
// length). Intel's maps prescribe the F3 prefix here (VEX.pp = 10), but
|
||||
// the Go assembler emits the instruction with pp = 00, and gasm follows
|
||||
// the Go assembler's bytes — its machine code is the oracle, not the
|
||||
// manual.
|
||||
"VCVTPS2PD": {1, 0x5A, 0, 0, -1, vexRM},
|
||||
// VEX.128.F2.0F.WIG — duplicate the low double of each 128-bit lane
|
||||
// (reg=dst, rm=src, no vvvv; the length follows the destination).
|
||||
"VMOVDDUP": {1, 0x12, 0, 3, -1, vexRM},
|
||||
// VEX.128/256.66.0F.WIG — move mask to a GPR (reg=gpr dst, rm=vec src).
|
||||
"VPMOVMSKB": {1, 0xD7, 0, 1, -1, vexRM},
|
||||
"VMOVMSKPS": {1, 0x50, 0, 0, -1, vexRM}, // no 66 prefix (that would be VMOVMSKPD)
|
||||
@@ -138,6 +175,25 @@ var vexTable = map[string]vexSpec{
|
||||
|
||||
// VEX.128.0F.W0 — mask-register test (KTESTW k1, k2: reg = dst, rm = src).
|
||||
"KTESTW": {1, 0x99, 0, 0, -1, vexRM},
|
||||
|
||||
// VEX.F2.0F — packed double to packed dword conversions, truncating and
|
||||
// non-truncating. The destination is always XMM; the X/Y spellings fix
|
||||
// the source length (XMM/YMM), and VEX.L follows it — see vexSrcLen.
|
||||
"VCVTPD2DQX": {1, 0xE6, 0, 3, -1, vexRMSrcLen},
|
||||
"VCVTPD2DQY": {1, 0xE6, 0, 3, -1, vexRMSrcLen},
|
||||
"VCVTTPD2DQX": {1, 0xE6, 0, 1, -1, vexRMSrcLen},
|
||||
"VCVTTPD2DQY": {1, 0xE6, 0, 1, -1, vexRMSrcLen},
|
||||
}
|
||||
|
||||
// vexSrcLen maps a source-length conversion mnemonic (the X/Y spellings of
|
||||
// the packed-double → dword conversions) to its fixed vector length:
|
||||
// X = 128 (L = 0), Y = 256 (L = 1). The spelling fixes the length even for
|
||||
// a memory source, matching the Go assembler's ytab.
|
||||
var vexSrcLen = map[string]int{
|
||||
"VCVTPD2DQX": 0,
|
||||
"VCVTPD2DQY": 1,
|
||||
"VCVTTPD2DQX": 0,
|
||||
"VCVTTPD2DQY": 1,
|
||||
}
|
||||
|
||||
// vexVarShift maps the shift mnemonics to their variable-count opcode — the
|
||||
@@ -230,6 +286,8 @@ func (e *enc) encodeVex(mnemUpper string, ops []Operand) error {
|
||||
return e.encodeVexNDS3Imm(spec, ops)
|
||||
case vexExtract:
|
||||
return e.encodeVexExtract(spec, ops)
|
||||
case vexRMSrcLen:
|
||||
return e.encodeVexRMSrcLen(mnemUpper, spec, ops)
|
||||
case vexZero:
|
||||
return e.encodeVexZero(mnemUpper, spec, ops)
|
||||
}
|
||||
@@ -295,6 +353,32 @@ func (e *enc) encodeVexRM(spec vexSpec, ops []Operand) error {
|
||||
return e.emitVexFields(spec, l, regField, rBit, 15, src)
|
||||
}
|
||||
|
||||
// encodeVexRMSrcLen encodes a length-narrowing conversion: OP src, dst with
|
||||
// the destination always XMM and the VEX.L bit following the source — fixed
|
||||
// by the mnemonic's spelling (VCVTPD2DQX = 128, VCVTPD2DQY = 256) even when
|
||||
// the source is memory.
|
||||
func (e *enc) encodeVexRMSrcLen(mnem string, spec vexSpec, ops []Operand) error {
|
||||
if len(ops) != 2 {
|
||||
return fmt.Errorf("conversion expects 2 operands, got %d", len(ops))
|
||||
}
|
||||
src, dst := ops[0], ops[1]
|
||||
dstReg, ok := dst.(Reg)
|
||||
if !ok || !dstReg.isVec() {
|
||||
return fmt.Errorf("VEX destination must be a vector register")
|
||||
}
|
||||
ll, ok := vexSrcLen[mnem]
|
||||
if !ok {
|
||||
return fmt.Errorf("no fixed vector length for %s", mnem)
|
||||
}
|
||||
regField := dstReg.idx & 7
|
||||
rBit := 0
|
||||
if dstReg.idx >= 8 {
|
||||
rBit = 1
|
||||
}
|
||||
// An unused vvvv field must be stored as all ones (v̄vvv = 1111).
|
||||
return e.emitVexFields(spec, ll, regField, rBit, 15, src)
|
||||
}
|
||||
|
||||
// encodeVexShiftImm encodes an immediate-shift instruction: OP $imm, src, dst.
|
||||
// The destination is carried in VEX.vvvv, the source in ModRM.rm, and the
|
||||
// shift kind in the ModRM.reg /digit.
|
||||
|
||||
+107
-64
@@ -156,82 +156,121 @@ func TestVexShiftImm(t *testing.T) {
|
||||
// as well as every new operand form.
|
||||
func TestVexGroundTruth(t *testing.T) {
|
||||
cases := []struct {
|
||||
name string
|
||||
mnem string
|
||||
ops []Operand
|
||||
want string
|
||||
name string
|
||||
mnem string
|
||||
ops []Operand
|
||||
want string
|
||||
wantOp string // decoded mnemonic, when it differs from mnem (the X/Y spellings)
|
||||
}{
|
||||
// Three-operand NDS form.
|
||||
{"VPADDQ Y8,Y9,Y8", "VPADDQ", []Operand{vreg(t, "Y8"), vreg(t, "Y9"), vreg(t, "Y8")}, "c44135d4c0"},
|
||||
{"VPADDQ X9,X8,X8", "VPADDQ", []Operand{vreg(t, "X9"), vreg(t, "X8"), vreg(t, "X8")}, "c44139d4c1"},
|
||||
{"VPXOR X7,X7,X7", "VPXOR", []Operand{vreg(t, "X7"), vreg(t, "X7"), vreg(t, "X7")}, "c5c1efff"},
|
||||
{"VPSHUFB Y1,Y2,Y3", "VPSHUFB", []Operand{vreg(t, "Y1"), vreg(t, "Y2"), vreg(t, "Y3")}, "c4e26d00d9"},
|
||||
{"VPMULLD Y1,Y2,Y3", "VPMULLD", []Operand{vreg(t, "Y1"), vreg(t, "Y2"), vreg(t, "Y3")}, "c4e26d40d9"},
|
||||
{"VPUNPCKLDQ Y4,Y3,Y5", "VPUNPCKLDQ", []Operand{vreg(t, "Y4"), vreg(t, "Y3"), vreg(t, "Y5")}, "c5e562ec"},
|
||||
{"VPERMD Y1,Y2,Y3", "VPERMD", []Operand{vreg(t, "Y1"), vreg(t, "Y2"), vreg(t, "Y3")}, "c4e26d36d9"},
|
||||
{"VPADDQ Y8,Y9,Y8", "VPADDQ", []Operand{vreg(t, "Y8"), vreg(t, "Y9"), vreg(t, "Y8")}, "c44135d4c0", ""},
|
||||
{"VPADDQ X9,X8,X8", "VPADDQ", []Operand{vreg(t, "X9"), vreg(t, "X8"), vreg(t, "X8")}, "c44139d4c1", ""},
|
||||
{"VPXOR X7,X7,X7", "VPXOR", []Operand{vreg(t, "X7"), vreg(t, "X7"), vreg(t, "X7")}, "c5c1efff", ""},
|
||||
{"VPSHUFB Y1,Y2,Y3", "VPSHUFB", []Operand{vreg(t, "Y1"), vreg(t, "Y2"), vreg(t, "Y3")}, "c4e26d00d9", ""},
|
||||
{"VPMULLD Y1,Y2,Y3", "VPMULLD", []Operand{vreg(t, "Y1"), vreg(t, "Y2"), vreg(t, "Y3")}, "c4e26d40d9", ""},
|
||||
{"VPUNPCKLDQ Y4,Y3,Y5", "VPUNPCKLDQ", []Operand{vreg(t, "Y4"), vreg(t, "Y3"), vreg(t, "Y5")}, "c5e562ec", ""},
|
||||
{"VPERMD Y1,Y2,Y3", "VPERMD", []Operand{vreg(t, "Y1"), vreg(t, "Y2"), vreg(t, "Y3")}, "c4e26d36d9", ""},
|
||||
// Floating point (packed and scalar) and FMA — same NDS form, the pp
|
||||
// bits and map select the operation.
|
||||
{"VADDPD Y9,Y8,Y8", "VADDPD", []Operand{vreg(t, "Y9"), vreg(t, "Y8"), vreg(t, "Y8")}, "c4413d58c1"},
|
||||
{"VADDPD X1,X2,X3", "VADDPD", []Operand{vreg(t, "X1"), vreg(t, "X2"), vreg(t, "X3")}, "c5e958d9"},
|
||||
{"VMULPD Y12,Y12,Y12", "VMULPD", []Operand{vreg(t, "Y12"), vreg(t, "Y12"), vreg(t, "Y12")}, "c4411d59e4"},
|
||||
{"VXORPD Y8,Y8,Y8", "VXORPD", []Operand{vreg(t, "Y8"), vreg(t, "Y8"), vreg(t, "Y8")}, "c4413d57c0"},
|
||||
{"VUNPCKHPD X8,X8,X9", "VUNPCKHPD", []Operand{vreg(t, "X8"), vreg(t, "X8"), vreg(t, "X9")}, "c4413915c8"},
|
||||
{"VADDSD X9,X8,X8", "VADDSD", []Operand{vreg(t, "X9"), vreg(t, "X8"), vreg(t, "X8")}, "c4413b58c1"},
|
||||
{"VMULSD X0,X1,X1", "VMULSD", []Operand{vreg(t, "X0"), vreg(t, "X1"), vreg(t, "X1")}, "c5f359c8"},
|
||||
{"VFMADD231PD Y14,Y12,Y8", "VFMADD231PD", []Operand{vreg(t, "Y14"), vreg(t, "Y12"), vreg(t, "Y8")}, "c4429db8c6"},
|
||||
{"VFMADD231PD (DI),Y12,Y8", "VFMADD231PD", []Operand{Ptr(DI, 0, 32), vreg(t, "Y12"), vreg(t, "Y8")}, "c4629db807"},
|
||||
{"VADDPD Y9,Y8,Y8", "VADDPD", []Operand{vreg(t, "Y9"), vreg(t, "Y8"), vreg(t, "Y8")}, "c4413d58c1", ""},
|
||||
{"VADDPD X1,X2,X3", "VADDPD", []Operand{vreg(t, "X1"), vreg(t, "X2"), vreg(t, "X3")}, "c5e958d9", ""},
|
||||
{"VMULPD Y12,Y12,Y12", "VMULPD", []Operand{vreg(t, "Y12"), vreg(t, "Y12"), vreg(t, "Y12")}, "c4411d59e4", ""},
|
||||
{"VXORPD Y8,Y8,Y8", "VXORPD", []Operand{vreg(t, "Y8"), vreg(t, "Y8"), vreg(t, "Y8")}, "c4413d57c0", ""},
|
||||
{"VUNPCKHPD X8,X8,X9", "VUNPCKHPD", []Operand{vreg(t, "X8"), vreg(t, "X8"), vreg(t, "X9")}, "c4413915c8", ""},
|
||||
{"VADDSD X9,X8,X8", "VADDSD", []Operand{vreg(t, "X9"), vreg(t, "X8"), vreg(t, "X8")}, "c4413b58c1", ""},
|
||||
{"VMULSD X0,X1,X1", "VMULSD", []Operand{vreg(t, "X0"), vreg(t, "X1"), vreg(t, "X1")}, "c5f359c8", ""},
|
||||
{"VFMADD231PD Y14,Y12,Y8", "VFMADD231PD", []Operand{vreg(t, "Y14"), vreg(t, "Y12"), vreg(t, "Y8")}, "c4429db8c6", ""},
|
||||
{"VFMADD231PD (DI),Y12,Y8", "VFMADD231PD", []Operand{Ptr(DI, 0, 32), vreg(t, "Y12"), vreg(t, "Y8")}, "c4629db807", ""},
|
||||
// Two-operand reg/rm form (v̄vvv must be 1111).
|
||||
{"VPMOVSXDQ X0,Y4", "VPMOVSXDQ", []Operand{vreg(t, "X0"), vreg(t, "Y4")}, "c4e27d25e0"},
|
||||
{"VPMOVSXWD (SI),Y0", "VPMOVSXWD", []Operand{Ptr(SI, 0, 8), vreg(t, "Y0")}, "c4e27d2306"},
|
||||
{"VPBROADCASTD X0,Y15", "VPBROADCASTD", []Operand{vreg(t, "X0"), vreg(t, "Y15")}, "c4627d58f8"},
|
||||
{"VCVTDQ2PD X12,Y12", "VCVTDQ2PD", []Operand{vreg(t, "X12"), vreg(t, "Y12")}, "c4417ee6e4"},
|
||||
{"VCVTDQ2PD (SI),Y4", "VCVTDQ2PD", []Operand{Ptr(SI, 0, 16), vreg(t, "Y4")}, "c5fee626"},
|
||||
{"VPMOVMSKB X11,AX", "VPMOVMSKB", []Operand{vreg(t, "X11"), AX}, "c4c179d7c3"},
|
||||
{"VMOVMSKPS Y7,AX", "VMOVMSKPS", []Operand{vreg(t, "Y7"), AX}, "c5fc50c7"},
|
||||
{"VPMOVSXDQ X0,Y4", "VPMOVSXDQ", []Operand{vreg(t, "X0"), vreg(t, "Y4")}, "c4e27d25e0", ""},
|
||||
{"VPMOVSXWD (SI),Y0", "VPMOVSXWD", []Operand{Ptr(SI, 0, 8), vreg(t, "Y0")}, "c4e27d2306", ""},
|
||||
{"VPBROADCASTD X0,Y15", "VPBROADCASTD", []Operand{vreg(t, "X0"), vreg(t, "Y15")}, "c4627d58f8", ""},
|
||||
{"VCVTDQ2PD X12,Y12", "VCVTDQ2PD", []Operand{vreg(t, "X12"), vreg(t, "Y12")}, "c4417ee6e4", ""},
|
||||
{"VCVTDQ2PD (SI),Y4", "VCVTDQ2PD", []Operand{Ptr(SI, 0, 16), vreg(t, "Y4")}, "c5fee626", ""},
|
||||
{"VPMOVMSKB X11,AX", "VPMOVMSKB", []Operand{vreg(t, "X11"), AX}, "c4c179d7c3", ""},
|
||||
{"VMOVMSKPS Y7,AX", "VMOVMSKPS", []Operand{vreg(t, "Y7"), AX}, "c5fc50c7", ""},
|
||||
// Immediate shifts.
|
||||
{"VPSLLD $1,Y3,Y4", "VPSLLD", []Operand{Imm(1), vreg(t, "Y3"), vreg(t, "Y4")}, "c5dd72f301"},
|
||||
{"VPSRLQ $2,Y5,Y6", "VPSRLQ", []Operand{Imm(2), vreg(t, "Y5"), vreg(t, "Y6")}, "c5cd73d502"},
|
||||
{"VPSLLD $1,Y3,Y4", "VPSLLD", []Operand{Imm(1), vreg(t, "Y3"), vreg(t, "Y4")}, "c5dd72f301", ""},
|
||||
{"VPSRLQ $2,Y5,Y6", "VPSRLQ", []Operand{Imm(2), vreg(t, "Y5"), vreg(t, "Y6")}, "c5cd73d502", ""},
|
||||
// Variable-count shifts: the count lives in an XMM register or memory
|
||||
// and the instruction takes the NDS form.
|
||||
{"VPSRLQ X0,Y8,Y8", "VPSRLQ", []Operand{vreg(t, "X0"), vreg(t, "Y8"), vreg(t, "Y8")}, "c53dd3c0"},
|
||||
{"VPSRLQ (AX),Y8,Y8", "VPSRLQ", []Operand{Ptr(AX, 0, 16), vreg(t, "Y8"), vreg(t, "Y8")}, "c53dd300"},
|
||||
{"VPSLLD X0,Y1,Y2", "VPSLLD", []Operand{vreg(t, "X0"), vreg(t, "Y1"), vreg(t, "Y2")}, "c5f5f2d0"},
|
||||
{"VPSRLD X0,Y1,Y2", "VPSRLD", []Operand{vreg(t, "X0"), vreg(t, "Y1"), vreg(t, "Y2")}, "c5f5d2d0"},
|
||||
{"VPSRAD X0,Y1,Y2", "VPSRAD", []Operand{vreg(t, "X0"), vreg(t, "Y1"), vreg(t, "Y2")}, "c5f5e2d0"},
|
||||
{"VPSLLQ X0,Y1,Y2", "VPSLLQ", []Operand{vreg(t, "X0"), vreg(t, "Y1"), vreg(t, "Y2")}, "c5f5f3d0"},
|
||||
{"VPSRLQ X0,Y8,Y8", "VPSRLQ", []Operand{vreg(t, "X0"), vreg(t, "Y8"), vreg(t, "Y8")}, "c53dd3c0", ""},
|
||||
{"VPSRLQ (AX),Y8,Y8", "VPSRLQ", []Operand{Ptr(AX, 0, 16), vreg(t, "Y8"), vreg(t, "Y8")}, "c53dd300", ""},
|
||||
{"VPSLLD X0,Y1,Y2", "VPSLLD", []Operand{vreg(t, "X0"), vreg(t, "Y1"), vreg(t, "Y2")}, "c5f5f2d0", ""},
|
||||
{"VPSRLD X0,Y1,Y2", "VPSRLD", []Operand{vreg(t, "X0"), vreg(t, "Y1"), vreg(t, "Y2")}, "c5f5d2d0", ""},
|
||||
{"VPSRAD X0,Y1,Y2", "VPSRAD", []Operand{vreg(t, "X0"), vreg(t, "Y1"), vreg(t, "Y2")}, "c5f5e2d0", ""},
|
||||
{"VPSLLQ X0,Y1,Y2", "VPSLLQ", []Operand{vreg(t, "X0"), vreg(t, "Y1"), vreg(t, "Y2")}, "c5f5f3d0", ""},
|
||||
// Immediate shuffle (reg=dst, rm=src, imm8).
|
||||
{"VPSHUFD $0xEE,X8,X9", "VPSHUFD", []Operand{Imm(0xEE), vreg(t, "X8"), vreg(t, "X9")}, "c4417970c8ee"},
|
||||
{"VPSHUFD $0xEE,Y1,Y2", "VPSHUFD", []Operand{Imm(0xEE), vreg(t, "Y1"), vreg(t, "Y2")}, "c5fd70d1ee"},
|
||||
{"VPERMQ $0x1B,Y1,Y2", "VPERMQ", []Operand{Imm(0x1B), vreg(t, "Y1"), vreg(t, "Y2")}, "c4e3fd00d11b"},
|
||||
{"VPERMQ $0x1B,Y11,Y12", "VPERMQ", []Operand{Imm(0x1B), vreg(t, "Y11"), vreg(t, "Y12")}, "c443fd00e31b"},
|
||||
{"VPSHUFD $0xEE,X8,X9", "VPSHUFD", []Operand{Imm(0xEE), vreg(t, "X8"), vreg(t, "X9")}, "c4417970c8ee", ""},
|
||||
{"VPSHUFD $0xEE,Y1,Y2", "VPSHUFD", []Operand{Imm(0xEE), vreg(t, "Y1"), vreg(t, "Y2")}, "c5fd70d1ee", ""},
|
||||
{"VPERMQ $0x1B,Y1,Y2", "VPERMQ", []Operand{Imm(0x1B), vreg(t, "Y1"), vreg(t, "Y2")}, "c4e3fd00d11b", ""},
|
||||
{"VPERMQ $0x1B,Y11,Y12", "VPERMQ", []Operand{Imm(0x1B), vreg(t, "Y11"), vreg(t, "Y12")}, "c443fd00e31b", ""},
|
||||
// Three-operand + immediate (reg=dst, vvvv=src1, rm=src2, imm8).
|
||||
{"VSHUFPD $1,X1,X2,X3", "VSHUFPD", []Operand{Imm(1), vreg(t, "X1"), vreg(t, "X2"), vreg(t, "X3")}, "c5e9c6d901"},
|
||||
{"VSHUFPD $1,Y1,Y2,Y3", "VSHUFPD", []Operand{Imm(1), vreg(t, "Y1"), vreg(t, "Y2"), vreg(t, "Y3")}, "c5edc6d901"},
|
||||
{"VPERM2I128 $0x31,Y1,Y2,Y3", "VPERM2I128", []Operand{Imm(0x31), vreg(t, "Y1"), vreg(t, "Y2"), vreg(t, "Y3")}, "c4e36d46d931"},
|
||||
{"VINSERTI128 $1,X5,Y1,Y2", "VINSERTI128", []Operand{Imm(1), vreg(t, "X5"), vreg(t, "Y1"), vreg(t, "Y2")}, "c4e37538d501"},
|
||||
{"VSHUFPD $1,X1,X2,X3", "VSHUFPD", []Operand{Imm(1), vreg(t, "X1"), vreg(t, "X2"), vreg(t, "X3")}, "c5e9c6d901", ""},
|
||||
{"VSHUFPD $1,Y1,Y2,Y3", "VSHUFPD", []Operand{Imm(1), vreg(t, "Y1"), vreg(t, "Y2"), vreg(t, "Y3")}, "c5edc6d901", ""},
|
||||
{"VPERM2I128 $0x31,Y1,Y2,Y3", "VPERM2I128", []Operand{Imm(0x31), vreg(t, "Y1"), vreg(t, "Y2"), vreg(t, "Y3")}, "c4e36d46d931", ""},
|
||||
{"VINSERTI128 $1,X5,Y1,Y2", "VINSERTI128", []Operand{Imm(1), vreg(t, "X5"), vreg(t, "Y1"), vreg(t, "Y2")}, "c4e37538d501", ""},
|
||||
// Lane extract (reg=YMM source, rm=XMM/memory destination, imm8).
|
||||
{"VEXTRACTI128 $1,Y8,X9", "VEXTRACTI128", []Operand{Imm(1), vreg(t, "Y8"), vreg(t, "X9")}, "c4437d39c101"},
|
||||
{"VEXTRACTI128 $1,Y8,(DI)", "VEXTRACTI128", []Operand{Imm(1), vreg(t, "Y8"), Ptr(DI, 0, 16)}, "c4637d390701"},
|
||||
{"VEXTRACTF128 $1,Y8,X9", "VEXTRACTF128", []Operand{Imm(1), vreg(t, "Y8"), vreg(t, "X9")}, "c4437d19c101"},
|
||||
{"VEXTRACTI128 $1,Y8,X9", "VEXTRACTI128", []Operand{Imm(1), vreg(t, "Y8"), vreg(t, "X9")}, "c4437d39c101", ""},
|
||||
{"VEXTRACTI128 $1,Y8,(DI)", "VEXTRACTI128", []Operand{Imm(1), vreg(t, "Y8"), Ptr(DI, 0, 16)}, "c4637d390701", ""},
|
||||
{"VEXTRACTF128 $1,Y8,X9", "VEXTRACTF128", []Operand{Imm(1), vreg(t, "Y8"), vreg(t, "X9")}, "c4437d19c101", ""},
|
||||
// Moves — each direction picks its own opcode and VEX.W.
|
||||
{"VMOVDQU (SI),Y1", "VMOVDQU", []Operand{Ptr(SI, 0, 32), vreg(t, "Y1")}, "c5fe6f0e"},
|
||||
{"VMOVDQU Y3,(DI)", "VMOVDQU", []Operand{vreg(t, "Y3"), Ptr(DI, 0, 32)}, "c5fe7f1f"},
|
||||
{"VMOVDQU X1,X2", "VMOVDQU", []Operand{vreg(t, "X1"), vreg(t, "X2")}, "c5fa7fca"},
|
||||
{"VMOVUPD (DI),Y14", "VMOVUPD", []Operand{Ptr(DI, 0, 32), vreg(t, "Y14")}, "c57d1037"},
|
||||
{"VMOVUPD Y14,(DI)", "VMOVUPD", []Operand{vreg(t, "Y14"), Ptr(DI, 0, 32)}, "c57d1137"},
|
||||
{"VMOVUPD X1,X2", "VMOVUPD", []Operand{vreg(t, "X1"), vreg(t, "X2")}, "c5f911ca"},
|
||||
{"VMOVQ X8,AX", "VMOVQ", []Operand{vreg(t, "X8"), AX}, "c461f97ec0"},
|
||||
{"VMOVQ AX,X9", "VMOVQ", []Operand{AX, vreg(t, "X9")}, "c461f96ec8"},
|
||||
{"VMOVQ X8,(DI)", "VMOVQ", []Operand{vreg(t, "X8"), Ptr(DI, 0, 8)}, "c461f97e07"},
|
||||
{"VMOVQ (SI),X9", "VMOVQ", []Operand{Ptr(SI, 0, 8), vreg(t, "X9")}, "c461f96e0e"},
|
||||
{"VMOVQ X8,X2", "VMOVQ", []Operand{vreg(t, "X8"), vreg(t, "X2")}, "c579d6c2"},
|
||||
{"VMOVQ X2,X8", "VMOVQ", []Operand{vreg(t, "X2"), vreg(t, "X8")}, "c4c179d6d0"},
|
||||
{"VMOVD X0,(SI)", "VMOVD", []Operand{vreg(t, "X0"), Ptr(SI, 0, 4)}, "c5f97e06"},
|
||||
{"VMOVD AX,X0", "VMOVD", []Operand{AX, vreg(t, "X0")}, "c5f96ec0"},
|
||||
{"VMOVSD (SI),X8", "VMOVSD", []Operand{Ptr(SI, 0, 8), vreg(t, "X8")}, "c57b1006"},
|
||||
{"VMOVSD X8,(SI)", "VMOVSD", []Operand{vreg(t, "X8"), Ptr(SI, 0, 8)}, "c57b1106"},
|
||||
{"VMOVDQU (SI),Y1", "VMOVDQU", []Operand{Ptr(SI, 0, 32), vreg(t, "Y1")}, "c5fe6f0e", ""},
|
||||
{"VMOVDQU Y3,(DI)", "VMOVDQU", []Operand{vreg(t, "Y3"), Ptr(DI, 0, 32)}, "c5fe7f1f", ""},
|
||||
{"VMOVDQU X1,X2", "VMOVDQU", []Operand{vreg(t, "X1"), vreg(t, "X2")}, "c5fa7fca", ""},
|
||||
{"VMOVUPD (DI),Y14", "VMOVUPD", []Operand{Ptr(DI, 0, 32), vreg(t, "Y14")}, "c57d1037", ""},
|
||||
{"VMOVUPD Y14,(DI)", "VMOVUPD", []Operand{vreg(t, "Y14"), Ptr(DI, 0, 32)}, "c57d1137", ""},
|
||||
{"VMOVUPD X1,X2", "VMOVUPD", []Operand{vreg(t, "X1"), vreg(t, "X2")}, "c5f911ca", ""},
|
||||
{"VMOVQ X8,AX", "VMOVQ", []Operand{vreg(t, "X8"), AX}, "c461f97ec0", ""},
|
||||
{"VMOVQ AX,X9", "VMOVQ", []Operand{AX, vreg(t, "X9")}, "c461f96ec8", ""},
|
||||
{"VMOVQ X8,(DI)", "VMOVQ", []Operand{vreg(t, "X8"), Ptr(DI, 0, 8)}, "c461f97e07", ""},
|
||||
{"VMOVQ (SI),X9", "VMOVQ", []Operand{Ptr(SI, 0, 8), vreg(t, "X9")}, "c461f96e0e", ""},
|
||||
{"VMOVQ X8,X2", "VMOVQ", []Operand{vreg(t, "X8"), vreg(t, "X2")}, "c579d6c2", ""},
|
||||
{"VMOVQ X2,X8", "VMOVQ", []Operand{vreg(t, "X2"), vreg(t, "X8")}, "c4c179d6d0", ""},
|
||||
{"VMOVD X0,(SI)", "VMOVD", []Operand{vreg(t, "X0"), Ptr(SI, 0, 4)}, "c5f97e06", ""},
|
||||
{"VMOVD AX,X0", "VMOVD", []Operand{AX, vreg(t, "X0")}, "c5f96ec0", ""},
|
||||
{"VMOVSD (SI),X8", "VMOVSD", []Operand{Ptr(SI, 0, 8), vreg(t, "X8")}, "c57b1006", ""},
|
||||
{"VMOVSD X8,(SI)", "VMOVSD", []Operand{vreg(t, "X8"), Ptr(SI, 0, 8)}, "c57b1106", ""},
|
||||
// Packed double arithmetic and unpack — the NDS form, the opcode
|
||||
// selects the operation.
|
||||
{"VSUBPD Y1,Y2,Y3", "VSUBPD", []Operand{vreg(t, "Y1"), vreg(t, "Y2"), vreg(t, "Y3")}, "c5ed5cd9", ""},
|
||||
{"VDIVPD X1,X2,X3", "VDIVPD", []Operand{vreg(t, "X1"), vreg(t, "X2"), vreg(t, "X3")}, "c5e95ed9", ""},
|
||||
{"VMINPD Y1,Y2,Y3", "VMINPD", []Operand{vreg(t, "Y1"), vreg(t, "Y2"), vreg(t, "Y3")}, "c5ed5dd9", ""},
|
||||
{"VMAXPD X4,X5,X6", "VMAXPD", []Operand{vreg(t, "X4"), vreg(t, "X5"), vreg(t, "X6")}, "c5d15ff4", ""},
|
||||
{"VUNPCKLPD X1,X2,X3", "VUNPCKLPD", []Operand{vreg(t, "X1"), vreg(t, "X2"), vreg(t, "X3")}, "c5e914d9", ""},
|
||||
{"VUNPCKLPD Y1,Y2,Y3", "VUNPCKLPD", []Operand{vreg(t, "Y1"), vreg(t, "Y2"), vreg(t, "Y3")}, "c5ed14d9", ""},
|
||||
{"VSUBPD (AX),X1,X2", "VSUBPD", []Operand{Ptr(AX, 0, 16), vreg(t, "X1"), vreg(t, "X2")}, "c5f15c10", ""},
|
||||
// Scalar double and single arithmetic (F2 / F3 pp, 128-bit only).
|
||||
{"VSUBSD X1,X2,X3", "VSUBSD", []Operand{vreg(t, "X1"), vreg(t, "X2"), vreg(t, "X3")}, "c5eb5cd9", ""},
|
||||
{"VDIVSD X7,X1,X2", "VDIVSD", []Operand{vreg(t, "X7"), vreg(t, "X1"), vreg(t, "X2")}, "c5f35ed7", ""},
|
||||
{"VMINSD X1,X2,X3", "VMINSD", []Operand{vreg(t, "X1"), vreg(t, "X2"), vreg(t, "X3")}, "c5eb5dd9", ""},
|
||||
{"VMAXSD X3,X4,X5", "VMAXSD", []Operand{vreg(t, "X3"), vreg(t, "X4"), vreg(t, "X5")}, "c5db5feb", ""},
|
||||
{"VADDSS X1,X2,X3", "VADDSS", []Operand{vreg(t, "X1"), vreg(t, "X2"), vreg(t, "X3")}, "c5ea58d9", ""},
|
||||
{"VSUBSS X1,X2,X3", "VSUBSS", []Operand{vreg(t, "X1"), vreg(t, "X2"), vreg(t, "X3")}, "c5ea5cd9", ""},
|
||||
{"VMULSS X9,X10,X11", "VMULSS", []Operand{vreg(t, "X9"), vreg(t, "X10"), vreg(t, "X11")}, "c4412a59d9", ""},
|
||||
{"VDIVSS X1,X2,X3", "VDIVSS", []Operand{vreg(t, "X1"), vreg(t, "X2"), vreg(t, "X3")}, "c5ea5ed9", ""},
|
||||
{"VMINSS X6,X7,X8", "VMINSS", []Operand{vreg(t, "X6"), vreg(t, "X7"), vreg(t, "X8")}, "c5425dc6", ""},
|
||||
{"VMAXSS X1,X2,X3", "VMAXSS", []Operand{vreg(t, "X1"), vreg(t, "X2"), vreg(t, "X3")}, "c5ea5fd9", ""},
|
||||
{"VADDSD 8(AX),X1,X2", "VADDSD", []Operand{Ptr(AX, 8, 8), vreg(t, "X1"), vreg(t, "X2")}, "c5f3585008", ""},
|
||||
// VMOVDDUP — duplicate the low double (reg=dst, rm=src, F2 pp).
|
||||
{"VMOVDDUP X1,X2", "VMOVDDUP", []Operand{vreg(t, "X1"), vreg(t, "X2")}, "c5fb12d1", ""},
|
||||
{"VMOVDDUP Y1,Y2", "VMOVDDUP", []Operand{vreg(t, "Y1"), vreg(t, "Y2")}, "c5ff12d1", ""},
|
||||
{"VMOVDDUP 8(AX),X1", "VMOVDDUP", []Operand{Ptr(AX, 8, 8), vreg(t, "X1")}, "c5fb124808", ""},
|
||||
// Conversions: DQ→PS (no prefix), PS→PD (Go emits it without the F3
|
||||
// prefix — see the table comment), DQ→PD.
|
||||
{"VCVTDQ2PS X1,X2", "VCVTDQ2PS", []Operand{vreg(t, "X1"), vreg(t, "X2")}, "c5f85bd1", ""},
|
||||
{"VCVTDQ2PS Y3,Y4", "VCVTDQ2PS", []Operand{vreg(t, "Y3"), vreg(t, "Y4")}, "c5fc5be3", ""},
|
||||
{"VCVTPS2PD X1,X2", "VCVTPS2PD", []Operand{vreg(t, "X1"), vreg(t, "X2")}, "c5f85ad1", ""},
|
||||
{"VCVTPS2PD X1,Y2", "VCVTPS2PD", []Operand{vreg(t, "X1"), vreg(t, "Y2")}, "c5fc5ad1", ""},
|
||||
// PD→DQ conversions: the X/Y spellings fix the source length and the
|
||||
// destination is always XMM; the decoder reports the base mnemonic.
|
||||
{"VCVTPD2DQX X1,X2", "VCVTPD2DQX", []Operand{vreg(t, "X1"), vreg(t, "X2")}, "c5fbe6d1", "VCVTPD2DQ"},
|
||||
{"VCVTPD2DQY Y1,X2", "VCVTPD2DQY", []Operand{vreg(t, "Y1"), vreg(t, "X2")}, "c5ffe6d1", "VCVTPD2DQ"},
|
||||
{"VCVTTPD2DQX X3,X4", "VCVTTPD2DQX", []Operand{vreg(t, "X3"), vreg(t, "X4")}, "c5f9e6e3", "VCVTTPD2DQ"},
|
||||
{"VCVTTPD2DQY Y5,X6", "VCVTTPD2DQY", []Operand{vreg(t, "Y5"), vreg(t, "X6")}, "c5fde6f5", "VCVTTPD2DQ"},
|
||||
{"VCVTPD2DQY (AX),X1", "VCVTPD2DQY", []Operand{Ptr(AX, 0, 32), vreg(t, "X1")}, "c5ffe608", "VCVTPD2DQ"},
|
||||
// No-operand.
|
||||
{"VZEROUPPER", "VZEROUPPER", nil, "c5f877"},
|
||||
{"VZEROUPPER", "VZEROUPPER", nil, "c5f877", ""},
|
||||
}
|
||||
for _, c := range cases {
|
||||
code, err := Encode(c.mnem, c.ops...)
|
||||
@@ -251,7 +290,11 @@ func TestVexGroundTruth(t *testing.T) {
|
||||
if inst.Len != len(code) {
|
||||
t.Errorf("%s: Decode consumed %d of %d bytes", c.name, inst.Len, len(code))
|
||||
}
|
||||
if inst.Op.String() != c.mnem {
|
||||
wantOp := c.wantOp
|
||||
if wantOp == "" {
|
||||
wantOp = c.mnem
|
||||
}
|
||||
if inst.Op.String() != wantOp {
|
||||
t.Errorf("%s: decoded as %s", c.name, inst.Op.String())
|
||||
}
|
||||
}
|
||||
|
||||
+40
-9
@@ -28,7 +28,7 @@ import (
|
||||
|
||||
// version is the release version, stamped at build time via
|
||||
// -ldflags "-X main.version=…" (defaulting to the current release).
|
||||
var version = "0.9.0"
|
||||
var version = "0.11.0"
|
||||
|
||||
func main() {
|
||||
if len(os.Args) < 2 {
|
||||
@@ -93,6 +93,7 @@ Examples:
|
||||
gasm fmt reformat every .s below the current directory
|
||||
gasm lint go-flac/*.s run static checks over the kernels
|
||||
gasm asm -o k.bin kern_amd64.s
|
||||
gasm asm --format elf -o k.o kern_amd64.s
|
||||
`, version)
|
||||
}
|
||||
|
||||
@@ -339,17 +340,24 @@ hover, document symbols, diagnostics and semantic-token highlighting.
|
||||
}
|
||||
|
||||
func cmdAsm(args []string) int {
|
||||
fs := newCommand("asm", "gasm asm [-o out.bin] <file>", `
|
||||
fs := newCommand("asm", "gasm asm [--format raw|elf|macho] [-o out] <file>", `
|
||||
Assemble FILE (amd64) without the Go toolchain: every TEXT function is
|
||||
encoded to machine code — scalar, VEX/AVX2 and EVEX/AVX-512 instructions,
|
||||
FP/SP frame mapping, local labels and file-local static symbols (GLOBL/DATA)
|
||||
resolved RIP-relative — and printed as a hex dump. With -o the concatenated
|
||||
image (functions followed by the data section) is written to a file instead.
|
||||
resolved RIP-relative — and printed as a hex dump.
|
||||
|
||||
With -o the output is written to a file instead. The --format flag selects
|
||||
what is written: raw (the default) concatenates the functions and the data
|
||||
section into one self-consistent image; elf and macho emit a relocatable
|
||||
object (.text/.data sections, a symbol table and one PC32 relocation per
|
||||
static-symbol reference) that links with the system toolchain — references
|
||||
to symbols no GLOBL in the file defines become undefined external symbols.
|
||||
`)
|
||||
out := fs.String("o", "", "write the concatenated machine code to this file")
|
||||
out := fs.String("o", "", "write the output to this file")
|
||||
format := fs.String("format", "raw", "output format: raw (concatenated image), elf or macho (relocatable object)")
|
||||
fs.Parse(args)
|
||||
if fs.NArg() != 1 {
|
||||
fmt.Fprintln(os.Stderr, "usage: gasm asm [-o out.bin] <file>")
|
||||
fmt.Fprintln(os.Stderr, "usage: gasm asm [--format raw|elf|macho] [-o out] <file>")
|
||||
return 2
|
||||
}
|
||||
path := fs.Arg(0)
|
||||
@@ -420,12 +428,35 @@ image (functions followed by the data section) is written to a file instead.
|
||||
}
|
||||
}
|
||||
if *out != "" {
|
||||
all := img.Bytes()
|
||||
if err := os.WriteFile(*out, all, 0o644); err != nil {
|
||||
var obj []byte
|
||||
var err error
|
||||
var kind string
|
||||
switch *format {
|
||||
case "raw":
|
||||
if len(img.Externals) > 0 {
|
||||
fmt.Fprintf(os.Stderr, "gasm asm: external symbol %q needs an object file (use --format elf or --format macho)\n", img.Externals[0])
|
||||
return 1
|
||||
}
|
||||
obj, kind = img.Bytes(), "raw image"
|
||||
case "elf":
|
||||
obj, err = img.ELFObject()
|
||||
kind = "ELF object"
|
||||
case "macho":
|
||||
obj, err = img.MachOObject()
|
||||
kind = "Mach-O object"
|
||||
default:
|
||||
fmt.Fprintf(os.Stderr, "gasm asm: unknown format %q (want raw, elf or macho)\n", *format)
|
||||
return 2
|
||||
}
|
||||
if err != nil {
|
||||
fmt.Fprintln(os.Stderr, "gasm asm:", err)
|
||||
return 1
|
||||
}
|
||||
fmt.Printf("wrote %d bytes to %s\n", len(all), *out)
|
||||
if err := os.WriteFile(*out, obj, 0o644); err != nil {
|
||||
fmt.Fprintln(os.Stderr, "gasm asm:", err)
|
||||
return 1
|
||||
}
|
||||
fmt.Printf("wrote %d bytes to %s (%s)\n", len(obj), *out, kind)
|
||||
}
|
||||
return 0
|
||||
}
|
||||
|
||||
+23
-7
@@ -213,9 +213,13 @@ three-operand-plus-immediate form (`VSHUFPD`,
|
||||
`VPERM2I128`, `VINSERTI128`), the lane-extract form (`VEXTRACTI128`,
|
||||
`VEXTRACTF128`, where the YMM source occupies the reg field and the XMM or
|
||||
memory destination r/m), the direction-sensitive moves (`VMOVDQU`, `VMOVUPD`,
|
||||
`VMOVD`, `VMOVQ`, `VMOVSD`), the floating-point and FMA arithmetic (`VADDPD`,
|
||||
`VMULPD`, `VXORPD`, `VUNPCKHPD`, the scalar `VADDSD`/`VMULSD`, `VCVTDQ2PD`,
|
||||
`VFMADD231PD`) and the no-operand `VZEROUPPER` — together with `VPERMD` and
|
||||
`VMOVD`, `VMOVQ`, `VMOVSD`), the floating-point and FMA arithmetic — the
|
||||
packed double operations (`VADDPD`/`VSUBPD`/`VMULPD`/`VDIVPD`/`VMINPD`/
|
||||
`VMAXPD`), the unpacks (`VUNPCKHPD`/`VUNPCKLPD`), the scalar SD and SS
|
||||
operations, `VMOVDDUP`, `VXORPD`, the width-changing conversions
|
||||
(`VCVTDQ2PS`, `VCVTPS2PD`, `VCVTDQ2PD`, and the `VCVTPD2DQX`/`Y` and
|
||||
`VCVTTPD2DQX`/`Y` spellings, whose length follows the wider source) and
|
||||
`VFMADD231PD` — and the no-operand `VZEROUPPER`, together with `VPERMD` and
|
||||
the scalar families (`CMOVcc`, `SETcc`, `LZCNT`/`TZCNT`, the extending moves,
|
||||
`CVTSx2SD`, `IMUL3`) and the EVEX (AVX-512) prefix — the four-byte prefix with
|
||||
5-bit register fields (Z0–Z31, X/Y 16–31, with the mod=11 quirk that carries
|
||||
@@ -224,7 +228,11 @@ explicit merging/zeroing masks — written the way Go writes them, as a K
|
||||
operand among the operands plus a `.Z` mnemonic suffix), and the compressed
|
||||
disp8×N displacement, whose multiplier follows the memory operand's size —
|
||||
covering every instruction the go-flac and go-lz4 AVX2/AVX-512 kernels use,
|
||||
plus the common AVX-512 F/BW integer set. Every encoding is validated two ways: by
|
||||
plus the common AVX-512 F/BW integer set and the floating-point and
|
||||
conversion set (the packed double arithmetic, the scalar SD/SS forms —
|
||||
whose EVEX encodings serve masked and zeroing use — `VMOVDDUP`, and the
|
||||
width-changing conversions, including the `VCVTPD2DQ`/`VCVTTPD2DQ` family
|
||||
whose length follows the wider source operand). Every encoding is validated two ways: by
|
||||
round-trip decoding through `golang.org/x/arch`, and byte-for-byte against
|
||||
the machine code the real Go assembler emits — a comparison that holds for
|
||||
whole functions: all 27 functions of both kernels assemble to exactly the Go
|
||||
@@ -235,9 +243,17 @@ File-level assembly (`AssembleFile`) goes beyond single functions: it
|
||||
materialises the file's static symbols (`GLOBL`/`DATA`) in a data section
|
||||
behind the code and resolves references to them (`mask<>(SB)`) to
|
||||
RIP-relative loads whose displacements point inside the resulting image, so
|
||||
the bytes are self-consistent at any base address. External (non-file-local)
|
||||
symbols are rejected: they need object-file emission, which — together with
|
||||
EVEX masking/zeroing and the other architectures — is the rest of Phase 2.
|
||||
the bytes are self-consistent at any base address. References to symbols no
|
||||
`GLOBL` defines are kept as relocations on the function layout, and the
|
||||
object-file emitters turn the whole image into a linkable object: the ELF
|
||||
and Mach-O writers (`gasm asm --format elf|macho`) lay the code and data out
|
||||
as `.text`/`.data` (or `__text`/`__data`) sections, export a symbol per
|
||||
`TEXT` and `GLOBL` (the `<>` ones local, the rest global) and emit one
|
||||
PC-relative relocation per static-symbol reference — undefined external
|
||||
symbols included, so the output links with the system toolchain. GOOBJ
|
||||
emission, the format the Go linker consumes directly, is the remaining
|
||||
piece of Phase 2 (together with the rest of the EVEX set and the other
|
||||
architectures).
|
||||
|
||||
## Extension points
|
||||
|
||||
|
||||
Reference in New Issue
Block a user