fix(asm): encode the CMOV condition the renderer prints
The renderer spells a conditional move CMOV plus the condition alone (CMOVLE, CMOVG), the width carried by the operand registers, so CMOVLE parsed as the size L and the condition E and encoded CMOVE. A suffix that is itself a condition name now reads as that condition with the width from the destination register, and the Plan 9 size-prefixed spellings keep their parse. Assisted-by: GLM 5.3 Flash
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@@ -62,16 +62,14 @@ func Encodable(mnemonic string) bool {
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return true
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}
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// CMOV carries size then condition (CMOVLGT); SET carries the condition
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// alone (SETNE). The size letter is checked exactly as encodeCmov does,
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// so a spelling like CMOVBGT is not reported encodable when Encode
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// would reject it.
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if rest, ok := strings.CutPrefix(upper, "CMOV"); ok && len(rest) >= 2 {
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switch rest[0] {
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case 'W', 'L', 'Q':
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if _, ok := jccMap[rest[1:]]; ok {
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return true
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}
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// CMOV carries size then condition (CMOVLGT), or the renderer's
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// condition alone (CMOVLE) with the width from the operand; SET carries
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// the condition alone (SETNE). cmovCondition checks the suffix exactly
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// as encodeCmov does, so a spelling like CMOVBGT is not reported
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// encodable when Encode would reject it.
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if rest, ok := strings.CutPrefix(upper, "CMOV"); ok {
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if _, _, ok := cmovCondition(rest); ok {
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return true
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}
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}
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if rest, ok := strings.CutPrefix(upper, "SET"); ok {
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+14
-3
@@ -411,6 +411,16 @@ func TestScalarGroundTruth(t *testing.T) {
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{"CMOVLEQ CX,AX", "CMOVLEQ", []Operand{CX, AX}, "0f44c1", "CMOVE"},
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{"CMOVQGT R9,R8", "CMOVQGT", []Operand{r9, r8}, "4d0f4fc1", "CMOVG"},
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{"CMOVWLS R9W,R8W", "CMOVWLS", []Operand{r9w, r8w}, "66450f46c1", "CMOVBE"},
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// The renderer's condition spellings carry no size letter; the width
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// rides the operand registers and the bytes match the toolchain's own
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// size-prefixed spellings (CMOVQLE/CMOVLLE/CMOVWLE pinned from go tool
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// asm). CMOVLE with the 16-bit registers reproduces the disasm
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// fixture's 660f4e13 row byte for byte.
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{"CMOVLE (BX),DX", "CMOVLE", []Operand{Ptr(BX, 0, 2), DX}, "660f4e13", "CMOVLE"},
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{"CMOVQLE AX,BX", "CMOVQLE", []Operand{Reg{idx: 0, size: 8}, Reg{idx: 3, size: 8}}, "480f4ed8", "CMOVLE"},
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{"CMOVLLE AX,BX", "CMOVLLE", []Operand{Reg{idx: 0, size: 4}, Reg{idx: 3, size: 4}}, "0f4ed8", "CMOVLE"},
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{"CMOVWLE AX,BX", "CMOVWLE", []Operand{AX, BX}, "660f4ed8", "CMOVLE"},
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{"CMOVB AL,CL", "CMOVB", []Operand{AL, CL}, "0f42c8", "CMOVB"},
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{"SETNE AL", "SETNE", []Operand{AL}, "0f95c0", "SETNE"},
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{"SETNE (AX)", "SETNE", []Operand{Ptr(AX, 0, 1)}, "0f9500", "SETNE"},
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{"MOVBLZX AL,CX", "MOVBLZX", []Operand{AL, CX}, "0fb6c8", "MOVZX"},
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@@ -595,14 +605,15 @@ func TestImmediateTruncation(t *testing.T) {
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// TestEncodableCmovSize pins the linter contract for CMOVcc: Encodable must
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// reject the spellings Encode rejects, so a mnemonic like CMOVBGT (no size
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// letter) is not reported as encodable.
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// letter) is not reported as encodable. The condition-name spellings the
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// renderer prints (CMOVB, CMOVLE) encode with the width from the operands.
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func TestEncodableCmovSize(t *testing.T) {
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for _, m := range []string{"CMOVBGT", "CMOVXEQ", "CMOVB", "CMOV", "CMOVWXX"} {
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for _, m := range []string{"CMOVBGT", "CMOVXEQ", "CMOV", "CMOVWXX"} {
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if Encodable(m) {
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t.Errorf("Encodable(%q) = true, want false", m)
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}
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}
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for _, m := range []string{"CMOVLGT", "CMOVQGT", "CMOVWLS", "CMOVLEQ"} {
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for _, m := range []string{"CMOVLGT", "CMOVQGT", "CMOVWLS", "CMOVLEQ", "CMOVB", "CMOVLE"} {
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if !Encodable(m) {
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t.Errorf("Encodable(%q) = false, want true", m)
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}
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+42
-17
@@ -1068,29 +1068,46 @@ func immediate(v int64, size int, full64 bool) ([]byte, error) {
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// --- CMOVcc / SETcc ---------------------------------------------------------
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// cmovCondition splits a CMOVcc suffix into an optional size letter and the
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// condition code. Two vocabularies meet here: the Plan 9 spellings prefix
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// the condition with a size letter (CMOVLGT, CMOVQEQ), while the toolchain's
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// renderer prints the condition alone (CMOVLE, CMOVG) and leaves the width
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// to the operand registers. A suffix that is itself a condition name reads
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// as that condition, so the renderer's text re-encodes; CMOVBGT, CMOVWXX and
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// the bare CMOV still find no condition and stay rejected.
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func cmovCondition(rest string) (size int, cc int, ok bool) {
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if cc, ok := jccMap[rest]; ok {
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return 0, cc, true
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}
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if len(rest) >= 2 {
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switch rest[0] {
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case 'W':
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if cc, ok := jccMap[rest[1:]]; ok {
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return 2, cc, true
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}
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case 'L':
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if cc, ok := jccMap[rest[1:]]; ok {
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return 4, cc, true
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}
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case 'Q':
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if cc, ok := jccMap[rest[1:]]; ok {
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return 8, cc, true
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}
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}
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}
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return 0, 0, false
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}
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// encodeCmov encodes a conditional move: CMOV + size (W/L/Q) + condition
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// (CMOVLGT, CMOVQEQ, …). The condition reads exactly like the Jcc spellings;
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// the instruction is 0F 40+cc with reg = dst, rm = src.
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// (CMOVLGT, CMOVQEQ, …), or the renderer's condition alone (CMOVLE) with the
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// width taken from the destination register. The instruction is 0F 40+cc
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// with reg = dst, rm = src.
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func (e *enc) encodeCmov(upper string, ops []Operand) error {
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if len(ops) != 2 {
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return fmt.Errorf("CMOVcc expects 2 operands, got %d", len(ops))
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}
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rest := upper[len("CMOV"):]
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if len(rest) < 2 {
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return fmt.Errorf("unsupported instruction %q", upper)
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}
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var size int
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switch rest[0] {
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case 'W':
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size = 2
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case 'L':
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size = 4
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case 'Q':
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size = 8
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default:
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return fmt.Errorf("unsupported instruction %q", upper)
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}
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cc, ok := jccMap[rest[1:]]
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size, cc, ok := cmovCondition(rest)
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if !ok {
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return fmt.Errorf("unsupported instruction %q", upper)
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}
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@@ -1099,6 +1116,14 @@ func (e *enc) encodeCmov(upper string, ops []Operand) error {
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if !ok {
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return fmt.Errorf("CMOVcc destination must be a register")
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}
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if size == 0 {
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// The renderer's spelling carries no size letter: the width rides
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// the destination register's own size class.
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size = dstReg.size
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if size != 1 && size != 2 && size != 4 && size != 8 {
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return fmt.Errorf("CMOVcc destination must be a general register")
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}
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}
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i := newInstr(size, []byte{0x0F, byte(0x40 + cc)})
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if err := setRM(i, dstReg, src, size); err != nil {
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return err
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