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asm_arm64.s
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asm_arm64.s
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// Copyright 2015 The Go Authors. All rights reserved.
// Use of this source code is governed by a BSD-style
// license that can be found in the LICENSE file.
#include "go_asm.h"
#include "go_tls.h"
#include "tls_arm64.h"
#include "funcdata.h"
#include "textflag.h"
TEXT runtime·rt0_go(SB),NOSPLIT|TOPFRAME,$0
// SP = stack; R0 = argc; R1 = argv
SUB $32, RSP
MOVW R0, 8(RSP) // argc
MOVD R1, 16(RSP) // argv
#ifdef TLS_darwin
// Initialize TLS.
MOVD ZR, g // clear g, make sure it's not junk.
SUB $32, RSP
MRS_TPIDR_R0
AND $~7, R0
MOVD R0, 16(RSP) // arg2: TLS base
MOVD $runtime·tls_g(SB), R2
MOVD R2, 8(RSP) // arg1: &tlsg
BL ·tlsinit(SB)
ADD $32, RSP
#endif
// create istack out of the given (operating system) stack.
// _cgo_init may update stackguard.
MOVD $runtime·g0(SB), g
MOVD RSP, R7
MOVD $(-64*1024)(R7), R0
MOVD R0, g_stackguard0(g)
MOVD R0, g_stackguard1(g)
MOVD R0, (g_stack+stack_lo)(g)
MOVD R7, (g_stack+stack_hi)(g)
// if there is a _cgo_init, call it using the gcc ABI.
MOVD _cgo_init(SB), R12
CBZ R12, nocgo
#ifdef GOOS_android
MRS_TPIDR_R0 // load TLS base pointer
MOVD R0, R3 // arg 3: TLS base pointer
MOVD $runtime·tls_g(SB), R2 // arg 2: &tls_g
#else
MOVD $0, R2 // arg 2: not used when using platform's TLS
#endif
MOVD $setg_gcc<>(SB), R1 // arg 1: setg
MOVD g, R0 // arg 0: G
SUB $16, RSP // reserve 16 bytes for sp-8 where fp may be saved.
BL (R12)
ADD $16, RSP
nocgo:
BL runtime·save_g(SB)
// update stackguard after _cgo_init
MOVD (g_stack+stack_lo)(g), R0
ADD $const__StackGuard, R0
MOVD R0, g_stackguard0(g)
MOVD R0, g_stackguard1(g)
// set the per-goroutine and per-mach "registers"
MOVD $runtime·m0(SB), R0
// save m->g0 = g0
MOVD g, m_g0(R0)
// save m0 to g0->m
MOVD R0, g_m(g)
BL runtime·check(SB)
#ifdef GOOS_windows
BL runtime·wintls(SB)
#endif
MOVW 8(RSP), R0 // copy argc
MOVW R0, -8(RSP)
MOVD 16(RSP), R0 // copy argv
MOVD R0, 0(RSP)
BL runtime·args(SB)
BL runtime·osinit(SB)
BL runtime·schedinit(SB)
// create a new goroutine to start program
MOVD $runtime·mainPC(SB), R0 // entry
SUB $16, RSP
MOVD R0, 8(RSP) // arg
MOVD $0, 0(RSP) // dummy LR
BL runtime·newproc(SB)
ADD $16, RSP
// start this M
BL runtime·mstart(SB)
// Prevent dead-code elimination of debugCallV2, which is
// intended to be called by debuggers.
MOVD $runtime·debugCallV2<ABIInternal>(SB), R0
MOVD $0, R0
MOVD R0, (R0) // boom
UNDEF
DATA runtime·mainPC+0(SB)/8,$runtime·main<ABIInternal>(SB)
GLOBL runtime·mainPC(SB),RODATA,$8
TEXT runtime·breakpoint(SB),NOSPLIT|NOFRAME,$0-0
BRK
RET
TEXT runtime·asminit(SB),NOSPLIT|NOFRAME,$0-0
RET
TEXT runtime·mstart(SB),NOSPLIT|TOPFRAME,$0
BL runtime·mstart0(SB)
RET // not reached
/*
* go-routine
*/
// void gogo(Gobuf*)
// restore state from Gobuf; longjmp
TEXT runtime·gogo(SB), NOSPLIT|NOFRAME, $0-8
MOVD buf+0(FP), R5
MOVD gobuf_g(R5), R6
MOVD 0(R6), R4 // make sure g != nil
B gogo<>(SB)
TEXT gogo<>(SB), NOSPLIT|NOFRAME, $0
MOVD R6, g
BL runtime·save_g(SB)
MOVD gobuf_sp(R5), R0
MOVD R0, RSP
MOVD gobuf_bp(R5), R29
MOVD gobuf_lr(R5), LR
MOVD gobuf_ret(R5), R0
MOVD gobuf_ctxt(R5), R26
MOVD $0, gobuf_sp(R5)
MOVD $0, gobuf_bp(R5)
MOVD $0, gobuf_ret(R5)
MOVD $0, gobuf_lr(R5)
MOVD $0, gobuf_ctxt(R5)
CMP ZR, ZR // set condition codes for == test, needed by stack split
MOVD gobuf_pc(R5), R6
B (R6)
// void mcall(fn func(*g))
// Switch to m->g0's stack, call fn(g).
// Fn must never return. It should gogo(&g->sched)
// to keep running g.
TEXT runtime·mcall<ABIInternal>(SB), NOSPLIT|NOFRAME, $0-8
MOVD R0, R26 // context
// Save caller state in g->sched
MOVD RSP, R0
MOVD R0, (g_sched+gobuf_sp)(g)
MOVD R29, (g_sched+gobuf_bp)(g)
MOVD LR, (g_sched+gobuf_pc)(g)
MOVD $0, (g_sched+gobuf_lr)(g)
// Switch to m->g0 & its stack, call fn.
MOVD g, R3
MOVD g_m(g), R8
MOVD m_g0(R8), g
BL runtime·save_g(SB)
CMP g, R3
BNE 2(PC)
B runtime·badmcall(SB)
MOVD (g_sched+gobuf_sp)(g), R0
MOVD R0, RSP // sp = m->g0->sched.sp
MOVD (g_sched+gobuf_bp)(g), R29
MOVD R3, R0 // arg = g
MOVD $0, -16(RSP) // dummy LR
SUB $16, RSP
MOVD 0(R26), R4 // code pointer
BL (R4)
B runtime·badmcall2(SB)
// systemstack_switch is a dummy routine that systemstack leaves at the bottom
// of the G stack. We need to distinguish the routine that
// lives at the bottom of the G stack from the one that lives
// at the top of the system stack because the one at the top of
// the system stack terminates the stack walk (see topofstack()).
TEXT runtime·systemstack_switch(SB), NOSPLIT, $0-0
UNDEF
BL (LR) // make sure this function is not leaf
RET
// func systemstack(fn func())
TEXT runtime·systemstack(SB), NOSPLIT, $0-8
MOVD fn+0(FP), R3 // R3 = fn
MOVD R3, R26 // context
MOVD g_m(g), R4 // R4 = m
MOVD m_gsignal(R4), R5 // R5 = gsignal
CMP g, R5
BEQ noswitch
MOVD m_g0(R4), R5 // R5 = g0
CMP g, R5
BEQ noswitch
MOVD m_curg(R4), R6
CMP g, R6
BEQ switch
// Bad: g is not gsignal, not g0, not curg. What is it?
// Hide call from linker nosplit analysis.
MOVD $runtime·badsystemstack(SB), R3
BL (R3)
B runtime·abort(SB)
switch:
// save our state in g->sched. Pretend to
// be systemstack_switch if the G stack is scanned.
BL gosave_systemstack_switch<>(SB)
// switch to g0
MOVD R5, g
BL runtime·save_g(SB)
MOVD (g_sched+gobuf_sp)(g), R3
MOVD R3, RSP
MOVD (g_sched+gobuf_bp)(g), R29
// call target function
MOVD 0(R26), R3 // code pointer
BL (R3)
// switch back to g
MOVD g_m(g), R3
MOVD m_curg(R3), g
BL runtime·save_g(SB)
MOVD (g_sched+gobuf_sp)(g), R0
MOVD R0, RSP
MOVD (g_sched+gobuf_bp)(g), R29
MOVD $0, (g_sched+gobuf_sp)(g)
MOVD $0, (g_sched+gobuf_bp)(g)
RET
noswitch:
// already on m stack, just call directly
// Using a tail call here cleans up tracebacks since we won't stop
// at an intermediate systemstack.
MOVD 0(R26), R3 // code pointer
MOVD.P 16(RSP), R30 // restore LR
SUB $8, RSP, R29 // restore FP
B (R3)
/*
* support for morestack
*/
// Called during function prolog when more stack is needed.
// Caller has already loaded:
// R3 prolog's LR (R30)
//
// The traceback routines see morestack on a g0 as being
// the top of a stack (for example, morestack calling newstack
// calling the scheduler calling newm calling gc), so we must
// record an argument size. For that purpose, it has no arguments.
TEXT runtime·morestack(SB),NOSPLIT|NOFRAME,$0-0
// Cannot grow scheduler stack (m->g0).
MOVD g_m(g), R8
MOVD m_g0(R8), R4
CMP g, R4
BNE 3(PC)
BL runtime·badmorestackg0(SB)
B runtime·abort(SB)
// Cannot grow signal stack (m->gsignal).
MOVD m_gsignal(R8), R4
CMP g, R4
BNE 3(PC)
BL runtime·badmorestackgsignal(SB)
B runtime·abort(SB)
// Called from f.
// Set g->sched to context in f
MOVD RSP, R0
MOVD R0, (g_sched+gobuf_sp)(g)
MOVD R29, (g_sched+gobuf_bp)(g)
MOVD LR, (g_sched+gobuf_pc)(g)
MOVD R3, (g_sched+gobuf_lr)(g)
MOVD R26, (g_sched+gobuf_ctxt)(g)
// Called from f.
// Set m->morebuf to f's callers.
MOVD R3, (m_morebuf+gobuf_pc)(R8) // f's caller's PC
MOVD RSP, R0
MOVD R0, (m_morebuf+gobuf_sp)(R8) // f's caller's RSP
MOVD g, (m_morebuf+gobuf_g)(R8)
// Call newstack on m->g0's stack.
MOVD m_g0(R8), g
BL runtime·save_g(SB)
MOVD (g_sched+gobuf_sp)(g), R0
MOVD R0, RSP
MOVD (g_sched+gobuf_bp)(g), R29
MOVD.W $0, -16(RSP) // create a call frame on g0 (saved LR; keep 16-aligned)
BL runtime·newstack(SB)
// Not reached, but make sure the return PC from the call to newstack
// is still in this function, and not the beginning of the next.
UNDEF
TEXT runtime·morestack_noctxt(SB),NOSPLIT|NOFRAME,$0-0
MOVW $0, R26
B runtime·morestack(SB)
// spillArgs stores return values from registers to a *internal/abi.RegArgs in R20.
TEXT ·spillArgs(SB),NOSPLIT,$0-0
STP (R0, R1), (0*8)(R20)
STP (R2, R3), (2*8)(R20)
STP (R4, R5), (4*8)(R20)
STP (R6, R7), (6*8)(R20)
STP (R8, R9), (8*8)(R20)
STP (R10, R11), (10*8)(R20)
STP (R12, R13), (12*8)(R20)
STP (R14, R15), (14*8)(R20)
FSTPD (F0, F1), (16*8)(R20)
FSTPD (F2, F3), (18*8)(R20)
FSTPD (F4, F5), (20*8)(R20)
FSTPD (F6, F7), (22*8)(R20)
FSTPD (F8, F9), (24*8)(R20)
FSTPD (F10, F11), (26*8)(R20)
FSTPD (F12, F13), (28*8)(R20)
FSTPD (F14, F15), (30*8)(R20)
RET
// unspillArgs loads args into registers from a *internal/abi.RegArgs in R20.
TEXT ·unspillArgs(SB),NOSPLIT,$0-0
LDP (0*8)(R20), (R0, R1)
LDP (2*8)(R20), (R2, R3)
LDP (4*8)(R20), (R4, R5)
LDP (6*8)(R20), (R6, R7)
LDP (8*8)(R20), (R8, R9)
LDP (10*8)(R20), (R10, R11)
LDP (12*8)(R20), (R12, R13)
LDP (14*8)(R20), (R14, R15)
FLDPD (16*8)(R20), (F0, F1)
FLDPD (18*8)(R20), (F2, F3)
FLDPD (20*8)(R20), (F4, F5)
FLDPD (22*8)(R20), (F6, F7)
FLDPD (24*8)(R20), (F8, F9)
FLDPD (26*8)(R20), (F10, F11)
FLDPD (28*8)(R20), (F12, F13)
FLDPD (30*8)(R20), (F14, F15)
RET
// reflectcall: call a function with the given argument list
// func call(stackArgsType *_type, f *FuncVal, stackArgs *byte, stackArgsSize, stackRetOffset, frameSize uint32, regArgs *abi.RegArgs).
// we don't have variable-sized frames, so we use a small number
// of constant-sized-frame functions to encode a few bits of size in the pc.
// Caution: ugly multiline assembly macros in your future!
#define DISPATCH(NAME,MAXSIZE) \
MOVD $MAXSIZE, R27; \
CMP R27, R16; \
BGT 3(PC); \
MOVD $NAME(SB), R27; \
B (R27)
// Note: can't just "B NAME(SB)" - bad inlining results.
TEXT ·reflectcall(SB), NOSPLIT|NOFRAME, $0-48
MOVWU frameSize+32(FP), R16
DISPATCH(runtime·call16, 16)
DISPATCH(runtime·call32, 32)
DISPATCH(runtime·call64, 64)
DISPATCH(runtime·call128, 128)
DISPATCH(runtime·call256, 256)
DISPATCH(runtime·call512, 512)
DISPATCH(runtime·call1024, 1024)
DISPATCH(runtime·call2048, 2048)
DISPATCH(runtime·call4096, 4096)
DISPATCH(runtime·call8192, 8192)
DISPATCH(runtime·call16384, 16384)
DISPATCH(runtime·call32768, 32768)
DISPATCH(runtime·call65536, 65536)
DISPATCH(runtime·call131072, 131072)
DISPATCH(runtime·call262144, 262144)
DISPATCH(runtime·call524288, 524288)
DISPATCH(runtime·call1048576, 1048576)
DISPATCH(runtime·call2097152, 2097152)
DISPATCH(runtime·call4194304, 4194304)
DISPATCH(runtime·call8388608, 8388608)
DISPATCH(runtime·call16777216, 16777216)
DISPATCH(runtime·call33554432, 33554432)
DISPATCH(runtime·call67108864, 67108864)
DISPATCH(runtime·call134217728, 134217728)
DISPATCH(runtime·call268435456, 268435456)
DISPATCH(runtime·call536870912, 536870912)
DISPATCH(runtime·call1073741824, 1073741824)
MOVD $runtime·badreflectcall(SB), R0
B (R0)
#define CALLFN(NAME,MAXSIZE) \
TEXT NAME(SB), WRAPPER, $MAXSIZE-48; \
NO_LOCAL_POINTERS; \
/* copy arguments to stack */ \
MOVD stackArgs+16(FP), R3; \
MOVWU stackArgsSize+24(FP), R4; \
ADD $8, RSP, R5; \
BIC $0xf, R4, R6; \
CBZ R6, 6(PC); \
/* if R6=(argsize&~15) != 0 */ \
ADD R6, R5, R6; \
/* copy 16 bytes a time */ \
LDP.P 16(R3), (R7, R8); \
STP.P (R7, R8), 16(R5); \
CMP R5, R6; \
BNE -3(PC); \
AND $0xf, R4, R6; \
CBZ R6, 6(PC); \
/* if R6=(argsize&15) != 0 */ \
ADD R6, R5, R6; \
/* copy 1 byte a time for the rest */ \
MOVBU.P 1(R3), R7; \
MOVBU.P R7, 1(R5); \
CMP R5, R6; \
BNE -3(PC); \
/* set up argument registers */ \
MOVD regArgs+40(FP), R20; \
CALL ·unspillArgs(SB); \
/* call function */ \
MOVD f+8(FP), R26; \
MOVD (R26), R20; \
PCDATA $PCDATA_StackMapIndex, $0; \
BL (R20); \
/* copy return values back */ \
MOVD regArgs+40(FP), R20; \
CALL ·spillArgs(SB); \
MOVD stackArgsType+0(FP), R7; \
MOVD stackArgs+16(FP), R3; \
MOVWU stackArgsSize+24(FP), R4; \
MOVWU stackRetOffset+28(FP), R6; \
ADD $8, RSP, R5; \
ADD R6, R5; \
ADD R6, R3; \
SUB R6, R4; \
BL callRet<>(SB); \
RET
// callRet copies return values back at the end of call*. This is a
// separate function so it can allocate stack space for the arguments
// to reflectcallmove. It does not follow the Go ABI; it expects its
// arguments in registers.
TEXT callRet<>(SB), NOSPLIT, $48-0
NO_LOCAL_POINTERS
STP (R7, R3), 8(RSP)
STP (R5, R4), 24(RSP)
MOVD R20, 40(RSP)
BL runtime·reflectcallmove(SB)
RET
CALLFN(·call16, 16)
CALLFN(·call32, 32)
CALLFN(·call64, 64)
CALLFN(·call128, 128)
CALLFN(·call256, 256)
CALLFN(·call512, 512)
CALLFN(·call1024, 1024)
CALLFN(·call2048, 2048)
CALLFN(·call4096, 4096)
CALLFN(·call8192, 8192)
CALLFN(·call16384, 16384)
CALLFN(·call32768, 32768)
CALLFN(·call65536, 65536)
CALLFN(·call131072, 131072)
CALLFN(·call262144, 262144)
CALLFN(·call524288, 524288)
CALLFN(·call1048576, 1048576)
CALLFN(·call2097152, 2097152)
CALLFN(·call4194304, 4194304)
CALLFN(·call8388608, 8388608)
CALLFN(·call16777216, 16777216)
CALLFN(·call33554432, 33554432)
CALLFN(·call67108864, 67108864)
CALLFN(·call134217728, 134217728)
CALLFN(·call268435456, 268435456)
CALLFN(·call536870912, 536870912)
CALLFN(·call1073741824, 1073741824)
// func memhash32(p unsafe.Pointer, h uintptr) uintptr
TEXT runtime·memhash32<ABIInternal>(SB),NOSPLIT|NOFRAME,$0-24
MOVB runtime·useAeshash(SB), R10
CBZ R10, noaes
MOVD $runtime·aeskeysched+0(SB), R3
VEOR V0.B16, V0.B16, V0.B16
VLD1 (R3), [V2.B16]
VLD1 (R0), V0.S[1]
VMOV R1, V0.S[0]
AESE V2.B16, V0.B16
AESMC V0.B16, V0.B16
AESE V2.B16, V0.B16
AESMC V0.B16, V0.B16
AESE V2.B16, V0.B16
VMOV V0.D[0], R0
RET
noaes:
B runtime·memhash32Fallback<ABIInternal>(SB)
// func memhash64(p unsafe.Pointer, h uintptr) uintptr
TEXT runtime·memhash64<ABIInternal>(SB),NOSPLIT|NOFRAME,$0-24
MOVB runtime·useAeshash(SB), R10
CBZ R10, noaes
MOVD $runtime·aeskeysched+0(SB), R3
VEOR V0.B16, V0.B16, V0.B16
VLD1 (R3), [V2.B16]
VLD1 (R0), V0.D[1]
VMOV R1, V0.D[0]
AESE V2.B16, V0.B16
AESMC V0.B16, V0.B16
AESE V2.B16, V0.B16
AESMC V0.B16, V0.B16
AESE V2.B16, V0.B16
VMOV V0.D[0], R0
RET
noaes:
B runtime·memhash64Fallback<ABIInternal>(SB)
// func memhash(p unsafe.Pointer, h, size uintptr) uintptr
TEXT runtime·memhash<ABIInternal>(SB),NOSPLIT|NOFRAME,$0-32
MOVB runtime·useAeshash(SB), R10
CBZ R10, noaes
B aeshashbody<>(SB)
noaes:
B runtime·memhashFallback<ABIInternal>(SB)
// func strhash(p unsafe.Pointer, h uintptr) uintptr
TEXT runtime·strhash<ABIInternal>(SB),NOSPLIT|NOFRAME,$0-24
MOVB runtime·useAeshash(SB), R10
CBZ R10, noaes
LDP (R0), (R0, R2) // string data / length
B aeshashbody<>(SB)
noaes:
B runtime·strhashFallback<ABIInternal>(SB)
// R0: data
// R1: seed data
// R2: length
// At return, R0 = return value
TEXT aeshashbody<>(SB),NOSPLIT|NOFRAME,$0
VEOR V30.B16, V30.B16, V30.B16
VMOV R1, V30.D[0]
VMOV R2, V30.D[1] // load length into seed
MOVD $runtime·aeskeysched+0(SB), R4
VLD1.P 16(R4), [V0.B16]
AESE V30.B16, V0.B16
AESMC V0.B16, V0.B16
CMP $16, R2
BLO aes0to15
BEQ aes16
CMP $32, R2
BLS aes17to32
CMP $64, R2
BLS aes33to64
CMP $128, R2
BLS aes65to128
B aes129plus
aes0to15:
CBZ R2, aes0
VEOR V2.B16, V2.B16, V2.B16
TBZ $3, R2, less_than_8
VLD1.P 8(R0), V2.D[0]
less_than_8:
TBZ $2, R2, less_than_4
VLD1.P 4(R0), V2.S[2]
less_than_4:
TBZ $1, R2, less_than_2
VLD1.P 2(R0), V2.H[6]
less_than_2:
TBZ $0, R2, done
VLD1 (R0), V2.B[14]
done:
AESE V0.B16, V2.B16
AESMC V2.B16, V2.B16
AESE V0.B16, V2.B16
AESMC V2.B16, V2.B16
AESE V0.B16, V2.B16
VMOV V2.D[0], R0
RET
aes0:
VMOV V0.D[0], R0
RET
aes16:
VLD1 (R0), [V2.B16]
B done
aes17to32:
// make second seed
VLD1 (R4), [V1.B16]
AESE V30.B16, V1.B16
AESMC V1.B16, V1.B16
SUB $16, R2, R10
VLD1.P (R0)(R10), [V2.B16]
VLD1 (R0), [V3.B16]
AESE V0.B16, V2.B16
AESMC V2.B16, V2.B16
AESE V1.B16, V3.B16
AESMC V3.B16, V3.B16
AESE V0.B16, V2.B16
AESMC V2.B16, V2.B16
AESE V1.B16, V3.B16
AESMC V3.B16, V3.B16
AESE V0.B16, V2.B16
AESE V1.B16, V3.B16
VEOR V3.B16, V2.B16, V2.B16
VMOV V2.D[0], R0
RET
aes33to64:
VLD1 (R4), [V1.B16, V2.B16, V3.B16]
AESE V30.B16, V1.B16
AESMC V1.B16, V1.B16
AESE V30.B16, V2.B16
AESMC V2.B16, V2.B16
AESE V30.B16, V3.B16
AESMC V3.B16, V3.B16
SUB $32, R2, R10
VLD1.P (R0)(R10), [V4.B16, V5.B16]
VLD1 (R0), [V6.B16, V7.B16]
AESE V0.B16, V4.B16
AESMC V4.B16, V4.B16
AESE V1.B16, V5.B16
AESMC V5.B16, V5.B16
AESE V2.B16, V6.B16
AESMC V6.B16, V6.B16
AESE V3.B16, V7.B16
AESMC V7.B16, V7.B16
AESE V0.B16, V4.B16
AESMC V4.B16, V4.B16
AESE V1.B16, V5.B16
AESMC V5.B16, V5.B16
AESE V2.B16, V6.B16
AESMC V6.B16, V6.B16
AESE V3.B16, V7.B16
AESMC V7.B16, V7.B16
AESE V0.B16, V4.B16
AESE V1.B16, V5.B16
AESE V2.B16, V6.B16
AESE V3.B16, V7.B16
VEOR V6.B16, V4.B16, V4.B16
VEOR V7.B16, V5.B16, V5.B16
VEOR V5.B16, V4.B16, V4.B16
VMOV V4.D[0], R0
RET
aes65to128:
VLD1.P 64(R4), [V1.B16, V2.B16, V3.B16, V4.B16]
VLD1 (R4), [V5.B16, V6.B16, V7.B16]
AESE V30.B16, V1.B16
AESMC V1.B16, V1.B16
AESE V30.B16, V2.B16
AESMC V2.B16, V2.B16
AESE V30.B16, V3.B16
AESMC V3.B16, V3.B16
AESE V30.B16, V4.B16
AESMC V4.B16, V4.B16
AESE V30.B16, V5.B16
AESMC V5.B16, V5.B16
AESE V30.B16, V6.B16
AESMC V6.B16, V6.B16
AESE V30.B16, V7.B16
AESMC V7.B16, V7.B16
SUB $64, R2, R10
VLD1.P (R0)(R10), [V8.B16, V9.B16, V10.B16, V11.B16]
VLD1 (R0), [V12.B16, V13.B16, V14.B16, V15.B16]
AESE V0.B16, V8.B16
AESMC V8.B16, V8.B16
AESE V1.B16, V9.B16
AESMC V9.B16, V9.B16
AESE V2.B16, V10.B16
AESMC V10.B16, V10.B16
AESE V3.B16, V11.B16
AESMC V11.B16, V11.B16
AESE V4.B16, V12.B16
AESMC V12.B16, V12.B16
AESE V5.B16, V13.B16
AESMC V13.B16, V13.B16
AESE V6.B16, V14.B16
AESMC V14.B16, V14.B16
AESE V7.B16, V15.B16
AESMC V15.B16, V15.B16
AESE V0.B16, V8.B16
AESMC V8.B16, V8.B16
AESE V1.B16, V9.B16
AESMC V9.B16, V9.B16
AESE V2.B16, V10.B16
AESMC V10.B16, V10.B16
AESE V3.B16, V11.B16
AESMC V11.B16, V11.B16
AESE V4.B16, V12.B16
AESMC V12.B16, V12.B16
AESE V5.B16, V13.B16
AESMC V13.B16, V13.B16
AESE V6.B16, V14.B16
AESMC V14.B16, V14.B16
AESE V7.B16, V15.B16
AESMC V15.B16, V15.B16
AESE V0.B16, V8.B16
AESE V1.B16, V9.B16
AESE V2.B16, V10.B16
AESE V3.B16, V11.B16
AESE V4.B16, V12.B16
AESE V5.B16, V13.B16
AESE V6.B16, V14.B16
AESE V7.B16, V15.B16
VEOR V12.B16, V8.B16, V8.B16
VEOR V13.B16, V9.B16, V9.B16
VEOR V14.B16, V10.B16, V10.B16
VEOR V15.B16, V11.B16, V11.B16
VEOR V10.B16, V8.B16, V8.B16
VEOR V11.B16, V9.B16, V9.B16
VEOR V9.B16, V8.B16, V8.B16
VMOV V8.D[0], R0
RET
aes129plus:
PRFM (R0), PLDL1KEEP
VLD1.P 64(R4), [V1.B16, V2.B16, V3.B16, V4.B16]
VLD1 (R4), [V5.B16, V6.B16, V7.B16]
AESE V30.B16, V1.B16
AESMC V1.B16, V1.B16
AESE V30.B16, V2.B16
AESMC V2.B16, V2.B16
AESE V30.B16, V3.B16
AESMC V3.B16, V3.B16
AESE V30.B16, V4.B16
AESMC V4.B16, V4.B16
AESE V30.B16, V5.B16
AESMC V5.B16, V5.B16
AESE V30.B16, V6.B16
AESMC V6.B16, V6.B16
AESE V30.B16, V7.B16
AESMC V7.B16, V7.B16
ADD R0, R2, R10
SUB $128, R10, R10
VLD1.P 64(R10), [V8.B16, V9.B16, V10.B16, V11.B16]
VLD1 (R10), [V12.B16, V13.B16, V14.B16, V15.B16]
SUB $1, R2, R2
LSR $7, R2, R2
aesloop:
AESE V8.B16, V0.B16
AESMC V0.B16, V0.B16
AESE V9.B16, V1.B16
AESMC V1.B16, V1.B16
AESE V10.B16, V2.B16
AESMC V2.B16, V2.B16
AESE V11.B16, V3.B16
AESMC V3.B16, V3.B16
AESE V12.B16, V4.B16
AESMC V4.B16, V4.B16
AESE V13.B16, V5.B16
AESMC V5.B16, V5.B16
AESE V14.B16, V6.B16
AESMC V6.B16, V6.B16
AESE V15.B16, V7.B16
AESMC V7.B16, V7.B16
VLD1.P 64(R0), [V8.B16, V9.B16, V10.B16, V11.B16]
AESE V8.B16, V0.B16
AESMC V0.B16, V0.B16
AESE V9.B16, V1.B16
AESMC V1.B16, V1.B16
AESE V10.B16, V2.B16
AESMC V2.B16, V2.B16
AESE V11.B16, V3.B16
AESMC V3.B16, V3.B16
VLD1.P 64(R0), [V12.B16, V13.B16, V14.B16, V15.B16]
AESE V12.B16, V4.B16
AESMC V4.B16, V4.B16
AESE V13.B16, V5.B16
AESMC V5.B16, V5.B16
AESE V14.B16, V6.B16
AESMC V6.B16, V6.B16
AESE V15.B16, V7.B16
AESMC V7.B16, V7.B16
SUB $1, R2, R2
CBNZ R2, aesloop
AESE V8.B16, V0.B16
AESMC V0.B16, V0.B16
AESE V9.B16, V1.B16
AESMC V1.B16, V1.B16
AESE V10.B16, V2.B16
AESMC V2.B16, V2.B16
AESE V11.B16, V3.B16
AESMC V3.B16, V3.B16
AESE V12.B16, V4.B16
AESMC V4.B16, V4.B16
AESE V13.B16, V5.B16
AESMC V5.B16, V5.B16
AESE V14.B16, V6.B16
AESMC V6.B16, V6.B16
AESE V15.B16, V7.B16
AESMC V7.B16, V7.B16
AESE V8.B16, V0.B16
AESMC V0.B16, V0.B16
AESE V9.B16, V1.B16
AESMC V1.B16, V1.B16
AESE V10.B16, V2.B16
AESMC V2.B16, V2.B16
AESE V11.B16, V3.B16
AESMC V3.B16, V3.B16
AESE V12.B16, V4.B16
AESMC V4.B16, V4.B16
AESE V13.B16, V5.B16
AESMC V5.B16, V5.B16
AESE V14.B16, V6.B16
AESMC V6.B16, V6.B16
AESE V15.B16, V7.B16
AESMC V7.B16, V7.B16
AESE V8.B16, V0.B16
AESE V9.B16, V1.B16
AESE V10.B16, V2.B16
AESE V11.B16, V3.B16
AESE V12.B16, V4.B16
AESE V13.B16, V5.B16
AESE V14.B16, V6.B16
AESE V15.B16, V7.B16
VEOR V0.B16, V1.B16, V0.B16
VEOR V2.B16, V3.B16, V2.B16
VEOR V4.B16, V5.B16, V4.B16
VEOR V6.B16, V7.B16, V6.B16
VEOR V0.B16, V2.B16, V0.B16
VEOR V4.B16, V6.B16, V4.B16
VEOR V4.B16, V0.B16, V0.B16
VMOV V0.D[0], R0
RET
TEXT runtime·procyield(SB),NOSPLIT,$0-0
MOVWU cycles+0(FP), R0
again:
YIELD
SUBW $1, R0
CBNZ R0, again
RET
// Save state of caller into g->sched,
// but using fake PC from systemstack_switch.
// Must only be called from functions with no locals ($0)
// or else unwinding from systemstack_switch is incorrect.
// Smashes R0.
TEXT gosave_systemstack_switch<>(SB),NOSPLIT|NOFRAME,$0
MOVD $runtime·systemstack_switch(SB), R0
ADD $8, R0 // get past prologue
MOVD R0, (g_sched+gobuf_pc)(g)
MOVD RSP, R0
MOVD R0, (g_sched+gobuf_sp)(g)
MOVD R29, (g_sched+gobuf_bp)(g)
MOVD $0, (g_sched+gobuf_lr)(g)
MOVD $0, (g_sched+gobuf_ret)(g)
// Assert ctxt is zero. See func save.
MOVD (g_sched+gobuf_ctxt)(g), R0
CBZ R0, 2(PC)
CALL runtime·abort(SB)
RET
// func asmcgocall_no_g(fn, arg unsafe.Pointer)
// Call fn(arg) aligned appropriately for the gcc ABI.
// Called on a system stack, and there may be no g yet (during needm).
TEXT ·asmcgocall_no_g(SB),NOSPLIT,$0-16
MOVD fn+0(FP), R1
MOVD arg+8(FP), R0
SUB $16, RSP // skip over saved frame pointer below RSP
BL (R1)
ADD $16, RSP // skip over saved frame pointer below RSP
RET
// func asmcgocall(fn, arg unsafe.Pointer) int32
// Call fn(arg) on the scheduler stack,
// aligned appropriately for the gcc ABI.
// See cgocall.go for more details.
TEXT ·asmcgocall(SB),NOSPLIT,$0-20
MOVD fn+0(FP), R1
MOVD arg+8(FP), R0
MOVD RSP, R2 // save original stack pointer
CBZ g, nosave
MOVD g, R4
// Figure out if we need to switch to m->g0 stack.
// We get called to create new OS threads too, and those
// come in on the m->g0 stack already. Or we might already
// be on the m->gsignal stack.
MOVD g_m(g), R8
MOVD m_gsignal(R8), R3
CMP R3, g
BEQ nosave
MOVD m_g0(R8), R3
CMP R3, g
BEQ nosave
// Switch to system stack.
MOVD R0, R9 // gosave_systemstack_switch<> and save_g might clobber R0
BL gosave_systemstack_switch<>(SB)
MOVD R3, g
BL runtime·save_g(SB)
MOVD (g_sched+gobuf_sp)(g), R0
MOVD R0, RSP
MOVD (g_sched+gobuf_bp)(g), R29
MOVD R9, R0
// Now on a scheduling stack (a pthread-created stack).
// Save room for two of our pointers /*, plus 32 bytes of callee
// save area that lives on the caller stack. */
MOVD RSP, R13
SUB $16, R13
MOVD R13, RSP
MOVD R4, 0(RSP) // save old g on stack
MOVD (g_stack+stack_hi)(R4), R4
SUB R2, R4
MOVD R4, 8(RSP) // save depth in old g stack (can't just save SP, as stack might be copied during a callback)
BL (R1)
MOVD R0, R9
// Restore g, stack pointer. R0 is errno, so don't touch it
MOVD 0(RSP), g
BL runtime·save_g(SB)
MOVD (g_stack+stack_hi)(g), R5
MOVD 8(RSP), R6
SUB R6, R5
MOVD R9, R0
MOVD R5, RSP
MOVW R0, ret+16(FP)
RET
nosave:
// Running on a system stack, perhaps even without a g.
// Having no g can happen during thread creation or thread teardown
// (see needm/dropm on Solaris, for example).
// This code is like the above sequence but without saving/restoring g
// and without worrying about the stack moving out from under us
// (because we're on a system stack, not a goroutine stack).
// The above code could be used directly if already on a system stack,
// but then the only path through this code would be a rare case on Solaris.
// Using this code for all "already on system stack" calls exercises it more,
// which should help keep it correct.
MOVD RSP, R13
SUB $16, R13
MOVD R13, RSP
MOVD $0, R4
MOVD R4, 0(RSP) // Where above code stores g, in case someone looks during debugging.
MOVD R2, 8(RSP) // Save original stack pointer.
BL (R1)
// Restore stack pointer.
MOVD 8(RSP), R2
MOVD R2, RSP
MOVD R0, ret+16(FP)
RET
// cgocallback(fn, frame unsafe.Pointer, ctxt uintptr)
// See cgocall.go for more details.
TEXT ·cgocallback(SB),NOSPLIT,$24-24
NO_LOCAL_POINTERS
// Load g from thread-local storage.