18c2ecf20Sopenharmony_ci/* SPDX-License-Identifier: GPL-2.0 */
28c2ecf20Sopenharmony_ci/*
38c2ecf20Sopenharmony_ci * arch/alpha/lib/ev6-stxcpy.S
48c2ecf20Sopenharmony_ci * 21264 version contributed by Rick Gorton <rick.gorton@alpha-processor.com>
58c2ecf20Sopenharmony_ci *
68c2ecf20Sopenharmony_ci * Copy a null-terminated string from SRC to DST.
78c2ecf20Sopenharmony_ci *
88c2ecf20Sopenharmony_ci * This is an internal routine used by strcpy, stpcpy, and strcat.
98c2ecf20Sopenharmony_ci * As such, it uses special linkage conventions to make implementation
108c2ecf20Sopenharmony_ci * of these public functions more efficient.
118c2ecf20Sopenharmony_ci *
128c2ecf20Sopenharmony_ci * On input:
138c2ecf20Sopenharmony_ci *	t9 = return address
148c2ecf20Sopenharmony_ci *	a0 = DST
158c2ecf20Sopenharmony_ci *	a1 = SRC
168c2ecf20Sopenharmony_ci *
178c2ecf20Sopenharmony_ci * On output:
188c2ecf20Sopenharmony_ci *	t12 = bitmask (with one bit set) indicating the last byte written
198c2ecf20Sopenharmony_ci *	a0  = unaligned address of the last *word* written
208c2ecf20Sopenharmony_ci *
218c2ecf20Sopenharmony_ci * Furthermore, v0, a3-a5, t11, and t12 are untouched.
228c2ecf20Sopenharmony_ci *
238c2ecf20Sopenharmony_ci * Much of the information about 21264 scheduling/coding comes from:
248c2ecf20Sopenharmony_ci *	Compiler Writer's Guide for the Alpha 21264
258c2ecf20Sopenharmony_ci *	abbreviated as 'CWG' in other comments here
268c2ecf20Sopenharmony_ci *	ftp.digital.com/pub/Digital/info/semiconductor/literature/dsc-library.html
278c2ecf20Sopenharmony_ci * Scheduling notation:
288c2ecf20Sopenharmony_ci *	E	- either cluster
298c2ecf20Sopenharmony_ci *	U	- upper subcluster; U0 - subcluster U0; U1 - subcluster U1
308c2ecf20Sopenharmony_ci *	L	- lower subcluster; L0 - subcluster L0; L1 - subcluster L1
318c2ecf20Sopenharmony_ci * Try not to change the actual algorithm if possible for consistency.
328c2ecf20Sopenharmony_ci */
338c2ecf20Sopenharmony_ci
348c2ecf20Sopenharmony_ci#include <asm/regdef.h>
358c2ecf20Sopenharmony_ci
368c2ecf20Sopenharmony_ci	.set noat
378c2ecf20Sopenharmony_ci	.set noreorder
388c2ecf20Sopenharmony_ci
398c2ecf20Sopenharmony_ci	.text
408c2ecf20Sopenharmony_ci
418c2ecf20Sopenharmony_ci/* There is a problem with either gdb (as of 4.16) or gas (as of 2.7) that
428c2ecf20Sopenharmony_ci   doesn't like putting the entry point for a procedure somewhere in the
438c2ecf20Sopenharmony_ci   middle of the procedure descriptor.  Work around this by putting the
448c2ecf20Sopenharmony_ci   aligned copy in its own procedure descriptor */
458c2ecf20Sopenharmony_ci
468c2ecf20Sopenharmony_ci
478c2ecf20Sopenharmony_ci	.ent stxcpy_aligned
488c2ecf20Sopenharmony_ci	.align 4
498c2ecf20Sopenharmony_cistxcpy_aligned:
508c2ecf20Sopenharmony_ci	.frame sp, 0, t9
518c2ecf20Sopenharmony_ci	.prologue 0
528c2ecf20Sopenharmony_ci
538c2ecf20Sopenharmony_ci	/* On entry to this basic block:
548c2ecf20Sopenharmony_ci	   t0 == the first destination word for masking back in
558c2ecf20Sopenharmony_ci	   t1 == the first source word.  */
568c2ecf20Sopenharmony_ci
578c2ecf20Sopenharmony_ci	/* Create the 1st output word and detect 0's in the 1st input word.  */
588c2ecf20Sopenharmony_ci	lda	t2, -1		# E : build a mask against false zero
598c2ecf20Sopenharmony_ci	mskqh	t2, a1, t2	# U :   detection in the src word (stall)
608c2ecf20Sopenharmony_ci	mskqh	t1, a1, t3	# U :
618c2ecf20Sopenharmony_ci	ornot	t1, t2, t2	# E : (stall)
628c2ecf20Sopenharmony_ci
638c2ecf20Sopenharmony_ci	mskql	t0, a1, t0	# U : assemble the first output word
648c2ecf20Sopenharmony_ci	cmpbge	zero, t2, t8	# E : bits set iff null found
658c2ecf20Sopenharmony_ci	or	t0, t3, t1	# E : (stall)
668c2ecf20Sopenharmony_ci	bne	t8, $a_eos	# U : (stall)
678c2ecf20Sopenharmony_ci
688c2ecf20Sopenharmony_ci	/* On entry to this basic block:
698c2ecf20Sopenharmony_ci	   t0 == the first destination word for masking back in
708c2ecf20Sopenharmony_ci	   t1 == a source word not containing a null.  */
718c2ecf20Sopenharmony_ci	/* Nops here to separate store quads from load quads */
728c2ecf20Sopenharmony_ci
738c2ecf20Sopenharmony_ci$a_loop:
748c2ecf20Sopenharmony_ci	stq_u	t1, 0(a0)	# L :
758c2ecf20Sopenharmony_ci	addq	a0, 8, a0	# E :
768c2ecf20Sopenharmony_ci	nop
778c2ecf20Sopenharmony_ci	nop
788c2ecf20Sopenharmony_ci
798c2ecf20Sopenharmony_ci	ldq_u	t1, 0(a1)	# L : Latency=3
808c2ecf20Sopenharmony_ci	addq	a1, 8, a1	# E :
818c2ecf20Sopenharmony_ci	cmpbge	zero, t1, t8	# E : (3 cycle stall)
828c2ecf20Sopenharmony_ci	beq	t8, $a_loop	# U : (stall for t8)
838c2ecf20Sopenharmony_ci
848c2ecf20Sopenharmony_ci	/* Take care of the final (partial) word store.
858c2ecf20Sopenharmony_ci	   On entry to this basic block we have:
868c2ecf20Sopenharmony_ci	   t1 == the source word containing the null
878c2ecf20Sopenharmony_ci	   t8 == the cmpbge mask that found it.  */
888c2ecf20Sopenharmony_ci$a_eos:
898c2ecf20Sopenharmony_ci	negq	t8, t6		# E : find low bit set
908c2ecf20Sopenharmony_ci	and	t8, t6, t12	# E : (stall)
918c2ecf20Sopenharmony_ci	/* For the sake of the cache, don't read a destination word
928c2ecf20Sopenharmony_ci	   if we're not going to need it.  */
938c2ecf20Sopenharmony_ci	and	t12, 0x80, t6	# E : (stall)
948c2ecf20Sopenharmony_ci	bne	t6, 1f		# U : (stall)
958c2ecf20Sopenharmony_ci
968c2ecf20Sopenharmony_ci	/* We're doing a partial word store and so need to combine
978c2ecf20Sopenharmony_ci	   our source and original destination words.  */
988c2ecf20Sopenharmony_ci	ldq_u	t0, 0(a0)	# L : Latency=3
998c2ecf20Sopenharmony_ci	subq	t12, 1, t6	# E :
1008c2ecf20Sopenharmony_ci	zapnot	t1, t6, t1	# U : clear src bytes >= null (stall)
1018c2ecf20Sopenharmony_ci	or	t12, t6, t8	# E : (stall)
1028c2ecf20Sopenharmony_ci
1038c2ecf20Sopenharmony_ci	zap	t0, t8, t0	# E : clear dst bytes <= null
1048c2ecf20Sopenharmony_ci	or	t0, t1, t1	# E : (stall)
1058c2ecf20Sopenharmony_ci	nop
1068c2ecf20Sopenharmony_ci	nop
1078c2ecf20Sopenharmony_ci
1088c2ecf20Sopenharmony_ci1:	stq_u	t1, 0(a0)	# L :
1098c2ecf20Sopenharmony_ci	ret	(t9)		# L0 : Latency=3
1108c2ecf20Sopenharmony_ci	nop
1118c2ecf20Sopenharmony_ci	nop
1128c2ecf20Sopenharmony_ci
1138c2ecf20Sopenharmony_ci	.end stxcpy_aligned
1148c2ecf20Sopenharmony_ci
1158c2ecf20Sopenharmony_ci	.align 4
1168c2ecf20Sopenharmony_ci	.ent __stxcpy
1178c2ecf20Sopenharmony_ci	.globl __stxcpy
1188c2ecf20Sopenharmony_ci__stxcpy:
1198c2ecf20Sopenharmony_ci	.frame sp, 0, t9
1208c2ecf20Sopenharmony_ci	.prologue 0
1218c2ecf20Sopenharmony_ci
1228c2ecf20Sopenharmony_ci	/* Are source and destination co-aligned?  */
1238c2ecf20Sopenharmony_ci	xor	a0, a1, t0	# E :
1248c2ecf20Sopenharmony_ci	unop			# E :
1258c2ecf20Sopenharmony_ci	and	t0, 7, t0	# E : (stall)
1268c2ecf20Sopenharmony_ci	bne	t0, $unaligned	# U : (stall)
1278c2ecf20Sopenharmony_ci
1288c2ecf20Sopenharmony_ci	/* We are co-aligned; take care of a partial first word.  */
1298c2ecf20Sopenharmony_ci	ldq_u	t1, 0(a1)		# L : load first src word
1308c2ecf20Sopenharmony_ci	and	a0, 7, t0		# E : take care not to load a word ...
1318c2ecf20Sopenharmony_ci	addq	a1, 8, a1		# E :
1328c2ecf20Sopenharmony_ci	beq	t0, stxcpy_aligned	# U : ... if we wont need it (stall)
1338c2ecf20Sopenharmony_ci
1348c2ecf20Sopenharmony_ci	ldq_u	t0, 0(a0)	# L :
1358c2ecf20Sopenharmony_ci	br	stxcpy_aligned	# L0 : Latency=3
1368c2ecf20Sopenharmony_ci	nop
1378c2ecf20Sopenharmony_ci	nop
1388c2ecf20Sopenharmony_ci
1398c2ecf20Sopenharmony_ci
1408c2ecf20Sopenharmony_ci/* The source and destination are not co-aligned.  Align the destination
1418c2ecf20Sopenharmony_ci   and cope.  We have to be very careful about not reading too much and
1428c2ecf20Sopenharmony_ci   causing a SEGV.  */
1438c2ecf20Sopenharmony_ci
1448c2ecf20Sopenharmony_ci	.align 4
1458c2ecf20Sopenharmony_ci$u_head:
1468c2ecf20Sopenharmony_ci	/* We know just enough now to be able to assemble the first
1478c2ecf20Sopenharmony_ci	   full source word.  We can still find a zero at the end of it
1488c2ecf20Sopenharmony_ci	   that prevents us from outputting the whole thing.
1498c2ecf20Sopenharmony_ci
1508c2ecf20Sopenharmony_ci	   On entry to this basic block:
1518c2ecf20Sopenharmony_ci	   t0 == the first dest word, for masking back in, if needed else 0
1528c2ecf20Sopenharmony_ci	   t1 == the low bits of the first source word
1538c2ecf20Sopenharmony_ci	   t6 == bytemask that is -1 in dest word bytes */
1548c2ecf20Sopenharmony_ci
1558c2ecf20Sopenharmony_ci	ldq_u	t2, 8(a1)	# L :
1568c2ecf20Sopenharmony_ci	addq	a1, 8, a1	# E :
1578c2ecf20Sopenharmony_ci	extql	t1, a1, t1	# U : (stall on a1)
1588c2ecf20Sopenharmony_ci	extqh	t2, a1, t4	# U : (stall on a1)
1598c2ecf20Sopenharmony_ci
1608c2ecf20Sopenharmony_ci	mskql	t0, a0, t0	# U :
1618c2ecf20Sopenharmony_ci	or	t1, t4, t1	# E :
1628c2ecf20Sopenharmony_ci	mskqh	t1, a0, t1	# U : (stall on t1)
1638c2ecf20Sopenharmony_ci	or	t0, t1, t1	# E : (stall on t1)
1648c2ecf20Sopenharmony_ci
1658c2ecf20Sopenharmony_ci	or	t1, t6, t6	# E :
1668c2ecf20Sopenharmony_ci	cmpbge	zero, t6, t8	# E : (stall)
1678c2ecf20Sopenharmony_ci	lda	t6, -1		# E : for masking just below
1688c2ecf20Sopenharmony_ci	bne	t8, $u_final	# U : (stall)
1698c2ecf20Sopenharmony_ci
1708c2ecf20Sopenharmony_ci	mskql	t6, a1, t6		# U : mask out the bits we have
1718c2ecf20Sopenharmony_ci	or	t6, t2, t2		# E :   already extracted before (stall)
1728c2ecf20Sopenharmony_ci	cmpbge	zero, t2, t8		# E :   testing eos (stall)
1738c2ecf20Sopenharmony_ci	bne	t8, $u_late_head_exit	# U : (stall)
1748c2ecf20Sopenharmony_ci
1758c2ecf20Sopenharmony_ci	/* Finally, we've got all the stupid leading edge cases taken care
1768c2ecf20Sopenharmony_ci	   of and we can set up to enter the main loop.  */
1778c2ecf20Sopenharmony_ci
1788c2ecf20Sopenharmony_ci	stq_u	t1, 0(a0)	# L : store first output word
1798c2ecf20Sopenharmony_ci	addq	a0, 8, a0	# E :
1808c2ecf20Sopenharmony_ci	extql	t2, a1, t0	# U : position ho-bits of lo word
1818c2ecf20Sopenharmony_ci	ldq_u	t2, 8(a1)	# U : read next high-order source word
1828c2ecf20Sopenharmony_ci
1838c2ecf20Sopenharmony_ci	addq	a1, 8, a1	# E :
1848c2ecf20Sopenharmony_ci	cmpbge	zero, t2, t8	# E : (stall for t2)
1858c2ecf20Sopenharmony_ci	nop			# E :
1868c2ecf20Sopenharmony_ci	bne	t8, $u_eos	# U : (stall)
1878c2ecf20Sopenharmony_ci
1888c2ecf20Sopenharmony_ci	/* Unaligned copy main loop.  In order to avoid reading too much,
1898c2ecf20Sopenharmony_ci	   the loop is structured to detect zeros in aligned source words.
1908c2ecf20Sopenharmony_ci	   This has, unfortunately, effectively pulled half of a loop
1918c2ecf20Sopenharmony_ci	   iteration out into the head and half into the tail, but it does
1928c2ecf20Sopenharmony_ci	   prevent nastiness from accumulating in the very thing we want
1938c2ecf20Sopenharmony_ci	   to run as fast as possible.
1948c2ecf20Sopenharmony_ci
1958c2ecf20Sopenharmony_ci	   On entry to this basic block:
1968c2ecf20Sopenharmony_ci	   t0 == the shifted high-order bits from the previous source word
1978c2ecf20Sopenharmony_ci	   t2 == the unshifted current source word
1988c2ecf20Sopenharmony_ci
1998c2ecf20Sopenharmony_ci	   We further know that t2 does not contain a null terminator.  */
2008c2ecf20Sopenharmony_ci
2018c2ecf20Sopenharmony_ci	.align 3
2028c2ecf20Sopenharmony_ci$u_loop:
2038c2ecf20Sopenharmony_ci	extqh	t2, a1, t1	# U : extract high bits for current word
2048c2ecf20Sopenharmony_ci	addq	a1, 8, a1	# E : (stall)
2058c2ecf20Sopenharmony_ci	extql	t2, a1, t3	# U : extract low bits for next time (stall)
2068c2ecf20Sopenharmony_ci	addq	a0, 8, a0	# E :
2078c2ecf20Sopenharmony_ci
2088c2ecf20Sopenharmony_ci	or	t0, t1, t1	# E : current dst word now complete
2098c2ecf20Sopenharmony_ci	ldq_u	t2, 0(a1)	# L : Latency=3 load high word for next time
2108c2ecf20Sopenharmony_ci	stq_u	t1, -8(a0)	# L : save the current word (stall)
2118c2ecf20Sopenharmony_ci	mov	t3, t0		# E :
2128c2ecf20Sopenharmony_ci
2138c2ecf20Sopenharmony_ci	cmpbge	zero, t2, t8	# E : test new word for eos
2148c2ecf20Sopenharmony_ci	beq	t8, $u_loop	# U : (stall)
2158c2ecf20Sopenharmony_ci	nop
2168c2ecf20Sopenharmony_ci	nop
2178c2ecf20Sopenharmony_ci
2188c2ecf20Sopenharmony_ci	/* We've found a zero somewhere in the source word we just read.
2198c2ecf20Sopenharmony_ci	   If it resides in the lower half, we have one (probably partial)
2208c2ecf20Sopenharmony_ci	   word to write out, and if it resides in the upper half, we
2218c2ecf20Sopenharmony_ci	   have one full and one partial word left to write out.
2228c2ecf20Sopenharmony_ci
2238c2ecf20Sopenharmony_ci	   On entry to this basic block:
2248c2ecf20Sopenharmony_ci	   t0 == the shifted high-order bits from the previous source word
2258c2ecf20Sopenharmony_ci	   t2 == the unshifted current source word.  */
2268c2ecf20Sopenharmony_ci$u_eos:
2278c2ecf20Sopenharmony_ci	extqh	t2, a1, t1	# U :
2288c2ecf20Sopenharmony_ci	or	t0, t1, t1	# E : first (partial) source word complete (stall)
2298c2ecf20Sopenharmony_ci	cmpbge	zero, t1, t8	# E : is the null in this first bit? (stall)
2308c2ecf20Sopenharmony_ci	bne	t8, $u_final	# U : (stall)
2318c2ecf20Sopenharmony_ci
2328c2ecf20Sopenharmony_ci$u_late_head_exit:
2338c2ecf20Sopenharmony_ci	stq_u	t1, 0(a0)	# L : the null was in the high-order bits
2348c2ecf20Sopenharmony_ci	addq	a0, 8, a0	# E :
2358c2ecf20Sopenharmony_ci	extql	t2, a1, t1	# U :
2368c2ecf20Sopenharmony_ci	cmpbge	zero, t1, t8	# E : (stall)
2378c2ecf20Sopenharmony_ci
2388c2ecf20Sopenharmony_ci	/* Take care of a final (probably partial) result word.
2398c2ecf20Sopenharmony_ci	   On entry to this basic block:
2408c2ecf20Sopenharmony_ci	   t1 == assembled source word
2418c2ecf20Sopenharmony_ci	   t8 == cmpbge mask that found the null.  */
2428c2ecf20Sopenharmony_ci$u_final:
2438c2ecf20Sopenharmony_ci	negq	t8, t6		# E : isolate low bit set
2448c2ecf20Sopenharmony_ci	and	t6, t8, t12	# E : (stall)
2458c2ecf20Sopenharmony_ci	and	t12, 0x80, t6	# E : avoid dest word load if we can (stall)
2468c2ecf20Sopenharmony_ci	bne	t6, 1f		# U : (stall)
2478c2ecf20Sopenharmony_ci
2488c2ecf20Sopenharmony_ci	ldq_u	t0, 0(a0)	# E :
2498c2ecf20Sopenharmony_ci	subq	t12, 1, t6	# E :
2508c2ecf20Sopenharmony_ci	or	t6, t12, t8	# E : (stall)
2518c2ecf20Sopenharmony_ci	zapnot	t1, t6, t1	# U : kill source bytes >= null (stall)
2528c2ecf20Sopenharmony_ci
2538c2ecf20Sopenharmony_ci	zap	t0, t8, t0	# U : kill dest bytes <= null (2 cycle data stall)
2548c2ecf20Sopenharmony_ci	or	t0, t1, t1	# E : (stall)
2558c2ecf20Sopenharmony_ci	nop
2568c2ecf20Sopenharmony_ci	nop
2578c2ecf20Sopenharmony_ci
2588c2ecf20Sopenharmony_ci1:	stq_u	t1, 0(a0)	# L :
2598c2ecf20Sopenharmony_ci	ret	(t9)		# L0 : Latency=3
2608c2ecf20Sopenharmony_ci	nop
2618c2ecf20Sopenharmony_ci	nop
2628c2ecf20Sopenharmony_ci
2638c2ecf20Sopenharmony_ci	/* Unaligned copy entry point.  */
2648c2ecf20Sopenharmony_ci	.align 4
2658c2ecf20Sopenharmony_ci$unaligned:
2668c2ecf20Sopenharmony_ci
2678c2ecf20Sopenharmony_ci	ldq_u	t1, 0(a1)	# L : load first source word
2688c2ecf20Sopenharmony_ci	and	a0, 7, t4	# E : find dest misalignment
2698c2ecf20Sopenharmony_ci	and	a1, 7, t5	# E : find src misalignment
2708c2ecf20Sopenharmony_ci	/* Conditionally load the first destination word and a bytemask
2718c2ecf20Sopenharmony_ci	   with 0xff indicating that the destination byte is sacrosanct.  */
2728c2ecf20Sopenharmony_ci	mov	zero, t0	# E :
2738c2ecf20Sopenharmony_ci
2748c2ecf20Sopenharmony_ci	mov	zero, t6	# E :
2758c2ecf20Sopenharmony_ci	beq	t4, 1f		# U :
2768c2ecf20Sopenharmony_ci	ldq_u	t0, 0(a0)	# L :
2778c2ecf20Sopenharmony_ci	lda	t6, -1		# E :
2788c2ecf20Sopenharmony_ci
2798c2ecf20Sopenharmony_ci	mskql	t6, a0, t6	# U :
2808c2ecf20Sopenharmony_ci	nop
2818c2ecf20Sopenharmony_ci	nop
2828c2ecf20Sopenharmony_ci	nop
2838c2ecf20Sopenharmony_ci1:
2848c2ecf20Sopenharmony_ci	subq	a1, t4, a1	# E : sub dest misalignment from src addr
2858c2ecf20Sopenharmony_ci	/* If source misalignment is larger than dest misalignment, we need
2868c2ecf20Sopenharmony_ci	   extra startup checks to avoid SEGV.  */
2878c2ecf20Sopenharmony_ci	cmplt	t4, t5, t12	# E :
2888c2ecf20Sopenharmony_ci	beq	t12, $u_head	# U :
2898c2ecf20Sopenharmony_ci	lda	t2, -1		# E : mask out leading garbage in source
2908c2ecf20Sopenharmony_ci
2918c2ecf20Sopenharmony_ci	mskqh	t2, t5, t2	# U :
2928c2ecf20Sopenharmony_ci	ornot	t1, t2, t3	# E : (stall)
2938c2ecf20Sopenharmony_ci	cmpbge	zero, t3, t8	# E : is there a zero? (stall)
2948c2ecf20Sopenharmony_ci	beq	t8, $u_head	# U : (stall)
2958c2ecf20Sopenharmony_ci
2968c2ecf20Sopenharmony_ci	/* At this point we've found a zero in the first partial word of
2978c2ecf20Sopenharmony_ci	   the source.  We need to isolate the valid source data and mask
2988c2ecf20Sopenharmony_ci	   it into the original destination data.  (Incidentally, we know
2998c2ecf20Sopenharmony_ci	   that we'll need at least one byte of that original dest word.) */
3008c2ecf20Sopenharmony_ci
3018c2ecf20Sopenharmony_ci	ldq_u	t0, 0(a0)	# L :
3028c2ecf20Sopenharmony_ci	negq	t8, t6		# E : build bitmask of bytes <= zero
3038c2ecf20Sopenharmony_ci	and	t6, t8, t12	# E : (stall)
3048c2ecf20Sopenharmony_ci	and	a1, 7, t5	# E :
3058c2ecf20Sopenharmony_ci
3068c2ecf20Sopenharmony_ci	subq	t12, 1, t6	# E :
3078c2ecf20Sopenharmony_ci	or	t6, t12, t8	# E : (stall)
3088c2ecf20Sopenharmony_ci	srl	t12, t5, t12	# U : adjust final null return value
3098c2ecf20Sopenharmony_ci	zapnot	t2, t8, t2	# U : prepare source word; mirror changes (stall)
3108c2ecf20Sopenharmony_ci
3118c2ecf20Sopenharmony_ci	and	t1, t2, t1	# E : to source validity mask
3128c2ecf20Sopenharmony_ci	extql	t2, a1, t2	# U :
3138c2ecf20Sopenharmony_ci	extql	t1, a1, t1	# U : (stall)
3148c2ecf20Sopenharmony_ci	andnot	t0, t2, t0	# .. e1 : zero place for source to reside (stall)
3158c2ecf20Sopenharmony_ci
3168c2ecf20Sopenharmony_ci	or	t0, t1, t1	# e1    : and put it there
3178c2ecf20Sopenharmony_ci	stq_u	t1, 0(a0)	# .. e0 : (stall)
3188c2ecf20Sopenharmony_ci	ret	(t9)		# e1    :
3198c2ecf20Sopenharmony_ci	nop
3208c2ecf20Sopenharmony_ci
3218c2ecf20Sopenharmony_ci	.end __stxcpy
3228c2ecf20Sopenharmony_ci
323