xref: /openbmc/linux/arch/alpha/lib/ev6-memchr.S (revision 3ddc8b84)
1/* SPDX-License-Identifier: GPL-2.0 */
2/*
3 * arch/alpha/lib/ev6-memchr.S
4 *
5 * 21264 version contributed by Rick Gorton <rick.gorton@alpha-processor.com>
6 *
7 * Finds characters in a memory area.  Optimized for the Alpha:
8 *
9 *    - memory accessed as aligned quadwords only
10 *    - uses cmpbge to compare 8 bytes in parallel
11 *    - does binary search to find 0 byte in last
12 *      quadword (HAKMEM needed 12 instructions to
13 *      do this instead of the 9 instructions that
14 *      binary search needs).
15 *
16 * For correctness consider that:
17 *
18 *    - only minimum number of quadwords may be accessed
19 *    - the third argument is an unsigned long
20 *
21 * Much of the information about 21264 scheduling/coding comes from:
22 *	Compiler Writer's Guide for the Alpha 21264
23 *	abbreviated as 'CWG' in other comments here
24 *	ftp.digital.com/pub/Digital/info/semiconductor/literature/dsc-library.html
25 * Scheduling notation:
26 *	E	- either cluster
27 *	U	- upper subcluster; U0 - subcluster U0; U1 - subcluster U1
28 *	L	- lower subcluster; L0 - subcluster L0; L1 - subcluster L1
29 * Try not to change the actual algorithm if possible for consistency.
30 */
31#include <linux/export.h>
32        .set noreorder
33        .set noat
34
35	.align	4
36	.globl memchr
37	.ent memchr
38memchr:
39	.frame $30,0,$26,0
40	.prologue 0
41
42	# Hack -- if someone passes in (size_t)-1, hoping to just
43	# search til the end of the address space, we will overflow
44	# below when we find the address of the last byte.  Given
45	# that we will never have a 56-bit address space, cropping
46	# the length is the easiest way to avoid trouble.
47	zap	$18, 0x80, $5	# U : Bound length
48	beq	$18, $not_found	# U :
49        ldq_u   $1, 0($16)	# L : load first quadword Latency=3
50	and	$17, 0xff, $17	# E : L L U U : 00000000000000ch
51
52	insbl	$17, 1, $2	# U : 000000000000ch00
53	cmpult	$18, 9, $4	# E : small (< 1 quad) string?
54	or	$2, $17, $17	# E : 000000000000chch
55        lda     $3, -1($31)	# E : U L L U
56
57	sll	$17, 16, $2	# U : 00000000chch0000
58	addq	$16, $5, $5	# E : Max search address
59	or	$2, $17, $17	# E : 00000000chchchch
60	sll	$17, 32, $2	# U : U L L U : chchchch00000000
61
62	or	$2, $17, $17	# E : chchchchchchchch
63	extql	$1, $16, $7	# U : $7 is upper bits
64	beq	$4, $first_quad	# U :
65	ldq_u	$6, -1($5)	# L : L U U L : eight or less bytes to search Latency=3
66
67	extqh	$6, $16, $6	# U : 2 cycle stall for $6
68	mov	$16, $0		# E :
69	nop			# E :
70	or	$7, $6, $1	# E : L U L U $1 = quadword starting at $16
71
72	# Deal with the case where at most 8 bytes remain to be searched
73	# in $1.  E.g.:
74	#	$18 = 6
75	#	$1 = ????c6c5c4c3c2c1
76$last_quad:
77	negq	$18, $6		# E :
78        xor	$17, $1, $1	# E :
79	srl	$3, $6, $6	# U : $6 = mask of $18 bits set
80        cmpbge  $31, $1, $2	# E : L U L U
81
82	nop
83	nop
84	and	$2, $6, $2	# E :
85        beq     $2, $not_found	# U : U L U L
86
87$found_it:
88#ifdef CONFIG_ALPHA_EV67
89	/*
90	 * Since we are guaranteed to have set one of the bits, we don't
91	 * have to worry about coming back with a 0x40 out of cttz...
92	 */
93	cttz	$2, $3		# U0 :
94	addq	$0, $3, $0	# E : All done
95	nop			# E :
96	ret			# L0 : L U L U
97#else
98	/*
99	 * Slow and clunky.  It can probably be improved.
100	 * An exercise left for others.
101	 */
102        negq    $2, $3		# E :
103        and     $2, $3, $2	# E :
104        and     $2, 0x0f, $1	# E :
105        addq    $0, 4, $3	# E :
106
107        cmoveq  $1, $3, $0	# E : Latency 2, extra map cycle
108	nop			# E : keep with cmov
109        and     $2, 0x33, $1	# E :
110        addq    $0, 2, $3	# E : U L U L : 2 cycle stall on $0
111
112        cmoveq  $1, $3, $0	# E : Latency 2, extra map cycle
113	nop			# E : keep with cmov
114        and     $2, 0x55, $1	# E :
115        addq    $0, 1, $3	# E : U L U L : 2 cycle stall on $0
116
117        cmoveq  $1, $3, $0	# E : Latency 2, extra map cycle
118	nop
119	nop
120	ret			# L0 : L U L U
121#endif
122
123	# Deal with the case where $18 > 8 bytes remain to be
124	# searched.  $16 may not be aligned.
125	.align 4
126$first_quad:
127	andnot	$16, 0x7, $0	# E :
128        insqh   $3, $16, $2	# U : $2 = 0000ffffffffffff ($16<0:2> ff)
129        xor	$1, $17, $1	# E :
130	or	$1, $2, $1	# E : U L U L $1 = ====ffffffffffff
131
132        cmpbge  $31, $1, $2	# E :
133        bne     $2, $found_it	# U :
134	# At least one byte left to process.
135	ldq	$1, 8($0)	# L :
136	subq	$5, 1, $18	# E : U L U L
137
138	addq	$0, 8, $0	# E :
139	# Make $18 point to last quad to be accessed (the
140	# last quad may or may not be partial).
141	andnot	$18, 0x7, $18	# E :
142	cmpult	$0, $18, $2	# E :
143	beq	$2, $final	# U : U L U L
144
145	# At least two quads remain to be accessed.
146
147	subq	$18, $0, $4	# E : $4 <- nr quads to be processed
148	and	$4, 8, $4	# E : odd number of quads?
149	bne	$4, $odd_quad_count # U :
150	# At least three quads remain to be accessed
151	mov	$1, $4		# E : L U L U : move prefetched value to correct reg
152
153	.align	4
154$unrolled_loop:
155	ldq	$1, 8($0)	# L : prefetch $1
156	xor	$17, $4, $2	# E :
157	cmpbge	$31, $2, $2	# E :
158	bne	$2, $found_it	# U : U L U L
159
160	addq	$0, 8, $0	# E :
161	nop			# E :
162	nop			# E :
163	nop			# E :
164
165$odd_quad_count:
166	xor	$17, $1, $2	# E :
167	ldq	$4, 8($0)	# L : prefetch $4
168	cmpbge	$31, $2, $2	# E :
169	addq	$0, 8, $6	# E :
170
171	bne	$2, $found_it	# U :
172	cmpult	$6, $18, $6	# E :
173	addq	$0, 8, $0	# E :
174	nop			# E :
175
176	bne	$6, $unrolled_loop # U :
177	mov	$4, $1		# E : move prefetched value into $1
178	nop			# E :
179	nop			# E :
180
181$final:	subq	$5, $0, $18	# E : $18 <- number of bytes left to do
182	nop			# E :
183	nop			# E :
184	bne	$18, $last_quad	# U :
185
186$not_found:
187	mov	$31, $0		# E :
188	nop			# E :
189	nop			# E :
190	ret			# L0 :
191
192        .end memchr
193	EXPORT_SYMBOL(memchr)
194