xref: /OK3568_Linux_fs/kernel/arch/powerpc/include/asm/word-at-a-time.h (revision 4882a59341e53eb6f0b4789bf948001014eff981)
1*4882a593Smuzhiyun #ifndef _ASM_WORD_AT_A_TIME_H
2*4882a593Smuzhiyun #define _ASM_WORD_AT_A_TIME_H
3*4882a593Smuzhiyun 
4*4882a593Smuzhiyun /*
5*4882a593Smuzhiyun  * Word-at-a-time interfaces for PowerPC.
6*4882a593Smuzhiyun  */
7*4882a593Smuzhiyun 
8*4882a593Smuzhiyun #include <linux/kernel.h>
9*4882a593Smuzhiyun #include <asm/asm-compat.h>
10*4882a593Smuzhiyun #include <asm/ppc_asm.h>
11*4882a593Smuzhiyun 
12*4882a593Smuzhiyun #ifdef __BIG_ENDIAN__
13*4882a593Smuzhiyun 
14*4882a593Smuzhiyun struct word_at_a_time {
15*4882a593Smuzhiyun 	const unsigned long high_bits, low_bits;
16*4882a593Smuzhiyun };
17*4882a593Smuzhiyun 
18*4882a593Smuzhiyun #define WORD_AT_A_TIME_CONSTANTS { REPEAT_BYTE(0xfe) + 1, REPEAT_BYTE(0x7f) }
19*4882a593Smuzhiyun 
20*4882a593Smuzhiyun /* Bit set in the bytes that have a zero */
prep_zero_mask(unsigned long val,unsigned long rhs,const struct word_at_a_time * c)21*4882a593Smuzhiyun static inline long prep_zero_mask(unsigned long val, unsigned long rhs, const struct word_at_a_time *c)
22*4882a593Smuzhiyun {
23*4882a593Smuzhiyun 	unsigned long mask = (val & c->low_bits) + c->low_bits;
24*4882a593Smuzhiyun 	return ~(mask | rhs);
25*4882a593Smuzhiyun }
26*4882a593Smuzhiyun 
27*4882a593Smuzhiyun #define create_zero_mask(mask) (mask)
28*4882a593Smuzhiyun 
find_zero(unsigned long mask)29*4882a593Smuzhiyun static inline long find_zero(unsigned long mask)
30*4882a593Smuzhiyun {
31*4882a593Smuzhiyun 	long leading_zero_bits;
32*4882a593Smuzhiyun 
33*4882a593Smuzhiyun 	asm (PPC_CNTLZL "%0,%1" : "=r" (leading_zero_bits) : "r" (mask));
34*4882a593Smuzhiyun 	return leading_zero_bits >> 3;
35*4882a593Smuzhiyun }
36*4882a593Smuzhiyun 
has_zero(unsigned long val,unsigned long * data,const struct word_at_a_time * c)37*4882a593Smuzhiyun static inline bool has_zero(unsigned long val, unsigned long *data, const struct word_at_a_time *c)
38*4882a593Smuzhiyun {
39*4882a593Smuzhiyun 	unsigned long rhs = val | c->low_bits;
40*4882a593Smuzhiyun 	*data = rhs;
41*4882a593Smuzhiyun 	return (val + c->high_bits) & ~rhs;
42*4882a593Smuzhiyun }
43*4882a593Smuzhiyun 
zero_bytemask(unsigned long mask)44*4882a593Smuzhiyun static inline unsigned long zero_bytemask(unsigned long mask)
45*4882a593Smuzhiyun {
46*4882a593Smuzhiyun 	return ~1ul << __fls(mask);
47*4882a593Smuzhiyun }
48*4882a593Smuzhiyun 
49*4882a593Smuzhiyun #else
50*4882a593Smuzhiyun 
51*4882a593Smuzhiyun #ifdef CONFIG_64BIT
52*4882a593Smuzhiyun 
53*4882a593Smuzhiyun /* unused */
54*4882a593Smuzhiyun struct word_at_a_time {
55*4882a593Smuzhiyun };
56*4882a593Smuzhiyun 
57*4882a593Smuzhiyun #define WORD_AT_A_TIME_CONSTANTS { }
58*4882a593Smuzhiyun 
59*4882a593Smuzhiyun /* This will give us 0xff for a NULL char and 0x00 elsewhere */
has_zero(unsigned long a,unsigned long * bits,const struct word_at_a_time * c)60*4882a593Smuzhiyun static inline unsigned long has_zero(unsigned long a, unsigned long *bits, const struct word_at_a_time *c)
61*4882a593Smuzhiyun {
62*4882a593Smuzhiyun 	unsigned long ret;
63*4882a593Smuzhiyun 	unsigned long zero = 0;
64*4882a593Smuzhiyun 
65*4882a593Smuzhiyun 	asm("cmpb %0,%1,%2" : "=r" (ret) : "r" (a), "r" (zero));
66*4882a593Smuzhiyun 	*bits = ret;
67*4882a593Smuzhiyun 
68*4882a593Smuzhiyun 	return ret;
69*4882a593Smuzhiyun }
70*4882a593Smuzhiyun 
prep_zero_mask(unsigned long a,unsigned long bits,const struct word_at_a_time * c)71*4882a593Smuzhiyun static inline unsigned long prep_zero_mask(unsigned long a, unsigned long bits, const struct word_at_a_time *c)
72*4882a593Smuzhiyun {
73*4882a593Smuzhiyun 	return bits;
74*4882a593Smuzhiyun }
75*4882a593Smuzhiyun 
76*4882a593Smuzhiyun /* Alan Modra's little-endian strlen tail for 64-bit */
create_zero_mask(unsigned long bits)77*4882a593Smuzhiyun static inline unsigned long create_zero_mask(unsigned long bits)
78*4882a593Smuzhiyun {
79*4882a593Smuzhiyun 	unsigned long leading_zero_bits;
80*4882a593Smuzhiyun 	long trailing_zero_bit_mask;
81*4882a593Smuzhiyun 
82*4882a593Smuzhiyun 	asm("addi	%1,%2,-1\n\t"
83*4882a593Smuzhiyun 	    "andc	%1,%1,%2\n\t"
84*4882a593Smuzhiyun 	    "popcntd	%0,%1"
85*4882a593Smuzhiyun 		: "=r" (leading_zero_bits), "=&r" (trailing_zero_bit_mask)
86*4882a593Smuzhiyun 		: "b" (bits));
87*4882a593Smuzhiyun 
88*4882a593Smuzhiyun 	return leading_zero_bits;
89*4882a593Smuzhiyun }
90*4882a593Smuzhiyun 
find_zero(unsigned long mask)91*4882a593Smuzhiyun static inline unsigned long find_zero(unsigned long mask)
92*4882a593Smuzhiyun {
93*4882a593Smuzhiyun 	return mask >> 3;
94*4882a593Smuzhiyun }
95*4882a593Smuzhiyun 
96*4882a593Smuzhiyun /* This assumes that we never ask for an all 1s bitmask */
zero_bytemask(unsigned long mask)97*4882a593Smuzhiyun static inline unsigned long zero_bytemask(unsigned long mask)
98*4882a593Smuzhiyun {
99*4882a593Smuzhiyun 	return (1UL << mask) - 1;
100*4882a593Smuzhiyun }
101*4882a593Smuzhiyun 
102*4882a593Smuzhiyun #else	/* 32-bit case */
103*4882a593Smuzhiyun 
104*4882a593Smuzhiyun struct word_at_a_time {
105*4882a593Smuzhiyun 	const unsigned long one_bits, high_bits;
106*4882a593Smuzhiyun };
107*4882a593Smuzhiyun 
108*4882a593Smuzhiyun #define WORD_AT_A_TIME_CONSTANTS { REPEAT_BYTE(0x01), REPEAT_BYTE(0x80) }
109*4882a593Smuzhiyun 
110*4882a593Smuzhiyun /*
111*4882a593Smuzhiyun  * This is largely generic for little-endian machines, but the
112*4882a593Smuzhiyun  * optimal byte mask counting is probably going to be something
113*4882a593Smuzhiyun  * that is architecture-specific. If you have a reliably fast
114*4882a593Smuzhiyun  * bit count instruction, that might be better than the multiply
115*4882a593Smuzhiyun  * and shift, for example.
116*4882a593Smuzhiyun  */
117*4882a593Smuzhiyun 
118*4882a593Smuzhiyun /* Carl Chatfield / Jan Achrenius G+ version for 32-bit */
count_masked_bytes(long mask)119*4882a593Smuzhiyun static inline long count_masked_bytes(long mask)
120*4882a593Smuzhiyun {
121*4882a593Smuzhiyun 	/* (000000 0000ff 00ffff ffffff) -> ( 1 1 2 3 ) */
122*4882a593Smuzhiyun 	long a = (0x0ff0001+mask) >> 23;
123*4882a593Smuzhiyun 	/* Fix the 1 for 00 case */
124*4882a593Smuzhiyun 	return a & mask;
125*4882a593Smuzhiyun }
126*4882a593Smuzhiyun 
create_zero_mask(unsigned long bits)127*4882a593Smuzhiyun static inline unsigned long create_zero_mask(unsigned long bits)
128*4882a593Smuzhiyun {
129*4882a593Smuzhiyun 	bits = (bits - 1) & ~bits;
130*4882a593Smuzhiyun 	return bits >> 7;
131*4882a593Smuzhiyun }
132*4882a593Smuzhiyun 
find_zero(unsigned long mask)133*4882a593Smuzhiyun static inline unsigned long find_zero(unsigned long mask)
134*4882a593Smuzhiyun {
135*4882a593Smuzhiyun 	return count_masked_bytes(mask);
136*4882a593Smuzhiyun }
137*4882a593Smuzhiyun 
138*4882a593Smuzhiyun /* Return nonzero if it has a zero */
has_zero(unsigned long a,unsigned long * bits,const struct word_at_a_time * c)139*4882a593Smuzhiyun static inline unsigned long has_zero(unsigned long a, unsigned long *bits, const struct word_at_a_time *c)
140*4882a593Smuzhiyun {
141*4882a593Smuzhiyun 	unsigned long mask = ((a - c->one_bits) & ~a) & c->high_bits;
142*4882a593Smuzhiyun 	*bits = mask;
143*4882a593Smuzhiyun 	return mask;
144*4882a593Smuzhiyun }
145*4882a593Smuzhiyun 
prep_zero_mask(unsigned long a,unsigned long bits,const struct word_at_a_time * c)146*4882a593Smuzhiyun static inline unsigned long prep_zero_mask(unsigned long a, unsigned long bits, const struct word_at_a_time *c)
147*4882a593Smuzhiyun {
148*4882a593Smuzhiyun 	return bits;
149*4882a593Smuzhiyun }
150*4882a593Smuzhiyun 
151*4882a593Smuzhiyun /* The mask we created is directly usable as a bytemask */
152*4882a593Smuzhiyun #define zero_bytemask(mask) (mask)
153*4882a593Smuzhiyun 
154*4882a593Smuzhiyun #endif /* CONFIG_64BIT */
155*4882a593Smuzhiyun 
156*4882a593Smuzhiyun #endif /* __BIG_ENDIAN__ */
157*4882a593Smuzhiyun 
158*4882a593Smuzhiyun /*
159*4882a593Smuzhiyun  * We use load_unaligned_zero() in a selftest, which builds a userspace
160*4882a593Smuzhiyun  * program. Some linker scripts seem to discard the .fixup section, so allow
161*4882a593Smuzhiyun  * the test code to use a different section name.
162*4882a593Smuzhiyun  */
163*4882a593Smuzhiyun #ifndef FIXUP_SECTION
164*4882a593Smuzhiyun #define FIXUP_SECTION ".fixup"
165*4882a593Smuzhiyun #endif
166*4882a593Smuzhiyun 
load_unaligned_zeropad(const void * addr)167*4882a593Smuzhiyun static inline unsigned long load_unaligned_zeropad(const void *addr)
168*4882a593Smuzhiyun {
169*4882a593Smuzhiyun 	unsigned long ret, offset, tmp;
170*4882a593Smuzhiyun 
171*4882a593Smuzhiyun 	asm(
172*4882a593Smuzhiyun 	"1:	" PPC_LL "%[ret], 0(%[addr])\n"
173*4882a593Smuzhiyun 	"2:\n"
174*4882a593Smuzhiyun 	".section " FIXUP_SECTION ",\"ax\"\n"
175*4882a593Smuzhiyun 	"3:	"
176*4882a593Smuzhiyun #ifdef __powerpc64__
177*4882a593Smuzhiyun 	"clrrdi		%[tmp], %[addr], 3\n\t"
178*4882a593Smuzhiyun 	"clrlsldi	%[offset], %[addr], 61, 3\n\t"
179*4882a593Smuzhiyun 	"ld		%[ret], 0(%[tmp])\n\t"
180*4882a593Smuzhiyun #ifdef __BIG_ENDIAN__
181*4882a593Smuzhiyun 	"sld		%[ret], %[ret], %[offset]\n\t"
182*4882a593Smuzhiyun #else
183*4882a593Smuzhiyun 	"srd		%[ret], %[ret], %[offset]\n\t"
184*4882a593Smuzhiyun #endif
185*4882a593Smuzhiyun #else
186*4882a593Smuzhiyun 	"clrrwi		%[tmp], %[addr], 2\n\t"
187*4882a593Smuzhiyun 	"clrlslwi	%[offset], %[addr], 30, 3\n\t"
188*4882a593Smuzhiyun 	"lwz		%[ret], 0(%[tmp])\n\t"
189*4882a593Smuzhiyun #ifdef __BIG_ENDIAN__
190*4882a593Smuzhiyun 	"slw		%[ret], %[ret], %[offset]\n\t"
191*4882a593Smuzhiyun #else
192*4882a593Smuzhiyun 	"srw		%[ret], %[ret], %[offset]\n\t"
193*4882a593Smuzhiyun #endif
194*4882a593Smuzhiyun #endif
195*4882a593Smuzhiyun 	"b	2b\n"
196*4882a593Smuzhiyun 	".previous\n"
197*4882a593Smuzhiyun 	EX_TABLE(1b, 3b)
198*4882a593Smuzhiyun 	: [tmp] "=&b" (tmp), [offset] "=&r" (offset), [ret] "=&r" (ret)
199*4882a593Smuzhiyun 	: [addr] "b" (addr), "m" (*(unsigned long *)addr));
200*4882a593Smuzhiyun 
201*4882a593Smuzhiyun 	return ret;
202*4882a593Smuzhiyun }
203*4882a593Smuzhiyun 
204*4882a593Smuzhiyun #undef FIXUP_SECTION
205*4882a593Smuzhiyun 
206*4882a593Smuzhiyun #endif /* _ASM_WORD_AT_A_TIME_H */
207