2013-01-17 Marcus Shawcroft <marcus.shawcroft@linaro.org>
* libc/machine/aarch64/strnlen.S: Correct arithmetic for argument N values close to the maximum representable value in an unsigned 64 bit value.
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@ -1,3 +1,9 @@
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2013-01-17 Marcus Shawcroft <marcus.shawcroft@linaro.org>
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* libc/machine/aarch64/strnlen.S: Correct arithmetic for
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argument N values close to the maximum representable
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value in an unsigned 64 bit value.
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2013-01-15 Nick Clifton <nickc@redhat.com>
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2013-01-15 Nick Clifton <nickc@redhat.com>
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* libc/sys/sysnecv850/crt0.S (_start): Enable FPU for the
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* libc/sys/sysnecv850/crt0.S (_start): Enable FPU for the
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@ -85,8 +85,10 @@ def_fn strnlen
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bic src, srcin, #15
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bic src, srcin, #15
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ands tmp1, srcin, #15
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ands tmp1, srcin, #15
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b.ne .Lmisaligned
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b.ne .Lmisaligned
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add limit_wd, limit, #15
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/* Calculate the number of full and partial words -1. */
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lsr limit_wd, limit_wd, #4
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sub limit_wd, limit, #1 /* Limit != 0, so no underflow. */
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lsr limit_wd, limit_wd, #4 /* Convert to Qwords. */
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/* NUL detection works on the principle that (X - 1) & (~X) & 0x80
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/* NUL detection works on the principle that (X - 1) & (~X) & 0x80
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(=> (X - 1) & ~(X | 0x7f)) is non-zero iff a byte is zero, and
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(=> (X - 1) & ~(X | 0x7f)) is non-zero iff a byte is zero, and
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can be done in parallel across the entire word. */
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can be done in parallel across the entire word. */
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@ -107,7 +109,7 @@ def_fn strnlen
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bic has_nul2, tmp3, tmp4
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bic has_nul2, tmp3, tmp4
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subs limit_wd, limit_wd, #1
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subs limit_wd, limit_wd, #1
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orr tmp1, has_nul1, has_nul2
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orr tmp1, has_nul1, has_nul2
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ccmp tmp1, #0, #0, ne /* NZCV = 0000 */
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ccmp tmp1, #0, #0, pl /* NZCV = 0000 */
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b.eq .Lloop
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b.eq .Lloop
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/* End of critical section -- keep to one 64Byte cache line. */
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/* End of critical section -- keep to one 64Byte cache line. */
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@ -145,23 +147,38 @@ def_fn strnlen
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ret
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ret
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.Lmisaligned:
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.Lmisaligned:
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add tmp3, limit, tmp1
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/* Deal with a partial first word.
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We're doing two things in parallel here;
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1) Calculate the number of words (but avoiding overflow if
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limit is near ULONG_MAX) - to do this we need to work out
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limit + tmp1 - 1 as a 65-bit value before shifting it;
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2) Load and mask the initial data words - we force the bytes
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before the ones we are interested in to 0xff - this ensures
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early bytes will not hit any zero detection. */
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sub limit_wd, limit, #1
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neg tmp4, tmp1
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cmp tmp1, #8
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cmp tmp1, #8
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neg tmp1, tmp1
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ldp data1, data2, [src], #16
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and tmp3, limit_wd, #15
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add limit_wd, tmp3, #15
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lsl tmp1, tmp1, #3 /* Bytes beyond alignment -> bits. */
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mov tmp2, #~0
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lsr limit_wd, limit_wd, #4
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lsr limit_wd, limit_wd, #4
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mov tmp2, #~0
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ldp data1, data2, [src], #16
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lsl tmp4, tmp4, #3 /* Bytes beyond alignment -> bits. */
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add tmp3, tmp3, tmp1
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#ifdef __AARCH64EB__
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#ifdef __AARCH64EB__
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/* Big-endian. Early bytes are at MSB. */
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/* Big-endian. Early bytes are at MSB. */
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lsl tmp2, tmp2, tmp1 /* Shift (tmp1 & 63). */
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lsl tmp2, tmp2, tmp4 /* Shift (tmp1 & 63). */
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#else
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#else
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/* Little-endian. Early bytes are at LSB. */
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/* Little-endian. Early bytes are at LSB. */
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lsr tmp2, tmp2, tmp1 /* Shift (tmp1 & 63). */
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lsr tmp2, tmp2, tmp4 /* Shift (tmp1 & 63). */
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#endif
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#endif
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add limit_wd, limit_wd, tmp3, lsr #4
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orr data1, data1, tmp2
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orr data1, data1, tmp2
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orr data2a, data2, tmp2
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orr data2a, data2, tmp2
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csinv data1, data1, xzr, le
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csinv data1, data1, xzr, le
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csel data2, data2, data2a, le
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csel data2, data2, data2a, le
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b .Lrealigned
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b .Lrealigned
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