* Update the comment that explains the choice of values in the
table and the requirement on trailing zero bits. * Remove the __aligned() compiler directives as these were found to have a negative effect on the produced code. Submitted by: bde Approved by: das (mentor)
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@ -64,7 +64,7 @@ o_threshold = LD80C(0xb17217f7d1cf79ab, 13, 11356.5234062941439488L),
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/* log(2**(-16381-64-1)) rounded towards zero: */
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u_threshold = LD80C(0xb21dfe7f09e2baa9, 13, -11399.4985314888605581L);
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static const double __aligned(64)
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static const double
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/*
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* ln2/INTERVALS = L1+L2 (hi+lo decomposition for multiplication). L1 must
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* have at least 22 (= log2(|LDBL_MIN_EXP-extras|) + log2(INTERVALS)) lowest
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@ -86,17 +86,18 @@ P6 = 1.3888891738560272e-3; /* 0x16c16c651633ae.0p-62 */
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/*
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* 2^(i/INTERVALS) for i in [0,INTERVALS] is represented by two values where
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* the first 53 bits of the significand is stored in hi and the next 53
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* bits are in lo. Tang's paper states that the trailing 6 bits of hi should
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* the first 53 bits of the significand are stored in hi and the next 53
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* bits are in lo. Tang's paper states that the trailing 6 bits of hi must
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* be zero for his algorithm in both single and double precision, because
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* the table is re-used in the implementation of expm1() where a floating
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* point addition involving hi must be exact. The conversion of a 53-bit
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* double into a 64-bit long double gives 11 trailing bit, which are zero.
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* point addition involving hi must be exact. Here hi is double, so
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* converting it to long double gives 11 trailing zero bits.
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*/
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static const struct {
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double hi;
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double lo;
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} s[INTERVALS] __aligned(16) = {
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/* XXX should rename 's'. */
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} s[INTERVALS] = {
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0x1p+0, 0x0p+0,
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0x1.0163da9fb3335p+0, 0x1.b61299ab8cdb7p-54,
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0x1.02c9a3e778060p+0, 0x1.dcdef95949ef4p-53,
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