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93 lines
2.3 KiB
93 lines
2.3 KiB
/*
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* Single-precision e^x function.
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*
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* Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions.
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* See https://llvm.org/LICENSE.txt for license information.
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* SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
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*/
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#include <math.h>
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#include <stdint.h>
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#include "math_config.h"
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/*
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EXP2F_TABLE_BITS = 5
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EXP2F_POLY_ORDER = 3
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ULP error: 0.502 (nearest rounding.)
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Relative error: 1.69 * 2^-34 in [-ln2/64, ln2/64] (before rounding.)
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Wrong count: 170635 (all nearest rounding wrong results with fma.)
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Non-nearest ULP error: 1 (rounded ULP error)
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*/
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#define N (1 << EXP2F_TABLE_BITS)
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#define InvLn2N __exp2f_data.invln2_scaled
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#define T __exp2f_data.tab
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#define C __exp2f_data.poly_scaled
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static inline uint32_t
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top12 (float x)
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{
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return asuint (x) >> 20;
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}
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float
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expf (float x)
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{
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uint32_t abstop;
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uint64_t ki, t;
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/* double_t for better performance on targets with FLT_EVAL_METHOD==2. */
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double_t kd, xd, z, r, r2, y, s;
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xd = (double_t) x;
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abstop = top12 (x) & 0x7ff;
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if (unlikely (abstop >= top12 (88.0f)))
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{
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/* |x| >= 88 or x is nan. */
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if (asuint (x) == asuint (-INFINITY))
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return 0.0f;
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if (abstop >= top12 (INFINITY))
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return x + x;
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if (x > 0x1.62e42ep6f) /* x > log(0x1p128) ~= 88.72 */
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return __math_oflowf (0);
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if (x < -0x1.9fe368p6f) /* x < log(0x1p-150) ~= -103.97 */
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return __math_uflowf (0);
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#if WANT_ERRNO_UFLOW
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if (x < -0x1.9d1d9ep6f) /* x < log(0x1p-149) ~= -103.28 */
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return __math_may_uflowf (0);
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#endif
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}
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/* x*N/Ln2 = k + r with r in [-1/2, 1/2] and int k. */
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z = InvLn2N * xd;
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/* Round and convert z to int, the result is in [-150*N, 128*N] and
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ideally nearest int is used, otherwise the magnitude of r can be
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bigger which gives larger approximation error. */
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#if TOINT_INTRINSICS
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kd = roundtoint (z);
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ki = converttoint (z);
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#else
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# define SHIFT __exp2f_data.shift
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kd = eval_as_double (z + SHIFT);
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ki = asuint64 (kd);
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kd -= SHIFT;
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#endif
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r = z - kd;
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/* exp(x) = 2^(k/N) * 2^(r/N) ~= s * (C0*r^3 + C1*r^2 + C2*r + 1) */
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t = T[ki % N];
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t += ki << (52 - EXP2F_TABLE_BITS);
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s = asdouble (t);
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z = C[0] * r + C[1];
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r2 = r * r;
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y = C[2] * r + 1;
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y = z * r2 + y;
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y = y * s;
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return eval_as_float (y);
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}
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#if USE_GLIBC_ABI
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strong_alias (expf, __expf_finite)
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hidden_alias (expf, __ieee754_expf)
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#endif
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