Blame sysdeps/ia64/fpu/e_coshf.S

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.file "coshf.s"
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// Copyright (c) 2000 - 2005, Intel Corporation
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// All rights reserved.
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//
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// Contributed 2000 by the Intel Numerics Group, Intel Corporation
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//
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// Redistribution and use in source and binary forms, with or without
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// modification, are permitted provided that the following conditions are
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// met:
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//
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// * Redistributions of source code must retain the above copyright
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// notice, this list of conditions and the following disclaimer.
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//
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// * Redistributions in binary form must reproduce the above copyright
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// notice, this list of conditions and the following disclaimer in the
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// documentation and/or other materials provided with the distribution.
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//
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// * The name of Intel Corporation may not be used to endorse or promote
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// products derived from this software without specific prior written
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// permission.
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// THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS
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// "AS IS" AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT
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// LIMITED TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR
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// A PARTICULAR PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL INTEL OR ITS
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// CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL,
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// EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO,
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// PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR
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// PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY
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// OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY OR TORT (INCLUDING
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// NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF THIS
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// SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
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//
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// Intel Corporation is the author of this code, and requests that all
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// problem reports or change requests be submitted to it directly at
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// http://www.intel.com/software/products/opensource/libraries/num.htm.
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// History
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//*********************************************************************
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// 02/02/00 Initial version
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// 02/16/00 The error tag for coshf overflow changed to 65 (from 64).
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// 04/04/00 Unwind support added
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// 08/15/00 Bundle added after call to __libm_error_support to properly
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//          set [the previously overwritten] GR_Parameter_RESULT.
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// 05/07/01 Reworked to improve speed of all paths
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// 05/20/02 Cleaned up namespace and sf0 syntax
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// 11/15/02 Improved algorithm based on expf
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// 03/31/05 Reformatted delimiters between data tables
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//
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// API
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//*********************************************************************
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// float coshf(float)
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//
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// Overview of operation
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//*********************************************************************
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// Case 1:  0 < |x| < 0.25
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//  Evaluate cosh(x) by a 8th order polynomial
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//  Care is take for the order of multiplication; and A2 is not exactly 1/4!,
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//  A3 is not exactly 1/6!, etc.
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//  cosh(x) = 1 + (A1*x^2 + A2*x^4 + A3*x^6 + A4*x^8)
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//
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// Case 2:  0.25 < |x| < 89.41598
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//  Algorithm is based on the identity cosh(x) = ( exp(x) + exp(-x) ) / 2.
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//  The algorithm for exp is described as below.  There are a number of
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//  economies from evaluating both exp(x) and exp(-x).  Although we
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//  are evaluating both quantities, only where the quantities diverge do we
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//  duplicate the computations.  The basic algorithm for exp(x) is described
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//  below.
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//
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// Take the input x. w is "how many log2/128 in x?"
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//  w = x * 64/log2
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//  NJ = int(w)
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//  x = NJ*log2/64 + R
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//  NJ = 64*n + j
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//  x = n*log2 + (log2/64)*j + R
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//
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//  So, exp(x) = 2^n * 2^(j/64)* exp(R)
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//
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//  T =  2^n * 2^(j/64)
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//       Construct 2^n
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//       Get 2^(j/64) table
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//           actually all the entries of 2^(j/64) table are stored in DP and
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//           with exponent bits set to 0 -> multiplication on 2^n can be
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//           performed by doing logical "or" operation with bits presenting 2^n
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//  exp(R) = 1 + (exp(R) - 1)
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//  P = exp(R) - 1 approximated by Taylor series of 3rd degree
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//      P = A3*R^3 + A2*R^2 + R, A3 = 1/6, A2 = 1/2
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//
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//  The final result is reconstructed as follows
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//  exp(x) = T + T*P
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// Special values
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//*********************************************************************
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// coshf(+0)    = 1.0
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// coshf(-0)    = 1.0
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// coshf(+qnan) = +qnan
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// coshf(-qnan) = -qnan
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// coshf(+snan) = +qnan
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// coshf(-snan) = -qnan
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// coshf(-inf)  = +inf
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// coshf(+inf)  = +inf
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// Overflow and Underflow
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//*********************************************************************
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// coshf(x) = largest single normal when
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//     x = 89.41598 = 0x42b2d4fc
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//
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// There is no underflow.
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// Registers used
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//*********************************************************************
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// Floating Point registers used:
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// f8 input, output
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// f6,f7, f9 -> f15,  f32 -> f45
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// General registers used:
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// r2, r3, r16 -> r38
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// Predicate registers used:
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// p6 -> p15
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// Assembly macros
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//*********************************************************************
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// integer registers used
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// scratch
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rNJ                   = r2
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rNJ_neg               = r3
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rJ_neg                = r16
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rN_neg                = r17
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rSignexp_x            = r18
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rExp_x                = r18
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rExp_mask             = r19
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rExp_bias             = r20
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rAd1                  = r21
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rAd2                  = r22
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rJ                    = r23
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rN                    = r24
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rTblAddr              = r25
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rA3                   = r26
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rExpHalf              = r27
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rLn2Div64             = r28
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rGt_ln                = r29
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r17ones_m1            = r29
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rRightShifter         = r30
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rJ_mask               = r30
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r64DivLn2             = r31
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rN_mask               = r31
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// stacked
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GR_SAVE_PFS           = r32
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GR_SAVE_B0            = r33
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GR_SAVE_GP            = r34
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GR_Parameter_X        = r35
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GR_Parameter_Y        = r36
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GR_Parameter_RESULT   = r37
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GR_Parameter_TAG      = r38
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// floating point registers used
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FR_X                  = f10
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FR_Y                  = f1
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FR_RESULT             = f8
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// scratch
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fRightShifter         = f6
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f64DivLn2             = f7
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fNormX                = f9
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fNint                 = f10
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fN                    = f11
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fR                    = f12
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fLn2Div64             = f13
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fA2                   = f14
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fA3                   = f15
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// stacked
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fP                    = f32
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fT                    = f33
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fMIN_SGL_OFLOW_ARG    = f34
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fMAX_SGL_NORM_ARG     = f35
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fRSqr                 = f36
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fA1                   = f37
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fA21                  = f37
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fA4                   = f38
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fA43                  = f38
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fA4321                = f38
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fX4                   = f39
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fTmp                  = f39
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fGt_pln               = f39
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fWre_urm_f8           = f40
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fXsq                  = f40
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fP_neg                = f41
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fT_neg                = f42
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fExp                  = f43
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fExp_neg              = f44
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fAbsX                 = f45
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RODATA
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.align 16
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LOCAL_OBJECT_START(_coshf_table)
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data4 0x42b2d4fd         // Smallest single arg to overflow single result
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data4 0x42b2d4fc         // Largest single arg to give normal single result
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data4 0x00000000         // pad
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data4 0x00000000         // pad
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//
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// 2^(j/64) table, j goes from 0 to 63
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data8 0x0000000000000000 // 2^(0/64)
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data8 0x00002C9A3E778061 // 2^(1/64)
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data8 0x000059B0D3158574 // 2^(2/64)
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data8 0x0000874518759BC8 // 2^(3/64)
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data8 0x0000B5586CF9890F // 2^(4/64)
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data8 0x0000E3EC32D3D1A2 // 2^(5/64)
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data8 0x00011301D0125B51 // 2^(6/64)
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data8 0x0001429AAEA92DE0 // 2^(7/64)
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data8 0x000172B83C7D517B // 2^(8/64)
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data8 0x0001A35BEB6FCB75 // 2^(9/64)
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data8 0x0001D4873168B9AA // 2^(10/64)
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data8 0x0002063B88628CD6 // 2^(11/64)
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data8 0x0002387A6E756238 // 2^(12/64)
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data8 0x00026B4565E27CDD // 2^(13/64)
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data8 0x00029E9DF51FDEE1 // 2^(14/64)
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data8 0x0002D285A6E4030B // 2^(15/64)
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data8 0x000306FE0A31B715 // 2^(16/64)
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data8 0x00033C08B26416FF // 2^(17/64)
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data8 0x000371A7373AA9CB // 2^(18/64)
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data8 0x0003A7DB34E59FF7 // 2^(19/64)
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data8 0x0003DEA64C123422 // 2^(20/64)
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data8 0x0004160A21F72E2A // 2^(21/64)
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data8 0x00044E086061892D // 2^(22/64)
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data8 0x000486A2B5C13CD0 // 2^(23/64)
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data8 0x0004BFDAD5362A27 // 2^(24/64)
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data8 0x0004F9B2769D2CA7 // 2^(25/64)
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data8 0x0005342B569D4F82 // 2^(26/64)
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data8 0x00056F4736B527DA // 2^(27/64)
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data8 0x0005AB07DD485429 // 2^(28/64)
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data8 0x0005E76F15AD2148 // 2^(29/64)
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data8 0x0006247EB03A5585 // 2^(30/64)
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data8 0x0006623882552225 // 2^(31/64)
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data8 0x0006A09E667F3BCD // 2^(32/64)
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data8 0x0006DFB23C651A2F // 2^(33/64)
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data8 0x00071F75E8EC5F74 // 2^(34/64)
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data8 0x00075FEB564267C9 // 2^(35/64)
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data8 0x0007A11473EB0187 // 2^(36/64)
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data8 0x0007E2F336CF4E62 // 2^(37/64)
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data8 0x00082589994CCE13 // 2^(38/64)
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data8 0x000868D99B4492ED // 2^(39/64)
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data8 0x0008ACE5422AA0DB // 2^(40/64)
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data8 0x0008F1AE99157736 // 2^(41/64)
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data8 0x00093737B0CDC5E5 // 2^(42/64)
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data8 0x00097D829FDE4E50 // 2^(43/64)
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data8 0x0009C49182A3F090 // 2^(44/64)
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data8 0x000A0C667B5DE565 // 2^(45/64)
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data8 0x000A5503B23E255D // 2^(46/64)
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data8 0x000A9E6B5579FDBF // 2^(47/64)
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data8 0x000AE89F995AD3AD // 2^(48/64)
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data8 0x000B33A2B84F15FB // 2^(49/64)
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data8 0x000B7F76F2FB5E47 // 2^(50/64)
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data8 0x000BCC1E904BC1D2 // 2^(51/64)
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data8 0x000C199BDD85529C // 2^(52/64)
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data8 0x000C67F12E57D14B // 2^(53/64)
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data8 0x000CB720DCEF9069 // 2^(54/64)
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data8 0x000D072D4A07897C // 2^(55/64)
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data8 0x000D5818DCFBA487 // 2^(56/64)
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data8 0x000DA9E603DB3285 // 2^(57/64)
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data8 0x000DFC97337B9B5F // 2^(58/64)
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data8 0x000E502EE78B3FF6 // 2^(59/64)
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data8 0x000EA4AFA2A490DA // 2^(60/64)
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data8 0x000EFA1BEE615A27 // 2^(61/64)
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data8 0x000F50765B6E4540 // 2^(62/64)
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data8 0x000FA7C1819E90D8 // 2^(63/64)
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LOCAL_OBJECT_END(_coshf_table)
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LOCAL_OBJECT_START(cosh_p_table)
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data8 0x3efa3001dcf5905b // A4
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data8 0x3f56c1437543543e // A3
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data8 0x3fa5555572601504 // A2
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data8 0x3fdfffffffe2f097 // A1
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LOCAL_OBJECT_END(cosh_p_table)
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.section .text
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GLOBAL_IEEE754_ENTRY(coshf)
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{ .mlx
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      getf.exp        rSignexp_x = f8  // Must recompute if x unorm
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      movl            r64DivLn2 = 0x40571547652B82FE // 64/ln(2)
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}
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{ .mlx
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      addl            rTblAddr = @ltoff(_coshf_table),gp
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      movl            rRightShifter = 0x43E8000000000000 // DP Right Shifter
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}
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;;
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{ .mfi
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      // point to the beginning of the table
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      ld8             rTblAddr = [rTblAddr]
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      fclass.m        p6, p0 = f8, 0x0b   // Test for x=unorm
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      addl            rA3 = 0x3E2AA, r0   // high bits of 1.0/6.0 rounded to SP
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}
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{ .mfi
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      nop.m           0
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      fnorm.s1        fNormX = f8 // normalized x
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      addl            rExpHalf = 0xFFFE, r0 // exponent of 1/2
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}
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;;
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{ .mfi
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      setf.d          f64DivLn2 = r64DivLn2 // load 64/ln(2) to FP reg
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      fclass.m        p15, p0 = f8, 0x1e3   // test for NaT,NaN,Inf
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      nop.i           0
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}
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{ .mlx
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      // load Right Shifter to FP reg
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      setf.d          fRightShifter = rRightShifter
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      movl            rLn2Div64 = 0x3F862E42FEFA39EF // DP ln(2)/64 in GR
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}
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;;
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{ .mfi
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      mov             rExp_mask = 0x1ffff
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      fcmp.eq.s1      p13, p0 = f0, f8 // test for x = 0.0
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      shl             rA3 = rA3, 12    // 0x3E2AA000, approx to 1.0/6.0 in SP
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}
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{ .mfb
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      nop.m           0
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      nop.f           0
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(p6)  br.cond.spnt    COSH_UNORM            // Branch if x=unorm
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}
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;;
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COSH_COMMON:
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{ .mfi
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      setf.exp        fA2 = rExpHalf        // load A2 to FP reg
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      nop.f           0
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      mov             rExp_bias = 0xffff
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}
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{ .mfb
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      setf.d          fLn2Div64 = rLn2Div64 // load ln(2)/64 to FP reg
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(p15) fma.s.s0        f8 = f8, f8, f0       // result if x = NaT,NaN,Inf
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(p15) br.ret.spnt     b0                    // exit here if x = NaT,NaN,Inf
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}
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;;
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{ .mfi
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      // min overflow and max normal threshold
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      ldfps           fMIN_SGL_OFLOW_ARG, fMAX_SGL_NORM_ARG = [rTblAddr], 8
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      nop.f           0
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      and             rExp_x = rExp_mask, rSignexp_x // Biased exponent of x
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}
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{ .mfb
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      setf.s          fA3 = rA3                  // load A3 to FP reg
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(p13) fma.s.s0        f8 = f1, f1, f0            // result if x = 0.0
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(p13) br.ret.spnt     b0                         // exit here if x =0.0
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}
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;;
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{ .mfi
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      sub             rExp_x = rExp_x, rExp_bias // True exponent of x
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      fmerge.s        fAbsX = f0, fNormX         // Form |x|
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      nop.i           0
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}
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;;
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{ .mfi
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      nop.m           0
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      // x*(64/ln(2)) + Right Shifter
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      fma.s1          fNint = fNormX, f64DivLn2, fRightShifter
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      add             rTblAddr = 8, rTblAddr
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}
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{ .mfb
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      cmp.gt          p7, p0 = -2, rExp_x        // Test |x| < 2^(-2)
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      fma.s1          fXsq = fNormX, fNormX, f0  // x*x for small path
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(p7)  br.cond.spnt    COSH_SMALL                 // Branch if 0 < |x| < 2^-2
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}
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;;
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{ .mfi
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      nop.m           0
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      // check for overflow
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      fcmp.ge.s1      p12, p13 = fAbsX, fMIN_SGL_OFLOW_ARG
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      mov             rJ_mask = 0x3f             // 6-bit mask for J
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}
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;;
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{ .mfb
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      nop.m           0
Packit 6c4009
      fms.s1          fN = fNint, f1, fRightShifter // n in FP register
Packit 6c4009
      // branch out if overflow
Packit 6c4009
(p12) br.cond.spnt    COSH_CERTAIN_OVERFLOW
Packit 6c4009
}
Packit 6c4009
;;
Packit 6c4009
Packit 6c4009
{ .mfi
Packit 6c4009
      getf.sig        rNJ = fNint                   // bits of n, j
Packit 6c4009
      // check for possible overflow
Packit 6c4009
      fcmp.gt.s1      p13, p0 = fAbsX, fMAX_SGL_NORM_ARG
Packit 6c4009
      nop.i           0
Packit 6c4009
}
Packit 6c4009
;;
Packit 6c4009
Packit 6c4009
{ .mfi
Packit 6c4009
      addl            rN = 0xFFBF - 63, rNJ      // biased and shifted n-1,j
Packit 6c4009
      fnma.s1         fR = fLn2Div64, fN, fNormX // R = x - N*ln(2)/64
Packit 6c4009
      and             rJ = rJ_mask, rNJ          // bits of j
Packit 6c4009
}
Packit 6c4009
{ .mfi
Packit 6c4009
      sub             rNJ_neg = r0, rNJ          // bits of n, j for -x
Packit 6c4009
      nop.f           0
Packit 6c4009
      andcm           rN_mask = -1, rJ_mask      // 0xff...fc0 to mask N
Packit 6c4009
}
Packit 6c4009
;;
Packit 6c4009
Packit 6c4009
{ .mfi
Packit 6c4009
      shladd          rJ = rJ, 3, rTblAddr // address in the 2^(j/64) table
Packit 6c4009
      nop.f           0
Packit 6c4009
      and             rN = rN_mask, rN     // biased, shifted n-1
Packit 6c4009
}
Packit 6c4009
{ .mfi
Packit 6c4009
      addl            rN_neg = 0xFFBF - 63, rNJ_neg // -x biased, shifted n-1,j
Packit 6c4009
      nop.f           0
Packit 6c4009
      and             rJ_neg = rJ_mask, rNJ_neg     // bits of j for -x
Packit 6c4009
}
Packit 6c4009
;;
Packit 6c4009
Packit 6c4009
{ .mfi
Packit 6c4009
      ld8             rJ = [rJ]                    // Table value
Packit 6c4009
      nop.f           0
Packit 6c4009
      shl             rN = rN, 46 // 2^(n-1) bits in DP format
Packit 6c4009
}
Packit 6c4009
{ .mfi
Packit 6c4009
      shladd          rJ_neg = rJ_neg, 3, rTblAddr // addr in 2^(j/64) table -x
Packit 6c4009
      nop.f           0
Packit 6c4009
      and             rN_neg = rN_mask, rN_neg     // biased, shifted n-1 for -x
Packit 6c4009
}
Packit 6c4009
;;
Packit 6c4009
Packit 6c4009
{ .mfi
Packit 6c4009
      ld8             rJ_neg = [rJ_neg]            // Table value for -x
Packit 6c4009
      nop.f           0
Packit 6c4009
      shl             rN_neg = rN_neg, 46 // 2^(n-1) bits in DP format for -x
Packit 6c4009
}
Packit 6c4009
;;
Packit 6c4009
Packit 6c4009
{ .mfi
Packit 6c4009
      or              rN = rN, rJ // bits of 2^n * 2^(j/64) in DP format
Packit 6c4009
      nop.f           0
Packit 6c4009
      nop.i           0
Packit 6c4009
}
Packit 6c4009
;;
Packit 6c4009
Packit 6c4009
{ .mmf
Packit 6c4009
      setf.d          fT = rN            // 2^(n-1) * 2^(j/64)
Packit 6c4009
      or              rN_neg = rN_neg, rJ_neg // -x bits of 2^n * 2^(j/64) in DP
Packit 6c4009
      fma.s1          fRSqr = fR, fR, f0 // R^2
Packit 6c4009
}
Packit 6c4009
;;
Packit 6c4009
Packit 6c4009
{ .mfi
Packit 6c4009
      setf.d          fT_neg = rN_neg    // 2^(n-1) * 2^(j/64) for -x
Packit 6c4009
      fma.s1          fP = fA3, fR, fA2  // A3*R + A2
Packit 6c4009
      nop.i           0
Packit 6c4009
}
Packit 6c4009
{ .mfi
Packit 6c4009
      nop.m           0
Packit 6c4009
      fnma.s1         fP_neg = fA3, fR, fA2  // A3*R + A2 for -x
Packit 6c4009
      nop.i           0
Packit 6c4009
}
Packit 6c4009
;;
Packit 6c4009
Packit 6c4009
{ .mfi
Packit 6c4009
      nop.m           0
Packit 6c4009
      fma.s1          fP = fP, fRSqr, fR // P = (A3*R + A2)*R^2 + R
Packit 6c4009
      nop.i           0
Packit 6c4009
}
Packit 6c4009
{ .mfi
Packit 6c4009
      nop.m           0
Packit 6c4009
      fms.s1          fP_neg = fP_neg, fRSqr, fR // P = (A3*R + A2)*R^2 + R, -x
Packit 6c4009
      nop.i           0
Packit 6c4009
}
Packit 6c4009
;;
Packit 6c4009
Packit 6c4009
{ .mfi
Packit 6c4009
      nop.m           0
Packit 6c4009
      fmpy.s0         fTmp = fLn2Div64, fLn2Div64       // Force inexact
Packit 6c4009
      nop.i           0
Packit 6c4009
}
Packit 6c4009
;;
Packit 6c4009
Packit 6c4009
{ .mfi
Packit 6c4009
      nop.m           0
Packit 6c4009
      fma.s1          fExp = fP, fT, fT                 // exp(x)/2
Packit 6c4009
      nop.i           0
Packit 6c4009
}
Packit 6c4009
{ .mfb
Packit 6c4009
      nop.m           0
Packit 6c4009
      fma.s1          fExp_neg = fP_neg, fT_neg, fT_neg // exp(-x)/2
Packit 6c4009
      // branch out if possible overflow result
Packit 6c4009
(p13) br.cond.spnt    COSH_POSSIBLE_OVERFLOW
Packit 6c4009
}
Packit 6c4009
;;
Packit 6c4009
Packit 6c4009
{ .mfb
Packit 6c4009
      nop.m           0
Packit 6c4009
      // final result in the absence of overflow
Packit 6c4009
      fma.s.s0        f8 = fExp, f1, fExp_neg  // result = (exp(x)+exp(-x))/2
Packit 6c4009
      // exit here in the absence of overflow
Packit 6c4009
      br.ret.sptk     b0              // Exit main path, 0.25 <= |x| < 89.41598
Packit 6c4009
}
Packit 6c4009
;;
Packit 6c4009
Packit 6c4009
// Here if 0 < |x| < 0.25.  Evaluate 8th order polynomial.
Packit 6c4009
COSH_SMALL:
Packit 6c4009
{ .mmi
Packit 6c4009
      add             rAd1 = 0x200, rTblAddr
Packit 6c4009
      add             rAd2 = 0x210, rTblAddr
Packit 6c4009
      nop.i           0
Packit 6c4009
}
Packit 6c4009
;;
Packit 6c4009
Packit 6c4009
{ .mmi
Packit 6c4009
      ldfpd           fA4, fA3 = [rAd1]
Packit 6c4009
      ldfpd           fA2, fA1 = [rAd2]
Packit 6c4009
      nop.i           0
Packit 6c4009
}
Packit 6c4009
;;
Packit 6c4009
Packit 6c4009
{ .mfi
Packit 6c4009
      nop.m           0
Packit 6c4009
      fma.s1          fX4 = fXsq, fXsq, f0
Packit 6c4009
      nop.i           0
Packit 6c4009
}
Packit 6c4009
;;
Packit 6c4009
Packit 6c4009
{ .mfi
Packit 6c4009
      nop.m           0
Packit 6c4009
      fma.s1          fA43 = fXsq, fA4, fA3
Packit 6c4009
      nop.i           0
Packit 6c4009
}
Packit 6c4009
{ .mfi
Packit 6c4009
      nop.m           0
Packit 6c4009
      fma.s1          fA21 = fXsq, fA2, fA1
Packit 6c4009
      nop.i           0
Packit 6c4009
}
Packit 6c4009
;;
Packit 6c4009
Packit 6c4009
{ .mfi
Packit 6c4009
      nop.m           0
Packit 6c4009
      fma.s1          fA4321 = fX4, fA43, fA21
Packit 6c4009
      nop.i           0
Packit 6c4009
}
Packit 6c4009
;;
Packit 6c4009
Packit 6c4009
// Dummy multiply to generate inexact
Packit 6c4009
{ .mfi
Packit 6c4009
      nop.m           0
Packit 6c4009
      fmpy.s0         fTmp = fA4, fA4
Packit 6c4009
      nop.i           0
Packit 6c4009
}
Packit 6c4009
{ .mfb
Packit 6c4009
      nop.m           0
Packit 6c4009
      fma.s.s0        f8 = fA4321, fXsq, f1
Packit 6c4009
      br.ret.sptk     b0                // Exit if 0 < |x| < 0.25
Packit 6c4009
}
Packit 6c4009
;;
Packit 6c4009
Packit 6c4009
COSH_POSSIBLE_OVERFLOW:
Packit 6c4009
Packit 6c4009
// Here if fMAX_SGL_NORM_ARG < x < fMIN_SGL_OFLOW_ARG
Packit 6c4009
// This cannot happen if input is a single, only if input higher precision.
Packit 6c4009
// Overflow is a possibility, not a certainty.
Packit 6c4009
Packit 6c4009
// Recompute result using status field 2 with user's rounding mode,
Packit 6c4009
// and wre set.  If result is larger than largest single, then we have
Packit 6c4009
// overflow
Packit 6c4009
Packit 6c4009
{ .mfi
Packit 6c4009
      mov             rGt_ln  = 0x1007f // Exponent for largest single + 1 ulp
Packit 6c4009
      fsetc.s2        0x7F,0x42         // Get user's round mode, set wre
Packit 6c4009
      nop.i           0
Packit 6c4009
}
Packit 6c4009
;;
Packit 6c4009
Packit 6c4009
{ .mfi
Packit 6c4009
      setf.exp        fGt_pln = rGt_ln  // Create largest single + 1 ulp
Packit 6c4009
      fma.s.s2        fWre_urm_f8 = fP, fT, fT    // Result with wre set
Packit 6c4009
      nop.i           0
Packit 6c4009
}
Packit 6c4009
;;
Packit 6c4009
Packit 6c4009
{ .mfi
Packit 6c4009
      nop.m           0
Packit 6c4009
      fsetc.s2        0x7F,0x40                   // Turn off wre in sf2
Packit 6c4009
      nop.i           0
Packit 6c4009
}
Packit 6c4009
;;
Packit 6c4009
Packit 6c4009
{ .mfi
Packit 6c4009
      nop.m           0
Packit 6c4009
      fcmp.ge.s1      p6, p0 =  fWre_urm_f8, fGt_pln // Test for overflow
Packit 6c4009
      nop.i           0
Packit 6c4009
}
Packit 6c4009
;;
Packit 6c4009
Packit 6c4009
{ .mfb
Packit 6c4009
      nop.m           0
Packit 6c4009
      nop.f           0
Packit 6c4009
(p6)  br.cond.spnt    COSH_CERTAIN_OVERFLOW // Branch if overflow
Packit 6c4009
}
Packit 6c4009
;;
Packit 6c4009
Packit 6c4009
{ .mfb
Packit 6c4009
      nop.m           0
Packit 6c4009
      fma.s.s0        f8 = fP, fT, fT
Packit 6c4009
      br.ret.sptk     b0                     // Exit if really no overflow
Packit 6c4009
}
Packit 6c4009
;;
Packit 6c4009
Packit 6c4009
// here if overflow
Packit 6c4009
COSH_CERTAIN_OVERFLOW:
Packit 6c4009
{ .mmi
Packit 6c4009
      addl            r17ones_m1 = 0x1FFFE, r0
Packit 6c4009
;;
Packit 6c4009
      setf.exp        fTmp = r17ones_m1
Packit 6c4009
      nop.i           0
Packit 6c4009
}
Packit 6c4009
;;
Packit 6c4009
Packit 6c4009
{ .mfi
Packit 6c4009
      alloc           r32 = ar.pfs, 0, 3, 4, 0 // get some registers
Packit 6c4009
      fmerge.s        FR_X = f8,f8
Packit 6c4009
      nop.i           0
Packit 6c4009
}
Packit 6c4009
{ .mfb
Packit 6c4009
      mov             GR_Parameter_TAG = 65
Packit 6c4009
      fma.s.s0        FR_RESULT = fTmp, fTmp, f0 // Set I,O and +INF result
Packit 6c4009
      br.cond.sptk    __libm_error_region
Packit 6c4009
}
Packit 6c4009
;;
Packit 6c4009
Packit 6c4009
// Here if x unorm
Packit 6c4009
COSH_UNORM:
Packit 6c4009
{ .mfb
Packit 6c4009
      getf.exp        rSignexp_x = fNormX    // Must recompute if x unorm
Packit 6c4009
      fcmp.eq.s0      p6, p0 = f8, f0        // Set D flag
Packit 6c4009
      br.cond.sptk    COSH_COMMON            // Return to main path
Packit 6c4009
}
Packit 6c4009
;;
Packit 6c4009
Packit 6c4009
GLOBAL_IEEE754_END(coshf)
Packit 6c4009
libm_alias_float_other (__cosh, cosh)
Packit 6c4009
Packit 6c4009
Packit 6c4009
LOCAL_LIBM_ENTRY(__libm_error_region)
Packit 6c4009
.prologue
Packit 6c4009
{ .mfi
Packit 6c4009
      add   GR_Parameter_Y=-32,sp             // Parameter 2 value
Packit 6c4009
      nop.f 0
Packit 6c4009
.save   ar.pfs,GR_SAVE_PFS
Packit 6c4009
      mov  GR_SAVE_PFS=ar.pfs                 // Save ar.pfs
Packit 6c4009
}
Packit 6c4009
{ .mfi
Packit 6c4009
.fframe 64
Packit 6c4009
      add sp=-64,sp                           // Create new stack
Packit 6c4009
      nop.f 0
Packit 6c4009
      mov GR_SAVE_GP=gp                       // Save gp
Packit 6c4009
};;
Packit 6c4009
{ .mmi
Packit 6c4009
      stfs [GR_Parameter_Y] = FR_Y,16         // Store Parameter 2 on stack
Packit 6c4009
      add GR_Parameter_X = 16,sp              // Parameter 1 address
Packit 6c4009
.save   b0, GR_SAVE_B0
Packit 6c4009
      mov GR_SAVE_B0=b0                       // Save b0
Packit 6c4009
};;
Packit 6c4009
.body
Packit 6c4009
{ .mfi
Packit 6c4009
      stfs [GR_Parameter_X] = FR_X            // Store Parameter 1 on stack
Packit 6c4009
      nop.f 0
Packit 6c4009
      add   GR_Parameter_RESULT = 0,GR_Parameter_Y // Parameter 3 address
Packit 6c4009
}
Packit 6c4009
{ .mib
Packit 6c4009
      stfs [GR_Parameter_Y] = FR_RESULT       // Store Parameter 3 on stack
Packit 6c4009
      add   GR_Parameter_Y = -16,GR_Parameter_Y
Packit 6c4009
      br.call.sptk b0=__libm_error_support#   // Call error handling function
Packit 6c4009
};;
Packit 6c4009
Packit 6c4009
{ .mmi
Packit 6c4009
      add   GR_Parameter_RESULT = 48,sp
Packit 6c4009
      nop.m 0
Packit 6c4009
      nop.i 0
Packit 6c4009
};;
Packit 6c4009
Packit 6c4009
{ .mmi
Packit 6c4009
      ldfs  f8 = [GR_Parameter_RESULT]       // Get return result off stack
Packit 6c4009
.restore sp
Packit 6c4009
      add   sp = 64,sp                       // Restore stack pointer
Packit 6c4009
      mov   b0 = GR_SAVE_B0                  // Restore return address
Packit 6c4009
};;
Packit 6c4009
{ .mib
Packit 6c4009
      mov   gp = GR_SAVE_GP                  // Restore gp
Packit 6c4009
      mov   ar.pfs = GR_SAVE_PFS             // Restore ar.pfs
Packit 6c4009
      br.ret.sptk     b0                     // Return
Packit 6c4009
};;
Packit 6c4009
Packit 6c4009
LOCAL_LIBM_END(__libm_error_region)
Packit 6c4009
Packit 6c4009
Packit 6c4009
.type   __libm_error_support#,@function
Packit 6c4009
.global __libm_error_support#