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22
common/rng_sfmt.cpp
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22
common/rng_sfmt.cpp
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#include "rng_sfmt.h"
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#include "sfmt/SFMT.h"
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#include <QDateTime>
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#include <stdlib.h>
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#include <iostream>
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RNG_SFMT::RNG_SFMT(QObject *parent)
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: RNG_Abstract(parent)
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{
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std::cerr << "Using SFMT random number generator." << std::endl;
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int seed = QDateTime::currentDateTime().toTime_t();
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init_gen_rand(seed);
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for (int i = 0; i < 100000; ++i)
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gen_rand64();
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}
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unsigned int RNG_SFMT::getNumber(unsigned int min, unsigned int max)
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{
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uint64_t r = gen_rand64();
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return min + (unsigned int) (((double) (max + 1 - min)) * r / (18446744073709551616.0 + 1.0));
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}
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14
common/rng_sfmt.h
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14
common/rng_sfmt.h
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#ifndef RNG_SFMT_H
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#define RNG_SFMT_H
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#include "rng_abstract.h"
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class RNG_SFMT : public RNG_Abstract {
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Q_OBJECT
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public:
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RNG_SFMT(QObject *parent = 0);
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unsigned int getNumber(unsigned int min, unsigned int max);
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};
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#endif
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29
common/sfmt/LICENSE.txt
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29
common/sfmt/LICENSE.txt
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Copyright (c) 2006,2007 Mutsuo Saito, Makoto Matsumoto and Hiroshima
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University. All rights reserved.
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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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* 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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* Redistributions in binary form must reproduce the above
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copyright notice, this list of conditions and the following
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disclaimer in the documentation and/or other materials provided
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with the distribution.
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* Neither the name of the Hiroshima University nor the names of
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its contributors may be used to endorse or promote products
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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 THE COPYRIGHT
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OWNER OR CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL,
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SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT
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LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
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DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
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THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
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(INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE
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OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
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97
common/sfmt/SFMT-params.h
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97
common/sfmt/SFMT-params.h
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#ifndef SFMT_PARAMS_H
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#define SFMT_PARAMS_H
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#if !defined(MEXP)
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#ifdef __GNUC__
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#warning "MEXP is not defined. I assume MEXP is 19937."
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#endif
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#define MEXP 19937
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#endif
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/*-----------------
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BASIC DEFINITIONS
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-----------------*/
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/** Mersenne Exponent. The period of the sequence
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* is a multiple of 2^MEXP-1.
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* #define MEXP 19937 */
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/** SFMT generator has an internal state array of 128-bit integers,
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* and N is its size. */
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#define N (MEXP / 128 + 1)
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/** N32 is the size of internal state array when regarded as an array
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* of 32-bit integers.*/
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#define N32 (N * 4)
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/** N64 is the size of internal state array when regarded as an array
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* of 64-bit integers.*/
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#define N64 (N * 2)
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/*----------------------
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the parameters of SFMT
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following definitions are in paramsXXXX.h file.
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----------------------*/
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/** the pick up position of the array.
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#define POS1 122
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*/
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/** the parameter of shift left as four 32-bit registers.
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#define SL1 18
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*/
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/** the parameter of shift left as one 128-bit register.
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* The 128-bit integer is shifted by (SL2 * 8) bits.
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#define SL2 1
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*/
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/** the parameter of shift right as four 32-bit registers.
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#define SR1 11
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*/
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/** the parameter of shift right as one 128-bit register.
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* The 128-bit integer is shifted by (SL2 * 8) bits.
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#define SR2 1
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*/
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/** A bitmask, used in the recursion. These parameters are introduced
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* to break symmetry of SIMD.
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#define MSK1 0xdfffffefU
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#define MSK2 0xddfecb7fU
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#define MSK3 0xbffaffffU
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#define MSK4 0xbffffff6U
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*/
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/** These definitions are part of a 128-bit period certification vector.
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#define PARITY1 0x00000001U
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#define PARITY2 0x00000000U
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#define PARITY3 0x00000000U
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#define PARITY4 0xc98e126aU
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*/
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#if MEXP == 607
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#include "SFMT-params607.h"
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#elif MEXP == 1279
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#include "SFMT-params1279.h"
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#elif MEXP == 2281
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#include "SFMT-params2281.h"
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#elif MEXP == 4253
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#include "SFMT-params4253.h"
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#elif MEXP == 11213
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#include "SFMT-params11213.h"
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#elif MEXP == 19937
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#include "SFMT-params19937.h"
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#elif MEXP == 44497
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#include "SFMT-params44497.h"
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#elif MEXP == 86243
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#include "SFMT-params86243.h"
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#elif MEXP == 132049
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#include "SFMT-params132049.h"
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#elif MEXP == 216091
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#include "SFMT-params216091.h"
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#else
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#ifdef __GNUC__
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#error "MEXP is not valid."
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#undef MEXP
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#else
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#undef MEXP
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#endif
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#endif
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#endif /* SFMT_PARAMS_H */
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46
common/sfmt/SFMT-params19937.h
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common/sfmt/SFMT-params19937.h
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#ifndef SFMT_PARAMS19937_H
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#define SFMT_PARAMS19937_H
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#define POS1 122
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#define SL1 18
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#define SL2 1
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#define SR1 11
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#define SR2 1
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#define MSK1 0xdfffffefU
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#define MSK2 0xddfecb7fU
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#define MSK3 0xbffaffffU
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#define MSK4 0xbffffff6U
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#define PARITY1 0x00000001U
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#define PARITY2 0x00000000U
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#define PARITY3 0x00000000U
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#define PARITY4 0x13c9e684U
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/* PARAMETERS FOR ALTIVEC */
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#if defined(__APPLE__) /* For OSX */
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#define ALTI_SL1 (vector unsigned int)(SL1, SL1, SL1, SL1)
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#define ALTI_SR1 (vector unsigned int)(SR1, SR1, SR1, SR1)
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#define ALTI_MSK (vector unsigned int)(MSK1, MSK2, MSK3, MSK4)
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#define ALTI_MSK64 \
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(vector unsigned int)(MSK2, MSK1, MSK4, MSK3)
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#define ALTI_SL2_PERM \
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(vector unsigned char)(1,2,3,23,5,6,7,0,9,10,11,4,13,14,15,8)
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#define ALTI_SL2_PERM64 \
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(vector unsigned char)(1,2,3,4,5,6,7,31,9,10,11,12,13,14,15,0)
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#define ALTI_SR2_PERM \
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(vector unsigned char)(7,0,1,2,11,4,5,6,15,8,9,10,17,12,13,14)
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#define ALTI_SR2_PERM64 \
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(vector unsigned char)(15,0,1,2,3,4,5,6,17,8,9,10,11,12,13,14)
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#else /* For OTHER OSs(Linux?) */
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#define ALTI_SL1 {SL1, SL1, SL1, SL1}
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#define ALTI_SR1 {SR1, SR1, SR1, SR1}
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#define ALTI_MSK {MSK1, MSK2, MSK3, MSK4}
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#define ALTI_MSK64 {MSK2, MSK1, MSK4, MSK3}
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#define ALTI_SL2_PERM {1,2,3,23,5,6,7,0,9,10,11,4,13,14,15,8}
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#define ALTI_SL2_PERM64 {1,2,3,4,5,6,7,31,9,10,11,12,13,14,15,0}
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#define ALTI_SR2_PERM {7,0,1,2,11,4,5,6,15,8,9,10,17,12,13,14}
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#define ALTI_SR2_PERM64 {15,0,1,2,3,4,5,6,17,8,9,10,11,12,13,14}
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#endif /* For OSX */
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#define IDSTR "SFMT-19937:122-18-1-11-1:dfffffef-ddfecb7f-bffaffff-bffffff6"
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#endif /* SFMT_PARAMS19937_H */
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620
common/sfmt/SFMT.c
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620
common/sfmt/SFMT.c
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/**
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* @file SFMT.c
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* @brief SIMD oriented Fast Mersenne Twister(SFMT)
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*
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* @author Mutsuo Saito (Hiroshima University)
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* @author Makoto Matsumoto (Hiroshima University)
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*
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* Copyright (C) 2006,2007 Mutsuo Saito, Makoto Matsumoto and Hiroshima
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* University. All rights reserved.
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*
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* The new BSD License is applied to this software, see LICENSE.txt
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*/
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#include <string.h>
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#include <assert.h>
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#include "SFMT.h"
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#include "SFMT-params.h"
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#if defined(__BIG_ENDIAN__) && !defined(__amd64) && !defined(BIG_ENDIAN64)
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#define BIG_ENDIAN64 1
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#endif
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#if defined(HAVE_ALTIVEC) && !defined(BIG_ENDIAN64)
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#define BIG_ENDIAN64 1
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#endif
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#if defined(ONLY64) && !defined(BIG_ENDIAN64)
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#if defined(__GNUC__)
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#error "-DONLY64 must be specified with -DBIG_ENDIAN64"
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#endif
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#undef ONLY64
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#endif
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/*------------------------------------------------------
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128-bit SIMD data type for Altivec, SSE2 or standard C
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------------------------------------------------------*/
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#if defined(HAVE_ALTIVEC)
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#if !defined(__APPLE__)
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#include <altivec.h>
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#endif
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/** 128-bit data structure */
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union W128_T {
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vector unsigned int s;
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uint32_t u[4];
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};
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/** 128-bit data type */
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typedef union W128_T w128_t;
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#elif defined(HAVE_SSE2)
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#include <emmintrin.h>
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/** 128-bit data structure */
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union W128_T {
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__m128i si;
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uint32_t u[4];
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};
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/** 128-bit data type */
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typedef union W128_T w128_t;
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#else
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/** 128-bit data structure */
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struct W128_T {
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uint32_t u[4];
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};
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/** 128-bit data type */
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typedef struct W128_T w128_t;
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#endif
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/*--------------------------------------
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FILE GLOBAL VARIABLES
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internal state, index counter and flag
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--------------------------------------*/
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/** the 128-bit internal state array */
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static w128_t sfmt[N];
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/** the 32bit integer pointer to the 128-bit internal state array */
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static uint32_t *psfmt32 = &sfmt[0].u[0];
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#if !defined(BIG_ENDIAN64) || defined(ONLY64)
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/** the 64bit integer pointer to the 128-bit internal state array */
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static uint64_t *psfmt64 = (uint64_t *)&sfmt[0].u[0];
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#endif
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/** index counter to the 32-bit internal state array */
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static int idx;
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/** a flag: it is 0 if and only if the internal state is not yet
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* initialized. */
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static int initialized = 0;
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/** a parity check vector which certificate the period of 2^{MEXP} */
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static uint32_t parity[4] = {PARITY1, PARITY2, PARITY3, PARITY4};
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/*----------------
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STATIC FUNCTIONS
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----------------*/
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inline static int idxof(int i);
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inline static void rshift128(w128_t *out, w128_t const *in, int shift);
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inline static void lshift128(w128_t *out, w128_t const *in, int shift);
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inline static void gen_rand_all(void);
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inline static void gen_rand_array(w128_t *array, int size);
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inline static uint32_t func1(uint32_t x);
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inline static uint32_t func2(uint32_t x);
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static void period_certification(void);
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#if defined(BIG_ENDIAN64) && !defined(ONLY64)
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inline static void swap(w128_t *array, int size);
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#endif
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#if defined(HAVE_ALTIVEC)
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#include "SFMT-alti.h"
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#elif defined(HAVE_SSE2)
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#include "SFMT-sse2.h"
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#endif
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/**
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* This function simulate a 64-bit index of LITTLE ENDIAN
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* in BIG ENDIAN machine.
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*/
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#ifdef ONLY64
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inline static int idxof(int i) {
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return i ^ 1;
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}
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#else
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inline static int idxof(int i) {
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return i;
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}
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#endif
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/**
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* This function simulates SIMD 128-bit right shift by the standard C.
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* The 128-bit integer given in in is shifted by (shift * 8) bits.
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* This function simulates the LITTLE ENDIAN SIMD.
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* @param out the output of this function
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* @param in the 128-bit data to be shifted
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* @param shift the shift value
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*/
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#ifdef ONLY64
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inline static void rshift128(w128_t *out, w128_t const *in, int shift) {
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uint64_t th, tl, oh, ol;
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th = ((uint64_t)in->u[2] << 32) | ((uint64_t)in->u[3]);
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tl = ((uint64_t)in->u[0] << 32) | ((uint64_t)in->u[1]);
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oh = th >> (shift * 8);
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ol = tl >> (shift * 8);
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ol |= th << (64 - shift * 8);
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out->u[0] = (uint32_t)(ol >> 32);
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out->u[1] = (uint32_t)ol;
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out->u[2] = (uint32_t)(oh >> 32);
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out->u[3] = (uint32_t)oh;
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}
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#else
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inline static void rshift128(w128_t *out, w128_t const *in, int shift) {
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uint64_t th, tl, oh, ol;
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th = ((uint64_t)in->u[3] << 32) | ((uint64_t)in->u[2]);
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tl = ((uint64_t)in->u[1] << 32) | ((uint64_t)in->u[0]);
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oh = th >> (shift * 8);
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ol = tl >> (shift * 8);
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ol |= th << (64 - shift * 8);
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out->u[1] = (uint32_t)(ol >> 32);
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out->u[0] = (uint32_t)ol;
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out->u[3] = (uint32_t)(oh >> 32);
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out->u[2] = (uint32_t)oh;
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}
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#endif
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/**
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* This function simulates SIMD 128-bit left shift by the standard C.
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* The 128-bit integer given in in is shifted by (shift * 8) bits.
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* This function simulates the LITTLE ENDIAN SIMD.
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* @param out the output of this function
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* @param in the 128-bit data to be shifted
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* @param shift the shift value
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*/
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#ifdef ONLY64
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inline static void lshift128(w128_t *out, w128_t const *in, int shift) {
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uint64_t th, tl, oh, ol;
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th = ((uint64_t)in->u[2] << 32) | ((uint64_t)in->u[3]);
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tl = ((uint64_t)in->u[0] << 32) | ((uint64_t)in->u[1]);
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oh = th << (shift * 8);
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ol = tl << (shift * 8);
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oh |= tl >> (64 - shift * 8);
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out->u[0] = (uint32_t)(ol >> 32);
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out->u[1] = (uint32_t)ol;
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out->u[2] = (uint32_t)(oh >> 32);
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out->u[3] = (uint32_t)oh;
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}
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#else
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inline static void lshift128(w128_t *out, w128_t const *in, int shift) {
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uint64_t th, tl, oh, ol;
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th = ((uint64_t)in->u[3] << 32) | ((uint64_t)in->u[2]);
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tl = ((uint64_t)in->u[1] << 32) | ((uint64_t)in->u[0]);
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oh = th << (shift * 8);
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ol = tl << (shift * 8);
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oh |= tl >> (64 - shift * 8);
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out->u[1] = (uint32_t)(ol >> 32);
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out->u[0] = (uint32_t)ol;
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out->u[3] = (uint32_t)(oh >> 32);
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out->u[2] = (uint32_t)oh;
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}
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#endif
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/**
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* This function represents the recursion formula.
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* @param r output
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* @param a a 128-bit part of the internal state array
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* @param b a 128-bit part of the internal state array
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* @param c a 128-bit part of the internal state array
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* @param d a 128-bit part of the internal state array
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*/
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#if (!defined(HAVE_ALTIVEC)) && (!defined(HAVE_SSE2))
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#ifdef ONLY64
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inline static void do_recursion(w128_t *r, w128_t *a, w128_t *b, w128_t *c,
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w128_t *d) {
|
||||
w128_t x;
|
||||
w128_t y;
|
||||
|
||||
lshift128(&x, a, SL2);
|
||||
rshift128(&y, c, SR2);
|
||||
r->u[0] = a->u[0] ^ x.u[0] ^ ((b->u[0] >> SR1) & MSK2) ^ y.u[0]
|
||||
^ (d->u[0] << SL1);
|
||||
r->u[1] = a->u[1] ^ x.u[1] ^ ((b->u[1] >> SR1) & MSK1) ^ y.u[1]
|
||||
^ (d->u[1] << SL1);
|
||||
r->u[2] = a->u[2] ^ x.u[2] ^ ((b->u[2] >> SR1) & MSK4) ^ y.u[2]
|
||||
^ (d->u[2] << SL1);
|
||||
r->u[3] = a->u[3] ^ x.u[3] ^ ((b->u[3] >> SR1) & MSK3) ^ y.u[3]
|
||||
^ (d->u[3] << SL1);
|
||||
}
|
||||
#else
|
||||
inline static void do_recursion(w128_t *r, w128_t *a, w128_t *b, w128_t *c,
|
||||
w128_t *d) {
|
||||
w128_t x;
|
||||
w128_t y;
|
||||
|
||||
lshift128(&x, a, SL2);
|
||||
rshift128(&y, c, SR2);
|
||||
r->u[0] = a->u[0] ^ x.u[0] ^ ((b->u[0] >> SR1) & MSK1) ^ y.u[0]
|
||||
^ (d->u[0] << SL1);
|
||||
r->u[1] = a->u[1] ^ x.u[1] ^ ((b->u[1] >> SR1) & MSK2) ^ y.u[1]
|
||||
^ (d->u[1] << SL1);
|
||||
r->u[2] = a->u[2] ^ x.u[2] ^ ((b->u[2] >> SR1) & MSK3) ^ y.u[2]
|
||||
^ (d->u[2] << SL1);
|
||||
r->u[3] = a->u[3] ^ x.u[3] ^ ((b->u[3] >> SR1) & MSK4) ^ y.u[3]
|
||||
^ (d->u[3] << SL1);
|
||||
}
|
||||
#endif
|
||||
#endif
|
||||
|
||||
#if (!defined(HAVE_ALTIVEC)) && (!defined(HAVE_SSE2))
|
||||
/**
|
||||
* This function fills the internal state array with pseudorandom
|
||||
* integers.
|
||||
*/
|
||||
inline static void gen_rand_all(void) {
|
||||
int i;
|
||||
w128_t *r1, *r2;
|
||||
|
||||
r1 = &sfmt[N - 2];
|
||||
r2 = &sfmt[N - 1];
|
||||
for (i = 0; i < N - POS1; i++) {
|
||||
do_recursion(&sfmt[i], &sfmt[i], &sfmt[i + POS1], r1, r2);
|
||||
r1 = r2;
|
||||
r2 = &sfmt[i];
|
||||
}
|
||||
for (; i < N; i++) {
|
||||
do_recursion(&sfmt[i], &sfmt[i], &sfmt[i + POS1 - N], r1, r2);
|
||||
r1 = r2;
|
||||
r2 = &sfmt[i];
|
||||
}
|
||||
}
|
||||
|
||||
/**
|
||||
* This function fills the user-specified array with pseudorandom
|
||||
* integers.
|
||||
*
|
||||
* @param array an 128-bit array to be filled by pseudorandom numbers.
|
||||
* @param size number of 128-bit pseudorandom numbers to be generated.
|
||||
*/
|
||||
inline static void gen_rand_array(w128_t *array, int size) {
|
||||
int i, j;
|
||||
w128_t *r1, *r2;
|
||||
|
||||
r1 = &sfmt[N - 2];
|
||||
r2 = &sfmt[N - 1];
|
||||
for (i = 0; i < N - POS1; i++) {
|
||||
do_recursion(&array[i], &sfmt[i], &sfmt[i + POS1], r1, r2);
|
||||
r1 = r2;
|
||||
r2 = &array[i];
|
||||
}
|
||||
for (; i < N; i++) {
|
||||
do_recursion(&array[i], &sfmt[i], &array[i + POS1 - N], r1, r2);
|
||||
r1 = r2;
|
||||
r2 = &array[i];
|
||||
}
|
||||
for (; i < size - N; i++) {
|
||||
do_recursion(&array[i], &array[i - N], &array[i + POS1 - N], r1, r2);
|
||||
r1 = r2;
|
||||
r2 = &array[i];
|
||||
}
|
||||
for (j = 0; j < 2 * N - size; j++) {
|
||||
sfmt[j] = array[j + size - N];
|
||||
}
|
||||
for (; i < size; i++, j++) {
|
||||
do_recursion(&array[i], &array[i - N], &array[i + POS1 - N], r1, r2);
|
||||
r1 = r2;
|
||||
r2 = &array[i];
|
||||
sfmt[j] = array[i];
|
||||
}
|
||||
}
|
||||
#endif
|
||||
|
||||
#if defined(BIG_ENDIAN64) && !defined(ONLY64) && !defined(HAVE_ALTIVEC)
|
||||
inline static void swap(w128_t *array, int size) {
|
||||
int i;
|
||||
uint32_t x, y;
|
||||
|
||||
for (i = 0; i < size; i++) {
|
||||
x = array[i].u[0];
|
||||
y = array[i].u[2];
|
||||
array[i].u[0] = array[i].u[1];
|
||||
array[i].u[2] = array[i].u[3];
|
||||
array[i].u[1] = x;
|
||||
array[i].u[3] = y;
|
||||
}
|
||||
}
|
||||
#endif
|
||||
/**
|
||||
* This function represents a function used in the initialization
|
||||
* by init_by_array
|
||||
* @param x 32-bit integer
|
||||
* @return 32-bit integer
|
||||
*/
|
||||
static uint32_t func1(uint32_t x) {
|
||||
return (x ^ (x >> 27)) * (uint32_t)1664525UL;
|
||||
}
|
||||
|
||||
/**
|
||||
* This function represents a function used in the initialization
|
||||
* by init_by_array
|
||||
* @param x 32-bit integer
|
||||
* @return 32-bit integer
|
||||
*/
|
||||
static uint32_t func2(uint32_t x) {
|
||||
return (x ^ (x >> 27)) * (uint32_t)1566083941UL;
|
||||
}
|
||||
|
||||
/**
|
||||
* This function certificate the period of 2^{MEXP}
|
||||
*/
|
||||
static void period_certification(void) {
|
||||
int inner = 0;
|
||||
int i, j;
|
||||
uint32_t work;
|
||||
|
||||
for (i = 0; i < 4; i++)
|
||||
inner ^= psfmt32[idxof(i)] & parity[i];
|
||||
for (i = 16; i > 0; i >>= 1)
|
||||
inner ^= inner >> i;
|
||||
inner &= 1;
|
||||
/* check OK */
|
||||
if (inner == 1) {
|
||||
return;
|
||||
}
|
||||
/* check NG, and modification */
|
||||
for (i = 0; i < 4; i++) {
|
||||
work = 1;
|
||||
for (j = 0; j < 32; j++) {
|
||||
if ((work & parity[i]) != 0) {
|
||||
psfmt32[idxof(i)] ^= work;
|
||||
return;
|
||||
}
|
||||
work = work << 1;
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
/*----------------
|
||||
PUBLIC FUNCTIONS
|
||||
----------------*/
|
||||
/**
|
||||
* This function returns the identification string.
|
||||
* The string shows the word size, the Mersenne exponent,
|
||||
* and all parameters of this generator.
|
||||
*/
|
||||
const char *get_idstring(void) {
|
||||
return IDSTR;
|
||||
}
|
||||
|
||||
/**
|
||||
* This function returns the minimum size of array used for \b
|
||||
* fill_array32() function.
|
||||
* @return minimum size of array used for fill_array32() function.
|
||||
*/
|
||||
int get_min_array_size32(void) {
|
||||
return N32;
|
||||
}
|
||||
|
||||
/**
|
||||
* This function returns the minimum size of array used for \b
|
||||
* fill_array64() function.
|
||||
* @return minimum size of array used for fill_array64() function.
|
||||
*/
|
||||
int get_min_array_size64(void) {
|
||||
return N64;
|
||||
}
|
||||
|
||||
#ifndef ONLY64
|
||||
/**
|
||||
* This function generates and returns 32-bit pseudorandom number.
|
||||
* init_gen_rand or init_by_array must be called before this function.
|
||||
* @return 32-bit pseudorandom number
|
||||
*/
|
||||
uint32_t gen_rand32(void) {
|
||||
uint32_t r;
|
||||
|
||||
assert(initialized);
|
||||
if (idx >= N32) {
|
||||
gen_rand_all();
|
||||
idx = 0;
|
||||
}
|
||||
r = psfmt32[idx++];
|
||||
return r;
|
||||
}
|
||||
#endif
|
||||
/**
|
||||
* This function generates and returns 64-bit pseudorandom number.
|
||||
* init_gen_rand or init_by_array must be called before this function.
|
||||
* The function gen_rand64 should not be called after gen_rand32,
|
||||
* unless an initialization is again executed.
|
||||
* @return 64-bit pseudorandom number
|
||||
*/
|
||||
uint64_t gen_rand64(void) {
|
||||
#if defined(BIG_ENDIAN64) && !defined(ONLY64)
|
||||
uint32_t r1, r2;
|
||||
#else
|
||||
uint64_t r;
|
||||
#endif
|
||||
|
||||
assert(initialized);
|
||||
assert(idx % 2 == 0);
|
||||
|
||||
if (idx >= N32) {
|
||||
gen_rand_all();
|
||||
idx = 0;
|
||||
}
|
||||
#if defined(BIG_ENDIAN64) && !defined(ONLY64)
|
||||
r1 = psfmt32[idx];
|
||||
r2 = psfmt32[idx + 1];
|
||||
idx += 2;
|
||||
return ((uint64_t)r2 << 32) | r1;
|
||||
#else
|
||||
r = psfmt64[idx / 2];
|
||||
idx += 2;
|
||||
return r;
|
||||
#endif
|
||||
}
|
||||
|
||||
#ifndef ONLY64
|
||||
/**
|
||||
* This function generates pseudorandom 32-bit integers in the
|
||||
* specified array[] by one call. The number of pseudorandom integers
|
||||
* is specified by the argument size, which must be at least 624 and a
|
||||
* multiple of four. The generation by this function is much faster
|
||||
* than the following gen_rand function.
|
||||
*
|
||||
* For initialization, init_gen_rand or init_by_array must be called
|
||||
* before the first call of this function. This function can not be
|
||||
* used after calling gen_rand function, without initialization.
|
||||
*
|
||||
* @param array an array where pseudorandom 32-bit integers are filled
|
||||
* by this function. The pointer to the array must be \b "aligned"
|
||||
* (namely, must be a multiple of 16) in the SIMD version, since it
|
||||
* refers to the address of a 128-bit integer. In the standard C
|
||||
* version, the pointer is arbitrary.
|
||||
*
|
||||
* @param size the number of 32-bit pseudorandom integers to be
|
||||
* generated. size must be a multiple of 4, and greater than or equal
|
||||
* to (MEXP / 128 + 1) * 4.
|
||||
*
|
||||
* @note \b memalign or \b posix_memalign is available to get aligned
|
||||
* memory. Mac OSX doesn't have these functions, but \b malloc of OSX
|
||||
* returns the pointer to the aligned memory block.
|
||||
*/
|
||||
void fill_array32(uint32_t *array, int size) {
|
||||
assert(initialized);
|
||||
assert(idx == N32);
|
||||
assert(size % 4 == 0);
|
||||
assert(size >= N32);
|
||||
|
||||
gen_rand_array((w128_t *)array, size / 4);
|
||||
idx = N32;
|
||||
}
|
||||
#endif
|
||||
|
||||
/**
|
||||
* This function generates pseudorandom 64-bit integers in the
|
||||
* specified array[] by one call. The number of pseudorandom integers
|
||||
* is specified by the argument size, which must be at least 312 and a
|
||||
* multiple of two. The generation by this function is much faster
|
||||
* than the following gen_rand function.
|
||||
*
|
||||
* For initialization, init_gen_rand or init_by_array must be called
|
||||
* before the first call of this function. This function can not be
|
||||
* used after calling gen_rand function, without initialization.
|
||||
*
|
||||
* @param array an array where pseudorandom 64-bit integers are filled
|
||||
* by this function. The pointer to the array must be "aligned"
|
||||
* (namely, must be a multiple of 16) in the SIMD version, since it
|
||||
* refers to the address of a 128-bit integer. In the standard C
|
||||
* version, the pointer is arbitrary.
|
||||
*
|
||||
* @param size the number of 64-bit pseudorandom integers to be
|
||||
* generated. size must be a multiple of 2, and greater than or equal
|
||||
* to (MEXP / 128 + 1) * 2
|
||||
*
|
||||
* @note \b memalign or \b posix_memalign is available to get aligned
|
||||
* memory. Mac OSX doesn't have these functions, but \b malloc of OSX
|
||||
* returns the pointer to the aligned memory block.
|
||||
*/
|
||||
void fill_array64(uint64_t *array, int size) {
|
||||
assert(initialized);
|
||||
assert(idx == N32);
|
||||
assert(size % 2 == 0);
|
||||
assert(size >= N64);
|
||||
|
||||
gen_rand_array((w128_t *)array, size / 2);
|
||||
idx = N32;
|
||||
|
||||
#if defined(BIG_ENDIAN64) && !defined(ONLY64)
|
||||
swap((w128_t *)array, size /2);
|
||||
#endif
|
||||
}
|
||||
|
||||
/**
|
||||
* This function initializes the internal state array with a 32-bit
|
||||
* integer seed.
|
||||
*
|
||||
* @param seed a 32-bit integer used as the seed.
|
||||
*/
|
||||
void init_gen_rand(uint32_t seed) {
|
||||
int i;
|
||||
|
||||
psfmt32[idxof(0)] = seed;
|
||||
for (i = 1; i < N32; i++) {
|
||||
psfmt32[idxof(i)] = 1812433253UL * (psfmt32[idxof(i - 1)]
|
||||
^ (psfmt32[idxof(i - 1)] >> 30))
|
||||
+ i;
|
||||
}
|
||||
idx = N32;
|
||||
period_certification();
|
||||
initialized = 1;
|
||||
}
|
||||
|
||||
/**
|
||||
* This function initializes the internal state array,
|
||||
* with an array of 32-bit integers used as the seeds
|
||||
* @param init_key the array of 32-bit integers, used as a seed.
|
||||
* @param key_length the length of init_key.
|
||||
*/
|
||||
void init_by_array(uint32_t *init_key, int key_length) {
|
||||
int i, j, count;
|
||||
uint32_t r;
|
||||
int lag;
|
||||
int mid;
|
||||
int size = N * 4;
|
||||
|
||||
if (size >= 623) {
|
||||
lag = 11;
|
||||
} else if (size >= 68) {
|
||||
lag = 7;
|
||||
} else if (size >= 39) {
|
||||
lag = 5;
|
||||
} else {
|
||||
lag = 3;
|
||||
}
|
||||
mid = (size - lag) / 2;
|
||||
|
||||
memset(sfmt, 0x8b, sizeof(sfmt));
|
||||
if (key_length + 1 > N32) {
|
||||
count = key_length + 1;
|
||||
} else {
|
||||
count = N32;
|
||||
}
|
||||
r = func1(psfmt32[idxof(0)] ^ psfmt32[idxof(mid)]
|
||||
^ psfmt32[idxof(N32 - 1)]);
|
||||
psfmt32[idxof(mid)] += r;
|
||||
r += key_length;
|
||||
psfmt32[idxof(mid + lag)] += r;
|
||||
psfmt32[idxof(0)] = r;
|
||||
|
||||
count--;
|
||||
for (i = 1, j = 0; (j < count) && (j < key_length); j++) {
|
||||
r = func1(psfmt32[idxof(i)] ^ psfmt32[idxof((i + mid) % N32)]
|
||||
^ psfmt32[idxof((i + N32 - 1) % N32)]);
|
||||
psfmt32[idxof((i + mid) % N32)] += r;
|
||||
r += init_key[j] + i;
|
||||
psfmt32[idxof((i + mid + lag) % N32)] += r;
|
||||
psfmt32[idxof(i)] = r;
|
||||
i = (i + 1) % N32;
|
||||
}
|
||||
for (; j < count; j++) {
|
||||
r = func1(psfmt32[idxof(i)] ^ psfmt32[idxof((i + mid) % N32)]
|
||||
^ psfmt32[idxof((i + N32 - 1) % N32)]);
|
||||
psfmt32[idxof((i + mid) % N32)] += r;
|
||||
r += i;
|
||||
psfmt32[idxof((i + mid + lag) % N32)] += r;
|
||||
psfmt32[idxof(i)] = r;
|
||||
i = (i + 1) % N32;
|
||||
}
|
||||
for (j = 0; j < N32; j++) {
|
||||
r = func2(psfmt32[idxof(i)] + psfmt32[idxof((i + mid) % N32)]
|
||||
+ psfmt32[idxof((i + N32 - 1) % N32)]);
|
||||
psfmt32[idxof((i + mid) % N32)] ^= r;
|
||||
r -= i;
|
||||
psfmt32[idxof((i + mid + lag) % N32)] ^= r;
|
||||
psfmt32[idxof(i)] = r;
|
||||
i = (i + 1) % N32;
|
||||
}
|
||||
|
||||
idx = N32;
|
||||
period_certification();
|
||||
initialized = 1;
|
||||
}
|
164
common/sfmt/SFMT.h
Normal file
164
common/sfmt/SFMT.h
Normal file
|
@ -0,0 +1,164 @@
|
|||
/**
|
||||
* @file SFMT.h
|
||||
*
|
||||
* @brief SIMD oriented Fast Mersenne Twister(SFMT) pseudorandom
|
||||
* number generator
|
||||
*
|
||||
* @author Mutsuo Saito (Hiroshima University)
|
||||
* @author Makoto Matsumoto (Hiroshima University)
|
||||
*
|
||||
* Copyright (C) 2006, 2007 Mutsuo Saito, Makoto Matsumoto and Hiroshima
|
||||
* University. All rights reserved.
|
||||
*
|
||||
* The new BSD License is applied to this software.
|
||||
* see LICENSE.txt
|
||||
*
|
||||
* @note We assume that your system has inttypes.h. If your system
|
||||
* doesn't have inttypes.h, you have to typedef uint32_t and uint64_t,
|
||||
* and you have to define PRIu64 and PRIx64 in this file as follows:
|
||||
* @verbatim
|
||||
typedef unsigned int uint32_t
|
||||
typedef unsigned long long uint64_t
|
||||
#define PRIu64 "llu"
|
||||
#define PRIx64 "llx"
|
||||
@endverbatim
|
||||
* uint32_t must be exactly 32-bit unsigned integer type (no more, no
|
||||
* less), and uint64_t must be exactly 64-bit unsigned integer type.
|
||||
* PRIu64 and PRIx64 are used for printf function to print 64-bit
|
||||
* unsigned int and 64-bit unsigned int in hexadecimal format.
|
||||
*/
|
||||
|
||||
#ifndef SFMT_H
|
||||
#define SFMT_H
|
||||
|
||||
#ifdef __cplusplus
|
||||
extern "C" {
|
||||
#endif
|
||||
|
||||
#include <stdio.h>
|
||||
|
||||
#if defined(__STDC_VERSION__) && (__STDC_VERSION__ >= 199901L)
|
||||
#include <inttypes.h>
|
||||
#elif defined(_MSC_VER) || defined(__BORLANDC__)
|
||||
typedef unsigned int uint32_t;
|
||||
typedef unsigned __int64 uint64_t;
|
||||
#define inline __inline
|
||||
#else
|
||||
#include <inttypes.h>
|
||||
#if defined(__GNUC__)
|
||||
#define inline __inline__
|
||||
#endif
|
||||
#endif
|
||||
|
||||
#ifndef PRIu64
|
||||
#if defined(_MSC_VER) || defined(__BORLANDC__)
|
||||
#define PRIu64 "I64u"
|
||||
#define PRIx64 "I64x"
|
||||
#else
|
||||
#define PRIu64 "llu"
|
||||
#define PRIx64 "llx"
|
||||
#endif
|
||||
#endif
|
||||
|
||||
#if defined(__GNUC__)
|
||||
#define ALWAYSINLINE __attribute__((always_inline))
|
||||
#else
|
||||
#define ALWAYSINLINE
|
||||
#endif
|
||||
|
||||
#if defined(_MSC_VER)
|
||||
#if _MSC_VER >= 1200
|
||||
#define PRE_ALWAYS __forceinline
|
||||
#else
|
||||
#define PRE_ALWAYS inline
|
||||
#endif
|
||||
#else
|
||||
#define PRE_ALWAYS inline
|
||||
#endif
|
||||
|
||||
uint32_t gen_rand32(void);
|
||||
uint64_t gen_rand64(void);
|
||||
void fill_array32(uint32_t *array, int size);
|
||||
void fill_array64(uint64_t *array, int size);
|
||||
void init_gen_rand(uint32_t seed);
|
||||
void init_by_array(uint32_t *init_key, int key_length);
|
||||
const char *get_idstring(void);
|
||||
int get_min_array_size32(void);
|
||||
int get_min_array_size64(void);
|
||||
|
||||
/* These real versions are due to Isaku Wada */
|
||||
/** generates a random number on [0,1]-real-interval */
|
||||
inline static double to_real1(uint32_t v)
|
||||
{
|
||||
return v * (1.0/4294967295.0);
|
||||
/* divided by 2^32-1 */
|
||||
}
|
||||
|
||||
/** generates a random number on [0,1]-real-interval */
|
||||
inline static double genrand_real1(void)
|
||||
{
|
||||
return to_real1(gen_rand32());
|
||||
}
|
||||
|
||||
/** generates a random number on [0,1)-real-interval */
|
||||
inline static double to_real2(uint32_t v)
|
||||
{
|
||||
return v * (1.0/4294967296.0);
|
||||
/* divided by 2^32 */
|
||||
}
|
||||
|
||||
/** generates a random number on [0,1)-real-interval */
|
||||
inline static double genrand_real2(void)
|
||||
{
|
||||
return to_real2(gen_rand32());
|
||||
}
|
||||
|
||||
/** generates a random number on (0,1)-real-interval */
|
||||
inline static double to_real3(uint32_t v)
|
||||
{
|
||||
return (((double)v) + 0.5)*(1.0/4294967296.0);
|
||||
/* divided by 2^32 */
|
||||
}
|
||||
|
||||
/** generates a random number on (0,1)-real-interval */
|
||||
inline static double genrand_real3(void)
|
||||
{
|
||||
return to_real3(gen_rand32());
|
||||
}
|
||||
/** These real versions are due to Isaku Wada */
|
||||
|
||||
/** generates a random number on [0,1) with 53-bit resolution*/
|
||||
inline static double to_res53(uint64_t v)
|
||||
{
|
||||
return v * (1.0/18446744073709551616.0L);
|
||||
}
|
||||
|
||||
/** generates a random number on [0,1) with 53-bit resolution from two
|
||||
* 32 bit integers */
|
||||
inline static double to_res53_mix(uint32_t x, uint32_t y)
|
||||
{
|
||||
return to_res53(x | ((uint64_t)y << 32));
|
||||
}
|
||||
|
||||
/** generates a random number on [0,1) with 53-bit resolution
|
||||
*/
|
||||
inline static double genrand_res53(void)
|
||||
{
|
||||
return to_res53(gen_rand64());
|
||||
}
|
||||
|
||||
/** generates a random number on [0,1) with 53-bit resolution
|
||||
using 32bit integer.
|
||||
*/
|
||||
inline static double genrand_res53_mix(void)
|
||||
{
|
||||
uint32_t x, y;
|
||||
|
||||
x = gen_rand32();
|
||||
y = gen_rand32();
|
||||
return to_res53_mix(x, y);
|
||||
}
|
||||
#ifdef __cplusplus
|
||||
}
|
||||
#endif
|
||||
#endif
|
Loading…
Reference in a new issue