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MERSENNETWISTER.h
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00001 
00004 // MersenneTwister.h
00005 // Mersenne Twister random number generator -- a C++ class MTRand
00006 // Based on code by Makoto Matsumoto, Takuji Nishimura, and Shawn Cokus
00007 // Richard J. Wagner  v1.0  15 May 2003  rjwagner@writeme.com
00008 
00009 // The Mersenne Twister is an algorithm for generating random numbers.  It
00010 // was designed with consideration of the flaws in various other generators.
00011 // The period, 2^19937-1, and the order of equidistribution, 623 dimensions,
00012 // are far greater.  The generator is also fast; it avoids multiplication and
00013 // division, and it benefits from caches and pipelines.  For more information
00014 // see the inventors' web page at http://www.math.keio.ac.jp/~matumoto/emt.html
00015 
00016 // Reference
00017 // M. Matsumoto and T. Nishimura, "Mersenne Twister: A 623-Dimensionally
00018 // Equidistributed Uniform Pseudo-Random Number Generator", ACM Transactions on
00019 // Modeling and Computer Simulation, Vol. 8, No. 1, January 1998, pp 3-30.
00020 
00021 // Copyright (C) 1997 - 2002, Makoto Matsumoto and Takuji Nishimura,
00022 // Copyright (C) 2000 - 2003, Richard J. Wagner
00023 // All rights reserved.                          
00024 //
00025 // Redistribution and use in source and binary forms, with or without
00026 // modification, are permitted provided that the following conditions
00027 // are met:
00028 //
00029 //   1. Redistributions of source code must retain the above copyright
00030 //      notice, this list of conditions and the following disclaimer.
00031 //
00032 //   2. Redistributions in binary form must reproduce the above copyright
00033 //      notice, this list of conditions and the following disclaimer in the
00034 //      documentation and/or other materials provided with the distribution.
00035 //
00036 //   3. The names of its contributors may not be used to endorse or promote 
00037 //      products derived from this software without specific prior written 
00038 //      permission.
00039 //
00040 // THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS
00041 // "AS IS" AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT
00042 // LIMITED TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR
00043 // A PARTICULAR PURPOSE ARE DISCLAIMED.  IN NO EVENT SHALL THE COPYRIGHT OWNER OR
00044 // CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL,
00045 // EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO,
00046 // PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR
00047 // PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF
00048 // LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING
00049 // NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF THIS
00050 // SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
00051 
00052 // The original code included the following notice:
00053 //
00054 //     When you use this, send an email to: matumoto@math.keio.ac.jp
00055 //     with an appropriate reference to your work.
00056 //
00057 // It would be nice to CC: rjwagner@writeme.com and Cokus@math.washington.edu
00058 // when you write.
00059 
00060 #ifndef MERSENNETWISTER_H
00061 #define MERSENNETWISTER_H
00062 
00063 // Not thread safe (unless auto-initialization is avoided and each thread has
00064 // its own MTRand object)
00065 
00066 #include <iostream>
00067 #include <limits.h>
00068 #include <stdio.h>
00069 #include <time.h>
00070 #include <math.h>
00071 
00072 class MTRand {
00073 // Data
00074 public:
00075         typedef unsigned long uint32;  // unsigned integer type, at least 32 bits
00076         
00077         enum { N = 624 };       // length of state vector
00078         enum { SAVE = N + 1 };  // length of array for save()
00079 
00080 protected:
00081         enum { M = 397 };  // period parameter
00082         
00083         uint32 state[N];   // internal state
00084         uint32 *pNext;     // next value to get from state
00085         int left;          // number of values left before reload needed
00086 
00087 
00088 //Methods
00089 public:
00090         MTRand( const uint32& oneSeed );  // initialize with a simple uint32
00091         MTRand( uint32 *const bigSeed, uint32 const seedLength = N );  // or an array
00092         MTRand();  // auto-initialize with /dev/urandom or time() and clock()
00093         
00094         // Do NOT use for CRYPTOGRAPHY without securely hashing several returned
00095         // values together, otherwise the generator state can be learned after
00096         // reading 624 consecutive values.
00097         
00098         // Access to 32-bit random numbers
00099         double rand();                          // real number in [0,1]
00100         double rand( const double& n );         // real number in [0,n]
00101         double randExc();                       // real number in [0,1)
00102         double randExc( const double& n );      // real number in [0,n)
00103         double randDblExc();                    // real number in (0,1)
00104         double randDblExc( const double& n );   // real number in (0,n)
00105         uint32 randInt();                       // integer in [0,2^32-1]
00106         uint32 randInt( const uint32& n );      // integer in [0,n] for n < 2^32
00107         double operator()() { return rand(); }  // same as rand()
00108         
00109         // Access to 53-bit random numbers (capacity of IEEE double precision)
00110         double rand53();  // real number in [0,1)
00111         
00112         // Access to nonuniform random number distributions
00113         double randNorm( const double& mean = 0.0, const double& variance = 1.0 );
00114         
00115         // Re-seeding functions with same behavior as initializers
00116         void seed( const uint32 oneSeed );
00117         void seed( uint32 *const bigSeed, const uint32 seedLength = N );
00118         void seed();
00119         
00120         // Saving and loading generator state
00121         void save( uint32* saveArray ) const;  // to array of size SAVE
00122         void load( uint32 *const loadArray );  // from such array
00123         friend std::ostream& operator<<( std::ostream& os, const MTRand& mtrand );
00124         friend std::istream& operator>>( std::istream& is, MTRand& mtrand );
00125 
00126 protected:
00127         void initialize( const uint32 oneSeed );
00128         void reload();
00129         uint32 hiBit( const uint32& u ) const { return u & 0x80000000UL; }
00130         uint32 loBit( const uint32& u ) const { return u & 0x00000001UL; }
00131         uint32 loBits( const uint32& u ) const { return u & 0x7fffffffUL; }
00132         uint32 mixBits( const uint32& u, const uint32& v ) const
00133                 { return hiBit(u) | loBits(v); }
00134         uint32 twist( const uint32& m, const uint32& s0, const uint32& s1 ) const
00135                 { return m ^ (mixBits(s0,s1)>>1) ^ (-loBit(s1) & 0x9908b0dfUL); }
00136         static uint32 hash( time_t t, clock_t c );
00137 };
00138 
00139 
00140 inline MTRand::MTRand( const uint32& oneSeed )
00141         { seed(oneSeed); }
00142 
00143 inline MTRand::MTRand( uint32 *const bigSeed, const uint32 seedLength )
00144         { seed(bigSeed,seedLength); }
00145 
00146 inline MTRand::MTRand()
00147         { seed(); }
00148 
00149 inline double MTRand::rand()
00150         { return double(randInt()) * (1.0/4294967295.0); }
00151 
00152 inline double MTRand::rand( const double& n )
00153         { return rand() * n; }
00154 
00155 inline double MTRand::randExc()
00156         { return double(randInt()) * (1.0/4294967296.0); }
00157 
00158 inline double MTRand::randExc( const double& n )
00159         { return randExc() * n; }
00160 
00161 inline double MTRand::randDblExc()
00162         { return ( double(randInt()) + 0.5 ) * (1.0/4294967296.0); }
00163 
00164 inline double MTRand::randDblExc( const double& n )
00165         { return randDblExc() * n; }
00166 
00167 inline double MTRand::rand53()
00168 {
00169         uint32 a = randInt() >> 5, b = randInt() >> 6;
00170         return ( a * 67108864.0 + b ) * (1.0/9007199254740992.0);  // by Isaku Wada
00171 }
00172 
00173 inline double MTRand::randNorm( const double& mean, const double& variance )
00174 {
00175         // Return a real number from a normal (Gaussian) distribution with given
00176         // mean and variance by Box-Muller method
00177         double r = sqrt( -2.0 * log( 1.0-randDblExc()) ) * variance;
00178         double phi = 2.0 * 3.14159265358979323846264338328 * randExc();
00179         return mean + r * cos(phi);
00180 }
00181 
00182 inline MTRand::uint32 MTRand::randInt()
00183 {
00184         // Pull a 32-bit integer from the generator state
00185         // Every other access function simply transforms the numbers extracted here
00186         
00187         if( left == 0 ) reload();
00188         --left;
00189                 
00190         register uint32 s1;
00191         s1 = *pNext++;
00192         s1 ^= (s1 >> 11);
00193         s1 ^= (s1 <<  7) & 0x9d2c5680UL;
00194         s1 ^= (s1 << 15) & 0xefc60000UL;
00195         return ( s1 ^ (s1 >> 18) );
00196 }
00197 
00198 inline MTRand::uint32 MTRand::randInt( const uint32& n )
00199 {
00200         // Find which bits are used in n
00201         // Optimized by Magnus Jonsson (magnus@smartelectronix.com)
00202         uint32 used = n;
00203         used |= used >> 1;
00204         used |= used >> 2;
00205         used |= used >> 4;
00206         used |= used >> 8;
00207         used |= used >> 16;
00208         
00209         // Draw numbers until one is found in [0,n]
00210         uint32 i;
00211         do
00212                 i = randInt() & used;  // toss unused bits to shorten search
00213         while( i > n );
00214         return i;
00215 }
00216 
00217 
00218 inline void MTRand::seed( const uint32 oneSeed )
00219 {
00220         // Seed the generator with a simple uint32
00221         initialize(oneSeed);
00222         reload();
00223 }
00224 
00225 
00226 inline void MTRand::seed( uint32 *const bigSeed, const uint32 seedLength )
00227 {
00228         // Seed the generator with an array of uint32's
00229         // There are 2^19937-1 possible initial states.  This function allows
00230         // all of those to be accessed by providing at least 19937 bits (with a
00231         // default seed length of N = 624 uint32's).  Any bits above the lower 32
00232         // in each element are discarded.
00233         // Just call seed() if you want to get array from /dev/urandom
00234         initialize(19650218UL);
00235         register int i = 1;
00236         register uint32 j = 0;
00237         register int k = ( N > seedLength ? N : seedLength );
00238         for( ; k; --k )
00239         {
00240                 state[i] =
00241                         state[i] ^ ( (state[i-1] ^ (state[i-1] >> 30)) * 1664525UL );
00242                 state[i] += ( bigSeed[j] & 0xffffffffUL ) + j;
00243                 state[i] &= 0xffffffffUL;
00244                 ++i;  ++j;
00245                 if( i >= N ) { state[0] = state[N-1];  i = 1; }
00246                 if( j >= seedLength ) j = 0;
00247         }
00248         for( k = N - 1; k; --k )
00249         {
00250                 state[i] =
00251                         state[i] ^ ( (state[i-1] ^ (state[i-1] >> 30)) * 1566083941UL );
00252                 state[i] -= i;
00253                 state[i] &= 0xffffffffUL;
00254                 ++i;
00255                 if( i >= N ) { state[0] = state[N-1];  i = 1; }
00256         }
00257         state[0] = 0x80000000UL;  // MSB is 1, assuring non-zero initial array
00258         reload();
00259 }
00260 
00261 
00262 inline void MTRand::seed()
00263 {
00264   // seed deterministically to produce reproducible runs
00265   seed(123456);
00266   
00267   /*
00268         // Seed the generator with an array from /dev/urandom if available
00269         // Otherwise use a hash of time() and clock() values
00270         
00271         // First try getting an array from /dev/urandom
00272         FILE* urandom = fopen( "/dev/urandom", "rb" );
00273         if( urandom )
00274         {
00275                 uint32 bigSeed[N];
00276                 register uint32 *s = bigSeed;
00277                 register int i = N;
00278                 register bool success = true;
00279                 while( success && i-- )
00280                         success = fread( s++, sizeof(uint32), 1, urandom );
00281                 fclose(urandom);
00282                 if( success ) { seed( bigSeed, N );  return; }
00283         }
00284         
00285         // Was not successful, so use time() and clock() instead
00286         seed( hash( time(NULL), clock() ) );
00287   */
00288 }
00289 
00290 
00291 inline void MTRand::initialize( const uint32 seed )
00292 {
00293         // Initialize generator state with seed
00294         // See Knuth TAOCP Vol 2, 3rd Ed, p.106 for multiplier.
00295         // In previous versions, most significant bits (MSBs) of the seed affect
00296         // only MSBs of the state array.  Modified 9 Jan 2002 by Makoto Matsumoto.
00297         register uint32 *s = state;
00298         register uint32 *r = state;
00299         register int i = 1;
00300         *s++ = seed & 0xffffffffUL;
00301         for( ; i < N; ++i )
00302         {
00303                 *s++ = ( 1812433253UL * ( *r ^ (*r >> 30) ) + i ) & 0xffffffffUL;
00304                 r++;
00305         }
00306 }
00307 
00308 
00309 inline void MTRand::reload()
00310 {
00311         // Generate N new values in state
00312         // Made clearer and faster by Matthew Bellew (matthew.bellew@home.com)
00313         register uint32 *p = state;
00314         register int i;
00315         for( i = N - M; i--; ++p )
00316                 *p = twist( p[M], p[0], p[1] );
00317         for( i = M; --i; ++p )
00318                 *p = twist( p[M-N], p[0], p[1] );
00319         *p = twist( p[M-N], p[0], state[0] );
00320 
00321         left = N, pNext = state;
00322 }
00323 
00324 
00325 inline MTRand::uint32 MTRand::hash( time_t t, clock_t c )
00326 {
00327         // Get a uint32 from t and c
00328         // Better than uint32(x) in case x is floating point in [0,1]
00329         // Based on code by Lawrence Kirby (fred@genesis.demon.co.uk)
00330 
00331         static uint32 differ = 0;  // guarantee time-based seeds will change
00332 
00333         uint32 h1 = 0;
00334         unsigned char *p = (unsigned char *) &t;
00335         for( size_t i = 0; i < sizeof(t); ++i )
00336         {
00337                 h1 *= UCHAR_MAX + 2U;
00338                 h1 += p[i];
00339         }
00340         uint32 h2 = 0;
00341         p = (unsigned char *) &c;
00342         for( size_t j = 0; j < sizeof(c); ++j )
00343         {
00344                 h2 *= UCHAR_MAX + 2U;
00345                 h2 += p[j];
00346         }
00347         return ( h1 + differ++ ) ^ h2;
00348 }
00349 
00350 
00351 inline void MTRand::save( uint32* saveArray ) const
00352 {
00353         register uint32 *sa = saveArray;
00354         register const uint32 *s = state;
00355         register int i = N;
00356         for( ; i--; *sa++ = *s++ ) {}
00357         *sa = left;
00358 }
00359 
00360 
00361 inline void MTRand::load( uint32 *const loadArray )
00362 {
00363         register uint32 *s = state;
00364         register uint32 *la = loadArray;
00365         register int i = N;
00366         for( ; i--; *s++ = *la++ ) {}
00367         left = *la;
00368         pNext = &state[N-left];
00369 }
00370 
00371 
00372 inline std::ostream& operator<<( std::ostream& os, const MTRand& mtrand )
00373 {
00374         register const MTRand::uint32 *s = mtrand.state;
00375         register int i = mtrand.N;
00376         for( ; i--; os << *s++ << "\t" ) {}
00377         return os << mtrand.left;
00378 }
00379 
00380 
00381 inline std::istream& operator>>( std::istream& is, MTRand& mtrand )
00382 {
00383         register MTRand::uint32 *s = mtrand.state;
00384         register int i = mtrand.N;
00385         for( ; i--; is >> *s++ ) {}
00386         is >> mtrand.left;
00387         mtrand.pNext = &mtrand.state[mtrand.N-mtrand.left];
00388         return is;
00389 }
00390 
00391 #endif  // MERSENNETWISTER_H
00392 
00393 // Change log:
00394 //
00395 // v0.1 - First release on 15 May 2000
00396 //      - Based on code by Makoto Matsumoto, Takuji Nishimura, and Shawn Cokus
00397 //      - Translated from C to C++
00398 //      - Made completely ANSI compliant
00399 //      - Designed convenient interface for initialization, seeding, and
00400 //        obtaining numbers in default or user-defined ranges
00401 //      - Added automatic seeding from /dev/urandom or time() and clock()
00402 //      - Provided functions for saving and loading generator state
00403 //
00404 // v0.2 - Fixed bug which reloaded generator one step too late
00405 //
00406 // v0.3 - Switched to clearer, faster reload() code from Matthew Bellew
00407 //
00408 // v0.4 - Removed trailing newline in saved generator format to be consistent
00409 //        with output format of built-in types
00410 //
00411 // v0.5 - Improved portability by replacing static const int's with enum's and
00412 //        clarifying return values in seed(); suggested by Eric Heimburg
00413 //      - Removed MAXINT constant; use 0xffffffffUL instead
00414 //
00415 // v0.6 - Eliminated seed overflow when uint32 is larger than 32 bits
00416 //      - Changed integer [0,n] generator to give better uniformity
00417 //
00418 // v0.7 - Fixed operator precedence ambiguity in reload()
00419 //      - Added access for real numbers in (0,1) and (0,n)
00420 //
00421 // v0.8 - Included time.h header to properly support time_t and clock_t
00422 //
00423 // v1.0 - Revised seeding to match 26 Jan 2002 update of Nishimura and Matsumoto
00424 //      - Allowed for seeding with arrays of any length
00425 //      - Added access for real numbers in [0,1) with 53-bit resolution
00426 //      - Added access for real numbers from normal (Gaussian) distributions
00427 //      - Increased overall speed by optimizing twist()
00428 //      - Doubled speed of integer [0,n] generation
00429 //      - Fixed out-of-range number generation on 64-bit machines
00430 //      - Improved portability by substituting literal constants for long enum's
00431 //      - Changed license from GNU LGPL to BSD
00432