mirror of
https://github.com/lcn2/calc.git
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254 lines
8.7 KiB
C
254 lines
8.7 KiB
C
/*
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* Copyright (c) 1997 by Landon Curt Noll. All Rights Reserved.
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*
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* Permission to use, copy, modify, and distribute this software and
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* its documentation for any purpose and without fee is hereby granted,
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* provided that the above copyright, this permission notice and text
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* this comment, and the disclaimer below appear in all of the following:
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*
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* supporting documentation
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* source copies
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* source works derived from this source
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* binaries derived from this source or from derived source
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*
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* LANDON CURT NOLL DISCLAIMS ALL WARRANTIES WITH REGARD TO THIS SOFTWARE,
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* INCLUDING ALL IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS. IN NO
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* EVENT SHALL LANDON CURT NOLL BE LIABLE FOR ANY SPECIAL, INDIRECT OR
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* CONSEQUENTIAL DAMAGES OR ANY DAMAGES WHATSOEVER RESULTING FROM LOSS OF
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* USE, DATA OR PROFITS, WHETHER IN AN ACTION OF CONTRACT, NEGLIGENCE OR
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* OTHER TORTIOUS ACTION, ARISING OUT OF OR IN CONNECTION WITH THE USE OR
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* PERFORMANCE OF THIS SOFTWARE.
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*
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* Prior to calc 2.9.3t9, these routines existed as a calc library called
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* cryrand.cal. They have been rewritten in C for performance as well
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* as to make them available directly from libcalc.a.
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*
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* Comments, suggestions, bug fixes and questions about these routines
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* are welcome. Send EMail to the address given below.
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*
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* Happy bit twiddling,
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*
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* Landon Curt Noll
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* http://reality.sgi.com/chongo
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*
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* chongo <was here> /\../\
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*/
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/*
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* random number generator - see zrand.c for details
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*/
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#if !defined(__ZRAND_H__)
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#define __ZRAND_H__
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#include "value.h"
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#include "have_const.h"
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/*
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* a55 generator defines
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*
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* NOTE: SBITS must be a power of two to make the (&= (SBITS-1))
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* in slotcp() to work.
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*/
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#define SBITS (64) /* size of additive or shuffle entry in bits */
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#define SBYTES (SBITS/8) /* size of additive or shuffle entry in bytes */
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#define SHALFS (SBYTES/sizeof(HALF)) /* size in HALFs */
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/*
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* seed defines
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*/
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#define SEEDXORBITS 64 /* low bits of a55 seed devoted to xor */
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/*
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* shuffle table defines
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*/
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#define SHUFPOW 8 /* power of 2 size of the shuffle table */
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#define SHUFCNT (1 << SHUFPOW) /* size of shuffle table */
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#define SHUFLEN (SLEN*SHUFCNT) /* length of shuffle table in FULLs */
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#define SHUFMASK (SHUFLEN-1) /* mask for shuffle table entry selection */
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/*
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* additive 55 constants
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*/
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#define A55 55 /* slots in an additive 55 table */
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#define INIT_J 23 /* initial first walking table index */
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#define INIT_K 54 /* initial second walking table index */
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/*
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* additive 55 table defines
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*
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* SLEN - length in FULLs of an additive 55 slot
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*
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* SVAL(a,b) - form a 64 bit hex slot entry in the additive 55 table
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* a: up to 8 hex digits without the leading 0x (upper half)
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* b: up to 8 hex digits without the leading 0x (lower half)
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*
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* NOTE: Due to a SunOS cc bug, don't put spaces in the SVAL call!
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*
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* SHVAL(a,b,c,d) - form an 64 bit array of HALFs
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* a: up to 4 hex digits without the leading 0x (upper half)
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* b: up to 4 hex digits without the leading 0x (2nd half)
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* c: up to 4 hex digits without the leading 0x (3rd half)
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* d: up to 4 hex digits without the leading 0x (lower half)
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*
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* NOTE: Due to a SunOS cc bug, don't put spaces in the SHVAL call!
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*
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* SLOAD(s,i,z) - load table slot i from additive 55 state s with zvalue z
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* s: type RAND
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* i: type int, s.slot[i] slot index
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* z: type ZVALUE, what to load into s.slot[i]
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*
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* SADD(s,k,j) - slot[k] += slot[j]
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* s: type RAND
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* k: type int, s.slot[k] slot index, what to gets changed
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* j: type int, s.slot[j] slot index, what to add to s.slot[k]
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* (may use local variable tmp)
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*
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* SINDX(s,k) - select the shuffle table entry from slot[k] (uses top bits)
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* s: type RAND
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* k: type int, s.slot[k] slot index, selects shuffle entry
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* result type int, refers to s.shuf[SINDX(s,k)]
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*
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* SBUFFER(s,t) - load a55 buffer with t
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* s: type RAND
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* t: type int, s.shuf[t] entry index, replace buffer with it
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*
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* SSHUF(s,t,k) - save slot[k] into shuffle entry t
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* s: type RAND
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* t: type int, s.shuf[t] entry index, what gets changed
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* k: type int, s.slot[k] slot index, load into s.shuf[t]
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*
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* SSWAP(s,j,k) - swap slot[j] with slot[k]
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* s: type RAND
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* j: type int, s.slot[j] slot index, goes into s.slot[k]
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* k: type int, s.slot[k] slot index, goes into s.slot[j]
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* (uses local variable tmp)
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*
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* SMOD64(t,z) - t = seed z mod 2^64
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* t: type FULL*, array of FULLs that get z mod 2^64
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* z: type ZVALUE, what gets (mod 2^64) placed into t
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*
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* SOXR(s,i,v) - xor slot[i] with lower 64 bits of slot value v
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* s: type RAND
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* i: type int, s.slot[i] slot index, what gets xored
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* v: type FULL*, 64 bit value to xor into s.slot[i]
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*
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* SCNT - length of an additive 55 table in FULLs
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*/
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#if FULL_BITS == SBITS
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# define SLEN 1 /* a 64 bit slot can be held in a FULL */
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# if defined(FORCE_STDC) || (defined(__STDC__) && __STDC__ != 0) || defined(__cplusplus)
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# define SVAL(a,b) (FULL)U(0x ## a ## b)
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# define SHVAL(a,b,c,d) (HALF)0x ## c ## d, (HALF)0x ## a ## b
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# else
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# define SVAL(a,b) (FULL)U(0x/**/a/**/b)
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# define SHVAL(a,b,c,d) (HALF)0x/**/c/**/d,(HALF)0x/**/a/**/b
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# endif
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#define SLOAD(s,i,z) ((s).slot[i] = ztofull(z))
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#define SADD(s,k,j) ((s).slot[k] += (s).slot[j])
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#define SINDX(s,k) ((int)((s).slot[k] >> (FULL_BITS - SHUFPOW)))
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#define SBUFFER(s,t) {(s).buffer[0] = ((s).shuf[t] & BASE1); \
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(s).buffer[1] = ((s).shuf[t] >> BASEB); \
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}
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#define SSHUF(s,t,k) ((s).shuf[t] = (s).slot[k])
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#define SSWAP(s,j,k) {FULL tmp = (s).slot[j]; \
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(s).slot[j] = (s).slot[k]; \
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(s).slot[k] = tmp; \
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}
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#define SMOD64(t,z) ((t)[0] = ztofull(z))
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#define SXOR(s,i,v) ((s).slot[i] ^= (v)[0])
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#elif 2*FULL_BITS == SBITS
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# define SLEN 2 /* a 64 bit slot needs 2 FULLs */
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# if defined(FORCE_STDC) || (defined(__STDC__) && __STDC__ != 0) || defined(__cplusplus)
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# define SVAL(a,b) (FULL)0x##b, (FULL)0x##a
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# define SHVAL(a,b,c,d) (HALF)0x##d, (HALF)0x##c, \
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(HALF)0x##b, (HALF)0x##a
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# else
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/* NOTE: Due to a SunOS cc bug, don't put spaces in the SVAL call! */
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# define SVAL(a,b) (FULL)0x/**/b, (FULL)0x/**/a
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/* NOTE: Due to a SunOS cc bug, don't put spaces in the SHVAL call! */
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# define SHVAL(a,b,c,d) (HALF)0x/**/d, (HALF)0x/**/c, \
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(HALF)0x/**/b, (HALF)0x/**/a
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# endif
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#define SLOAD(s,i,z) {(s).slot[(i)<<1] = ztofull(z); \
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(s).slot[1+((i)<<1)] = \
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(((z).len <= 2) ? (FULL)0 : \
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(((z).len == 3) ? (FULL)((z).v[2]) : \
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((FULL)((z).v[2]) + ((FULL)((z).v[3]) << BASEB)))); \
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}
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#define SADD(s,k,j) {FULL tmp = (s).slot[(k)<<1]; \
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(s).slot[(k)<<1] += (s).slot[(j)<<1]; \
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(s).slot[1+((k)<<1)] += ((tmp <= (s).slot[(k)<<1]) ? \
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(s).slot[1+((j)<<1)] : \
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(s).slot[1+((j)<<1)] + 1); \
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}
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#define SINDX(s,k) ((int)((s).slot[1+((k)<<1)] >> (FULL_BITS - SHUFPOW)))
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#define SBUFFER(s,t) {(s).buffer[0] = ((s).shuf[(t)<<1] & BASE1); \
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(s).buffer[1] = ((s).shuf[(t)<<1] >> BASEB); \
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(s).buffer[2] = ((s).shuf[1+((t)<<1)] & BASE1); \
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(s).buffer[3] = ((s).shuf[1+((t)<<1)] >> BASEB); \
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}
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#define SSHUF(s,t,k) {(s).shuf[(t)<<1] = (s).slot[(k)<<1]; \
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(s).shuf[1+((t)<<1)] = (s).slot[1+((k)<<1)]; \
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}
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#define SSWAP(s,j,k) {FULL tmp = (s).slot[(j)<<1]; \
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(s).slot[(j)<<1] = (s).slot[(k)<<1]; \
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(s).slot[(k)<<1] = tmp; \
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tmp = (s).slot[1+((j)<<1)]; \
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(s).slot[1+((j)<<1)] = (s).slot[1+((k)<<1)]; \
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(s).slot[1+((k)<<1)] = tmp; \
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}
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#define SMOD64(t,z) {(t)[0] = ztofull(z); \
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(t)[1] = (((z).len <= 2) ? (FULL)0 : \
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(((z).len == 3) ? (FULL)((z).v[2]) : \
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((FULL)((z).v[2]) + ((FULL)((z).v[3]) << BASEB)))); \
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}
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#define SXOR(s,i,v) {(s).slot[(i)<<1] ^= (v)[0]; \
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(s).slot[1+((i)<<1)] ^= (v)[1]; \
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}
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#else
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/\../\ FULL_BITS must be 32 or 64 /\../\ !!!
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#endif
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#define SCNT (SLEN*A55) /* length of additive 55 table in FULLs */
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/*
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* a55 generator state
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*/
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struct rand {
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int seeded; /* 1 => state has been seeded */
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int bits; /* buffer bit count */
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FULL buffer[SLEN]; /* unused random bits from last call */
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int j; /* first walking table index */
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int k; /* second walking table index */
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FULL slot[SCNT]; /* additive 55 table */
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FULL shuf[SHUFLEN]; /* shuffle table entries */
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};
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/*
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* a55 generator function declarations
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*/
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extern RAND *zsrand(CONST ZVALUE *seed, CONST MATRIX *pmat55);
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extern RAND *zsetrand(CONST RAND *state);
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extern void zrandskip(long count);
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extern void zrand(long count, ZVALUE *res);
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extern void zrandrange(CONST ZVALUE low, CONST ZVALUE beyond, ZVALUE *res);
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extern long irand(long s);
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extern RAND *randcopy(CONST RAND *rand);
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extern void randfree(RAND *rand);
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extern BOOL randcmp(CONST RAND *s1, CONST RAND *s2);
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extern void randprint(CONST RAND *state, int flags);
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#endif /* !__ZRAND_H__ */
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