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libfec/viterbi27_sse2.c-saved
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2026-06-22 11:39:50 +03:00

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// K=7 r=1/2 Viterbi decoder for SSE2
// Feb 2004, Phil Karn, KA9Q
// Updated April 2014
#include <stdio.h>
#include <stdlib.h>
#include <memory.h>
#include <xmmintrin.h>
#include <stdint.h>
#include "fec.h"
static inline int parity(int x){
return __builtin_parity(x);
}
int encode_27(
unsigned char *symbols, // Output buffer, 2*8*nbytes
const unsigned char *data, // Input buffer, nbytes
unsigned int nbytes) // Number of bytes in data
{
unsigned int encstate;
int i;
encstate = 0;
while(nbytes-- != 0){
encstate |= *data++;
for(i=0;i<8;i++){ // Transmit 8 bits, MSB first
encstate <<= 1;
*symbols++ = parity(encstate & (V27POLYB << 8));
*symbols++ = !parity(encstate & (V27POLYA << 8));
}
}
if((encstate & (63 << 8)) != 0)
return -1; // Warn if frame wasn't tailed to 0
return 0;
}
typedef union { uint8_t c[64]; __m128i v[4]; } metric_t;
typedef union { uint32_t w[2]; uint8_t c[8]; uint16_t s[4]; __m64 v[1];} decision_t;
union branchtab27 { uint8_t c[32]; __m128i v[2];} Branchtab27_sse2[2];
// State info for instance of Viterbi decoder
// Don't change this without also changing references in sse2bfly27.s!
struct v27 {
metric_t metrics1; // path metric buffer 1
metric_t metrics2; // path metric buffer 2
decision_t *dp; // Pointer to current decision
metric_t *old_metrics,*new_metrics; // Pointers to path metrics, swapped on every bit
decision_t *decisions; // Beginning of decisions for block
};
// Initialize Viterbi decoder for start of new frame
int init_viterbi27(void *p,int starting_state){
struct v27 *vp = p;
int i;
if(p == NULL)
return -1;
for(i=0;i<64;i++)
vp->metrics1.c[i] = 63;
vp->old_metrics = &vp->metrics1;
vp->new_metrics = &vp->metrics2;
vp->dp = vp->decisions;
vp->old_metrics->c[starting_state & 63] = 0; // Bias known start state
return 0;
}
// Create a new instance of a Viterbi decoder
void *create_viterbi27(int len){
void *p;
struct v27 *vp;
int state;
for(state=0;state < 32;state++){
Branchtab27_sse2[0].c[state] = parity((2*state) & V27POLYB) ? 255 : 0;
Branchtab27_sse2[1].c[state] = !parity((2*state) & V27POLYA) ? 255 : 0;
}
// Ordinary malloc() only returns 8-byte alignment, we need 16
if(posix_memalign(&p, sizeof(__m128i),sizeof(struct v27)))
return NULL;
vp = (struct v27 *)p;
if((p = malloc(len*sizeof(decision_t))) == NULL){
free(vp);
return NULL;
}
vp->decisions = (decision_t *)p;
init_viterbi27(vp,0);
return vp;
}
// Viterbi chainback
int chainback_viterbi27(
void *p,
unsigned char *data, // Decoded output data
unsigned int nbits, // Number of data bits
unsigned int endstate){ // Terminal encoder state
struct v27 *vp = p;
decision_t *d;
unsigned char dbyte = 0;
if(p == NULL)
return -1;
d = vp->decisions;
endstate &= 63;
while(nbits-- != 0){
int bit;
// Accumulate decoded data bits as they fall off the right end of endstate
dbyte = ((endstate & 1) << 7) | (dbyte >> 1);
if((nbits % 8) == 0)
data[nbits/8] = dbyte;
// Extract decision and push onto left (tail) end of encoder
bit = (d[nbits].w[endstate/32] >> (endstate%32)) & 1;
endstate = (bit << 5) | (endstate >> 1);
}
return 0;
}
// Delete instance of a Viterbi decoder
void delete_viterbi27(void *p){
struct v27 *vp = p;
if(vp != NULL){
free(vp->decisions);
free(vp);
}
}
int update_viterbi27_blk(void *p,unsigned char *syms,int nbits){
struct v27 *vp = p;
decision_t *d;
if(p == NULL)
return 0;
d = (decision_t *)vp->dp;
while(nbits--){
__m128i sym0v,sym1v;
void *tmp;
int i;
// Splat the 0th symbol across sym0v, the 1st symbol across sym1v, etc
sym0v = _mm_set1_epi8(syms[0]);
sym1v = _mm_set1_epi8(syms[1]);
syms += 2;
#if 0
for(i=0;i<2;i++){
__m128i decision0,decision1,metric,m_metric,m0,m1,m2,m3,survivor0,survivor1;
/* Form branch metrics */
metric = _mm_avg_epu8(_mm_xor_si128(Branchtab27_sse2[0].v[i],sym0v),_mm_xor_si128(Branchtab27_sse2[1].v[i],sym1v));
// There's no packed bytes right shift in SSE2, so we use the word version and mask
// (I'm *really* starting to like Altivec...)
metric = _mm_srli_epi16(metric,3);
metric = _mm_and_si128(metric,_mm_set1_epi8(31));
m_metric = _mm_sub_epi8(_mm_set1_epi8(31),metric);
// Add branch metrics to path metrics
m0 = _mm_add_epi8(vp->old_metrics->v[i],metric);
m3 = _mm_add_epi8(vp->old_metrics->v[2+i],metric);
m1 = _mm_add_epi8(vp->old_metrics->v[2+i],m_metric);
m2 = _mm_add_epi8(vp->old_metrics->v[i],m_metric);
// Compare and select, using modulo arithmetic
decision0 = _mm_cmpgt_epi8(_mm_sub_epi8(m0,m1),_mm_setzero_si128());
decision1 = _mm_cmpgt_epi8(_mm_sub_epi8(m2,m3),_mm_setzero_si128());
survivor0 = _mm_or_si128(_mm_and_si128(decision0,m1),_mm_andnot_si128(decision0,m0));
survivor1 = _mm_or_si128(_mm_and_si128(decision1,m3),_mm_andnot_si128(decision1,m2));
// Pack each set of decisions into 16 bits
d->s[2*i] = _mm_movemask_epi8(_mm_unpacklo_epi8(decision0,decision1));
d->s[2*i+1] = _mm_movemask_epi8(_mm_unpackhi_epi8(decision0,decision1));
// Store surviving metrics
vp->new_metrics->v[2*i] = _mm_unpacklo_epi8(survivor0,survivor1);
vp->new_metrics->v[2*i+1] = _mm_unpackhi_epi8(survivor0,survivor1);
}
#else
{
// Unwound version
__m128i decision0,decision1,metric,m_metric,m0,m1,m2,m3,survivor0,survivor1,survivor2,survivor3;
// First
// Form branch metrics
metric = _mm_avg_epu8(_mm_xor_si128(Branchtab27_sse2[0].v[0],sym0v),_mm_xor_si128(Branchtab27_sse2[1].v[0],sym1v));
// There's no packed bytes right shift in SSE2, so we use the word version and mask
// (I'm *really* starting to like Altivec...)
metric = _mm_srli_epi16(metric,3);
metric = _mm_and_si128(metric,_mm_set1_epi8(31));
m_metric = _mm_sub_epi8(_mm_set1_epi8(31),metric);
// Add branch metrics to path metrics
m0 = _mm_add_epi8(vp->old_metrics->v[0],metric);
m3 = _mm_add_epi8(vp->old_metrics->v[2],metric);
m1 = _mm_add_epi8(vp->old_metrics->v[2],m_metric);
m2 = _mm_add_epi8(vp->old_metrics->v[0],m_metric);
// Compare and select, using modulo arithmetic
decision0 = _mm_cmpgt_epi8(_mm_sub_epi8(m0,m1),_mm_setzero_si128());
decision1 = _mm_cmpgt_epi8(_mm_sub_epi8(m2,m3),_mm_setzero_si128());
survivor0 = _mm_or_si128(_mm_and_si128(decision0,m1),_mm_andnot_si128(decision0,m0));
survivor1 = _mm_or_si128(_mm_and_si128(decision1,m3),_mm_andnot_si128(decision1,m2));
// Pack each set of decisions into 16 bits
d->s[0] = _mm_movemask_epi8(_mm_unpacklo_epi8(decision0,decision1));
d->s[1] = _mm_movemask_epi8(_mm_unpackhi_epi8(decision0,decision1));
// Store surviving metrics
vp->new_metrics->v[0] = _mm_unpacklo_epi8(survivor0,survivor1);
vp->new_metrics->v[1] = _mm_unpackhi_epi8(survivor0,survivor1);
// Second
// Form branch metrics
metric = _mm_avg_epu8(_mm_xor_si128(Branchtab27_sse2[0].v[1],sym0v),_mm_xor_si128(Branchtab27_sse2[1].v[1],sym1v));
// There's no packed bytes right shift in SSE2, so we use the word version and mask
// (I'm *really* starting to like Altivec...)
metric = _mm_srli_epi16(metric,3);
metric = _mm_and_si128(metric,_mm_set1_epi8(31));
m_metric = _mm_sub_epi8(_mm_set1_epi8(31),metric);
// Add branch metrics to path metrics
m0 = _mm_add_epi8(vp->old_metrics->v[1],metric);
m3 = _mm_add_epi8(vp->old_metrics->v[3],metric);
m1 = _mm_add_epi8(vp->old_metrics->v[3],m_metric);
m2 = _mm_add_epi8(vp->old_metrics->v[1],m_metric);
// Compare and select, using modulo arithmetic
decision0 = _mm_cmpgt_epi8(_mm_sub_epi8(m0,m1),_mm_setzero_si128());
decision1 = _mm_cmpgt_epi8(_mm_sub_epi8(m2,m3),_mm_setzero_si128());
survivor0 = _mm_or_si128(_mm_and_si128(decision0,m1),_mm_andnot_si128(decision0,m0));
survivor1 = _mm_or_si128(_mm_and_si128(decision1,m3),_mm_andnot_si128(decision1,m2));
// Pack each set of decisions into 16 bits
d->s[2] = _mm_movemask_epi8(_mm_unpacklo_epi8(decision0,decision1));
d->s[3] = _mm_movemask_epi8(_mm_unpackhi_epi8(decision0,decision1));
// Store surviving metrics
vp->new_metrics->v[2] = _mm_unpacklo_epi8(survivor0,survivor1);
vp->new_metrics->v[3] = _mm_unpackhi_epi8(survivor0,survivor1);
}
#endif
d++;
// Swap pointers to old and new metrics
tmp = vp->old_metrics;
vp->old_metrics = vp->new_metrics;
vp->new_metrics = tmp;
}
vp->dp = d;
return 0;
}