fast-bwa/bwamem.c

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#include <stdlib.h>
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#include <string.h>
#include <stdio.h>
#include <assert.h>
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#include "bwamem.h"
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#include "kvec.h"
#include "bntseq.h"
#include "ksw.h"
void mem_fill_scmat(int a, int b, int8_t mat[25])
{
int i, j, k;
for (i = k = 0; i < 5; ++i) {
for (j = 0; j < 4; ++j)
mat[k++] = i == j? a : -b;
mat[k++] = 0; // ambiguous base
}
for (j = 0; j < 5; ++j) mat[k++] = 0;
}
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mem_opt_t *mem_opt_init()
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{
mem_opt_t *o;
o = calloc(1, sizeof(mem_opt_t));
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o->a = 1; o->b = 5; o->q = 8; o->r = 1; o->w = 100;
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o->min_seed_len = 17;
o->max_occ = 10;
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o->max_chain_gap = 10000;
mem_fill_scmat(o->a, o->b, o->mat);
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return o;
}
/***************************
* SMEM iterator interface *
***************************/
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struct __smem_i {
const bwt_t *bwt;
const uint8_t *query;
int start, len;
bwtintv_v *matches; // matches; to be returned by smem_next()
bwtintv_v *sub; // sub-matches inside the longest match; temporary
bwtintv_v *tmpvec[2]; // temporary arrays
};
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smem_i *smem_itr_init(const bwt_t *bwt)
{
smem_i *itr;
itr = calloc(1, sizeof(smem_i));
itr->bwt = bwt;
itr->tmpvec[0] = calloc(1, sizeof(bwtintv_v));
itr->tmpvec[1] = calloc(1, sizeof(bwtintv_v));
itr->matches = calloc(1, sizeof(bwtintv_v));
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itr->sub = calloc(1, sizeof(bwtintv_v));
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return itr;
}
void smem_itr_destroy(smem_i *itr)
{
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free(itr->tmpvec[0]->a); free(itr->tmpvec[0]);
free(itr->tmpvec[1]->a); free(itr->tmpvec[1]);
free(itr->matches->a); free(itr->matches);
free(itr->sub->a); free(itr->sub);
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free(itr);
}
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void smem_set_query(smem_i *itr, int len, const uint8_t *query)
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{
itr->query = query;
itr->start = 0;
itr->len = len;
}
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const bwtintv_v *smem_next(smem_i *itr, int split_len)
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{
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int i, max, max_i;
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itr->tmpvec[0]->n = itr->tmpvec[1]->n = itr->matches->n = itr->sub->n = 0;
if (itr->start >= itr->len || itr->start < 0) return 0;
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while (itr->start < itr->len && itr->query[itr->start] > 3) ++itr->start; // skip ambiguous bases
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if (itr->start == itr->len) return 0;
itr->start = bwt_smem1(itr->bwt, itr->len, itr->query, itr->start, 1, itr->matches, itr->tmpvec); // search for SMEM
if (itr->matches->n == 0) return itr->matches; // well, in theory, we should never come here
for (i = max = 0, max_i = 0; i < itr->matches->n; ++i) { // look for the longest match
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bwtintv_t *p = &itr->matches->a[i];
int len = (uint32_t)p->info - (p->info>>32);
if (max < len) max = len, max_i = i;
}
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if (split_len > 0 && max >= split_len && itr->matches->a[max_i].x[2] == 1) { // if the longest SMEM is unique and long
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int j;
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bwtintv_v *a = itr->tmpvec[0]; // reuse tmpvec[0] for merging
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bwtintv_t *p = &itr->matches->a[max_i];
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bwt_smem1(itr->bwt, itr->len, itr->query, ((uint32_t)p->info + (p->info>>32))>>1, 2, itr->sub, itr->tmpvec); // starting from the middle of the longest MEM
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i = j = 0; a->n = 0;
while (i < itr->matches->n && j < itr->sub->n) { // ordered merge
if (itr->matches->a[i].info < itr->sub->a[j].info) {
kv_push(bwtintv_t, *a, itr->matches->a[i]);
++i;
} else {
kv_push(bwtintv_t, *a, itr->sub->a[j]);
++j;
}
}
for (; i < itr->matches->n; ++i) kv_push(bwtintv_t, *a, itr->matches->a[i]);
for (; j < itr->sub->n; ++j) kv_push(bwtintv_t, *a, itr->sub->a[j]);
kv_copy(bwtintv_t, *itr->matches, *a);
}
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return itr->matches;
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}
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#include "kbtree.h"
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#define chain_cmp(a, b) ((a).pos - (b).pos)
KBTREE_INIT(chn, mem_chain1_t, chain_cmp)
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static int test_and_merge(const mem_opt_t *opt, mem_chain1_t *c, const mem_seed_t *p)
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{
int64_t qend, rend, x, y;
const mem_seed_t *last = &c->seeds[c->n-1];
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qend = last->qbeg + last->len;
rend = last->rbeg + last->len;
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if (p->qbeg >= c->seeds[0].qbeg && p->qbeg + p->len <= qend && p->rbeg >= c->seeds[0].rbeg && p->rbeg + p->len <= rend)
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return 1; // contained seed; do nothing
x = p->qbeg - last->qbeg; // always positive
y = p->rbeg - last->rbeg;
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if (y > 0 && x - y <= opt->w && y - x <= opt->w && x - last->len < opt->max_chain_gap && y - last->len < opt->max_chain_gap) { // grow the chain
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if (c->n == c->m) {
c->m <<= 1;
c->seeds = realloc(c->seeds, c->m * sizeof(mem_seed_t));
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}
c->seeds[c->n++] = *p;
return 1;
}
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return 0; // request to add a new chain
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}
static void mem_insert_seed(const mem_opt_t *opt, kbtree_t(chn) *tree, smem_i *itr)
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{
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const bwtintv_v *a;
while ((a = smem_next(itr, opt->min_seed_len<<1)) != 0) { // to find all SMEM and some internal MEM
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int i;
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for (i = 0; i < a->n; ++i) { // go through each SMEM/MEM up to itr->start
bwtintv_t *p = &a->a[i];
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int slen = (uint32_t)p->info - (p->info>>32); // seed length
int64_t k;
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if (slen < opt->min_seed_len || p->x[2] > opt->max_occ) continue; // ignore if too short or too repetitive
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for (k = 0; k < p->x[2]; ++k) {
mem_chain1_t tmp, *lower, *upper;
mem_seed_t s;
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int to_add = 0;
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s.rbeg = tmp.pos = bwt_sa(itr->bwt, p->x[0] + k); // this is the base coordinate in the forward-reverse reference
s.qbeg = p->info>>32;
s.len = slen;
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if (kb_size(tree)) {
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kb_intervalp(chn, tree, &tmp, &lower, &upper); // find the closest chain
if (!lower || !test_and_merge(opt, lower, &s)) to_add = 1;
} else to_add = 1;
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if (to_add) { // add the seed as a new chain
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tmp.n = 1; tmp.m = 4;
tmp.seeds = calloc(tmp.m, sizeof(mem_seed_t));
tmp.seeds[0] = s;
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kb_putp(chn, tree, &tmp);
}
}
}
}
}
mem_chain_t mem_chain(const mem_opt_t *opt, const bwt_t *bwt, int len, const uint8_t *seq)
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{
mem_chain_t chain;
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smem_i *itr;
kbtree_t(chn) *tree;
memset(&chain, 0, sizeof(mem_chain_t));
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if (len < opt->min_seed_len) return chain; // if the query is shorter than the seed length, no match
tree = kb_init(chn, KB_DEFAULT_SIZE);
itr = smem_itr_init(bwt);
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smem_set_query(itr, len, seq);
mem_insert_seed(opt, tree, itr);
chain.m = kb_size(tree); chain.n = 0;
chain.chains = malloc(chain.m * sizeof(mem_chain1_t));
#define traverse_func(p_) (chain.chains[chain.n++] = *(p_))
__kb_traverse(mem_chain1_t, tree, traverse_func);
#undef traverse_func
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smem_itr_destroy(itr);
kb_destroy(chn, tree);
return chain;
}
static inline int cal_max_gap(const mem_opt_t *opt, int qlen)
{
int l = (int)((double)(qlen * opt->a - opt->q) / opt->r + 1.);
return l > 1? l : 1;
}
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mem_aln_t mem_chain2aln(const mem_opt_t *opt, int64_t l_pac, const uint8_t *pac, int l_query, const uint8_t *query, const mem_chain1_t *c)
{
mem_aln_t a;
int i, j, qbeg, qend, score;
int64_t k, rlen, rbeg, rend, rmax[2], tmp;
mem_seed_t *s;
uint8_t *rseq = 0;
// get the start and end of the seeded region
rbeg = c->seeds[0].rbeg; qbeg = c->seeds[0].qbeg;
s = &c->seeds[c->n-1];
rend = s->rbeg + s->len; qend = s->qbeg + s->len;
// get the max possible span
rmax[0] = rbeg - (qbeg + cal_max_gap(opt, qbeg));
rmax[1] = rend + ((l_query - qend) + cal_max_gap(opt, l_query - qend));
if (rmax[0] < 0) rmax[0] = 0;
if (rmax[1] > l_pac<<1) rmax[1] = l_pac<<1;
// retrieve the reference sequence
rseq = bns_get_seq(l_pac, pac, rmax[0], rmax[1], &rlen);
if (qbeg) { // left extension of the first seed
uint8_t *rs, *qs;
int qle, tle;
qs = malloc(qbeg);
for (i = 0; i < qbeg; ++i) qs[i] = query[qbeg - 1 - i];
tmp = rbeg - rmax[0];
rs = malloc(tmp);
for (i = 0; i < tmp; ++i) rs[i] = rseq[tmp - 1 - i];
score = ksw_extend(qbeg, qs, tmp, rs, 5, opt->mat, opt->q, opt->r, opt->w, c->seeds[0].len * opt->a, 0, &qle, &tle);
free(qs); free(rs);
} else score = c->seeds[0].len * opt->a;
if (c->seeds[0].qbeg + c->seeds[0].len != l_query) { // right extension of the first seed
int qle, tle, qe, re;
s = &c->seeds[0];
qe = s->qbeg + s->len; re = s->rbeg + s->len - rmax[0];
for (j = 0; j < l_query - qe; ++j) putchar("ACGTN"[(int)query[j+qe]]); putchar('\n');
for (j = 0; j < rmax[1] - rmax[0] - re; ++j) putchar("ACGTN"[(int)rseq[j+re]]); putchar('\n');
score = ksw_extend(l_query - qe, query + qe, rmax[1] - rmax[0] - re, rseq + re, 5, opt->mat, opt->q, opt->r, opt->w, score, 0, &qle, &tle);
printf("[%d] score=%d\tqle=%d\trle=%d\n", c->n, score, qle, tle);
}
free(rseq);
return a;
}