555 lines
20 KiB
C
555 lines
20 KiB
C
#include <stdlib.h>
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#include <string.h>
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#include <assert.h>
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#include "kthread.h"
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#include "kvec.h"
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#include "kalloc.h"
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#include "sdust.h"
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#include "mmpriv.h"
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#include "bseq.h"
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#include "khash.h"
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struct mm_tbuf_s {
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void *km;
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};
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mm_tbuf_t *mm_tbuf_init(void)
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{
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mm_tbuf_t *b;
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b = (mm_tbuf_t*)calloc(1, sizeof(mm_tbuf_t));
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if (!(mm_dbg_flag & 1)) b->km = km_init();
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return b;
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}
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void mm_tbuf_destroy(mm_tbuf_t *b)
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{
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if (b == 0) return;
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km_destroy(b->km);
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free(b);
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}
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static int mm_dust_minier(void *km, int n, mm128_t *a, int l_seq, const char *seq, int sdust_thres)
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{
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int n_dreg, j, k, u = 0;
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const uint64_t *dreg;
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sdust_buf_t *sdb;
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if (sdust_thres <= 0) return n;
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sdb = sdust_buf_init(km);
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dreg = sdust_core((const uint8_t*)seq, l_seq, sdust_thres, 64, &n_dreg, sdb);
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for (j = k = 0; j < n; ++j) { // squeeze out minimizers that significantly overlap with LCRs
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int32_t qpos = (uint32_t)a[j].y>>1, span = a[j].x&0xff;
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int32_t s = qpos - (span - 1), e = s + span;
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while (u < n_dreg && (int32_t)dreg[u] <= s) ++u;
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if (u < n_dreg && (int32_t)(dreg[u]>>32) < e) {
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int v, l = 0;
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for (v = u; v < n_dreg && (int32_t)(dreg[v]>>32) < e; ++v) { // iterate over LCRs overlapping this minimizer
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int ss = s > (int32_t)(dreg[v]>>32)? s : dreg[v]>>32;
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int ee = e < (int32_t)dreg[v]? e : (uint32_t)dreg[v];
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l += ee - ss;
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}
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if (l <= span>>1) a[k++] = a[j]; // keep the minimizer if less than half of it falls in masked region
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} else a[k++] = a[j];
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}
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sdust_buf_destroy(sdb);
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return k; // the new size
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}
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static void collect_minimizers(void *km, const mm_mapopt_t *opt, const mm_idx_t *mi, int n_segs, const int *qlens, const char **seqs, mm128_v *mv)
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{
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int i, n, sum = 0;
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mv->n = 0;
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for (i = n = 0; i < n_segs; ++i) {
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size_t j;
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mm_sketch(km, seqs[i], qlens[i], mi->w, mi->k, i, mi->flag&MM_I_HPC, mv);
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for (j = n; j < mv->n; ++j)
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mv->a[j].y += sum << 1;
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if (opt->sdust_thres > 0) // mask low-complexity minimizers
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mv->n = n + mm_dust_minier(km, mv->n - n, mv->a + n, qlens[i], seqs[i], opt->sdust_thres);
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sum += qlens[i], n = mv->n;
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}
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}
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#include "ksort.h"
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#define heap_lt(a, b) ((a).x > (b).x)
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KSORT_INIT(heap, mm128_t, heap_lt)
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typedef struct {
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uint32_t n;
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uint32_t q_pos, q_span;
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uint32_t seg_id:31, is_tandem:1;
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const uint64_t *cr;
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} mm_match_t;
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static mm_match_t *collect_matches(void *km, int *_n_m, int max_occ, const mm_idx_t *mi, const mm128_v *mv, int64_t *n_a, int *rep_len, int *n_mini_pos, uint64_t **mini_pos)
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{
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int rep_st = 0, rep_en = 0, n_m;
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size_t i;
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mm_match_t *m;
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*n_mini_pos = 0;
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*mini_pos = (uint64_t*)kmalloc(km, mv->n * sizeof(uint64_t));
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m = (mm_match_t*)kmalloc(km, mv->n * sizeof(mm_match_t));
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for (i = 0, n_m = 0, *rep_len = 0, *n_a = 0; i < mv->n; ++i) {
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const uint64_t *cr;
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mm128_t *p = &mv->a[i];
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uint32_t q_pos = (uint32_t)p->y, q_span = p->x & 0xff;
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int t;
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cr = mm_idx_get(mi, p->x>>8, &t);
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if (t >= max_occ) {
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int en = (q_pos >> 1) + 1, st = en - q_span;
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if (st > rep_en) {
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*rep_len += rep_en - rep_st;
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rep_st = st, rep_en = en;
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} else rep_en = en;
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} else {
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mm_match_t *q = &m[n_m++];
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q->q_pos = q_pos, q->q_span = q_span, q->cr = cr, q->n = t, q->seg_id = p->y >> 32;
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q->is_tandem = 0;
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if (i > 0 && p->x>>8 == mv->a[i - 1].x>>8) q->is_tandem = 1;
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if (i < mv->n - 1 && p->x>>8 == mv->a[i + 1].x>>8) q->is_tandem = 1;
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*n_a += q->n;
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(*mini_pos)[(*n_mini_pos)++] = (uint64_t)q_span<<32 | q_pos>>1;
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}
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}
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*rep_len += rep_en - rep_st;
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*_n_m = n_m;
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return m;
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}
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static inline int skip_seed(int flag, uint64_t r, const mm_match_t *q, const char *qname, int qlen, const mm_idx_t *mi, int *is_self)
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{
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*is_self = 0;
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if (qname && (flag & (MM_F_NO_DIAG|MM_F_NO_DUAL))) {
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const mm_idx_seq_t *s = &mi->seq[r>>32];
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int cmp;
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cmp = strcmp(qname, s->name);
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if ((flag&MM_F_NO_DIAG) && cmp == 0 && (int)s->len == qlen) {
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if ((uint32_t)r>>1 == (q->q_pos>>1)) return 1; // avoid the diagnonal anchors
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if ((r&1) == (q->q_pos&1)) *is_self = 1; // this flag is used to avoid spurious extension on self chain
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}
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if ((flag&MM_F_NO_DUAL) && cmp > 0) // all-vs-all mode: map once
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return 1;
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}
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if (flag & (MM_F_FOR_ONLY|MM_F_REV_ONLY)) {
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if ((r&1) == (q->q_pos&1)) { // forward strand
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if (flag & MM_F_REV_ONLY) return 1;
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} else {
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if (flag & MM_F_FOR_ONLY) return 1;
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}
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}
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return 0;
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}
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static mm128_t *collect_seed_hits_heap(void *km, const mm_mapopt_t *opt, int max_occ, const mm_idx_t *mi, const char *qname, const mm128_v *mv, int qlen, int64_t *n_a, int *rep_len,
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int *n_mini_pos, uint64_t **mini_pos)
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{
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int i, n_m, heap_size = 0;
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int64_t j, n_for = 0, n_rev = 0;
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mm_match_t *m;
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mm128_t *a, *heap;
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m = collect_matches(km, &n_m, max_occ, mi, mv, n_a, rep_len, n_mini_pos, mini_pos);
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heap = (mm128_t*)kmalloc(km, n_m * sizeof(mm128_t));
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a = (mm128_t*)kmalloc(km, *n_a * sizeof(mm128_t));
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for (i = 0, heap_size = 0; i < n_m; ++i) {
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if (m[i].n > 0) {
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heap[heap_size].x = m[i].cr[0];
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heap[heap_size].y = (uint64_t)i<<32;
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++heap_size;
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}
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}
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ks_heapmake_heap(heap_size, heap);
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while (heap_size > 0) {
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mm_match_t *q = &m[heap->y>>32];
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mm128_t *p;
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uint64_t r = heap->x;
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int32_t is_self, rpos = (uint32_t)r >> 1;
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if (!skip_seed(opt->flag, r, q, qname, qlen, mi, &is_self)) {
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if ((r&1) == (q->q_pos&1)) { // forward strand
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p = &a[n_for++];
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p->x = (r&0xffffffff00000000ULL) | rpos;
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p->y = (uint64_t)q->q_span << 32 | q->q_pos >> 1;
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} else { // reverse strand
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p = &a[(*n_a) - (++n_rev)];
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p->x = 1ULL<<63 | (r&0xffffffff00000000ULL) | rpos;
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p->y = (uint64_t)q->q_span << 32 | (qlen - ((q->q_pos>>1) + 1 - q->q_span) - 1);
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}
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p->y |= (uint64_t)q->seg_id << MM_SEED_SEG_SHIFT;
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if (q->is_tandem) p->y |= MM_SEED_TANDEM;
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if (is_self) p->y |= MM_SEED_SELF;
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}
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// update the heap
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if ((uint32_t)heap->y < q->n - 1) {
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++heap[0].y;
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heap[0].x = m[heap[0].y>>32].cr[(uint32_t)heap[0].y];
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} else {
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heap[0] = heap[heap_size - 1];
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--heap_size;
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}
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ks_heapdown_heap(0, heap_size, heap);
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}
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kfree(km, m);
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kfree(km, heap);
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// reverse anchors on the reverse strand, as they are in the descending order
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for (j = 0; j < n_rev>>1; ++j) {
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mm128_t t = a[(*n_a) - 1 - j];
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a[(*n_a) - 1 - j] = a[(*n_a) - (n_rev - j)];
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a[(*n_a) - (n_rev - j)] = t;
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}
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if (*n_a > n_for + n_rev) {
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memmove(a + n_for, a + (*n_a) - n_rev, n_rev * sizeof(mm128_t));
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*n_a = n_for + n_rev;
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}
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return a;
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}
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static mm128_t *collect_seed_hits(void *km, const mm_mapopt_t *opt, int max_occ, const mm_idx_t *mi, const char *qname, const mm128_v *mv, int qlen, int64_t *n_a, int *rep_len,
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int *n_mini_pos, uint64_t **mini_pos)
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{
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int i, n_m;
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mm_match_t *m;
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mm128_t *a;
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m = collect_matches(km, &n_m, max_occ, mi, mv, n_a, rep_len, n_mini_pos, mini_pos);
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a = (mm128_t*)kmalloc(km, *n_a * sizeof(mm128_t));
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for (i = 0, *n_a = 0; i < n_m; ++i) {
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mm_match_t *q = &m[i];
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const uint64_t *r = q->cr;
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uint32_t k;
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for (k = 0; k < q->n; ++k) {
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int32_t is_self, rpos = (uint32_t)r[k] >> 1;
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mm128_t *p;
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if (skip_seed(opt->flag, r[k], q, qname, qlen, mi, &is_self)) continue;
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p = &a[(*n_a)++];
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if ((r[k]&1) == (q->q_pos&1)) { // forward strand
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p->x = (r[k]&0xffffffff00000000ULL) | rpos;
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p->y = (uint64_t)q->q_span << 32 | q->q_pos >> 1;
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} else { // reverse strand
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p->x = 1ULL<<63 | (r[k]&0xffffffff00000000ULL) | rpos;
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p->y = (uint64_t)q->q_span << 32 | (qlen - ((q->q_pos>>1) + 1 - q->q_span) - 1);
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}
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p->y |= (uint64_t)q->seg_id << MM_SEED_SEG_SHIFT;
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if (q->is_tandem) p->y |= MM_SEED_TANDEM;
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if (is_self) p->y |= MM_SEED_SELF;
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}
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}
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kfree(km, m);
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radix_sort_128x(a, a + (*n_a));
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return a;
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}
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static void chain_post(const mm_mapopt_t *opt, int max_chain_gap_ref, const mm_idx_t *mi, void *km, int qlen, int n_segs, const int *qlens, int *n_regs, mm_reg1_t *regs, mm128_t *a)
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{
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if (!(opt->flag & MM_F_ALL_CHAINS)) { // don't choose primary mapping(s)
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mm_set_parent(km, opt->mask_level, *n_regs, regs, opt->a * 2 + opt->b);
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if (n_segs <= 1) mm_select_sub(km, opt->pri_ratio, mi->k*2, opt->best_n, n_regs, regs);
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else mm_select_sub_multi(km, opt->pri_ratio, 0.2f, 0.7f, max_chain_gap_ref, mi->k*2, opt->best_n, n_segs, qlens, n_regs, regs);
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if (!(opt->flag & (MM_F_SPLICE|MM_F_SR|MM_F_NO_LJOIN))) // long join not working well without primary chains
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mm_join_long(km, opt, qlen, n_regs, regs, a);
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}
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}
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static mm_reg1_t *align_regs(const mm_mapopt_t *opt, const mm_idx_t *mi, void *km, int qlen, const char *seq, int *n_regs, mm_reg1_t *regs, mm128_t *a)
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{
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if (!(opt->flag & MM_F_CIGAR)) return regs;
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regs = mm_align_skeleton(km, opt, mi, qlen, seq, n_regs, regs, a); // this calls mm_filter_regs()
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if (!(opt->flag & MM_F_ALL_CHAINS)) { // don't choose primary mapping(s)
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mm_set_parent(km, opt->mask_level, *n_regs, regs, opt->a * 2 + opt->b);
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mm_select_sub(km, opt->pri_ratio, mi->k*2, opt->best_n, n_regs, regs);
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mm_set_sam_pri(*n_regs, regs);
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}
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return regs;
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}
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void mm_map_frag(const mm_idx_t *mi, int n_segs, const int *qlens, const char **seqs, int *n_regs, mm_reg1_t **regs, mm_tbuf_t *b, const mm_mapopt_t *opt, const char *qname)
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{
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int i, j, rep_len, qlen_sum, n_regs0, n_mini_pos;
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int max_chain_gap_qry, max_chain_gap_ref, is_splice = !!(opt->flag & MM_F_SPLICE), is_sr = !!(opt->flag & MM_F_SR);
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uint32_t hash;
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int64_t n_a;
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uint64_t *u, *mini_pos;
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mm128_t *a;
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mm128_v mv = {0,0,0};
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mm_reg1_t *regs0;
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km_stat_t kmst;
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for (i = 0, qlen_sum = 0; i < n_segs; ++i)
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qlen_sum += qlens[i], n_regs[i] = 0, regs[i] = 0;
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if (qlen_sum == 0 || n_segs <= 0 || n_segs > MM_MAX_SEG) return;
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hash = qname? __ac_X31_hash_string(qname) : 0;
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hash ^= __ac_Wang_hash(qlen_sum) + __ac_Wang_hash(opt->seed);
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hash = __ac_Wang_hash(hash);
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collect_minimizers(b->km, opt, mi, n_segs, qlens, seqs, &mv);
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if (opt->flag & MM_F_HEAP_SORT) a = collect_seed_hits_heap(b->km, opt, opt->mid_occ, mi, qname, &mv, qlen_sum, &n_a, &rep_len, &n_mini_pos, &mini_pos);
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else a = collect_seed_hits(b->km, opt, opt->mid_occ, mi, qname, &mv, qlen_sum, &n_a, &rep_len, &n_mini_pos, &mini_pos);
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if (mm_dbg_flag & MM_DBG_PRINT_SEED) {
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fprintf(stderr, "RS\t%d\n", rep_len);
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for (i = 0; i < n_a; ++i)
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fprintf(stderr, "SD\t%s\t%d\t%c\t%d\t%d\t%d\n", mi->seq[a[i].x<<1>>33].name, (int32_t)a[i].x, "+-"[a[i].x>>63], (int32_t)a[i].y, (int32_t)(a[i].y>>32&0xff),
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i == 0? 0 : ((int32_t)a[i].y - (int32_t)a[i-1].y) - ((int32_t)a[i].x - (int32_t)a[i-1].x));
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}
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// set max chaining gap on the query and the reference sequence
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if (is_sr)
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max_chain_gap_qry = qlen_sum > opt->max_gap? qlen_sum : opt->max_gap;
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else max_chain_gap_qry = opt->max_gap;
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if (opt->max_gap_ref > 0) {
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max_chain_gap_ref = opt->max_gap_ref; // always honor mm_mapopt_t::max_gap_ref if set
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} else if (opt->max_frag_len > 0) {
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max_chain_gap_ref = opt->max_frag_len - qlen_sum;
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if (max_chain_gap_ref < opt->max_gap) max_chain_gap_ref = opt->max_gap;
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} else max_chain_gap_ref = opt->max_gap;
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a = mm_chain_dp(max_chain_gap_ref, max_chain_gap_qry, opt->bw, opt->max_chain_skip, opt->min_cnt, opt->min_chain_score, is_splice, n_segs, n_a, a, &n_regs0, &u, b->km);
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if (opt->max_occ > opt->mid_occ && rep_len > 0) {
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int rechain = 0;
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if (n_regs0 > 0) { // test if the best chain has all the segments
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int n_chained_segs = 1, max = 0, max_i = -1, max_off = -1, off = 0;
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for (i = 0; i < n_regs0; ++i) { // find the best chain
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if (max < (int)(u[i]>>32)) max = u[i]>>32, max_i = i, max_off = off;
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off += (uint32_t)u[i];
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}
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for (i = 1; i < (int32_t)u[max_i]; ++i) // count the number of segments in the best chain
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if ((a[max_off+i].y&MM_SEED_SEG_MASK) != (a[max_off+i-1].y&MM_SEED_SEG_MASK))
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++n_chained_segs;
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if (n_chained_segs < n_segs)
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rechain = 1;
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} else rechain = 1;
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if (rechain) { // redo chaining with a higher max_occ threshold
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kfree(b->km, a);
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kfree(b->km, u);
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kfree(b->km, mini_pos);
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if (opt->flag & MM_F_HEAP_SORT) a = collect_seed_hits_heap(b->km, opt, opt->max_occ, mi, qname, &mv, qlen_sum, &n_a, &rep_len, &n_mini_pos, &mini_pos);
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else a = collect_seed_hits(b->km, opt, opt->max_occ, mi, qname, &mv, qlen_sum, &n_a, &rep_len, &n_mini_pos, &mini_pos);
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a = mm_chain_dp(max_chain_gap_ref, max_chain_gap_qry, opt->bw, opt->max_chain_skip, opt->min_cnt, opt->min_chain_score, is_splice, n_segs, n_a, a, &n_regs0, &u, b->km);
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}
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}
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regs0 = mm_gen_regs(b->km, hash, qlen_sum, n_regs0, u, a);
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if (mm_dbg_flag & MM_DBG_PRINT_SEED)
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for (j = 0; j < n_regs0; ++j)
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for (i = regs0[j].as; i < regs0[j].as + regs0[j].cnt; ++i)
|
|
fprintf(stderr, "CN\t%d\t%s\t%d\t%c\t%d\t%d\t%d\n", j, mi->seq[a[i].x<<1>>33].name, (int32_t)a[i].x, "+-"[a[i].x>>63], (int32_t)a[i].y, (int32_t)(a[i].y>>32&0xff),
|
|
i == regs0[j].as? 0 : ((int32_t)a[i].y - (int32_t)a[i-1].y) - ((int32_t)a[i].x - (int32_t)a[i-1].x));
|
|
|
|
chain_post(opt, max_chain_gap_ref, mi, b->km, qlen_sum, n_segs, qlens, &n_regs0, regs0, a);
|
|
if (!is_sr) mm_est_err(mi, qlen_sum, n_regs0, regs0, a, n_mini_pos, mini_pos);
|
|
|
|
if (n_segs == 1) { // uni-segment
|
|
regs0 = align_regs(opt, mi, b->km, qlens[0], seqs[0], &n_regs0, regs0, a);
|
|
mm_set_mapq(b->km, n_regs0, regs0, opt->min_chain_score, opt->a, rep_len, is_sr);
|
|
n_regs[0] = n_regs0, regs[0] = regs0;
|
|
} else { // multi-segment
|
|
mm_seg_t *seg;
|
|
seg = mm_seg_gen(b->km, hash, n_segs, qlens, n_regs0, regs0, n_regs, regs, a); // split fragment chain to separate segment chains
|
|
free(regs0);
|
|
for (i = 0; i < n_segs; ++i) {
|
|
mm_set_parent(b->km, opt->mask_level, n_regs[i], regs[i], opt->a * 2 + opt->b); // update mm_reg1_t::parent
|
|
regs[i] = align_regs(opt, mi, b->km, qlens[i], seqs[i], &n_regs[i], regs[i], seg[i].a);
|
|
mm_set_mapq(b->km, n_regs[i], regs[i], opt->min_chain_score, opt->a, rep_len, is_sr);
|
|
}
|
|
mm_seg_free(b->km, n_segs, seg);
|
|
if (n_segs == 2 && opt->pe_ori >= 0 && (opt->flag&MM_F_CIGAR))
|
|
mm_pair(b->km, max_chain_gap_ref, opt->pe_bonus, opt->a * 2 + opt->b, opt->a, qlens, n_regs, regs); // pairing
|
|
}
|
|
|
|
kfree(b->km, mv.a);
|
|
kfree(b->km, a);
|
|
kfree(b->km, u);
|
|
kfree(b->km, mini_pos);
|
|
|
|
if (b->km) {
|
|
km_stat(b->km, &kmst);
|
|
if (mm_dbg_flag & MM_DBG_PRINT_QNAME)
|
|
fprintf(stderr, "QM\t%s\t%d\tcap=%ld,nCore=%ld,largest=%ld\n", qname, qlen_sum, kmst.capacity, kmst.n_cores, kmst.largest);
|
|
assert(kmst.n_blocks == kmst.n_cores); // otherwise, there is a memory leak
|
|
if (kmst.largest > 1U<<28) {
|
|
km_destroy(b->km);
|
|
b->km = km_init();
|
|
}
|
|
}
|
|
}
|
|
|
|
mm_reg1_t *mm_map(const mm_idx_t *mi, int qlen, const char *seq, int *n_regs, mm_tbuf_t *b, const mm_mapopt_t *opt, const char *qname)
|
|
{
|
|
mm_reg1_t *regs;
|
|
mm_map_frag(mi, 1, &qlen, &seq, n_regs, ®s, b, opt, qname);
|
|
return regs;
|
|
}
|
|
|
|
/**************************
|
|
* Multi-threaded mapping *
|
|
**************************/
|
|
|
|
typedef struct {
|
|
int mini_batch_size, n_processed, n_threads, n_fp;
|
|
const mm_mapopt_t *opt;
|
|
mm_bseq_file_t **fp;
|
|
const mm_idx_t *mi;
|
|
kstring_t str;
|
|
} pipeline_t;
|
|
|
|
typedef struct {
|
|
const pipeline_t *p;
|
|
int n_seq, n_frag;
|
|
mm_bseq1_t *seq;
|
|
int *n_reg, *seg_off, *n_seg;
|
|
mm_reg1_t **reg;
|
|
mm_tbuf_t **buf;
|
|
} step_t;
|
|
|
|
static void worker_for(void *_data, long i, int tid) // kt_for() callback
|
|
{
|
|
step_t *s = (step_t*)_data;
|
|
int qlens[MM_MAX_SEG], j, off = s->seg_off[i], pe_ori = s->p->opt->pe_ori;
|
|
const char *qseqs[MM_MAX_SEG];
|
|
mm_tbuf_t *b = s->buf[tid];
|
|
assert(s->n_seg[i] <= MM_MAX_SEG);
|
|
if (mm_dbg_flag & MM_DBG_PRINT_QNAME)
|
|
fprintf(stderr, "QR\t%s\t%d\t%d\n", s->seq[off].name, tid, s->seq[off].l_seq);
|
|
for (j = 0; j < s->n_seg[i]; ++j) {
|
|
if (s->n_seg[i] == 2 && ((j == 0 && (pe_ori>>1&1)) || (j == 1 && (pe_ori&1))))
|
|
mm_revcomp_bseq(&s->seq[off + j]);
|
|
qlens[j] = s->seq[off + j].l_seq;
|
|
qseqs[j] = s->seq[off + j].seq;
|
|
}
|
|
if (s->p->opt->flag & MM_F_INDEPEND_SEG) {
|
|
for (j = 0; j < s->n_seg[i]; ++j)
|
|
mm_map_frag(s->p->mi, 1, &qlens[j], &qseqs[j], &s->n_reg[off+j], &s->reg[off+j], b, s->p->opt, s->seq[off+j].name);
|
|
} else {
|
|
mm_map_frag(s->p->mi, s->n_seg[i], qlens, qseqs, &s->n_reg[off], &s->reg[off], b, s->p->opt, s->seq[off].name);
|
|
}
|
|
for (j = 0; j < s->n_seg[i]; ++j) // flip the query strand and coordinate to the original read strand
|
|
if (s->n_seg[i] == 2 && ((j == 0 && (pe_ori>>1&1)) || (j == 1 && (pe_ori&1)))) {
|
|
int k, t;
|
|
mm_revcomp_bseq(&s->seq[off + j]);
|
|
for (k = 0; k < s->n_reg[off + j]; ++k) {
|
|
mm_reg1_t *r = &s->reg[off + j][k];
|
|
t = r->qs;
|
|
r->qs = qlens[j] - r->qe;
|
|
r->qe = qlens[j] - t;
|
|
r->rev = !r->rev;
|
|
}
|
|
}
|
|
}
|
|
|
|
static void *worker_pipeline(void *shared, int step, void *in)
|
|
{
|
|
int i, j, k;
|
|
pipeline_t *p = (pipeline_t*)shared;
|
|
if (step == 0) { // step 0: read sequences
|
|
int with_qual = (!!(p->opt->flag & MM_F_OUT_SAM) && !(p->opt->flag & MM_F_NO_QUAL));
|
|
int with_comment = !!(p->opt->flag & MM_F_COPY_COMMENT);
|
|
int frag_mode = (p->n_fp > 1 || !!(p->opt->flag & MM_F_FRAG_MODE));
|
|
step_t *s;
|
|
s = (step_t*)calloc(1, sizeof(step_t));
|
|
if (p->n_fp > 1) s->seq = mm_bseq_read_frag2(p->n_fp, p->fp, p->mini_batch_size, with_qual, with_comment, &s->n_seq);
|
|
else s->seq = mm_bseq_read3(p->fp[0], p->mini_batch_size, with_qual, with_comment, frag_mode, &s->n_seq);
|
|
if (s->seq) {
|
|
s->p = p;
|
|
for (i = 0; i < s->n_seq; ++i)
|
|
s->seq[i].rid = p->n_processed++;
|
|
s->buf = (mm_tbuf_t**)calloc(p->n_threads, sizeof(mm_tbuf_t*));
|
|
for (i = 0; i < p->n_threads; ++i)
|
|
s->buf[i] = mm_tbuf_init();
|
|
s->n_reg = (int*)calloc(3 * s->n_seq, sizeof(int));
|
|
s->seg_off = s->n_reg + s->n_seq; // seg_off and n_seg are allocated together with n_reg
|
|
s->n_seg = s->seg_off + s->n_seq;
|
|
s->reg = (mm_reg1_t**)calloc(s->n_seq, sizeof(mm_reg1_t*));
|
|
for (i = 1, j = 0; i <= s->n_seq; ++i)
|
|
if (i == s->n_seq || !frag_mode || !mm_qname_same(s->seq[i-1].name, s->seq[i].name)) {
|
|
s->n_seg[s->n_frag] = i - j;
|
|
s->seg_off[s->n_frag++] = j;
|
|
j = i;
|
|
}
|
|
return s;
|
|
} else free(s);
|
|
} else if (step == 1) { // step 1: map
|
|
kt_for(p->n_threads, worker_for, in, ((step_t*)in)->n_frag);
|
|
return in;
|
|
} else if (step == 2) { // step 2: output
|
|
void *km = 0;
|
|
step_t *s = (step_t*)in;
|
|
const mm_idx_t *mi = p->mi;
|
|
for (i = 0; i < p->n_threads; ++i) mm_tbuf_destroy(s->buf[i]);
|
|
free(s->buf);
|
|
if ((p->opt->flag & MM_F_OUT_CS) && !(mm_dbg_flag & MM_DBG_NO_KALLOC)) km = km_init();
|
|
for (k = 0; k < s->n_frag; ++k) {
|
|
int seg_st = s->seg_off[k], seg_en = s->seg_off[k] + s->n_seg[k];
|
|
for (i = seg_st; i < seg_en; ++i) {
|
|
mm_bseq1_t *t = &s->seq[i];
|
|
for (j = 0; j < s->n_reg[i]; ++j) {
|
|
mm_reg1_t *r = &s->reg[i][j];
|
|
assert(!r->sam_pri || r->id == r->parent);
|
|
if ((p->opt->flag & MM_F_NO_PRINT_2ND) && r->id != r->parent)
|
|
continue;
|
|
if (p->opt->flag & MM_F_OUT_SAM)
|
|
mm_write_sam2(&p->str, mi, t, i - seg_st, j, s->n_seg[k], &s->n_reg[seg_st], (const mm_reg1_t*const*)&s->reg[seg_st], km, p->opt->flag);
|
|
else
|
|
mm_write_paf(&p->str, mi, t, r, km, p->opt->flag);
|
|
mm_err_puts(p->str.s);
|
|
}
|
|
if (s->n_reg[i] == 0 && (p->opt->flag & MM_F_OUT_SAM)) { // write an unmapped record
|
|
mm_write_sam2(&p->str, mi, t, i - seg_st, -1, s->n_seg[k], &s->n_reg[seg_st], (const mm_reg1_t*const*)&s->reg[seg_st], km, p->opt->flag);
|
|
mm_err_puts(p->str.s);
|
|
}
|
|
}
|
|
for (i = seg_st; i < seg_en; ++i) {
|
|
for (j = 0; j < s->n_reg[i]; ++j) free(s->reg[i][j].p);
|
|
free(s->reg[i]);
|
|
free(s->seq[i].seq); free(s->seq[i].name);
|
|
if (s->seq[i].qual) free(s->seq[i].qual);
|
|
}
|
|
}
|
|
free(s->reg); free(s->n_reg); free(s->seq); // seg_off and n_seg were allocated with reg; no memory leak here
|
|
km_destroy(km);
|
|
if (mm_verbose >= 3)
|
|
fprintf(stderr, "[M::%s::%.3f*%.2f] mapped %d sequences\n", __func__, realtime() - mm_realtime0, cputime() / (realtime() - mm_realtime0), s->n_seq);
|
|
free(s);
|
|
}
|
|
return 0;
|
|
}
|
|
|
|
int mm_map_file_frag(const mm_idx_t *idx, int n_segs, const char **fn, const mm_mapopt_t *opt, int n_threads)
|
|
{
|
|
int i, j, pl_threads;
|
|
pipeline_t pl;
|
|
if (n_segs < 1) return -1;
|
|
memset(&pl, 0, sizeof(pipeline_t));
|
|
pl.n_fp = n_segs;
|
|
pl.fp = (mm_bseq_file_t**)calloc(n_segs, sizeof(mm_bseq_file_t*));
|
|
for (i = 0; i < n_segs; ++i) {
|
|
pl.fp[i] = mm_bseq_open(fn[i]);
|
|
if (pl.fp[i] == 0) {
|
|
if (mm_verbose >= 1)
|
|
fprintf(stderr, "ERROR: failed to open file '%s'\n", fn[i]);
|
|
for (j = 0; j < i; ++j)
|
|
mm_bseq_close(pl.fp[j]);
|
|
free(pl.fp);
|
|
return -1;
|
|
}
|
|
}
|
|
pl.opt = opt, pl.mi = idx;
|
|
pl.n_threads = n_threads > 1? n_threads : 1;
|
|
pl.mini_batch_size = opt->mini_batch_size;
|
|
pl_threads = n_threads == 1? 1 : (opt->flag&MM_F_2_IO_THREADS)? 3 : 2;
|
|
kt_pipeline(pl_threads, worker_pipeline, &pl, 3);
|
|
free(pl.str.s);
|
|
for (i = 0; i < n_segs; ++i)
|
|
mm_bseq_close(pl.fp[i]);
|
|
free(pl.fp);
|
|
return 0;
|
|
}
|
|
|
|
int mm_map_file(const mm_idx_t *idx, const char *fn, const mm_mapopt_t *opt, int n_threads)
|
|
{
|
|
return mm_map_file_frag(idx, 1, &fn, opt, n_threads);
|
|
}
|