315 lines
7.8 KiB
C
315 lines
7.8 KiB
C
#include <zlib.h>
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#include <stdio.h>
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#include <unistd.h>
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#include <stdlib.h>
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#include <stdint.h>
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#include <string.h>
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#include <assert.h>
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#include "kvec.h"
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#include "khash.h"
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#include "kseq.h"
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KSTREAM_INIT(gzFile, gzread, 0x10000)
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#include "ksort.h"
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KSORT_INIT_GENERIC(uint64_t)
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static int lo_verbose = 3;
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/***********************
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* Core data structure *
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***********************/
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#define LO_T_C1 8
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#define LO_T_C2 12
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#define LO_T_I 16
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typedef struct {
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int min_ext;
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float min_aln_ratio;
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} lo_opt_t;
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typedef kvec_t(uint64_t) uint64_v;
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typedef struct {
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int id;
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int contained;
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char *name;
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uint64_v *nei[2];
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} vertex_t;
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typedef kvec_t(vertex_t) vertex_v;
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typedef struct {
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int type, score, l[2], s[2], e[2], d[2]; // length, start and end
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} edgeinfo_t;
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KHASH_MAP_INIT_INT64(edge, edgeinfo_t)
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typedef khash_t(edge) ehash_t;
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KHASH_MAP_INIT_STR(name, int)
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typedef khash_t(name) nhash_t;
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typedef struct {
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nhash_t *n;
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ehash_t *e;
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vertex_v v;
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} ograph_t;
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void lo_opt_init(lo_opt_t *opt)
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{
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opt->min_ext = 50;
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opt->min_aln_ratio = 0.9;
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}
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/**********
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* Parser *
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**********/
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ograph_t *lo_graph_init()
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{
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ograph_t *g;
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g = calloc(1, sizeof(ograph_t));
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g->n = kh_init(name);
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g->e = kh_init(edge);
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return g;
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}
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int lo_infer_edge_type(const lo_opt_t *opt, int l[2], int s[2], int e[2], int d[2])
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{
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int el, x[2], a[2], r[2]; // x: eXtended length, a: Aligned length; r: Remaining length
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int t[2][2], type;
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t[0][1] = s[1], t[1][1] = l[1] - e[1];
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if (s[0] < e[0]) t[0][0] = s[0], t[1][0] = l[0] - e[0];
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else t[0][0] = l[0] - s[0], t[1][0] = e[0];
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x[0] = a[0] = abs(e[0] - s[0]);
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x[1] = a[1] = e[1] - s[1];
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r[0] = t[0][0] - t[0][1];
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r[1] = t[1][1] - t[1][0];
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el = r[0] < 0? t[0][0] : t[0][1];
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el += r[1] < 0? t[1][1] : t[1][0];
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x[0] += el, x[1] += el;
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d[0] = d[1] = -1;
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if ((float)a[0] / x[0] >= opt->min_aln_ratio && (float)a[1] / x[1] >= opt->min_aln_ratio) {
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if ((r[0] >= opt->min_ext && r[1] >= opt->min_ext) || (r[0] <= -opt->min_ext && r[1] <= -opt->min_ext)) { // suffix-prefix match
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type = s[0] < e[0]? 0 : 2;
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if (r[0] < 0) type ^= 3, d[0] = -r[1], d[1] = -r[0]; // reverse the direction
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else d[0] = r[0], d[1] = r[1];
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} else type = x[0] / l[0] > x[1] / l[1]? LO_T_C1 : LO_T_C2;
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} else type = LO_T_I; // internal local match; not a suffix-prefix match
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return type;
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}
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ograph_t *lo_graph_parse(const lo_opt_t *opt, kstream_t *ks)
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{
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ograph_t *g;
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kstring_t str = {0,0,0};
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char *p, *q;
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khint_t k;
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int dret, absent;
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g = lo_graph_init();
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while (ks_getuntil(ks, KS_SEP_LINE, &str, &dret) >= 0) {
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int i, id[2];
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edgeinfo_t e;
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for (p = q = str.s, i = 0;; ++q) {
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if (*q != '\t' && *q != 0) continue;
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if (i == 0 || i == 4) {
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int c = *q;
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*q = 0;
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k = kh_get(name, g->n, p);
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if (k == kh_end(g->n)) { // a new entry
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vertex_t *z;
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z = kv_pushp(vertex_t, g->v);
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z->id = kh_size(g->n);
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z->name = strdup(p);
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z->contained = 0;
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z->nei[0] = z->nei[1] = 0; // don't initialize the neighbor list right now
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k = kh_put(name, g->n, z->name, &absent);
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assert(absent);
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kh_val(g->n, k) = z->id;
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}
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id[(i==4)] = kh_val(g->n, k);
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*q = c;
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}
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else if (i == 1) e.l[0] = strtol(p, &p, 10);
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else if (i == 2) e.s[0] = strtol(p, &p, 10);
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else if (i == 3) e.e[0] = strtol(p, &p, 10);
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else if (i == 5) e.l[1] = strtol(p, &p, 10);
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else if (i == 6) e.s[1] = strtol(p, &p, 10);
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else if (i == 7) e.e[1] = strtol(p, &p, 10);
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else if (i == 8) e.score= strtol(p, &p, 10);
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++i;
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p = q + 1;
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if (*q == 0) break;
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}
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if (i < 9) continue; // not enough fields
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e.type = lo_infer_edge_type(opt, e.l, e.s, e.e, e.d);
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if (e.type == LO_T_C1) {
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g->v.a[id[0]].contained = 1;
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} else if (e.type == LO_T_C2) {
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g->v.a[id[1]].contained = 1;
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} else if (e.type < 4) { // a suffix-prefix overlap
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uint64_t x = (uint64_t)id[0]<<32 | id[1];
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k = kh_put(edge, g->e, x, &absent);
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if (absent || kh_val(g->e, k).score < e.score)
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kh_val(g->e, k) = e;
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}
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// printf("%d\t%d\t%d\t%d\t%d\t%d\t%d\t%d\n", id[0], e.l[0], e.s[0], e.e[0], id[1], e.l[1], e.s[1], e.e[1]);
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}
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free(str.s);
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if (lo_verbose >= 3)
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fprintf(stderr, "[M::%s] read %d edges\n", __func__, kh_size(g->e));
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return g;
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}
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void lo_graph_destroy(ograph_t *g)
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{
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int i;
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for (i = 0; i < g->v.n; ++i) {
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if (g->v.a[i].nei[0]) free(g->v.a[i].nei[0]->a);
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if (g->v.a[i].nei[1]) free(g->v.a[i].nei[1]->a);
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free(g->v.a[i].name);
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}
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free(g->v.a);
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kh_destroy(edge, g->e);
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kh_destroy(name, g->n);
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free(g);
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}
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/******************
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* Graph routines *
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******************/
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#define lo_swap(tmp, a, b) ((tmp) = (a), (a) = (b), (b) = (tmp))
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static inline void lo_flip_edge(edgeinfo_t *e)
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{
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int tmp;
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lo_swap(tmp, e->l[0], e->l[1]);
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lo_swap(tmp, e->s[0], e->s[1]);
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lo_swap(tmp, e->e[0], e->e[1]);
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lo_swap(tmp, e->d[0], e->d[1]);
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e->type = ((e->type&1)<<1 | (e->type&2)>>1) ^ 3;
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}
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void lo_rm_contained(ograph_t *g)
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{
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khint_t k, l;
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int n_del = 0, n_add = 0, absent;
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ehash_t *tmp;
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tmp = kh_init(edge);
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for (k = 0; k != kh_end(g->e); ++k) {
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int id[2];
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if (!kh_exist(g->e, k)) continue;
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id[0] = kh_key(g->e, k)>>32;
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id[1] = (uint32_t)kh_key(g->e, k);
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if (g->v.a[id[0]].contained || g->v.a[id[1]].contained) {
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++n_del;
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kh_del(edge, g->e, k); // kh_del() will not trigger rehash
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} else {
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uint64_t key2 = (uint64_t)id[1]<<32|id[0];
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l = kh_get(edge, g->e, key2);
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if (l == kh_end(g->e)) {
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l = kh_put(edge, tmp, key2, &absent);
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kh_val(tmp, l) = kh_val(g->e, k);
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lo_flip_edge(&kh_val(tmp, l));
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++n_add;
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}
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}
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}
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for (k = 0; k != kh_end(tmp); ++k) {
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if (!kh_exist(tmp, k)) continue;
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l = kh_put(edge, g->e, kh_key(tmp, k), &absent);
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assert(absent);
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kh_val(g->e, l) = kh_val(tmp, k);
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}
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if (lo_verbose >= 3)
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fprintf(stderr, "[M::%s] removed %d and added %d; %d edges remain\n", __func__, n_del, kh_size(tmp), kh_size(g->e));
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kh_destroy(edge, tmp);
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}
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void lo_rm_conflict(ograph_t *g)
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{
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}
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void lo_populate_nei(ograph_t *g)
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{
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int i;
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khint_t k;
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for (i = 0; i < g->v.n; ++i) {
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if (g->v.a[i].contained) continue;
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g->v.a[i].nei[0] = calloc(1, sizeof(uint64_v));
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g->v.a[i].nei[1] = calloc(1, sizeof(uint64_v));
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}
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for (k = 0; k != kh_end(g->e); ++k) {
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int id[2];
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edgeinfo_t *e;
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if (!kh_exist(g->e, k)) continue;
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id[0] = kh_key(g->e, k)>>32;
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id[1] = (uint32_t)kh_key(g->e, k);
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if (id[0] > id[1]) continue;
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e = &kh_val(g->e, k);
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kv_push(uint64_t, *g->v.a[id[0]].nei[e->type>>1^1], (uint64_t)e->d[0]<<32 | id[1]<<1 | (e->type&1));
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kv_push(uint64_t, *g->v.a[id[1]].nei[e->type&1], (uint64_t)e->d[1]<<32 | id[0]<<1 | (e->type>>1^1));
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}
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for (i = 0; i < g->v.n; ++i) {
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vertex_t *p = &g->v.a[i];
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if (p->nei[0]) ks_introsort(uint64_t, p->nei[0]->n, p->nei[0]->a);
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if (p->nei[1]) ks_introsort(uint64_t, p->nei[1]->n, p->nei[1]->a);
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if (lo_verbose >= 4 && p->nei[0]) {
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int j, k;
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printf("%s\t%ld,%ld", p->name, p->nei[0]->n, p->nei[1]->n);
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for (j = 0; j < 2; ++j) {
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if (p->nei[j]->n) {
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putchar('\t');
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for (k = 0; k < p->nei[j]->n; ++k) {
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uint64_t x = p->nei[j]->a[k];
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if (k) putchar(',');
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printf("%c%s:%d", "+-"[x&1], g->v.a[((uint32_t)x)>>1].name, (uint32_t)(x>>32));
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}
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} else printf("\t*");
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}
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putchar('\n');
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}
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}
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}
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void lo_trans_reduce(ograph_t *g)
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{
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}
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/*****************
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* Main function *
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*****************/
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int main_layout(int argc, char *argv[])
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{
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gzFile fp;
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kstream_t *ks;
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lo_opt_t opt;
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ograph_t *g;
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int c;
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lo_opt_init(&opt);
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while ((c = getopt(argc, argv, "v:")) >= 0) {
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if (c == 'v') lo_verbose = atoi(optarg);
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}
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if (argc == optind && isatty(fileno(stdin))) {
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fprintf(stderr, "Usage: bwa layout <in.ovlp>\n");
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return 1;
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}
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fp = (optind == argc && !isatty(fileno(stdin))) || strcmp(argv[optind], "-") == 0? gzdopen(fileno(stdin), "r") : gzopen(argv[optind], "r");
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ks = ks_init(fp);
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g = lo_graph_parse(&opt, ks);
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lo_rm_contained(g);
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lo_rm_conflict(g);
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lo_populate_nei(g);
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lo_trans_reduce(g);
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lo_graph_destroy(g);
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ks_destroy(ks);
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gzclose(fp);
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return 0;
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}
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