mirror of
https://github.com/felt/tippecanoe.git
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* Add an option to generate label points in place of polygons * Change all these places where I said "extent" but really meant "area" * Revert "Change all these places where I said "extent" but really meant "area"" This reverts commit403828d2f7. * Add --order-smallest-first and --order-largest-first options * Use Turf's center-of-mass algorithm for polygon label points * If the label point isn't within the polygon, find one that is * Don't choose a label point that is too close to a border * Try a little harder to find an optimal label point * Checkerboard which tiles labels are generated in, to reduce adjacency * Use a label point for the general representative point for polygons (Skipping the iteration to find one that is as far as possible from the borders) This makes the labels look better in many cases (like France at z1) but unfortunately ripples into changing the sequence of polygons in many tests, so the diff is big. * Revert "Use a label point for the general representative point for polygons" This reverts commit2261adf05e. * Checkpoint work on spiral labels * Clip label spirals to the feature bounds * Fix label test * Be careful not to place spiral labels too close to borders either * For spiral anchors, only check tile scale, not feature size * Update test * Only try to find a central label point for the largest ring * In tiny polygon dust, keep the attributes of the largest feature
812 lines
24 KiB
C++
812 lines
24 KiB
C++
#include <stdio.h>
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#include <stdlib.h>
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#include <string.h>
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#include <errno.h>
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#include <string>
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#include <vector>
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#include <sqlite3.h>
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#include <set>
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#include <map>
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#include <algorithm>
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#include <limits.h>
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#include "protozero/varint.hpp"
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#include "geometry.hpp"
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#include "mbtiles.hpp"
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#include "tile.hpp"
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#include "serial.hpp"
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#include "options.hpp"
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#include "main.hpp"
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#include "pool.hpp"
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#include "projection.hpp"
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#include "evaluator.hpp"
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#include "milo/dtoa_milo.h"
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#include "errors.hpp"
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// Offset coordinates to keep them positive
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#define COORD_OFFSET (4LL << 32)
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#define SHIFT_RIGHT(a) ((((a) + COORD_OFFSET) >> geometry_scale) - (COORD_OFFSET >> geometry_scale))
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#define SHIFT_LEFT(a) ((((a) + (COORD_OFFSET >> geometry_scale)) << geometry_scale) - COORD_OFFSET)
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size_t fwrite_check(const void *ptr, size_t size, size_t nitems, FILE *stream, const char *fname) {
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size_t w = fwrite(ptr, size, nitems, stream);
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if (w != nitems) {
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fprintf(stderr, "%s: Write to temporary file failed: %s\n", fname, strerror(errno));
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exit(EXIT_WRITE);
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}
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return w;
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}
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void serialize_int(FILE *out, int n, std::atomic<long long> *fpos, const char *fname) {
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serialize_long_long(out, n, fpos, fname);
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}
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void serialize_long_long(FILE *out, long long n, std::atomic<long long> *fpos, const char *fname) {
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unsigned long long zigzag = protozero::encode_zigzag64(n);
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serialize_ulong_long(out, zigzag, fpos, fname);
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}
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void serialize_ulong_long(FILE *out, unsigned long long zigzag, std::atomic<long long> *fpos, const char *fname) {
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while (1) {
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unsigned char b = zigzag & 0x7F;
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if ((zigzag >> 7) != 0) {
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b |= 0x80;
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if (putc(b, out) == EOF) {
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fprintf(stderr, "%s: Write to temporary file failed: %s\n", fname, strerror(errno));
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exit(EXIT_WRITE);
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}
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*fpos += 1;
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zigzag >>= 7;
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} else {
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if (putc(b, out) == EOF) {
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fprintf(stderr, "%s: Write to temporary file failed: %s\n", fname, strerror(errno));
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exit(EXIT_WRITE);
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}
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*fpos += 1;
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break;
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}
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}
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}
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void serialize_byte(FILE *out, signed char n, std::atomic<long long> *fpos, const char *fname) {
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fwrite_check(&n, sizeof(signed char), 1, out, fname);
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*fpos += sizeof(signed char);
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}
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void serialize_uint(FILE *out, unsigned n, std::atomic<long long> *fpos, const char *fname) {
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fwrite_check(&n, sizeof(unsigned), 1, out, fname);
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*fpos += sizeof(unsigned);
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}
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void deserialize_int(char **f, int *n) {
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long long ll;
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deserialize_long_long(f, &ll);
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*n = ll;
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}
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void deserialize_long_long(char **f, long long *n) {
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unsigned long long zigzag = 0;
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deserialize_ulong_long(f, &zigzag);
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*n = protozero::decode_zigzag64(zigzag);
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}
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void deserialize_ulong_long(char **f, unsigned long long *zigzag) {
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*zigzag = 0;
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int shift = 0;
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while (1) {
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if ((**f & 0x80) == 0) {
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*zigzag |= ((unsigned long long) **f) << shift;
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*f += 1;
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shift += 7;
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break;
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} else {
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*zigzag |= ((unsigned long long) (**f & 0x7F)) << shift;
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*f += 1;
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shift += 7;
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}
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}
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}
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void deserialize_uint(char **f, unsigned *n) {
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memcpy(n, *f, sizeof(unsigned));
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*f += sizeof(unsigned);
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}
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void deserialize_byte(char **f, signed char *n) {
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memcpy(n, *f, sizeof(signed char));
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*f += sizeof(signed char);
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}
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int deserialize_long_long_io(FILE *f, long long *n, std::atomic<long long> *geompos) {
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unsigned long long zigzag = 0;
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int ret = deserialize_ulong_long_io(f, &zigzag, geompos);
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*n = protozero::decode_zigzag64(zigzag);
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return ret;
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}
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int deserialize_ulong_long_io(FILE *f, unsigned long long *zigzag, std::atomic<long long> *geompos) {
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*zigzag = 0;
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int shift = 0;
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while (1) {
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int c = getc(f);
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if (c == EOF) {
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return 0;
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}
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(*geompos)++;
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if ((c & 0x80) == 0) {
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*zigzag |= ((unsigned long long) c) << shift;
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shift += 7;
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break;
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} else {
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*zigzag |= ((unsigned long long) (c & 0x7F)) << shift;
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shift += 7;
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}
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}
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return 1;
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}
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int deserialize_int_io(FILE *f, int *n, std::atomic<long long> *geompos) {
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long long ll = 0;
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int ret = deserialize_long_long_io(f, &ll, geompos);
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*n = ll;
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return ret;
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}
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int deserialize_uint_io(FILE *f, unsigned *n, std::atomic<long long> *geompos) {
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if (fread(n, sizeof(unsigned), 1, f) != 1) {
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return 0;
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}
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*geompos += sizeof(unsigned);
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return 1;
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}
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int deserialize_byte_io(FILE *f, signed char *n, std::atomic<long long> *geompos) {
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int c = getc(f);
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if (c == EOF) {
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return 0;
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}
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*n = c;
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(*geompos)++;
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return 1;
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}
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static void write_geometry(drawvec const &dv, std::atomic<long long> *fpos, FILE *out, const char *fname, long long wx, long long wy) {
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for (size_t i = 0; i < dv.size(); i++) {
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if (dv[i].op == VT_MOVETO || dv[i].op == VT_LINETO) {
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serialize_byte(out, dv[i].op, fpos, fname);
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serialize_long_long(out, dv[i].x - wx, fpos, fname);
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serialize_long_long(out, dv[i].y - wy, fpos, fname);
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wx = dv[i].x;
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wy = dv[i].y;
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} else {
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serialize_byte(out, dv[i].op, fpos, fname);
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}
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}
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}
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// called from generating the next zoom level
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void serialize_feature(FILE *geomfile, serial_feature *sf, std::atomic<long long> *geompos, const char *fname, long long wx, long long wy, bool include_minzoom) {
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serialize_byte(geomfile, sf->t, geompos, fname);
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#define FLAG_LAYER 7
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#define FLAG_LABEL_POINT 6
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#define FLAG_SEQ 5
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#define FLAG_INDEX 4
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#define FLAG_EXTENT 3
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#define FLAG_ID 2
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#define FLAG_MINZOOM 1
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#define FLAG_MAXZOOM 0
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long long layer = 0;
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layer |= sf->layer << FLAG_LAYER;
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layer |= (sf->label_point != 0) << FLAG_LABEL_POINT;
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layer |= (sf->seq != 0) << FLAG_SEQ;
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layer |= (sf->index != 0) << FLAG_INDEX;
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layer |= (sf->extent != 0) << FLAG_EXTENT;
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layer |= sf->has_id << FLAG_ID;
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layer |= sf->has_tippecanoe_minzoom << FLAG_MINZOOM;
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layer |= sf->has_tippecanoe_maxzoom << FLAG_MAXZOOM;
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serialize_long_long(geomfile, layer, geompos, fname);
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if (sf->seq != 0) {
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serialize_long_long(geomfile, sf->seq, geompos, fname);
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}
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if (sf->has_tippecanoe_minzoom) {
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serialize_int(geomfile, sf->tippecanoe_minzoom, geompos, fname);
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}
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if (sf->has_tippecanoe_maxzoom) {
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serialize_int(geomfile, sf->tippecanoe_maxzoom, geompos, fname);
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}
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if (sf->has_id) {
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serialize_ulong_long(geomfile, sf->id, geompos, fname);
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}
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serialize_int(geomfile, sf->segment, geompos, fname);
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write_geometry(sf->geometry, geompos, geomfile, fname, wx, wy);
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serialize_byte(geomfile, VT_END, geompos, fname);
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if (sf->index != 0) {
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serialize_ulong_long(geomfile, sf->index, geompos, fname);
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}
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if (sf->label_point != 0) {
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serialize_ulong_long(geomfile, sf->label_point, geompos, fname);
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}
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if (sf->extent != 0) {
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serialize_long_long(geomfile, sf->extent, geompos, fname);
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}
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serialize_long_long(geomfile, sf->metapos, geompos, fname);
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if (sf->metapos < 0) {
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serialize_long_long(geomfile, sf->keys.size(), geompos, fname);
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for (size_t i = 0; i < sf->keys.size(); i++) {
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serialize_long_long(geomfile, sf->keys[i], geompos, fname);
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serialize_long_long(geomfile, sf->values[i], geompos, fname);
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}
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}
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if (include_minzoom) {
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serialize_byte(geomfile, sf->feature_minzoom, geompos, fname);
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}
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}
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serial_feature deserialize_feature(FILE *geoms, std::atomic<long long> *geompos_in, char *metabase, long long *meta_off, unsigned z, unsigned tx, unsigned ty, unsigned *initial_x, unsigned *initial_y) {
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serial_feature sf;
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deserialize_byte_io(geoms, &sf.t, geompos_in);
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if (sf.t < 0) {
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return sf;
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}
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deserialize_long_long_io(geoms, &sf.layer, geompos_in);
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sf.seq = 0;
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if (sf.layer & (1 << FLAG_SEQ)) {
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deserialize_long_long_io(geoms, &sf.seq, geompos_in);
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}
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sf.tippecanoe_minzoom = -1;
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sf.tippecanoe_maxzoom = -1;
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sf.id = 0;
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sf.has_id = false;
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if (sf.layer & (1 << FLAG_MINZOOM)) {
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deserialize_int_io(geoms, &sf.tippecanoe_minzoom, geompos_in);
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}
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if (sf.layer & (1 << FLAG_MAXZOOM)) {
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deserialize_int_io(geoms, &sf.tippecanoe_maxzoom, geompos_in);
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}
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if (sf.layer & (1 << FLAG_ID)) {
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sf.has_id = true;
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deserialize_ulong_long_io(geoms, &sf.id, geompos_in);
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}
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deserialize_int_io(geoms, &sf.segment, geompos_in);
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sf.index = 0;
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sf.label_point = 0;
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sf.extent = 0;
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sf.geometry = decode_geometry(geoms, geompos_in, z, tx, ty, sf.bbox, initial_x[sf.segment], initial_y[sf.segment]);
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if (sf.layer & (1 << FLAG_INDEX)) {
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deserialize_ulong_long_io(geoms, &sf.index, geompos_in);
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}
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if (sf.layer & (1 << FLAG_LABEL_POINT)) {
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deserialize_ulong_long_io(geoms, &sf.label_point, geompos_in);
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}
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if (sf.layer & (1 << FLAG_EXTENT)) {
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deserialize_long_long_io(geoms, &sf.extent, geompos_in);
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}
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sf.layer >>= FLAG_LAYER;
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sf.metapos = 0;
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deserialize_long_long_io(geoms, &sf.metapos, geompos_in);
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if (sf.metapos >= 0) {
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char *meta = metabase + sf.metapos + meta_off[sf.segment];
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long long count;
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deserialize_long_long(&meta, &count);
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for (long long i = 0; i < count; i++) {
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long long k, v;
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deserialize_long_long(&meta, &k);
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deserialize_long_long(&meta, &v);
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sf.keys.push_back(k);
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sf.values.push_back(v);
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}
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} else {
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long long count;
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deserialize_long_long_io(geoms, &count, geompos_in);
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for (long long i = 0; i < count; i++) {
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long long k, v;
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deserialize_long_long_io(geoms, &k, geompos_in);
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deserialize_long_long_io(geoms, &v, geompos_in);
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sf.keys.push_back(k);
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sf.values.push_back(v);
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}
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}
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deserialize_byte_io(geoms, &sf.feature_minzoom, geompos_in);
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return sf;
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}
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static long long scale_geometry(struct serialization_state *sst, long long *bbox, drawvec &geom) {
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long long offset = 0;
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long long prev = 0;
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bool has_prev = false;
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double scale = 1.0 / (1 << geometry_scale);
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for (size_t i = 0; i < geom.size(); i++) {
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if (geom[i].op == VT_MOVETO || geom[i].op == VT_LINETO) {
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long long x = geom[i].x;
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long long y = geom[i].y;
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if (additional[A_DETECT_WRAPAROUND]) {
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x += offset;
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if (has_prev) {
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if (x - prev > (1LL << 31)) {
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offset -= 1LL << 32;
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x -= 1LL << 32;
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} else if (prev - x > (1LL << 31)) {
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offset += 1LL << 32;
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x += 1LL << 32;
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}
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}
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has_prev = true;
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prev = x;
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}
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if (x < bbox[0]) {
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bbox[0] = x;
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}
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if (y < bbox[1]) {
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bbox[1] = y;
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}
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if (x > bbox[2]) {
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bbox[2] = x;
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}
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if (y > bbox[3]) {
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bbox[3] = y;
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}
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if (!*(sst->initialized)) {
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if (x < 0 || x >= (1LL << 32) || y < 0 || y >= (1LL << 32)) {
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*(sst->initial_x) = 1LL << 31;
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*(sst->initial_y) = 1LL << 31;
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} else {
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*(sst->initial_x) = (((x + COORD_OFFSET) >> geometry_scale) << geometry_scale) - COORD_OFFSET;
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*(sst->initial_y) = (((y + COORD_OFFSET) >> geometry_scale) << geometry_scale) - COORD_OFFSET;
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}
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*(sst->initialized) = 1;
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}
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if (additional[A_GRID_LOW_ZOOMS]) {
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// If we are gridding, snap to the maxzoom grid in case the incoming data
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// is already supposed to be aligned to tile boundaries (but is not, exactly,
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// because of rounding error during projection).
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geom[i].x = std::round(x * scale);
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geom[i].y = std::round(y * scale);
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} else {
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geom[i].x = SHIFT_RIGHT(x);
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geom[i].y = SHIFT_RIGHT(y);
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}
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}
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}
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return geom.size();
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}
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static std::string strip_zeroes(std::string s) {
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// Doesn't do anything special with '-' followed by leading zeros
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// since integer IDs must be positive
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while (s.size() > 0 && s[0] == '0') {
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s.erase(s.begin());
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}
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return s;
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}
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// called from frontends
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int serialize_feature(struct serialization_state *sst, serial_feature &sf) {
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struct reader *r = &(*sst->readers)[sst->segment];
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sf.bbox[0] = LLONG_MAX;
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sf.bbox[1] = LLONG_MAX;
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sf.bbox[2] = LLONG_MIN;
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sf.bbox[3] = LLONG_MIN;
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// try to remind myself that the geometry in this function is in SCALED COORDINATES
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drawvec scaled_geometry = sf.geometry;
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sf.geometry.clear();
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scale_geometry(sst, sf.bbox, scaled_geometry);
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// This has to happen after scaling so that the wraparound detection has happened first.
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// Otherwise the inner/outer calculation will be confused by bad geometries.
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if (sf.t == VT_POLYGON) {
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scaled_geometry = fix_polygon(scaled_geometry);
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}
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for (auto &c : clipbboxes) {
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if (sf.t == VT_POLYGON) {
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scaled_geometry = simple_clip_poly(scaled_geometry, SHIFT_RIGHT(c.minx), SHIFT_RIGHT(c.miny), SHIFT_RIGHT(c.maxx), SHIFT_RIGHT(c.maxy));
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} else if (sf.t == VT_LINE) {
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scaled_geometry = clip_lines(scaled_geometry, SHIFT_RIGHT(c.minx), SHIFT_RIGHT(c.miny), SHIFT_RIGHT(c.maxx), SHIFT_RIGHT(c.maxy));
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scaled_geometry = remove_noop(scaled_geometry, sf.t, 0);
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} else if (sf.t == VT_POINT) {
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scaled_geometry = clip_point(scaled_geometry, SHIFT_RIGHT(c.minx), SHIFT_RIGHT(c.miny), SHIFT_RIGHT(c.maxx), SHIFT_RIGHT(c.maxy));
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}
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sf.bbox[0] = LLONG_MAX;
|
|
sf.bbox[1] = LLONG_MAX;
|
|
sf.bbox[2] = LLONG_MIN;
|
|
sf.bbox[3] = LLONG_MIN;
|
|
|
|
for (auto &g : scaled_geometry) {
|
|
long long x = SHIFT_LEFT(g.x);
|
|
long long y = SHIFT_LEFT(g.y);
|
|
|
|
if (x < sf.bbox[0]) {
|
|
sf.bbox[0] = x;
|
|
}
|
|
if (y < sf.bbox[1]) {
|
|
sf.bbox[1] = y;
|
|
}
|
|
if (x > sf.bbox[2]) {
|
|
sf.bbox[2] = x;
|
|
}
|
|
if (y > sf.bbox[3]) {
|
|
sf.bbox[3] = y;
|
|
}
|
|
}
|
|
}
|
|
|
|
if (scaled_geometry.size() == 0) {
|
|
// Feature was clipped away
|
|
return 1;
|
|
}
|
|
|
|
if (!sf.has_id) {
|
|
if (additional[A_GENERATE_IDS]) {
|
|
sf.has_id = true;
|
|
sf.id = sf.seq + 1;
|
|
}
|
|
}
|
|
|
|
if (sst->want_dist) {
|
|
std::vector<unsigned long long> locs;
|
|
for (size_t i = 0; i < scaled_geometry.size(); i++) {
|
|
if (scaled_geometry[i].op == VT_MOVETO || scaled_geometry[i].op == VT_LINETO) {
|
|
locs.push_back(encode_index(SHIFT_LEFT(scaled_geometry[i].x), SHIFT_LEFT(scaled_geometry[i].y)));
|
|
}
|
|
}
|
|
std::sort(locs.begin(), locs.end());
|
|
size_t n = 0;
|
|
double sum = 0;
|
|
for (size_t i = 1; i < locs.size(); i++) {
|
|
if (locs[i - 1] != locs[i]) {
|
|
sum += log(locs[i] - locs[i - 1]);
|
|
n++;
|
|
}
|
|
}
|
|
if (n > 0) {
|
|
double avg = exp(sum / n);
|
|
// Convert approximately from tile units to feet
|
|
// See comment about empirical data in main.cpp
|
|
double dist_ft = sqrt(avg) / 33;
|
|
|
|
*(sst->dist_sum) += log(dist_ft) * n;
|
|
*(sst->dist_count) += n;
|
|
}
|
|
locs.clear();
|
|
}
|
|
|
|
bool inline_meta = true;
|
|
// Don't inline metadata for features that will span several tiles at maxzoom
|
|
if (scaled_geometry.size() > 0 && (sf.bbox[2] < sf.bbox[0] || sf.bbox[3] < sf.bbox[1])) {
|
|
fprintf(stderr, "Internal error: impossible feature bounding box %llx,%llx,%llx,%llx\n", sf.bbox[0], sf.bbox[1], sf.bbox[2], sf.bbox[3]);
|
|
}
|
|
if (sf.bbox[0] == LLONG_MAX) {
|
|
// No bounding box (empty geometry)
|
|
// Shouldn't happen, but avoid arithmetic overflow below
|
|
} else if (sf.bbox[2] - sf.bbox[0] > (2LL << (32 - sst->maxzoom)) || sf.bbox[3] - sf.bbox[1] > (2LL << (32 - sst->maxzoom))) {
|
|
inline_meta = false;
|
|
|
|
if (prevent[P_CLIPPING]) {
|
|
static std::atomic<long long> warned(0);
|
|
long long extent = ((sf.bbox[2] - sf.bbox[0]) / ((1LL << (32 - sst->maxzoom)) + 1)) * ((sf.bbox[3] - sf.bbox[1]) / ((1LL << (32 - sst->maxzoom)) + 1));
|
|
if (extent > warned) {
|
|
fprintf(stderr, "Warning: %s:%d: Large unclipped (-pc) feature may be duplicated across %lld tiles\n", sst->fname, sst->line, extent);
|
|
warned = extent;
|
|
|
|
if (extent > 10000) {
|
|
fprintf(stderr, "Exiting because this can't be right.\n");
|
|
exit(EXIT_IMPOSSIBLE);
|
|
}
|
|
}
|
|
}
|
|
}
|
|
|
|
double extent = 0;
|
|
if (additional[A_DROP_SMALLEST_AS_NEEDED] || additional[A_COALESCE_SMALLEST_AS_NEEDED] || order_by_size) {
|
|
if (sf.t == VT_POLYGON) {
|
|
for (size_t i = 0; i < scaled_geometry.size(); i++) {
|
|
if (scaled_geometry[i].op == VT_MOVETO) {
|
|
size_t j;
|
|
for (j = i + 1; j < scaled_geometry.size(); j++) {
|
|
if (scaled_geometry[j].op != VT_LINETO) {
|
|
break;
|
|
}
|
|
}
|
|
|
|
extent += SHIFT_LEFT(SHIFT_LEFT(1LL)) * get_area(scaled_geometry, i, j);
|
|
i = j - 1;
|
|
}
|
|
}
|
|
} else if (sf.t == VT_LINE) {
|
|
double dist = 0;
|
|
for (size_t i = 1; i < scaled_geometry.size(); i++) {
|
|
if (scaled_geometry[i].op == VT_LINETO) {
|
|
double xd = SHIFT_LEFT(scaled_geometry[i].x - scaled_geometry[i - 1].x);
|
|
double yd = SHIFT_LEFT(scaled_geometry[i].y - scaled_geometry[i - 1].y);
|
|
dist += sqrt(xd * xd + yd * yd);
|
|
}
|
|
}
|
|
// treat lines as having the area of a circle with the line as diameter
|
|
extent = M_PI * (dist / 2) * (dist / 2);
|
|
}
|
|
|
|
// VT_POINT extent will be calculated in write_tile from the distance between adjacent features.
|
|
}
|
|
|
|
if (extent <= LLONG_MAX) {
|
|
sf.extent = (long long) extent;
|
|
} else {
|
|
sf.extent = LLONG_MAX;
|
|
}
|
|
|
|
if (!prevent[P_INPUT_ORDER]) {
|
|
sf.seq = 0;
|
|
}
|
|
|
|
unsigned long long bbox_index;
|
|
long long midx, midy;
|
|
|
|
if (sf.t == VT_POINT) {
|
|
// keep old behavior, which loses one bit of precision at the bottom
|
|
midx = (sf.bbox[0] / 2 + sf.bbox[2] / 2) & ((1LL << 32) - 1);
|
|
midy = (sf.bbox[1] / 2 + sf.bbox[3] / 2) & ((1LL << 32) - 1);
|
|
} else {
|
|
// To reduce the chances of giving multiple polygons or linestrings
|
|
// the same index, use an arbitrary but predictable point from the
|
|
// geometry as the index point rather than the bounding box center
|
|
// as was previously used. The index point chosen comes from a hash
|
|
// of the overall geometry, so features with the same geometry will
|
|
// still have the same index. Specifically this avoids guessing
|
|
// too high a maxzoom for a data source that has a large number of
|
|
// LineStrings that map essentially the same route but with slight
|
|
// jitter between them, even though the geometries themselves are
|
|
// not very detailed.
|
|
size_t ix = 0;
|
|
for (size_t i = 0; i < scaled_geometry.size(); i++) {
|
|
ix += scaled_geometry[i].x + scaled_geometry[i].y;
|
|
}
|
|
ix = ix % scaled_geometry.size();
|
|
|
|
// If off the edge of the plane, mask to bring it back into the addressable area
|
|
midx = SHIFT_LEFT(scaled_geometry[ix].x) & ((1LL << 32) - 1);
|
|
midy = SHIFT_LEFT(scaled_geometry[ix].y) & ((1LL << 32) - 1);
|
|
}
|
|
|
|
bbox_index = encode_index(midx, midy);
|
|
|
|
if (sf.t == VT_POLYGON && additional[A_GENERATE_POLYGON_LABEL_POINTS]) {
|
|
drawvec dv = polygon_to_anchor(scaled_geometry);
|
|
if (dv.size() > 0) {
|
|
dv[0].x = SHIFT_LEFT(dv[0].x) & ((1LL << 32) - 1);
|
|
dv[0].y = SHIFT_LEFT(dv[0].y) & ((1LL << 32) - 1);
|
|
sf.label_point = encode_index(dv[0].x, dv[0].y);
|
|
}
|
|
}
|
|
|
|
if (additional[A_DROP_DENSEST_AS_NEEDED] || additional[A_COALESCE_DENSEST_AS_NEEDED] || additional[A_CLUSTER_DENSEST_AS_NEEDED] || additional[A_CALCULATE_FEATURE_DENSITY] || additional[A_DROP_SMALLEST_AS_NEEDED] || additional[A_COALESCE_SMALLEST_AS_NEEDED] || additional[A_INCREASE_GAMMA_AS_NEEDED] || additional[A_GENERATE_POLYGON_LABEL_POINTS] || sst->uses_gamma || cluster_distance != 0) {
|
|
sf.index = bbox_index;
|
|
} else {
|
|
sf.index = 0;
|
|
}
|
|
|
|
if (sst->layermap->count(sf.layername) == 0) {
|
|
sst->layermap->insert(std::pair<std::string, layermap_entry>(sf.layername, layermap_entry(sst->layermap->size())));
|
|
}
|
|
|
|
auto ai = sst->layermap->find(sf.layername);
|
|
if (ai != sst->layermap->end()) {
|
|
sf.layer = ai->second.id;
|
|
|
|
if (!sst->filters) {
|
|
if (sf.t == VT_POINT) {
|
|
ai->second.points++;
|
|
} else if (sf.t == VT_LINE) {
|
|
ai->second.lines++;
|
|
} else if (sf.t == VT_POLYGON) {
|
|
ai->second.polygons++;
|
|
}
|
|
}
|
|
} else {
|
|
fprintf(stderr, "Internal error: can't find layer name %s\n", sf.layername.c_str());
|
|
exit(EXIT_IMPOSSIBLE);
|
|
}
|
|
|
|
for (ssize_t i = (ssize_t) sf.full_keys.size() - 1; i >= 0; i--) {
|
|
coerce_value(sf.full_keys[i], sf.full_values[i].type, sf.full_values[i].s, sst->attribute_types);
|
|
|
|
if (prevent[P_SINGLE_PRECISION]) {
|
|
if (sf.full_values[i].type == mvt_double) {
|
|
// don't coerce integers to floats, since that is counterproductive
|
|
if (sf.full_values[i].s.find('.') != std::string::npos) {
|
|
sf.full_values[i].s = milo::dtoa_milo((float) atof(sf.full_values[i].s.c_str()));
|
|
}
|
|
}
|
|
}
|
|
|
|
if (sf.full_keys[i] == attribute_for_id) {
|
|
if (sf.full_values[i].type != mvt_double && !additional[A_CONVERT_NUMERIC_IDS]) {
|
|
static bool warned = false;
|
|
|
|
if (!warned) {
|
|
fprintf(stderr, "Warning: Attribute \"%s\"=\"%s\" as feature ID is not a number\n", sf.full_keys[i].c_str(), sf.full_values[i].s.c_str());
|
|
warned = true;
|
|
}
|
|
} else {
|
|
char *err;
|
|
long long id_value = strtoull(sf.full_values[i].s.c_str(), &err, 10);
|
|
|
|
if (err != NULL && *err != '\0') {
|
|
static bool warned_frac = false;
|
|
|
|
if (!warned_frac) {
|
|
fprintf(stderr, "Warning: Can't represent non-integer feature ID %s\n", sf.full_values[i].s.c_str());
|
|
warned_frac = true;
|
|
}
|
|
} else if (std::to_string(id_value) != strip_zeroes(sf.full_values[i].s)) {
|
|
static bool warned = false;
|
|
|
|
if (!warned) {
|
|
fprintf(stderr, "Warning: Can't represent too-large feature ID %s\n", sf.full_values[i].s.c_str());
|
|
warned = true;
|
|
}
|
|
} else {
|
|
sf.id = id_value;
|
|
sf.has_id = true;
|
|
|
|
sf.full_keys.erase(sf.full_keys.begin() + i);
|
|
sf.full_values.erase(sf.full_values.begin() + i);
|
|
continue;
|
|
}
|
|
}
|
|
}
|
|
|
|
if (sst->exclude_all) {
|
|
if (sst->include->count(sf.full_keys[i]) == 0) {
|
|
sf.full_keys.erase(sf.full_keys.begin() + i);
|
|
sf.full_values.erase(sf.full_values.begin() + i);
|
|
continue;
|
|
}
|
|
} else if (sst->exclude->count(sf.full_keys[i]) != 0) {
|
|
sf.full_keys.erase(sf.full_keys.begin() + i);
|
|
sf.full_values.erase(sf.full_values.begin() + i);
|
|
continue;
|
|
}
|
|
}
|
|
|
|
if (!sst->filters) {
|
|
for (size_t i = 0; i < sf.full_keys.size(); i++) {
|
|
type_and_string attrib;
|
|
attrib.type = sf.full_values[i].type;
|
|
attrib.string = sf.full_values[i].s;
|
|
|
|
auto fk = sst->layermap->find(sf.layername);
|
|
add_to_file_keys(fk->second.file_keys, sf.full_keys[i], attrib);
|
|
}
|
|
}
|
|
|
|
if (inline_meta) {
|
|
sf.metapos = -1;
|
|
for (size_t i = 0; i < sf.full_keys.size(); i++) {
|
|
sf.keys.push_back(addpool(r->poolfile, r->treefile, sf.full_keys[i].c_str(), mvt_string));
|
|
sf.values.push_back(addpool(r->poolfile, r->treefile, sf.full_values[i].s.c_str(), sf.full_values[i].type));
|
|
}
|
|
} else {
|
|
sf.metapos = r->metapos;
|
|
serialize_long_long(r->metafile, sf.full_keys.size(), &r->metapos, sst->fname);
|
|
for (size_t i = 0; i < sf.full_keys.size(); i++) {
|
|
serialize_long_long(r->metafile, addpool(r->poolfile, r->treefile, sf.full_keys[i].c_str(), mvt_string), &r->metapos, sst->fname);
|
|
serialize_long_long(r->metafile, addpool(r->poolfile, r->treefile, sf.full_values[i].s.c_str(), sf.full_values[i].type), &r->metapos, sst->fname);
|
|
}
|
|
}
|
|
|
|
long long geomstart = r->geompos;
|
|
sf.geometry = scaled_geometry;
|
|
serialize_feature(r->geomfile, &sf, &r->geompos, sst->fname, SHIFT_RIGHT(*(sst->initial_x)), SHIFT_RIGHT(*(sst->initial_y)), false);
|
|
|
|
struct index index;
|
|
index.start = geomstart;
|
|
index.end = r->geompos;
|
|
index.segment = sst->segment;
|
|
index.seq = *(sst->layer_seq);
|
|
index.t = sf.t;
|
|
index.ix = bbox_index;
|
|
|
|
fwrite_check(&index, sizeof(struct index), 1, r->indexfile, sst->fname);
|
|
r->indexpos += sizeof(struct index);
|
|
|
|
for (size_t i = 0; i < 2; i++) {
|
|
if (sf.bbox[i] < r->file_bbox[i]) {
|
|
r->file_bbox[i] = sf.bbox[i];
|
|
}
|
|
}
|
|
for (size_t i = 2; i < 4; i++) {
|
|
if (sf.bbox[i] > r->file_bbox[i]) {
|
|
r->file_bbox[i] = sf.bbox[i];
|
|
}
|
|
}
|
|
|
|
if (*(sst->progress_seq) % 10000 == 0) {
|
|
checkdisk(sst->readers);
|
|
if (!quiet && !quiet_progress && progress_time()) {
|
|
fprintf(stderr, "Read %.2f million features\r", *sst->progress_seq / 1000000.0);
|
|
}
|
|
}
|
|
(*(sst->progress_seq))++;
|
|
(*(sst->layer_seq))++;
|
|
|
|
return 1;
|
|
}
|
|
|
|
void coerce_value(std::string const &key, int &vt, std::string &val, std::map<std::string, int> const *attribute_types) {
|
|
auto a = (*attribute_types).find(key);
|
|
if (a != attribute_types->end()) {
|
|
if (a->second == mvt_string) {
|
|
vt = mvt_string;
|
|
} else if (a->second == mvt_float) {
|
|
vt = mvt_double;
|
|
val = milo::dtoa_milo(atof(val.c_str()));
|
|
} else if (a->second == mvt_int) {
|
|
vt = mvt_double;
|
|
if (val.size() == 0) {
|
|
val = "0";
|
|
}
|
|
|
|
for (size_t ii = 0; ii < val.size(); ii++) {
|
|
char c = val[ii];
|
|
if (c < '0' || c > '9') {
|
|
val = std::to_string(round(atof(val.c_str())));
|
|
break;
|
|
}
|
|
}
|
|
} else if (a->second == mvt_bool) {
|
|
if (val == "false" || val == "0" || val == "null" || val.size() == 0 || (vt == mvt_double && atof(val.c_str()) == 0)) {
|
|
vt = mvt_bool;
|
|
val = "false";
|
|
} else {
|
|
vt = mvt_bool;
|
|
val = "true";
|
|
}
|
|
} else {
|
|
fprintf(stderr, "Can't happen: attribute type %d\n", a->second);
|
|
exit(EXIT_IMPOSSIBLE);
|
|
}
|
|
}
|
|
}
|