mirror of
https://github.com/felt/tippecanoe.git
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330 lines
9.1 KiB
C++
330 lines
9.1 KiB
C++
#ifndef SERIAL_HPP
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#define SERIAL_HPP
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#include <stddef.h>
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#include <stdio.h>
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#include <string.h>
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#include <vector>
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#include <atomic>
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#include <memory>
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#include <sys/stat.h>
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#include "geometry.hpp"
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#include "mbtiles.hpp"
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#include "jsonpull/jsonpull.h"
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size_t fwrite_check(const void *ptr, size_t size, size_t nitems, FILE *stream, std::atomic<long long> *fpos, const char *fname);
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void serialize_int(FILE *out, int n, std::atomic<long long> *fpos, const char *fname);
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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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void serialize_ulong_long(FILE *out, unsigned long long n, std::atomic<long long> *fpos, const char *fname);
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void serialize_byte(FILE *out, signed char n, std::atomic<long long> *fpos, const char *fname);
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void serialize_uint(FILE *out, unsigned n, std::atomic<long long> *fpos, const char *fname);
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void serialize_int(std::string &out, int n);
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void serialize_long_long(std::string &out, long long n);
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void serialize_ulong_long(std::string &out, unsigned long long n);
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void serialize_byte(std::string &out, signed char n);
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void serialize_uint(std::string &out, unsigned n);
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void deserialize_int(const char **f, int *n);
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void deserialize_long_long(const char **f, long long *n);
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void deserialize_ulong_long(const char **f, unsigned long long *n);
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void deserialize_uint(const char **f, unsigned *n);
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void deserialize_byte(const char **f, signed char *n);
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// This is the main representation of attribute values in memory and
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// in the string pool. The type is one of the mvt_value type (mvt_string,
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// mvt_double, mvt_bool, or mvt_null). Note that all numeric values,
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// whether integer or floating point, use mvt_double here.
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struct serial_val {
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int type;
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std::string s;
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bool operator<(const serial_val &o) const;
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bool operator!=(const serial_val &o) const;
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serial_val() {
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type = 0;
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}
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serial_val(int t, const std::string &val)
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: type(t), s(val) {
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}
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// These functions for interface compatibility with mvt_value:
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serial_val(double val) {
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type = mvt_double;
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s = milo::dtoa_milo(val);
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}
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double to_double() const {
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return atof(s.c_str());
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}
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std::string get_string_value() const {
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return s;
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}
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void set_string_value(std::string const &val) {
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type = mvt_string;
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s = val;
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}
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size_t get_count() const {
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size_t found = s.find('\0');
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if (found == std::string::npos) {
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return 0;
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} else {
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return atoll(s.c_str() + found + 1);
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}
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}
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void set_double_count(double v, size_t c) {
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type = mvt_double;
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s = milo::dtoa_milo(v) + '\0' + std::to_string(c);
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}
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};
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struct key_pool {
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std::unordered_map<std::string, std::shared_ptr<std::string>> mapping;
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std::shared_ptr<std::string> pool(std::string const &s) {
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auto f = mapping.find(s);
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if (f != mapping.end()) {
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return f->second;
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}
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std::shared_ptr<std::string> p = std::make_shared<std::string>();
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*p = s;
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mapping.emplace(s, p);
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return p;
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}
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};
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struct serial_feature {
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long long layer = 0;
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int segment = 0;
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long long seq = 0;
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signed char t = 0;
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signed char feature_minzoom = 0;
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bool has_id = false;
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unsigned long long id = 0;
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int tippecanoe_minzoom = -1;
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int tippecanoe_maxzoom = -1;
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drawvec geometry = drawvec();
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unsigned long long index = 0;
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unsigned wx = 0, wy = 0;
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unsigned long long gap = 0; // filled in during z0. square of planar distance
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unsigned label_x = 0, label_y = 0;
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long long extent = 0;
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// These fields are not directly serialized, but are used
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// to create the keys and values references into the string pool
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// during initial serialization
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std::vector<std::shared_ptr<std::string>> full_keys{};
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std::vector<serial_val> full_values{};
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// These fields are generated from full_keys and full_values
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// during initial serialization and then replace the string
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// representations:
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std::vector<long long> keys{};
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std::vector<long long> values{};
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// These fields are used during tiling,
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// but are not serialized and are not expected
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// to be provided by frontends:
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long long bbox[4] = {0, 0, 0, 0};
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drawvec edge_nodes; // what nodes at the tile edge were added during clipping?
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#define FEATURE_DROPPED -1
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#define FEATURE_KEPT 0
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#define FEATURE_ADDED_FOR_MULTIPLIER_DENSITY INT_MAX
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// <0: dropped
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// 0: kept
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// >0: sequence number of additional feature kept by retain-points-multiplier
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// INT_MAX: additional feature kept by preserve-multiplier-density-threshold
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int dropped = FEATURE_DROPPED; // was this feature dropped by rate?
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// unsigned long long drop_by; // dot-dropping priority
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bool reduced; // is polygon dust
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bool coalesced; // was coalesced from multiple features
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int line_detail; // current tile resolution being used for simplification
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int extra_detail; // extra tile resolution to retain in output
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int maxzoom;
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double spacing; // feature spacing for --calculate-feature-density
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double simplification; // simplification level at this zoom level
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std::vector<ssize_t> arc_polygon; // used in --detect-shared-borders
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ssize_t renamed; // used in --detect-shared-borders logic
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long long clustered; // does this feature need the clustered/point_count attributes?
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const char *stringpool; // string pool for keys/values lookup
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std::shared_ptr<std::string> tile_stringpool; // string pool for mvt_value construction
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int z; // tile being produced
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int tx;
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int ty;
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};
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std::string serialize_feature(serial_feature *sf, long long wx, long long wy);
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serial_feature deserialize_feature(std::string const &geoms, unsigned z, unsigned tx, unsigned ty, unsigned *initial_x, unsigned *initial_y);
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struct reader {
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int poolfd = -1;
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int treefd = -1;
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int geomfd = -1;
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int indexfd = -1;
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int vertexfd = -1;
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int nodefd = -1;
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struct memfile *poolfile = NULL;
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struct memfile *treefile = NULL;
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FILE *geomfile = NULL;
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FILE *indexfile = NULL;
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FILE *vertexfile = NULL;
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FILE *nodefile = NULL;
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std::atomic<long long> geompos;
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std::atomic<long long> indexpos;
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std::atomic<long long> vertexpos;
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std::atomic<long long> nodepos;
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long long file_bbox[4] = {0, 0, 0, 0};
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long long file_bbox1[4] = {0xFFFFFFFF, 0xFFFFFFFF, 0, 0}; // standard -180 to 180 world plane
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long long file_bbox2[4] = {0x1FFFFFFFF, 0xFFFFFFFF, 0x100000000, 0}; // 0 to 360 world plane
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struct stat geomst {};
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char *geom_map = NULL;
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std::vector<ssize_t> key_dedup = std::vector<ssize_t>(655536, -1);
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std::vector<ssize_t> value_dedup = std::vector<ssize_t>(655536, -1);
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reader()
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: geompos(0), indexpos(0), vertexpos(0), nodepos(0) {
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}
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reader(reader const &r) {
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poolfd = r.poolfd;
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treefd = r.treefd;
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geomfd = r.geomfd;
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indexfd = r.indexfd;
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vertexfd = r.vertexfd;
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nodefd = r.nodefd;
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poolfile = r.poolfile;
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treefile = r.treefile;
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geomfile = r.geomfile;
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indexfile = r.indexfile;
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vertexfile = r.vertexfile;
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nodefile = r.nodefile;
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long long p = r.geompos;
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geompos = p;
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p = r.indexpos;
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indexpos = p;
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p = r.vertexpos;
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vertexpos = p;
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p = r.nodepos;
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nodepos = p;
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memcpy(file_bbox, r.file_bbox, sizeof(file_bbox));
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geomst = r.geomst;
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geom_map = r.geom_map;
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}
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};
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struct serialization_state {
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const char *fname = NULL; // source file name
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int line = 0; // user-oriented location within source for error reports
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std::atomic<long long> *layer_seq = NULL; // sequence within current layer
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std::atomic<long long> *progress_seq = NULL; // overall sequence for progress indicator
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std::vector<struct reader> *readers = NULL; // array of data for each input thread
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int segment = 0; // the current input thread
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unsigned *initial_x = NULL; // relative offset of all geometries
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unsigned *initial_y = NULL;
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int *initialized = NULL;
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double *dist_sum = NULL; // running tally for calculation of resolution within features
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size_t *dist_count = NULL;
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double *area_sum = NULL;
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bool want_dist = false;
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int maxzoom = 0;
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int basezoom = 0;
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bool filters = false;
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bool uses_gamma = false;
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std::map<std::string, layermap_entry> *layermap = NULL;
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std::unordered_map<std::string, int> const *attribute_types = NULL;
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std::set<std::string> *exclude = NULL;
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std::set<std::string> *include = NULL;
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int exclude_all = 0;
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};
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struct vertex {
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// these are scaled geometry,
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// but because scaling is disabled if P_SHARED_NODES is set,
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// they are effectively also world coordinates
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draw p1;
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draw mid;
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draw p2;
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vertex(draw one, draw joint, draw two) {
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if (one < two) {
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p1 = one;
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p2 = two;
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} else {
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p1 = two;
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p2 = one;
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}
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mid = joint;
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}
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bool operator<(const vertex &v) const {
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if (mid < v.mid) {
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return true;
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} else if (mid == v.mid) {
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if (p1 < v.p1) {
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return true;
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} else if (p1 == v.p1) {
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if (p2 < v.p2) {
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return true;
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}
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}
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}
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return false;
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}
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};
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struct node {
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// this is in quadkey coordinates so that the nodes for each tile
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// will be adjacent in memory, reducing potential thrashing during
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// the binary search.
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unsigned long long index;
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};
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int nodecmp(const void *void1, const void *void2);
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int serialize_feature(struct serialization_state *sst, serial_feature &sf, std::string const &layername);
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void coerce_value(std::string const &key, int &vt, std::string &val, std::unordered_map<std::string, int> const *attribute_types);
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#endif
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