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MapLibre Tile support pulls in the maplibre-tile-spec submodule and needs cmake to build it, which is a lot to ask of anyone who only wants to work with Mapbox Vector Tiles. `make MLT=0` compiles with -DNO_MLT, skips the submodule and its cmake build entirely, and drops the MLT tests from `make test`. The result needs no dependencies beyond the ones MVT already needed, and can be built from a checkout with no submodules at all. Everything that touches the MLT library is behind the #ifdef, which is just the two files that were written for it. The option parsing and the tile format helpers stay compiled either way, so nothing else needs to know: --output-format=mlt reports that the build has no MLT support rather than being an unrecognized value, and a tile that is recognized as MLT reports the same instead of being misparsed as a protobuf, since the format sniffing itself doesn't need the library. CI builds and tests this configuration from a checkout without submodules, so it can't quietly stop working. Co-Authored-By: Claude Opus 5 <noreply@anthropic.com> Claude-Session: https://claude.ai/code/session_01LxhELiLtpUFwrPSWwTYdHG
345 lines
8.8 KiB
C++
345 lines
8.8 KiB
C++
#include "mlt.hpp"
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#include "errors.hpp"
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#include <algorithm>
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#include <cstdint>
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#include <cstdio>
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#include <cstring>
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#include <map>
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#include <optional>
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#include <string>
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#include <vector>
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#ifndef NO_MLT
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#include <mlt/encoder.hpp>
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using Vertex = mlt::Encoder::Vertex;
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#endif
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int output_format = OUTPUT_MVT;
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bool mlt_sort_features = true;
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bool mlt_pretessellate = false;
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void set_output_format(char **argv, const char *format) {
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if (strcmp(format, "mvt") == 0 || strcmp(format, "pbf") == 0) {
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output_format = OUTPUT_MVT;
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} else if (strcmp(format, "mlt") == 0) {
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#ifdef NO_MLT
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fprintf(stderr, "%s: this build was compiled without MapLibre Tile support\n", argv[0]);
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exit(EXIT_ARGS);
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#else
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output_format = OUTPUT_MLT;
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#endif
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} else {
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fprintf(stderr, "%s: --output-format must be 'mvt' or 'mlt'\n", argv[0]);
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exit(EXIT_ARGS);
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}
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}
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const char *tile_format_name(int format) {
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return (format == OUTPUT_MLT) ? "mlt" : "pbf";
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}
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const char *tile_format_extension(int format) {
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return (format == OUTPUT_MLT) ? ".mlt" : ".pbf";
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}
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std::string encode_tile(mvt_tile &tile, int format) {
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#ifndef NO_MLT
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if (format == OUTPUT_MLT) {
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return encode_as_mlt(tile, mlt_sort_features, mlt_pretessellate);
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}
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#else
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(void) format;
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#endif
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return tile.encode();
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}
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#ifndef NO_MLT
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// An MLT property column has a single type for the whole layer, while MVT
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// values each carry their own type, so a type that can hold every value of
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// an attribute has to be chosen before the layer can be converted.
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enum mlt_column_type {
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MLT_COLUMN_BOOL,
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MLT_COLUMN_INT32,
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MLT_COLUMN_INT64,
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MLT_COLUMN_UINT32,
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MLT_COLUMN_UINT64,
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MLT_COLUMN_DOUBLE,
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MLT_COLUMN_STRING,
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};
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struct column_summary {
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bool has_bool = false;
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bool has_string = false;
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bool has_floating = false;
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bool has_signed = false;
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bool has_unsigned = false;
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long long min_signed = 0;
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long long max_signed = 0;
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unsigned long long max_unsigned = 0;
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void add(const mvt_value &val) {
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switch (val.type) {
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case mvt_bool:
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has_bool = true;
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break;
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case mvt_float:
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case mvt_double:
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has_floating = true;
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break;
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case mvt_int:
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case mvt_sint: {
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long long v = (val.type == mvt_int) ? val.numeric_value.int_value : val.numeric_value.sint_value;
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if (!has_signed) {
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min_signed = max_signed = v;
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has_signed = true;
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} else {
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min_signed = std::min(min_signed, v);
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max_signed = std::max(max_signed, v);
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}
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break;
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}
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case mvt_uint:
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has_unsigned = true;
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max_unsigned = std::max(max_unsigned, val.numeric_value.uint_value);
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break;
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default:
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has_string = true;
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break;
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}
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}
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mlt_column_type resolve() const {
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if (has_string) {
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return MLT_COLUMN_STRING;
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}
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bool has_number = has_floating || has_signed || has_unsigned;
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if (has_bool) {
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// A column of booleans and numbers has no common numeric type
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return has_number ? MLT_COLUMN_STRING : MLT_COLUMN_BOOL;
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}
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if (has_floating) {
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return MLT_COLUMN_DOUBLE;
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}
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if (has_unsigned && !has_signed) {
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return max_unsigned <= UINT32_MAX ? MLT_COLUMN_UINT32 : MLT_COLUMN_UINT64;
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}
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if (has_signed && !has_unsigned) {
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return (min_signed >= INT32_MIN && max_signed <= INT32_MAX) ? MLT_COLUMN_INT32 : MLT_COLUMN_INT64;
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}
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if (has_signed && has_unsigned) {
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if (max_unsigned > (unsigned long long) INT64_MAX) {
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// Too wide for any integer type that can also hold the signed values
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return MLT_COLUMN_DOUBLE;
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}
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return MLT_COLUMN_INT64;
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}
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return MLT_COLUMN_STRING;
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}
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};
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static mlt::Encoder::PropertyValue convert_value(const mvt_value &val, mlt_column_type type) {
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switch (type) {
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case MLT_COLUMN_BOOL:
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return val.numeric_value.bool_value;
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case MLT_COLUMN_INT32:
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return static_cast<std::int32_t>(mvt_value_to_long_long(val));
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case MLT_COLUMN_INT64:
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return static_cast<std::int64_t>(mvt_value_to_long_long(val));
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case MLT_COLUMN_UINT32:
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return static_cast<std::uint32_t>(val.numeric_value.uint_value);
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case MLT_COLUMN_UINT64:
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return static_cast<std::uint64_t>(val.numeric_value.uint_value);
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case MLT_COLUMN_DOUBLE:
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return val.to_double();
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case MLT_COLUMN_STRING:
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default:
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// Nested JSON objects stay JSON text, the way MVT carries them,
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// because MLT struct columns can only hold strings and are
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// flattened into their parent column name when decoded.
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return val.get_string_value();
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}
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}
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static std::vector<std::vector<Vertex>> extract_rings(const mvt_feature &feature) {
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std::vector<std::vector<Vertex>> rings;
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for (size_t i = 0; i < feature.geometry.size(); i++) {
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const auto &g = feature.geometry[i];
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if (g.op == mvt_moveto) {
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rings.emplace_back();
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rings.back().push_back({static_cast<int32_t>(g.x), static_cast<int32_t>(g.y)});
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} else if (g.op == mvt_lineto) {
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rings.back().push_back({static_cast<int32_t>(g.x), static_cast<int32_t>(g.y)});
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}
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}
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return rings;
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}
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static mlt::Encoder::Geometry convert_geometry(const mvt_feature &feature) {
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mlt::Encoder::Geometry geom;
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auto rings = extract_rings(feature);
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switch (feature.type) {
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case mvt_point:
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if (rings.size() == 1 && rings[0].size() == 1) {
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geom.type = mlt::Encoder::GeometryType::POINT;
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geom.coordinates = std::move(rings[0]);
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} else {
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geom.type = mlt::Encoder::GeometryType::MULTIPOINT;
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for (auto &ring : rings) {
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for (auto &v : ring) {
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geom.coordinates.push_back(v);
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}
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}
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}
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break;
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case mvt_linestring:
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if (rings.size() == 1) {
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geom.type = mlt::Encoder::GeometryType::LINESTRING;
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geom.coordinates = std::move(rings[0]);
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} else {
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geom.type = mlt::Encoder::GeometryType::MULTILINESTRING;
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geom.parts = std::move(rings);
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}
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break;
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case mvt_polygon: {
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std::vector<std::vector<std::vector<Vertex>>> polygons;
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for (auto &ring : rings) {
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long long area2 = 0;
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for (size_t i = 0; i < ring.size(); i++) {
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size_t j = (i + 1) % ring.size();
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area2 += (long long) ring[i].x * ring[j].y - (long long) ring[j].x * ring[i].y;
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}
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if (area2 >= 0) {
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polygons.emplace_back();
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}
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if (!polygons.empty()) {
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polygons.back().push_back(std::move(ring));
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}
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}
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if (polygons.size() == 1) {
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geom.type = mlt::Encoder::GeometryType::POLYGON;
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for (auto &ring : polygons[0]) {
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geom.ringSizes.push_back(static_cast<uint32_t>(ring.size()));
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geom.coordinates.insert(geom.coordinates.end(), ring.begin(), ring.end());
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}
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} else {
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geom.type = mlt::Encoder::GeometryType::MULTIPOLYGON;
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for (auto &poly : polygons) {
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std::vector<Vertex> part_verts;
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std::vector<uint32_t> part_rings;
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for (auto &ring : poly) {
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part_rings.push_back(static_cast<uint32_t>(ring.size()));
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part_verts.insert(part_verts.end(), ring.begin(), ring.end());
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}
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geom.parts.push_back(std::move(part_verts));
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geom.partRingSizes.push_back(std::move(part_rings));
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}
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}
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break;
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}
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}
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return geom;
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}
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static mlt::Encoder::Layer convert_layer(const mvt_layer &layer) {
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mlt::Encoder::Layer out;
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out.name = layer.name;
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out.extent = static_cast<uint32_t>(layer.extent);
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std::vector<column_summary> summaries(layer.keys.size());
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for (const auto &feature : layer.features) {
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for (size_t t = 0; t + 1 < feature.tags.size(); t += 2) {
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unsigned key_idx = feature.tags[t];
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unsigned val_idx = feature.tags[t + 1];
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if (key_idx < layer.keys.size() && val_idx < layer.values.size()) {
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const auto &val = layer.values[val_idx];
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if (val.type != mvt_null) {
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summaries[key_idx].add(val);
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}
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}
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}
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}
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std::vector<mlt_column_type> types(layer.keys.size(), MLT_COLUMN_STRING);
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for (size_t i = 0; i < summaries.size(); i++) {
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types[i] = summaries[i].resolve();
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}
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for (const auto &feature : layer.features) {
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mlt::Encoder::Feature f;
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if (feature.has_id) {
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f.id = feature.id;
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} else {
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f.id = std::nullopt;
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}
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f.geometry = convert_geometry(feature);
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for (size_t t = 0; t + 1 < feature.tags.size(); t += 2) {
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unsigned key_idx = feature.tags[t];
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unsigned val_idx = feature.tags[t + 1];
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if (key_idx < layer.keys.size() && val_idx < layer.values.size()) {
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const auto &val = layer.values[val_idx];
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if (val.type != mvt_null) {
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f.properties[layer.keys[key_idx]] = convert_value(val, types[key_idx]);
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}
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}
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}
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out.features.push_back(std::move(f));
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}
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return out;
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}
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std::string encode_as_mlt(const mvt_tile &tile, bool sort_features, bool pretessellate) {
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mlt::Encoder encoder;
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mlt::EncoderConfig config;
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config.sortFeatures = sort_features;
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config.preTessellate = pretessellate;
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bool any_has_id = false;
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for (const auto &layer : tile.layers) {
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for (const auto &feature : layer.features) {
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if (feature.has_id) {
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any_has_id = true;
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break;
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}
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}
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if (any_has_id) {
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break;
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}
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}
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config.includeIds = any_has_id;
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std::vector<mlt::Encoder::Layer> layers;
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layers.reserve(tile.layers.size());
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for (const auto &layer : tile.layers) {
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layers.push_back(convert_layer(layer));
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}
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auto bytes = encoder.encode(layers, config);
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return std::string(reinterpret_cast<const char *>(bytes.data()), bytes.size());
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}
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#endif
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