#include "geometry.hpp" #include "mapbox/geometry/earcut.hpp" using Coord = long long; using N = size_t; using Point = std::array; // Return false if the requested adjustment would give // any of the polygons that contain vertex N a negative area bool can_adjust(drawvec const &dv, std::vector const &indices, size_t n, double *dx, double *dy) { printf("looking for %zu\n", n); bool again = true; while (again) { again = false; for (size_t i = 0; i + 2 < indices.size(); i += 3) { for (size_t j = 0; j < 3; j++) { if (indices[i + j] == indices[n]) { drawvec tri; for (size_t k = 0; k < 3; k++) { printf("found %zu %lld,%lld\n", i + j, dv[indices[i + k]].x, dv[indices[i + k]].y); tri.push_back(dv[indices[i + k]]); tri[k].op = VT_LINETO; if (indices[i + k] == indices[n]) { tri[k].x += *dx; tri[k].y += *dy; } } tri.push_back(tri[0]); tri[0].op = VT_MOVETO; printf("area %f\n", get_area(tri, 0, tri.size())); if (get_area(tri, 0, tri.size()) < 0) { *dx /= 2; *dy /= 2; again = true; } } } } } return true; } drawvec fix_by_triangulation(drawvec const &dv, int z, int detail) { std::vector> polygon; drawvec out; double scale = 1LL << (32 - z - detail); for (size_t i = 0; i < dv.size(); i++) { if (dv[i].op == VT_MOVETO) { size_t j; for (j = i + 1; j < dv.size(); j++) { if (dv[j].op != VT_LINETO) { break; } } std::vector ring; // j - 1 because earcut docs indicate that it doesn't expect // a duplicate last point in each ring for (size_t k = i; k < j - 1; k++) { Point p = {(long long) dv[k].x, (long long) dv[k].y}; ring.push_back(p); out.push_back(dv[k]); } polygon.push_back(ring); i = j - 1; } } std::vector indices = mapbox::earcut(polygon); drawvec out2; bool again = true; while (again) { again = false; for (size_t i = 0; i + 2 < indices.size(); i += 3) { for (size_t j = 0; j < 3; j++) { size_t v1 = i + j; size_t v2 = i + ((j + 1) % 3); size_t v3 = i + ((j + 2) % 3); if (std::llabs(std::llround(out[indices[v1]].x / scale) - std::llround(out[indices[v2]].x / scale)) < 2 && std::llabs(std::llround(out[indices[v1]].y / scale) - std::llround(out[indices[v2]].y / scale)) < 2) { double ang = atan2(out[indices[v2]].y - out[indices[v1]].y, out[indices[v2]].x - out[indices[v1]].x); drawvec tri; tri.emplace_back(VT_MOVETO, (long long) out[indices[v3]].x, (long long) out[indices[v3]].y); tri.emplace_back(VT_LINETO, out[indices[v1]].x - scale * cos(ang) * sqrt(2) * 2, out[indices[v1]].y - scale * sin(ang) * sqrt(2) * 2); tri.emplace_back(VT_LINETO, out[indices[v2]].x + scale * cos(ang) * sqrt(2) * 2, out[indices[v2]].y + scale * sin(ang) * sqrt(2) * 2); tri.emplace_back(VT_LINETO, (long long) out[indices[v3]].x, (long long) out[indices[v3]].y); printf("%f\n", get_area(tri, 0, tri.size())); for (auto const &d : tri) { out2.push_back(d); } } } } } for (size_t i = 0; i < out.size(); i++) { if (out[i].op == VT_MOVETO) { size_t j; for (j = i + 1; j < out.size(); j++) { if (out[j].op != VT_LINETO) { break; } } for (size_t k = i; k < j; k++) { out2.push_back(out[k]); } // re-close the ring out2.push_back(draw(VT_LINETO, out[i].x, out[i].y)); i = j - 1; } } return out2; }