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| namespace odb { | |
| namespace { | |
| TEST(geom, test_oct) | |
| { | |
| Oct oct; | |
| oct.init(Point(0, 0), Point(400, 400), 40); | |
| EXPECT_EQ(oct.getCenterHigh(), Point(400, 400)); | |
| EXPECT_EQ(oct.getCenterLow(), Point(0, 0)); | |
| EXPECT_EQ(oct.getWidth(), 40); | |
| EXPECT_EQ(oct.xMin(), -20); | |
| EXPECT_EQ(oct.xMax(), 420); | |
| EXPECT_EQ(oct.yMin(), -20); | |
| EXPECT_EQ(oct.yMax(), 420); | |
| EXPECT_EQ(oct.dx(), 440); | |
| EXPECT_EQ(oct.dy(), 440); | |
| EXPECT_EQ(oct.getDir(), Oct::OCT_DIR::RIGHT); | |
| oct.init(Point(0, 0), Point(-400, 400), 40); | |
| EXPECT_EQ(oct.getDir(), Oct::OCT_DIR::LEFT); | |
| oct.init(Point(0, 0), Point(-400, -400), 40); | |
| EXPECT_EQ(oct.getDir(), Oct::OCT_DIR::RIGHT); | |
| oct.init(Point(0, 0), Point(400, -400), 40); | |
| EXPECT_EQ(oct.getDir(), Oct::OCT_DIR::LEFT); | |
| } | |
| TEST(geom, test_sbox_shapes) | |
| { | |
| Oct oct(Point(0, 0), Point(400, 400), 40); | |
| EXPECT_EQ(oct.xMin(), -20); | |
| EXPECT_EQ(oct.xMax(), 420); | |
| EXPECT_EQ(oct.yMin(), -20); | |
| EXPECT_EQ(oct.yMax(), 420); | |
| EXPECT_EQ(oct.dx(), 440); | |
| EXPECT_EQ(oct.dy(), 440); | |
| // OCT POINTS | |
| std::vector<Point> points = oct.getPoints(); | |
| EXPECT_EQ(points.size(), 9); | |
| EXPECT_EQ(points[0], Point(-9, -20)); | |
| EXPECT_EQ(points[1], Point(9, -20)); | |
| EXPECT_EQ(points[2], Point(420, 391)); | |
| EXPECT_EQ(points[3], Point(420, 409)); | |
| EXPECT_EQ(points[4], Point(409, 420)); | |
| EXPECT_EQ(points[5], Point(391, 420)); | |
| EXPECT_EQ(points[6], Point(-20, 9)); | |
| EXPECT_EQ(points[7], Point(-20, -9)); | |
| EXPECT_EQ(points[8], Point(-9, -20)); | |
| // RECT | |
| Rect rect(Point(0, 0), Point(400, 400)); | |
| EXPECT_EQ(rect.xMin(), 0); | |
| EXPECT_EQ(rect.xMax(), 400); | |
| EXPECT_EQ(rect.yMin(), 0); | |
| EXPECT_EQ(rect.yMax(), 400); | |
| EXPECT_EQ(rect.dx(), 400); | |
| EXPECT_EQ(rect.dy(), 400); | |
| // RECT POINTS | |
| points = rect.getPoints(); | |
| EXPECT_EQ(points.size(), 5); | |
| EXPECT_EQ(points[0], Point(0, 0)); | |
| EXPECT_EQ(points[1], Point(400, 0)); | |
| EXPECT_EQ(points[2], Point(400, 400)); | |
| EXPECT_EQ(points[3], Point(0, 400)); | |
| EXPECT_EQ(points[4], Point(0, 0)); | |
| } | |
| TEST(geom, test_rect_merge) | |
| { | |
| Rect rect(Point(0, 0), Point(100, 50)); | |
| Oct oct(Point(100, 50), Point(200, 200), 80); | |
| rect.merge(oct); | |
| EXPECT_EQ(rect.xMin(), 0); | |
| EXPECT_EQ(rect.xMax(), 240); | |
| EXPECT_EQ(rect.yMin(), 0); | |
| EXPECT_EQ(rect.yMax(), 240); | |
| EXPECT_EQ(rect.dx(), 240); | |
| EXPECT_EQ(rect.dy(), 240); | |
| } | |
| TEST(geom, test_polygon_is_rect) | |
| { | |
| // the points of a rect can start at any corner | |
| const std::vector<Point> corners | |
| = {Point(0, 0), Point(100, 0), Point(100, 50), Point(0, 50)}; | |
| for (std::size_t offset = 0; offset < corners.size(); offset++) { | |
| std::vector<Point> rotated; | |
| rotated.reserve(corners.size()); | |
| for (std::size_t i = 0; i < corners.size(); i++) { | |
| rotated.push_back(corners[(i + offset) % corners.size()]); | |
| } | |
| const Polygon polygon(rotated); | |
| EXPECT_TRUE(polygon.isRect()) << "starting at corner " << offset; | |
| EXPECT_EQ(polygon.getEnclosingRect(), Rect(0, 0, 100, 50)); | |
| } | |
| EXPECT_TRUE(Polygon(Rect(0, 0, 100, 50)).isRect()); | |
| // shapes that fill their bounding box, but are not rects | |
| const Polygon l_shape({Point(0, 0), | |
| Point(100, 0), | |
| Point(100, 50), | |
| Point(50, 50), | |
| Point(50, 100), | |
| Point(0, 100)}); | |
| EXPECT_FALSE(l_shape.isRect()); | |
| // same point count as a rect, but not a rect | |
| const Polygon diamond( | |
| {Point(0, 50), Point(50, 0), Point(100, 50), Point(50, 100)}); | |
| EXPECT_FALSE(diamond.isRect()); | |
| const Polygon trapezoid( | |
| {Point(0, 0), Point(100, 0), Point(75, 50), Point(25, 50)}); | |
| EXPECT_FALSE(trapezoid.isRect()); | |
| EXPECT_FALSE(Polygon().isRect()); | |
| // extra points along an edge still describe a rect | |
| const Polygon split_edges({Point(0, 0), | |
| Point(50, 0), | |
| Point(100, 0), | |
| Point(100, 50), | |
| Point(50, 50), | |
| Point(0, 50)}); | |
| EXPECT_TRUE(split_edges.isRect()); | |
| EXPECT_EQ(split_edges.getEnclosingRect(), Rect(0, 0, 100, 50)); | |
| // a shape with no area is still handled as a rect, an unset die area | |
| // relies on this | |
| EXPECT_TRUE(Polygon(Rect(0, 0, 0, 0)).isRect()); | |
| EXPECT_TRUE(Polygon(Rect(0, 0, 100, 0)).isRect()); | |
| // too few points to close a shape | |
| const std::vector<Point> line_points = {Point(0, 0), Point(100, 0)}; | |
| EXPECT_FALSE(Polygon(line_points).isRect()); | |
| } | |
| TEST(geom, test_isotropy) | |
| { | |
| EXPECT_NE(low, high); | |
| EXPECT_EQ(low.flipped(), high); | |
| EXPECT_EQ(high.flipped(), low); | |
| EXPECT_NE(horizontal, vertical); | |
| EXPECT_NE(proximal, horizontal); | |
| EXPECT_EQ(horizontal.turn_90(), vertical); | |
| EXPECT_EQ(vertical.turn_90(), horizontal); | |
| EXPECT_EQ(horizontal.getDirection(high), east); | |
| EXPECT_EQ(horizontal.getDirection(low), west); | |
| EXPECT_EQ(vertical.getDirection(high), north); | |
| EXPECT_EQ(vertical.getDirection(low), south); | |
| EXPECT_NE(west, east); | |
| EXPECT_NE(west, south); | |
| EXPECT_NE(west, north); | |
| EXPECT_NE(east, south); | |
| EXPECT_NE(east, north); | |
| EXPECT_NE(south, north); | |
| EXPECT_EQ(north.flipped(), south); | |
| EXPECT_EQ(north.left(), west); | |
| EXPECT_EQ(north.right(), east); | |
| EXPECT_TRUE(north.is_positive()); | |
| EXPECT_EQ(south.flipped(), north); | |
| EXPECT_EQ(south.left(), east); | |
| EXPECT_EQ(south.right(), west); | |
| EXPECT_TRUE(south.is_negative()); | |
| EXPECT_EQ(east.flipped(), west); | |
| EXPECT_EQ(east.left(), north); | |
| EXPECT_EQ(east.right(), south); | |
| EXPECT_TRUE(east.is_positive()); | |
| EXPECT_EQ(west.flipped(), east); | |
| EXPECT_EQ(west.left(), south); | |
| EXPECT_EQ(west.right(), north); | |
| EXPECT_TRUE(west.is_negative()); | |
| EXPECT_EQ(up.flipped(), down); | |
| EXPECT_EQ(down.flipped(), up); | |
| EXPECT_TRUE(up.is_positive()); | |
| EXPECT_TRUE(down.is_negative()); | |
| // Make sure they can be used as array indices | |
| std::vector<int> test(2); | |
| test[low] = 1; | |
| test[high] = 2; | |
| EXPECT_EQ(test[low], 1); | |
| EXPECT_EQ(test[high], 2); | |
| } | |
| // The helpers in geom_boost.h come in two flavors: an arbitrary angle set | |
| // that can hold the 45 degree edges of an Oct, and a Manhattan only | |
| // polygon_90 set that cannot. Both are covered below. | |
| // The distinct corners of a polygon, sorted so that two descriptions of the | |
| // same shape compare equal whichever vertex they start from. | |
| std::vector<Point> corners(const Polygon& polygon) | |
| { | |
| std::vector<Point> points = polygon.getPoints(); | |
| std::sort(points.begin(), points.end()); | |
| points.erase(std::unique(points.begin(), points.end()), points.end()); | |
| return points; | |
| } | |
| // The bounding boxes of a set of polygons, sorted so that checks do not | |
| // depend on the order boost hands the polygons back in. | |
| std::vector<Rect> enclosingRects(const std::vector<Polygon>& polygons) | |
| { | |
| std::vector<Rect> rects; | |
| rects.reserve(polygons.size()); | |
| for (const Polygon& polygon : polygons) { | |
| rects.push_back(polygon.getEnclosingRect()); | |
| } | |
| std::sort(rects.begin(), rects.end()); | |
| return rects; | |
| } | |
| TEST(geom, test_boost_to_polygon_set) | |
| { | |
| const Rect rect(0, 0, 100, 50); | |
| const Oct oct(Point(0, 0), Point(400, 400), 40); | |
| const Polygon polygon( | |
| {Point(0, 0), Point(100, 0), Point(100, 50), Point(0, 50)}); | |
| // the same template accepts every odb shape that encloses an area | |
| EXPECT_EQ(geom::extractPolygons(geom::toPolygonSet(rect)).size(), 1); | |
| EXPECT_EQ(geom::extractPolygons(geom::toPolygonSet(oct)).size(), 1); | |
| EXPECT_EQ(geom::extractPolygons(geom::toPolygonSet(polygon)).size(), 1); | |
| // a rect survives the round trip as a rect | |
| const std::vector<Polygon> from_rect | |
| = geom::extractPolygons(geom::toPolygonSet(rect)); | |
| ASSERT_EQ(from_rect.size(), 1); | |
| EXPECT_TRUE(from_rect[0].isRect()); | |
| EXPECT_EQ(from_rect[0].getEnclosingRect(), rect); | |
| // the collection overload unions touching shapes together | |
| const std::vector<Polygon> merged = geom::extractPolygons(geom::toPolygonSet( | |
| std::vector<Rect>{Rect(0, 0, 50, 100), Rect(50, 0, 100, 100)})); | |
| ASSERT_EQ(merged.size(), 1); | |
| EXPECT_TRUE(merged[0].isRect()); | |
| EXPECT_EQ(merged[0].getEnclosingRect(), Rect(0, 0, 100, 100)); | |
| // and leaves disjoint shapes apart | |
| EXPECT_EQ( | |
| geom::extractPolygons(geom::toPolygonSet(std::vector<Rect>{ | |
| Rect(0, 0, 10, 10), Rect(90, 90, 100, 100)})) | |
| .size(), | |
| 2); | |
| // an empty collection gives an empty set, for any shape type | |
| EXPECT_TRUE( | |
| geom::extractPolygons(geom::toPolygonSet(std::vector<Rect>{})).empty()); | |
| EXPECT_TRUE( | |
| geom::extractPolygons(geom::toPolygonSet(std::vector<Oct>{})).empty()); | |
| EXPECT_TRUE(geom::extractPolygons(geom::toPolygonSet(std::vector<Polygon>{})) | |
| .empty()); | |
| } | |
| TEST(geom, test_boost_oct_keeps_45_degree_edges) | |
| { | |
| const Oct oct(Point(0, 0), Point(400, 400), 40); | |
| const std::vector<Polygon> polys | |
| = geom::extractPolygons(geom::toPolygonSet(oct)); | |
| ASSERT_EQ(polys.size(), 1); | |
| EXPECT_FALSE(polys[0].isRect()); | |
| EXPECT_EQ(polys[0].getEnclosingRect(), Rect(-20, -20, 420, 420)); | |
| // all eight corners of the octagon come back, so no 45 degree edge was | |
| // collapsed on the way through boost | |
| const Polygon as_polygon(oct); | |
| EXPECT_EQ(corners(polys[0]).size(), 8); | |
| EXPECT_EQ(corners(polys[0]), corners(as_polygon)); | |
| // converting the Oct directly matches converting it through a Polygon, | |
| // which is what Polygon::merge(std::vector<Oct>) does | |
| EXPECT_EQ(polys, geom::extractPolygons(geom::toPolygonSet(as_polygon))); | |
| // an Oct can take part in a boolean op without losing its shape. The | |
| // upper left edge of this octagon runs (391, 420) -> (-20, 9), so y = x + 29 | |
| // along it. Clipping everything at or above x = 200 therefore caps the | |
| // result at y = 229, not at the octagon's yMax of 420 - which is only true | |
| // if the 45 degree edge survived the trip through boost. | |
| using boost::polygon::operators::operator-; | |
| const std::vector<Polygon> clipped = geom::extractPolygons( | |
| geom::toPolygonSet(oct) - geom::toPolygonSet(Rect(200, -20, 420, 420))); | |
| ASSERT_EQ(clipped.size(), 1); | |
| EXPECT_FALSE(clipped[0].isRect()); | |
| EXPECT_EQ(clipped[0].getEnclosingRect(), Rect(-20, -20, 200, 229)); | |
| } | |
| TEST(geom, test_boost_to_polygon_90) | |
| { | |
| const Rect rect(0, 0, 100, 50); | |
| // a single rect converts to one polygon and back unchanged | |
| EXPECT_EQ(geom::extractRectangles(geom::toPolygonSet90(rect)), | |
| std::vector<Rect>{rect}); | |
| // toPolygon90 and toPolygonSet90 describe the same shape | |
| using boost::polygon::operators::operator+=; | |
| geom::BoostPolygon90Set from_polygon; | |
| from_polygon += geom::toPolygon90(rect); | |
| EXPECT_EQ(geom::extractRectangles(from_polygon), | |
| geom::extractRectangles(geom::toPolygonSet90(rect))); | |
| // the 90 set also hands back odb polygons | |
| const std::vector<Polygon> polys | |
| = geom::extractPolygons(geom::toPolygonSet90(rect)); | |
| ASSERT_EQ(polys.size(), 1); | |
| EXPECT_TRUE(polys[0].isRect()); | |
| EXPECT_EQ(polys[0].getEnclosingRect(), rect); | |
| // the collection overload unions touching shapes together | |
| EXPECT_EQ(geom::extractRectangles(geom::toPolygonSet90( | |
| std::vector<Rect>{Rect(0, 0, 50, 100), Rect(50, 0, 100, 100)})), | |
| std::vector<Rect>{Rect(0, 0, 100, 100)}); | |
| // an empty collection gives an empty set | |
| EXPECT_TRUE(geom::extractRectangles(geom::toPolygonSet90(std::vector<Rect>{})) | |
| .empty()); | |
| // a Manhattan Polygon is accepted and decomposed back to rectangles | |
| const Polygon l_shape({Point(0, 0), | |
| Point(100, 0), | |
| Point(100, 50), | |
| Point(50, 50), | |
| Point(50, 100), | |
| Point(0, 100)}); | |
| std::vector<Rect> l_rects | |
| = geom::extractRectangles(geom::toPolygonSet90(l_shape)); | |
| std::sort(l_rects.begin(), l_rects.end()); | |
| EXPECT_EQ(l_rects, | |
| (std::vector<Rect>{Rect(0, 0, 100, 50), Rect(0, 50, 50, 100)})); | |
| // for a Manhattan shape the two flavors agree | |
| const std::vector<Polygon> arbitrary_angle | |
| = geom::extractPolygons(geom::toPolygonSet(l_shape)); | |
| const std::vector<Polygon> manhattan | |
| = geom::extractPolygons(geom::toPolygonSet90(l_shape)); | |
| ASSERT_EQ(arbitrary_angle.size(), 1); | |
| ASSERT_EQ(manhattan.size(), 1); | |
| EXPECT_EQ(arbitrary_angle[0].getEnclosingRect(), | |
| manhattan[0].getEnclosingRect()); | |
| } | |
| TEST(geom, test_boost_extract_rectangles) | |
| { | |
| // cutting a notch out of a shape splits it, the pattern pdn uses to | |
| // trim straps around obstructions | |
| using boost::polygon::operators::operator-; | |
| std::vector<Rect> cut | |
| = geom::extractRectangles(geom::toPolygonSet90(Rect(0, 0, 300, 100)) | |
| - geom::toPolygonSet90(Rect(100, 0, 200, 100))); | |
| std::sort(cut.begin(), cut.end()); | |
| EXPECT_EQ(cut, | |
| (std::vector<Rect>{Rect(0, 0, 100, 100), Rect(200, 0, 300, 100)})); | |
| // the slicing orientation decides which way a shape is carved up | |
| const geom::BoostPolygon90Set plus = geom::toPolygonSet90( | |
| std::vector<Rect>{Rect(0, 40, 120, 80), Rect(40, 0, 80, 120)}); | |
| std::vector<Rect> horizontal_slices | |
| = geom::extractRectangles(plus, boost::polygon::HORIZONTAL); | |
| std::sort(horizontal_slices.begin(), horizontal_slices.end()); | |
| EXPECT_EQ( | |
| horizontal_slices, | |
| (std::vector<Rect>{ | |
| Rect(0, 40, 120, 80), Rect(40, 0, 80, 40), Rect(40, 80, 80, 120)})); | |
| std::vector<Rect> vertical_slices | |
| = geom::extractRectangles(plus, boost::polygon::VERTICAL); | |
| std::sort(vertical_slices.begin(), vertical_slices.end()); | |
| EXPECT_EQ( | |
| vertical_slices, | |
| (std::vector<Rect>{ | |
| Rect(0, 40, 40, 80), Rect(40, 0, 80, 120), Rect(80, 40, 120, 80)})); | |
| EXPECT_NE(horizontal_slices, vertical_slices); | |
| } | |
| TEST(geom, test_boost_to_rect) | |
| { | |
| EXPECT_EQ(geom::toRect(geom::BoostRectangle(5, 6, 7, 8)), Rect(5, 6, 7, 8)); | |
| EXPECT_EQ(geom::toRect(geom::BoostRectangle(-10, -20, 0, 0)), | |
| Rect(-10, -20, 0, 0)); | |
| // a zero area rect is preserved rather than normalized away | |
| EXPECT_EQ(geom::toRect(geom::BoostRectangle(5, 5, 5, 5)), Rect(5, 5, 5, 5)); | |
| } | |
| TEST(geom, test_boost_enclosing_rect) | |
| { | |
| // works on either flavor of set | |
| EXPECT_EQ(geom::getEnclosingRect(geom::toPolygonSet90( | |
| std::vector<Rect>{Rect(0, 0, 10, 10), Rect(90, 90, 100, 100)})), | |
| Rect(0, 0, 100, 100)); | |
| EXPECT_EQ(geom::getEnclosingRect( | |
| geom::toPolygonSet(Oct(Point(0, 0), Point(400, 400), 40))), | |
| Rect(-20, -20, 420, 420)); | |
| // and on a bare polygon | |
| EXPECT_EQ(geom::getEnclosingRect(geom::toPolygon90(Rect(0, 0, 100, 50))), | |
| Rect(0, 0, 100, 50)); | |
| // an empty set has no extents, and leaves the Rect default constructed | |
| EXPECT_EQ(geom::getEnclosingRect(geom::BoostPolygon90Set()), | |
| Rect(0, 0, 0, 0)); | |
| EXPECT_EQ(geom::getEnclosingRect(geom::BoostPolygonSet()), Rect(0, 0, 0, 0)); | |
| } | |
| // mergePolygons is the one entry point that takes any of the three odb area | |
| // shapes, so each of Rect, Oct and Polygon is exercised through it below. | |
| TEST(geom, test_boost_merge_polygons_rects) | |
| { | |
| // abutting rects come back as a single shape | |
| const std::vector<Polygon> abutting = geom::mergePolygons( | |
| std::vector<Rect>{Rect(0, 0, 50, 100), Rect(50, 0, 100, 100)}); | |
| ASSERT_EQ(abutting.size(), 1); | |
| EXPECT_TRUE(abutting[0].isRect()); | |
| EXPECT_EQ(abutting[0].getEnclosingRect(), Rect(0, 0, 100, 100)); | |
| // as do overlapping ones, with the overlap counted once | |
| const std::vector<Polygon> overlapping = geom::mergePolygons( | |
| std::vector<Rect>{Rect(0, 0, 60, 100), Rect(40, 0, 100, 100)}); | |
| ASSERT_EQ(overlapping.size(), 1); | |
| EXPECT_TRUE(overlapping[0].isRect()); | |
| EXPECT_EQ(overlapping[0].getEnclosingRect(), Rect(0, 0, 100, 100)); | |
| // the seams where the inputs met survive as collinear vertices, so a | |
| // merged rect carries more than four points | |
| EXPECT_EQ(corners(overlapping[0]), | |
| (std::vector<Point>{Point(0, 0), | |
| Point(0, 100), | |
| Point(40, 0), | |
| Point(40, 100), | |
| Point(60, 0), | |
| Point(60, 100), | |
| Point(100, 0), | |
| Point(100, 100)})); | |
| // a union that is not itself a rect keeps its outline rather than | |
| // collapsing to the bounding box | |
| const std::vector<Polygon> l_shape = geom::mergePolygons( | |
| std::vector<Rect>{Rect(0, 0, 100, 50), Rect(0, 50, 50, 100)}); | |
| ASSERT_EQ(l_shape.size(), 1); | |
| EXPECT_FALSE(l_shape[0].isRect()); | |
| EXPECT_EQ(l_shape[0].getEnclosingRect(), Rect(0, 0, 100, 100)); | |
| EXPECT_EQ(corners(l_shape[0]), | |
| (std::vector<Point>{Point(0, 0), | |
| Point(0, 50), | |
| Point(0, 100), | |
| Point(50, 50), | |
| Point(50, 100), | |
| Point(100, 0), | |
| Point(100, 50)})); | |
| // disjoint rects stay apart | |
| EXPECT_EQ(enclosingRects(geom::mergePolygons( | |
| std::vector<Rect>{Rect(90, 90, 100, 100), Rect(0, 0, 10, 10)})), | |
| (std::vector<Rect>{Rect(0, 0, 10, 10), Rect(90, 90, 100, 100)})); | |
| // a lone rect survives the round trip as a rect | |
| const std::vector<Polygon> single | |
| = geom::mergePolygons(std::vector<Rect>{Rect(0, 0, 100, 50)}); | |
| ASSERT_EQ(single.size(), 1); | |
| EXPECT_TRUE(single[0].isRect()); | |
| EXPECT_EQ(single[0].getEnclosingRect(), Rect(0, 0, 100, 50)); | |
| // and a repeated rect does not grow the result | |
| EXPECT_EQ(geom::mergePolygons( | |
| std::vector<Rect>{Rect(0, 0, 100, 50), Rect(0, 0, 100, 50)}), | |
| single); | |
| // an empty collection merges to nothing | |
| EXPECT_TRUE(geom::mergePolygons(std::vector<Rect>{}).empty()); | |
| } | |
| TEST(geom, test_boost_merge_polygons_octs) | |
| { | |
| const Oct oct(Point(0, 0), Point(400, 400), 40); | |
| // a lone oct passes through with all eight corners intact, so merging | |
| // never quietly squares off a 45 degree edge | |
| const std::vector<Polygon> single | |
| = geom::mergePolygons(std::vector<Oct>{oct}); | |
| ASSERT_EQ(single.size(), 1); | |
| EXPECT_FALSE(single[0].isRect()); | |
| EXPECT_EQ(single[0].getEnclosingRect(), Rect(-20, -20, 420, 420)); | |
| EXPECT_EQ(corners(single[0]).size(), 8); | |
| EXPECT_EQ(corners(single[0]), corners(Polygon(oct))); | |
| // octs overlapping along their diagonal union into one shape that still | |
| // reaches past the corners of either | |
| const std::vector<Polygon> merged = geom::mergePolygons( | |
| std::vector<Oct>{oct, Oct(Point(200, 200), Point(600, 600), 40)}); | |
| ASSERT_EQ(merged.size(), 1); | |
| EXPECT_FALSE(merged[0].isRect()); | |
| EXPECT_EQ(merged[0].getEnclosingRect(), Rect(-20, -20, 620, 620)); | |
| // disjoint octs stay apart, each keeping its own eight corners | |
| const std::vector<Polygon> apart = geom::mergePolygons( | |
| std::vector<Oct>{oct, Oct(Point(1000, 1000), Point(1400, 1400), 40)}); | |
| ASSERT_EQ(apart.size(), 2); | |
| EXPECT_EQ(enclosingRects(apart), | |
| (std::vector<Rect>{Rect(-20, -20, 420, 420), | |
| Rect(980, 980, 1420, 1420)})); | |
| for (const Polygon& polygon : apart) { | |
| EXPECT_FALSE(polygon.isRect()); | |
| EXPECT_EQ(corners(polygon).size(), 8); | |
| } | |
| EXPECT_TRUE(geom::mergePolygons(std::vector<Oct>{}).empty()); | |
| } | |
| TEST(geom, test_boost_merge_polygons_polygons) | |
| { | |
| const Polygon l_shape({Point(0, 0), | |
| Point(100, 0), | |
| Point(100, 50), | |
| Point(50, 50), | |
| Point(50, 100), | |
| Point(0, 100)}); | |
| // an L and the rect that fills its notch merge back into a full square | |
| const std::vector<Polygon> filled = geom::mergePolygons( | |
| std::vector<Polygon>{l_shape, Polygon(Rect(50, 50, 100, 100))}); | |
| ASSERT_EQ(filled.size(), 1); | |
| EXPECT_TRUE(filled[0].isRect()); | |
| EXPECT_EQ(filled[0].getEnclosingRect(), Rect(0, 0, 100, 100)); | |
| // 45 degree edges survive a merge of arbitrary angle polygons | |
| const Polygon diamond( | |
| {Point(0, 50), Point(50, 0), Point(100, 50), Point(50, 100)}); | |
| const std::vector<Polygon> diamonds | |
| = geom::mergePolygons(std::vector<Polygon>{diamond, | |
| Polygon({Point(50, 50), | |
| Point(100, 0), | |
| Point(150, 50), | |
| Point(100, 100)})}); | |
| ASSERT_EQ(diamonds.size(), 1); | |
| EXPECT_FALSE(diamonds[0].isRect()); | |
| EXPECT_EQ(diamonds[0].getEnclosingRect(), Rect(0, 0, 150, 100)); | |
| // a repeated polygon comes back as the one shape it describes | |
| const std::vector<Polygon> duplicate | |
| = geom::mergePolygons(std::vector<Polygon>{diamond, diamond}); | |
| ASSERT_EQ(duplicate.size(), 1); | |
| EXPECT_EQ(corners(duplicate[0]), corners(diamond)); | |
| // disjoint polygons stay apart | |
| EXPECT_EQ(enclosingRects(geom::mergePolygons(std::vector<Polygon>{ | |
| Polygon(Rect(90, 90, 100, 100)), l_shape})), | |
| (std::vector<Rect>{Rect(0, 0, 100, 100), Rect(90, 90, 100, 100)})); | |
| // the same shapes merge the same way whether they arrive as Rects or as | |
| // Polygons | |
| const std::vector<Rect> rects{Rect(0, 0, 100, 50), Rect(0, 50, 50, 100)}; | |
| EXPECT_EQ(geom::mergePolygons(rects), | |
| geom::mergePolygons( | |
| std::vector<Polygon>{Polygon(rects[0]), Polygon(rects[1])})); | |
| EXPECT_TRUE(geom::mergePolygons(std::vector<Polygon>{}).empty()); | |
| } | |
| } // namespace | |
| } // namespace odb | |