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185 lines
8.2 KiB
C++
185 lines
8.2 KiB
C++
#include <catch2/catch_all.hpp>
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#include <string>
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#include <vector>
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#include "libslic3r/BoundingBox.hpp"
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#include "libslic3r/ClipperUtils.hpp"
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#include "libslic3r/GCode/GCodeProcessor.hpp"
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#include "libslic3r/GCode/WipeTower.hpp"
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#include "libslic3r/PrintConfig.hpp"
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#include "test_helpers.hpp"
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using namespace Slic3r;
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using namespace Slic3r::Test;
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// Taken from the config enum map rather than hand-listed, so a flavor added to GCodeFlavor later
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// is covered here without editing this file.
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static std::vector<GCodeFlavor> non_klipper_flavors()
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{
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std::vector<GCodeFlavor> flavors;
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for (const auto &[name, value] : ConfigOptionEnum<GCodeFlavor>::get_enum_values())
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if (GCodeFlavor(value) != gcfKlipper)
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flavors.push_back(GCodeFlavor(value));
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return flavors;
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}
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static std::string flavor_name(GCodeFlavor flavor)
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{
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return ConfigOptionEnum<GCodeFlavor>::get_enum_names()[int(flavor)];
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}
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TEST_CASE("Klipper flushes the wipe tower planner queue with M400", "[WipeTower]")
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{
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CHECK(std::string(flush_planner_queue_command(gcfKlipper)) == "M400\n");
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}
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TEST_CASE("Other flavors flush the wipe tower planner queue with a zero dwell", "[WipeTower]")
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{
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const GCodeFlavor flavor = GENERATE(from_range(non_klipper_flavors()));
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INFO("gcode flavor: " << flavor_name(flavor));
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CHECK(std::string(flush_planner_queue_command(flavor)) == "G4 S0\n");
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}
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// 1.5s is exactly representable as a float, so neither form can drift when rounded.
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TEST_CASE("Klipper waits in the wipe tower with a millisecond dwell", "[WipeTower]")
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{
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CHECK(wait_command(gcfKlipper, 1.5f) == "G4 P1500\n");
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}
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TEST_CASE("Other flavors wait in the wipe tower with a seconds dwell", "[WipeTower]")
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{
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const GCodeFlavor flavor = GENERATE(from_range(non_klipper_flavors()));
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INFO("gcode flavor: " << flavor_name(flavor));
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CHECK(wait_command(flavor, 1.5f) == "G4 S1.500\n");
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}
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// The prime tower is validated against the real printable outline, so the placement clamps have to
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// agree with it wherever that outline is not a rectangle. A regular hexagon inscribed in a 200mm
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// circle stands in for the shipped delta beds.
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TEST_CASE("The wipe tower placement clamp follows a non-rectangular bed outline", "[WipeTower]")
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{
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const coord_t margin = scaled<coord_t>(1.);
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auto square_at = [](double x, double y, double side) {
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return BoundingBox(Point::new_scale(x, y), Point::new_scale(x + side, y + side));
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};
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// Does the footprint, padded by pad, sit inside the outline once the returned move is applied?
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auto lands_inside = [](BoundingBox box, const Polygons &bed, const Vec2f &move, coord_t pad) {
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box.translate(Point::new_scale(move.x(), move.y()));
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return diff(Polygons{box.inflated(pad).polygon()}, bed).empty();
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};
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const Polygons hex_bed{make_circle_num_segments(scaled<double>(100.), 6)};
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const Polygons square_bed{Polygon::new_scale(Pointfs{{0., 0.}, {200., 0.}, {200., 200.}, {0., 200.}})};
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SECTION("a rectangular bed is left to the bounding box clamp") {
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const Vec2f move = WipeTower::move_box_inside_polygon(square_at(50., 50., 30.), square_bed, margin);
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CHECK_THAT(move.x(), Catch::Matchers::WithinAbs(0., 1e-6));
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CHECK_THAT(move.y(), Catch::Matchers::WithinAbs(0., 1e-6));
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}
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// Dragging the tower off one edge may not pull it away from the other, or it would jump out from
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// under the cursor instead of sliding along the edge.
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SECTION("only the violated axis is clamped") {
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const Vec2f move = WipeTower::move_box_inside_polygon(square_at(185., 50., 30.), square_bed, margin);
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CHECK_THAT(move.x(), Catch::Matchers::WithinAbs(-16., 1e-6));
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CHECK_THAT(move.y(), Catch::Matchers::WithinAbs(0., 1e-6));
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}
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SECTION("a footprint already inside the outline is left alone") {
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const Vec2f move = WipeTower::move_box_inside_polygon(square_at(-15., -15., 30.), hex_bed, margin);
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CHECK_THAT(move.x(), Catch::Matchers::WithinAbs(0., 1e-6));
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CHECK_THAT(move.y(), Catch::Matchers::WithinAbs(0., 1e-6));
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}
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SECTION("a footprint in the bounding box corner is pulled onto the bed") {
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const BoundingBox box = square_at(55., 50., 30.);
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REQUIRE_FALSE(lands_inside(box, hex_bed, Vec2f::Zero(), margin)); // in the bbox, off the hexagon
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CHECK(lands_inside(box, hex_bed, WipeTower::move_box_inside_polygon(box, hex_bed, margin), margin));
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}
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// An unresolved auto brim width reaches the drag clamp as a negative margin. Padding by it would
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// shrink the footprint and hand back a position the slice validation still rejects.
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SECTION("a negative margin still lands the footprint inside the outline") {
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const BoundingBox box = square_at(55., 50., 30.);
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const coord_t brim = scaled<coord_t>(-0.5);
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CHECK(lands_inside(box, hex_bed, WipeTower::move_box_inside_polygon(box, hex_bed, brim), 0));
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}
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SECTION("a footprint too large for the bed is left alone") {
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const Vec2f move = WipeTower::move_box_inside_polygon(square_at(-200., -200., 400.), hex_bed, margin);
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CHECK_THAT(move.x(), Catch::Matchers::WithinAbs(0., 1e-6));
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CHECK_THAT(move.y(), Catch::Matchers::WithinAbs(0., 1e-6));
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}
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}
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// The cases above only exercise the helpers in isolation. The one below slices a real
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// two-filament print, so it also covers the binding constraint of both changes: that the
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// configured `gcode_flavor` reaches the wipe tower writer and lands in the exported G-code.
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// The G-code inside each WIPE_TOWER_START/WIPE_TOWER_END pair, concatenated, so an M400 emitted
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// outside the tower (e.g. GCodeProcessor's pre-heat injector) cannot create a false match.
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static std::string wipe_tower_regions(const std::string &gcode)
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{
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const std::string &start_tag = GCodeProcessor::reserved_tag(GCodeProcessor::ETags::Wipe_Tower_Start);
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const std::string &end_tag = GCodeProcessor::reserved_tag(GCodeProcessor::ETags::Wipe_Tower_End);
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std::string regions;
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size_t pos = 0;
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while (true) {
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size_t start = gcode.find(start_tag, pos);
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if (start == std::string::npos)
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break;
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size_t end = gcode.find(end_tag, start);
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if (end == std::string::npos)
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break;
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regions.append(gcode, start, end - start);
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pos = end + 1;
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}
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return regions;
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}
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// A per-layer toolchange between the wall and infill filaments, same shape as
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// test_multifilament.cpp's "Each feature prints with its assigned filament", so the wipe tower
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// runs its toolchange path (and so `flush_planner_queue()`) on every layer.
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static DynamicPrintConfig wipe_tower_toolchange_config(const std::string &gcode_flavor)
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{
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return multifilament_config(2, {
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{ "sparse_infill_filament_id", 1 },
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{ "internal_solid_filament_id", 1 },
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{ "top_surface_filament_id", 1 },
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{ "bottom_surface_filament_id", 1 },
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{ "outer_wall_filament_id", 2 },
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{ "inner_wall_filament_id", 2 },
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{ "enable_prime_tower", true },
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{ "layer_height", 0.3 },
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{ "gcode_flavor", gcode_flavor },
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});
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}
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// Slices a 10mm cube under `config`. Not plain Test::slice: a brand-new Print's first `apply()`
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// counts one filament in use, and DynamicPrintConfig::normalize_fdm_2's single-filament rule then
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// clears `enable_prime_tower`. A second apply, once init_print's regions have settled, sees both
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// filaments and the tower survives.
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static std::string slice_with_prime_tower(const DynamicPrintConfig &config)
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{
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Print print;
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Model model;
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init_print({ cube(10) }, print, model, config);
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print.apply(model, config);
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return gcode(print);
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}
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TEST_CASE("The wipe tower's toolchange planner flush follows the gcode flavor", "[WipeTower]")
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{
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auto [flavor, expected, unexpected] = GENERATE(table<std::string, std::string, std::string>({
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{ "klipper", "M400", "G4 S0" },
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{ "marlin", "G4 S0", "M400" } }));
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DYNAMIC_SECTION(flavor) {
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const std::string tower = wipe_tower_regions(slice_with_prime_tower(wipe_tower_toolchange_config(flavor)));
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REQUIRE_FALSE(tower.empty());
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CHECK_THAT(tower, Catch::Matchers::ContainsSubstring(expected));
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CHECK_THAT(tower, !Catch::Matchers::ContainsSubstring(unexpected));
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}
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}
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