Files
OrcaSlicer/tests/libslic3r/test_assemble_list.cpp
T
Hanif Koh 129e3526b8 Move the Assemble List Parser into libslic3r
Behaviour-preserving move of the --load-assemble-list JSON parser and
its plate/object structs from the CLI into libslic3r/Format/AssembleList,
so the format can be unit tested. The parser returns its own
AssembleListResult and takes the plate limit as a parameter; CLI::run
maps the result to the same exit codes as before. Every validation rule
and log message is unchanged.

Adds Catch2 coverage of the valid layout and each validation rule.
2026-10-04 00:38:39 +08:00

267 lines
10 KiB
C++

#include <catch2/catch_all.hpp>
#include "libslic3r/Format/AssembleList.hpp"
#include "test_utils.hpp"
#include <boost/nowide/fstream.hpp>
#include <nlohmann/json.hpp>
#include <string>
#include <vector>
using namespace Slic3r;
using Catch::Matchers::WithinAbs;
using nlohmann::json;
static constexpr int max_plates = 36;
static AssembleListResult load_text(const std::string &text, std::vector<assemble_plate_info_t> &plates)
{
ScopedTemporaryFile file(".json");
{
boost::nowide::ofstream out(file.string());
out << text;
}
return load_assemble_plate_list(file.string(), plates, max_plates);
}
static AssembleListResult load_json(const json &root)
{
std::vector<assemble_plate_info_t> plates;
return load_text(root.dump(), plates);
}
// One plate with one object of three clones, which every optional field accepts.
static json valid_list()
{
return json::parse(R"({
"plates": [{
"plate_name": "plate",
"need_arrange": false,
"objects": [{
"path": "cube.stl",
"count": 3,
"filaments": [1],
"height_ranges": [{ "min_z": 0, "max_z": 5, "range_params": { "layer_height": "0.1" } }]
}],
"assembled_params": [{
"assemble_index": 1,
"height_ranges": [{ "min_z": 0, "max_z": 5, "range_params": { "layer_height": "0.1" } }]
}]
}]
})");
}
TEST_CASE("A valid assemble list parses into its plates and objects", "[AssembleList]")
{
const std::string text = R"({
"plates": [
{
"plate_name": "first",
"need_arrange": true,
"plate_params": { "curr_bed_type": "Textured PEI Plate" },
"objects": [
{
"path": "a.stl",
"count": 2,
"filaments": [1, 3],
"assemble_index": [1],
"pos_x": [10.5, 20.5],
"pos_y": [30],
"pos_z": [0, 1],
"print_params": { "sparse_infill_density": "30%" },
"height_ranges": [{ "min_z": 1.5, "max_z": 4, "range_params": { "layer_height": "0.12" } }]
},
{ "path": "b.stl", "count": 1, "filaments": [0] }
],
"assembled_params": [{ "assemble_index": 1, "print_params": { "wall_loops": "4" } }]
},
{
"plate_name": "second",
"need_arrange": false,
"objects": [{ "path": "c.stl", "count": 1, "filaments": [2] }]
}
]
})";
std::vector<assemble_plate_info_t> plates;
REQUIRE(load_text(text, plates) == AssembleListResult::Success);
REQUIRE(plates.size() == 2);
const assemble_plate_info_t &first = plates[0];
CHECK(first.plate_name == "first");
CHECK(first.need_arrange);
CHECK(first.plate_params.at("curr_bed_type") == "Textured PEI Plate");
REQUIRE(first.assemble_obj_list.size() == 2);
const assemble_object_info_t &a = first.assemble_obj_list[0];
CHECK(a.path == "a.stl");
CHECK(a.count == 2);
CHECK(a.filaments == std::vector<int>{1, 3});
CHECK(a.assemble_index == std::vector<int>{1});
REQUIRE(a.pos_x.size() == 2);
CHECK_THAT(a.pos_x[0], WithinAbs(10.5, 1e-6));
CHECK_THAT(a.pos_x[1], WithinAbs(20.5, 1e-6));
REQUIRE(a.pos_y.size() == 1);
CHECK_THAT(a.pos_y[0], WithinAbs(30., 1e-6));
REQUIRE(a.pos_z.size() == 2);
CHECK_THAT(a.pos_z[1], WithinAbs(1., 1e-6));
CHECK(a.print_params.at("sparse_infill_density") == "30%");
REQUIRE(a.height_ranges.size() == 1);
CHECK_THAT(a.height_ranges[0].min_z, WithinAbs(1.5, 1e-6));
CHECK_THAT(a.height_ranges[0].max_z, WithinAbs(4., 1e-6));
CHECK(a.height_ranges[0].range_params.at("layer_height") == "0.12");
const assemble_object_info_t &b = first.assemble_obj_list[1];
CHECK(b.path == "b.stl");
CHECK(b.count == 1);
CHECK(b.filaments == std::vector<int>{0});
CHECK(b.pos_x.empty());
CHECK(b.assemble_index.empty());
REQUIRE(first.assembled_param_list.count(1) == 1);
CHECK(first.assembled_param_list.at(1).print_params.at("wall_loops") == "4");
const assemble_plate_info_t &second = plates[1];
CHECK(second.plate_name == "second");
CHECK_FALSE(second.need_arrange);
REQUIRE(second.assemble_obj_list.size() == 1);
CHECK(second.assemble_obj_list[0].path == "c.stl");
CHECK(second.assemble_obj_list[0].filaments == std::vector<int>{2});
}
TEST_CASE("The unmodified fixture used by the rule tests is accepted", "[AssembleList]")
{
CHECK(load_json(valid_list()) == AssembleListResult::Success);
}
TEST_CASE("An object with an empty filament list is rejected", "[AssembleList]")
{
json root = valid_list();
root["plates"][0]["objects"][0]["filaments"] = json::array();
CHECK(load_json(root) == AssembleListResult::ConfigError);
}
TEST_CASE("An object with a negative filament id is rejected", "[AssembleList]")
{
json root = valid_list();
root["plates"][0]["objects"][0]["filaments"] = GENERATE(json::array({-1}), json::array({1, -2, 1}));
CAPTURE(root["plates"][0]["objects"][0]["filaments"].dump());
CHECK(load_json(root) == AssembleListResult::ConfigError);
}
TEST_CASE("Filament id 0 is accepted", "[AssembleList]")
{
json root = valid_list();
root["plates"][0]["objects"][0]["filaments"] = GENERATE(json::array({0}), json::array({0, 1, 0}));
CAPTURE(root["plates"][0]["objects"][0]["filaments"].dump());
CHECK(load_json(root) == AssembleListResult::Success);
}
TEST_CASE("Per-clone lists need one entry or one per clone", "[AssembleList]")
{
// The fixture object has 3 clones.
const std::string key = GENERATE("filaments", "assemble_index", "pos_x", "pos_y", "pos_z");
const size_t size = GENERATE(1, 2, 3, 4);
CAPTURE(key, size);
json root = valid_list();
root["plates"][0]["objects"][0][key] = json(std::vector<int>(size, 1));
const AssembleListResult expected = (size == 1 || size == 3) ? AssembleListResult::Success : AssembleListResult::ConfigError;
CHECK(load_json(root) == expected);
}
TEST_CASE("An empty optional per-clone list is accepted", "[AssembleList]")
{
const std::string key = GENERATE("assemble_index", "pos_x", "pos_y", "pos_z");
CAPTURE(key);
json root = valid_list();
root["plates"][0]["objects"][0][key] = json::array();
CHECK(load_json(root) == AssembleListResult::Success);
}
// Fields read through a const reference (plate_name, need_arrange, objects, path, count) are
// looked up without a presence check, so only their wrong-type case is covered here.
TEST_CASE("A missing required field is rejected", "[AssembleList]")
{
const std::string pointer = GENERATE("/plates",
"/plates/0/objects/0/filaments",
"/plates/0/objects/0/height_ranges/0/min_z",
"/plates/0/objects/0/height_ranges/0/max_z",
"/plates/0/objects/0/height_ranges/0/range_params",
"/plates/0/assembled_params/0/assemble_index",
"/plates/0/assembled_params/0/height_ranges/0/min_z",
"/plates/0/assembled_params/0/height_ranges/0/max_z",
"/plates/0/assembled_params/0/height_ranges/0/range_params");
CAPTURE(pointer);
json root = valid_list();
const json::json_pointer ptr(pointer);
root[ptr.parent_pointer()].erase(ptr.back());
CHECK(load_json(root) == AssembleListResult::ConfigError);
}
TEST_CASE("A field of the wrong type is rejected", "[AssembleList]")
{
const std::string pointer = GENERATE("/plates/0/plate_name",
"/plates/0/need_arrange",
"/plates/0/objects/0/path",
"/plates/0/objects/0/count",
"/plates/0/objects/0/filaments",
"/plates/0/objects/0/pos_x");
CAPTURE(pointer);
json root = valid_list();
root[json::json_pointer(pointer)] = json::object();
CHECK(load_json(root) == AssembleListResult::ConfigError);
}
TEST_CASE("A plate or clone count out of range is rejected", "[AssembleList]")
{
SECTION("no plates")
{
json root = valid_list();
root["plates"] = json::array();
CHECK(load_json(root) == AssembleListResult::ConfigError);
}
SECTION("more plates than the limit")
{
json root = valid_list();
const json plate = root["plates"][0];
for (int i = 1; i < max_plates; ++i)
root["plates"].push_back(plate);
CHECK(load_json(root) == AssembleListResult::Success);
root["plates"].push_back(plate);
CHECK(load_json(root) == AssembleListResult::ConfigError);
}
SECTION("a plate with no objects")
{
json root = valid_list();
root["plates"][0]["objects"] = json::array();
CHECK(load_json(root) == AssembleListResult::ConfigError);
}
SECTION("a clone count below 1")
{
json root = valid_list();
root["plates"][0]["objects"][0]["count"] = GENERATE(0, -1);
CAPTURE(root["plates"][0]["objects"][0]["count"].dump());
CHECK(load_json(root) == AssembleListResult::ConfigError);
}
}
TEST_CASE("Malformed JSON is rejected", "[AssembleList]")
{
const std::string text = GENERATE(std::string(), std::string("{\"plates\": ["), std::string("not json"));
CAPTURE(text);
std::vector<assemble_plate_info_t> plates;
CHECK(load_text(text, plates) == AssembleListResult::ConfigError);
}
TEST_CASE("A missing file is reported as not found", "[AssembleList]")
{
ScopedTemporaryFile file(".json");
std::vector<assemble_plate_info_t> plates;
CHECK(load_assemble_plate_list(file.string(), plates, max_plates) == AssembleListResult::FileNotFound);
}