feat(result-contract-completion): step 1 — complete-result-contract

This commit is contained in:
KOKO\Mimi
2026-08-02 01:28:37 +09:00
parent 218cfa9d50
commit e0a6a6fa70
8 changed files with 454 additions and 5 deletions
+39
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@@ -2,23 +2,62 @@
#include <array>
#include <string>
#include <string_view>
#include <vector>
#include <fesa/core/diagnostic.hpp>
#include <fesa/core/status.hpp>
#include <fesa/elements/beam/beam3d2.hpp>
#include <fesa/model/entity_origin.hpp>
#include <fesa/model/ids.hpp>
namespace fesa {
enum class FieldCoordinateSystem { global, element_local };
struct NodalFrame final {
inline static constexpr FieldCoordinateSystem coordinate_system =
FieldCoordinateSystem::global;
inline static constexpr std::array<std::string_view, 6>
displacement_components{
"Ux", "Uy", "Uz", "Rx", "Ry", "Rz"};
inline static constexpr std::array<std::string_view, 6>
reaction_components{
"RFx", "RFy", "RFz", "RMx", "RMy", "RMz"};
std::vector<NodeId> node_ids;
std::vector<EntityOrigin> origins;
std::vector<std::array<double, 6>> displacement;
std::vector<std::array<double, 6>> reaction;
};
struct BeamElementFrame final {
inline static constexpr FieldCoordinateSystem coordinate_system =
FieldCoordinateSystem::element_local;
inline static constexpr std::array<std::string_view, 6>
section_strain_components{
"epsilon", "gamma_y", "gamma_z", "kappa_x", "kappa_y",
"kappa_z"};
inline static constexpr std::array<std::string_view, 6>
section_force_components{
"N", "Vy", "Vz", "T", "My", "Mz"};
inline static constexpr std::string_view axial_stress_component =
"sigma_xx";
ElementId element;
EntityOrigin origin;
BeamFrame local_frame;
std::array<BeamSectionResult, 2> end_results;
};
struct ElementFrame final {
std::vector<BeamElementFrame> beams;
};
struct ResultFrame final {
double step_time;
NodalFrame nodal;
ElementFrame element;
std::vector<Diagnostic> diagnostics;
};
@@ -4,6 +4,7 @@
#include <array>
#include <cstddef>
#include <exception>
#include <stdexcept>
#include <optional>
#include <string>
#include <utility>
@@ -12,6 +13,7 @@
#include <fesa/assembly/equation_system.hpp>
#include <fesa/assembly/serial_assembler.hpp>
#include <fesa/constraints/essential_bc.hpp>
#include <fesa/elements/beam/beam3d2.hpp>
#include <fesa/fem/dof_manager.hpp>
#include <fesa/solvers/linear/pardiso_linear_solver.hpp>
@@ -34,6 +36,18 @@ AnalysisRunResult equation_failure(
}});
}
AnalysisRunResult results_failure(
std::string code,
std::string message) {
return failure({{
DiagnosticStage::results,
Severity::error,
std::move(code),
std::move(message),
std::nullopt,
}});
}
NodalFrame build_nodal_frame(
const Domain& domain,
const DofManager& dofs,
@@ -48,9 +62,11 @@ NodalFrame build_nodal_frame(
NodalFrame nodal;
nodal.node_ids = std::move(node_ids);
nodal.origins.reserve(nodal.node_ids.size());
nodal.displacement.reserve(nodal.node_ids.size());
nodal.reaction.reserve(nodal.node_ids.size());
for (const NodeId node_id : nodal.node_ids) {
nodal.origins.push_back(domain.node(node_id).origin);
std::array<double, 6> node_displacement{};
std::array<double, 6> node_reaction{};
for (std::size_t component = 0; component < 6; ++component) {
@@ -67,6 +83,70 @@ NodalFrame build_nodal_frame(
return nodal;
}
ElementFrame build_element_frame(
const Domain& domain,
const DofManager& dofs,
const std::vector<double>& displacement) {
std::vector<const BeamElement*> elements;
elements.reserve(domain.beam_elements().size());
for (const BeamElement& element : domain.beam_elements()) {
elements.push_back(&element);
}
std::ranges::sort(
elements,
{},
[](const BeamElement* element) {
return element->id.value();
});
ElementFrame frame;
frame.beams.reserve(elements.size());
for (const BeamElement* element : elements) {
const Beam3D2Input input{
{
domain.node(element->nodes[0]).position,
domain.node(element->nodes[1]).position,
},
element->nodes,
domain.material(element->material),
domain.section(element->section),
};
const BeamKernelResult kernel = compute_beam3d2(input);
if (!kernel.contribution.has_value()) {
const std::string message = kernel.diagnostics.empty()
? "Beam recovery requires a valid element input."
: kernel.diagnostics.front().message;
throw std::runtime_error{message};
}
std::array<double, 12> element_displacement{};
const std::array<std::size_t, 12> full_dofs =
dofs.element_full_dofs(*element);
for (std::size_t local = 0; local < full_dofs.size(); ++local) {
element_displacement[local] = displacement[full_dofs[local]];
}
std::vector<BeamSectionResult> recovered = recover_beam3d2(
input,
element_displacement,
input.section.recovery_points);
if (recovered.size() != 2U) {
throw std::logic_error{
"Beam recovery must return exactly two end results."};
}
frame.beams.push_back({
element->id,
element->origin,
kernel.contribution->frame,
{
std::move(recovered[0]),
std::move(recovered[1]),
},
});
}
return frame;
}
} // namespace
AnalysisRunResult LinearStaticAnalysis::run(const Domain& domain) const {
@@ -114,6 +194,14 @@ AnalysisRunResult LinearStaticAnalysis::run(const Domain& domain) const {
"equation.reaction_recovery_failed", error.what());
}
ElementFrame element;
try {
element = build_element_frame(domain, dofs, displacement);
} catch (const std::exception& error) {
return results_failure(
"results.element_recovery_failed", error.what());
}
ResultDatabase database{
"1.0.0",
{{
@@ -122,6 +210,7 @@ AnalysisRunResult LinearStaticAnalysis::run(const Domain& domain) const {
1.0,
build_nodal_frame(
domain, dofs, displacement, reaction),
std::move(element),
{},
}},
}},
+14 -2
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@@ -1364,7 +1364,13 @@ Hdf5ModelSnapshot read_model(
ResultDatabase read_database(
Hdf5Context& context,
const hid_t file,
const std::string& version) {
const std::string& version,
const Hdf5ModelSnapshot& model) {
std::unordered_map<std::int64_t, EntityOrigin> node_origins;
for (const Hdf5NodeSnapshot& node : model.nodes) {
node_origins.emplace(node.id.value(), node.origin);
}
ResultDatabase database{version, {}};
auto results_group = open_group(context, file, "results");
auto steps_group = open_group(context, results_group.get(), "steps");
@@ -1419,10 +1425,16 @@ ResultDatabase read_database(
"Nodal result datasets have inconsistent row counts.");
}
frame.nodal.node_ids.reserve(node_ids.size());
frame.nodal.origins.reserve(node_ids.size());
frame.nodal.displacement.reserve(node_ids.size());
frame.nodal.reaction.reserve(node_ids.size());
for (std::size_t index = 0; index < node_ids.size(); ++index) {
frame.nodal.node_ids.emplace_back(node_ids[index]);
const auto origin = node_origins.find(node_ids[index]);
frame.nodal.origins.push_back(
origin == node_origins.end()
? EntityOrigin{}
: origin->second);
std::array<double, 6> displacement_values{};
std::array<double, 6> reaction_values{};
std::copy_n(
@@ -1538,7 +1550,7 @@ Hdf5ReadResult read_hdf5_results(const std::filesystem::path& path) {
}
Hdf5ModelSnapshot model = read_model(context, file.get());
ResultDatabase database =
read_database(context, file.get(), version);
read_database(context, file.get(), version, model);
const Status validation = validate_result_database(database);
if (!validation.succeeded) {
file.reset();
+86
View File
@@ -43,6 +43,12 @@ void validate_nodal_frame(
"Nodal IDs, displacement, and reaction fields must have "
"matching sizes.");
}
if (nodal.origins.size() != nodal.node_ids.size()) {
add_error(
diagnostics,
"results.nodal_origin_size_mismatch",
"Nodal IDs and origins must have matching sizes.");
}
std::set<std::int64_t> node_ids;
for (const NodeId node_id : nodal.node_ids) {
@@ -74,6 +80,84 @@ void validate_nodal_frame(
}
}
void validate_beam_section_result(
const BeamSectionResult& result,
std::vector<Diagnostic>& diagnostics) {
if (
!std::isfinite(result.xi) ||
!is_finite(result.section_strain) ||
!is_finite(result.section_force) ||
!std::isfinite(result.centroid_sigma_xx) ||
!std::ranges::all_of(
result.sigma_xx,
[](const double value) { return std::isfinite(value); })) {
add_error(
diagnostics,
"results.nonfinite_value",
"Beam section result contains a nonfinite value.");
}
}
void validate_element_frame(
const ElementFrame& element,
const NodalFrame& nodal,
std::vector<Diagnostic>& diagnostics) {
std::set<std::int64_t> nodal_ids;
for (const NodeId node_id : nodal.node_ids) {
nodal_ids.insert(node_id.value());
}
std::set<std::int64_t> element_ids;
for (const BeamElementFrame& beam : element.beams) {
if (!element_ids.insert(beam.element.value()).second) {
add_error(
diagnostics,
"results.duplicate_element_id",
"Element frame contains duplicate element ID " +
std::to_string(beam.element.value()) + ".");
}
if (
!is_finite(beam.local_frame.ex) ||
!is_finite(beam.local_frame.ey) ||
!is_finite(beam.local_frame.ez)) {
add_error(
diagnostics,
"results.nonfinite_value",
"Beam local frame contains a nonfinite component.");
}
const BeamSectionResult& first = beam.end_results[0];
const BeamSectionResult& second = beam.end_results[1];
if (first.end_node == second.end_node) {
add_error(
diagnostics,
"results.duplicate_beam_end_node",
"Beam element result contains the same node at both ends.");
}
if (
first.xi != -1.0 || second.xi != 1.0 ||
!nodal_ids.contains(first.end_node.value()) ||
!nodal_ids.contains(second.end_node.value())) {
add_error(
diagnostics,
"results.invalid_beam_connectivity",
"Beam end results must follow (-1, +1) connectivity and "
"reference nodes in the nodal frame.");
}
if (first.sigma_xx.size() != second.sigma_xx.size()) {
add_error(
diagnostics,
"results.recovery_point_count_mismatch",
"Beam end results must have matching recovery-point "
"counts.");
}
validate_beam_section_result(first, diagnostics);
validate_beam_section_result(second, diagnostics);
}
}
} // namespace
Status validate_result_database(const ResultDatabase& database) {
@@ -106,6 +190,8 @@ Status validate_result_database(const ResultDatabase& database) {
}
validate_nodal_frame(frame.nodal, diagnostics);
validate_element_frame(
frame.element, frame.nodal, diagnostics);
}
}
+13 -1
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@@ -598,6 +598,12 @@ add_test(
--gtest_filter=ResultDatabase.*
)
add_test(
NAME ElementFrame
COMMAND "$<TARGET_FILE:fesa_result_database_tests>"
--gtest_filter=ElementFrame.*
)
add_executable(fesa_hdf5_results_tests
integration/io/hdf5_results_test.cpp
)
@@ -674,8 +680,14 @@ add_test(
--gtest_filter=StaticEquilibrium.*
)
add_test(
NAME CompleteResultContract
COMMAND "$<TARGET_FILE:fesa_linear_static_analysis_tests>"
--gtest_filter=CompleteResultContract.*
)
set_property(
TEST LinearStaticAnalysis StaticEquilibrium
TEST LinearStaticAnalysis StaticEquilibrium CompleteResultContract
PROPERTY ENVIRONMENT_MODIFICATION
${FESA_DEPENDENCY_RUNTIME_MODIFICATIONS}
)
@@ -226,6 +226,12 @@ fesa::ResultDatabase make_database() {
1.25,
{
{fesa::NodeId{7}, fesa::NodeId{42}},
{
fesa::EntityOrigin{
"BeamPart", "Beam-1", 1002},
fesa::EntityOrigin{
"BeamPart", "Beam-1", 1001},
},
{
{1.0, 2.0, 3.0, 4.0, 5.0, 6.0},
{-1.0, -2.0, -3.0, -4.0, -5.0, -6.0},
@@ -236,6 +242,7 @@ fesa::ResultDatabase make_database() {
},
},
{},
{},
}},
}},
};
@@ -279,6 +286,12 @@ TEST(ResultRoundTrip, PreservesMinimalSchemaModelAndNodalResults) {
EXPECT_EQ(
frame.nodal.node_ids,
(std::vector<fesa::NodeId>{fesa::NodeId{7}, fesa::NodeId{42}}));
EXPECT_EQ(
frame.nodal.origins,
(std::vector<fesa::EntityOrigin>{
{"BeamPart", "Beam-1", 1002},
{"BeamPart", "Beam-1", 1001},
}));
EXPECT_EQ(
frame.nodal.displacement[0],
(std::array<double, 6>{1.0, 2.0, 3.0, 4.0, 5.0, 6.0}));
@@ -59,7 +59,7 @@ fesa::Domain build_axial_domain(const bool all_constrained) {
2.0,
fesa::ShearPropertySource::input,
fesa::Vec3{0.0, 1.0, 0.0},
{},
{{1.0, 2.0}, {-1.0, -2.0}},
});
builder.add_beam_element({
fesa::ElementId{0},
@@ -214,4 +214,49 @@ TEST(LinearStaticAnalysis, SolvesAllConstrainedSystemWithoutPardiso) {
EXPECT_NEAR(nodal.reaction[1][0], -5.0, 1.0e-12);
}
TEST(CompleteResultContract, PreservesOriginsConnectivityAndBeamRecovery) {
const fesa::Domain domain = build_axial_domain(false);
const fesa::AnalysisRunResult run =
fesa::LinearStaticAnalysis{}.run(domain);
ASSERT_TRUE(run.succeeded);
ASSERT_TRUE(run.results.has_value());
const fesa::ResultFrame& frame = run.results->steps[0].frames[0];
EXPECT_EQ(
frame.nodal.origins,
(std::vector<fesa::EntityOrigin>{
{"BeamPart", "Beam-1", 2},
{"BeamPart", "Beam-1", 1},
}));
ASSERT_EQ(frame.element.beams.size(), 1U);
const fesa::BeamElementFrame& beam = frame.element.beams[0];
EXPECT_EQ(beam.element, fesa::ElementId{0});
EXPECT_EQ(
beam.origin,
(fesa::EntityOrigin{"BeamPart", "Beam-1", 1}));
EXPECT_DOUBLE_EQ(beam.local_frame.ex.x, 1.0);
EXPECT_DOUBLE_EQ(beam.local_frame.ex.y, 0.0);
EXPECT_DOUBLE_EQ(beam.local_frame.ex.z, 0.0);
EXPECT_DOUBLE_EQ(beam.local_frame.ey.x, 0.0);
EXPECT_DOUBLE_EQ(beam.local_frame.ey.y, 1.0);
EXPECT_DOUBLE_EQ(beam.local_frame.ey.z, 0.0);
EXPECT_DOUBLE_EQ(beam.local_frame.ez.x, 0.0);
EXPECT_DOUBLE_EQ(beam.local_frame.ez.y, 0.0);
EXPECT_DOUBLE_EQ(beam.local_frame.ez.z, 1.0);
EXPECT_EQ(beam.end_results[0].end_node, fesa::NodeId{20});
EXPECT_EQ(beam.end_results[1].end_node, fesa::NodeId{4});
EXPECT_DOUBLE_EQ(beam.end_results[0].xi, -1.0);
EXPECT_DOUBLE_EQ(beam.end_results[1].xi, 1.0);
for (const fesa::BeamSectionResult& end : beam.end_results) {
EXPECT_NEAR(end.section_strain[0], 0.05, 1.0e-12);
EXPECT_NEAR(end.section_force[0], 10.0, 1.0e-12);
EXPECT_NEAR(end.centroid_sigma_xx, 5.0, 1.0e-12);
ASSERT_EQ(end.sigma_xx.size(), 2U);
EXPECT_NEAR(end.sigma_xx[0], 5.0, 1.0e-12);
EXPECT_NEAR(end.sigma_xx[1], 5.0, 1.0e-12);
}
}
} // namespace
+154 -1
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@@ -17,6 +17,10 @@ std::array<double, 6> zeros() {
fesa::ResultDatabase valid_database() {
fesa::NodalFrame nodal{
{fesa::NodeId{0}, fesa::NodeId{1}},
{
fesa::EntityOrigin{"BeamPart", "Beam-1", 10},
fesa::EntityOrigin{"BeamPart", "Beam-1", 20},
},
{
zeros(),
{1.0, 2.0, 3.0, 0.1, 0.2, 0.3},
@@ -26,7 +30,39 @@ fesa::ResultDatabase valid_database() {
zeros(),
},
};
fesa::ResultFrame frame{1.0, std::move(nodal), {}};
fesa::BeamElementFrame beam{
fesa::ElementId{3},
fesa::EntityOrigin{"BeamPart", "Beam-1", 30},
{
fesa::Vec3{1.0, 0.0, 0.0},
fesa::Vec3{0.0, 1.0, 0.0},
fesa::Vec3{0.0, 0.0, 1.0},
},
{{
{
-1.0,
fesa::NodeId{0},
zeros(),
zeros(),
0.0,
{1.0},
},
{
1.0,
fesa::NodeId{1},
zeros(),
zeros(),
0.0,
{2.0},
},
}},
};
fesa::ResultFrame frame{
1.0,
std::move(nodal),
{{std::move(beam)}},
{},
};
fesa::ResultStep step{"Load", {std::move(frame)}};
return {"1.0.0", {std::move(step)}};
}
@@ -72,6 +108,17 @@ TEST(NodalFrame, RejectsReactionSizeMismatch) {
EXPECT_TRUE(has_diagnostic(status, "results.nodal_size_mismatch"));
}
TEST(CompleteResultContract, RejectsNodeOriginSizeMismatch) {
auto database = valid_database();
database.steps[0].frames[0].nodal.origins.pop_back();
const auto status = fesa::validate_result_database(database);
EXPECT_FALSE(status.succeeded);
EXPECT_TRUE(has_diagnostic(
status, "results.nodal_origin_size_mismatch"));
}
TEST(NodalFrame, RejectsDuplicateNodeId) {
auto database = valid_database();
database.steps[0].frames[0].nodal.node_ids[1] = fesa::NodeId{0};
@@ -135,4 +182,110 @@ TEST(ResultDatabase, RejectsNonfiniteFrameTime) {
EXPECT_TRUE(has_diagnostic(status, "results.nonfinite_value"));
}
TEST(CompleteResultContract, DeclaresCoordinatesAndComponentOrdering) {
EXPECT_EQ(
fesa::NodalFrame::coordinate_system,
fesa::FieldCoordinateSystem::global);
EXPECT_EQ(
fesa::NodalFrame::displacement_components,
(std::array<std::string_view, 6>{
"Ux", "Uy", "Uz", "Rx", "Ry", "Rz"}));
EXPECT_EQ(
fesa::NodalFrame::reaction_components,
(std::array<std::string_view, 6>{
"RFx", "RFy", "RFz", "RMx", "RMy", "RMz"}));
EXPECT_EQ(
fesa::BeamElementFrame::coordinate_system,
fesa::FieldCoordinateSystem::element_local);
EXPECT_EQ(
fesa::BeamElementFrame::section_strain_components,
(std::array<std::string_view, 6>{
"epsilon", "gamma_y", "gamma_z", "kappa_x", "kappa_y",
"kappa_z"}));
EXPECT_EQ(
fesa::BeamElementFrame::section_force_components,
(std::array<std::string_view, 6>{
"N", "Vy", "Vz", "T", "My", "Mz"}));
EXPECT_EQ(
fesa::BeamElementFrame::axial_stress_component,
std::string_view{"sigma_xx"});
}
TEST(ElementFrame, AcceptsFiniteConnectedBeamResults) {
const auto status = fesa::validate_result_database(valid_database());
EXPECT_TRUE(status.succeeded);
EXPECT_TRUE(status.diagnostics.empty());
}
TEST(ElementFrame, RejectsDuplicateElementId) {
auto database = valid_database();
auto& beams = database.steps[0].frames[0].element.beams;
beams.push_back(beams[0]);
const auto status = fesa::validate_result_database(database);
EXPECT_FALSE(status.succeeded);
EXPECT_TRUE(has_diagnostic(status, "results.duplicate_element_id"));
}
TEST(ElementFrame, RejectsDuplicateEndNode) {
auto database = valid_database();
auto& ends = database.steps[0].frames[0]
.element.beams[0].end_results;
ends[1].end_node = ends[0].end_node;
const auto status = fesa::validate_result_database(database);
EXPECT_FALSE(status.succeeded);
EXPECT_TRUE(has_diagnostic(status, "results.duplicate_beam_end_node"));
}
TEST(ElementFrame, RejectsWrongEndConnectivity) {
auto database = valid_database();
database.steps[0].frames[0]
.element.beams[0].end_results[0].xi = 1.0;
const auto status = fesa::validate_result_database(database);
EXPECT_FALSE(status.succeeded);
EXPECT_TRUE(has_diagnostic(status, "results.invalid_beam_connectivity"));
}
TEST(ElementFrame, RejectsEndNodeAbsentFromNodalFrame) {
auto database = valid_database();
database.steps[0].frames[0]
.element.beams[0].end_results[1].end_node = fesa::NodeId{99};
const auto status = fesa::validate_result_database(database);
EXPECT_FALSE(status.succeeded);
EXPECT_TRUE(has_diagnostic(status, "results.invalid_beam_connectivity"));
}
TEST(ElementFrame, RejectsNonfiniteLocalFrameAndSectionValue) {
auto database = valid_database();
auto& beam = database.steps[0].frames[0].element.beams[0];
beam.local_frame.ey.y = std::numeric_limits<double>::infinity();
beam.end_results[1].section_force[4] =
std::numeric_limits<double>::quiet_NaN();
const auto status = fesa::validate_result_database(database);
EXPECT_FALSE(status.succeeded);
EXPECT_TRUE(has_diagnostic(status, "results.nonfinite_value"));
}
TEST(ElementFrame, RejectsMismatchedRecoveryPointCount) {
auto database = valid_database();
database.steps[0].frames[0]
.element.beams[0].end_results[1].sigma_xx.push_back(3.0);
const auto status = fesa::validate_result_database(database);
EXPECT_FALSE(status.succeeded);
EXPECT_TRUE(has_diagnostic(
status, "results.recovery_point_count_mismatch"));
}
} // namespace