feat(linear-static-mitc4-shell): step 7 - shell-sparse-assembly
This commit is contained in:
@@ -3,6 +3,7 @@
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#include "fesa/analysis/analysis_model.hpp"
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#include "fesa/analysis/analysis_model.hpp"
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#include "fesa/assembly/parallel_for.hpp"
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#include "fesa/assembly/parallel_for.hpp"
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#include "fesa/elements/euler_beam_3d.hpp"
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#include "fesa/elements/euler_beam_3d.hpp"
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#include "fesa/elements/mitc4_shell.hpp"
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#include "fesa/fem/dof_manager.hpp"
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#include "fesa/fem/dof_manager.hpp"
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#include <array>
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#include <array>
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@@ -17,11 +18,17 @@ namespace fesa {
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namespace {
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namespace {
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constexpr std::size_t kDofsPerNode = 6U;
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constexpr std::size_t kDofsPerNode = 6U;
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constexpr std::size_t kElementDofCount = 12U;
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constexpr std::size_t kBeamElementDofCount = 12U;
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constexpr std::size_t kContributionCount =
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constexpr std::size_t kBeamContributionCount =
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kElementDofCount * kElementDofCount;
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kBeamElementDofCount * kBeamElementDofCount;
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constexpr std::size_t kShellElementDofCount = 24U;
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constexpr std::size_t kShellContributionCount =
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kShellElementDofCount * kShellElementDofCount;
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using ElementBuffer = std::array<CooContribution, kContributionCount>;
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using BeamElementBuffer =
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std::array<CooContribution, kBeamContributionCount>;
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using ShellElementBuffer =
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std::array<CooContribution, kShellContributionCount>;
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Result<SparseMatrix> assemblyFailure(
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Result<SparseMatrix> assemblyFailure(
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const std::string& code,
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const std::string& code,
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@@ -54,8 +61,178 @@ Result<SparseMatrix> SparseAssembler::assembleStiffness(
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std::to_string(dofs.fullDofCount()),
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std::to_string(dofs.fullDofCount()),
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"DofManager dimensions do not match the active model nodes.");
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"DofManager dimensions do not match the active model nodes.");
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}
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}
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if (!model.activeElements().empty() && !domain.shellElements().empty()) {
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return assemblyFailure(
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"unsupported-mixed-element-model",
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{domain.sourcePath(), 0U},
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"B33:FESA-MITC4",
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"Sparse assembly does not support mixed beam and shell models.");
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}
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if (!domain.shellElements().empty()) {
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if (domain.shellElements().size() >
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(std::numeric_limits<std::size_t>::max)() /
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kShellContributionCount) {
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return assemblyFailure(
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"invalid-assembly-dimensions",
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{domain.sourcePath(), 0U},
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std::to_string(domain.shellElements().size()),
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"Shell contribution storage exceeds the addressable range.");
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}
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std::vector<std::optional<std::array<double, 3>>> directorsByNode(
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domain.nodes().size());
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for (const auto& frame : domain.shellNodeInitialFrames()) {
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if (frame.nodeIndex >= directorsByNode.size() ||
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directorsByNode[frame.nodeIndex]) {
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return assemblyFailure(
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"invalid-assembly-element",
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{domain.sourcePath(), 0U},
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std::to_string(frame.nodeIndex),
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"Shell initial frames must map uniquely to model nodes.");
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}
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directorsByNode[frame.nodeIndex] = frame.director;
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}
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struct ShellInput {
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std::array<const Node*, 4> nodes;
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std::array<std::array<double, 3>, 4> directors;
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const ShellSection* section;
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const LinearElasticMaterial* material;
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std::array<std::size_t, kShellElementDofCount> scatter;
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};
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std::vector<ShellInput> inputs;
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inputs.reserve(domain.shellElements().size());
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for (std::size_t elementOrder = 0U;
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elementOrder < domain.shellElements().size();
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++elementOrder) {
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const auto& element = domain.shellElements()[elementOrder];
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if (element.materialIndex >= domain.materials().size() ||
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element.sectionIndex >= domain.shellSections().size()) {
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return assemblyFailure(
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"invalid-assembly-element",
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element.location,
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element.sourceId.sourceLabelText,
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"Shell element references an entity outside the Domain.");
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}
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ShellInput input{};
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input.section = &domain.shellSections()[element.sectionIndex];
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input.material = &domain.materials()[element.materialIndex];
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try {
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input.scatter = dofs.shellElementScatter(
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static_cast<EntityIndex>(elementOrder));
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} catch (const std::out_of_range&) {
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return assemblyFailure(
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"invalid-assembly-scatter",
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element.location,
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element.sourceId.sourceLabelText,
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"DofManager does not contain the active shell scatter.");
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}
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for (std::size_t nodePosition = 0U;
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nodePosition < element.nodeIndices.size();
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++nodePosition) {
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const EntityIndex nodeIndex = element.nodeIndices[nodePosition];
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if (nodeIndex >= domain.nodes().size() ||
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!directorsByNode[nodeIndex]) {
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return assemblyFailure(
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"invalid-assembly-element",
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element.location,
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element.sourceId.sourceLabelText,
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"Shell element requires a valid node and initial director.");
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}
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input.nodes[nodePosition] = &domain.nodes()[nodeIndex];
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input.directors[nodePosition] = *directorsByNode[nodeIndex];
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for (std::size_t component = 0U;
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component < kDofsPerNode;
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++component) {
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const std::size_t local =
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nodePosition * kDofsPerNode + component;
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const std::size_t expected =
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static_cast<std::size_t>(nodeIndex) * kDofsPerNode +
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component;
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if (input.scatter[local] != expected ||
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input.scatter[local] >= dofs.fullDofCount()) {
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return assemblyFailure(
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"invalid-assembly-scatter",
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element.location,
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element.sourceId.sourceLabelText,
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"Shell scatter does not match the active model topology.");
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}
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}
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}
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inputs.push_back(input);
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}
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std::vector<ShellElementBuffer> localBuffers(inputs.size());
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std::vector<std::optional<Status>> localFailures(inputs.size());
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parallelFor.execute(
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inputs.size(),
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[&](const std::size_t elementOrder) {
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const auto& input = inputs[elementOrder];
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const auto shell = Mitc4Shell::create(
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input.nodes,
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input.directors,
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*input.section,
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*input.material);
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if (!shell.hasValue()) {
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localFailures[elementOrder] = shell.status();
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return;
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}
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const auto stiffness = shell.value().stiffness();
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if (!stiffness.hasValue()) {
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localFailures[elementOrder] = stiffness.status();
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return;
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}
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auto& buffer = localBuffers[elementOrder];
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for (std::size_t localRow = 0U;
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localRow < kShellElementDofCount;
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++localRow) {
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for (std::size_t localColumn = 0U;
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localColumn < kShellElementDofCount;
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++localColumn) {
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const std::size_t localOrder =
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localRow * kShellElementDofCount + localColumn;
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buffer[localOrder] = {
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input.scatter[localRow],
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input.scatter[localColumn],
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stiffness.value().stabilizedGlobal24(
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localRow, localColumn),
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elementOrder,
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localOrder};
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}
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}
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});
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for (std::size_t elementOrder = 0U;
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elementOrder < localFailures.size();
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++elementOrder) {
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if (localFailures[elementOrder]) {
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return Result<SparseMatrix>::failure(
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*localFailures[elementOrder]);
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}
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}
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std::vector<CooContribution> contributions;
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contributions.reserve(
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localBuffers.size() * kShellContributionCount);
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// Flatten in source-element order after workers complete. The canonical
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// COO reduction remains the sole writer of global CSR values.
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for (const auto& buffer : localBuffers) {
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contributions.insert(
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contributions.end(), buffer.begin(), buffer.end());
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}
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return SparseMatrix::fromCoo(
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dofs.fullDofCount(),
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dofs.fullDofCount(),
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std::move(contributions),
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dofs.sparsePattern());
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}
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if (model.activeElements().size() >
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if (model.activeElements().size() >
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(std::numeric_limits<std::size_t>::max)() / kContributionCount) {
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(std::numeric_limits<std::size_t>::max)() /
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kBeamContributionCount) {
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return assemblyFailure(
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return assemblyFailure(
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"invalid-assembly-dimensions",
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"invalid-assembly-dimensions",
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{domain.sourcePath(), 0U},
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{domain.sourcePath(), 0U},
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@@ -63,7 +240,7 @@ Result<SparseMatrix> SparseAssembler::assembleStiffness(
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"Element contribution storage exceeds the addressable range.");
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"Element contribution storage exceeds the addressable range.");
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}
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}
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std::vector<std::array<std::size_t, kElementDofCount>> scatters;
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std::vector<std::array<std::size_t, kBeamElementDofCount>> scatters;
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scatters.reserve(model.activeElements().size());
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scatters.reserve(model.activeElements().size());
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for (const EntityIndex elementIndex : model.activeElements()) {
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for (const EntityIndex elementIndex : model.activeElements()) {
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if (elementIndex >= domain.elements().size()) {
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if (elementIndex >= domain.elements().size()) {
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@@ -85,7 +262,7 @@ Result<SparseMatrix> SparseAssembler::assembleStiffness(
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"Element references an entity outside the Domain.");
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"Element references an entity outside the Domain.");
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}
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}
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std::array<std::size_t, kElementDofCount> scatter{};
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std::array<std::size_t, kBeamElementDofCount> scatter{};
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try {
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try {
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scatter = dofs.elementScatter(elementIndex);
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scatter = dofs.elementScatter(elementIndex);
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} catch (const std::out_of_range&) {
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} catch (const std::out_of_range&) {
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@@ -117,7 +294,7 @@ Result<SparseMatrix> SparseAssembler::assembleStiffness(
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scatters.push_back(scatter);
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scatters.push_back(scatter);
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}
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}
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std::vector<ElementBuffer> localBuffers(model.activeElements().size());
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std::vector<BeamElementBuffer> localBuffers(model.activeElements().size());
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std::vector<std::optional<Status>> localFailures(
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std::vector<std::optional<Status>> localFailures(
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model.activeElements().size());
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model.activeElements().size());
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parallelFor.execute(
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parallelFor.execute(
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@@ -139,13 +316,13 @@ Result<SparseMatrix> SparseAssembler::assembleStiffness(
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auto& buffer = localBuffers[elementOrder];
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auto& buffer = localBuffers[elementOrder];
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const auto& scatter = scatters[elementOrder];
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const auto& scatter = scatters[elementOrder];
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for (std::size_t localRow = 0U;
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for (std::size_t localRow = 0U;
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localRow < kElementDofCount;
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localRow < kBeamElementDofCount;
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++localRow) {
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++localRow) {
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for (std::size_t localColumn = 0U;
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for (std::size_t localColumn = 0U;
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localColumn < kElementDofCount;
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localColumn < kBeamElementDofCount;
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++localColumn) {
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++localColumn) {
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const std::size_t localOrder =
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const std::size_t localOrder =
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localRow * kElementDofCount + localColumn;
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localRow * kBeamElementDofCount + localColumn;
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buffer[localOrder] = {
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buffer[localOrder] = {
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scatter[localRow],
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scatter[localRow],
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scatter[localColumn],
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scatter[localColumn],
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@@ -167,7 +344,7 @@ Result<SparseMatrix> SparseAssembler::assembleStiffness(
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std::vector<CooContribution> contributions;
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std::vector<CooContribution> contributions;
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contributions.reserve(
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contributions.reserve(
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localBuffers.size() * kContributionCount);
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localBuffers.size() * kBeamContributionCount);
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// Flatten only after all workers complete; workers never share CSR state.
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// Flatten only after all workers complete; workers never share CSR state.
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for (const auto& buffer : localBuffers) {
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for (const auto& buffer : localBuffers) {
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contributions.insert(
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contributions.insert(
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@@ -1,12 +1,14 @@
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#include "fesa/analysis/analysis_model.hpp"
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#include "fesa/analysis/analysis_model.hpp"
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#include "fesa/assembly/parallel_for.hpp"
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#include "fesa/assembly/parallel_for.hpp"
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#include "fesa/assembly/sparse_assembler.hpp"
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#include "fesa/assembly/sparse_assembler.hpp"
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#include "fesa/elements/mitc4_shell.hpp"
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#include "fesa/fem/dof_manager.hpp"
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#include "fesa/fem/dof_manager.hpp"
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#include "fesa/model/domain.hpp"
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#include "fesa/model/domain.hpp"
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#include <gtest/gtest.h>
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#include <gtest/gtest.h>
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#include <algorithm>
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#include <algorithm>
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#include <array>
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#include <cstring>
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#include <cstring>
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#include <filesystem>
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#include <filesystem>
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#include <utility>
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#include <utility>
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@@ -43,6 +45,103 @@ fesa::ModelDefinition makeDefinition() {
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return definition;
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return definition;
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}
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}
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fesa::ModelDefinition makeShellDefinition(
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const fesa::ShellSourceElementType sourceType,
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const bool twoElements = false) {
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const std::filesystem::path source{"models/shell-sparse-assembly.inp"};
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fesa::ModelDefinition definition{};
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definition.sourcePath = source;
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definition.sourceContentIdentity = "fnv1a64:fedcba9876543210";
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if (twoElements) {
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definition.nodes = {
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{{"Shell-1", 1, "1"}, {0.0, 0.0, 0.0}, {source, 10U}},
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{{"Shell-1", 2, "2"}, {1.0, 0.0, 0.0}, {source, 11U}},
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{{"Shell-1", 3, "3"}, {2.0, 0.0, 0.0}, {source, 12U}},
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{{"Shell-1", 4, "4"}, {0.0, 1.0, 0.0}, {source, 13U}},
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{{"Shell-1", 5, "5"}, {1.0, 1.0, 0.0}, {source, 14U}},
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{{"Shell-1", 6, "6"}, {2.0, 1.0, 0.0}, {source, 15U}}};
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for (std::size_t node = 0U; node < definition.nodes.size(); ++node) {
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definition.shellNodeInitialFrames.push_back({
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static_cast<fesa::EntityIndex>(node),
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{0.0, 0.0, 1.0},
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{1.0, 0.0, 0.0},
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{0.0, 1.0, 0.0}});
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}
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definition.shellElements = {
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{{"Shell-1", 10, "10"}, sourceType, {0U, 1U, 4U, 3U},
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0U, 0U, {source, 40U}},
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{{"Shell-1", 20, "20"}, sourceType, {1U, 2U, 5U, 4U},
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0U, 0U, {source, 41U}}};
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} else {
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// A YZ-plane fixture catches any accidental global-Z director assumption.
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definition.nodes = {
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{{"Shell-1", 1, "1"}, {0.0, 0.0, 0.0}, {source, 10U}},
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{{"Shell-1", 2, "2"}, {0.0, 1.0, 0.0}, {source, 11U}},
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{{"Shell-1", 3, "3"}, {0.0, 1.0, 1.0}, {source, 12U}},
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{{"Shell-1", 4, "4"}, {0.0, 0.0, 1.0}, {source, 13U}}};
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for (std::size_t node = 0U; node < definition.nodes.size(); ++node) {
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definition.shellNodeInitialFrames.push_back({
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static_cast<fesa::EntityIndex>(node),
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{1.0, 0.0, 0.0},
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{0.0, 1.0, 0.0},
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{0.0, 0.0, 1.0}});
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}
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definition.shellElements = {{
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{"Shell-1", 10, "10"}, sourceType, {0U, 1U, 2U, 3U},
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0U, 0U, {source, 40U}}};
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}
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definition.materials = {
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{"Material", 120.0, 0.25, {source, 20U}}};
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definition.shellSections = {
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{"ShellSection", 0.2, 0U, {source, 30U}}};
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|
definition.steps = {{
|
||||||
|
"Step-1", {}, {}, 0.1, 1.0, 0.01, 1.0, {source, 50U}}};
|
||||||
|
return definition;
|
||||||
|
}
|
||||||
|
|
||||||
|
fesa::Result<fesa::Mitc4Stiffness> directShellStiffness(
|
||||||
|
const fesa::Domain& domain,
|
||||||
|
const fesa::EntityIndex elementIndex) {
|
||||||
|
const auto& definition = domain.shellElements().at(elementIndex);
|
||||||
|
std::array<const fesa::Node*, 4> nodes{};
|
||||||
|
std::array<std::array<double, 3>, 4> directors{};
|
||||||
|
for (std::size_t node = 0U; node < definition.nodeIndices.size(); ++node) {
|
||||||
|
const fesa::EntityIndex nodeIndex = definition.nodeIndices[node];
|
||||||
|
nodes[node] = &domain.nodes().at(nodeIndex);
|
||||||
|
directors[node] = domain.shellNodeInitialFrames().at(nodeIndex).director;
|
||||||
|
}
|
||||||
|
auto shell = fesa::Mitc4Shell::create(
|
||||||
|
nodes,
|
||||||
|
directors,
|
||||||
|
domain.shellSections().at(definition.sectionIndex),
|
||||||
|
domain.materials().at(definition.materialIndex));
|
||||||
|
if (!shell.hasValue()) {
|
||||||
|
return fesa::Result<fesa::Mitc4Stiffness>::failure(shell.status());
|
||||||
|
}
|
||||||
|
return shell.value().stiffness();
|
||||||
|
}
|
||||||
|
|
||||||
|
fesa::Result<fesa::SparseMatrix> assembleShell(
|
||||||
|
const fesa::ShellSourceElementType sourceType,
|
||||||
|
const fesa::ParallelFor& parallelFor,
|
||||||
|
const bool twoElements = false) {
|
||||||
|
auto domain = fesa::Domain::create(
|
||||||
|
makeShellDefinition(sourceType, twoElements));
|
||||||
|
if (!domain.hasValue()) {
|
||||||
|
return fesa::Result<fesa::SparseMatrix>::failure(domain.status());
|
||||||
|
}
|
||||||
|
auto model = fesa::AnalysisModel::create(domain.value());
|
||||||
|
if (!model.hasValue()) {
|
||||||
|
return fesa::Result<fesa::SparseMatrix>::failure(model.status());
|
||||||
|
}
|
||||||
|
auto dofs = fesa::DofManager::create(model.value());
|
||||||
|
if (!dofs.hasValue()) {
|
||||||
|
return fesa::Result<fesa::SparseMatrix>::failure(dofs.status());
|
||||||
|
}
|
||||||
|
return fesa::SparseAssembler::assembleStiffness(
|
||||||
|
model.value(), dofs.value(), parallelFor);
|
||||||
|
}
|
||||||
|
|
||||||
template<class T>
|
template<class T>
|
||||||
bool byteIdentical(const std::vector<T>& left, const std::vector<T>& right) {
|
bool byteIdentical(const std::vector<T>& left, const std::vector<T>& right) {
|
||||||
return left.size() == right.size() &&
|
return left.size() == right.size() &&
|
||||||
@@ -155,4 +254,86 @@ TEST(SparseAssembly, SerialTbbAndRepeatedRunsAreByteIdentical) {
|
|||||||
EXPECT_NEAR(entry(serial.value(), 12U, 12U), 80.0, 1.0e-12);
|
EXPECT_NEAR(entry(serial.value(), 12U, 12U), 80.0, 1.0e-12);
|
||||||
}
|
}
|
||||||
|
|
||||||
|
TEST(
|
||||||
|
SparseAssembly,
|
||||||
|
AssemblesFourNodeTwentyFourDofKernelAndPreservesDiagonalSlots) {
|
||||||
|
auto domain = fesa::Domain::create(
|
||||||
|
makeShellDefinition(fesa::ShellSourceElementType::s4));
|
||||||
|
ASSERT_TRUE(domain.hasValue());
|
||||||
|
auto model = fesa::AnalysisModel::create(domain.value());
|
||||||
|
ASSERT_TRUE(model.hasValue());
|
||||||
|
auto dofs = fesa::DofManager::create(model.value());
|
||||||
|
ASSERT_TRUE(dofs.hasValue());
|
||||||
|
fesa::SerialParallelFor serialExecutor;
|
||||||
|
|
||||||
|
auto assembled = fesa::SparseAssembler::assembleStiffness(
|
||||||
|
model.value(), dofs.value(), serialExecutor);
|
||||||
|
auto expected = directShellStiffness(domain.value(), 0U);
|
||||||
|
ASSERT_TRUE(assembled.hasValue());
|
||||||
|
ASSERT_TRUE(expected.hasValue());
|
||||||
|
|
||||||
|
EXPECT_EQ(assembled.value().rows(), 24U);
|
||||||
|
EXPECT_EQ(assembled.value().columns(), 24U);
|
||||||
|
EXPECT_EQ(assembled.value().values().size(), 24U * 24U);
|
||||||
|
EXPECT_EQ(
|
||||||
|
assembled.value().rowOffsets(),
|
||||||
|
dofs.value().sparsePattern().rowOffsets);
|
||||||
|
EXPECT_EQ(
|
||||||
|
assembled.value().columnIndices(),
|
||||||
|
dofs.value().sparsePattern().columnIndices);
|
||||||
|
for (std::size_t row = 0U; row < 24U; ++row) {
|
||||||
|
const auto begin = assembled.value().columnIndices().begin() +
|
||||||
|
assembled.value().rowOffsets()[row];
|
||||||
|
const auto end = assembled.value().columnIndices().begin() +
|
||||||
|
assembled.value().rowOffsets()[row + 1U];
|
||||||
|
EXPECT_NE(std::lower_bound(begin, end, row), end);
|
||||||
|
for (std::size_t column = 0U; column < 24U; ++column) {
|
||||||
|
EXPECT_DOUBLE_EQ(
|
||||||
|
entry(assembled.value(), row, column),
|
||||||
|
expected.value().stabilizedGlobal24(row, column));
|
||||||
|
}
|
||||||
|
}
|
||||||
|
}
|
||||||
|
|
||||||
|
TEST(SparseAssembly, ShellSerialTbbReverseAndRepeatedRunsAreByteIdentical) {
|
||||||
|
fesa::SerialParallelFor serialExecutor;
|
||||||
|
fesa::TbbParallelFor tbbExecutor;
|
||||||
|
ReverseParallelFor reverseExecutor;
|
||||||
|
auto serial = assembleShell(
|
||||||
|
fesa::ShellSourceElementType::s4, serialExecutor, true);
|
||||||
|
auto tbb = assembleShell(
|
||||||
|
fesa::ShellSourceElementType::s4, tbbExecutor, true);
|
||||||
|
auto reversed = assembleShell(
|
||||||
|
fesa::ShellSourceElementType::s4, reverseExecutor, true);
|
||||||
|
ASSERT_TRUE(serial.hasValue());
|
||||||
|
ASSERT_TRUE(tbb.hasValue());
|
||||||
|
ASSERT_TRUE(reversed.hasValue());
|
||||||
|
|
||||||
|
EXPECT_EQ(reverseExecutor.calls(), 1U);
|
||||||
|
EXPECT_EQ(reverseExecutor.observedCount(), 2U);
|
||||||
|
expectByteIdentical(tbb.value(), serial.value());
|
||||||
|
expectByteIdentical(reversed.value(), serial.value());
|
||||||
|
for (std::size_t repetition = 0U; repetition < 8U; ++repetition) {
|
||||||
|
auto repeated = assembleShell(
|
||||||
|
fesa::ShellSourceElementType::s4, tbbExecutor, true);
|
||||||
|
ASSERT_TRUE(repeated.hasValue());
|
||||||
|
expectByteIdentical(repeated.value(), serial.value());
|
||||||
|
}
|
||||||
|
}
|
||||||
|
|
||||||
|
TEST(SparseAssembly, S4AndS4rSemanticFixturesAssembleIdenticalStiffness) {
|
||||||
|
fesa::SerialParallelFor serialExecutor;
|
||||||
|
auto s4 = assembleShell(
|
||||||
|
fesa::ShellSourceElementType::s4, serialExecutor);
|
||||||
|
auto s4r = assembleShell(
|
||||||
|
fesa::ShellSourceElementType::s4r, serialExecutor);
|
||||||
|
ASSERT_TRUE(s4.hasValue());
|
||||||
|
ASSERT_TRUE(s4r.hasValue());
|
||||||
|
EXPECT_TRUE(std::any_of(
|
||||||
|
s4.value().values().begin(),
|
||||||
|
s4.value().values().end(),
|
||||||
|
[](const double value) { return value != 0.0; }));
|
||||||
|
expectByteIdentical(s4r.value(), s4.value());
|
||||||
|
}
|
||||||
|
|
||||||
} // namespace
|
} // namespace
|
||||||
|
|||||||
Reference in New Issue
Block a user