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			910 lines
		
	
	
	
		
			34 KiB
		
	
	
	
		
			C++
		
	
	
	
	
	
			
		
		
	
	
			910 lines
		
	
	
	
		
			34 KiB
		
	
	
	
		
			C++
		
	
	
	
	
	
| #include <libslic3r/SLAPrintSteps.hpp>
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| #include <libslic3r/MeshBoolean.hpp>
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| 
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| // Need the cylinder method for the the drainholes in hollowing step
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| #include <libslic3r/SLA/SupportTreeBuilder.hpp>
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| 
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| #include <libslic3r/SLA/Concurrency.hpp>
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| #include <libslic3r/SLA/Pad.hpp>
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| #include <libslic3r/SLA/SupportPointGenerator.hpp>
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| 
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| #include <libslic3r/ElephantFootCompensation.hpp>
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| 
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| #include <libslic3r/ClipperUtils.hpp>
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| 
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| // For geometry algorithms with native Clipper types (no copies and conversions)
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| #include <libnest2d/backends/clipper/geometries.hpp>
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| 
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| #include <boost/log/trivial.hpp>
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| 
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| #include "I18N.hpp"
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| 
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| //! macro used to mark string used at localization,
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| //! return same string
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| #define L(s) Slic3r::I18N::translate(s)
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| 
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| namespace Slic3r {
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| 
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| namespace {
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| 
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| const std::array<unsigned, slaposCount> OBJ_STEP_LEVELS = {
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|     10, // slaposHollowing,
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|     10, // slaposDrillHoles
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|     10, // slaposObjectSlice,
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|     20, // slaposSupportPoints,
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|     10, // slaposSupportTree,
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|     10, // slaposPad,
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|     30, // slaposSliceSupports,
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| };
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| 
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| std::string OBJ_STEP_LABELS(size_t idx)
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| {
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|     switch (idx) {
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|     case slaposHollowing:            return L("Hollowing model");
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|     case slaposDrillHoles:           return L("Drilling holes into model.");
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|     case slaposObjectSlice:          return L("Slicing model");
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|     case slaposSupportPoints:        return L("Generating support points");
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|     case slaposSupportTree:          return L("Generating support tree");
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|     case slaposPad:                  return L("Generating pad");
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|     case slaposSliceSupports:        return L("Slicing supports");
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|     default:;
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|     }
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|     assert(false);
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|     return "Out of bounds!";
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| }
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| 
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| const std::array<unsigned, slapsCount> PRINT_STEP_LEVELS = {
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|     10, // slapsMergeSlicesAndEval
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|     90, // slapsRasterize
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| };
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| 
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| std::string PRINT_STEP_LABELS(size_t idx)
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| {
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|     switch (idx) {
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|     case slapsMergeSlicesAndEval:   return L("Merging slices and calculating statistics");
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|     case slapsRasterize:            return L("Rasterizing layers");
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|     default:;
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|     }
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|     assert(false); return "Out of bounds!";
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| }
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| 
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| }
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| 
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| SLAPrint::Steps::Steps(SLAPrint *print)
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|     : m_print{print}
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|     , m_rng{std::random_device{}()}
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|     , objcount{m_print->m_objects.size()}
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|     , ilhd{m_print->m_material_config.initial_layer_height.getFloat()}
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|     , ilh{float(ilhd)}
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|     , ilhs{scaled(ilhd)}
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|     , objectstep_scale{(max_objstatus - min_objstatus) / (objcount * 100.0)}
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| {}
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| 
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| void SLAPrint::Steps::apply_printer_corrections(SLAPrintObject &po, SliceOrigin o)
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| {
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|     if (o == soSupport && !po.m_supportdata) return;
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|     
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|     auto faded_lyrs = size_t(po.m_config.faded_layers.getInt());
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|     double min_w = m_print->m_printer_config.elefant_foot_min_width.getFloat() / 2.;
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|     double start_efc = m_print->m_printer_config.elefant_foot_compensation.getFloat();
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|     
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|     double doffs = m_print->m_printer_config.absolute_correction.getFloat();
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|     coord_t clpr_offs = scaled(doffs);
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|     
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|     faded_lyrs = std::min(po.m_slice_index.size(), faded_lyrs);
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|     
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|     auto efc = [start_efc, faded_lyrs](size_t pos) {
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|         return (faded_lyrs - 1 - pos) * start_efc / (faded_lyrs - 1); 
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|     };
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| 
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|     std::vector<ExPolygons> &slices = o == soModel ?
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|                                           po.m_model_slices :
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|                                           po.m_supportdata->support_slices;
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|     
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|     if (clpr_offs != 0) for (size_t i = 0; i < po.m_slice_index.size(); ++i) {
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|         size_t idx = po.m_slice_index[i].get_slice_idx(o);
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|         if (idx < slices.size())
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|             slices[idx] = offset_ex(slices[idx], float(clpr_offs));
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|     }
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|     
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|     if (start_efc > 0.) for (size_t i = 0; i < faded_lyrs; ++i) {
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|         size_t idx = po.m_slice_index[i].get_slice_idx(o);
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|         if (idx < slices.size())
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|             slices[idx] = elephant_foot_compensation(slices[idx], min_w, efc(i));
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|     }
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| }
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| 
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| void SLAPrint::Steps::hollow_model(SLAPrintObject &po)
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| {
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|     po.m_hollowing_data.reset();
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| 
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|     if (! po.m_config.hollowing_enable.getBool()) {
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|         BOOST_LOG_TRIVIAL(info) << "Skipping hollowing step!";
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|         return;
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|     }
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|     
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|     BOOST_LOG_TRIVIAL(info) << "Performing hollowing step!";
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| 
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|     double thickness = po.m_config.hollowing_min_thickness.getFloat();
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|     double quality  = po.m_config.hollowing_quality.getFloat();
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|     double closing_d = po.m_config.hollowing_closing_distance.getFloat();
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|     sla::HollowingConfig hlwcfg{thickness, quality, closing_d};
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|     auto meshptr = generate_interior(po.transformed_mesh(), hlwcfg);
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| 
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|     if (meshptr->empty())
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|         BOOST_LOG_TRIVIAL(warning) << "Hollowed interior is empty!";
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|     else {
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|         po.m_hollowing_data.reset(new SLAPrintObject::HollowingData());
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|         po.m_hollowing_data->interior = *meshptr;
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|     }
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| }
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| 
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| // Drill holes into the hollowed/original mesh.
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| void SLAPrint::Steps::drill_holes(SLAPrintObject &po)
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| {
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|     bool needs_drilling = ! po.m_model_object->sla_drain_holes.empty();
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|     bool is_hollowed = (po.m_hollowing_data && ! po.m_hollowing_data->interior.empty());
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| 
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|     if (! is_hollowed && ! needs_drilling) {
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|         // In this case we can dump any data that might have been
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|         // generated on previous runs.
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|         po.m_hollowing_data.reset();
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|         return;
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|     }
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| 
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|     if (! po.m_hollowing_data)
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|         po.m_hollowing_data.reset(new SLAPrintObject::HollowingData());
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| 
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|     // Hollowing and/or drilling is active, m_hollowing_data is valid.
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| 
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|     // Regenerate hollowed mesh, even if it was there already. It may contain
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|     // holes that are no longer on the frontend.
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|     TriangleMesh &hollowed_mesh = po.m_hollowing_data->hollow_mesh_with_holes;
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|     hollowed_mesh = po.transformed_mesh();
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|     if (! po.m_hollowing_data->interior.empty()) {
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|         hollowed_mesh.merge(po.m_hollowing_data->interior);
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|         hollowed_mesh.require_shared_vertices();
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|     }
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| 
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|     if (! needs_drilling) {
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|         BOOST_LOG_TRIVIAL(info) << "Drilling skipped (no holes).";
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|         return;
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|     }
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|     
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|     BOOST_LOG_TRIVIAL(info) << "Drilling drainage holes.";
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|     sla::DrainHoles drainholes = po.transformed_drainhole_points();
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|     
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|     std::uniform_real_distribution<float> dist(0., float(EPSILON));
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|     auto holes_mesh_cgal = MeshBoolean::cgal::triangle_mesh_to_cgal({});
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|     for (sla::DrainHole holept : drainholes) {
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|         holept.normal += Vec3f{dist(m_rng), dist(m_rng), dist(m_rng)};
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|         holept.normal.normalize();
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|         holept.pos += Vec3f{dist(m_rng), dist(m_rng), dist(m_rng)};
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|         TriangleMesh m = sla::to_triangle_mesh(holept.to_mesh());
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|         m.require_shared_vertices();
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|         auto cgal_m = MeshBoolean::cgal::triangle_mesh_to_cgal(m);
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|         MeshBoolean::cgal::plus(*holes_mesh_cgal, *cgal_m);
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|     }
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|     
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|     if (MeshBoolean::cgal::does_self_intersect(*holes_mesh_cgal))
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|         throw std::runtime_error(L("Too much overlapping holes."));
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|     
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|     auto hollowed_mesh_cgal = MeshBoolean::cgal::triangle_mesh_to_cgal(hollowed_mesh);
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|     
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|     try {
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|         MeshBoolean::cgal::minus(*hollowed_mesh_cgal, *holes_mesh_cgal);
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|         hollowed_mesh = MeshBoolean::cgal::cgal_to_triangle_mesh(*hollowed_mesh_cgal);
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|     } catch (const std::runtime_error &) {
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|         throw std::runtime_error(L(
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|             "Drilling holes into the mesh failed. "
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|             "This is usually caused by broken model. Try to fix it first."));
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|     }
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| }
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| 
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| // The slicing will be performed on an imaginary 1D grid which starts from
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| // the bottom of the bounding box created around the supported model. So
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| // the first layer which is usually thicker will be part of the supports
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| // not the model geometry. Exception is when the model is not in the air
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| // (elevation is zero) and no pad creation was requested. In this case the
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| // model geometry starts on the ground level and the initial layer is part
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| // of it. In any case, the model and the supports have to be sliced in the
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| // same imaginary grid (the height vector argument to TriangleMeshSlicer).
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| void SLAPrint::Steps::slice_model(SLAPrintObject &po)
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| {   
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|     const TriangleMesh &mesh = po.get_mesh_to_print();
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| 
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|     // We need to prepare the slice index...
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|     
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|     double  lhd  = m_print->m_objects.front()->m_config.layer_height.getFloat();
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|     float   lh   = float(lhd);
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|     coord_t lhs  = scaled(lhd);
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|     auto && bb3d = mesh.bounding_box();
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|     double  minZ = bb3d.min(Z) - po.get_elevation();
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|     double  maxZ = bb3d.max(Z);
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|     auto    minZf = float(minZ);
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|     coord_t minZs = scaled(minZ);
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|     coord_t maxZs = scaled(maxZ);
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|     
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|     po.m_slice_index.clear();
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|     
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|     size_t cap = size_t(1 + (maxZs - minZs - ilhs) / lhs);
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|     po.m_slice_index.reserve(cap);
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|     
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|     po.m_slice_index.emplace_back(minZs + ilhs, minZf + ilh / 2.f, ilh);
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|     
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|     for(coord_t h = minZs + ilhs + lhs; h <= maxZs; h += lhs)
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|         po.m_slice_index.emplace_back(h, unscaled<float>(h) - lh / 2.f, lh);
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|     
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|     // Just get the first record that is from the model:
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|     auto slindex_it =
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|         po.closest_slice_record(po.m_slice_index, float(bb3d.min(Z)));
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|     
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|     if(slindex_it == po.m_slice_index.end())
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|         //TRN To be shown at the status bar on SLA slicing error.
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|         throw std::runtime_error(
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|             L("Slicing had to be stopped due to an internal error: "
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|               "Inconsistent slice index."));
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|     
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|     po.m_model_height_levels.clear();
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|     po.m_model_height_levels.reserve(po.m_slice_index.size());
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|     for(auto it = slindex_it; it != po.m_slice_index.end(); ++it)
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|         po.m_model_height_levels.emplace_back(it->slice_level());
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|     
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|     TriangleMeshSlicer slicer(&mesh);
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|     
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|     po.m_model_slices.clear();
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|     float closing_r  = float(po.config().slice_closing_radius.value);
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|     auto  thr        = [this]() { m_print->throw_if_canceled(); };
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|     auto &slice_grid = po.m_model_height_levels;
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|     slicer.slice(slice_grid, SlicingMode::Regular, closing_r, &po.m_model_slices, thr);
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|     
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|     if (po.m_hollowing_data && ! po.m_hollowing_data->interior.empty()) {
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|         po.m_hollowing_data->interior.repair(true);
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|         TriangleMeshSlicer interior_slicer(&po.m_hollowing_data->interior);
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|         std::vector<ExPolygons> interior_slices;
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|         interior_slicer.slice(slice_grid, SlicingMode::Regular, closing_r, &interior_slices, thr);
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| 
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|         sla::ccr::enumerate(interior_slices.begin(), interior_slices.end(),
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|                             [&po](const ExPolygons &slice, size_t i) {
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|                                 po.m_model_slices[i] =
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|                                     diff_ex(po.m_model_slices[i], slice);
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|                             });
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|     }
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|     
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|     auto mit = slindex_it;
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|     for (size_t id = 0;
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|          id < po.m_model_slices.size() && mit != po.m_slice_index.end();
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|          id++) {
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|         mit->set_model_slice_idx(po, id); ++mit;
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|     }
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|     
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|     // We apply the printer correction offset here.
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|     apply_printer_corrections(po, soModel);
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|         
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|     if(po.m_config.supports_enable.getBool() || po.m_config.pad_enable.getBool())
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|     {
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|         po.m_supportdata.reset(new SLAPrintObject::SupportData(mesh));
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|     }
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| }
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| 
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| // In this step we check the slices, identify island and cover them with
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| // support points. Then we sprinkle the rest of the mesh.
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| void SLAPrint::Steps::support_points(SLAPrintObject &po)
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| {
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|     // If supports are disabled, we can skip the model scan.
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|     if(!po.m_config.supports_enable.getBool()) return;
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|     
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|     const TriangleMesh &mesh = po.get_mesh_to_print();
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|     
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|     if (!po.m_supportdata)
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|         po.m_supportdata.reset(new SLAPrintObject::SupportData(mesh));
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|     
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|     const ModelObject& mo = *po.m_model_object;
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|     
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|     BOOST_LOG_TRIVIAL(debug) << "Support point count "
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|                              << mo.sla_support_points.size();
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|     
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|     // Unless the user modified the points or we already did the calculation,
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|     // we will do the autoplacement. Otherwise we will just blindly copy the
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|     // frontend data into the backend cache.
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|     if (mo.sla_points_status != sla::PointsStatus::UserModified) {
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|         
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|         // calculate heights of slices (slices are calculated already)
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|         const std::vector<float>& heights = po.m_model_height_levels;
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| 
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|         // Tell the mesh where drain holes are. Although the points are
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|         // calculated on slices, the algorithm then raycasts the points
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|         // so they actually lie on the mesh.
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| //        po.m_supportdata->emesh.load_holes(po.transformed_drainhole_points());
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|         
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|         throw_if_canceled();
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|         sla::SupportPointGenerator::Config config;
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|         const SLAPrintObjectConfig& cfg = po.config();
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|         
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|         // the density config value is in percents:
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|         config.density_relative = float(cfg.support_points_density_relative / 100.f);
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|         config.minimal_distance = float(cfg.support_points_minimal_distance);
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|         config.head_diameter    = float(cfg.support_head_front_diameter);
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|         
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|         // scaling for the sub operations
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|         double d = objectstep_scale * OBJ_STEP_LEVELS[slaposSupportPoints] / 100.0;
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|         double init = current_status();
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|         
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|         auto statuscb = [this, d, init](unsigned st)
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|         {
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|             double current = init + st * d;
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|             if(std::round(current_status()) < std::round(current))
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|                 report_status(current, OBJ_STEP_LABELS(slaposSupportPoints));
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|         };
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|         
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|         // Construction of this object does the calculation.
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|         throw_if_canceled();
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|         sla::SupportPointGenerator auto_supports(
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|             po.m_supportdata->emesh, po.get_model_slices(), heights, config,
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|             [this]() { throw_if_canceled(); }, statuscb);
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| 
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|         // Now let's extract the result.
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|         const std::vector<sla::SupportPoint>& points = auto_supports.output();
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|         throw_if_canceled();
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|         po.m_supportdata->pts = points;
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|         
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|         BOOST_LOG_TRIVIAL(debug) << "Automatic support points: "
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|                                  << po.m_supportdata->pts.size();
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|         
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|         // Using RELOAD_SLA_SUPPORT_POINTS to tell the Plater to pass
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|         // the update status to GLGizmoSlaSupports
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|         report_status(-1, L("Generating support points"),
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|                       SlicingStatus::RELOAD_SLA_SUPPORT_POINTS);
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|     } else {
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|         // There are either some points on the front-end, or the user
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|         // removed them on purpose. No calculation will be done.
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|         po.m_supportdata->pts = po.transformed_support_points();
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|     }
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| 
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|     // If the zero elevation mode is engaged, we have to filter out all the
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|     // points that are on the bottom of the object
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|     if (is_zero_elevation(po.config())) {
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|         double tolerance = po.config().pad_enable.getBool() ?
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|                                po.m_config.pad_wall_thickness.getFloat() :
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|                                po.m_config.support_base_height.getFloat();
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| 
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|         remove_bottom_points(po.m_supportdata->pts,
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|                              po.m_supportdata->emesh.ground_level(),
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|                              tolerance);
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|     }
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| }
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| 
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| void SLAPrint::Steps::support_tree(SLAPrintObject &po)
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| {
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|     if(!po.m_supportdata) return;
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|     
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|     sla::PadConfig pcfg = make_pad_cfg(po.m_config);
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|     
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|     if (pcfg.embed_object)
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|         po.m_supportdata->emesh.ground_level_offset(pcfg.wall_thickness_mm);
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|     
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|     po.m_supportdata->cfg = make_support_cfg(po.m_config);
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| //    po.m_supportdata->emesh.load_holes(po.transformed_drainhole_points());
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|     
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|     // scaling for the sub operations
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|     double d = objectstep_scale * OBJ_STEP_LEVELS[slaposSupportTree] / 100.0;
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|     double init = current_status();
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|     sla::JobController ctl;
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|     
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|     ctl.statuscb = [this, d, init](unsigned st, const std::string &logmsg) {
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|         double current = init + st * d;
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|         if (std::round(current_status()) < std::round(current))
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|             report_status(current, OBJ_STEP_LABELS(slaposSupportTree),
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|                           SlicingStatus::DEFAULT, logmsg);
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|     };
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|     ctl.stopcondition = [this]() { return canceled(); };
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|     ctl.cancelfn = [this]() { throw_if_canceled(); };
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|     
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|     po.m_supportdata->create_support_tree(ctl);
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|     
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|     if (!po.m_config.supports_enable.getBool()) return;
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|     
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|     throw_if_canceled();
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|     
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|     // Create the unified mesh
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|     auto rc = SlicingStatus::RELOAD_SCENE;
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|     
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|     // This is to prevent "Done." being displayed during merged_mesh()
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|     report_status(-1, L("Visualizing supports"));
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|     
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|     BOOST_LOG_TRIVIAL(debug) << "Processed support point count "
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|                              << po.m_supportdata->pts.size();
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|     
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|     // Check the mesh for later troubleshooting.
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|     if(po.support_mesh().empty())
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|         BOOST_LOG_TRIVIAL(warning) << "Support mesh is empty";
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|     
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|     report_status(-1, L("Visualizing supports"), rc);
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| }
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| 
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| void SLAPrint::Steps::generate_pad(SLAPrintObject &po) {
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|     // this step can only go after the support tree has been created
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|     // and before the supports had been sliced. (or the slicing has to be
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|     // repeated)
 | |
|     
 | |
|     if(po.m_config.pad_enable.getBool()) {
 | |
|         // Get the distilled pad configuration from the config
 | |
|         sla::PadConfig pcfg = make_pad_cfg(po.m_config);
 | |
|         
 | |
|         ExPolygons bp; // This will store the base plate of the pad.
 | |
|         double   pad_h             = pcfg.full_height();
 | |
|         const TriangleMesh &trmesh = po.transformed_mesh();
 | |
|         
 | |
|         if (!po.m_config.supports_enable.getBool() || pcfg.embed_object) {
 | |
|             // No support (thus no elevation) or zero elevation mode
 | |
|             // we sometimes call it "builtin pad" is enabled so we will
 | |
|             // get a sample from the bottom of the mesh and use it for pad
 | |
|             // creation.
 | |
|             sla::pad_blueprint(trmesh, bp, float(pad_h),
 | |
|                                float(po.m_config.layer_height.getFloat()),
 | |
|                                [this](){ throw_if_canceled(); });
 | |
|         }
 | |
|         
 | |
|         po.m_supportdata->support_tree_ptr->add_pad(bp, pcfg);
 | |
|         auto &pad_mesh = po.m_supportdata->support_tree_ptr->retrieve_mesh(sla::MeshType::Pad);
 | |
|         
 | |
|         if (!validate_pad(pad_mesh, pcfg))
 | |
|             throw std::runtime_error(
 | |
|                     L("No pad can be generated for this model with the "
 | |
|                       "current configuration"));
 | |
|         
 | |
|     } else if(po.m_supportdata && po.m_supportdata->support_tree_ptr) {
 | |
|         po.m_supportdata->support_tree_ptr->remove_pad();
 | |
|     }
 | |
|     
 | |
|     throw_if_canceled();
 | |
|     report_status(-1, L("Visualizing supports"), SlicingStatus::RELOAD_SCENE);
 | |
| }
 | |
| 
 | |
| // Slicing the support geometries similarly to the model slicing procedure.
 | |
| // If the pad had been added previously (see step "base_pool" than it will
 | |
| // be part of the slices)
 | |
| void SLAPrint::Steps::slice_supports(SLAPrintObject &po) {
 | |
|     auto& sd = po.m_supportdata;
 | |
|     
 | |
|     if(sd) sd->support_slices.clear();
 | |
|     
 | |
|     // Don't bother if no supports and no pad is present.
 | |
|     if (!po.m_config.supports_enable.getBool() && !po.m_config.pad_enable.getBool())
 | |
|         return;
 | |
|     
 | |
|     if(sd && sd->support_tree_ptr) {
 | |
|         auto heights = reserve_vector<float>(po.m_slice_index.size());
 | |
|         
 | |
|         for(auto& rec : po.m_slice_index) heights.emplace_back(rec.slice_level());
 | |
| 
 | |
|         sd->support_slices = sd->support_tree_ptr->slice(
 | |
|             heights, float(po.config().slice_closing_radius.value));
 | |
|     }
 | |
|     
 | |
|     for (size_t i = 0; i < sd->support_slices.size() && i < po.m_slice_index.size(); ++i) 
 | |
|         po.m_slice_index[i].set_support_slice_idx(po, i);
 | |
|     
 | |
|     apply_printer_corrections(po, soSupport);
 | |
| 
 | |
|     // Using RELOAD_SLA_PREVIEW to tell the Plater to pass the update
 | |
|     // status to the 3D preview to load the SLA slices.
 | |
|     report_status(-2, "", SlicingStatus::RELOAD_SLA_PREVIEW);
 | |
| }
 | |
| 
 | |
| using ClipperPoint  = ClipperLib::IntPoint;
 | |
| using ClipperPolygon = ClipperLib::Polygon; // see clipper_polygon.hpp in libnest2d
 | |
| using ClipperPolygons = std::vector<ClipperPolygon>;
 | |
| 
 | |
| static ClipperPolygons polyunion(const ClipperPolygons &subjects)
 | |
| {
 | |
|     ClipperLib::Clipper clipper;
 | |
|     
 | |
|     bool closed = true;
 | |
|     
 | |
|     for(auto& path : subjects) {
 | |
|         clipper.AddPath(path.Contour, ClipperLib::ptSubject, closed);
 | |
|         clipper.AddPaths(path.Holes, ClipperLib::ptSubject, closed);
 | |
|     }
 | |
|     
 | |
|     auto mode = ClipperLib::pftPositive;
 | |
|     
 | |
|     return libnest2d::clipper_execute(clipper, ClipperLib::ctUnion, mode, mode);
 | |
| }
 | |
| 
 | |
| static ClipperPolygons polydiff(const ClipperPolygons &subjects, const ClipperPolygons& clips)
 | |
| {
 | |
|     ClipperLib::Clipper clipper;
 | |
|     
 | |
|     bool closed = true;
 | |
|     
 | |
|     for(auto& path : subjects) {
 | |
|         clipper.AddPath(path.Contour, ClipperLib::ptSubject, closed);
 | |
|         clipper.AddPaths(path.Holes, ClipperLib::ptSubject, closed);
 | |
|     }
 | |
|     
 | |
|     for(auto& path : clips) {
 | |
|         clipper.AddPath(path.Contour, ClipperLib::ptClip, closed);
 | |
|         clipper.AddPaths(path.Holes, ClipperLib::ptClip, closed);
 | |
|     }
 | |
|     
 | |
|     auto mode = ClipperLib::pftPositive;
 | |
|     
 | |
|     return libnest2d::clipper_execute(clipper, ClipperLib::ctDifference, mode, mode);
 | |
| }
 | |
| 
 | |
| // get polygons for all instances in the object
 | |
| static ClipperPolygons get_all_polygons(const SliceRecord& record, SliceOrigin o)
 | |
| {
 | |
|     namespace sl = libnest2d::sl;
 | |
|     
 | |
|     if (!record.print_obj()) return {};
 | |
|     
 | |
|     ClipperPolygons polygons;
 | |
|     auto &input_polygons = record.get_slice(o);
 | |
|     auto &instances = record.print_obj()->instances();
 | |
|     bool is_lefthanded = record.print_obj()->is_left_handed();
 | |
|     polygons.reserve(input_polygons.size() * instances.size());
 | |
|     
 | |
|     for (const ExPolygon& polygon : input_polygons) {
 | |
|         if(polygon.contour.empty()) continue;
 | |
|         
 | |
|         for (size_t i = 0; i < instances.size(); ++i)
 | |
|         {
 | |
|             ClipperPolygon poly;
 | |
|             
 | |
|             // We need to reverse if is_lefthanded is true but
 | |
|             bool needreverse = is_lefthanded;
 | |
|             
 | |
|             // should be a move
 | |
|             poly.Contour.reserve(polygon.contour.size() + 1);
 | |
|             
 | |
|             auto& cntr = polygon.contour.points;
 | |
|             if(needreverse)
 | |
|                 for(auto it = cntr.rbegin(); it != cntr.rend(); ++it)
 | |
|                     poly.Contour.emplace_back(it->x(), it->y());
 | |
|             else
 | |
|                 for(auto& p : cntr)
 | |
|                     poly.Contour.emplace_back(p.x(), p.y());
 | |
|             
 | |
|             for(auto& h : polygon.holes) {
 | |
|                 poly.Holes.emplace_back();
 | |
|                 auto& hole = poly.Holes.back();
 | |
|                 hole.reserve(h.points.size() + 1);
 | |
|                 
 | |
|                 if(needreverse)
 | |
|                     for(auto it = h.points.rbegin(); it != h.points.rend(); ++it)
 | |
|                         hole.emplace_back(it->x(), it->y());
 | |
|                 else
 | |
|                     for(auto& p : h.points)
 | |
|                         hole.emplace_back(p.x(), p.y());
 | |
|             }
 | |
|             
 | |
|             if(is_lefthanded) {
 | |
|                 for(auto& p : poly.Contour) p.X = -p.X;
 | |
|                 for(auto& h : poly.Holes) for(auto& p : h) p.X = -p.X;
 | |
|             }
 | |
|             
 | |
|             sl::rotate(poly, double(instances[i].rotation));
 | |
|             sl::translate(poly, ClipperPoint{instances[i].shift.x(),
 | |
|                                              instances[i].shift.y()});
 | |
|             
 | |
|             polygons.emplace_back(std::move(poly));
 | |
|         }
 | |
|     }
 | |
|     
 | |
|     return polygons;
 | |
| }
 | |
| 
 | |
| void SLAPrint::Steps::initialize_printer_input()
 | |
| {
 | |
|     auto &printer_input = m_print->m_printer_input;
 | |
|     
 | |
|     // clear the rasterizer input
 | |
|     printer_input.clear();
 | |
|     
 | |
|     size_t mx = 0;
 | |
|     for(SLAPrintObject * o : m_print->m_objects) {
 | |
|         if(auto m = o->get_slice_index().size() > mx) mx = m;
 | |
|     }
 | |
|     
 | |
|     printer_input.reserve(mx);
 | |
|     
 | |
|     auto eps = coord_t(SCALED_EPSILON);
 | |
|     
 | |
|     for(SLAPrintObject * o : m_print->m_objects) {
 | |
|         coord_t gndlvl = o->get_slice_index().front().print_level() - ilhs;
 | |
|         
 | |
|         for(const SliceRecord& slicerecord : o->get_slice_index()) {
 | |
|             if (!slicerecord.is_valid())
 | |
|                 throw std::runtime_error(
 | |
|                     L("There are unprintable objects. Try to "
 | |
|                       "adjust support settings to make the "
 | |
|                       "objects printable."));
 | |
| 
 | |
|             coord_t lvlid = slicerecord.print_level() - gndlvl;
 | |
|             
 | |
|             // Neat trick to round the layer levels to the grid.
 | |
|             lvlid = eps * (lvlid / eps);
 | |
| 
 | |
|             auto it = std::lower_bound(printer_input.begin(),
 | |
|                                        printer_input.end(),
 | |
|                                        PrintLayer(lvlid));
 | |
| 
 | |
|             if(it == printer_input.end() || it->level() != lvlid)
 | |
|                 it = printer_input.insert(it, PrintLayer(lvlid));
 | |
|             
 | |
|             
 | |
|             it->add(slicerecord);
 | |
|         }
 | |
|     }
 | |
| }
 | |
| 
 | |
| // Merging the slices from all the print objects into one slice grid and
 | |
| // calculating print statistics from the merge result.
 | |
| void SLAPrint::Steps::merge_slices_and_eval_stats() {
 | |
|     
 | |
|     initialize_printer_input();
 | |
|     
 | |
|     auto &print_statistics = m_print->m_print_statistics;
 | |
|     auto &printer_config   = m_print->m_printer_config;
 | |
|     auto &material_config  = m_print->m_material_config;
 | |
|     auto &printer_input    = m_print->m_printer_input;
 | |
|     
 | |
|     print_statistics.clear();
 | |
|     
 | |
|     // libnest calculates positive area for clockwise polygons, Slic3r is in counter-clockwise
 | |
|     auto areafn = [](const ClipperPolygon& poly) { return - libnest2d::sl::area(poly); };
 | |
|     
 | |
|     const double area_fill = printer_config.area_fill.getFloat()*0.01;// 0.5 (50%);
 | |
|     const double fast_tilt = printer_config.fast_tilt_time.getFloat();// 5.0;
 | |
|     const double slow_tilt = printer_config.slow_tilt_time.getFloat();// 8.0;
 | |
|     
 | |
|     const double init_exp_time = material_config.initial_exposure_time.getFloat();
 | |
|     const double exp_time      = material_config.exposure_time.getFloat();
 | |
|     
 | |
|     const int fade_layers_cnt = m_print->m_default_object_config.faded_layers.getInt();// 10 // [3;20]
 | |
|     
 | |
|     const auto width          = scaled<double>(printer_config.display_width.getFloat());
 | |
|     const auto height         = scaled<double>(printer_config.display_height.getFloat());
 | |
|     const double display_area = width*height;
 | |
|     
 | |
|     double supports_volume(0.0);
 | |
|     double models_volume(0.0);
 | |
|     
 | |
|     double estim_time(0.0);
 | |
|     
 | |
|     size_t slow_layers = 0;
 | |
|     size_t fast_layers = 0;
 | |
|     
 | |
|     const double delta_fade_time = (init_exp_time - exp_time) / (fade_layers_cnt + 1);
 | |
|     double fade_layer_time = init_exp_time;
 | |
|     
 | |
|     sla::ccr::SpinningMutex mutex;
 | |
|     using Lock = std::lock_guard<sla::ccr::SpinningMutex>;
 | |
|     
 | |
|     // Going to parallel:
 | |
|     auto printlayerfn = [
 | |
|             // functions and read only vars
 | |
|             areafn, area_fill, display_area, exp_time, init_exp_time, fast_tilt, slow_tilt, delta_fade_time,
 | |
|             
 | |
|             // write vars
 | |
|             &mutex, &models_volume, &supports_volume, &estim_time, &slow_layers,
 | |
|             &fast_layers, &fade_layer_time](PrintLayer& layer, size_t sliced_layer_cnt)
 | |
|     {
 | |
|         // vector of slice record references
 | |
|         auto& slicerecord_references = layer.slices();
 | |
|         
 | |
|         if(slicerecord_references.empty()) return;
 | |
|         
 | |
|         // Layer height should match for all object slices for a given level.
 | |
|         const auto l_height = double(slicerecord_references.front().get().layer_height());
 | |
|         
 | |
|         // Calculation of the consumed material
 | |
|         
 | |
|         ClipperPolygons model_polygons;
 | |
|         ClipperPolygons supports_polygons;
 | |
|         
 | |
|         size_t c = std::accumulate(layer.slices().begin(),
 | |
|                                    layer.slices().end(),
 | |
|                                    size_t(0),
 | |
|                                    [](size_t a, const SliceRecord &sr) {
 | |
|             return a + sr.get_slice(soModel).size();
 | |
|         });
 | |
|         
 | |
|         model_polygons.reserve(c);
 | |
|         
 | |
|         c = std::accumulate(layer.slices().begin(),
 | |
|                             layer.slices().end(),
 | |
|                             size_t(0),
 | |
|                             [](size_t a, const SliceRecord &sr) {
 | |
|             return a + sr.get_slice(soModel).size();
 | |
|         });
 | |
|         
 | |
|         supports_polygons.reserve(c);
 | |
|         
 | |
|         for(const SliceRecord& record : layer.slices()) {
 | |
|             
 | |
|             ClipperPolygons modelslices = get_all_polygons(record, soModel);
 | |
|             for(ClipperPolygon& p_tmp : modelslices) model_polygons.emplace_back(std::move(p_tmp));
 | |
|         
 | |
|             ClipperPolygons supportslices = get_all_polygons(record, soSupport);
 | |
|             for(ClipperPolygon& p_tmp : supportslices) supports_polygons.emplace_back(std::move(p_tmp));
 | |
|         
 | |
|         }
 | |
|         
 | |
|         model_polygons = polyunion(model_polygons);
 | |
|         double layer_model_area = 0;
 | |
|         for (const ClipperPolygon& polygon : model_polygons)
 | |
|             layer_model_area += areafn(polygon);
 | |
|         
 | |
|         if (layer_model_area < 0 || layer_model_area > 0) {
 | |
|             Lock lck(mutex); models_volume += layer_model_area * l_height;
 | |
|         }
 | |
|         
 | |
|         if(!supports_polygons.empty()) {
 | |
|             if(model_polygons.empty()) supports_polygons = polyunion(supports_polygons);
 | |
|             else supports_polygons = polydiff(supports_polygons, model_polygons);
 | |
|             // allegedly, union of subject is done withing the diff according to the pftPositive polyFillType
 | |
|         }
 | |
|         
 | |
|         double layer_support_area = 0;
 | |
|         for (const ClipperPolygon& polygon : supports_polygons)
 | |
|             layer_support_area += areafn(polygon);
 | |
|         
 | |
|         if (layer_support_area < 0 || layer_support_area > 0) {
 | |
|             Lock lck(mutex); supports_volume += layer_support_area * l_height;
 | |
|         }
 | |
|         
 | |
|         // Here we can save the expensively calculated polygons for printing
 | |
|         ClipperPolygons trslices;
 | |
|         trslices.reserve(model_polygons.size() + supports_polygons.size());
 | |
|         for(ClipperPolygon& poly : model_polygons) trslices.emplace_back(std::move(poly));
 | |
|         for(ClipperPolygon& poly : supports_polygons) trslices.emplace_back(std::move(poly));
 | |
|         
 | |
|         layer.transformed_slices(polyunion(trslices));
 | |
|         
 | |
|         // Calculation of the slow and fast layers to the future controlling those values on FW
 | |
|         
 | |
|         const bool is_fast_layer = (layer_model_area + layer_support_area) <= display_area*area_fill;
 | |
|         const double tilt_time = is_fast_layer ? fast_tilt : slow_tilt;
 | |
|         
 | |
|         { Lock lck(mutex);
 | |
|             if (is_fast_layer)
 | |
|                 fast_layers++;
 | |
|             else
 | |
|                 slow_layers++;
 | |
|             
 | |
|             
 | |
|             // Calculation of the printing time
 | |
|             
 | |
|             if (sliced_layer_cnt < 3)
 | |
|                 estim_time += init_exp_time;
 | |
|             else if (fade_layer_time > exp_time)
 | |
|             {
 | |
|                 fade_layer_time -= delta_fade_time;
 | |
|                 estim_time += fade_layer_time;
 | |
|             }
 | |
|             else
 | |
|                 estim_time += exp_time;
 | |
|             
 | |
|             estim_time += tilt_time;
 | |
|         }
 | |
|     };
 | |
|     
 | |
|     // sequential version for debugging:
 | |
|     // for(size_t i = 0; i < m_printer_input.size(); ++i) printlayerfn(i);
 | |
|     sla::ccr::enumerate(printer_input.begin(), printer_input.end(), printlayerfn);
 | |
|     
 | |
|     auto SCALING2 = SCALING_FACTOR * SCALING_FACTOR;
 | |
|     print_statistics.support_used_material = supports_volume * SCALING2;
 | |
|     print_statistics.objects_used_material = models_volume  * SCALING2;
 | |
|     
 | |
|     // Estimated printing time
 | |
|     // A layers count o the highest object
 | |
|     if (printer_input.size() == 0)
 | |
|         print_statistics.estimated_print_time = std::nan("");
 | |
|     else
 | |
|         print_statistics.estimated_print_time = estim_time;
 | |
|     
 | |
|     print_statistics.fast_layers_count = fast_layers;
 | |
|     print_statistics.slow_layers_count = slow_layers;
 | |
|     
 | |
|     report_status(-2, "", SlicingStatus::RELOAD_SLA_PREVIEW);
 | |
| }
 | |
| 
 | |
| // Rasterizing the model objects, and their supports
 | |
| void SLAPrint::Steps::rasterize()
 | |
| {
 | |
|     if(canceled() || !m_print->m_printer) return;
 | |
|     
 | |
|     // coefficient to map the rasterization state (0-99) to the allocated
 | |
|     // portion (slot) of the process state
 | |
|     double sd = (100 - max_objstatus) / 100.0;
 | |
|     
 | |
|     // slot is the portion of 100% that is realted to rasterization
 | |
|     unsigned slot = PRINT_STEP_LEVELS[slapsRasterize];
 | |
|     
 | |
|     // pst: previous state
 | |
|     double pst = current_status();
 | |
|     
 | |
|     double increment = (slot * sd) / m_print->m_printer_input.size();
 | |
|     double dstatus = current_status();
 | |
|     
 | |
|     sla::ccr::SpinningMutex slck;
 | |
|     using Lock = std::lock_guard<sla::ccr::SpinningMutex>;
 | |
|     
 | |
|     // procedure to process one height level. This will run in parallel
 | |
|     auto lvlfn =
 | |
|         [this, &slck, increment, &dstatus, &pst]
 | |
|         (sla::RasterBase& raster, size_t idx)
 | |
|     {
 | |
|         PrintLayer& printlayer = m_print->m_printer_input[idx];
 | |
|         if(canceled()) return;
 | |
|         
 | |
|         for (const ClipperLib::Polygon& poly : printlayer.transformed_slices())
 | |
|             raster.draw(poly);
 | |
|         
 | |
|         // Status indication guarded with the spinlock
 | |
|         {
 | |
|             Lock lck(slck);
 | |
|             dstatus += increment;
 | |
|             double st = std::round(dstatus);
 | |
|             if(st > pst) {
 | |
|                 report_status(st, PRINT_STEP_LABELS(slapsRasterize));
 | |
|                 pst = st;
 | |
|             }
 | |
|         }
 | |
|     };
 | |
|     
 | |
|     // last minute escape
 | |
|     if(canceled()) return;
 | |
|     
 | |
|     // Print all the layers in parallel
 | |
|     m_print->m_printer->draw_layers(m_print->m_printer_input.size(), lvlfn);
 | |
| }
 | |
| 
 | |
| std::string SLAPrint::Steps::label(SLAPrintObjectStep step)
 | |
| {
 | |
|     return OBJ_STEP_LABELS(step);
 | |
| }
 | |
| 
 | |
| std::string SLAPrint::Steps::label(SLAPrintStep step)
 | |
| {
 | |
|     return PRINT_STEP_LABELS(step);
 | |
| }
 | |
| 
 | |
| double SLAPrint::Steps::progressrange(SLAPrintObjectStep step) const
 | |
| {
 | |
|     return OBJ_STEP_LEVELS[step] * objectstep_scale;
 | |
| }
 | |
| 
 | |
| double SLAPrint::Steps::progressrange(SLAPrintStep step) const
 | |
| {
 | |
|     return PRINT_STEP_LEVELS[step] * (100 - max_objstatus) / 100.0;
 | |
| }
 | |
| 
 | |
| void SLAPrint::Steps::execute(SLAPrintObjectStep step, SLAPrintObject &obj)
 | |
| {
 | |
|     switch(step) {
 | |
|     case slaposHollowing: hollow_model(obj); break;
 | |
|     case slaposDrillHoles: drill_holes(obj); break;
 | |
|     case slaposObjectSlice: slice_model(obj); break;
 | |
|     case slaposSupportPoints:  support_points(obj); break;
 | |
|     case slaposSupportTree: support_tree(obj); break;
 | |
|     case slaposPad: generate_pad(obj); break;
 | |
|     case slaposSliceSupports: slice_supports(obj); break;
 | |
|     case slaposCount: assert(false);
 | |
|     }
 | |
| }
 | |
| 
 | |
| void SLAPrint::Steps::execute(SLAPrintStep step)
 | |
| {
 | |
|     switch (step) {
 | |
|     case slapsMergeSlicesAndEval: merge_slices_and_eval_stats(); break;
 | |
|     case slapsRasterize: rasterize(); break;
 | |
|     case slapsCount: assert(false);
 | |
|     }
 | |
| }
 | |
| 
 | |
| }
 | 
