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OrcaSlicer/src/libslic3r/FilamentGroup.hpp
T
Hanif Koh 893cb6fd9d Add Missing Includes Across src/libslic3r
Every libslic3r source and header now directly includes the headers declaring what it uses, rather than relying on the precompiled header or transitive includes. Generated with clang-tidy misc-include-cleaner, with libslic3r headers spelled libslic3r/... so they resolve outside the library's private include paths. MultiMaterialSegmentation.hpp, Support/SupportParameters.hpp and Format/STEP.hpp are made self-contained by hand.
2026-10-03 13:46:08 +08:00

274 lines
12 KiB
C++

#ifndef FILAMENT_GROUP_HPP
#define FILAMENT_GROUP_HPP
#include <chrono>
#include <functional>
#include <memory>
#include <numeric>
#include <optional>
#include <set>
#include <map>
#include <string>
#include <unordered_map>
#include <utility>
#include <vector>
#include <queue>
#include "GCode/ToolOrderUtils.hpp"
#include "FilamentGroupUtils.hpp"
#include "PrintConfig.hpp"
#include "MultiNozzleUtils.hpp"
const static int DEFAULT_CLUSTER_SIZE = 16;
const static int ABSOLUTE_FLUSH_GAP_TOLERANCE = 10;
namespace Slic3r
{
std::vector<unsigned int>collect_sorted_used_filaments(const std::vector<std::vector<unsigned int>>& layer_filaments);
enum FGStrategy {
BestCost,
BestFit
};
enum FGMode {
FlushMode,
MatchMode
};
namespace FilamentGroupUtils
{
struct FlushTimeMachine
{
private:
std::chrono::high_resolution_clock::time_point start;
public:
void time_machine_start()
{
start = std::chrono::high_resolution_clock::now();
}
int time_machine_end()
{
auto end = std::chrono::high_resolution_clock::now();
auto duration = std::chrono::duration_cast<std::chrono::milliseconds>(end - start);
return duration.count();
}
};
struct MemoryedGroup {
MemoryedGroup() = default;
MemoryedGroup(const std::vector<int>& group_, const double cost_, const int prefer_level_) :group(group_), cost(cost_), prefer_level(prefer_level_) {}
bool operator>(const MemoryedGroup& other) const {
return prefer_level < other.prefer_level || (prefer_level == other.prefer_level && cost > other.cost);
}
double cost{ 0 };
int prefer_level{ 0 };
std::vector<int>group;
};
using MemoryedGroupHeap = std::priority_queue<MemoryedGroup, std::vector<MemoryedGroup>, std::greater<MemoryedGroup>>;
void update_memoryed_groups(const MemoryedGroup& item,const double gap_threshold, MemoryedGroupHeap& groups);
}
struct FilamentGroupContext
{
struct ModelInfo {
std::vector<FlushMatrix> flush_matrix;
std::vector<std::vector<unsigned int>> layer_filaments;
std::vector<FilamentGroupUtils::FilamentInfo> filament_info;
std::vector<std::string> filament_ids;
std::vector<std::set<int>> unprintable_filaments;
std::map<int, std::set<NozzleVolumeType>> unprintable_volumes;
} model_info;
struct GroupInfo {
int total_filament_num;
double max_gap_threshold;
FGMode mode;
FGStrategy strategy;
bool ignore_ext_filament;
bool has_filament_switcher = false;
std::vector<int> filament_volume_map;
} group_info;
struct MachineInfo {
std::vector<int> max_group_size;
std::vector<std::vector<FilamentGroupUtils::MachineFilamentInfo>> machine_filament_info;
std::vector<bool> prefer_non_model_filament;
int master_extruder_id;
} machine_info;
struct SpeedInfo{
std::unordered_map<int,std::unordered_map<int,double>> filament_print_time;
double extruder_change_time;
double filament_change_time;
bool group_with_time;
MultiNozzleUtils::FilamentChangeTimeParams change_time_params;
std::vector<bool> ams_preload_enabled;
} speed_info;
struct NozzleInfo {
std::map<int, std::vector<int>> extruder_nozzle_list;
std::vector<MultiNozzleUtils::NozzleInfo> nozzle_list;
std::unordered_map<int, int> nozzle_status;
} nozzle_info;
};
std::vector<int> select_best_group_for_ams(const std::vector<std::vector<int>> &filament_to_nozzles,
const std::vector<MultiNozzleUtils::NozzleInfo>& nozzle_list,
const std::vector<unsigned int>& used_filaments,
const std::vector<FilamentGroupUtils::FilamentInfo>& used_filament_info,
const std::vector<std::vector<FilamentGroupUtils::MachineFilamentInfo>>& machine_filament_info,
const bool has_filament_switcher = false,
const double color_delta_threshold = 20);
class FlushDistanceEvaluator
{
public:
FlushDistanceEvaluator(const std::vector<FlushMatrix>& flush_matrix,const std::vector<unsigned int>&used_filaments,const std::vector<std::vector<unsigned int>>& layer_filaments, double p = 0.65);
~FlushDistanceEvaluator() = default;
double get_distance(int idx_a, int idx_b, int extruder_id) const;
private:
std::vector<std::vector<std::vector<float>>>m_distance_matrix;
};
class TimeEvaluator
{
public:
TimeEvaluator(const FilamentGroupContext::SpeedInfo& speed_info) : m_speed_info(speed_info) {}
double get_estimated_time(const std::vector<int>& filament_map) const;
private:
FilamentGroupContext::SpeedInfo m_speed_info;
};
// Search budget for the k-medoids clustering, an anytime search. Each restart is seeded from its
// own index, so what it returns depends on how many restarts complete before the clock expires,
// and therefore on the speed of the machine. A timeout_ms <= 0 removes the clock and bounds the
// search by max_restarts alone.
struct ClusteringBudget
{
int timeout_ms = 3000;
int max_restarts = 30;
};
class FilamentGroup
{
using MemoryedGroup = FilamentGroupUtils::MemoryedGroup;
using MemoryedGroupHeap = FilamentGroupUtils::MemoryedGroupHeap;
public:
explicit FilamentGroup(const FilamentGroupContext& ctx_) :ctx(ctx_) {}
public:
void set_clustering_budget(const ClusteringBudget& budget) { m_clustering_budget = budget; }
std::vector<int> calc_filament_group(int * cost = nullptr);
std::vector<std::vector<int>> get_memoryed_groups()const { return m_memoryed_groups; }
public:
std::vector<int> calc_filament_group_for_match(int* cost = nullptr);
std::vector<int> calc_filament_group_for_flush(int* cost = nullptr);
std::vector<int> calc_filament_group_for_tpu(int* cost = nullptr);
private:
std::vector<int> calc_min_flush_group(int* cost = nullptr);
std::vector<int> calc_group_by_enum(int k, const std::vector<unsigned int>& used_filaments,
const std::unordered_map<int, std::vector<int>>& unplaceable_limits, int* cost = nullptr);
std::vector<int> calc_group_by_kmedoids(int k, const std::vector<unsigned int>& used_filaments,
const std::unordered_map<int, std::vector<int>>& unplaceable_limits, int* cost = nullptr);
std::map<int, int> rebuild_unprintables(const std::vector<unsigned int>& used_filaments, const std::map<int,int>& extruder_unprintables);
std::unordered_map<int, std::vector<int>> rebuild_nozzle_unprintables(const std::vector<unsigned int>& used_filaments, const std::unordered_map<int, std::vector<int>>& extruder_unprintables, const std::vector<int>& filament_volume_map);
std::unordered_map<int, std::vector<int>> try_merge_filaments();
void rebuild_context(const std::unordered_map<int, std::vector<int>>& merged_filaments);
std::vector<int> seperate_merged_filaments(const std::vector<int>& filament_map, const std::unordered_map<int,std::vector<int>>& merged_filaments );
private:
FilamentGroupContext ctx;
MemoryedGroupHeap m_memoryed_heap;
std::vector<std::vector<int>> m_memoryed_groups;
ClusteringBudget m_clustering_budget;
public:
std::optional<std::function<bool(int, std::vector<int>&)>> get_custom_seq;
};
std::vector<int> calc_filament_group_for_manual_multi_nozzle(const std::vector<int>& filament_map_manual,const FilamentGroupContext& ctx);
std::vector<int> calc_filament_group_for_match_multi_nozzle(const FilamentGroupContext& ctx);
struct FilamentPlanRes
{
std::vector<int> fil_order;
std::vector<int> fil_nozzle_match;
};
std::vector<FilamentPlanRes> plan_filament_nozzle_mapping_and_order(const FilamentGroupContext& ctx);
class KMediods
{
protected:
using MemoryedGroupHeap = FilamentGroupUtils::MemoryedGroupHeap;
using MemoryedGroup = FilamentGroupUtils::MemoryedGroup;
public:
KMediods(const int k, const int elem_count, const std::shared_ptr<FlushDistanceEvaluator>& evaluator, int default_group_id = 0) {
m_k = k;
m_evaluator = evaluator;
m_max_cluster_size = std::vector<int>(k, DEFAULT_CLUSTER_SIZE);
m_elem_count = elem_count;
m_default_group_id = default_group_id;
}
// set max group size
void set_max_cluster_size(const std::vector<int>& group_size) { m_max_cluster_size = group_size; }
void set_cluster_group_size(const std::vector<std::pair<std::set<int>,int>>& cluster_group_size);
// key stores elem, value stores the cluster id that the elem must be placed
void set_placable_limits(const std::unordered_map<int, std::vector<int>>& placable_limits) { m_placeable_limits = placable_limits; }
// key stores elem, value stores the cluster id that the elem cannot be placed
void set_unplacable_limits(const std::unordered_map<int, std::vector<int>>& unplacable_limits) { m_unplaceable_limits = unplacable_limits; }
void set_memory_threshold(double threshold) { memory_threshold = threshold; }
MemoryedGroupHeap get_memoryed_groups()const { return memoryed_groups; }
void do_clustering(const FilamentGroupContext& context, const ClusteringBudget& budget);
std::vector<int> get_cluster_labels()const { return m_cluster_labels; }
protected:
bool have_enough_size(const std::vector<int>& cluster_size, const std::vector<std::pair<std::set<int>, int>>& cluster_group_size,int elem_count);
// calculate cluster distance
int calc_cost(const std::vector<int>& clusters, const std::vector<int>& cluster_centers, int cluster_id = -1);
// get initial cluster center
std::vector<int>init_cluster_center(const std::unordered_map<int, std::vector<int>>& placeable_limits, const std::unordered_map<int, std::vector<int>>& unplaceable_limits, const std::vector<int>& cluster_size, const std::vector<std::pair<std::set<int>, int>>& cluster_group_size, int seed);
// assign each elem to the cluster
std::vector<int> assign_cluster_label(const std::vector<int>& center, const std::unordered_map<int, std::vector<int>>& placeable_limits, const std::unordered_map<int, std::vector<int>>& unplaceable_limits, const std::vector<int>& group_size, const std::vector<std::pair<std::set<int>, int>>& cluster_group_size);
protected:
MemoryedGroupHeap memoryed_groups;
std::shared_ptr<FlushDistanceEvaluator>m_evaluator;
std::unordered_map<int, std::vector<int>> m_unplaceable_limits; // key: filament, value: nozzle ids it cannot be assigned to
std::unordered_map<int, std::vector<int>> m_placeable_limits; // key: filament, value: nozzle ids it must be assigned to
std::vector<int>m_max_cluster_size; // max number of filaments each nozzle can hold
std::vector<int>m_cluster_labels; // assignment result, resolved down to nozzle id
std::vector<std::pair<std::set<int>,int>> m_cluster_group_size;
std::vector<int> m_nozzle_to_extruder;
int m_k;
int m_elem_count;
int m_default_group_id{ 0 };
double memory_threshold{ 0 };
};
}
#endif // !FILAMENT_GROUP_HPP