| 1 | // ============================================================= // |
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| 2 | // // |
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| 3 | // File : CT_hash.cxx // |
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| 4 | // Purpose : // |
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| 5 | // // |
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| 6 | // Institute of Microbiology (Technical University Munich) // |
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| 7 | // http://www.arb-home.de/ // |
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| 8 | // // |
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| 9 | // ============================================================= // |
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| 10 | |
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| 11 | #include "CT_hash.hxx" |
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| 12 | #include "CT_ntree.hxx" |
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| 13 | #include "CT_ctree.hxx" |
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| 14 | #include <cmath> |
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| 15 | |
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| 16 | #include <arb_sort.h> |
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| 17 | |
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| 18 | PartRegistry::~PartRegistry() { |
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| 19 | for (PartSet::iterator p = parts.begin(); p != parts.end(); ++p) delete *p; |
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| 20 | for (PartSet::iterator p = artificial_parts.begin(); p != artificial_parts.end(); ++p) delete *p; |
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| 21 | for (PartVector::iterator p = sorted.begin(); p != sorted.end(); ++p) delete *p; |
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| 22 | } |
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| 23 | |
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| 24 | PART *PartRegistry::get_part() { |
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| 25 | /*! each call to get_part() returns the next part from the sorted PART-list. |
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| 26 | * build_sorted_list() has to be called once before. |
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| 27 | */ |
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| 28 | |
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| 29 | arb_assert(retrieval_phase()); // call build_sorted_list() before retrieving |
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| 30 | |
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| 31 | PART *p = NULp; |
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| 32 | if (retrieved<sorted.size()) { |
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| 33 | std::swap(p, sorted[retrieved++]); |
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| 34 | } |
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| 35 | return p; |
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| 36 | } |
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| 37 | |
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| 38 | void PartRegistry::put_part_from_complete_tree(PART*& part) { |
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| 39 | //! insert part in PartRegistry (destroys/reassigns part) |
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| 40 | |
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| 41 | arb_assert(registration_phase()); |
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| 42 | part->standardize(); |
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| 43 | |
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| 44 | PartSet::iterator found = parts.find(part); |
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| 45 | |
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| 46 | if (found != parts.end()) { |
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| 47 | (*found)->addWeightAndLength(part); |
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| 48 | delete part; |
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| 49 | } |
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| 50 | else { |
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| 51 | parts.insert(part); |
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| 52 | } |
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| 53 | part = NULp; |
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| 54 | } |
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| 55 | |
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| 56 | void PartRegistry::put_artificial_part(PART*& part) { |
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| 57 | arb_assert(registration_phase()); |
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| 58 | part->standardize(); |
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| 59 | |
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| 60 | PartSet::iterator found = artificial_parts.find(part); |
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| 61 | if (found != artificial_parts.end()) { |
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| 62 | (*found)->addWeightAndLength(part); |
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| 63 | delete part; |
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| 64 | } |
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| 65 | else { |
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| 66 | artificial_parts.insert(part); |
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| 67 | } |
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| 68 | part = NULp; |
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| 69 | } |
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| 70 | |
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| 71 | void PartRegistry::put_part_from_partial_tree(PART*& part, const PART *partialTree) { |
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| 72 | //! insert part from partialTree into PartRegistry (destroys/reassigns part) |
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| 73 | // |
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| 74 | // Example: |
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| 75 | // |
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| 76 | // 'part': A---B (A=part, B=invs) |
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| 77 | // set of missing species: C |
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| 78 | // |
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| 79 | // A |
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| 80 | // / |
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| 81 | // assumed tree: C---+ |
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| 82 | // \ . |
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| 83 | // B |
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| 84 | // |
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| 85 | // inserted partitions: A---CB |
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| 86 | // AC---B |
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| 87 | // |
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| 88 | // Both partitions are inserted here. Since they mutually exclude each other, |
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| 89 | // only one of them can and will be inserted into the result tree. |
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| 90 | // |
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| 91 | // The algorithm assumes that all species missing in the partialTree, |
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| 92 | // reside on the bigger side of each branch of the partialTree. |
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| 93 | // |
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| 94 | // Therefore the partition representing that state is added with normal weight. |
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| 95 | // The opposite ("missing on smaller side of branch") is added with reduced |
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| 96 | // probability. |
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| 97 | // |
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| 98 | // Note: The PART 'C---AB' might exists at EACH branch in the deconstructed tree |
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| 99 | // and is inserted once globally (in deconstruct_partial_rootnode). |
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| 100 | |
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| 101 | arb_assert(registration_phase()); |
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| 102 | |
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| 103 | PART *invs = part->clone(); |
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| 104 | invs->invertInSuperset(partialTree); |
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| 105 | |
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| 106 | int diff = part->get_members() - invs->get_members(); |
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| 107 | if (diff != 0) { |
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| 108 | if (diff<0) std::swap(part, invs); |
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| 109 | // now part contains bigger partition |
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| 110 | |
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| 111 | // Note: adding 'part' means "add unknown species to smaller side of the partition" |
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| 112 | int edges_in_part = leafs_2_edges(part->get_members()+1, ROOTED); |
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| 113 | int edges_in_invs = leafs_2_edges(invs->get_members()+1, ROOTED); |
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| 114 | |
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| 115 | double part_prob = double(edges_in_invs)/edges_in_part; // probability for one unkown species to reside inside smaller set |
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| 116 | arb_assert(part_prob>0.0 && part_prob<1.0); |
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| 117 | |
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| 118 | int unknownCount = partialTree->get_nonmembers(); |
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| 119 | double all_in_part_prob = pow(part_prob, unknownCount); // probability ALL unkown species reside inside smaller set |
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| 120 | |
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| 121 | part->set_faked_weight(all_in_part_prob); // make "unknown in smaller" unlikely |
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| 122 | // -> reduces chance to be picked and bootstrap IF picked |
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| 123 | } |
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| 124 | // else, if both partitions have equal size -> simply add both |
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| 125 | |
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| 126 | put_part_from_complete_tree(part); // inserts 'A---CB' (i.e. missing species added to invs, which is smaller) |
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| 127 | put_part_from_complete_tree(invs); // inserts 'B---CA' (i.e. missing species added to part) |
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| 128 | } |
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| 129 | |
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| 130 | inline bool insertionOrder_less(const PART *p1, const PART *p2) { |
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| 131 | return p1->insertionOrder_cmp(p2)<0; |
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| 132 | } |
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| 133 | |
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| 134 | void PartRegistry::build_sorted_list(double overall_weight) { |
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| 135 | //! sort the parts into insertion order. |
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| 136 | |
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| 137 | arb_assert(!parts.empty()); // nothing has been added |
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| 138 | arb_assert(registration_phase()); |
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| 139 | |
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| 140 | merge_artificial_parts(); |
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| 141 | |
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| 142 | copy(parts.begin(), parts.end(), std::back_insert_iterator<PartVector>(sorted)); |
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| 143 | sort(sorted.begin(), sorted.end(), insertionOrder_less); |
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| 144 | |
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| 145 | parts.clear(); |
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| 146 | |
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| 147 | for (PartVector::iterator pi = sorted.begin(); pi != sorted.end(); ++pi) { |
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| 148 | (*pi)->takeMean(overall_weight); |
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| 149 | } |
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| 150 | |
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| 151 | arb_assert(retrieval_phase()); |
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| 152 | } |
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| 153 | |
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| 154 | void PartRegistry::merge_artificial_parts() { |
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| 155 | /*! 'artificial_parts' contains those partitions that did not occur in |
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| 156 | * one PARTIAL input tree. |
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| 157 | * |
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| 158 | * Not-yet-registered artificial_parts will be registered here. |
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| 159 | * Their weight is faked to zero (aka "never occurs"). |
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| 160 | * |
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| 161 | * Already registered artificial_parts are only skipped -> their bootstrap |
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| 162 | * will be set correctly (just like when the branch as such does not exist |
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| 163 | * in a non-partial tree). |
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| 164 | */ |
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| 165 | |
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| 166 | for (PartSet::iterator arti = artificial_parts.begin(); arti != artificial_parts.end(); ++arti) { |
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| 167 | if (parts.find(*arti) == parts.end()) { |
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| 168 | // partition was not added by any known edge -> add plain artificial edge |
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| 169 | (*arti)->set_faked_weight(0.0); // never occurs (implicates length=1.0; see get_len()) |
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| 170 | parts.insert(*arti); |
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| 171 | } |
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| 172 | else { |
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| 173 | delete *arti; |
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| 174 | } |
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| 175 | } |
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| 176 | artificial_parts.clear(); |
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| 177 | } |
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| 178 | |
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