Using vector instead of deque in VariableIndex, BayesTree::Nodes, and GaussianISAM::Dims. In practice it appears to be faster due to smart reallocation strategies (still need to investigate whether we should use reserve, resize, or neither).
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713cdebc27
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06f836c0a7
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@ -92,7 +92,7 @@ namespace gtsam {
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};
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/** Map from indices to Clique */
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typedef std::deque<sharedClique> Nodes;
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typedef std::vector<sharedClique> Nodes;
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protected:
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@ -68,7 +68,7 @@ void VariableIndex::outputMetisFormat(ostream& os) const {
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/* ************************************************************************* */
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void VariableIndex::permuteInPlace(const Permutation& permutation) {
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// Create new index and move references to data into it in permuted order
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deque<VariableIndex::Factors> newIndex(this->size());
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vector<VariableIndex::Factors> newIndex(this->size());
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for(Index i = 0; i < newIndex.size(); ++i)
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newIndex[i].swap(this->index_[permutation[i]]);
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@ -48,7 +48,7 @@ public:
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typedef Factors::const_iterator Factor_const_iterator;
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protected:
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std::deque<Factors> index_;
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std::vector<Factors> index_;
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size_t nFactors_; // Number of factors in the original factor graph.
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size_t nEntries_; // Sum of involved variable counts of each factor.
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@ -30,11 +30,11 @@ namespace gtsam {
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class GaussianISAM : public ISAM<GaussianConditional> {
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typedef ISAM<GaussianConditional> Super;
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std::deque<size_t, boost::fast_pool_allocator<size_t> > dims_;
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std::vector<size_t> dims_;
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public:
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typedef std::deque<size_t, boost::fast_pool_allocator<size_t> > Dims;
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typedef std::vector<size_t> Dims;
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/** Create an empty Bayes Tree */
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GaussianISAM() : Super() {}
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