Added nonlinear Values
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commit
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@ -37,12 +37,15 @@ namespace gtsam {
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*/
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class GTSAM_EXPORT HybridValues {
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private:
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// VectorValue stored the continuous components of the HybridValues.
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/// Continuous multi-dimensional vectors for \class GaussianFactor.
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VectorValues continuous_;
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// DiscreteValue stored the discrete components of the HybridValues.
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/// Discrete values for \class DiscreteFactor.
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DiscreteValues discrete_;
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/// Continuous, differentiable manifold values for \class NonlinearFactor.
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Values nonlinear_;
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public:
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/// @name Standard Constructors
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/// @{
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@ -54,6 +57,11 @@ class GTSAM_EXPORT HybridValues {
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HybridValues(const VectorValues& cv, const DiscreteValues& dv)
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: continuous_(cv), discrete_(dv){};
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/// Construct from all values types.
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HybridValues(const VectorValues& cv, const DiscreteValues& dv,
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const Values& v)
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: continuous_(cv), discrete_(dv), nonlinear_(v){};
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/// @}
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/// @name Testable
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/// @{
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@ -77,26 +85,30 @@ class GTSAM_EXPORT HybridValues {
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/// @name Interface
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/// @{
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/// Return the discrete MPE assignment
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const DiscreteValues& discrete() const { return discrete_; }
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/// Return the delta update for the continuous vectors
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/// Return the multi-dimensional vector values.
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const VectorValues& continuous() const { return continuous_; }
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/// Check whether a variable with key \c j exists in DiscreteValue.
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bool existsDiscrete(Key j) { return (discrete_.find(j) != discrete_.end()); };
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/// Return the discrete values.
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const DiscreteValues& discrete() const { return discrete_; }
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/// Check whether a variable with key \c j exists in VectorValue.
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/// Return the nonlinear values.
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const Values& nonlinear() const { return nonlinear_; }
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/// Check whether a variable with key \c j exists in VectorValues.
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bool existsVector(Key j) { return continuous_.exists(j); };
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/// Check whether a variable with key \c j exists.
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bool exists(Key j) { return existsDiscrete(j) || existsVector(j); };
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/// Check whether a variable with key \c j exists in DiscreteValues.
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bool existsDiscrete(Key j) { return (discrete_.find(j) != discrete_.end()); };
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/** Insert a discrete \c value with key \c j. Replaces the existing value if
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* the key \c j is already used.
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* @param value The vector to be inserted.
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* @param j The index with which the value will be associated. */
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void insert(Key j, size_t value) { discrete_[j] = value; };
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/// Check whether a variable with key \c j exists in values.
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bool existsNonlinear(Key j) {
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return (nonlinear_.find(j) != nonlinear_.end());
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};
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/// Check whether a variable with key \c j exists.
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bool exists(Key j) {
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return existsVector(j) || existsDiscrete(j) || existsNonlinear(j);
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};
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/** Insert a vector \c value with key \c j. Throws an invalid_argument
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* exception if the key \c j is already used.
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@ -104,6 +116,12 @@ class GTSAM_EXPORT HybridValues {
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* @param j The index with which the value will be associated. */
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void insert(Key j, const Vector& value) { continuous_.insert(j, value); }
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/** Insert a discrete \c value with key \c j. Replaces the existing value if
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* the key \c j is already used.
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* @param value The vector to be inserted.
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* @param j The index with which the value will be associated. */
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void insert(Key j, size_t value) { discrete_[j] = value; };
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/** Insert all continuous values from \c values. Throws an invalid_argument
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* exception if any keys to be inserted are already used. */
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HybridValues& insert(const VectorValues& values) {
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@ -118,28 +136,36 @@ class GTSAM_EXPORT HybridValues {
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return *this;
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}
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/** Insert all values from \c values. Throws an invalid_argument
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* exception if any keys to be inserted are already used. */
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HybridValues& insert(const Values& values) {
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nonlinear_.insert(values);
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return *this;
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}
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/** Insert all values from \c values. Throws an invalid_argument exception if
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* any keys to be inserted are already used. */
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HybridValues& insert(const HybridValues& values) {
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continuous_.insert(values.continuous());
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discrete_.insert(values.discrete());
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nonlinear_.insert(values.nonlinear());
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return *this;
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}
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// TODO(Shangjie)- insert_or_assign() , similar to Values.h
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/**
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* Read/write access to the discrete value with key \c j, throws
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* std::out_of_range if \c j does not exist.
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*/
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size_t& atDiscrete(Key j) { return discrete_.at(j); };
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/**
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* Read/write access to the vector value with key \c j, throws
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* std::out_of_range if \c j does not exist.
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*/
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Vector& at(Key j) { return continuous_.at(j); };
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/**
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* Read/write access to the discrete value with key \c j, throws
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* std::out_of_range if \c j does not exist.
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*/
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size_t& atDiscrete(Key j) { return discrete_.at(j); };
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/** For all key/value pairs in \c values, replace continuous values with
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* corresponding keys in this object with those in \c values. Throws
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* std::out_of_range if any keys in \c values are not present in this object.
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