250 lines
7.5 KiB
C++
250 lines
7.5 KiB
C++
/* ----------------------------------------------------------------------------
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* GTSAM Copyright 2010, Georgia Tech Research Corporation,
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* Atlanta, Georgia 30332-0415
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* All Rights Reserved
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* Authors: Frank Dellaert, et al. (see THANKS for the full author list)
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* See LICENSE for the license information
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* -------------------------------------------------------------------------- */
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/**
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* @file Expression.h
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* @date September 18, 2014
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* @author Frank Dellaert
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* @author Paul Furgale
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* @brief Expressions for Block Automatic Differentiation
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*/
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#pragma once
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#include "Expression-inl.h"
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#include <gtsam/base/FastVector.h>
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#include <gtsam/inference/Symbol.h>
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#include <boost/bind.hpp>
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#include <boost/range/adaptor/map.hpp>
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#include <boost/range/algorithm.hpp>
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class ExpressionFactorShallowTest;
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namespace gtsam {
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// Forward declare
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template<typename T> class ExpressionFactor;
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/**
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* Expression class that supports automatic differentiation
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*/
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template<typename T>
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class Expression {
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public:
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/// Define type so we can apply it as a meta-function
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typedef Expression<T> type;
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private:
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// Paul's trick shared pointer, polymorphic root of entire expression tree
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boost::shared_ptr<ExpressionNode<T> > root_;
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public:
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// Construct a constant expression
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Expression(const T& value) :
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root_(new ConstantExpression<T>(value)) {
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}
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// Construct a leaf expression, with Key
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Expression(const Key& key) :
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root_(new LeafExpression<T>(key)) {
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}
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// Construct a leaf expression, with Symbol
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Expression(const Symbol& symbol) :
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root_(new LeafExpression<T>(symbol)) {
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}
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// Construct a leaf expression, creating Symbol
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Expression(unsigned char c, size_t j) :
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root_(new LeafExpression<T>(Symbol(c, j))) {
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}
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/// Construct a nullary method expression
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template<typename A>
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Expression(const Expression<A>& expression,
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T (A::*method)(typename OptionalJacobian<T, A>::type) const) :
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root_(new UnaryExpression<T, A>(boost::bind(method, _1, _2), expression)) {
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}
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/// Construct a unary function expression
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template<typename A>
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Expression(typename UnaryExpression<T, A>::Function function,
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const Expression<A>& expression) :
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root_(new UnaryExpression<T, A>(function, expression)) {
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}
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/// Construct a unary method expression
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template<typename A1, typename A2>
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Expression(const Expression<A1>& expression1,
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T (A1::*method)(const A2&, typename OptionalJacobian<T, A1>::type,
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typename OptionalJacobian<T, A2>::type) const,
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const Expression<A2>& expression2) :
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root_(
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new BinaryExpression<T, A1, A2>(boost::bind(method, _1, _2, _3, _4),
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expression1, expression2)) {
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}
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/// Construct a binary function expression
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template<typename A1, typename A2>
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Expression(typename BinaryExpression<T, A1, A2>::Function function,
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const Expression<A1>& expression1, const Expression<A2>& expression2) :
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root_(new BinaryExpression<T, A1, A2>(function, expression1, expression2)) {
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}
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/// Construct a ternary function expression
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template<typename A1, typename A2, typename A3>
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Expression(typename TernaryExpression<T, A1, A2, A3>::Function function,
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const Expression<A1>& expression1, const Expression<A2>& expression2,
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const Expression<A3>& expression3) :
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root_(
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new TernaryExpression<T, A1, A2, A3>(function, expression1,
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expression2, expression3)) {
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}
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/// Return root
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const boost::shared_ptr<ExpressionNode<T> >& root() const {
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return root_;
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}
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// Return size needed for memory buffer in traceExecution
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size_t traceSize() const {
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return root_->traceSize();
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}
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/// Return keys that play in this expression
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std::set<Key> keys() const {
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return root_->keys();
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}
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/// Return dimensions for each argument, as a map
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void dims(std::map<Key, int>& map) const {
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root_->dims(map);
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}
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/// return keys and dimensions as vectors in same order
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std::pair<FastVector<Key>, FastVector<int> > keysAndDims() const {
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std::map<Key, int> map;
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dims(map);
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size_t n = map.size();
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FastVector<Key> keys(n);
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boost::copy(map | boost::adaptors::map_keys, keys.begin());
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FastVector<int> dims(n);
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boost::copy(map | boost::adaptors::map_values, dims.begin());
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return make_pair(keys, dims);
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}
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/**
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* @brief Return value and optional derivatives, reverse AD version
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* Notes: this is not terribly efficient, and H should have correct size.
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*/
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T value(const Values& values, boost::optional<std::vector<Matrix>&> H =
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boost::none) const {
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if (H) {
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// Get keys and dimensions
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FastVector<Key> keys;
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FastVector<int> dims;
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boost::tie(keys, dims) = keysAndDims();
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// H should be pre-allocated
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assert(H->size()==keys.size());
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// Pre-allocate and zero VerticalBlockMatrix
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static const int Dim = traits::dimension<T>::value;
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VerticalBlockMatrix Ab(dims, Dim);
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Ab.matrix().setZero();
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JacobianMap jacobianMap(keys, Ab);
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// Call unsafe version
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T result = value(values, jacobianMap);
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// Copy blocks into the vector of jacobians passed in
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for (DenseIndex i = 0; i < static_cast<DenseIndex>(keys.size()); i++)
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H->at(i) = Ab(i);
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return result;
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} else {
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// no derivatives needed, just return value
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return root_->value(values);
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}
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}
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private:
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/// trace execution, very unsafe
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T traceExecution(const Values& values, ExecutionTrace<T>& trace,
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ExecutionTraceStorage* traceStorage) const {
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return root_->traceExecution(values, trace, traceStorage);
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}
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/**
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* @brief Return value and derivatives, reverse AD version
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* This fairly unsafe method needs a JacobianMap with correctly allocated
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* and initialized VerticalBlockMatrix, hence is declared private.
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*/
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T value(const Values& values, JacobianMap& jacobians) const {
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// The following piece of code is absolutely crucial for performance.
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// We allocate a block of memory on the stack, which can be done at runtime
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// with modern C++ compilers. The traceExecution then fills this memory
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// with an execution trace, made up entirely of "Record" structs, see
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// the FunctionalNode class in expression-inl.h
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size_t size = traceSize();
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ExecutionTraceStorage traceStorage[size];
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ExecutionTrace<T> trace;
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T value(traceExecution(values, trace, traceStorage));
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trace.startReverseAD(jacobians);
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return value;
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}
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// be very selective on who can access these private methods:
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friend class ExpressionFactor<T>;
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friend class ::ExpressionFactorShallowTest;
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};
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// http://stackoverflow.com/questions/16260445/boost-bind-to-operator
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template<class T>
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struct apply_compose {
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typedef T result_type;
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static const int Dim = traits::dimension<T>::value;
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typedef Eigen::Matrix<double, Dim, Dim> Jacobian;
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T operator()(const T& x, const T& y, boost::optional<Jacobian&> H1,
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boost::optional<Jacobian&> H2) const {
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return x.compose(y, H1, H2);
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}
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};
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/// Construct a product expression, assumes T::compose(T) -> T
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template<typename T>
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Expression<T> operator*(const Expression<T>& expression1,
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const Expression<T>& expression2) {
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return Expression<T>(boost::bind(apply_compose<T>(), _1, _2, _3, _4),
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expression1, expression2);
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}
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/// Construct an array of leaves
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template<typename T>
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std::vector<Expression<T> > createUnknowns(size_t n, char c, size_t start = 0) {
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std::vector<Expression<T> > unknowns;
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unknowns.reserve(n);
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for (size_t i = start; i < start + n; i++)
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unknowns.push_back(Expression<T>(c, i));
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return unknowns;
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}
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}
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