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								/* ----------------------------------------------------------------------------
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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 LocalizationExample.cpp
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								 * @brief Simple robot localization example, with three "GPS-like" measurements
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								 * @author Frank Dellaert
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								 */
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								/**
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								 * A simple 2D pose slam example with "GPS" measurements
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								 *  - The robot moves forward 2 meter each iteration
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								 *  - The robot initially faces along the X axis (horizontal, to the right in 2D)
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								 *  - We have full odometry between pose
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								 *  - We have "GPS-like" measurements implemented with a custom factor
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								 */
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								// We will use Pose2 variables (x, y, theta) to represent the robot positions
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								#include <gtsam/geometry/Pose2.h>
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								// We will use simple integer Keys to refer to the robot poses.
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											2013-06-06 23:36:11 +08:00
										 
									 
								 
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								#include <gtsam/inference/Key.h>
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								// As in OdometryExample.cpp, we use a BetweenFactor to model odometry measurements.
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								#include <gtsam/slam/BetweenFactor.h>
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								// We add all facors to a Nonlinear Factor Graph, as our factors are nonlinear.
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								#include <gtsam/nonlinear/NonlinearFactorGraph.h>
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								// The nonlinear solvers within GTSAM are iterative solvers, meaning they linearize the
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								// nonlinear functions around an initial linearization point, then solve the linear system
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								// to update the linearization point. This happens repeatedly until the solver converges
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								// to a consistent set of variable values. This requires us to specify an initial guess
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								// for each variable, held in a Values container.
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								#include <gtsam/nonlinear/Values.h>
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								// Finally, once all of the factors have been added to our factor graph, we will want to
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								// solve/optimize to graph to find the best (Maximum A Posteriori) set of variable values.
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								// GTSAM includes several nonlinear optimizers to perform this step. Here we will use the
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								// standard Levenberg-Marquardt solver
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								#include <gtsam/nonlinear/LevenbergMarquardtOptimizer.h>
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								// Once the optimized values have been calculated, we can also calculate the marginal covariance
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								// of desired variables
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								#include <gtsam/nonlinear/Marginals.h>
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								using namespace std;
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								using namespace gtsam;
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								// Before we begin the example, we must create a custom unary factor to implement a
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								// "GPS-like" functionality. Because standard GPS measurements provide information
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								// only on the position, and not on the orientation, we cannot use a simple prior to
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								// properly model this measurement.
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								//
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								// The factor will be a unary factor, affect only a single system variable. It will
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								// also use a standard Gaussian noise model. Hence, we will derive our new factor from
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								// the NoiseModelFactor1.
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								#include <gtsam/nonlinear/NonlinearFactor.h>
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								class UnaryFactor: public NoiseModelFactor1<Pose2> {
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								  // The factor will hold a measurement consisting of an (X,Y) location
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								  // We could this with a Point2 but here we just use two doubles
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								  double mx_, my_;
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								 public:
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								  /// shorthand for a smart pointer to a factor
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								  typedef boost::shared_ptr<UnaryFactor> shared_ptr;
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								  // The constructor requires the variable key, the (X, Y) measurement value, and the noise model
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								  UnaryFactor(Key j, double x, double y, const SharedNoiseModel& model):
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								    NoiseModelFactor1<Pose2>(model, j), mx_(x), my_(y) {}
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								  ~UnaryFactor() override {}
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								  // Using the NoiseModelFactor1 base class there are two functions that must be overridden.
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								  // The first is the 'evaluateError' function. This function implements the desired measurement
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								  // function, returning a vector of errors when evaluated at the provided variable value. It
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								  // must also calculate the Jacobians for this measurement function, if requested.
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								  Vector evaluateError(const Pose2& q, boost::optional<Matrix&> H = boost::none) const override {
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								    // The measurement function for a GPS-like measurement h(q) which predicts the measurement (m) is h(q) = q, q = [qx qy qtheta]
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								    // The error is then simply calculated as E(q) = h(q) - m:
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								    // error_x = q.x - mx
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								    // error_y = q.y - my
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								    // Node's orientation reflects in the Jacobian, in tangent space this is equal to the right-hand rule rotation matrix
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								    // H =  [ cos(q.theta)  -sin(q.theta) 0 ]
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								    //      [ sin(q.theta)   cos(q.theta) 0 ]
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								    const Rot2& R = q.rotation();
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								    if (H) (*H) = (gtsam::Matrix(2, 3) << R.c(), -R.s(), 0.0, R.s(), R.c(), 0.0).finished();
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								    return (Vector(2) << q.x() - mx_, q.y() - my_).finished();
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								  }
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								  // The second is a 'clone' function that allows the factor to be copied. Under most
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								  // circumstances, the following code that employs the default copy constructor should
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								  // work fine.
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								  gtsam::NonlinearFactor::shared_ptr clone() const override {
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								    return boost::static_pointer_cast<gtsam::NonlinearFactor>(
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								        gtsam::NonlinearFactor::shared_ptr(new UnaryFactor(*this))); }
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								  // Additionally, we encourage you the use of unit testing your custom factors,
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								  // (as all GTSAM factors are), in which you would need an equals and print, to satisfy the
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								  // GTSAM_CONCEPT_TESTABLE_INST(T) defined in Testable.h, but these are not needed below.
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								};  // UnaryFactor
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								int main(int argc, char** argv) {
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								  // 1. Create a factor graph container and add factors to it
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								  NonlinearFactorGraph graph;
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								  // 2a. Add odometry factors
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								  // For simplicity, we will use the same noise model for each odometry factor
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								  auto odometryNoise = noiseModel::Diagonal::Sigmas(Vector3(0.2, 0.2, 0.1));
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								  // Create odometry (Between) factors between consecutive poses
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								  graph.emplace_shared<BetweenFactor<Pose2> >(1, 2, Pose2(2.0, 0.0, 0.0), odometryNoise);
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								  graph.emplace_shared<BetweenFactor<Pose2> >(2, 3, Pose2(2.0, 0.0, 0.0), odometryNoise);
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											2012-07-23 00:03:42 +08:00
										 
									 
								 
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								  // 2b. Add "GPS-like" measurements
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								  // We will use our custom UnaryFactor for this.
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											2020-05-10 07:08:31 +08:00
										 
									 
								 
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								  auto unaryNoise =
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								      noiseModel::Diagonal::Sigmas(Vector2(0.1, 0.1));  // 10cm std on x,y
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											2016-10-01 23:41:37 +08:00
										 
									 
								 
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								  graph.emplace_shared<UnaryFactor>(1, 0.0, 0.0, unaryNoise);
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								  graph.emplace_shared<UnaryFactor>(2, 2.0, 0.0, unaryNoise);
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								  graph.emplace_shared<UnaryFactor>(3, 4.0, 0.0, unaryNoise);
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											2020-05-10 07:08:31 +08:00
										 
									 
								 
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								  graph.print("\nFactor Graph:\n");  // print
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											2012-07-23 00:03:42 +08:00
										 
									 
								 
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								  // 3. Create the data structure to hold the initialEstimate estimate to the solution
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								  // For illustrative purposes, these have been deliberately set to incorrect values
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								  Values initialEstimate;
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								  initialEstimate.insert(1, Pose2(0.5, 0.0, 0.2));
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								  initialEstimate.insert(2, Pose2(2.3, 0.1, -0.2));
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								  initialEstimate.insert(3, Pose2(4.1, 0.1, 0.1));
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											2020-05-10 07:08:31 +08:00
										 
									 
								 
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								  initialEstimate.print("\nInitial Estimate:\n");  // print
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											2012-07-23 00:03:42 +08:00
										 
									 
								 
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								  // 4. Optimize using Levenberg-Marquardt optimization. The optimizer
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								  // accepts an optional set of configuration parameters, controlling
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								  // things like convergence criteria, the type of linear system solver
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								  // to use, and the amount of information displayed during optimization.
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								  // Here we will use the default set of parameters.  See the
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								  // documentation for the full set of parameters.
							 | 
						
					
						
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							 | 
							
							
								  LevenbergMarquardtOptimizer optimizer(graph, initialEstimate);
							 | 
						
					
						
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							 | 
							
								
							 | 
							
							
								  Values result = optimizer.optimize();
							 | 
						
					
						
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							 | 
							
								
							 | 
							
							
								  result.print("Final Result:\n");
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								  // 5. Calculate and print marginal covariances for all variables
							 | 
						
					
						
							| 
								
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							 | 
							
								
							 | 
							
							
								  Marginals marginals(graph, result);
							 | 
						
					
						
							
								
									
										
										
										
											2012-08-06 00:59:14 +08:00
										 
									 
								 
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							 | 
							
								
							 | 
							
							
								  cout << "x1 covariance:\n" << marginals.marginalCovariance(1) << endl;
							 | 
						
					
						
							| 
								
							 | 
							
								
							 | 
							
								
							 | 
							
							
								  cout << "x2 covariance:\n" << marginals.marginalCovariance(2) << endl;
							 | 
						
					
						
							| 
								
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							 | 
							
								
							 | 
							
							
								  cout << "x3 covariance:\n" << marginals.marginalCovariance(3) << endl;
							 | 
						
					
						
							
								
									
										
										
										
											2012-07-23 00:03:42 +08:00
										 
									 
								 
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							 | 
							
							
								  return 0;
							 | 
						
					
						
							
								
									
										
										
										
											2012-05-21 13:18:06 +08:00
										 
									 
								 
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							 | 
							
								
							 | 
							
							
								}
							 |