199 lines
6.3 KiB
C++
199 lines
6.3 KiB
C++
// Copyright (c) 2022, Samsung Research America
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//
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// Licensed under the Apache License, Version 2.0 (the "License");
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// you may not use this file except in compliance with the License.
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// You may obtain a copy of the License at
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//
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// http://www.apache.org/licenses/LICENSE-2.0
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//
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// Unless required by applicable law or agreed to in writing, software
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// distributed under the License is distributed on an "AS IS" BASIS,
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// WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
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// See the License for the specific language governing permissions and
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// limitations under the License. Reserved.
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#include <vector>
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#include <memory>
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#include "nav2_smoother/savitzky_golay_smoother.hpp"
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namespace nav2_smoother
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{
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using namespace smoother_utils; // NOLINT
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using namespace nav2_util::geometry_utils; // NOLINT
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using namespace std::chrono; // NOLINT
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using nav2_util::declare_parameter_if_not_declared;
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void SavitzkyGolaySmoother::configure(
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const rclcpp_lifecycle::LifecycleNode::WeakPtr & parent,
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std::string name, std::shared_ptr<tf2_ros::Buffer>/*tf*/,
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std::shared_ptr<nav2_costmap_2d::CostmapSubscriber>/*costmap_sub*/,
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std::shared_ptr<nav2_costmap_2d::FootprintSubscriber>/*footprint_sub*/)
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{
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auto node = parent.lock();
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logger_ = node->get_logger();
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declare_parameter_if_not_declared(
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node, name + ".do_refinement", rclcpp::ParameterValue(true));
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declare_parameter_if_not_declared(
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node, name + ".refinement_num", rclcpp::ParameterValue(2));
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node->get_parameter(name + ".do_refinement", do_refinement_);
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node->get_parameter(name + ".refinement_num", refinement_num_);
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}
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bool SavitzkyGolaySmoother::smooth(
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nav_msgs::msg::Path & path,
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const rclcpp::Duration & max_time)
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{
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steady_clock::time_point start = steady_clock::now();
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double time_remaining = max_time.seconds();
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bool success = true, reversing_segment;
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nav_msgs::msg::Path curr_path_segment;
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curr_path_segment.header = path.header;
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std::vector<PathSegment> path_segments = findDirectionalPathSegments(path);
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for (unsigned int i = 0; i != path_segments.size(); i++) {
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if (path_segments[i].end - path_segments[i].start > 9) {
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// Populate path segment
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curr_path_segment.poses.clear();
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std::copy(
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path.poses.begin() + path_segments[i].start,
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path.poses.begin() + path_segments[i].end + 1,
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std::back_inserter(curr_path_segment.poses));
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// Make sure we're still able to smooth with time remaining
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steady_clock::time_point now = steady_clock::now();
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time_remaining = max_time.seconds() - duration_cast<duration<double>>(now - start).count();
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if (time_remaining <= 0.0) {
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RCLCPP_WARN(
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logger_,
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"Smoothing time exceeded allowed duration of %0.2f.", max_time.seconds());
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return false;
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}
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// Smooth path segment
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success = success && smoothImpl(curr_path_segment, reversing_segment);
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// Assemble the path changes to the main path
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std::copy(
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curr_path_segment.poses.begin(),
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curr_path_segment.poses.end(),
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path.poses.begin() + path_segments[i].start);
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}
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}
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return success;
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}
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bool SavitzkyGolaySmoother::smoothImpl(
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nav_msgs::msg::Path & path,
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bool & reversing_segment)
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{
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// Must be at least 10 in length to enter function
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const unsigned int & path_size = path.poses.size();
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// 7-point SG filter
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const std::array<double, 7> filter = {
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-2.0 / 21.0,
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3.0 / 21.0,
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6.0 / 21.0,
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7.0 / 21.0,
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6.0 / 21.0,
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3.0 / 21.0,
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-2.0 / 21.0};
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auto applyFilter = [&](const std::vector<geometry_msgs::msg::Point> & data)
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-> geometry_msgs::msg::Point
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{
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geometry_msgs::msg::Point val;
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for (unsigned int i = 0; i != filter.size(); i++) {
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val.x += filter[i] * data[i].x;
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val.y += filter[i] * data[i].y;
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}
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return val;
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};
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auto applyFilterOverAxes =
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[&](std::vector<geometry_msgs::msg::PoseStamped> & plan_pts) -> void
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{
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// Handle initial boundary conditions, first point is fixed
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unsigned int idx = 1;
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plan_pts[idx].pose.position = applyFilter(
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{
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plan_pts[idx - 1].pose.position,
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plan_pts[idx - 1].pose.position,
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plan_pts[idx - 1].pose.position,
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plan_pts[idx].pose.position,
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plan_pts[idx + 1].pose.position,
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plan_pts[idx + 2].pose.position,
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plan_pts[idx + 3].pose.position});
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idx++;
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plan_pts[idx].pose.position = applyFilter(
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{
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plan_pts[idx - 2].pose.position,
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plan_pts[idx - 2].pose.position,
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plan_pts[idx - 1].pose.position,
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plan_pts[idx].pose.position,
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plan_pts[idx + 1].pose.position,
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plan_pts[idx + 2].pose.position,
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plan_pts[idx + 3].pose.position});
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// Apply nominal filter
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for (idx = 3; idx < path_size - 4; ++idx) {
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plan_pts[idx].pose.position = applyFilter(
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{
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plan_pts[idx - 3].pose.position,
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plan_pts[idx - 2].pose.position,
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plan_pts[idx - 1].pose.position,
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plan_pts[idx].pose.position,
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plan_pts[idx + 1].pose.position,
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plan_pts[idx + 2].pose.position,
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plan_pts[idx + 3].pose.position});
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}
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// Handle terminal boundary conditions, last point is fixed
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idx++;
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plan_pts[idx].pose.position = applyFilter(
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{
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plan_pts[idx - 3].pose.position,
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plan_pts[idx - 2].pose.position,
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plan_pts[idx - 1].pose.position,
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plan_pts[idx].pose.position,
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plan_pts[idx + 1].pose.position,
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plan_pts[idx + 2].pose.position,
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plan_pts[idx + 2].pose.position});
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idx++;
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plan_pts[idx].pose.position = applyFilter(
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{
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plan_pts[idx - 3].pose.position,
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plan_pts[idx - 2].pose.position,
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plan_pts[idx - 1].pose.position,
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plan_pts[idx].pose.position,
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plan_pts[idx + 1].pose.position,
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plan_pts[idx + 1].pose.position,
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plan_pts[idx + 1].pose.position});
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};
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applyFilterOverAxes(path.poses);
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// Lets do additional refinement, it shouldn't take more than a couple milliseconds
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if (do_refinement_) {
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for (int i = 0; i < refinement_num_; i++) {
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applyFilterOverAxes(path.poses);
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}
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}
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updateApproximatePathOrientations(path, reversing_segment);
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return true;
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}
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} // namespace nav2_smoother
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#include "pluginlib/class_list_macros.hpp"
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PLUGINLIB_EXPORT_CLASS(nav2_smoother::SavitzkyGolaySmoother, nav2_core::Smoother)
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