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RRT Autonomous Detection Algorithm Based on Multiple Pilot Point Bias Strategy and Karto SLAM Algorithm 被引量:1
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作者 Lieping Zhang Xiaoxu Shi +3 位作者 Liu Tang Yilin Wang Jiansheng Peng Jianchu Zou 《Computers, Materials & Continua》 SCIE EI 2024年第2期2111-2136,共26页
A Rapid-exploration Random Tree(RRT)autonomous detection algorithm based on the multi-guide-node deflection strategy and Karto Simultaneous Localization and Mapping(SLAM)algorithm was proposed to solve the problems of... A Rapid-exploration Random Tree(RRT)autonomous detection algorithm based on the multi-guide-node deflection strategy and Karto Simultaneous Localization and Mapping(SLAM)algorithm was proposed to solve the problems of low efficiency of detecting frontier boundary points and drift distortion in the process of map building in the traditional RRT algorithm in the autonomous detection strategy of mobile robot.Firstly,an RRT global frontier boundary point detection algorithm based on the multi-guide-node deflection strategy was put forward,which introduces the reference value of guide nodes’deflection probability into the random sampling function so that the global search tree can detect frontier boundary points towards the guide nodes according to random probability.After that,a new autonomous detection algorithm for mobile robots was proposed by combining the graph optimization-based Karto SLAM algorithm with the previously improved RRT algorithm.The algorithm simulation platform based on the Gazebo platform was built.The simulation results show that compared with the traditional RRT algorithm,the proposed RRT autonomous detection algorithm can effectively reduce the time of autonomous detection,plan the length of detection trajectory under the condition of high average detection coverage,and complete the task of autonomous detection mapping more efficiently.Finally,with the help of the ROS-based mobile robot experimental platform,the performance of the proposed algorithm was verified in the real environment of different obstacles.The experimental results show that in the actual environment of simple and complex obstacles,the proposed RRT autonomous detection algorithm was superior to the traditional RRT autonomous detection algorithm in the time of detection,length of detection trajectory,and average coverage,thus improving the efficiency and accuracy of autonomous detection. 展开更多
关键词 Autonomous detection RRT algorithm mobile robot ROS karto SLAM algorithm
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基于ROS的消防机器人激光雷达地图构建方法研究 被引量:1
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作者 范一赢 张慧贤 +4 位作者 布占伟 王文豪 徐文贤 张银松 郭兆锋 《工业控制计算机》 2022年第11期56-58,共3页
开发出具有智能感知与路径规划的消防机器人,可以极大地提高消防队的灭火能力,这对减少消防人员伤亡和国家财产损失具有重要意义。因此,如何让消防机器人在火灾现场更加准确有效地构建出一张高精度地图,并通过路径自主规划实现自主控制... 开发出具有智能感知与路径规划的消防机器人,可以极大地提高消防队的灭火能力,这对减少消防人员伤亡和国家财产损失具有重要意义。因此,如何让消防机器人在火灾现场更加准确有效地构建出一张高精度地图,并通过路径自主规划实现自主控制极为重要。为实现具有智能感知与路径规划的消防机器人,通过搭载Linux系统的ROS机器人系统,开发了基于STM32控制板的消防机器人控制系统。系统具有温度与气体检测功能,并借助激光雷达实现了消防机器人的地图构建。通过对三种建图算法的比较,结果表明在空间较小的环境中Gmapping算法效果较好,而Hector算法和Karto算法可以应对大型环境的地图构建,这对消防机器人地图构建与路径规划研究具有实际意义。 展开更多
关键词 消防机器人 地图构建 激光雷达 Gmapping算法 Hector算法 karto算法
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