基于深度学习的自主机器人场景理解研究综述

J. Ni, Yuanchun Chen, Guangyi Tang, Jiamei Shi, Weidong Cao, P. Shi
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引用次数: 0

摘要

自主机器人是当今科技领域的一个研究热点,对社会经济发展有着重要的影响。自主机器人感知和理解其工作环境的能力是解决更复杂问题的基础。近年来,自主机器人场景理解领域提出了越来越多的基于人工智能的方法,而深度学习是当前该领域的重点研究领域之一。在基于深度学习的自主机器人场景理解领域已经取得了显著的进展。因此,本文对基于深度学习的自主机器人场景理解的最新研究进行了综述。本研究详细概述了机器人场景理解的发展,并总结了深度学习方法在自主机器人场景理解中的应用。此外,分析了自主机器人场景理解中的关键问题,如姿态估计、显著性预测、语义分割和目标检测。然后,总结了针对这些问题的一些有代表性的基于深度学习的解决方案。最后,讨论了自主机器人场景理解领域未来面临的挑战。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Deep learning-based scene understanding for autonomous robots: a survey
Autonomous robots are a hot research subject within the fields of science and technology, which has a big impact on social-economic development. The ability of the autonomous robot to perceive and understand its working environment is the basis for solving more complicated issues. In recent years, an increasing number of artificial intelligence-based methods have been proposed in the field of scene understanding for autonomous robots, and deep learning is one of the current key areas in this field. Outstanding gains have been attained in the field of scene understanding for autonomous robots based on deep learning. Thus, this paper presents a review of recent research on the deep learning-based scene understanding for autonomous robots. This survey provides a detailed overview of the evolution of robotic scene understanding and summarizes the applications of deep learning methods in scene understanding for autonomous robots. In addition, the key issues in autonomous robot scene understanding are analyzed, such as pose estimation, saliency prediction, semantic segmentation, and object detection. Then, some representative deep learning-based solutions for these issues are summarized. Finally, future challenges in the field of the scene understanding for autonomous robots are discussed.
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