基于Retinex图像增强的搜救机器人设计
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河南工业大学电气工程学院,河南 郑州 450001

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TP242

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中国高等教育部(202110463002S)、 河南工业大学科学基金项目(2020BS059, 2018BS068)以及河南省高校青年骨干教师培养计划(2019GGJS095)项目资助。


Design of search and rescue robot based on Retinex image enhancement
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Henan University of Technology,Zhengzhou 450001,China

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    摘要:

    在地震、矿难等突发灾难发生时的恶劣现场环境下,抢险搜救任务的紧迫性及危险性突显了对智能搜救机器人的迫切需求。针对搜救机器人在废墟狭窄空间中行走困难,且在低照度环境下,图像处理时间长、细节丢失的情况。首先基于仿生学设计了机器人的三维模型,并对机器人的运动进行控制;其次为提高搜救工作中图像的光照一致性,加入了一种基于Retinex视网膜的结构感知平滑模型,为搜救机器人提供了高可见输出,建立图像评价模型剔除低质量图像;最后通过算法加速求解器减少图像处理时间以满足在树莓派上实时输出优质图像的需求。实验结果表明,当六足机器人工作在微光环境下,树莓派图像处理时间仅需0.23秒大大减小了输出延迟,峰值信噪比为14.752dB显示的细节更饱满,证明提高了机器人的性能,在未来地质调研,地震搜查,艰难地形的侦查方面有很大的应用前景。

    Abstract:

    In the harsh on-site environment when sudden disasters such as earthquakes and mining accidents occur, the urgency and danger of rescue and search and rescue tasks highlight the urgent need for intelligent search and rescue robots. It is aimed at the situation that the search and rescue robot has difficulty walking in the narrow space of the ruins, and in the low-light environment, the image processing time is long and the details are lost. Firstly, the 3D model of the robot is designed based on bionics, and the motion of the robot is controlled; secondly, in order to improve the illumination consistency of the image in the search and rescue work, a structure-aware smooth model based on Retinex retina is added, which provides a high-quality search and rescue robot. The output can be seen, and an image evaluation model is established to eliminate low-quality images. Finally, the algorithm accelerates the solver to reduce the image processing time to meet the needs of real-time output of high-quality images on the Raspberry Pi. The experimental results show that when the hexapod robot works in a low-light environment, the image processing time of the Raspberry Pi is only 0.23 seconds, which greatly reduces the output delay, and the peak signal-to-noise ratio is 14.752 dB. It has great application prospects in future geological surveys, seismic searches, and difficult terrain detection.

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陆文佳,崔贝贝,许乾,邵明航,李海正.基于Retinex图像增强的搜救机器人设计[J].电子测量技术,2022,45(13):146-152

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  • 在线发布日期: 2024-04-11
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