Construction of Industrial Robot Manipulator Sorting System based on Convolution Neural Network

B. Liu
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Abstract

With the development of intelligent manufacturing, the application of intelligent algorithms in manufacturing industry is gradually enriched. This research combines convolutional neural network with industrial manipulator, and uses the image feature extraction advantages of convolutional neural network to build a manipulator sorting system. The results show that the average accuracy of the system for sorting parts is more than 70%, and when compared with other systems, its accuracy value is also greater than that of other systems. It can be seen that the identification and positioning accuracy of this system is stronger and the performance is better.
基于卷积神经网络的工业机器人机械手分拣系统构建
随着智能制造的发展,智能算法在制造业中的应用逐渐丰富。本研究将卷积神经网络与工业机械手相结合,利用卷积神经网络在图像特征提取方面的优势构建机械手分拣系统。结果表明,该系统分拣零件的平均精度可达70%以上,与其他系统相比,其精度值也大于其他系统。可以看出,该系统的识别定位精度更强,性能更好。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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