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A calibration method of computer vision system based on dual attention mechanism

机译:基于双关注机制的计算机视觉系统校准方法

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Nowadays, the technology of using computer vision to calibrate objects iswidely used, which has a hugemarket demand in many fields. This paper provides a calibration method of computer vision systembased on dual attention neural network. This paper uses the camera to simulate human eyes to obtain three-dimensional images. After obtaining the three-dimensional images, the images are input into the Residual Network (ResNet) model, and the weight of ResNet is repeatedly updated so as to accurately identify the images. On this basis, introduces dual attention mechanism that an algorithm is used in natural language to the visual image processing, using multistage feature extraction method to extract the three-dimensional image for each characteristic of regional. After extracting the feature area, the accuracy of the feature area is constantly updated to theminimum. Besides, the feature areas are brought into the calibration algorithm of Zhang Zhengyou system to obtain the spatial coordinates of the objects in the attention area. This method can realize the space position calibration of specific objects under various complex backgrounds and calculate the distance from the calibrated objects, which can not only calibrate the system but also identify it, and greatly improve the reliability and accuracy of the calibration process. (c) 2020 Elsevier B.V. All rights reserved.
机译:如今,使用计算机视觉来校准校准物体的技术,在许多领域拥有Humemarket需求。本文提供了在双重关注神经网络上进行的计算机视觉校准方法。本文使用相机模拟人眼以获得三维图像。在获得三维图像之后,将图像输入到残余网络(Reset)模型中,重复更新Reset的权重,以便准确地识别图像。在此基础上,引入了使用多级特征提取方法以自然语言使用自然语言的算法,以提取区域区域特征的三维图像。在提取特征区域之后,特征区域的准确性不断更新为Theminimum。此外,特征区域进入张正友系统的校准算法,以获得注意面积中物体的空间坐标。该方法可以实现各种复杂背景下特定对象的空间位置校准,并计算距校准物体的距离,这不仅可以校准系统,还可以识别它,并大大提高校准过程的可靠性和准确性。 (c)2020 Elsevier B.v.保留所有权利。

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