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首页> 外文期刊>Eurasip Journal on Wireless Communications and Networking >Camshift tracking method based on correlation probability graph for model pig
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Camshift tracking method based on correlation probability graph for model pig

机译:基于相关概率图的模型猪的CAMSHIFT跟踪方法

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摘要

The identification and tracking for model pigs, as a vital research content for studying the habits of model pigs, drawed more and more considerable attention. To fulfill people requirements for the effectiveness of the non-significant model pig tracking in breeding environment, a Camshift tracking approach based on correlation probability graph, i.e., CamTracor?PG, is proposed in this paper, in which the correlation probability graph is introduced to achieve target positioning and tracking. Technically, acquiring images through a vision sensor, according to the circular arrangement of pixels in the inverse probability projection graph, and multiplying the inverse projection probability value of a pixel by its surrounding pixels could obtain the weighted sum. Then, the target projection grayscale graph is established by utilizing the correlation probability value for positioning, identification, and tracking of model pigs. Finally, extensive experiments are conducted to validate reliability and efficiency of our approach.
机译:模型猪的鉴定和跟踪,作为研究模型猪的习惯的重要研究内容,越来越大的关注。为了满足人们对育种环境中非重大模型猪跟踪的有效性的要求,本文提出了一种基于相关概率图,即摄像机·PG的CAPSwift跟踪方法,其中引入了相关概率图实现目标定位和跟踪。从技术上讲,根据逆概率投影图中的像素的圆形布置,通过视觉传感器获取图像,并且通过其周围像素将像素的逆投影概率值乘以可以获得加权和。然后,通过利用模型猪的定位,识别和跟踪的相关概率值来建立目标投影灰度曲线图。最后,进行了广泛的实验,以验证我们方法的可靠性和效率。

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