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Beef cattle identification based on muzzle pattern using a matching refinement technique in the SIFT method

机译:SIFT方法中使用匹配细化技术基于枪口模式识别肉牛

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摘要

Beef cattle identification in a livestock management framework is an important issue. It is related to registration and traceability which are very important for breeding, production and distribution of the beef cattle. The muzzle pattern as a mean of identification has been studied since 1921 and several papers have proven that it can be used in the case of the cattle identification. The muzzle pattern has characteristic like the human's fingerprint. In this study, the Scale Invariant Feature Transform (SIFT) approach has been evaluated for the identification purpose based on biometrics and compared with methods from the previous two research papers. The numbers of matched-keypoints have been defined as the matching score. The matching refinement technique based on the keypoint's orientation information has been proposed to eliminate the miss-matched keypoints so that the identification performance is increased. Based on the experimental results which use data consisting of 160 muzzle pattern images from 20 individuals, the original SIFT approach has had the best performance compared to the previous methods with the value of the Equal Error Rate (EER) being equal to 0.0167. The proposed matching refinement technique has successfully reduced the false matching so that the value of the EER has been decreased to 0.0028. The SIFT approach and the proposed matching refinement technique can be a potential method for the beef cattle identification based on the image of the muzzle pattern lifted on paper.
机译:在牲畜管理框架中确定肉牛是一个重要的问题。它与注册和可追溯性有关,这对于肉牛的繁殖,生产和分配非常重要。自1921年以来,就已经研究过以枪口形式进行识别的方法,并且有几篇论文证明了该方法可用于牛的识别。口吻样式具有像人的指纹一样的特征。在这项研究中,尺度不变特征变换(SIFT)方法已被评估用于基于生物特征的识别目的,并与前两篇研究论文中的方法进行了比较。匹配关键点的数量已定义为匹配分数。已经提出了基于关键点的方位信息的匹配细化技术来消除未匹配的关键点,从而提高了识别性能。基于使用来自20个个体的160个枪口模式图像组成的数据的实验结果,与以前的方法相比,原始的SIFT方法具有最佳的性能,其均等错误率(EER)等于0.0167。提出的匹配细化技术已成功减少了误匹配,因此EER的值已降至0.0028。 SIFT方法和拟议的匹配细化技术可能是一种潜在的方法,可基于纸上举起的枪口图案图像来识别肉牛。

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