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Vitality Assessment of Boar Sperm Using an Adaptive LBP Based on Oriented Deviation

机译:基于定向偏差的自适应LBP的公猪精子的活力评估

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A new method to describe sperm vitality using a hybrid combination of local and global texture descriptors is proposed in this paper. In this regard, a new adaptive local binary pattern (ALBP) descriptor is presented in order to carry out the local description. It is built by adding oriented standard deviation information to an ALBP descriptor in order to achieve a more complete representation of the images and hence it has been called ALBPS. Regarding semen vitality assessment, ALBPS outperformed previous literature works with an 81.88% of accuracy and it also yielded higher hit rates than the LBP and ALBP base-line methods. Concerning the global description of sperm heads, several classical texture algorithms were tested and a descriptor based on Wavelet transform and Haralick feature extraction (WCF13) obtained the best results. Both local and global descriptors were combined and the classification was carried out with a Support Vector Machine. Therefore, our proposal is novel in three ways. First, a new local feature extraction method ALBPS is introduced. Second, a hybrid method combining the proposed local ALBPS and a global descriptor is presented outperforming our first approach and all other methods evaluated for this problem. Third, vitality classification accuracy is greatly improved with the two former texture descriptors presented. F-Score and accuracy values were computed in order to measure the performance. The best overall result was yielded by combining ALBPS with WCF13 reaching a F-Score equals to 0.886 and an accuracy of 85.63%.
机译:本文提出了一种使用局部和全球纹理描述符的混合组合来描述精子生命力的新方法。在这方面,呈现新的自适应局部二进制模式(ALBP)描述符以执行本地描述。它是通过向抗橡煤描述符添加面向标准偏差信息构建的,以便实现图像的更完整的表示,因此已被称为铜。关于精液的生命力评估,Albps以前的文献效果优于81.88%的准确性,而且它也比LBP和ALBP基线方法产生了更高的击球率。关于精子头的全局描述,测试了几种经典纹理算法,并且基于小波变换和haralick特征提取(WCF13)的描述符获得了最佳结果。将本地和全局描述符合并,并使用支持向量机进行分类。因此,我们的提案是三种方式的新颖。首先,介绍了一种新的局部特征提取方法铜。其次,呈现了所提出的本地铜的混合方法和全局描述符,优于我们的第一种方法和对该问题评估的所有其他方法。第三,使用两种以前的纹理描述符大大提高了生命力分类精度。计算F分和准确度值以测量性能。通过将Albps与WCF13结合到达F分等数的最佳总体结果,达到0.886,精度为85.63%。

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