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Eccentricity based kinship verification from facial images in the wild

机译:基于野生面部图像的基于古怪的亲属性验证

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Kinship verification from facial images in the wild is a promising research aiming to identify whether a facial image pair shares kinship relation by analyzing face structures. This paper proposes a novel eccentricity-based kinship verification (EKV) method to demonstrate efficacy of dominant facial sections for kinship verification. The proposed EKV method uses eccentricity of ellipse-approximated dominant facial sections as discriminative parameter to perform kinship verification. It presents two different schemes, namely single eccentricity (SE) and fused eccentricity (FE). SE scheme for EKV method employs single formulation by considering single facial section. Each selected facial section is approximated as an ellipse to compute eccentricity parameter and perform verification. Next, FE scheme for EKV method employs multiview formulation by analyzing two or more facial sections. Eccentricity of different ellipse-approximated facial sections is computed and fused to form a transformed parameter and perform verification. The proposed EKV method is demonstrated on different available kinship databases. Experimental results showcase effectiveness of EKV method with the best and competitive accuracy obtained for FE scheme on different databases.
机译:来自野外的面部图像的亲属验证是一个有前途的研究,其目的是通过分析面部结构来确定面部图像对是否共享血缘关系关系。本文提出了一种新的基于偏心性的亲属性验证(EKV)方法,以证明主导面部部分进行亲属性验证的疗效。所提出的EKV方法使用椭圆近似的显性面部部分的偏心度作为执行亲属验证的辨别参数。它提出了两种不同的方案,即单偏心(SE)和融合偏心(FE)。 EKV方法的SE方案通过考虑单个面部部分来使用单一制剂。每个所选面部部分近似为椭圆以计算偏心率参数并执行验证。接下来,通过分析两个或更多个面部部分,通过分析多视图制定的EKV方法Fe方案。计算并融合不同椭圆近似面部部分的偏心度以形成变换参数并进行验证。所提出的EKV方法在不同可用的亲属数据库上进行了演示。实验结果展示EKV方法对不同数据库FE方案获得的最佳竞争准确性的效果。

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