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Soft Biometric Fusion for Subject Recognition at a Distance

机译:距离电脑识别的软生物识别融合

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There is societal need for techniques to identify subjects at a distance and when conventional biometrics are obscured, for example in fighting crime. Soft biometrics have this capability and include a subject's height, weight, skin colour and gender. Although the distinctiveness of soft biometric features is intuitively less than that of traditional biometric features, numerous experiments have demonstrated that the desired recognition accuracy can be achieved by using multiple soft biometric features. This paper will propose state-of-the-art multimodal biometric fusion techniques to improve recognition performance of soft biometrics. The key contribution of this paper is the analysis of the influence of distance on soft biometric traits and an exploration of the potency of recognition using fusion at varying distances. A new soft biometric database, containing images of the human face, body and clothing taken at three different distances, was created and used to obtain face, body and clothing attributes. This new database was constructed to explore the suitability of each modality at a distance: intuitively, the face is suitable for near field identification, and the body becomes the optimal choice when the subject is further away. The new dataset is used to explore the potential of face, body and clothing for human recognition using fusion. We present a novel fusion technique at score and rank level that improves identification performance. A novel joint density distribution-based rank-score fusion is also proposed to combine rank and score information. Analysis using the new soft biometric database demonstrates that recognition performance is significantly improved by using the new methods over single modalities at different distances.
机译:有足够的技术来识别远处的受试者以及常规生物识别器被遮挡,例如在战斗犯罪中。软生物识别技术具有这种能力,包括受试者的身高,体重,肤色和性别。虽然软生物识别特征的独特性直观地小于传统的生物识别特征,但许多实验表明,通过使用多个软生物识别特征,可以实现所需的识别精度。本文将提出最先进的多模式生物融合技术,以提高软生物识别性的识别性能。本文的主要贡献是分析距离对软生物识别性状的影响以及在不同距离下使用融合识别效力的探索。创建了一个新的软生物识别数据库,其中包含了三个不同距离的人脸,身体和衣服的图像,并用于获得面部,身体和服装属性。构建了该新数据库以探索每个模态在距离的适用性:直观地,面部适用于近场识别,并且当受试者进一步远离时,身体成为最佳选择。新数据集用于使用融合来探索人类识别的脸部,身体和衣服的潜力。我们在得分和等级水平上提高了一种新的融合技术,可以提高识别性能。还提出了一种基于联合密度分布的秩级谱融合,以组合等级和得分信息。使用新的软生物识别数据库的分析演示了通过在不同距离下的单个模式上使用新方法,可以显着提高识别性能。

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