Multimodal Fusion of Face and Palm Using Local Color Binary Patterns and Haralick Features

IF 0.4 Q4 COMPUTER SCIENCE, ARTIFICIAL INTELLIGENCE International Journal of Data Mining Modelling and Management Pub Date : 2021-11-30 DOI:10.46610/jodmm.2021.v06i03.004
Vijeeta Patil, Shanta Kallur, Vani A. Hiremani
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Abstract

Face recognizable proof has drawn in numerous scientists because of its novel benefit, for example, non-contact measure for include obtaining. Varieties in brightening, posture and appearance are significant difficulties of face acknowledgment particularly when pictures are taken as dim scale. To mitigate these difficulties partially many exploration works have been completed by considering shading pictures and they have yielded better face acknowledgment rate. A strategy for perceiving face utilizing shading nearby surface highlights is depicted. Test results show that Face ID approaches utilizing shading neighborhood surface highlights astonishingly yield preferred acknowledgment rates over Face acknowledgment approaches utilizing just shading or surface data. Especially, contrasted and grayscale surface highlights, the proposed shading neighborhood surface highlights can give great coordinating with rates to confront pictures taken under extreme varieties in enlightenment and furthermore for low goal face pictures. The other biometric framework utilizes palmprint as quality for the recognizable proof and validation of people. The principal point is to extract Haralick highlights and utilization of probabilistic neural organizations for confirmation utilizing palmprint biometric quality. PolyUdatabase tests are taken from around 200 clients every client's 2 examples are gained. This palm print biometric recognizes the phony (fake) palmprint made of POP (Plaster of paris) and separates among living and non-living dependent on the entropy highlight. Test results portray that the eleven Haralick feature values are acquired in execution stage and productive precision is accomplished.
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基于局部颜色二值模式和Haralick特征的人脸和手掌多模态融合
人脸识别技术以其新颖的优点吸引了众多科学家的注意,如非接触式测量包括获取。亮度、姿势和外观的变化是人脸识别的重大困难,尤其是在昏暗的尺度下。为了部分缓解这些困难,许多勘探工作已经完成了考虑阴影图像,并取得了更好的人脸识别率。描述了一种利用阴影附近表面高光来感知人脸的策略。测试结果表明,与仅使用阴影或表面数据的人脸识别方法相比,使用阴影邻域表面突出的人脸识别方法产生了惊人的识别率。特别是对比表面高光和灰度表面高光,所提出的阴影邻域表面高光对光照变化极端情况下拍摄的人脸图像和低目标人脸图像具有很好的协调率。另一个生物识别框架利用掌纹作为人们可识别的证据和验证的质量。重点是提取哈拉利克亮点,并利用概率神经组织利用掌纹生物特征质量进行确认。polyuddatabase测试取自大约200个客户端,每个客户端有2个示例。这种掌纹生物识别技术可以识别由POP(石膏巴黎)制成的假掌纹,并根据熵高光区分活体和非活体。测试结果表明,在执行阶段获得了11个哈拉里克特征值,达到了生产精度。
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来源期刊
International Journal of Data Mining Modelling and Management
International Journal of Data Mining Modelling and Management COMPUTER SCIENCE, ARTIFICIAL INTELLIGENCE-
CiteScore
1.10
自引率
0.00%
发文量
22
期刊介绍: Facilitating transformation from data to information to knowledge is paramount for organisations. Companies are flooded with data and conflicting information, but with limited real usable knowledge. However, rarely should a process be looked at from limited angles or in parts. Isolated islands of data mining, modelling and management (DMMM) should be connected. IJDMMM highlightes integration of DMMM, statistics/machine learning/databases, each element of data chain management, types of information, algorithms in software; from data pre-processing to post-processing; between theory and applications. Topics covered include: -Artificial intelligence- Biomedical science- Business analytics/intelligence, process modelling- Computer science, database management systems- Data management, mining, modelling, warehousing- Engineering- Environmental science, environment (ecoinformatics)- Information systems/technology, telecommunications/networking- Management science, operations research, mathematics/statistics- Social sciences- Business/economics, (computational) finance- Healthcare, medicine, pharmaceuticals- (Computational) chemistry, biology (bioinformatics)- Sustainable mobility systems, intelligent transportation systems- National security
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