解剖混合生物识别模式识别组织损失和坑状角化在人类使用BOPVIC算法

P. B. Devi, K. Sharmila
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引用次数: 0

摘要

信息混合意味着在做出决策时权衡各种信息来源所提供的确认。在生物识别技术中,证据妥协技术在提高人体确认系统的确认精度方面发挥着重要作用,被称为多生物识别技术。多生物识别系统将各种生物识别传感器、估计、测试、单元或特征所提供的信息结合起来。除了全面规划和执行之外,这些系统还依赖于培养人们的考虑,预测欺骗,并为生物识别应用的非基本功能提供变化。细化是指纹虹膜识别系统预处理阶段的重要步骤。本文阐述了利用像素波动袋图像分类(BOPVIC)算法分析融合模态中像素变化和神经异常的重要性。像Zhang- Suen和Guo-Hall这样的细化算法被纳入其中,以分析相关的组织损失,同时可以想象地识别出眼脊压缩/抑制的lap,这可能是凹陷性角化的结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Anatomizing Hybrid Biometric Modality to Identify Tissue Loss and Pitted Keratolysis using BOPVIC Algorithm in Humans
Information blend implies the trade-off of confirmation presented by various sources of information to make a decision. With respect to biometrics, evidence compromise expects an essential part in updating the affirmation precision of human confirmation systems and is insinuated as multibiometric. Multibiometric systems join the information presented by various biometric sensors, estimations, tests, units, or characteristics. Besides overhauling planning with execution, these systems are depended upon to additionally foster people consideration, predict spoofing, and give variation to non-basic inability to biometric applications. Thinning is the important step in preprocessing phase of fingerprint and iris recognition System. This paper dissects the importance to analyze the pixel variations and the nerve abnormalities observed in the fused modality using bag of pixel volatility image classification (BOPVIC)algorithm. The thinning algorithms such as Zhang- Suen’s and Guo-Hall’s are incorporated in order to analyze the correlative loss of tissues, along with conceivably identifying the lap in the compression/ repression of eye ridges that could be a consequent to pitted keratolysis.
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