Cognitive Identity Management: Risks, Trust and Decisions using Heterogeneous Sources

S. Yanushkevich, W. Howells, Keeley A. Crockett, J. O'Shea, H. C. R. Oliveira, R. Guest, V. Shmerko
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引用次数: 8

Abstract

This work advocates for cognitive biometric-enabled systems that integrate identity management, risk assessment and trust assessment. The cognitive identity management process is viewed as a multi-state dynamical system, and probabilistic reasoning is used for modeling of this process. This paper describes an approach to design a platform for risk and trust modeling and evaluation in the cognitive identity management built upon processing heterogeneous data including biometrics, other sensory data and digital ID. The core of an approach is the perception-action cycle of each system state. Inference engine is a causal network that uses various uncertainty metrics and reasoning mechanisms including Dempster-Shafer and Dezert-Smarandache beliefs.
认知身份管理:使用异质来源的风险、信任和决策
这项工作提倡集成身份管理、风险评估和信任评估的认知生物识别系统。将认知身份管理过程视为一个多状态动态系统,并采用概率推理方法对其进行建模。本文描述了一种基于处理异构数据(包括生物识别、其他感官数据和数字ID)的认知身份管理中风险和信任建模和评估平台的设计方法。方法的核心是每个系统状态的感知-行动循环。推理引擎是一个因果网络,它使用各种不确定性度量和推理机制,包括Dempster-Shafer和Dezert-Smarandache信念。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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