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Performance Evaluation of Fusing Protected Fingerprint Minutiae Templates on the Decision Level

机译:决策级融合受保护指纹细节模板的性能评估

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摘要

In a biometric authentication system using protected templates, a pseudonymous identifier is the part of a protected template that can be directly compared. Each compared pair of pseudonymous identifiers results in a decision testing whether both identifiers are derived from the same biometric characteristic. Compared to an unprotected system, most existing biometric template protection methods cause to a certain extent degradation in biometric performance. Fusion is therefore a promising way to enhance the biometric performance in template-protected biometric systems. Compared to feature level fusion and score level fusion, decision level fusion has not only the least fusion complexity, but also the maximum interoperability across different biometric features, template protection and recognition algorithms, templates formats, and comparison score rules. However, performance improvement via decision level fusion is not obvious. It is influenced by both the dependency and the performance gap among the conducted tests for fusion. We investigate in this paper several fusion scenarios (multi-sample, multi-instance, multi-sensor, multi-algorithm, and their combinations) on the binary decision level, and evaluate their biometric performance and fusion efficiency on a multi-sensor fingerprint database with 71,994 samples.
机译:在使用受保护模板的生物特征认证系统中,匿名标识符是受保护模板的一部分,可以直接进行比较。每对比较的假名标识符对都导致判定测试是否两个标识符都来自相同的生物特征。与不受保护的系统相比,大多数现有的生物特征模板保护方法都会在一定程度上导致生物特征性能下降。因此,融合是增强模板保护的生物特征系统中生物特征性能的一种有前途的方式。与特征级融合和分数级融合相比,决策级融合不仅具有最小的融合复杂性,而且在不同生物特征,模板保护和识别算法,模板格式以及比较分数规则之间具有最大的互操作性。但是,通过决策级融合实现的性能提升并不明显。它受进行的融合测试之间的依赖性和性能差距的影响。我们在二元决策水平上研究了几种融合方案(多样本,多实例,多传感器,多算法及其组合),并在多传感器指纹数据库上评估了其生物识别性能和融合效率有71,994个样本。

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