Content identification based on digital fingerprint: What can be done if ML decoding fails?

F. Farhadzadeh, S. Voloshynovskiy, O. Koval
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引用次数: 1

Abstract

In this paper, the performance of the content identification based on digital fingerprinting and order statistic list decoding is analyzed by evaluating the probabilities of correct identification, false acceptance and the probability mass function of queried binary fingerprint position on the list of candidates. The particular attention is dedicated to the cases when traditional maximum likelihood decoder fails to produce the reliable content identification. The maximum likelihood decoding is shown to be a particular case of order statistic list decoding for the list size equals 1. We demonstrate the efficiency of the proposed content identification system performance by investigating the probability mass function behavior and imposing the constraint on the cardinality of list size.
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基于数字指纹的内容识别:如果ML解码失败怎么办?
本文通过评估正确识别概率、错误接受概率和查询到的二进制指纹在候选指纹列表上位置的概率质量函数,分析了基于数字指纹和顺序统计列表解码的内容识别性能。特别注意传统的最大似然解码器不能产生可靠的内容识别的情况。最大似然解码显示为列表大小等于1的顺序统计列表解码的特殊情况。我们通过研究概率质量函数行为和对列表大小的基数性施加约束来证明所提出的内容识别系统性能的有效性。
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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