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Maximum Likelihood Approach for RFID Tag Set Cardinality Estimation with Detection Errors

机译:具有检测错误的RFID标签集基数估计的最大似然法

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Estimation schemes of Radio Frequency IDentification (RFID) tag set cardinality are studied in this paper using Maximum Likelihood (ML) approach. We consider the estimation problem under the model of multiple independent reader sessions with detection errors due to unreliable radio communication links and/or collisions. In every reader session, both the detection error probability and the total number of tags are estimated. In particular, after the R-th reader session, the number of tags detected in j (j = 1, 2,..., R) reader sessions out of R sessions is updated, which we call observed evidence. Then, in order to maximize the likelihood function of the number of tags and the detection error probability given the observed evidences, we propose three different estimation methods depending on how to treat the discrete nature of the tag set cardinality. The performance of the proposed methods is evaluated under different system parameters and compared with that of the conventional method via computer simulations assuming flat Rayleigh fading environments and framed-slotted ALOHA based protocol.
机译:本文采用最大似然法研究了射频识别标签集基数的估计方案。我们考虑由于不可靠的无线电通信链路和/或冲突而导致具有检测错误的多个独立阅读器会话的模型下的估计问题。在每个阅读器会话中,都将估计检测错误概率和标签总数。特别是,在第R个阅读器会话之后,在R个会话中的j个(j = 1、2,...,R)阅读器会话中检测到的标签数量会更新,我们称之为观察到的证据。然后,为了在给定观察证据的情况下最大化标签数量的似然函数和检测错误概率,我们根据如何对待标签集基数的离散性质,提出了三种不同的估计方法。在不同的系统参数下,对所提方法的性能进行了评估,并通过计算机模拟与传统方法的性能进行了比较,并采用了平坦瑞利衰落环境和基于帧时隙ALOHA的协议。

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