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Sequential Joint Detection and Estimation with an Application to Joint Symbol Decoding and Noise Power Estimation

机译:顺序联合检测与估计在联合符号解码和噪声功率估计中的应用

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Jointly testing multiple hypotheses and estimating a random parameter of the underlying model is investigated in a sequential setup. The optimal scheme is designed such that it minimizes the expected number of used samples while keeping the probabilities of falsely rejecting a hypothesis and the mean-squared estimation errors below a pre-set level. The underlying constrained problem is first converted to an unconstrained problem and then reduced to an optimal stopping problem, whose solution is characterized by a non-linear Bellman equation. The optimal cost coefficients are obtained by exploiting a connection between the derivatives of the cost function and the detection/estimation errors. The paper concludes with a numerical example, namely solving the problem of sequential joint amplitudeshift keying symbol decoding and noise power estimation.
机译:在顺序设置中研究联合检验多个假设并估计基础模型的随机参数。设计最佳方案,以使其在将错误地拒绝假设和均方估计误差的概率保持在预设水平以下的同时,将使用样本的预期数量最小化。底层约束问题首先被转换为非约束问题,然后被简化为最优停止问题,其最优解以非线性贝尔曼方程为特征。通过利用成本函数的导数与检测/估计误差之间的联系来获得最佳成本系数。本文以一个数值例子作为结束,即解决了顺序联合幅度移键控符号解码和噪声功率估计的问题。

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