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Synthesis and Analysis of Algorithms for Digital Signal Recognition in Conditions of Deforming Distortions and Additive Noise

机译:变形和加性噪声条件下数字信号识别算法的综合与分析

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摘要

AbstractThe problem of digital signal recognition has been considered in conditions of deforming distortions of the waveform of these signals and additive Gaussian noise. A mathematical model for introducing deformations of the known or random waveform signals is proposed for synthesizing recognition algorithms. The model is based on introducing the nonlinear deformation operator as an operator of permutations with repetitions of elements of the initial discrete signal with addition of additive noise component caused by quantization errors of continuous deformation function. Two recognition algorithms were synthesized and investigated. The first is an optimal one based on the exact calculation of likelihood functions, and the second is a quasi-optimal algorithm based on using the Gaussian approximation of likelihood functions. These algorithms were simulated for different variants of the specified values of deforming distortions in the form of determinate functions and in the form of random function realizations. The experimental error probability was compared with its theoretical estimate at different values of signal-to-noise ratio.
机译: Abstract 在这些信号的波形变形失真和加性高斯噪声的条件下,已经考虑了数字信号识别问题。提出了一种引入已知或随机波形信号变形的数学模型,用于合成识别算法。该模型基于引入非线性变形算子作为置换算子,该算子与初始离散信号的元素重复,并添加了由连续变形函数的量化误差引起的加性噪声​​分量。合成并研究了两种识别算法。第一种是基于似然函数的精确计算的最优算法,第二种是基于使用似然函数的高斯近似的准最优算法。对这些算法进行了仿真,以确定函数形式和随机函数实现形式针对变形畸变的指定值的不同变体进行了仿真。在不同的信噪比值下,将实验误差概率与其理论估计值进行了比较。

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