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A probabilistic approach to time delay estimation

机译:时延估计的概率方法

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摘要

Time delay estimation is a very general problem with wide range of applications. When noisy repetitive signals are observed, the noise cancellation is achieved by averaging perfectly aligned signals. A time delay estimator is developed for determining time delay between signals received on different trials in the presence of uncorrelated noise. The estimator is based on a probabilistic generative model for delayed signals, and tries to find the delay and the source signal simultaneously so that maximum likelihood is achieved. An iterative method based on the Expectation-Maximization algorithm is used for finding maximum likelihood estimate of parameters. The estimator has been tested on three types of synthetic signals. The result shows that it can tolerate 5 to 10dB more noise while achieving the same performance as cross-correlation estimator.
机译:时延估计是广泛应用中的一个非常普遍的问题。当观察到有噪声的重复信号时,可通过对完全对齐的信号求平均来实现噪声消除。开发了一种时延估计器,用于确定在存在不相关噪声的情况下在不同试验中接收到的信号之间的时延。估计器基于延迟信号的概率生成模型,并尝试同时找到延迟和源信号,以便获得最大似然。使用基于期望最大化算法的迭代方法来找到参数的最大似然估计。估算器已针对三种类型的合成信号进行了测试。结果表明,在实现与互相关估计器相同的性能的同时,它还可以忍受5至10dB的噪声。

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