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A study of several model selection criteria for determining the number of signals

机译:对确定信号数量的几种模型选择标准的研究

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Addressing the problem of detecting the number of source signals as selecting the hidden dimensionality of Factor Analysis (FA) model, we investigate several model selection criteria via a new empirical analyzing tool that examines the joint effect of signal-noise ratio (SNR) and sample size N on the model selection performance. The contours of the model selection accuracies visualize a three-region partition on the space of SNR andN, and a diminishing marginal effect which trades off SNR and N on the performance. Moreover, the newly derived Variational Bayes algorithm and three variants of Bayesian Ying-Yang (BYY) algorithms are more robust against reducing SNR and N, where the BYY with priors' hyperparameters updated is the best in general.
机译:解决了通过选择因素分析(FA)模型的隐维来检测源信号数量的问题,我们通过一种新的经验分析工具研究了几种模型选择标准,该工具分析了信噪比(SNR)和样本的共同影响尺寸N对选型性能的影响。模型选择的轮廓精确地在SNR和N的空间上可视化了三个区域的划分,并减少了在性能上折衷SNR和N的边际效应。此外,新派生的变分贝叶斯算法和贝叶斯英阳(BYY)算法的三个变体在降低SNR和N方面更具鲁棒性,其中更新了先验超参数的BYY通常是最好的。

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