4.6 Article

On the Post Hoc Explainability of Optimized Self-Organizing Reservoir Network for Action Recognition

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SENSORS
卷 22, 期 5, 页码 -

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MDPI
DOI: 10.3390/s22051905

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echo state networks; action recognition; self-organizing networks; deep neural networks

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This work proposes a novel unsupervised self-organizing network, called SO-ConvESN, for human action recognition. The network utilizes Recurrent Plots and Recurrence Quantification Analysis techniques for explaining and tuning ESN hyperparameters, and is cascaded with a CNN for action recognition. Experimental results demonstrate competitive recognition accuracy.
This work proposes a novel unsupervised self-organizing network, called the Self-Organizing Convolutional Echo State Network (SO-ConvESN), for learning node centroids and interconnectivity maps compatible with the deterministic initialization of Echo State Network (ESN) input and reservoir weights, in the context of human action recognition (HAR). To ensure stability and echo state property in the reservoir, Recurrent Plots (RPs) and Recurrence Quantification Analysis (RQA) techniques are exploited for explainability and characterization of the reservoir dynamics and hence tuning ESN hyperparameters. The optimized self-organizing reservoirs are cascaded with a Convolutional Neural Network (CNN) to ensure that the activation of internal echo state representations (ESRs) echoes similar topological qualities and temporal features of the input time-series, and the CNN efficiently learns the dynamics and multiscale temporal features from the ESRs for action recognition. The hyperparameter optimization (HPO) algorithms are additionally adopted to optimize the CNN stage in SO-ConvESN. Experimental results on the HAR problem using several publicly available 3D-skeleton-based action datasets demonstrate the showcasing of the RPs and RQA technique in examining the explainability of reservoir dynamics for designing stable self-organizing reservoirs and the usefulness of implementing HPOs in SO-ConvESN for the HAR task. The proposed SO-ConvESN exhibits competitive recognition accuracy.

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