Proceedings of the 18th International Conference on Information Processing in Sensor Networks 2019
DOI: 10.1145/3302506.3312488
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How many climb the matterhorn?

Abstract: In this demo abstract we present a custom-built low-power geophone sensor node which features on-device mountaineer classification using a convolutional neural network. The execution of such a processing-heavy algorithm on an embedded platform is enabled by optimizing the memory requirement of the neural network through advanced quantization and pipelining techniques. As a result, real-time classification with low energy consumption can be achieved.

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