作者
Jing Guo, Raghu G Raj, David J Love
发表日期
2020/5/4
研讨会论文
ICASSP 2020-2020 IEEE International Conference on Acoustics, Speech and Signal Processing (ICASSP)
页码范围
3882-3886
出版商
IEEE
简介
The number of applications requiring signal classification continues to climb, fueled at least partly by the increase in sophistication and throughput of mobile devices. One particular use case of interest is when a sensor can record samples, process the samples, and transmit this data. In this paper, we are interested in understanding the design and behavior of these relay-like classification nodes. We propose a system model consisting of a compress-and-forward relay network where the data at a given relay node is quantized and broadcasted to a fusion center which will determine a corresponding class label for the sample data using online process. In this context, we propose and study an online kernel scalar quantization learning strategy to estimate the decision function and associated empirical conditional probabilities to enhance the overall classification accuracy rate. In doing so, we devise a jointly optimum …
引用总数
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