计算机科学
稳健性(进化)
人工智能
深度学习
雷达
人工神经网络
机器学习
训练集
对抗制
深层神经网络
带宽(计算)
无线电频率
生成对抗网络
培训(气象学)
多普勒雷达
模式识别(心理学)
电信
化学
基因
生物化学
气象学
物理
作者
Sevgi Zübeyde Gürbüz,Mohammed Mahbubur Rahman,Emre Kurtoğlu,Trevor Macks,Francesco Fioranelli
摘要
Deep neural networks have become increasingly popular in radar micro-Doppler classification; yet, a key challenge, which has limited potential gains, is the lack of large amounts of measured data that can facilitate the design of deeper networks with greater robustness and performance. Several approaches have been proposed in the literature to address this problem, such as unsupervised pre-training and transfer learning from optical imagery or synthetic RF data. This work investigates an alternative approach to training which involves exploitation of “datasets of opportunity" micro-Doppler datasets collected using other RF sensors, which may be of a different frequency, bandwidth or waveform - for the purposes of training. Specifically, this work compares in detail the cross-frequency training degradation incurred for several different training approaches and deep neural network (DNN) architectures. Results show a 70% drop in classification accuracy when the RF sensors for pre-training, fine-tuning, and testing are different, and a 15% degradation when only the pre-training data is different, but the fine-tuning and test data are from the same sensor. By using generative adversarial networks (GANs), a large amount of synthetic data is generated for pre-training. Results show that cross-frequency performance degradation is reduced by 50% when kinematically-sifted GAN-synthesized signatures are used in pre-training.
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