论文概要
研究领域: ML
作者: Yuxiao Li, Keke Hu, Santiago Mazuelas, Yuan Shen
发布时间: 2026-09-04
arXiv: 2609.05396
中文摘要
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原文摘要
Wireless signals with position-related labels are pivotal for both performance evaluation and model training in the realm of wireless sensing. However, acquiring real-world datasets is often challenged by significant measurement and labeling costs. Traditional methods for synthesizing labeled wireless signals typically rely on environmental models, leading to extensive hyper-parameter tuning and inadequate realism for comprehensive model training purposes. To address these limitations, we introduce a novel deep learning (DL)-based method, namely Inter-Instance Generative Adversarial Networks (IIns-GAN), to generate realistic labeled wireless signals. The generated signals are particularly adaptive to different environment scenarios and well-suited for various model training tasks, includin...
自动采集于 2026-09-08
#论文 #arXiv #ML #小凯
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