RadEar: A Self-Supervised RF Backscatter System for Voice Eavesdropping and Separation
Qijun Wang, Peihao Yan, Chunqi Qian, Huacheng Zeng
Abstract
Eavesdropping on voice conversations presents a growing threat to personal privacy and information security. In this paper, we present RadEar, a novel RF backscatter-based system designed to enable covert voice eavesdropping through walls. RadEar consists of two key components: (i) a batteryless RF backscatter tag covertly deployed inside the target space, and (ii) an RF reader located outside the room that performs signal demodulation, voice separation, and denoising. The tag features a compact, dual-resonator design that achieves energy-efficient frequency modulation for continuous voice eavesdropping while mitigating self-interference by separating excitation and reflection frequencies. To overcome the challenges of weak signal reception and overlapping speech, the RF reader employs self-supervised learning models for voice separation and denoising, trained using a remix-based objective without requiring ground-truth labels. We fabricate and evaluate RadEar in real-world scenarios, demonstrating its ability to recover and separate human speech with high fidelity under practical constraints.
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- Unsupervised Sound Separation Using Mixture Invariant TrainingScott Wisdom, Efthymios Tzinis, Hakan Erdogan, Ron J. Weiss et al.NeurIPS 2020 · 227 citations
- AccEar: Accelerometer Acoustic Eavesdropping with Unconstrained VocabularyPengfei Hu, Hui Zhuang, Panneer Selvam Santhalingam, Riccardo Spolaor et al.S&P 2022 · 65 citations
- MILLIEAR: Millimeter-wave Acoustic Eavesdropping with Unconstrained VocabularyPengfei Hu, Yifan Ma, Panneer Selvam Santhalingam, Parth H. Pathak et al.INFOCOM 2022 · 60 citations
- mmEve: eavesdropping on smartphone's earpiece via COTS mmWave deviceChao Wang, Feng Lin, Tiantian Liu, Kaidi Zheng et al.MobiCom 2022 · 60 citations
- mmSpy: Spying Phone Calls using mmWave RadarsSuryoday Basak, Mahanth GowdaS&P 2022 · 57 citations
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