WindDancer: Understanding Acoustic Sensing under Ambient Airflow
Kuang Yuan, Dong Li, Hao Zhou, Zhehao Li, Lili Qiu, Swarun Kumar, Jie Xiong
Abstract
Acoustic sensing has recently garnered significant interest for a wide range of applications ranging from motion tracking to health monitoring. However, prior works overlooked an important real-world factor affecting acoustic sensing systems-the instability of the propagation medium due to ambient airflow. Airflow introduces rapid and random fluctuations in the speed of sound, leading to performance degradation in acoustic sensing tasks. This paper presents WindDancer, the first comprehensive framework to understand how ambient airflow influences existing acoustic sensing systems, as well as provides solutions to enhance systems performance in the presence of airflow. Specifically, our work includes a mechanistic understanding of airflow interference, modeling of sound speed variations, and analysis of how several key real-world factors interact with airflow. Furthermore, we provide practical recommendations and signal processing solutions to improve the resilience of acoustic sensing systems for real-world deployment. We envision that WindDancer establishes a theoretical foundation for understanding the impact of airflow on acoustic sensing, and advances the reliability of acoustic sensing technologies for broader adoption.
CCS Concepts: • Human-centered computing → Ubiquitous and mobile computing systems and tools; • Computer systems organization → Sensors and actuators.
Ask about this paper
Your agent reads all of it.
Lune indexed this paper to the last equation, along with the top-tier papers that cite it. Ask a question and the answer quotes them.
Your agent calls
Luneget_paper_fulltext
Free to start. No credit card required.
Terminal
Install the CLIlune papers fulltext 5b3fb963-93a9-4eef-a315-68520143776dCited by top-tier papers2
- ASE: Practical Acoustic Speed Estimation Beyond Doppler via Sound Diffusion FieldSheng Lyu, Chenshu WuUbiComp 2025 · 4 citations
- SonicSieve: Bringing Directional Speech Extraction to Smartphones Using Acoustic MicrostructuresKuang Yuan, Yifeng Wang, Xiyuxing Zhang, Chengyi Shen et al.CHI 2026 · 1 citation
Builds on16
- V2iFi: in-Vehicle Vital Sign Monitoring via Compact RF SensingTianyue Zheng, Zhe Chen, Chao Cai, Jun Luo et al.UbiComp 2020 · 147 citations
- UltraSE: single-channel speech enhancement using ultrasoundKe Sun, Xinyu ZhangMobiCom 2021 · 69 citations
- DeepRange: Acoustic Ranging via Deep LearningWenguang Mao, Wei Sun, Mei Wang, Lili QiuUbiComp 2021 · 49 citations
- Your Smart Speaker Can "Hear" Your Heartbeat!Fusang Zhang, Zhi Wang, Beihong Jin, Jie Xiong et al.UbiComp 2021 · 47 citations
- BlinkListener: "Listen" to Your Eye Blink Using Your SmartphoneJialin Liu, Dong Li, Lei Wang, Jie XiongUbiComp 2021 · 41 citations
Related papers
- Enabling Contact-free Acoustic Sensing under Device MotionJialin Liu, Dong Li, Lei Wang, Fusang Zhang et al.UbiComp 2022 · 18 citations
- Fall Detection via Inaudible Acoustic SensingJie Lian, Xu Yuan, Ming Li, Nian-Feng TzengUbiComp 2021 · 48 citations
- MSense: Boosting Wireless Sensing Capability Under Motion InterferenceZhaoxin Chang, Fusang Zhang, Jie Xiong, Weiyan Chen et al.MobiCom 2024 · 40 citations
- mmMUSE: An mmWave-based Motion-resilient Universal Speech Enhancement SystemLingyu Wang, Kai Wang, Dequan Wang, You Zuo et al.UbiComp 2026 · 2 citations
- FlowSense: Monitoring Airflow in Building Ventilation Systems Using Audio SensingBhawana Chhaglani, Camellia Zakaria, Adam Lechowicz, Jeremy Gummeson et al.UbiComp 2022 · 22 citations
