Papers
Topics
Authors
Recent
Gemini 2.5 Flash
Gemini 2.5 Flash
144 tokens/sec
GPT-4o
7 tokens/sec
Gemini 2.5 Pro Pro
45 tokens/sec
o3 Pro
4 tokens/sec
GPT-4.1 Pro
38 tokens/sec
DeepSeek R1 via Azure Pro
28 tokens/sec
2000 character limit reached

Deployment of an IoT System for Adaptive In-Situ Soundscape Augmentation (2204.13890v1)

Published 29 Apr 2022 in eess.AS, cs.SD, cs.SY, and eess.SY

Abstract: Soundscape augmentation is an emerging approach for noise mitigation by introducing additional sounds known as "maskers" to increase acoustic comfort. Traditionally, the choice of maskers is often predicated on expert guidance or post-hoc analysis which can be time-consuming and sometimes arbitrary. Moreover, this often results in a static set of maskers that are inflexible to the dynamic nature of real-world acoustic environments. Overcoming the inflexibility of traditional soundscape augmentation is twofold. First, given a snapshot of a soundscape, the system must be able to select an optimal masker without human supervision. Second, the system must also be able to react to changes in the acoustic environment with near real-time latency. In this work, we harness the combined prowess of cloud computing and the Internet of Things (IoT) to allow in-situ listening and playback using microcontrollers while delegating computationally expensive inference tasks to the cloud. In particular, a serverless cloud architecture was used for inference, ensuring near real-time latency and scalability without the need to provision computing resources. A working prototype of the system is currently being deployed in a public area experiencing high traffic noise, as well as undergoing public evaluation for future improvements.

Definition Search Book Streamline Icon: https://streamlinehq.com
References (23)
  1. International Organization for Standardization, “ISO 12913-1 Acoustics. Soundscape Part 1: Definition and conceptual framework,” 2014.
  2. International Organization for Standardization, “ISO/TS 12913-2 Acoustics. Soundscape Part 2: Data collection and reporting requirements,” 2018.
  3. International Organization for Standardization, “ISO/TS 12913-3 Acoustics. Soundscape Part 3: Data analysis,” 2019.
  4. B. C. Pijanowski, L. J. Villanueva-Rivera, S. L. Dumyahn, A. Farina, B. L. Krause, B. M. Napoletano, S. H. Gage, and N. Pieretti, “Soundscape ecology: The science of sound in the landscape,” BioScience, vol. 61, no. 3, pp. 203–216, 2011.
  5. J. Kang, F. Aletta, T. T. Gjestland, L. A. Brown, D. Botteldooren, B. Schulte-Fortkamp, P. Lercher, I. van Kamp, K. Genuit, A. Fiebig, J. L. Bento Coelho, L. Maffei, and L. Lavia, “Ten questions on the soundscapes of the built environment,” Building and Environment, vol. 108, no. August, pp. 284–294, 2016.
  6. T. Van Renterghem, K. Vanhecke, K. Filipan, K. Sun, T. De Pessemier, B. De Coensel, W. Joseph, and D. Botteldooren, “Interactive soundscape augmentation by natural sounds in a noise polluted urban park,” Landscape and Urban Planning, vol. 194, 2020.
  7. J. Y. Hong, B. Lam, Z. T. Ong, K. Ooi, W. S. Gan, J. Kang, S. Yeong, I. Lee, and S. T. Tan, “A mixed-reality approach to soundscape assessment of outdoor urban environments augmented with natural sounds,” Building and Environment, vol. 194, no. February, p. 107688, 2021.
  8. Z. Abdalrahman and L. Galbrun, “Audio-visual preferences, perception, and use of water features in open-plan offices,” Journal of the Acoustical Society of America, vol. 147, no. 3, pp. 1661–1672, 2020.
  9. P. Devos, F. Aletta, P. Thomas, K. Filipan, M. Petrovic, D. Botteldooren, T. V. Mynsbrugge, D. Van de Velde, and P. De Vriendt, “Soundscape design for management of behavioral disorders: a pilot study among nursing home residents with dementia,” in Proceedings of the 47th International Congress and Exposition on Noise Control Engineering, Institute of Noise Control Engineering, 2018.
  10. M. L. Eriksson, R. Atienza, and L. Pareto, “The Sound Bubble: A context-sensitive space in the space,” Organised Sound, vol. 22, no. 1, pp. 130–139, 2017.
  11. K. Ooi, K. N. Watcharasupat, B. Lam, Z.-T. Ong, and W.-S. Gan, “Probably Pleasant? A Neural-Probabilistic Approach to Automatic Masker Selection for Urban Soundscape Augmentation,” in Proceedings of the 2022 IEEE International Conference on Acoustics, Speech and Signal Processing, 2022.
  12. K. N. Watcharasupat, K. Ooi, B. Lam, T. Wong, Z.-T. Ong, and W.-S. Gan, “Autonomous In-Situ Soundscape Augmentation via Joint Selection of Masker and Gain,” 2022.
  13. Amazon Web Services, “Overview of Amazon Web Services: AWS Whitepaper,” 2022.
  14. E. L. Tan, F. A. Karnapi, L. J. Ng, K. Ooi, and W. S. Gan, “Extracting Urban Sound Information for Residential Areas in Smart Cities Using an End-to-End IoT System,” IEEE Internet of Things Journal, vol. 4662, no. c, 2021.
  15. Amazon Web Services, “AWS General Reference: Reference Guide,” 2022.
  16. J. Alakuijala, “WebP Lossless Bitstream Specification,” 2012.
  17. International Organization for Standardization, “ISO/IEC 8859-1:1998 Information technology. 8-bit single-byte coded graphic character sets. Part 1: Latin alphabet No. 1,” no. 1, 1998.
  18. M. Abadi, P. Barham, J. Chen, Z. Chen, A. Davis, J. Dean, M. Devin, S. Ghemawat, G. Irving, M. Isard, M. Kudlur, J. Levenberg, R. Monga, S. Moore, D. G. Murray, B. Steiner, P. Tucker, V. Vasudevan, P. Warden, M. Wicke, Y. Yu, and X. Zheng, “TensorFlow: A system for large-scale machine learning,” in Proceedings of the 12th USENIX Symposium on Operating Systems Design and Implementation, pp. 265–283, 2016.
  19. C. R. Harris, K. J. Millman, S. J. van der Walt, R. Gommers, P. Virtanen, D. Cournapeau, E. Wieser, J. Taylor, S. Berg, N. J. Smith, R. Kern, M. Picus, S. Hoyer, M. H. van Kerkwijk, M. Brett, A. Haldane, J. F. del Río, M. Wiebe, P. Peterson, P. Gérard-Marchant, K. Sheppard, T. Reddy, W. Weckesser, H. Abbasi, C. Gohlke, and T. E. Oliphant, “Array programming with NumPy,” Nature, vol. 585, no. 7825, pp. 357–362, 2020.
  20. B. De Coensel, K. Sun, and D. Botteldooren, “Urban Soundscapes of the World: Selection and reproduction of urban acoustic environments with soundscape in mind,” in Proceedings of the 46th International Congress and Exposition on Noise Control Engineering, 2017.
  21. K. Ooi, Y. Xie, B. Lam, and W. S. Gan, “Automation of binaural headphone audio calibration on an artificial head,” MethodsX, vol. 8, p. 101288, 1 2021.
  22. A. Casalboni, E. Petersen, M. Ronchetti, C. Blackwell, C. Pastorini, G. Lipták, T. de Brouwer, C. Munns, Dayzen, D. Zhang, B. Sutterfield, G. Papkala, and S. Mosek, “AWS Lambda Power Tuning,” 2022.
  23. F. A. Karnapi, B. Lam, K. Ooi, Y.-T. Lau, K. Watcharasupat, T. Wong, W.-S. Gan, J. Hong, S. Yeong, and I. Lee, “Development of a feedback interface for in-situ soundscape evaluation,” in Proceedings of the 50th International Congress and Expo on Noise Control Engineering, (Washington, D.C., USA), I-INCE, 2021.
Citations (5)

Summary

We haven't generated a summary for this paper yet.