skip to main content
10.1145/3565287.3610262acmconferencesArticle/Chapter ViewAbstractPublication PagesmobihocConference Proceedingsconference-collections
research-article

LeakageScatter: Backscattering LiFi-leaked RF Signals

Published: 16 October 2023 Publication History

Abstract

Radio-Frequency (RF) backscatter has emerged as a low-power communication technique. Backscatter systems either rely on active signal generators (spectrum efficient, but dedicated infrastructure) or existing ambient wireless transmissions (existing infrastructure, but spectrum inefficient). In this paper, we aim to make RF backscatter spectrum efficient and at the same time work with existing infrastructure. We propose to leverage the deployment of LiFi networks built upon LED bulbs for pervasive RF backscatter. We experimentally demonstrate that LiFi, which passively leaks RF signals, can be exploited as a radio carrier generator for low-power RF backscatter. We further design LeakageScatter, the first backscatter system operating in the ISM band and exploiting LiFi-leaked RF signals, without the need to actively generate the carrier wave. We customize the design of the loop at the LiFi transmitter, as well as the coil antennas at the tag and RF backscatter receiver, to optimize the system performance. We propose to opportunistically enable the oscillator of the backscatter tag in the software that could reduce the energy consumption on backscattering by up to 75%. Experimental results show that LeakageScatter achieves a backscattering distance up to 10 m and 18 m in indoor and outdoor scenarios, respectively, without using a dedicated RF carrier generator.

References

[1]
2022. What is the Internet of Things? What IoT means and how it works. https://www.insiderintelligence.com/insights/internet-of-things-definition/.
[2]
Dinesh Bharadia, Kiran R. Joshi, Manikanta Kotaru, and Sachin Katti. 2015. BackFi: High Throughput WiFi Backscatter. SIGCOMM Comput. Commun. Rev. (2015).
[3]
Minhao Cui, Yuda Feng, Qing Wang, and Jie Xiong. 2020. Sniffing visible light communication through walls. In MobiCom.
[4]
Minhao Cui, Qing Wang, and Jie Xiong. 2020. Breaking the limitations of visible light communication through its side channel. In SenSys.
[5]
Minhao Cui, Qing Wang, and Jie Xiong. 2021. RadioInLight: doubling the data rate of VLC systems. In MobiCom.
[6]
Minhao Cui, Qing Wang, and Jie Xiong. 2022. Bracelet+: Harvesting the leaked RF energy in VLC with wearable bracelet antenna. In SenSys.
[7]
Jasper de Winkel, Vito Kortbeek, Josiah Hester, and Przemysław Pawełczak. 2020. Battery-Free Game Boy. In IMWUT (2020).
[8]
Joshua F Ensworth and et al. 2015. Every smart phone is a backscatter reader: Modulated backscatter compatibility with BLE devices. In RFID.
[9]
Ander Galisteo, Diego Juara, and Domenico Giustiniano. 2019. Research in visible light communication systems with OpenVLC1.3. In In Proceedings of IEEE WF-IoT.
[10]
Ander Galisteo, Ambuj Varshney, and Domenico Giustiniano. 2020. Two to Tango: Hybrid Light and Backscatter Networks for next Billion Devices. In MobiSys.
[11]
Seyed Keyarash Ghiasi, Marco A. Zúñiga Zamalloa, and Koen Langendoen. 2021. A Principled Design for Passive Light Communication. In MobiCom.
[12]
Xiuzhen Guo and et al. 2022. Saiyan: Design and Implementation of a Low-power Demodulator for LoRa Backscatter Systems. In NSDI.
[13]
IEEE. 2018. IEEE Standard for Local and metropolitan area networks-Part 15.7: Short-Range Optical Wireless Communications. (2018).
[14]
ITU-R. 2011. SM.2153-2: Technical and operating parameters and spectrum use for short-range radiocommunication devices. (2011).
[15]
Krishna Kadam and et al. 2018. Smart and precision polyhouse farming using visible light communication and internet of things. ICICC (2018).
[16]
Mohamad Katanbaf, Ali Saffari, and Joshua R. Smith. 2021. MultiScatter: Multistatic Backscatter Networking for Battery-Free Sensors. In SenSys.
[17]
Bryce Kellogg and et al. 2014. Wi-Fi Backscatter: Internet Connectivity for RF-Powered Devices. In SIGCOMM.
[18]
Vincent Liu and et al. 2014. Ambient Backscatter: Wireless Communication out of Thin Air. In SIGCOMM.
[19]
Muhammad Sarmad Mir and et al. 2021. PassiveLiFi: Rethinking LiFi for Low-Power and Long Range RF Backscatter. In MobiCom.
[20]
Muhammad Sarmad Mir and et al. 2023. TunnelLiFi: Bringing LiFi to Commodity Internet of Things Devices. In HotMobile.
[21]
Hantaro Nagaoka. 1909. The inductance coefficients of solenoids. The journal of the College of Science, Imperial University of Tokyo, Japan (1909).
[22]
Muhammad Amir Panhwar and et al. 2020. Li-Net: towards a smart Li-Fi vehicle network. Indian Journal of Science and Technology (2020).
[23]
Aaron N. Parks and et al. 2014. Turbocharging Ambient Backscatter Communication. SIGCOMM Comput. Commun. Rev. (2014).
[24]
Michael B Rahaim, Anna Maria Vegni, and Thomas DC Little. 2011. A hybrid radio frequency and broadcast visible light communication system. In GLOBECOM.
[25]
Vamsi Talla, Bryce Kellogg, Shyamnath Gollakota, and Joshua R Smith. 2017. Battery-free cellphone. IMWUT (2017).
[26]
Ambuj Varshney and Lorenzo Corneo. 2020. Tunnel Emitter: Tunnel Diode Based Low-Power Carrier Emitters for Backscatter Tags.
[27]
Roald K Wangsness and Ronald K Wangsness. 1979. Electromagnetic fields.
[28]
Chenren Xu, Lei Yang, and Pengyu Zhang. 2018. Practical backscatter communication systems for battery-free Internet of Things: A tutorial and survey of recent research. IEEE Signal Processing Magazine 35, 5 (2018), 16--27.
[29]
Xieyang Xu and et al. 2017. PassiveVLC: Enabling practical visible light backscatter communication for battery-free IoT applications. In MobiCom.
[30]
C Patrick Yue and S Simon Wong. 2000. Physical modeling of spiral inductors on silicon. IEEE Transactions on electron devices (2000).
[31]
Junbo Zhang, Elahe Soltanaghai, Artur Balanuta, and Reese Grimsley. 2022. PLatter: On the Feasibility of Building-scale Power Line Backscatter. In NSDI.
[32]
Pengyu Zhang, Dinesh Bharadia, Kiran Joshi, and Sachin Katti. 2016. HitchHike: Practical Backscatter Using Commodity WiFi. In SenSys.
[33]
Pengyu Zhang, Colleen Josephson, Dinesh Bharadia, and Sachin Katti. 2017. FreeRider: Backscatter Communication Using Commodity Radios. In CoNEXT.
[34]
Renjie Zhao, Purui Wang, Yunfei Ma, and et. al. 2020. NFC+ breaking NFC networking limits through resonance engineering. In SIGCOMM.

Cited By

View all
  • (2024)Practical Optical Camera Communication Behind Unseen and Complex BackgroundsProceedings of the 22nd Annual International Conference on Mobile Systems, Applications and Services10.1145/3643832.3661866(113-126)Online publication date: 3-Jun-2024

Recommendations

Comments

Information & Contributors

Information

Published In

cover image ACM Conferences
MobiHoc '23: Proceedings of the Twenty-fourth International Symposium on Theory, Algorithmic Foundations, and Protocol Design for Mobile Networks and Mobile Computing
October 2023
621 pages
ISBN:9781450399265
DOI:10.1145/3565287
Permission to make digital or hard copies of all or part of this work for personal or classroom use is granted without fee provided that copies are not made or distributed for profit or commercial advantage and that copies bear this notice and the full citation on the first page. Copyrights for components of this work owned by others than the author(s) must be honored. Abstracting with credit is permitted. To copy otherwise, or republish, to post on servers or to redistribute to lists, requires prior specific permission and/or a fee. Request permissions from [email protected].

Sponsors

Publisher

Association for Computing Machinery

New York, NY, United States

Publication History

Published: 16 October 2023

Permissions

Request permissions for this article.

Check for updates

Author Tags

  1. LiFi
  2. leaked RF signals
  3. backscatter
  4. system design
  5. implementation

Qualifiers

  • Research-article

Funding Sources

  • Ministry of Economic Affairs and Digital Transformation
  • European Union-NextGenerationEU

Conference

MobiHoc '23
Sponsor:

Acceptance Rates

Overall Acceptance Rate 296 of 1,843 submissions, 16%

Contributors

Other Metrics

Bibliometrics & Citations

Bibliometrics

Article Metrics

  • Downloads (Last 12 months)112
  • Downloads (Last 6 weeks)16
Reflects downloads up to 14 Jan 2025

Other Metrics

Citations

Cited By

View all
  • (2024)Practical Optical Camera Communication Behind Unseen and Complex BackgroundsProceedings of the 22nd Annual International Conference on Mobile Systems, Applications and Services10.1145/3643832.3661866(113-126)Online publication date: 3-Jun-2024

View Options

Login options

View options

PDF

View or Download as a PDF file.

PDF

eReader

View online with eReader.

eReader

Media

Figures

Other

Tables

Share

Share

Share this Publication link

Share on social media