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Edge-assisted Adaptive Hopping Communication for Green WPT-enabled Networks

  • Chenhong Cao
  • , Wei Gong
  • , Maoran Jiang
  • , Si Chen
  • , Haoquan Zhou
  • , Xuesong Wang*
  • , Yuan Ding
  • , Amiya Nayak
  • *Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

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Abstract

The vision of sustainable 6G connectivity infrastructure, from space to ground, critically relies on green communication protocols that can efficiently operate within the constraints of wireless power transfer (WPT). Backscatter communication emerges as a cornerstone for such protocols, yet its potential is hindered by the inability to adapt to the dynamic spectrum and energy conditions inherent to WPT-powered networks. This paper presents ChannelDance, an edge-assisted adaptive hopping system for Bluetooth Low Energy (BLE) backscatter, architected specifically for green and sustainable connectivity in WPT-enabled environments. By leveraging real-time excitation channel intelligence from a low-latency edge server, ChannelDance dynamically configures the tag modulation clock, enabling robust and spectrally agile frequency hopping. This agility is paramount for maintaining reliable communication links amidst the interference and intermittent energy supply characteristic of integrated WPT systems. Our prototype demonstrates a median hopping success rate of 93% across 40 channels, a 3.5× goodput gain with channel optimization, and the ability to establish connections with commodity BLE devices under hopping conditions. ChannelDance thus establishes a foundational green communication primitive for future sustainable 6G networks, where seamless coexistence with energy transfer signals is not a feature but a fundamental requirement.
Original languageEnglish
Pages (from-to)5089 - 5104
Number of pages16
JournalIEEE Journal on Selected Areas in Communications
Volume44
Early online date8 Jun 2026
DOIs
Publication statusPublished - 2026

Keywords

  • Bluetooth low energy
  • Edge-assisted adaptive hopping
  • backscatter communication
  • wireless power transfer

ASJC Scopus subject areas

  • Computer Networks and Communications
  • Electrical and Electronic Engineering

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