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Channel Knowledge Map Construction: Recent Advances and Open Challenges

  • Zixiang Ren
  • , Juncong Zhou
  • , Jie Xu*
  • , Ling Qiu
  • , Yong Zeng
  • , Han Hu
  • , Juyong Zhang
  • , Rui Zhang
  • *Corresponding author for this work
  • The Chinese University of Hong Kong, Shenzhen
  • University of Science and Technology of China
  • Southeast University, Nanjing
  • Beijing Institute of Technology
  • National University of Singapore

Research output: Contribution to journalArticlepeer-review

Abstract

Channel knowledge map (CKM) has emerged as a pivotal technology for environment-aware wireless communications and sensing, which provides a priori location-specific channel knowledge to facilitate network optimization. Efficient CKM construction is an important technical problem for its effective implementation. This article provides a comprehensive overview of recent advances in CKM construction. First, we examine classical interpolation-based CKM construction methods, highlighting their limitations in practical deployments. Next, we explore image processing and generative artificial intelligence (AI) techniques, which leverage feature extraction to construct CKMs based on environmental knowledge. Furthermore, we present emerging wireless radiance field (WRF) frameworks that exploit neural radiance fields or Gaussian splatting to construct high-fidelity CKMs from sparse measurement data. Finally, we outline various future research directions in real-time and cross-domain CKM construction, as well as cost-efficient deployment of CKMs.

Original languageEnglish
JournalIEEE Wireless Communications
DOIs
Publication statusAccepted/In press - 2026
Externally publishedYes

Keywords

  • Channel knowledge map (CKM)
  • environment-aware communication
  • generative AI
  • wireless radiance field

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