English

Enhancing LR-FHSS Scalability Through Advanced Sequence Design and Demodulator Allocation

Networking and Internet Architecture 2024-07-08 v1

Abstract

The accelerating growth of the Internet of Things (IoT) and its integration with Low-Earth Orbit (LEO) satellites demand efficient, reliable, and scalable communication protocols. Among these, the Long-Range Frequency Hopping Spread Spectrum (LR-FHSS) modulation, tailored for LEO satellite IoT communications, sparks keen interest. This work presents a joint approach to enhancing the scalability of LR-FHSS, addressing the demand for massive connectivity. We deepen into Frequency Hopping Sequence (FHS) mechanisms within LR-FHSS, spotlighting the potential of leveraging Wide-Gap sequences. Concurrently, we introduce two novel demodulator allocation strategies, namely, ``Early-Decode" and ``Early-Drop," to optimize the utilization of LoRa-specific gateway decoding resources. Our research further validates these findings with extensive simulations, offering a comprehensive look into the future potential of LR-FHSS scalability in IoT settings.

Keywords

Cite

@article{arxiv.2407.03490,
  title  = {Enhancing LR-FHSS Scalability Through Advanced Sequence Design and Demodulator Allocation},
  author = {Diego Maldonado and Megumi Kaneko and Juan A. Fraire and Alexandre Guitton and Oana Iova and Herve Rivano},
  journal= {arXiv preprint arXiv:2407.03490},
  year   = {2024}
}
R2 v1 2026-06-28T17:28:32.300Z