On Receiver Design for Diffusion-Based Molecular Communication

Ling-San Meng, Ping‐Cheng Yeh, Kwang‐Cheng Chen, Ian F. Akyildiz

IEEE Transactions on Signal Processing · 2014 · 106 citations · 29 references

Concepts

TL;DR

Diffusion-based communication uses molecules as carriers governed by diffusion laws and is a promising solution for end‑to‑end communication between nanoscale devices. The paper proposes a diffusion‑based communication system that handles stochastic signaling, arbitrary channel memory, and noisy reception, and introduces three low‑complexity signal‑processing techniques. The design considers one‑, two‑, and three‑dimensional diffusion, and proposes a low‑complexity one‑shot optimal detector for mutual‑information maximization along with a near‑ML sequence detector. Analytically, the study addresses signal processing, estimation, and detection under ISI and noise; numerically, the one‑shot detector with the proposed processing achieves near‑optimal throughput without a priori knowledge in both short‑ and long‑range scenarios, the receiver operates reliably even with infinite channel memory, and a capacity of one bit per channel use is attainable by extending the signaling interval.

Abstract

Diffusion-based communication refers to the transfer of information using molecules as message carriers whose propagation is governed by the laws of molecular diffusion. It has been identified that diffusion-based communication is one of the most promising solutions for end-to-end communication between nanoscale devices. In this paper, the design of a diffusion-based communication system considering stochastic signaling, arbitrary orders of channel memory, and noisy reception is proposed. The diffusion in the cases of one, two, and three dimensions are all considered. Three signal processing techniques for the molecular concentration with low computational complexity are proposed. For the detector design, both a low-complexity one-shot optimal detector for mutual information maximization and a near Maximum Likelihood (ML) sequence detector are proposed. To the best of our knowledge, our paper is the first that gives an analytical treatment of the signal processing, estimation, and detection problems for diffusion-based communication in the presence of ISI and reception noise. Numerical results indicate that the proposed signal processing technique followed by the one-shot detector achieves near-optimal throughput without the need of a priori information in both short-range and long-range diffusion-based communication scenarios, which suggests an ML sequence detector is not necessary. Furthermore, the proposed receiver design guarantees diffusion-based communication to operate without failure even in the case of infinite channel memory. A channel capacity of 1 bit per channel utilization can be ultimately achieved by extending the duration of the signaling interval.

References

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