Publication:
ART-Rx: a proportional-integral-derivative (PID) controlled adaptive real-time threshold receiver for molecular communication

Placeholder

School / College / Institute

Organizational Unit

Program

KU Authors

Co-Authors

Ni, H.

Editor & Affiliation

Compiler & Affiliation

Translator

Other Contributor

Date

Language

eng

Embargo Status

N/A

Journal Title

Journal ISSN

Volume Title

Alternative Title

Abstract

Diffusion-based molecular communication (MC) suffers from stochastic propagation, inter-symbol interference (ISI), and fast microfluidic variations. We present ART-Rx, an adaptive threshold receiver that embeds a proportional–integral–derivative (PID) controller on a system-on-chip and updates the decision boundary once per symbol. Simulations sweeping interferer density, CSK levels, flow, separation, diffusion, and binding kinetics show a mean bit-error ratio (BER) of 1.8×10-2; BER remains below 6.0×10-2 for -4 dB≤SNR≤19 dB and does not exceed 7.4×10-2 for transmitter–receiver separations up to 10-2 m. ART-Rx cuts BER by 2.6× relative to the best non-ML baseline and outperforms a statistical fixed-threshold detector while retaining O(1) operations per symbol. Ziegler–Nichols gain scheduling combined with integral wind-up protection preserves closed-loop stability across strongly non-linear regimes, positioning ART-Rx as a practical front-end for resource-constrained Internet-of-Bio-Nano-Things nodes and implantable biosensors.

Source

Publisher

IEEE

Subject

Engineering, Telecommunications

Citation

Has Part

Source

IEEE Transactions on Molecular, Biological, and Multi-Scale Communications

Book Series Title

Edition

DOI

10.1109/tmbmc.2025.3581470

item.page.datauri

Link

Rights

N/A

Copyrights Note

Creative Commons license

Except where otherwised noted, this item's license is described as N/A

Endorsement

Review

Supplemented By

Referenced By

Related Goal

0

Views

0

Downloads

View PlumX Details