ChemSICal-Net: Timing-Controlled Chemical Reaction Network for Successive Interference Cancellation in Molecular Multiple Access
Alexander Wietfeld, Oguz Turgut, Eneritz Somoza Rodr\'iguez, Wolfgang Kellerer

TL;DR
This paper introduces ChemSICal-Net, a chemical reaction network model with timing control and Bayesian optimization for molecular communication, demonstrating improved detection accuracy and optimized parameters in biological environments.
Contribution
It presents a novel CRN-based framework with timing control and Bayesian optimization for molecular communication systems, addressing implementation challenges at nanoscale biological environments.
Findings
Timing control via chemical clock doubles detection accuracy in short decision time scenarios.
Bayesian optimization reliably tunes reaction parameters, improving performance by an order of magnitude.
The system highlights the importance of multi-scale approaches combining external optimization and stochastic simulation.
Abstract
MC networks are envisioned to enable synthetic information exchange between nanoscale biological entities. For many algorithm proposals in the MC research field, the question of implementation at nanoscales and in biological environments remains open. Chemical reaction networks (CRNs) provide a natural framework to model computing processes in biological systems, while detailed simulations capture realistic stochastic effects. In this work, we present ChemSICal-Net, a comprehensive CRN simulation model of a chemical receiver implementing successive interference cancellation (SIC) to differentiate messages from multiple transmitters. We present the structure of the SIC algorithm in the form of basic chemical building blocks and incorporate clocked timing control by a chemical oscillator. We propose an adaptive Bayesian optimization (BO) scheme with a Gaussian process surrogate to find…
Peer Reviews
No public reviews on file for this paper yet. If you reviewed it on a platform where reviews are public (OpenReview, ICLR, NeurIPS, ICML), you can paste yours below so the community can read it here.
Videos
No videos yet. Explain this paper in a talk, walkthrough, or lecture? Add one.
Taxonomy
TopicsMolecular Communication and Nanonetworks · Advanced biosensing and bioanalysis techniques · Gene Regulatory Network Analysis
