English

An Acoustic Communication Model in Plants

Signal Processing 2025-12-02 v1

Abstract

Molecular communication (MC) studies biological signals that are found in nature. Most MC literature focuses on particle properties, even though many natural phenomena exhibit wave-like behavior. One such signal is sound waves. Understanding how sound waves are used in nature can help us better utilize this signal in our interactions with our environment. To take a step in this direction, in this paper, we examine how plants process incoming sound waves and take informed actions. Indeed, plants respond to sound, yet no quantitative communication-theoretic model currently explains this behavior. This study develops the first end-to-end acoustic communication framework for plants. The model is formed following the biological steps of the incoming signal, and a mathematical description is constructed at each step following basic biological models. The resulting end-to-end communication-theoretic model is analyzed using MATLAB. Simulations show that a 200200 HzHz, 2020 muPamu Pa stimulus elevates cytosolic Ca2+Ca^{2+} from 150150 nMnM to 230±10230 \pm 10 nMnM within 5050 seconds which can cause root bending in plants in the long run. This work establishes quantitative phytoacoustics, enabling bio-inspired acoustic connections for precision agriculture and plant signaling research.

Keywords

Cite

@article{arxiv.2512.01096,
  title  = {An Acoustic Communication Model in Plants},
  author = {Fatih Merdan and Ozgur B. Akan},
  journal= {arXiv preprint arXiv:2512.01096},
  year   = {2025}
}

Comments

12 pages, 13 figures

R2 v1 2026-07-01T08:02:42.096Z