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Adaptive Detection and ISI Mitigation for Mobile Molecular Communication.

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    This study introduces adaptive methods for mobile molecular communication, addressing challenges in dynamic environments. The proposed schemes effectively mitigate intersymbol interference and improve signal detection reliability for moving receivers.

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    Area of Science:

    • Biomedical Engineering
    • Communication Systems
    • Nanotechnology

    Background:

    • Current molecular communication research primarily addresses static transmitter-receiver scenarios.
    • Mobile molecular communication is crucial for applications like targeted drug delivery and tracking.
    • Limited research exists on mobile molecular communication systems.

    Purpose of the Study:

    • To develop adaptive detection and intersymbol interference (ISI) mitigation schemes for mobile molecular communication.
    • To address the challenges posed by a dynamic channel impulse response in mobile scenarios.
    • To enhance the reliability and robustness of signal detection with a mobile receiver.

    Main Methods:

    • A static transmitter and a mobile bacterium-based receiver performing a random walk were modeled.
    • An adaptive ISI mitigation method was developed, incorporating dynamic distance estimation and impulse response reconstruction per symbol interval.
    • Two adaptive detection schemes were proposed: concentration-based adaptive threshold detection and peak-time-based adaptive detection.

    Main Results:

    • The proposed adaptive ISI mitigation significantly reduced the impact of intersymbol interference.
    • The adaptive detection schemes demonstrated reliability and robustness in the mobile molecular communication scenario.
    • Dynamic channel impulse response was effectively estimated and utilized for signal detection.

    Conclusions:

    • The developed adaptive schemes are effective for mobile molecular communication systems.
    • The proposed methods overcome limitations of fixed-distance detection schemes in dynamic environments.
    • This work advances the feasibility of mobile molecular communication for practical applications.