Theoretical Concept Study of Cooperative Abnormality Detection and Localization in Fluidic-Medium Molecular Communication
Ladan Khaloopour, Mahtab Mirmohseni, Masoumeh Nasiri-Kenari

TL;DR
This paper develops a theoretical framework for cooperative abnormality detection and localization using mobile sensors in a fluidic medium, incorporating sensor imperfections and molecular communication strategies to improve accuracy.
Contribution
It introduces a novel theoretical model for cooperative abnormality detection and localization in molecular communication, analyzing sensor activation, decision schemes, and error probabilities.
Findings
Cooperative sensor activation significantly reduces detection errors.
Optimal decision schemes improve localization accuracy.
Sensor imperfections and noise are effectively modeled and analyzed.
Abstract
In this paper, we propose a theoretical framework for cooperative abnormality detection and localization systems by exploiting molecular communication setup. The system consists of mobile sensors in a fluidic medium, which are injected into the medium to search the environment for abnormality. Some fusion centers (FC) are placed at specific locations in the medium, which absorb all sensors arrived at their locations, and by observing its state, each FC decides on the abnormality existence and/or its location. To reduce the effects of sensor imperfection, we propose a scheme where the sensors release some molecules (i.e., markers) into the medium after they sense an abnormality. If the goal is abnormality detection, the released molecules are used to cooperatively activate other sensors. If the goal is abnormality localization, the released molecules are used by the FCs to determine the…
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Taxonomy
TopicsMolecular Communication and Nanonetworks · Advanced biosensing and bioanalysis techniques · Gene Regulatory Network Analysis
