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Design and Implementation of an IoT-based Respiratory Motion Sensor

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arxiv 2412.05405 v1 pith:6NNGRVKY submitted 2024-12-06 eess.SP

classification eess.SP
keywords changesconsumptiondesigndevicehighimplementationpowerresistance
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In the last few decades, several wearable devices have been designed to monitor respiration rate in an effort to capture pulmonary signals with higher accuracy and reduce patients' discomfort during use. In this article, we present the design and implementation of a device for real-time monitoring of respiratory system movements. When breathing, the circumference of the abdomen and thorax changes; therefore, we used a Force Sensing Resistor (FSR) attached to the Printed Circuit Board (PCB) to measure this variation as the patient inhales and exhales. The mechanical strain this causes changes the FSR electrical resistance accordingly. Also, for streaming this variable resistance on an Internet of Things (IoT) platform, Bluetooth Low Energy (BLE) 5 is utilized due to the adequate throughput, high accessibility, and possibility of power consumption reduction. Furthermore, this device presents features such as low power consumption (0.4 mW), high precision, and ease of use.

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Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Blind Source Separation in Biomedical Signals Using Variational Methods

    eess.AS 2025-06 conditional novelty 4.0 of 10

    A VAE trained on mixed manikin heart and lung sounds produces distinct latent clusters and visually matching source spectrograms.

  2. Large Language Models and Non-Negative Matrix Factorization for Bioacoustic Signal Decomposition

    eess.AS 2025-07 reject novelty 2.0 of 10

    An NMF-plus-LLM pipeline separates overlapping heart and lung sounds and generates tentative clinical labels, but the demonstration is qualitative and lacks validation.

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