A Neuromorphic Electronic Nose Design

Fuente: arXiv
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Hauptverfasser: Rastogi, Shavika, Dennler, Nik, Schmuker, Michael, van Schaik, André
Format: Preprint
Veröffentlicht: 2024
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author Rastogi, Shavika
Dennler, Nik
Schmuker, Michael
van Schaik, André
author_facet Rastogi, Shavika
Dennler, Nik
Schmuker, Michael
van Schaik, André
contents Rapid detection of gas concentration is important in different domains like gas leakage monitoring, pollution control, and so on, for the prevention of health hazards. Out of different types of gas sensors, Metal oxide (MOx) sensors are extensively used in such applications because of their portability, low cost, and high sensitivity for specific gases. However, how to effectively sample the MOx data for the real-time detection of gas and its concentration level remains an open question. Here, we introduce a simple analog front-end for one MOx sensor that encodes the gas concentration in the time difference between pulses of two separate pathways. This front-end design is inspired by the spiking output of a mammalian olfactory bulb. We show that for a gas pulse injected in a constant airflow, the time difference between pulses decreases with increasing gas concentration, similar to the spike time difference between the two principal output neurons in the olfactory bulb. The circuit design is further extended to a MOx sensor array, and this sensor array front-end was tested in the same environment for gas identification and concentration estimation. Encoding of gas stimulus features in analog spikes at the sensor level itself may result in data and power-efficient real-time gas sensing systems in the future that can ultimately be used in uncontrolled and turbulent environments for longer periods without data explosion.
format Preprint
id arxiv_https___arxiv_org_abs_2410_16677
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle A Neuromorphic Electronic Nose Design
Rastogi, Shavika
Dennler, Nik
Schmuker, Michael
van Schaik, André
Neural and Evolutionary Computing
Rapid detection of gas concentration is important in different domains like gas leakage monitoring, pollution control, and so on, for the prevention of health hazards. Out of different types of gas sensors, Metal oxide (MOx) sensors are extensively used in such applications because of their portability, low cost, and high sensitivity for specific gases. However, how to effectively sample the MOx data for the real-time detection of gas and its concentration level remains an open question. Here, we introduce a simple analog front-end for one MOx sensor that encodes the gas concentration in the time difference between pulses of two separate pathways. This front-end design is inspired by the spiking output of a mammalian olfactory bulb. We show that for a gas pulse injected in a constant airflow, the time difference between pulses decreases with increasing gas concentration, similar to the spike time difference between the two principal output neurons in the olfactory bulb. The circuit design is further extended to a MOx sensor array, and this sensor array front-end was tested in the same environment for gas identification and concentration estimation. Encoding of gas stimulus features in analog spikes at the sensor level itself may result in data and power-efficient real-time gas sensing systems in the future that can ultimately be used in uncontrolled and turbulent environments for longer periods without data explosion.
title A Neuromorphic Electronic Nose Design
topic Neural and Evolutionary Computing
url https://arxiv.org/abs/2410.16677