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◆ Chemosensors2026-03-03· Field-programmable gate array

Amplitude-Modulated Virtual Sensing and FPGA-Enabled Accurate Recognition for Multiple Gases Using Electronic Nose

Mingzhi Jiao, Junqiang Huang, Fukao Jia, Bin Bai, Yu Huo

原始摘要(英文原文)· Original abstract
This work presents an enhanced sensing framework for MEMS gas sensors based on tunable-amplitude periodic modulation, enabling multi-state excitation and feature enrichment without increasing the number of sensing elements. A multi-level periodic driving scheme is introduced to realize sensor virtualization, and the resulting multi-state responses are processed using a short-term baseline-tracking algorithm and a dislocated sparse-sampling strategy to improve feature discrimination. A lightweight multilayer perceptron (MLP) classifier is subsequently optimized and deployed on a field-programmable gate array (FPGA)-based accelerator to enable gas recognition under constrained hardware resources. Experimental results obtained from ternary mixtures of CH4, CO, and H2 demonstrate a classification accuracy of 98.5%, accompanied by a 60% reduction in model size and a fivefold improvement in computational speed on the FPGA accelerator.
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Amplitude-Modulated Virtual Sensing and FPGA-Enabled Accurate Recognition for Multiple Gases Using Electronic Nose — 科研速览 Science Skim