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April 18, 2026Electronics2 citationsOpen Access

A Novel E-Nose Architecture Based on Virtual Sensor-Augmented Embedded Intelligence for a Real-Time In-Vehicle Carbon Monoxide Concentration Estimation System

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DKDharmendra KumarARAnup Kumar RabhaAMAshutosh Mishra

Key Points

  • To develop a real-time system for estimating carbon monoxide concentration in vehicle cabins using advanced sensor technology.
  • Proposed a new E-Nose architecture that integrates virtual sensor technology and embedded intelligence.
  • Utilized cheap gas sensors augmented with machine learning models for real-time CO estimation.
  • Implemented embedded intelligence on edge hardware for low-latency processing and dynamic calibration.
  • Conducted experimental validation across various vehicular conditions to assess system performance.
  • Achieved 99.94% training and 98.59% accuracy with Classifier Gradient Boosting compared to Random Forest.
  • Demonstrated superior precision and responsiveness in CO concentration estimation compared to traditional systems.
  • Provided timely warnings of CO levels even in complex driving environments.

Abstract

The increasing risk of air pollution in closed areas like passenger vehicles requires smart and real-time air quality reading solutions. Gases such as carbon monoxide (CO)—which is colorless and odorless and is produced by exhaust systems—air conditioners, and combustion sources are very dangerous to health because they can cause respiratory distress and poisoning at high levels. Traditional in-vehicle CO monitoring systems use a single-point sensor and a fixed threshold, which are insufficient in a dynamic cabin environment subject to factors such as vehicle size, ventilation rate, number of occupants, and incoming traffic. To address these drawbacks, this paper proposes a new E-Nose system with Virtual Sensor-Augmented Embedded Intelligence to estimate the CO concentration in vehicle cabins in real time. The system combines data from cheap gas sensors and improves it using virtual sensor machine learning models trained to predict or enhance sensor responses in real time. Embedded intelligence, deployed locally on edge hardware, supports low-latency processing, dynamic calibration, and noise filtering to respond to fluctuating environmental conditions adaptively. This architecture enables more accurate, robust, and context-aware estimation of CO levels compared to traditional threshold-based methods. Experimental validation across varied vehicular scenarios demonstrates superior precision and responsiveness, providing timely warnings even under complex dispersion patterns. Classifier Gradient Boosting, which builds an ensemble of weak learners sequentially, matched the Random Forest with 99.94% training and 98.59% model accuracy, confirming its strong predictive capability. The system is designed to be cost-effective, scalable, and easily integrable into modern automotive platforms. This study also contributes to the field of smart ecological recording and demonstrates the effectiveness of the virtual sensor-enhanced embedded system as an effective way to improve passenger safety by providing pre-emptive on-board air quality monitoring.

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Cite This Study

Kumar et al. (2026) studied this question.

synapsesocial.com/papers/69e3215140886becb6540800https://doi.org/10.3390/electronics15081671
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