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Indicators of Gas Source Proximity using Metal Oxide Sensors in a Turbulent Environment

Achim J. Lilienthal, Tom Duckett, Hiroshi Ishida, Franz Werner

Year
2006
Citations
30

Abstract

This paper addresses the problem of estimating proximity to a gas source using concentration measurements. In particular, we consider the problem of gas source declaration by a mobile robot equipped with metal oxide sensors in a turbulent indoor environment. While previous work has shown that machine learning classifiers can be trained to detect close proximity to a gas source, it is difficult to interpret the learned models. This paper investigates possible underlying indicators of gas source proximity, comparing three different statistics derived from the sensor measurements of the robot. A correlation analysis of 1056 trials showed that response variance (measured as standard deviation) was a better indicator than average response. An improved result was obtained when the standard deviation was normalized to the average response for each trial, a strategy that also reduces calibration problems

Keywords

Standard deviationCalibrationRobotComputer scienceMobile robotStatisticsArtificial intelligenceMathematics

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