WIT Press


Monitoring Air Pollutants To Detect Anomalies With Applications To The Ozone Concentrations

Price

Free (open access)

Volume

21

Pages

10

Published

1997

Size

931 kb

Paper DOI

10.2495/AIR970801

Copyright

WIT Press

Author(s)

S. Bordignon & M. Scagliarini

Abstract

The quality of data collected by air pollution monitoring networks is often affected by inaccuracies and missing data problems, mainly due to breakdowns and/or biases of the measurement instruments. In this paper we propose a statistical method to detect, as soon as possible, biases in the measurement devices, in order to improve the quality of collected data on line. The technique is based on the joint use of stochastic modelling and statistical process control algorithms. This methodology is applied to the mean hourly ozone concentrations recorded from one monitoring site of the Bologna urban area network. We set up the monitoring algorithm (t

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