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Acoustic Scene Classification: Classifying environments from the sounds they produce

D. Barchiesi,D. Giannoulis,D. Stowell,Mark D. Plumbley

2014 · DOI: 10.1109/MSP.2014.2326181
IEEE Signal Processing Magazine · 425 Citations

TLDR

An account of the state of the art in acoustic scene classification (ASC), the task of classifying environments from the sounds they produce, and a range of different algorithms submitted for a data challenge to provide a general and fair benchmark for ASC techniques.

Abstract

In this article, we present an account of the state of the art in acoustic scene classification (ASC), the task of classifying environments from the sounds they produce. Starting from a historical review of previous research in this area, we define a general framework for ASC and present different implementations of its components. We then describe a range of different algorithms submitted for a data challenge that was held to provide a general and fair benchmark for ASC techniques. The data set recorded for this purpose is presented along with the performance metrics that are used to evaluate the algorithms and statistical significance tests to compare the submitted methods.