CONTENT-BASED RETRIEVAL FROM UNSTRUCTURED AUDIO DATABASES USING AN ECOLOGICAL ACOUSTICS TAXONOMY

msra(2010)

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摘要
In this paper we describe a method to search for environmen- tal sounds in unstructured databases with user-submitted material. The goal of the project is to facilitate the design of soundscapes in virtual environments. We analyze the use of a Support Vector Ma- chine (SVM) as a learning algorithm to classify sounds according to a general sound events taxonomy based on ecological acoustics. In our experiments, we obtain accuracies above 80% using cross- validation. Finally, we present a web prototype that integrates the classifier to rank sounds according to their relation to the taxon- omy concepts.
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