Application of image processing techniques for frog call classification


Autoria(s): Xie, Jie; Towsey, Michael; Zhang, Jinglan; Dong, Xueyan; Roe, Paul
Data(s)

09/12/2015

Resumo

Frogs have received increasing attention due to their effectiveness for indicating the environment change. Therefore, it is important to monitor and assess frogs. With the development of sensor techniques, large volumes of audio data (including frog calls) have been collected and need to be analysed. After transforming the audio data into its spectrogram representation using short-time Fourier transform, the visual inspection of this representation motivates us to use image processing techniques for analysing audio data. Applying acoustic event detection (AED) method to spectrograms, acoustic events are firstly detected from which ridges are extracted. Three feature sets, Mel-frequency cepstral coefficients (MFCCs), AED feature set and ridge feature set, are then used for frog call classification with a support vector machine classifier. Fifteen frog species widely spread in Queensland, Australia, are selected to evaluate the proposed method. The experimental results show that ridge feature set can achieve an average classification accuracy of 74.73% which outperforms the MFCCs (38.99%) and AED feature set (67.78%).

Formato

application/pdf

Identificador

http://eprints.qut.edu.au/89676/

Publicador

IEEE

Relação

http://eprints.qut.edu.au/89676/1/Application%20of%20image%20processing%20techniques%20for%20frog%20call%20classification.pdf

Xie, Jie, Towsey, Michael, Zhang, Jinglan, Dong, Xueyan, & Roe, Paul (2015) Application of image processing techniques for frog call classification. In Proceedings of the 2015 International Conference on Image Processing (ICIP), IEEE, Québec City, Canada, pp. 4190-4194.

Direitos

Copyright 2015 IEEE

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Fonte

Science & Engineering Faculty

Palavras-Chave #080000 INFORMATION AND COMPUTING SCIENCES #080106 Image Processing #080109 Pattern Recognition and Data Mining #090609 Signal Processing #anzsrc Australian and New Zealand Standard Research Class #frog call classification #acoustic event detection #ridge detection #support vector machine
Tipo

Conference Paper