MATEC Web of Conferences (Jan 2017)

Recognition of Aircraft Engine Sound Based on GMM-UBM Model

  • Yuan Shuai,
  • Sun Chengli,
  • Yang Haoge

DOI
https://doi.org/10.1051/matecconf/201712805011
Journal volume & issue
Vol. 128
p. 05011

Abstract

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Gaussian mixture model-universal background model (GMM-UBM) is a commonly-used speaker recognition technology, and which has achieved good effect for detection speaker’s sound. In this paper, we explore GMM-UBM method for use with abnormal aircraft engine sound detection. We designed a GMM-UBM based aircraft engine sound recognition system, which extracts MFCC feature parameters and trains the GMM-UBM models using maximum a posteriori (MAP) adaptive algorithm. Experimental results show the GMM-UBM based aircraft engine sound recognition system can achieve higher recognize rate in real-word aircraft engine sound test.

Keywords