Robustness speech recognition method for agricultural product market element information collection
A technology of element information and speech recognition, which is applied in speech recognition, speech analysis, data processing applications, etc., and can solve problems such as inability to recognize speech
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example 1
[0102] Example 1: Test in the environment of a large-scale agricultural product wholesale market. The test set recorded 3 males and 3 females with 50 sentences each, a total of 300 sentences, which were recorded by mobile phones in a relatively quiet environment as approximately pure speech, and the speakers were not in the training set. Then artificial noise is added to the noise of the large-scale agricultural product wholesale market environment, and finally the noisy speech with signal-to-noise ratios of -5dB, 0dB, 5dB, 10dB, 15dB, 20dB, and 25dB is obtained. The test voice is 300 sentences, a total of 2100 sentences. For the baseline system, various spectral subtraction algorithms are used alone, and various algorithms combined with CMVN are compared and tested, and the recognition rates shown in Table 1 are obtained. Among them, this algorithm is SSMMSE (spectral minus minimum mean square error) + CMVN, and its recognition rate curve is as attached figure 2 shown.
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example 2
[0106] Example 2: Similar to the above example 1, the above experiment was carried out in the community farmer's market environment, and the recognition rate results obtained are shown in Table 2 below, and the recognition rate result curve is shown in the attached image 3 shown.
[0107] Table 2 Recognition rate in community farmer's market environment
[0108]
[0109] It can be seen from the above examples that the anti-noise robust speech recognition algorithm proposed by the present invention has a higher recognition rate in the field of agricultural product market information collection, especially in a low signal-to-noise ratio environment, and its improved performance is more obvious.
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