![]() Furthermore, we classified the sample text audio files into four categories which were news, conversational, scientific phrases, and control categories. The recognition rate was used in the ASR level and the error rate was used to evaluate the accuracy of the translated sentences. In this study, we made a comparative study between classification techniques from ASR point of view, as well as, the translation approaches from MT point of view. ![]() The second system is the Machine Translation (MT) system that mainly can be achieved by using three approaches which are (A) the statistical-based approach, (B) rule-approach, and (C) hybrid-based approach. Speech recognition and translation systems have consisted into two main systems, the first system represents an ASR system that contains two levels which are level one the feature extraction level As well as, level two the classification technique level using Data Time Wrapping (DTW), Hidden Markov Model (HMM), and Dynamic Bayesian Network (DBN). Speech processing is considered to be one of the most important application area of digital signal processing. ![]()
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