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Speech Processing AEGIS RET All-Hands Meeting

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Presentation on theme: "Speech Processing AEGIS RET All-Hands Meeting"— Presentation transcript:

1 Speech Processing AEGIS RET All-Hands Meeting
Applications of Images and Signals in High Schools AEGIS RET All-Hands Meeting Florida Institute of Technology July 6, 2012

2 Contributors Dr. Veton Këpuska, Faculty Mentor, FIT
Jacob Zurasky, Graduate Student Mentor, FIT Becky Dowell, RET Teacher, BPS Titusville High

3 Motivation Timeline / Background – need to add this Difficulties
Siri demo

4 Motivation Speech audio processing has increased in its usefulness.
Applications Siri on iPhone 4S Automated telephone systems Voice transcription (e.g. dictation software) Hands-free computing (e.g., OnStar) Video games (e.g., XBOX Kinect) Military applications (e.g., aircraft control) Healthcare applications

5 Motivation Speech recognition requires speech to first be characterized by a set of “features”. Features are used to determine what words are spoken. Our project implements the feature extraction stage of a speech processing application.

6 Speech Recognition Front End: Pre-processing Back End: Recognition Speech Recognized speech Large amount of data. Ex: 256 samples Features Reduced data size. Ex: 13 features Front End – reduce amount of data for back end, but keep enough data to accurately describe the signal. Output is feature vector. 256 samples > 13 features Back End - statistical models used to classify feature vectors as a certain sound in speech

7 Front-End Processing of Speech Recognizer
Pre-emphasis Window FFT Mel-Scale log IFFT

8 Speech Analysis Project
Added GUI Allow user to record audio or input audio from a sound file Displays graph of the audio User can click on graph to select speech frame Processes speech frame and displays output for each state of processing Displays spectrogram

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11 GUI Components

12 GUI Components Plotting Axes

13 Buttons GUI Components Plotting Axes

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16 Future Work Improve GUI Audio Effects Noise Filtering

17 References Ingle, Vinay K., and John G. Proakis. Digital signal processing using MATLAB. 2nd ed. Toronto, Ont.: Nelson, 2007. Oppenheim, Alan V., and Ronald W. Schafer. Discrete-time signal processing. 3rd ed. Upper Saddle River: Pearson, 2010. Weeks, Michael. Digital signal processing using MATLAB and wavelets. Hingham,Mass.: Infinity Science Press, 2007.

18 Thank you! Questions?

19 Unit Plan


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