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Optimize and fine-tune the neural network parameters (the code is
already written) to improve the frame-level speech recognition
classification using a neural network model based on input MFCC (Mel
Frequency Cepstral Coefficients) data. The task is to classify the
specific phonemes in the audio frames and eventually submit a prediction
result in .csv format to Kaggle, aiming to achieve an accuracy of 86-87%. Currently, my model achieves an accuracy of 84%.
Must use MLP (Multilayer Perceptron)
The total number of parameters up to 20 million.
The expected output/submission file should be similar to the attached submission(2).csv.
My code is HW1P2_F24_Starter_Notebook-Copy1(1).ipynb
The required data/corpus may be found at https://www.openslr.org/12.
Do you need this or any other assignment done for you from scratch?
We assure you a quality paper that is 100% free from plagiarism and AI.
You can choose either format of your choice ( Apa, Mla, Havard, Chicago, or any other)
NB: We do not resell your papers. Upon ordering, we do an original paper exclusively for you.
NB: All your data is kept safe from the public.