DiffWave-unconditional
                                
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                        Pytorch Reimplementation of DiffWave unconditional generation: a high quality waveform synthesizer.
This is a reimplementaion of the unconditional waveform synthesizer in DIFFWAVE: A VERSATILE DIFFUSION MODEL FOR AUDIO SYNTHESIS.
Usage:
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To continue training the model, run python distributed_train.py -c config.json.
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To retrain the model, change the parameter ckpt_iterin the correspondingjsonfile to-1and use the above command.
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To generate audio, run python inference.py -c config.json -n 16to generate 16 utterances.
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Note, you may need to carefully adjust some parameters in the jsonfile, such asdata_pathandbatch_size_per_gpu.