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hparams.py
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from text import symbols
class hparams:
################################
# Data Parameters #
################################
text_cleaners = ['english_cleaners']
################################
# Audio #
################################
num_mels = 80
num_freq = 1025
sample_rate = 22050
frame_length_ms = 50
frame_shift_ms = 12.5
preemphasis = 0.97
min_level_db = -100
ref_level_db = 20
power = 1.5
gl_iters = 100
################################
# Model Parameters #
################################
n_symbols = len(symbols)
symbols_embedding_dim = 512
# Encoder parameters
encoder_kernel_size = 5
encoder_n_convolutions = 3
encoder_embedding_dim = 512
# Decoder parameters
n_frames_per_step = 2
decoder_rnn_dim = 1024
prenet_dim = 256
max_decoder_steps = 1000
gate_threshold = 0.5
p_attention_dropout = 0.1
p_decoder_dropout = 0.1
# Attention parameters
attention_rnn_dim = 1024
attention_dim = 256
# Location Layer parameters
attention_location_n_filters = 32
attention_location_kernel_size = 31
# Mel-post processing network parameters
postnet_embedding_dim = 512
postnet_kernel_size = 5
postnet_n_convolutions = 5
################################
# Train #
################################
is_cuda = True
pin_mem = True
n_workers = 40
lr = 2e-3
betas = (0.9, 0.999)
eps = 1e-6
sch = True
sch_step = 4000
max_iter = 2e5
batch_size = 32 * 4
iters_per_log = 10
iters_per_sample = 100
iters_per_ckpt = 100
weight_decay = 1e-6
grad_clip_thresh = 1.0
mask_padding = True
p = 10 # mel spec loss penalty
eg_text = 'Make China great again!'
decoder_no_early_stopping = False