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lib/infer_pack/modules/F0Predictor/DioF0Predictor.py
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from lib.infer_pack.modules.F0Predictor.F0Predictor import F0Predictor
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import pyworld
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import numpy as np
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class DioF0Predictor(F0Predictor):
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def __init__(self, hop_length=512, f0_min=50, f0_max=1100, sampling_rate=44100):
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self.hop_length = hop_length
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self.f0_min = f0_min
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self.f0_max = f0_max
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self.sampling_rate = sampling_rate
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def interpolate_f0(self, f0):
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"""
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对F0进行插值处理
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"""
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data = np.reshape(f0, (f0.size, 1))
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vuv_vector = np.zeros((data.size, 1), dtype=np.float32)
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vuv_vector[data > 0.0] = 1.0
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vuv_vector[data <= 0.0] = 0.0
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ip_data = data
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frame_number = data.size
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last_value = 0.0
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for i in range(frame_number):
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if data[i] <= 0.0:
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j = i + 1
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for j in range(i + 1, frame_number):
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if data[j] > 0.0:
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break
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if j < frame_number - 1:
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if last_value > 0.0:
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step = (data[j] - data[i - 1]) / float(j - i)
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for k in range(i, j):
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ip_data[k] = data[i - 1] + step * (k - i + 1)
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else:
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for k in range(i, j):
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ip_data[k] = data[j]
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else:
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for k in range(i, frame_number):
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ip_data[k] = last_value
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else:
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ip_data[i] = data[i] # 这里可能存在一个没有必要的拷贝
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last_value = data[i]
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return ip_data[:, 0], vuv_vector[:, 0]
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def resize_f0(self, x, target_len):
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source = np.array(x)
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source[source < 0.001] = np.nan
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target = np.interp(
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np.arange(0, len(source) * target_len, len(source)) / target_len,
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np.arange(0, len(source)),
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source,
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)
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res = np.nan_to_num(target)
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return res
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def compute_f0(self, wav, p_len=None):
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if p_len is None:
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p_len = wav.shape[0] // self.hop_length
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f0, t = pyworld.dio(
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wav.astype(np.double),
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fs=self.sampling_rate,
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f0_floor=self.f0_min,
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f0_ceil=self.f0_max,
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frame_period=1000 * self.hop_length / self.sampling_rate,
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)
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f0 = pyworld.stonemask(wav.astype(np.double), f0, t, self.sampling_rate)
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for index, pitch in enumerate(f0):
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f0[index] = round(pitch, 1)
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return self.interpolate_f0(self.resize_f0(f0, p_len))[0]
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def compute_f0_uv(self, wav, p_len=None):
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if p_len is None:
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p_len = wav.shape[0] // self.hop_length
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f0, t = pyworld.dio(
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wav.astype(np.double),
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fs=self.sampling_rate,
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f0_floor=self.f0_min,
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f0_ceil=self.f0_max,
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frame_period=1000 * self.hop_length / self.sampling_rate,
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)
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f0 = pyworld.stonemask(wav.astype(np.double), f0, t, self.sampling_rate)
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for index, pitch in enumerate(f0):
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f0[index] = round(pitch, 1)
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return self.interpolate_f0(self.resize_f0(f0, p_len))
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lib/infer_pack/modules/F0Predictor/F0Predictor.py
ADDED
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class F0Predictor(object):
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def compute_f0(self, wav, p_len):
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"""
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input: wav:[signal_length]
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p_len:int
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output: f0:[signal_length//hop_length]
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"""
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pass
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def compute_f0_uv(self, wav, p_len):
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"""
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input: wav:[signal_length]
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p_len:int
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output: f0:[signal_length//hop_length],uv:[signal_length//hop_length]
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"""
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pass
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lib/infer_pack/modules/F0Predictor/HarvestF0Predictor.py
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from lib.infer_pack.modules.F0Predictor.F0Predictor import F0Predictor
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import pyworld
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import numpy as np
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class HarvestF0Predictor(F0Predictor):
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def __init__(self, hop_length=512, f0_min=50, f0_max=1100, sampling_rate=44100):
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self.hop_length = hop_length
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self.f0_min = f0_min
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self.f0_max = f0_max
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self.sampling_rate = sampling_rate
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def interpolate_f0(self, f0):
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"""
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对F0进行插值处理
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"""
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data = np.reshape(f0, (f0.size, 1))
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vuv_vector = np.zeros((data.size, 1), dtype=np.float32)
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vuv_vector[data > 0.0] = 1.0
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vuv_vector[data <= 0.0] = 0.0
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ip_data = data
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frame_number = data.size
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last_value = 0.0
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for i in range(frame_number):
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if data[i] <= 0.0:
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j = i + 1
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for j in range(i + 1, frame_number):
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if data[j] > 0.0:
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break
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if j < frame_number - 1:
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if last_value > 0.0:
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step = (data[j] - data[i - 1]) / float(j - i)
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for k in range(i, j):
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ip_data[k] = data[i - 1] + step * (k - i + 1)
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else:
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for k in range(i, j):
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ip_data[k] = data[j]
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else:
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for k in range(i, frame_number):
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ip_data[k] = last_value
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else:
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ip_data[i] = data[i] # 这里可能存在一个没有必要的拷贝
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last_value = data[i]
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return ip_data[:, 0], vuv_vector[:, 0]
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def resize_f0(self, x, target_len):
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source = np.array(x)
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source[source < 0.001] = np.nan
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target = np.interp(
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np.arange(0, len(source) * target_len, len(source)) / target_len,
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np.arange(0, len(source)),
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source,
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)
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res = np.nan_to_num(target)
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return res
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def compute_f0(self, wav, p_len=None):
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if p_len is None:
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p_len = wav.shape[0] // self.hop_length
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f0, t = pyworld.harvest(
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wav.astype(np.double),
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fs=self.hop_length,
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f0_ceil=self.f0_max,
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f0_floor=self.f0_min,
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frame_period=1000 * self.hop_length / self.sampling_rate,
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)
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f0 = pyworld.stonemask(wav.astype(np.double), f0, t, self.fs)
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return self.interpolate_f0(self.resize_f0(f0, p_len))[0]
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def compute_f0_uv(self, wav, p_len=None):
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if p_len is None:
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p_len = wav.shape[0] // self.hop_length
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f0, t = pyworld.harvest(
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wav.astype(np.double),
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fs=self.sampling_rate,
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f0_floor=self.f0_min,
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f0_ceil=self.f0_max,
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frame_period=1000 * self.hop_length / self.sampling_rate,
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)
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f0 = pyworld.stonemask(wav.astype(np.double), f0, t, self.sampling_rate)
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return self.interpolate_f0(self.resize_f0(f0, p_len))
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lib/infer_pack/modules/F0Predictor/PMF0Predictor.py
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from lib.infer_pack.modules.F0Predictor.F0Predictor import F0Predictor
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import parselmouth
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import numpy as np
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| 4 |
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| 6 |
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class PMF0Predictor(F0Predictor):
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def __init__(self, hop_length=512, f0_min=50, f0_max=1100, sampling_rate=44100):
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self.hop_length = hop_length
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| 9 |
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self.f0_min = f0_min
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| 10 |
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self.f0_max = f0_max
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| 11 |
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self.sampling_rate = sampling_rate
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| 12 |
+
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def interpolate_f0(self, f0):
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| 14 |
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"""
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| 15 |
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对F0进行插值处理
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| 16 |
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"""
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| 17 |
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| 18 |
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data = np.reshape(f0, (f0.size, 1))
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vuv_vector = np.zeros((data.size, 1), dtype=np.float32)
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| 21 |
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vuv_vector[data > 0.0] = 1.0
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| 22 |
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vuv_vector[data <= 0.0] = 0.0
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| 23 |
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| 24 |
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ip_data = data
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| 25 |
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| 26 |
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frame_number = data.size
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| 27 |
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last_value = 0.0
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| 28 |
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for i in range(frame_number):
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| 29 |
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if data[i] <= 0.0:
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| 30 |
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j = i + 1
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| 31 |
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for j in range(i + 1, frame_number):
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| 32 |
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if data[j] > 0.0:
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| 33 |
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break
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| 34 |
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if j < frame_number - 1:
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| 35 |
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if last_value > 0.0:
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| 36 |
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step = (data[j] - data[i - 1]) / float(j - i)
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| 37 |
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for k in range(i, j):
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| 38 |
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ip_data[k] = data[i - 1] + step * (k - i + 1)
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| 39 |
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else:
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| 40 |
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for k in range(i, j):
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| 41 |
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ip_data[k] = data[j]
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| 42 |
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else:
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| 43 |
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for k in range(i, frame_number):
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| 44 |
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ip_data[k] = last_value
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| 45 |
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else:
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| 46 |
+
ip_data[i] = data[i] # 这里可能存在一个没有必要的拷贝
|
| 47 |
+
last_value = data[i]
|
| 48 |
+
|
| 49 |
+
return ip_data[:, 0], vuv_vector[:, 0]
|
| 50 |
+
|
| 51 |
+
def compute_f0(self, wav, p_len=None):
|
| 52 |
+
x = wav
|
| 53 |
+
if p_len is None:
|
| 54 |
+
p_len = x.shape[0] // self.hop_length
|
| 55 |
+
else:
|
| 56 |
+
assert abs(p_len - x.shape[0] // self.hop_length) < 4, "pad length error"
|
| 57 |
+
time_step = self.hop_length / self.sampling_rate * 1000
|
| 58 |
+
f0 = (
|
| 59 |
+
parselmouth.Sound(x, self.sampling_rate)
|
| 60 |
+
.to_pitch_ac(
|
| 61 |
+
time_step=time_step / 1000,
|
| 62 |
+
voicing_threshold=0.6,
|
| 63 |
+
pitch_floor=self.f0_min,
|
| 64 |
+
pitch_ceiling=self.f0_max,
|
| 65 |
+
)
|
| 66 |
+
.selected_array["frequency"]
|
| 67 |
+
)
|
| 68 |
+
|
| 69 |
+
pad_size = (p_len - len(f0) + 1) // 2
|
| 70 |
+
if pad_size > 0 or p_len - len(f0) - pad_size > 0:
|
| 71 |
+
f0 = np.pad(f0, [[pad_size, p_len - len(f0) - pad_size]], mode="constant")
|
| 72 |
+
f0, uv = self.interpolate_f0(f0)
|
| 73 |
+
return f0
|
| 74 |
+
|
| 75 |
+
def compute_f0_uv(self, wav, p_len=None):
|
| 76 |
+
x = wav
|
| 77 |
+
if p_len is None:
|
| 78 |
+
p_len = x.shape[0] // self.hop_length
|
| 79 |
+
else:
|
| 80 |
+
assert abs(p_len - x.shape[0] // self.hop_length) < 4, "pad length error"
|
| 81 |
+
time_step = self.hop_length / self.sampling_rate * 1000
|
| 82 |
+
f0 = (
|
| 83 |
+
parselmouth.Sound(x, self.sampling_rate)
|
| 84 |
+
.to_pitch_ac(
|
| 85 |
+
time_step=time_step / 1000,
|
| 86 |
+
voicing_threshold=0.6,
|
| 87 |
+
pitch_floor=self.f0_min,
|
| 88 |
+
pitch_ceiling=self.f0_max,
|
| 89 |
+
)
|
| 90 |
+
.selected_array["frequency"]
|
| 91 |
+
)
|
| 92 |
+
|
| 93 |
+
pad_size = (p_len - len(f0) + 1) // 2
|
| 94 |
+
if pad_size > 0 or p_len - len(f0) - pad_size > 0:
|
| 95 |
+
f0 = np.pad(f0, [[pad_size, p_len - len(f0) - pad_size]], mode="constant")
|
| 96 |
+
f0, uv = self.interpolate_f0(f0)
|
| 97 |
+
return f0, uv
|