[Type hint] scheduling karras ve (#359)
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@ -14,7 +14,7 @@
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from dataclasses import dataclass
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from typing import Tuple, Union
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from typing import Optional, Tuple, Union
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import numpy as np
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import torch
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@ -54,13 +54,13 @@ class KarrasVeScheduler(SchedulerMixin, ConfigMixin):
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@register_to_config
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def __init__(
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self,
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sigma_min=0.02,
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sigma_max=100,
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s_noise=1.007,
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s_churn=80,
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s_min=0.05,
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s_max=50,
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tensor_format="pt",
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sigma_min: float = 0.02,
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sigma_max: float = 100,
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s_noise: float = 1.007,
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s_churn: float = 80,
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s_min: float = 0.05,
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s_max: float = 50,
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tensor_format: str = "pt",
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):
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"""
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For more details on the parameters, see the original paper's Appendix E.: "Elucidating the Design Space of
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@ -87,7 +87,7 @@ class KarrasVeScheduler(SchedulerMixin, ConfigMixin):
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self.tensor_format = tensor_format
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self.set_format(tensor_format=tensor_format)
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def set_timesteps(self, num_inference_steps):
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def set_timesteps(self, num_inference_steps: int):
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self.num_inference_steps = num_inference_steps
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self.timesteps = np.arange(0, self.num_inference_steps)[::-1].copy()
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self.schedule = [
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@ -98,7 +98,9 @@ class KarrasVeScheduler(SchedulerMixin, ConfigMixin):
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self.set_format(tensor_format=self.tensor_format)
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def add_noise_to_input(self, sample, sigma, generator=None):
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def add_noise_to_input(
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self, sample: Union[torch.FloatTensor, np.ndarray], sigma: float, generator: Optional[torch.Generator] = None
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) -> Tuple[Union[torch.FloatTensor, np.ndarray], float]:
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"""
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Explicit Langevin-like "churn" step of adding noise to the sample according to a factor gamma_i ≥ 0 to reach a
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higher noise level sigma_hat = sigma_i + gamma_i*sigma_i.
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