Created
March 19, 2024 11:43
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from comfy.samplers import KSAMPLER | |
import torch | |
from comfy.k_diffusion.sampling import default_noise_sampler, to_d | |
from tqdm.auto import trange | |
@torch.no_grad() | |
def sampler_tcd(model, x, sigmas, extra_args=None, callback=None, disable=None, noise_sampler=None, gamma=None): | |
extra_args = {} if extra_args is None else extra_args | |
noise_sampler = default_noise_sampler(x) if noise_sampler is None else noise_sampler | |
s_in = x.new_ones([x.shape[0]]) | |
for i in trange(len(sigmas) - 1, disable=disable): | |
denoised = model(x, sigmas[i] * s_in, **extra_args) | |
if callback is not None: | |
callback({'x': x, 'i': i, 'sigma': sigmas[i], 'sigma_hat': sigmas[i], 'denoised': denoised}) | |
d = to_d(x, sigmas[i], denoised) | |
sigma_from = sigmas[i] | |
sigma_to = sigmas[i + 1] | |
t = model.inner_model.inner_model.model_sampling.timestep(sigma_from) | |
down_t = (1 - gamma) * t | |
sigma_down = model.inner_model.inner_model.model_sampling.sigma(down_t) | |
if sigma_down > sigma_to: | |
sigma_down = sigma_to | |
sigma_up = (sigma_to ** 2 - sigma_down ** 2) ** 0.5 | |
# same as euler ancestral | |
d = to_d(x, sigma_from, denoised) | |
dt = sigma_down - sigma_from | |
x = x + d * dt | |
if sigma_to > 0: | |
x = x + noise_sampler(sigma_from, sigma_to) * sigma_up | |
return x | |
class TCDSampler: | |
@classmethod | |
def INPUT_TYPES(s): | |
return { | |
"required":{ | |
"gamma": ("FLOAT", {"default": 0.3, "min": 0.0, "max": 1.0, "step":0.01}), | |
}, | |
} | |
RETURN_TYPES = ("SAMPLER",) | |
CATEGORY = "sampling/custom_sampling/samplers" | |
FUNCTION = "get_sampler" | |
def get_sampler(self, gamma): | |
sampler = KSAMPLER(sampler_tcd, {"gamma": gamma}) | |
return (sampler, ) | |
NODE_CLASS_MAPPINGS = { | |
"TCDSampler": TCDSampler, | |
} |
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