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https://github.com/comfyanonymous/ComfyUI.git
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Merge branch 'comfyanonymous:master' into master
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commit
b57a624e7c
@ -19,5 +19,6 @@
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/app/ @yoland68 @robinjhuang @huchenlei @webfiltered @pythongosssss @ltdrdata
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/utils/ @yoland68 @robinjhuang @huchenlei @webfiltered @pythongosssss @ltdrdata
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# Extra nodes
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/comfy_extras/ @yoland68 @robinjhuang @huchenlei @pythongosssss @ltdrdata @Kosinkadink
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# Node developers
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/comfy_extras/ @yoland68 @robinjhuang @huchenlei @pythongosssss @ltdrdata @Kosinkadink @webfiltered
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/comfy/comfy_types/ @yoland68 @robinjhuang @huchenlei @pythongosssss @ltdrdata @Kosinkadink @webfiltered
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@ -2,6 +2,7 @@
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from __future__ import annotations
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from typing import Literal, TypedDict
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from typing_extensions import NotRequired
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from abc import ABC, abstractmethod
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from enum import Enum
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@ -26,6 +27,7 @@ class IO(StrEnum):
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BOOLEAN = "BOOLEAN"
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INT = "INT"
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FLOAT = "FLOAT"
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COMBO = "COMBO"
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CONDITIONING = "CONDITIONING"
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SAMPLER = "SAMPLER"
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SIGMAS = "SIGMAS"
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@ -66,6 +68,7 @@ class IO(StrEnum):
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b = frozenset(value.split(","))
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return not (b.issubset(a) or a.issubset(b))
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class RemoteInputOptions(TypedDict):
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route: str
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"""The route to the remote source."""
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@ -80,6 +83,14 @@ class RemoteInputOptions(TypedDict):
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refresh: int
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"""The TTL of the remote input's value in milliseconds. Specifies the interval at which the remote input's value is refreshed."""
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class MultiSelectOptions(TypedDict):
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placeholder: NotRequired[str]
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"""The placeholder text to display in the multi-select widget when no items are selected."""
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chip: NotRequired[bool]
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"""Specifies whether to use chips instead of comma separated values for the multi-select widget."""
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class InputTypeOptions(TypedDict):
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"""Provides type hinting for the return type of the INPUT_TYPES node function.
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@ -133,9 +144,22 @@ class InputTypeOptions(TypedDict):
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"""Specifies which folder to get preview images from if the input has the ``image_upload`` flag.
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"""
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remote: RemoteInputOptions
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"""Specifies the configuration for a remote input."""
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"""Specifies the configuration for a remote input.
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Available after ComfyUI frontend v1.9.7
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https://github.com/Comfy-Org/ComfyUI_frontend/pull/2422"""
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control_after_generate: bool
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"""Specifies whether a control widget should be added to the input, adding options to automatically change the value after each prompt is queued. Currently only used for INT and COMBO types."""
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options: NotRequired[list[str | int | float]]
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"""COMBO type only. Specifies the selectable options for the combo widget.
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Prefer:
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["COMBO", {"options": ["Option 1", "Option 2", "Option 3"]}]
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Over:
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[["Option 1", "Option 2", "Option 3"]]
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"""
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multi_select: NotRequired[MultiSelectOptions]
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"""COMBO type only. Specifies the configuration for a multi-select widget.
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Available after ComfyUI frontend v1.13.4
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https://github.com/Comfy-Org/ComfyUI_frontend/pull/2987"""
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class HiddenInputTypeDict(TypedDict):
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@ -688,10 +688,10 @@ def sample_dpmpp_sde(model, x, sigmas, extra_args=None, callback=None, disable=N
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if len(sigmas) <= 1:
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return x
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extra_args = {} if extra_args is None else extra_args
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sigma_min, sigma_max = sigmas[sigmas > 0].min(), sigmas.max()
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seed = extra_args.get("seed", None)
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noise_sampler = BrownianTreeNoiseSampler(x, sigma_min, sigma_max, seed=seed, cpu=True) if noise_sampler is None else noise_sampler
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extra_args = {} if extra_args is None else extra_args
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s_in = x.new_ones([x.shape[0]])
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sigma_fn = lambda t: t.neg().exp()
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t_fn = lambda sigma: sigma.log().neg()
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@ -762,10 +762,10 @@ def sample_dpmpp_2m_sde(model, x, sigmas, extra_args=None, callback=None, disabl
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if solver_type not in {'heun', 'midpoint'}:
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raise ValueError('solver_type must be \'heun\' or \'midpoint\'')
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extra_args = {} if extra_args is None else extra_args
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seed = extra_args.get("seed", None)
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sigma_min, sigma_max = sigmas[sigmas > 0].min(), sigmas.max()
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noise_sampler = BrownianTreeNoiseSampler(x, sigma_min, sigma_max, seed=seed, cpu=True) if noise_sampler is None else noise_sampler
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extra_args = {} if extra_args is None else extra_args
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s_in = x.new_ones([x.shape[0]])
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old_denoised = None
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@ -808,10 +808,10 @@ def sample_dpmpp_3m_sde(model, x, sigmas, extra_args=None, callback=None, disabl
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if len(sigmas) <= 1:
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return x
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extra_args = {} if extra_args is None else extra_args
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seed = extra_args.get("seed", None)
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sigma_min, sigma_max = sigmas[sigmas > 0].min(), sigmas.max()
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noise_sampler = BrownianTreeNoiseSampler(x, sigma_min, sigma_max, seed=seed, cpu=True) if noise_sampler is None else noise_sampler
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extra_args = {} if extra_args is None else extra_args
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s_in = x.new_ones([x.shape[0]])
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denoised_1, denoised_2 = None, None
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@ -858,7 +858,7 @@ def sample_dpmpp_3m_sde(model, x, sigmas, extra_args=None, callback=None, disabl
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def sample_dpmpp_3m_sde_gpu(model, x, sigmas, extra_args=None, callback=None, disable=None, eta=1., s_noise=1., noise_sampler=None):
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if len(sigmas) <= 1:
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return x
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extra_args = {} if extra_args is None else extra_args
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sigma_min, sigma_max = sigmas[sigmas > 0].min(), sigmas.max()
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noise_sampler = BrownianTreeNoiseSampler(x, sigma_min, sigma_max, seed=extra_args.get("seed", None), cpu=False) if noise_sampler is None else noise_sampler
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return sample_dpmpp_3m_sde(model, x, sigmas, extra_args=extra_args, callback=callback, disable=disable, eta=eta, s_noise=s_noise, noise_sampler=noise_sampler)
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@ -867,7 +867,7 @@ def sample_dpmpp_3m_sde_gpu(model, x, sigmas, extra_args=None, callback=None, di
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def sample_dpmpp_2m_sde_gpu(model, x, sigmas, extra_args=None, callback=None, disable=None, eta=1., s_noise=1., noise_sampler=None, solver_type='midpoint'):
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if len(sigmas) <= 1:
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return x
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extra_args = {} if extra_args is None else extra_args
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sigma_min, sigma_max = sigmas[sigmas > 0].min(), sigmas.max()
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noise_sampler = BrownianTreeNoiseSampler(x, sigma_min, sigma_max, seed=extra_args.get("seed", None), cpu=False) if noise_sampler is None else noise_sampler
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return sample_dpmpp_2m_sde(model, x, sigmas, extra_args=extra_args, callback=callback, disable=disable, eta=eta, s_noise=s_noise, noise_sampler=noise_sampler, solver_type=solver_type)
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@ -876,7 +876,7 @@ def sample_dpmpp_2m_sde_gpu(model, x, sigmas, extra_args=None, callback=None, di
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def sample_dpmpp_sde_gpu(model, x, sigmas, extra_args=None, callback=None, disable=None, eta=1., s_noise=1., noise_sampler=None, r=1 / 2):
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if len(sigmas) <= 1:
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return x
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extra_args = {} if extra_args is None else extra_args
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sigma_min, sigma_max = sigmas[sigmas > 0].min(), sigmas.max()
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noise_sampler = BrownianTreeNoiseSampler(x, sigma_min, sigma_max, seed=extra_args.get("seed", None), cpu=False) if noise_sampler is None else noise_sampler
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return sample_dpmpp_sde(model, x, sigmas, extra_args=extra_args, callback=callback, disable=disable, eta=eta, s_noise=s_noise, noise_sampler=noise_sampler, r=r)
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