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53
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a2ac1adf01 | ||
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716790e344 |
@@ -8,6 +8,16 @@ class ComfyUIDeployExternalBoolean:
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|||||||
{"multiline": False, "default": "input_bool"},
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{"multiline": False, "default": "input_bool"},
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),
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),
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"default_value": ("BOOLEAN", {"default": False})
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"default_value": ("BOOLEAN", {"default": False})
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||||||
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},
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"optional": {
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||||||
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"display_name": (
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||||||
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"STRING",
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||||||
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{"multiline": False, "default": ""},
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||||||
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),
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||||||
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"description": (
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||||||
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"STRING",
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||||||
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{"multiline": True, "default": ""},
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||||||
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),
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}
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}
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}
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}
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@@ -16,7 +26,7 @@ class ComfyUIDeployExternalBoolean:
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FUNCTION = "run"
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FUNCTION = "run"
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def run(self, input_id, default_value=None):
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def run(self, input_id, default_value=None, display_name=None, description=None):
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print(f"Node '{input_id}' processing with switch set to {default_value}")
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print(f"Node '{input_id}' processing with switch set to {default_value}")
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return [default_value]
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return [default_value]
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||||||
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@@ -5,6 +5,12 @@ import torch
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import folder_paths
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import folder_paths
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from tqdm import tqdm
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from tqdm import tqdm
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||||||
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class AnyType(str):
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||||||
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def __ne__(self, __value: object) -> bool:
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return False
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WILDCARD = AnyType("*")
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class ComfyUIDeployExternalCheckpoint:
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class ComfyUIDeployExternalCheckpoint:
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@classmethod
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@classmethod
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def INPUT_TYPES(s):
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def INPUT_TYPES(s):
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@@ -17,17 +23,25 @@ class ComfyUIDeployExternalCheckpoint:
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},
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},
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"optional": {
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"optional": {
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"default_value": (folder_paths.get_filename_list("checkpoints"), ),
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"default_value": (folder_paths.get_filename_list("checkpoints"), ),
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"display_name": (
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"STRING",
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{"multiline": False, "default": ""},
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),
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"description": (
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"STRING",
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{"multiline": True, "default": ""},
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||||||
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),
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}
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}
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}
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}
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RETURN_TYPES = (folder_paths.get_filename_list("checkpoints"),)
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RETURN_TYPES = (WILDCARD,)
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RETURN_NAMES = ("path",)
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RETURN_NAMES = ("path",)
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FUNCTION = "run"
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FUNCTION = "run"
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CATEGORY = "deploy"
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CATEGORY = "deploy"
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def run(self, input_id, default_value=None):
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def run(self, input_id, default_value=None, display_name=None, description=None):
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import requests
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import requests
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import os
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import os
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import uuid
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import uuid
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@@ -15,6 +15,14 @@ class ComfyUIDeployExternalImage:
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},
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},
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"optional": {
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"optional": {
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"default_value": ("IMAGE",),
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"default_value": ("IMAGE",),
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"display_name": (
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"STRING",
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{"multiline": False, "default": ""},
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),
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||||||
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"description": (
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"STRING",
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||||||
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{"multiline": True, "default": ""},
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||||||
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),
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}
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}
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}
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}
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@@ -25,7 +33,7 @@ class ComfyUIDeployExternalImage:
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CATEGORY = "image"
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CATEGORY = "image"
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||||||
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def run(self, input_id, default_value=None):
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def run(self, input_id, default_value=None, display_name=None, description=None):
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image = default_value
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image = default_value
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||||||
try:
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try:
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||||||
if input_id.startswith('http'):
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if input_id.startswith('http'):
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|||||||
@@ -15,6 +15,14 @@ class ComfyUIDeployExternalImageAlpha:
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|||||||
},
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},
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||||||
"optional": {
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"optional": {
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||||||
"default_value": ("IMAGE",),
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"default_value": ("IMAGE",),
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||||||
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"display_name": (
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||||||
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"STRING",
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||||||
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{"multiline": False, "default": ""},
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||||||
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),
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||||||
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"description": (
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||||||
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"STRING",
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||||||
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{"multiline": True, "default": ""},
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||||||
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),
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||||||
}
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}
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||||||
}
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}
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||||||
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||||||
@@ -25,7 +33,7 @@ class ComfyUIDeployExternalImageAlpha:
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|||||||
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||||||
CATEGORY = "image"
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CATEGORY = "image"
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||||||
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|
||||||
def run(self, input_id, default_value=None):
|
def run(self, input_id, default_value=None, display_name=None, description=None):
|
||||||
image = default_value
|
image = default_value
|
||||||
try:
|
try:
|
||||||
if input_id.startswith('http'):
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if input_id.startswith('http'):
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||||||
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|||||||
@@ -21,6 +21,14 @@ class ComfyUIDeployExternalImageBatch:
|
|||||||
},
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},
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||||||
"optional": {
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"optional": {
|
||||||
"default_value": ("IMAGE",),
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"default_value": ("IMAGE",),
|
||||||
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"display_name": (
|
||||||
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"STRING",
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||||||
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{"multiline": False, "default": ""},
|
||||||
|
),
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||||||
|
"description": (
|
||||||
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"STRING",
|
||||||
|
{"multiline": True, "default": ""},
|
||||||
|
),
|
||||||
}
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}
|
||||||
}
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}
|
||||||
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|
||||||
@@ -31,7 +39,7 @@ class ComfyUIDeployExternalImageBatch:
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|||||||
|
|
||||||
CATEGORY = "image"
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CATEGORY = "image"
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||||||
|
|
||||||
def run(self, input_id, images=None, default_value=None):
|
def run(self, input_id, images=None, default_value=None, display_name=None, description=None):
|
||||||
processed_images = []
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processed_images = []
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||||||
try:
|
try:
|
||||||
images_list = json.loads(images) # Assuming images is a JSON array string
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images_list = json.loads(images) # Assuming images is a JSON array string
|
||||||
|
|||||||
@@ -5,6 +5,14 @@ import torch
|
|||||||
import folder_paths
|
import folder_paths
|
||||||
|
|
||||||
|
|
||||||
|
class AnyType(str):
|
||||||
|
def __ne__(self, __value: object) -> bool:
|
||||||
|
return False
|
||||||
|
|
||||||
|
|
||||||
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WILDCARD = AnyType("*")
|
||||||
|
|
||||||
|
|
||||||
class ComfyUIDeployExternalLora:
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class ComfyUIDeployExternalLora:
|
||||||
@classmethod
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@classmethod
|
||||||
def INPUT_TYPES(s):
|
def INPUT_TYPES(s):
|
||||||
@@ -17,38 +25,69 @@ class ComfyUIDeployExternalLora:
|
|||||||
},
|
},
|
||||||
"optional": {
|
"optional": {
|
||||||
"default_lora_name": (folder_paths.get_filename_list("loras"),),
|
"default_lora_name": (folder_paths.get_filename_list("loras"),),
|
||||||
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"lora_save_name": ( # if `default_lora_name` is a link to download a file, we will attempt to save it with this name
|
||||||
|
"STRING",
|
||||||
|
{"multiline": False, "default": ""},
|
||||||
|
),
|
||||||
|
"display_name": (
|
||||||
|
"STRING",
|
||||||
|
{"multiline": False, "default": ""},
|
||||||
|
),
|
||||||
|
"description": (
|
||||||
|
"STRING",
|
||||||
|
{"multiline": True, "default": ""},
|
||||||
|
),
|
||||||
|
"lora_url": (
|
||||||
|
"STRING",
|
||||||
|
{"multiline": False, "default": ""},
|
||||||
|
),
|
||||||
},
|
},
|
||||||
}
|
}
|
||||||
|
|
||||||
RETURN_TYPES = (folder_paths.get_filename_list("loras"),)
|
RETURN_TYPES = (WILDCARD,)
|
||||||
RETURN_NAMES = ("path",)
|
RETURN_NAMES = ("path",)
|
||||||
|
|
||||||
FUNCTION = "run"
|
FUNCTION = "run"
|
||||||
|
|
||||||
CATEGORY = "deploy"
|
CATEGORY = "deploy"
|
||||||
|
|
||||||
def run(self, input_id, default_lora_name=None):
|
def run(
|
||||||
|
self,
|
||||||
|
input_id,
|
||||||
|
default_lora_name=None,
|
||||||
|
lora_save_name=None,
|
||||||
|
display_name=None,
|
||||||
|
description=None,
|
||||||
|
lora_url=None,
|
||||||
|
):
|
||||||
import requests
|
import requests
|
||||||
import os
|
import os
|
||||||
import uuid
|
import uuid
|
||||||
|
|
||||||
if default_lora_name.startswith("http"):
|
if lora_url and lora_url.startswith("http"):
|
||||||
unique_filename = str(uuid.uuid4()) + ".safetensors"
|
if lora_save_name:
|
||||||
print(unique_filename)
|
existing_loras = folder_paths.get_filename_list("loras")
|
||||||
|
# Check if lora_save_name exists in the list
|
||||||
|
if lora_save_name in existing_loras:
|
||||||
|
print(f"using lora: {lora_save_name}")
|
||||||
|
return (lora_save_name,)
|
||||||
|
else:
|
||||||
|
lora_save_name = str(uuid.uuid4()) + ".safetensors"
|
||||||
|
print(lora_save_name)
|
||||||
print(folder_paths.folder_names_and_paths["loras"][0][0])
|
print(folder_paths.folder_names_and_paths["loras"][0][0])
|
||||||
destination_path = os.path.join(
|
destination_path = os.path.join(
|
||||||
folder_paths.folder_names_and_paths["loras"][0][0], unique_filename
|
folder_paths.folder_names_and_paths["loras"][0][0], lora_save_name
|
||||||
)
|
)
|
||||||
print(destination_path)
|
print(destination_path)
|
||||||
print("Downloading external lora - " + input_id + " to " + destination_path)
|
print("Downloading external lora - " + lora_url + " to " + destination_path)
|
||||||
response = requests.get(
|
response = requests.get(
|
||||||
input_id,
|
lora_url,
|
||||||
headers={"User-Agent": "Mozilla/5.0"},
|
headers={"User-Agent": "Mozilla/5.0"},
|
||||||
allow_redirects=True,
|
allow_redirects=True,
|
||||||
)
|
)
|
||||||
with open(destination_path, "wb") as out_file:
|
with open(destination_path, "wb") as out_file:
|
||||||
out_file.write(response.content)
|
out_file.write(response.content)
|
||||||
return (unique_filename,)
|
return (lora_save_name,)
|
||||||
else:
|
else:
|
||||||
print(f"using lora: {default_lora_name}")
|
print(f"using lora: {default_lora_name}")
|
||||||
return (default_lora_name,)
|
return (default_lora_name,)
|
||||||
|
|||||||
@@ -16,7 +16,15 @@ class ComfyUIDeployExternalNumber:
|
|||||||
"optional": {
|
"optional": {
|
||||||
"default_value": (
|
"default_value": (
|
||||||
"FLOAT",
|
"FLOAT",
|
||||||
{"multiline": True, "display": "number", "default": 0, "step": 0.01},
|
{"multiline": True, "display": "number", "default": 0, "min": -2147483647, "max": 2147483647, "step": 0.01},
|
||||||
|
),
|
||||||
|
"display_name": (
|
||||||
|
"STRING",
|
||||||
|
{"multiline": False, "default": ""},
|
||||||
|
),
|
||||||
|
"description": (
|
||||||
|
"STRING",
|
||||||
|
{"multiline": True, "default": ""},
|
||||||
),
|
),
|
||||||
}
|
}
|
||||||
}
|
}
|
||||||
@@ -28,7 +36,7 @@ class ComfyUIDeployExternalNumber:
|
|||||||
|
|
||||||
CATEGORY = "number"
|
CATEGORY = "number"
|
||||||
|
|
||||||
def run(self, input_id, default_value=None):
|
def run(self, input_id, default_value=None, display_name=None, description=None):
|
||||||
try:
|
try:
|
||||||
float_value = float(input_id)
|
float_value = float(input_id)
|
||||||
print("my number", float_value)
|
print("my number", float_value)
|
||||||
|
|||||||
@@ -16,7 +16,15 @@ class ComfyUIDeployExternalNumberInt:
|
|||||||
"optional": {
|
"optional": {
|
||||||
"default_value": (
|
"default_value": (
|
||||||
"INT",
|
"INT",
|
||||||
{"multiline": True, "display": "number", "default": 0},
|
{"multiline": True, "display": "number", "min": -2147483647, "max": 2147483647, "default": 0},
|
||||||
|
),
|
||||||
|
"display_name": (
|
||||||
|
"STRING",
|
||||||
|
{"multiline": False, "default": ""},
|
||||||
|
),
|
||||||
|
"description": (
|
||||||
|
"STRING",
|
||||||
|
{"multiline": True, "default": ""},
|
||||||
),
|
),
|
||||||
}
|
}
|
||||||
}
|
}
|
||||||
@@ -28,7 +36,7 @@ class ComfyUIDeployExternalNumberInt:
|
|||||||
|
|
||||||
CATEGORY = "number"
|
CATEGORY = "number"
|
||||||
|
|
||||||
def run(self, input_id, default_value=None):
|
def run(self, input_id, default_value=None, display_name=None, description=None):
|
||||||
if not input_id or (isinstance(input_id, str) and not input_id.strip().isdigit()):
|
if not input_id or (isinstance(input_id, str) and not input_id.strip().isdigit()):
|
||||||
return [default_value]
|
return [default_value]
|
||||||
return [int(input_id)]
|
return [int(input_id)]
|
||||||
|
|||||||
@@ -11,15 +11,23 @@ class ComfyUIDeployExternalNumberSlider:
|
|||||||
"optional": {
|
"optional": {
|
||||||
"default_value": (
|
"default_value": (
|
||||||
"FLOAT",
|
"FLOAT",
|
||||||
{"multiline": True, "display": "number", "default": 0.5, "step": 0.01},
|
{"multiline": True, "display": "number", "min": -2147483647, "max": 2147483647, "default": 0.5, "step": 0.01},
|
||||||
),
|
),
|
||||||
"min_value": (
|
"min_value": (
|
||||||
"FLOAT",
|
"FLOAT",
|
||||||
{"multiline": True, "display": "number", "default": 0, "step": 0.01},
|
{"multiline": True, "display": "number", "min": -2147483647, "max": 2147483647, "default": 0, "step": 0.01},
|
||||||
),
|
),
|
||||||
"max_value": (
|
"max_value": (
|
||||||
"FLOAT",
|
"FLOAT",
|
||||||
{"multiline": True, "display": "number", "default": 1, "step": 0.01},
|
{"multiline": True, "display": "number", "min": -2147483647, "max": 2147483647, "default": 1, "step": 0.01},
|
||||||
|
),
|
||||||
|
"display_name": (
|
||||||
|
"STRING",
|
||||||
|
{"multiline": False, "default": ""},
|
||||||
|
),
|
||||||
|
"description": (
|
||||||
|
"STRING",
|
||||||
|
{"multiline": True, "default": ""},
|
||||||
),
|
),
|
||||||
}
|
}
|
||||||
}
|
}
|
||||||
@@ -31,7 +39,7 @@ class ComfyUIDeployExternalNumberSlider:
|
|||||||
|
|
||||||
CATEGORY = "number"
|
CATEGORY = "number"
|
||||||
|
|
||||||
def run(self, input_id, default_value=None, min_value=0, max_value=1):
|
def run(self, input_id, default_value=None, min_value=0, max_value=1, display_name=None, description=None):
|
||||||
try:
|
try:
|
||||||
float_value = float(input_id)
|
float_value = float(input_id)
|
||||||
if min_value <= float_value <= max_value:
|
if min_value <= float_value <= max_value:
|
||||||
|
|||||||
@@ -18,6 +18,14 @@ class ComfyUIDeployExternalText:
|
|||||||
"STRING",
|
"STRING",
|
||||||
{"multiline": True, "default": ""},
|
{"multiline": True, "default": ""},
|
||||||
),
|
),
|
||||||
|
"display_name": (
|
||||||
|
"STRING",
|
||||||
|
{"multiline": False, "default": ""},
|
||||||
|
),
|
||||||
|
"description": (
|
||||||
|
"STRING",
|
||||||
|
{"multiline": True, "default": ""},
|
||||||
|
),
|
||||||
}
|
}
|
||||||
}
|
}
|
||||||
|
|
||||||
@@ -28,7 +36,7 @@ class ComfyUIDeployExternalText:
|
|||||||
|
|
||||||
CATEGORY = "text"
|
CATEGORY = "text"
|
||||||
|
|
||||||
def run(self, input_id, default_value=None):
|
def run(self, input_id, default_value=None, display_name=None, description=None):
|
||||||
return [default_value]
|
return [default_value]
|
||||||
|
|
||||||
|
|
||||||
|
|||||||
@@ -0,0 +1,52 @@
|
|||||||
|
import folder_paths
|
||||||
|
from PIL import Image, ImageOps
|
||||||
|
import numpy as np
|
||||||
|
import torch
|
||||||
|
import json
|
||||||
|
|
||||||
|
class ComfyUIDeployExternalTextList:
|
||||||
|
@classmethod
|
||||||
|
def INPUT_TYPES(s):
|
||||||
|
return {
|
||||||
|
"required": {
|
||||||
|
"input_id": (
|
||||||
|
"STRING",
|
||||||
|
{"multiline": False, "default": 'input_text_list'},
|
||||||
|
),
|
||||||
|
"text": (
|
||||||
|
"STRING",
|
||||||
|
{"multiline": True, "default": "[]"},
|
||||||
|
),
|
||||||
|
},
|
||||||
|
"optional": {
|
||||||
|
"display_name": (
|
||||||
|
"STRING",
|
||||||
|
{"multiline": False, "default": ""},
|
||||||
|
),
|
||||||
|
"description": (
|
||||||
|
"STRING",
|
||||||
|
{"multiline": True, "default": ""},
|
||||||
|
),
|
||||||
|
}
|
||||||
|
}
|
||||||
|
|
||||||
|
RETURN_TYPES = ("STRING",)
|
||||||
|
RETURN_NAMES = ("text",)
|
||||||
|
|
||||||
|
OUTPUT_IS_LIST = (True,)
|
||||||
|
|
||||||
|
FUNCTION = "run"
|
||||||
|
|
||||||
|
CATEGORY = "text"
|
||||||
|
|
||||||
|
def run(self, input_id, text=None, display_name=None, description=None):
|
||||||
|
text_list = []
|
||||||
|
try:
|
||||||
|
text_list = json.loads(text) # Assuming text is a JSON array string
|
||||||
|
except Exception as e:
|
||||||
|
print(f"Error processing images: {e}")
|
||||||
|
pass
|
||||||
|
return ([text_list],)
|
||||||
|
|
||||||
|
NODE_CLASS_MAPPINGS = {"ComfyUIDeployExternalTextList": ComfyUIDeployExternalTextList}
|
||||||
|
NODE_DISPLAY_NAME_MAPPINGS = {"ComfyUIDeployExternalTextList": "External Text List (ComfyUI Deploy)"}
|
||||||
+339
-69
@@ -1,10 +1,15 @@
|
|||||||
# credit goes to https://github.com/Kosinkadink/ComfyUI-VideoHelperSuite and is meant to work with
|
# credit goes to https://github.com/Kosinkadink/ComfyUI-VideoHelperSuite
|
||||||
|
# Intended to work with https://github.com/NicholasKao1029/ComfyUI-VideoHelperSuite/tree/main
|
||||||
import os
|
import os
|
||||||
import itertools
|
import itertools
|
||||||
import numpy as np
|
import numpy as np
|
||||||
import torch
|
import torch
|
||||||
|
from typing import Union
|
||||||
|
from torch import Tensor
|
||||||
import cv2
|
import cv2
|
||||||
|
import psutil
|
||||||
|
|
||||||
|
from collections.abc import Mapping
|
||||||
import folder_paths
|
import folder_paths
|
||||||
from comfy.utils import common_upscale
|
from comfy.utils import common_upscale
|
||||||
|
|
||||||
@@ -90,13 +95,25 @@ if gifski_path is None:
|
|||||||
gifski_path = shutil.which("gifski")
|
gifski_path = shutil.which("gifski")
|
||||||
|
|
||||||
|
|
||||||
|
def is_safe_path(path):
|
||||||
|
if "VHS_STRICT_PATHS" not in os.environ:
|
||||||
|
return True
|
||||||
|
basedir = os.path.abspath(".")
|
||||||
|
try:
|
||||||
|
common_path = os.path.commonpath([basedir, path])
|
||||||
|
except:
|
||||||
|
# Different drive on windows
|
||||||
|
return False
|
||||||
|
return common_path == basedir
|
||||||
|
|
||||||
|
|
||||||
def get_sorted_dir_files_from_directory(
|
def get_sorted_dir_files_from_directory(
|
||||||
directory: str,
|
directory: str,
|
||||||
skip_first_images: int = 0,
|
skip_first_images: int = 0,
|
||||||
select_every_nth: int = 1,
|
select_every_nth: int = 1,
|
||||||
extensions: Iterable = None,
|
extensions: Iterable = None,
|
||||||
):
|
):
|
||||||
directory = directory.strip()
|
directory = strip_path(directory)
|
||||||
dir_files = os.listdir(directory)
|
dir_files = os.listdir(directory)
|
||||||
dir_files = sorted(dir_files)
|
dir_files = sorted(dir_files)
|
||||||
dir_files = [os.path.join(directory, x) for x in dir_files]
|
dir_files = [os.path.join(directory, x) for x in dir_files]
|
||||||
@@ -177,18 +194,59 @@ def requeue_workflow(requeue_required=(-1, True)):
|
|||||||
|
|
||||||
|
|
||||||
def get_audio(file, start_time=0, duration=0):
|
def get_audio(file, start_time=0, duration=0):
|
||||||
args = [ffmpeg_path, "-v", "error", "-i", file]
|
args = [ffmpeg_path, "-i", file]
|
||||||
if start_time > 0:
|
if start_time > 0:
|
||||||
args += ["-ss", str(start_time)]
|
args += ["-ss", str(start_time)]
|
||||||
if duration > 0:
|
if duration > 0:
|
||||||
args += ["-t", str(duration)]
|
args += ["-t", str(duration)]
|
||||||
try:
|
try:
|
||||||
|
# TODO: scan for sample rate and maintain
|
||||||
res = subprocess.run(
|
res = subprocess.run(
|
||||||
args + ["-f", "wav", "-"], stdout=subprocess.PIPE, check=True
|
args + ["-f", "f32le", "-"], capture_output=True, check=True
|
||||||
).stdout
|
)
|
||||||
|
audio = torch.frombuffer(bytearray(res.stdout), dtype=torch.float32)
|
||||||
|
match = re.search(", (\\d+) Hz, (\\w+), ", res.stderr.decode("utf-8"))
|
||||||
except subprocess.CalledProcessError as e:
|
except subprocess.CalledProcessError as e:
|
||||||
return False
|
raise Exception(
|
||||||
return res
|
f"VHS failed to extract audio from {file}:\n" + e.stderr.decode("utf-8")
|
||||||
|
)
|
||||||
|
if match:
|
||||||
|
ar = int(match.group(1))
|
||||||
|
# NOTE: Just throwing an error for other channel types right now
|
||||||
|
# Will deal with issues if they come
|
||||||
|
ac = {"mono": 1, "stereo": 2}[match.group(2)]
|
||||||
|
else:
|
||||||
|
ar = 44100
|
||||||
|
ac = 2
|
||||||
|
audio = audio.reshape((-1, ac)).transpose(0, 1).unsqueeze(0)
|
||||||
|
return {"waveform": audio, "sample_rate": ar}
|
||||||
|
|
||||||
|
|
||||||
|
class LazyAudioMap(Mapping):
|
||||||
|
def __init__(self, file, start_time, duration):
|
||||||
|
self.file = file
|
||||||
|
self.start_time = start_time
|
||||||
|
self.duration = duration
|
||||||
|
self._dict = None
|
||||||
|
|
||||||
|
def __getitem__(self, key):
|
||||||
|
if self._dict is None:
|
||||||
|
self._dict = get_audio(self.file, self.start_time, self.duration)
|
||||||
|
return self._dict[key]
|
||||||
|
|
||||||
|
def __iter__(self):
|
||||||
|
if self._dict is None:
|
||||||
|
self._dict = get_audio(self.file, self.start_time, self.duration)
|
||||||
|
return iter(self._dict)
|
||||||
|
|
||||||
|
def __len__(self):
|
||||||
|
if self._dict is None:
|
||||||
|
self._dict = get_audio(self.file, self.start_time, self.duration)
|
||||||
|
return len(self._dict)
|
||||||
|
|
||||||
|
|
||||||
|
def lazy_get_audio(file, start_time=0, duration=0):
|
||||||
|
return LazyAudioMap(file, start_time, duration)
|
||||||
|
|
||||||
|
|
||||||
def lazy_eval(func):
|
def lazy_eval(func):
|
||||||
@@ -230,6 +288,19 @@ def validate_sequence(path):
|
|||||||
return False
|
return False
|
||||||
|
|
||||||
|
|
||||||
|
def strip_path(path):
|
||||||
|
# This leaves whitespace inside quotes and only a single "
|
||||||
|
# thus ' ""test"' -> '"test'
|
||||||
|
# consider path.strip(string.whitespace+"\"")
|
||||||
|
# or weightier re.fullmatch("[\\s\"]*(.+?)[\\s\"]*", path).group(1)
|
||||||
|
path = path.strip()
|
||||||
|
if path.startswith('"'):
|
||||||
|
path = path[1:]
|
||||||
|
if path.endswith('"'):
|
||||||
|
path = path[:-1]
|
||||||
|
return path
|
||||||
|
|
||||||
|
|
||||||
def hash_path(path):
|
def hash_path(path):
|
||||||
if path is None:
|
if path is None:
|
||||||
return "input"
|
return "input"
|
||||||
@@ -286,6 +357,145 @@ def target_size(
|
|||||||
return (width, height)
|
return (width, height)
|
||||||
|
|
||||||
|
|
||||||
|
def validate_index(
|
||||||
|
index: int,
|
||||||
|
length: int = 0,
|
||||||
|
is_range: bool = False,
|
||||||
|
allow_negative=False,
|
||||||
|
allow_missing=False,
|
||||||
|
) -> int:
|
||||||
|
# if part of range, do nothing
|
||||||
|
if is_range:
|
||||||
|
return index
|
||||||
|
# otherwise, validate index
|
||||||
|
# validate not out of range - only when latent_count is passed in
|
||||||
|
if length > 0 and index > length - 1 and not allow_missing:
|
||||||
|
raise IndexError(f"Index '{index}' out of range for {length} item(s).")
|
||||||
|
# if negative, validate not out of range
|
||||||
|
if index < 0:
|
||||||
|
if not allow_negative:
|
||||||
|
raise IndexError(f"Negative indeces not allowed, but was '{index}'.")
|
||||||
|
conv_index = length + index
|
||||||
|
if conv_index < 0 and not allow_missing:
|
||||||
|
raise IndexError(
|
||||||
|
f"Index '{index}', converted to '{conv_index}' out of range for {length} item(s)."
|
||||||
|
)
|
||||||
|
index = conv_index
|
||||||
|
return index
|
||||||
|
|
||||||
|
|
||||||
|
def convert_to_index_int(
|
||||||
|
raw_index: str,
|
||||||
|
length: int = 0,
|
||||||
|
is_range: bool = False,
|
||||||
|
allow_negative=False,
|
||||||
|
allow_missing=False,
|
||||||
|
) -> int:
|
||||||
|
try:
|
||||||
|
return validate_index(
|
||||||
|
int(raw_index),
|
||||||
|
length=length,
|
||||||
|
is_range=is_range,
|
||||||
|
allow_negative=allow_negative,
|
||||||
|
allow_missing=allow_missing,
|
||||||
|
)
|
||||||
|
except ValueError as e:
|
||||||
|
raise ValueError(f"Index '{raw_index}' must be an integer.", e)
|
||||||
|
|
||||||
|
|
||||||
|
def convert_str_to_indexes(
|
||||||
|
indexes_str: str, length: int = 0, allow_missing=False
|
||||||
|
) -> list[int]:
|
||||||
|
if not indexes_str:
|
||||||
|
return []
|
||||||
|
int_indexes = list(range(0, length))
|
||||||
|
allow_negative = length > 0
|
||||||
|
chosen_indexes = []
|
||||||
|
# parse string - allow positive ints, negative ints, and ranges separated by ':'
|
||||||
|
groups = indexes_str.split(",")
|
||||||
|
groups = [g.strip() for g in groups]
|
||||||
|
for g in groups:
|
||||||
|
# parse range of indeces (e.g. 2:16)
|
||||||
|
if ":" in g:
|
||||||
|
index_range = g.split(":", 2)
|
||||||
|
index_range = [r.strip() for r in index_range]
|
||||||
|
|
||||||
|
start_index = index_range[0]
|
||||||
|
if len(start_index) > 0:
|
||||||
|
start_index = convert_to_index_int(
|
||||||
|
start_index,
|
||||||
|
length=length,
|
||||||
|
is_range=True,
|
||||||
|
allow_negative=allow_negative,
|
||||||
|
allow_missing=allow_missing,
|
||||||
|
)
|
||||||
|
else:
|
||||||
|
start_index = 0
|
||||||
|
end_index = index_range[1]
|
||||||
|
if len(end_index) > 0:
|
||||||
|
end_index = convert_to_index_int(
|
||||||
|
end_index,
|
||||||
|
length=length,
|
||||||
|
is_range=True,
|
||||||
|
allow_negative=allow_negative,
|
||||||
|
allow_missing=allow_missing,
|
||||||
|
)
|
||||||
|
else:
|
||||||
|
end_index = length
|
||||||
|
# support step as well, to allow things like reversing, every-other, etc.
|
||||||
|
step = 1
|
||||||
|
if len(index_range) > 2:
|
||||||
|
step = index_range[2]
|
||||||
|
if len(step) > 0:
|
||||||
|
step = convert_to_index_int(
|
||||||
|
step,
|
||||||
|
length=length,
|
||||||
|
is_range=True,
|
||||||
|
allow_negative=True,
|
||||||
|
allow_missing=True,
|
||||||
|
)
|
||||||
|
else:
|
||||||
|
step = 1
|
||||||
|
# if latents were passed in, base indeces on known latent count
|
||||||
|
if len(int_indexes) > 0:
|
||||||
|
chosen_indexes.extend(int_indexes[start_index:end_index][::step])
|
||||||
|
# otherwise, assume indeces are valid
|
||||||
|
else:
|
||||||
|
chosen_indexes.extend(list(range(start_index, end_index, step)))
|
||||||
|
# parse individual indeces
|
||||||
|
else:
|
||||||
|
chosen_indexes.append(
|
||||||
|
convert_to_index_int(
|
||||||
|
g,
|
||||||
|
length=length,
|
||||||
|
allow_negative=allow_negative,
|
||||||
|
allow_missing=allow_missing,
|
||||||
|
)
|
||||||
|
)
|
||||||
|
return chosen_indexes
|
||||||
|
|
||||||
|
|
||||||
|
def select_indexes(input_obj: Union[Tensor, list], idxs: list):
|
||||||
|
if type(input_obj) == Tensor:
|
||||||
|
return input_obj[idxs]
|
||||||
|
else:
|
||||||
|
return [input_obj[i] for i in idxs]
|
||||||
|
|
||||||
|
|
||||||
|
def select_indexes_from_str(
|
||||||
|
input_obj: Union[Tensor, list], indexes: str, err_if_missing=True, err_if_empty=True
|
||||||
|
):
|
||||||
|
real_idxs = convert_str_to_indexes(
|
||||||
|
indexes, len(input_obj), allow_missing=not err_if_missing
|
||||||
|
)
|
||||||
|
if err_if_empty and len(real_idxs) == 0:
|
||||||
|
raise Exception(f"Nothing was selected based on indexes found in '{indexes}'.")
|
||||||
|
return select_indexes(input_obj, real_idxs)
|
||||||
|
|
||||||
|
|
||||||
|
###
|
||||||
|
|
||||||
|
|
||||||
def cv_frame_generator(
|
def cv_frame_generator(
|
||||||
video,
|
video,
|
||||||
force_rate,
|
force_rate,
|
||||||
@@ -295,9 +505,10 @@ def cv_frame_generator(
|
|||||||
meta_batch=None,
|
meta_batch=None,
|
||||||
unique_id=None,
|
unique_id=None,
|
||||||
):
|
):
|
||||||
video_cap = cv2.VideoCapture(video)
|
video_cap = cv2.VideoCapture(strip_path(video))
|
||||||
if not video_cap.isOpened():
|
if not video_cap.isOpened():
|
||||||
raise ValueError(f"{video} could not be loaded with cv.")
|
raise ValueError(f"{video} could not be loaded with cv.")
|
||||||
|
pbar = None
|
||||||
|
|
||||||
# extract video metadata
|
# extract video metadata
|
||||||
fps = video_cap.get(cv2.CAP_PROP_FPS)
|
fps = video_cap.get(cv2.CAP_PROP_FPS)
|
||||||
@@ -319,6 +530,8 @@ def cv_frame_generator(
|
|||||||
target_frame_time = 1 / force_rate
|
target_frame_time = 1 / force_rate
|
||||||
|
|
||||||
yield (width, height, fps, duration, total_frames, target_frame_time)
|
yield (width, height, fps, duration, total_frames, target_frame_time)
|
||||||
|
if meta_batch is not None:
|
||||||
|
yield min(frame_load_cap, total_frames)
|
||||||
|
|
||||||
time_offset = target_frame_time - base_frame_time
|
time_offset = target_frame_time - base_frame_time
|
||||||
while video_cap.isOpened():
|
while video_cap.isOpened():
|
||||||
@@ -349,7 +562,8 @@ def cv_frame_generator(
|
|||||||
frame = cv2.cvtColor(frame, cv2.COLOR_BGR2RGB)
|
frame = cv2.cvtColor(frame, cv2.COLOR_BGR2RGB)
|
||||||
# convert frame to comfyui's expected format
|
# convert frame to comfyui's expected format
|
||||||
# TODO: frame contains no exif information. Check if opencv2 has already applied
|
# TODO: frame contains no exif information. Check if opencv2 has already applied
|
||||||
frame = np.array(frame, dtype=np.float32) / 255.0
|
frame = np.array(frame, dtype=np.float32)
|
||||||
|
torch.from_numpy(frame).div_(255)
|
||||||
if prev_frame is not None:
|
if prev_frame is not None:
|
||||||
inp = yield prev_frame
|
inp = yield prev_frame
|
||||||
if inp is not None:
|
if inp is not None:
|
||||||
@@ -357,6 +571,8 @@ def cv_frame_generator(
|
|||||||
return
|
return
|
||||||
prev_frame = frame
|
prev_frame = frame
|
||||||
frames_added += 1
|
frames_added += 1
|
||||||
|
if pbar is not None:
|
||||||
|
pbar.update_absolute(frames_added, frame_load_cap)
|
||||||
# if cap exists and we've reached it, stop processing frames
|
# if cap exists and we've reached it, stop processing frames
|
||||||
if frame_load_cap > 0 and frames_added >= frame_load_cap:
|
if frame_load_cap > 0 and frames_added >= frame_load_cap:
|
||||||
break
|
break
|
||||||
@@ -367,6 +583,17 @@ def cv_frame_generator(
|
|||||||
yield prev_frame
|
yield prev_frame
|
||||||
|
|
||||||
|
|
||||||
|
def batched(it, n):
|
||||||
|
while batch := tuple(itertools.islice(it, n)):
|
||||||
|
yield batch
|
||||||
|
|
||||||
|
|
||||||
|
def batched_vae_encode(images, vae, frames_per_batch):
|
||||||
|
for batch in batched(images, frames_per_batch):
|
||||||
|
image_batch = torch.from_numpy(np.array(batch))
|
||||||
|
yield from vae.encode(image_batch).numpy()
|
||||||
|
|
||||||
|
|
||||||
def load_video_cv(
|
def load_video_cv(
|
||||||
video: str,
|
video: str,
|
||||||
force_rate: int,
|
force_rate: int,
|
||||||
@@ -378,6 +605,8 @@ def load_video_cv(
|
|||||||
select_every_nth: int,
|
select_every_nth: int,
|
||||||
meta_batch=None,
|
meta_batch=None,
|
||||||
unique_id=None,
|
unique_id=None,
|
||||||
|
memory_limit_mb=None,
|
||||||
|
vae=None,
|
||||||
):
|
):
|
||||||
if meta_batch is None or unique_id not in meta_batch.inputs:
|
if meta_batch is None or unique_id not in meta_batch.inputs:
|
||||||
gen = cv_frame_generator(
|
gen = cv_frame_generator(
|
||||||
@@ -401,30 +630,89 @@ def load_video_cv(
|
|||||||
total_frames,
|
total_frames,
|
||||||
target_frame_time,
|
target_frame_time,
|
||||||
)
|
)
|
||||||
|
meta_batch.total_frames = min(meta_batch.total_frames, next(gen))
|
||||||
|
|
||||||
else:
|
else:
|
||||||
(gen, width, height, fps, duration, total_frames, target_frame_time) = (
|
(gen, width, height, fps, duration, total_frames, target_frame_time) = (
|
||||||
meta_batch.inputs[unique_id]
|
meta_batch.inputs[unique_id]
|
||||||
)
|
)
|
||||||
|
|
||||||
|
memory_limit = None
|
||||||
|
if memory_limit_mb is not None:
|
||||||
|
memory_limit *= 2**20
|
||||||
|
else:
|
||||||
|
# TODO: verify if garbage collection should be performed here.
|
||||||
|
# leaves ~128 MB unreserved for safety
|
||||||
|
try:
|
||||||
|
memory_limit = (
|
||||||
|
psutil.virtual_memory().available + psutil.swap_memory().free
|
||||||
|
) - 2**27
|
||||||
|
except:
|
||||||
|
print(
|
||||||
|
"Failed to calculate available memory. Memory load limit has been disabled"
|
||||||
|
)
|
||||||
|
if memory_limit is not None:
|
||||||
|
if vae is not None:
|
||||||
|
# space required to load as f32, exist as latent with wiggle room, decode to f32
|
||||||
|
max_loadable_frames = int(
|
||||||
|
memory_limit // (width * height * 3 * (4 + 4 + 1 / 10))
|
||||||
|
)
|
||||||
|
else:
|
||||||
|
# TODO: use better estimate for when vae is not None
|
||||||
|
# Consider completely ignoring for load_latent case?
|
||||||
|
max_loadable_frames = int(memory_limit // (width * height * 3 * (0.1)))
|
||||||
if meta_batch is not None:
|
if meta_batch is not None:
|
||||||
|
if meta_batch.frames_per_batch > max_loadable_frames:
|
||||||
|
raise RuntimeError(
|
||||||
|
f"Meta Batch set to {meta_batch.frames_per_batch} frames but only {max_loadable_frames} can fit in memory"
|
||||||
|
)
|
||||||
gen = itertools.islice(gen, meta_batch.frames_per_batch)
|
gen = itertools.islice(gen, meta_batch.frames_per_batch)
|
||||||
|
else:
|
||||||
|
original_gen = gen
|
||||||
|
gen = itertools.islice(gen, max_loadable_frames)
|
||||||
|
downscale_ratio = getattr(vae, "downscale_ratio", 8)
|
||||||
|
frames_per_batch = (1920 * 1080 * 16) // (width * height) or 1
|
||||||
|
if force_size != "Disabled" or vae is not None:
|
||||||
|
new_size = target_size(
|
||||||
|
width, height, force_size, custom_width, custom_height, downscale_ratio
|
||||||
|
)
|
||||||
|
if new_size[0] != width or new_size[1] != height:
|
||||||
|
|
||||||
|
def rescale(frame):
|
||||||
|
s = torch.from_numpy(
|
||||||
|
np.fromiter(frame, np.dtype((np.float32, (height, width, 3))))
|
||||||
|
)
|
||||||
|
s = s.movedim(-1, 1)
|
||||||
|
s = common_upscale(s, new_size[0], new_size[1], "lanczos", "center")
|
||||||
|
return s.movedim(1, -1).numpy()
|
||||||
|
|
||||||
|
gen = itertools.chain.from_iterable(
|
||||||
|
map(rescale, batched(gen, frames_per_batch))
|
||||||
|
)
|
||||||
|
else:
|
||||||
|
new_size = width, height
|
||||||
|
if vae is not None:
|
||||||
|
gen = batched_vae_encode(gen, vae, frames_per_batch)
|
||||||
|
vw, vh = new_size[0] // downscale_ratio, new_size[1] // downscale_ratio
|
||||||
|
images = torch.from_numpy(np.fromiter(gen, np.dtype((np.float32, (4, vh, vw)))))
|
||||||
|
else:
|
||||||
# Some minor wizardry to eliminate a copy and reduce max memory by a factor of ~2
|
# Some minor wizardry to eliminate a copy and reduce max memory by a factor of ~2
|
||||||
images = torch.from_numpy(
|
images = torch.from_numpy(
|
||||||
np.fromiter(gen, np.dtype((np.float32, (height, width, 3))))
|
np.fromiter(gen, np.dtype((np.float32, (new_size[1], new_size[0], 3))))
|
||||||
)
|
)
|
||||||
|
if meta_batch is None and memory_limit is not None:
|
||||||
|
try:
|
||||||
|
next(original_gen)
|
||||||
|
raise RuntimeError(
|
||||||
|
f"Memory limit hit after loading {len(images)} frames. Stopping execution."
|
||||||
|
)
|
||||||
|
except StopIteration:
|
||||||
|
pass
|
||||||
if len(images) == 0:
|
if len(images) == 0:
|
||||||
raise RuntimeError("No frames generated")
|
raise RuntimeError("No frames generated")
|
||||||
if force_size != "Disabled":
|
|
||||||
new_size = target_size(width, height, force_size, custom_width, custom_height)
|
|
||||||
if new_size[0] != width or new_size[1] != height:
|
|
||||||
s = images.movedim(-1, 1)
|
|
||||||
s = common_upscale(s, new_size[0], new_size[1], "lanczos", "center")
|
|
||||||
images = s.movedim(1, -1)
|
|
||||||
|
|
||||||
# Setup lambda for lazy audio capture
|
# Setup lambda for lazy audio capture
|
||||||
audio = lambda: get_audio(
|
audio = lazy_get_audio(
|
||||||
video,
|
video,
|
||||||
skip_first_frames * target_frame_time,
|
skip_first_frames * target_frame_time,
|
||||||
frame_load_cap * target_frame_time * select_every_nth,
|
frame_load_cap * target_frame_time * select_every_nth,
|
||||||
@@ -440,13 +728,16 @@ def load_video_cv(
|
|||||||
"loaded_fps": 1 / target_frame_time,
|
"loaded_fps": 1 / target_frame_time,
|
||||||
"loaded_frame_count": len(images),
|
"loaded_frame_count": len(images),
|
||||||
"loaded_duration": len(images) * target_frame_time,
|
"loaded_duration": len(images) * target_frame_time,
|
||||||
"loaded_width": images.shape[2],
|
"loaded_width": new_size[0],
|
||||||
"loaded_height": images.shape[1],
|
"loaded_height": new_size[1],
|
||||||
}
|
}
|
||||||
|
if vae is None:
|
||||||
return (images, len(images), lazy_eval(audio), video_info)
|
return (images, len(images), audio, video_info, None)
|
||||||
|
else:
|
||||||
|
return (None, len(images), audio, video_info, {"samples": images})
|
||||||
|
|
||||||
|
|
||||||
|
# modeled after Video upload node
|
||||||
class ComfyUIDeployExternalVideo:
|
class ComfyUIDeployExternalVideo:
|
||||||
@classmethod
|
@classmethod
|
||||||
def INPUT_TYPES(s):
|
def INPUT_TYPES(s):
|
||||||
@@ -457,68 +748,46 @@ class ComfyUIDeployExternalVideo:
|
|||||||
file_parts = f.split(".")
|
file_parts = f.split(".")
|
||||||
if len(file_parts) > 1 and (file_parts[-1] in video_extensions):
|
if len(file_parts) > 1 and (file_parts[-1] in video_extensions):
|
||||||
files.append(f)
|
files.append(f)
|
||||||
return {
|
return {"required": {
|
||||||
"required": {
|
|
||||||
"input_id": (
|
"input_id": (
|
||||||
"STRING",
|
"STRING",
|
||||||
{"multiline": False, "default": "input_video"},
|
{"multiline": False, "default": "input_video"},
|
||||||
),
|
),
|
||||||
"force_rate": ("INT", {"default": 0, "min": 0, "max": 60, "step": 1}),
|
"force_rate": ("INT", {"default": 0, "min": 0, "max": 60, "step": 1}),
|
||||||
"force_size": (
|
"force_size": (["Disabled", "Custom Height", "Custom Width", "Custom", "256x?", "?x256", "256x256", "512x?", "?x512", "512x512"],),
|
||||||
[
|
"custom_width": ("INT", {"default": 512, "min": 0, "max": DIMMAX, "step": 8}),
|
||||||
"Disabled",
|
"custom_height": ("INT", {"default": 512, "min": 0, "max": DIMMAX, "step": 8}),
|
||||||
"Custom Height",
|
"frame_load_cap": ("INT", {"default": 0, "min": 0, "max": BIGMAX, "step": 1}),
|
||||||
"Custom Width",
|
"skip_first_frames": ("INT", {"default": 0, "min": 0, "max": BIGMAX, "step": 1}),
|
||||||
"Custom",
|
"select_every_nth": ("INT", {"default": 1, "min": 1, "max": BIGMAX, "step": 1}),
|
||||||
"256x?",
|
|
||||||
"?x256",
|
|
||||||
"256x256",
|
|
||||||
"512x?",
|
|
||||||
"?x512",
|
|
||||||
"512x512",
|
|
||||||
],
|
|
||||||
),
|
|
||||||
"custom_width": (
|
|
||||||
"INT",
|
|
||||||
{"default": 512, "min": 0, "max": DIMMAX, "step": 8},
|
|
||||||
),
|
|
||||||
"custom_height": (
|
|
||||||
"INT",
|
|
||||||
{"default": 512, "min": 0, "max": DIMMAX, "step": 8},
|
|
||||||
),
|
|
||||||
"frame_load_cap": (
|
|
||||||
"INT",
|
|
||||||
{"default": 0, "min": 0, "max": BIGMAX, "step": 1},
|
|
||||||
),
|
|
||||||
"skip_first_frames": (
|
|
||||||
"INT",
|
|
||||||
{"default": 0, "min": 0, "max": BIGMAX, "step": 1},
|
|
||||||
),
|
|
||||||
"select_every_nth": (
|
|
||||||
"INT",
|
|
||||||
{"default": 1, "min": 1, "max": BIGMAX, "step": 1},
|
|
||||||
),
|
|
||||||
},
|
},
|
||||||
"optional": {
|
"optional": {
|
||||||
"meta_batch": ("VHS_BatchManager",),
|
"meta_batch": ("VHS_BatchManager",),
|
||||||
"default_value": (sorted(files),),
|
"vae": ("VAE",),
|
||||||
|
"default_video": (sorted(files),),
|
||||||
|
"display_name": (
|
||||||
|
"STRING",
|
||||||
|
{"multiline": False, "default": ""},
|
||||||
|
),
|
||||||
|
"description": (
|
||||||
|
"STRING",
|
||||||
|
{"multiline": True, "default": ""},
|
||||||
|
),
|
||||||
|
},
|
||||||
|
"hidden": {
|
||||||
|
"unique_id": "UNIQUE_ID"
|
||||||
},
|
},
|
||||||
"hidden": {"unique_id": "UNIQUE_ID"},
|
|
||||||
}
|
}
|
||||||
|
|
||||||
CATEGORY = "Video Helper Suite 🎥🅥🅗🅢"
|
CATEGORY = "Video Helper Suite 🎥🅥🅗🅢"
|
||||||
|
|
||||||
RETURN_TYPES = (
|
RETURN_TYPES = ("IMAGE", "INT", "AUDIO", "VHS_VIDEOINFO", "LATENT")
|
||||||
"IMAGE",
|
|
||||||
"INT",
|
|
||||||
"VHS_AUDIO",
|
|
||||||
"VHS_VIDEOINFO",
|
|
||||||
)
|
|
||||||
RETURN_NAMES = (
|
RETURN_NAMES = (
|
||||||
"IMAGE",
|
"IMAGE",
|
||||||
"frame_count",
|
"frame_count",
|
||||||
"audio",
|
"audio",
|
||||||
"video_info",
|
"video_info",
|
||||||
|
"LATENT",
|
||||||
)
|
)
|
||||||
|
|
||||||
FUNCTION = "load_video"
|
FUNCTION = "load_video"
|
||||||
@@ -535,8 +804,6 @@ class ComfyUIDeployExternalVideo:
|
|||||||
meta_batch = kwargs.get("meta_batch")
|
meta_batch = kwargs.get("meta_batch")
|
||||||
unique_id = kwargs.get("unique_id")
|
unique_id = kwargs.get("unique_id")
|
||||||
|
|
||||||
video = kwargs.get("default_value")
|
|
||||||
video_path = folder_paths.get_annotated_filepath(video.strip('"'))
|
|
||||||
|
|
||||||
input_dir = folder_paths.get_input_directory()
|
input_dir = folder_paths.get_input_directory()
|
||||||
if input_id.startswith("http"):
|
if input_id.startswith("http"):
|
||||||
@@ -566,8 +833,11 @@ class ComfyUIDeployExternalVideo:
|
|||||||
leave=True,
|
leave=True,
|
||||||
):
|
):
|
||||||
out_file.write(chunk)
|
out_file.write(chunk)
|
||||||
|
else:
|
||||||
print("video path: ", video_path)
|
video = kwargs.get("default_video", None)
|
||||||
|
if video is None:
|
||||||
|
raise "No default video given and no external video provided"
|
||||||
|
video_path = folder_paths.get_annotated_filepath(video.strip('"'))
|
||||||
|
|
||||||
return load_video_cv(
|
return load_video_cv(
|
||||||
video=video_path,
|
video=video_path,
|
||||||
|
|||||||
+553
-131
File diff suppressed because it is too large
Load Diff
+7
-4
@@ -22,12 +22,15 @@ class StreamingPrompt(BaseModel):
|
|||||||
auth_token: str
|
auth_token: str
|
||||||
inputs: dict[str, Union[str, bytes, Image.Image]]
|
inputs: dict[str, Union[str, bytes, Image.Image]]
|
||||||
running_prompt_ids: set[str] = set()
|
running_prompt_ids: set[str] = set()
|
||||||
status_endpoint: str
|
status_endpoint: Optional[str]
|
||||||
file_upload_endpoint: str
|
file_upload_endpoint: Optional[str]
|
||||||
|
|
||||||
class SimplePrompt(BaseModel):
|
class SimplePrompt(BaseModel):
|
||||||
status_endpoint: str
|
status_endpoint: Optional[str]
|
||||||
file_upload_endpoint: str
|
file_upload_endpoint: Optional[str]
|
||||||
|
|
||||||
|
token: Optional[str]
|
||||||
|
|
||||||
workflow_api: dict
|
workflow_api: dict
|
||||||
status: Status = Status.NOT_STARTED
|
status: Status = Status.NOT_STARTED
|
||||||
progress: set = set()
|
progress: set = set()
|
||||||
|
|||||||
@@ -2,3 +2,5 @@ aiofiles
|
|||||||
pydantic
|
pydantic
|
||||||
opencv-python
|
opencv-python
|
||||||
imageio-ffmpeg
|
imageio-ffmpeg
|
||||||
|
brotli
|
||||||
|
# logfire
|
||||||
+405
-34
@@ -2,6 +2,7 @@ import { app } from "./app.js";
|
|||||||
import { api } from "./api.js";
|
import { api } from "./api.js";
|
||||||
import { ComfyWidgets, LGraphNode } from "./widgets.js";
|
import { ComfyWidgets, LGraphNode } from "./widgets.js";
|
||||||
import { generateDependencyGraph } from "https://esm.sh/[email protected]";
|
import { generateDependencyGraph } from "https://esm.sh/[email protected]";
|
||||||
|
import { ComfyDeploy } from "https://esm.sh/[email protected]";
|
||||||
|
|
||||||
const loadingIcon = `<svg xmlns="http://www.w3.org/2000/svg" width="32" height="32" viewBox="0 0 24 24"><g fill="none" stroke="#888888" stroke-linecap="round" stroke-width="2"><path stroke-dasharray="60" stroke-dashoffset="60" stroke-opacity=".3" d="M12 3C16.9706 3 21 7.02944 21 12C21 16.9706 16.9706 21 12 21C7.02944 21 3 16.9706 3 12C3 7.02944 7.02944 3 12 3Z"><animate fill="freeze" attributeName="stroke-dashoffset" dur="1.3s" values="60;0"/></path><path stroke-dasharray="15" stroke-dashoffset="15" d="M12 3C16.9706 3 21 7.02944 21 12"><animate fill="freeze" attributeName="stroke-dashoffset" dur="0.3s" values="15;0"/><animateTransform attributeName="transform" dur="1.5s" repeatCount="indefinite" type="rotate" values="0 12 12;360 12 12"/></path></g></svg>`;
|
const loadingIcon = `<svg xmlns="http://www.w3.org/2000/svg" width="32" height="32" viewBox="0 0 24 24"><g fill="none" stroke="#888888" stroke-linecap="round" stroke-width="2"><path stroke-dasharray="60" stroke-dashoffset="60" stroke-opacity=".3" d="M12 3C16.9706 3 21 7.02944 21 12C21 16.9706 16.9706 21 12 21C7.02944 21 3 16.9706 3 12C3 7.02944 7.02944 3 12 3Z"><animate fill="freeze" attributeName="stroke-dashoffset" dur="1.3s" values="60;0"/></path><path stroke-dasharray="15" stroke-dashoffset="15" d="M12 3C16.9706 3 21 7.02944 21 12"><animate fill="freeze" attributeName="stroke-dashoffset" dur="0.3s" values="15;0"/><animateTransform attributeName="transform" dur="1.5s" repeatCount="indefinite" type="rotate" values="0 12 12;360 12 12"/></path></g></svg>`;
|
||||||
|
|
||||||
@@ -13,6 +14,75 @@ function sendEventToCD(event, data) {
|
|||||||
window.parent.postMessage(JSON.stringify(message), "*");
|
window.parent.postMessage(JSON.stringify(message), "*");
|
||||||
}
|
}
|
||||||
|
|
||||||
|
function dispatchAPIEventData(data) {
|
||||||
|
const msg = JSON.parse(data);
|
||||||
|
|
||||||
|
// Custom parse error
|
||||||
|
if (msg.error) {
|
||||||
|
let message = msg.error.message;
|
||||||
|
if (msg.error.details) message += ": " + msg.error.details;
|
||||||
|
for (const [nodeID, nodeError] of Object.entries(msg.node_errors)) {
|
||||||
|
message += "\n" + nodeError.class_type + ":";
|
||||||
|
for (const errorReason of nodeError.errors) {
|
||||||
|
message +=
|
||||||
|
"\n - " + errorReason.message + ": " + errorReason.details;
|
||||||
|
}
|
||||||
|
}
|
||||||
|
|
||||||
|
app.ui.dialog.show(message);
|
||||||
|
if (msg.node_errors) {
|
||||||
|
app.lastNodeErrors = msg.node_errors;
|
||||||
|
app.canvas.draw(true, true);
|
||||||
|
}
|
||||||
|
}
|
||||||
|
|
||||||
|
switch (msg.event) {
|
||||||
|
case "error":
|
||||||
|
break;
|
||||||
|
case "status":
|
||||||
|
if (msg.data.sid) {
|
||||||
|
// this.clientId = msg.data.sid;
|
||||||
|
// window.name = this.clientId; // use window name so it isnt reused when duplicating tabs
|
||||||
|
// sessionStorage.setItem("clientId", this.clientId); // store in session storage so duplicate tab can load correct workflow
|
||||||
|
}
|
||||||
|
api.dispatchEvent(new CustomEvent("status", { detail: msg.data.status }));
|
||||||
|
break;
|
||||||
|
case "progress":
|
||||||
|
api.dispatchEvent(new CustomEvent("progress", { detail: msg.data }));
|
||||||
|
break;
|
||||||
|
case "executing":
|
||||||
|
api.dispatchEvent(
|
||||||
|
new CustomEvent("executing", { detail: msg.data.node }),
|
||||||
|
);
|
||||||
|
break;
|
||||||
|
case "executed":
|
||||||
|
api.dispatchEvent(new CustomEvent("executed", { detail: msg.data }));
|
||||||
|
break;
|
||||||
|
case "execution_start":
|
||||||
|
api.dispatchEvent(
|
||||||
|
new CustomEvent("execution_start", { detail: msg.data }),
|
||||||
|
);
|
||||||
|
break;
|
||||||
|
case "execution_error":
|
||||||
|
api.dispatchEvent(
|
||||||
|
new CustomEvent("execution_error", { detail: msg.data }),
|
||||||
|
);
|
||||||
|
break;
|
||||||
|
case "execution_cached":
|
||||||
|
api.dispatchEvent(
|
||||||
|
new CustomEvent("execution_cached", { detail: msg.data }),
|
||||||
|
);
|
||||||
|
break;
|
||||||
|
default:
|
||||||
|
api.dispatchEvent(new CustomEvent(msg.type, { detail: msg.data }));
|
||||||
|
// default:
|
||||||
|
// if (this.#registered.has(msg.type)) {
|
||||||
|
// } else {
|
||||||
|
// throw new Error(`Unknown message type ${msg.type}`);
|
||||||
|
// }
|
||||||
|
}
|
||||||
|
}
|
||||||
|
|
||||||
/** @typedef {import('../../../web/types/comfy.js').ComfyExtension} ComfyExtension*/
|
/** @typedef {import('../../../web/types/comfy.js').ComfyExtension} ComfyExtension*/
|
||||||
/** @type {ComfyExtension} */
|
/** @type {ComfyExtension} */
|
||||||
const ext = {
|
const ext = {
|
||||||
@@ -33,8 +103,7 @@ const ext = {
|
|||||||
|
|
||||||
sendEventToCD("cd_plugin_onInit");
|
sendEventToCD("cd_plugin_onInit");
|
||||||
|
|
||||||
app.queuePrompt = ((originalFunction) =>
|
app.queuePrompt = ((originalFunction) => async () => {
|
||||||
async () => {
|
|
||||||
// const prompt = await app.graphToPrompt();
|
// const prompt = await app.graphToPrompt();
|
||||||
sendEventToCD("cd_plugin_onQueuePromptTrigger");
|
sendEventToCD("cd_plugin_onQueuePromptTrigger");
|
||||||
})(app.queuePrompt);
|
})(app.queuePrompt);
|
||||||
@@ -138,14 +207,26 @@ const ext = {
|
|||||||
ComfyWidgets.STRING(
|
ComfyWidgets.STRING(
|
||||||
this,
|
this,
|
||||||
"workflow_name",
|
"workflow_name",
|
||||||
["", { default: this.properties.workflow_name, multiline: false }],
|
[
|
||||||
|
"",
|
||||||
|
{
|
||||||
|
default: this.properties.workflow_name,
|
||||||
|
multiline: false,
|
||||||
|
},
|
||||||
|
],
|
||||||
app,
|
app,
|
||||||
);
|
);
|
||||||
|
|
||||||
ComfyWidgets.STRING(
|
ComfyWidgets.STRING(
|
||||||
this,
|
this,
|
||||||
"workflow_id",
|
"workflow_id",
|
||||||
["", { default: this.properties.workflow_id, multiline: false }],
|
[
|
||||||
|
"",
|
||||||
|
{
|
||||||
|
default: this.properties.workflow_id,
|
||||||
|
multiline: false,
|
||||||
|
},
|
||||||
|
],
|
||||||
app,
|
app,
|
||||||
);
|
);
|
||||||
|
|
||||||
@@ -190,32 +271,110 @@ const ext = {
|
|||||||
// const graphCanvas = document.getElementById("graph-canvas");
|
// const graphCanvas = document.getElementById("graph-canvas");
|
||||||
|
|
||||||
window.addEventListener("message", async (event) => {
|
window.addEventListener("message", async (event) => {
|
||||||
|
// console.log("message", event);
|
||||||
try {
|
try {
|
||||||
const message = JSON.parse(event.data);
|
const message = JSON.parse(event.data);
|
||||||
if (message.type === "graph_load") {
|
if (message.type === "graph_load") {
|
||||||
const comfyUIWorkflow = message.data;
|
const comfyUIWorkflow = message.data;
|
||||||
console.log("recieved: ", comfyUIWorkflow);
|
// console.log("recieved: ", comfyUIWorkflow);
|
||||||
// Assuming there's a method to load the workflow data into the ComfyUI
|
// Assuming there's a method to load the workflow data into the ComfyUI
|
||||||
// This part of the code would depend on how the ComfyUI expects to receive and process the workflow data
|
// This part of the code would depend on how the ComfyUI expects to receive and process the workflow data
|
||||||
// For demonstration, let's assume there's a loadWorkflow method in the ComfyUI API
|
// For demonstration, let's assume there's a loadWorkflow method in the ComfyUI API
|
||||||
if (comfyUIWorkflow && app && app.loadGraphData) {
|
if (comfyUIWorkflow && app && app.loadGraphData) {
|
||||||
|
console.log("loadGraphData");
|
||||||
app.loadGraphData(comfyUIWorkflow);
|
app.loadGraphData(comfyUIWorkflow);
|
||||||
}
|
}
|
||||||
} else if (message.type === "deploy") {
|
} else if (message.type === "deploy") {
|
||||||
// deployWorkflow();
|
// deployWorkflow();
|
||||||
const prompt = await app.graphToPrompt();
|
const prompt = await app.graphToPrompt();
|
||||||
|
// api.handlePromptGenerated(prompt);
|
||||||
sendEventToCD("cd_plugin_onDeployChanges", prompt);
|
sendEventToCD("cd_plugin_onDeployChanges", prompt);
|
||||||
} else if (message.type === "queue_prompt") {
|
} else if (message.type === "queue_prompt") {
|
||||||
const prompt = await app.graphToPrompt();
|
const prompt = await app.graphToPrompt();
|
||||||
sendEventToCD("cd_plugin_onQueuePrompt", prompt);
|
if (typeof api.handlePromptGenerated === "function") {
|
||||||
|
api.handlePromptGenerated(prompt);
|
||||||
|
} else {
|
||||||
|
console.warn("api.handlePromptGenerated is not a function");
|
||||||
}
|
}
|
||||||
|
sendEventToCD("cd_plugin_onQueuePrompt", prompt);
|
||||||
|
} else if (message.type === "get_prompt") {
|
||||||
|
const prompt = await app.graphToPrompt();
|
||||||
|
sendEventToCD("cd_plugin_onGetPrompt", prompt);
|
||||||
|
} else if (message.type === "event") {
|
||||||
|
dispatchAPIEventData(message.data);
|
||||||
|
} else if (message.type === "add_node") {
|
||||||
|
console.log("add node", message.data);
|
||||||
|
app.graph.beforeChange();
|
||||||
|
var node = LiteGraph.createNode(message.data.type);
|
||||||
|
node.configure({
|
||||||
|
widgets_values: message.data.widgets_values,
|
||||||
|
});
|
||||||
|
|
||||||
|
console.log("node", node);
|
||||||
|
|
||||||
|
const graphMouse = app.canvas.graph_mouse;
|
||||||
|
|
||||||
|
node.pos = [graphMouse[0], graphMouse[1]];
|
||||||
|
|
||||||
|
app.graph.add(node);
|
||||||
|
app.graph.afterChange();
|
||||||
|
} else if (message.type === "zoom_to_node") {
|
||||||
|
const nodeId = message.data.nodeId;
|
||||||
|
const position = message.data.position;
|
||||||
|
|
||||||
|
const node = app.graph.getNodeById(nodeId);
|
||||||
|
if (!node) return;
|
||||||
|
|
||||||
|
const canvas = app.canvas;
|
||||||
|
const targetScale = 1;
|
||||||
|
const targetOffsetX =
|
||||||
|
canvas.canvas.width / 4 - position[0] - node.size[0] / 2;
|
||||||
|
const targetOffsetY =
|
||||||
|
canvas.canvas.height / 4 - position[1] - node.size[1] / 2;
|
||||||
|
|
||||||
|
const startScale = canvas.ds.scale;
|
||||||
|
const startOffsetX = canvas.ds.offset[0];
|
||||||
|
const startOffsetY = canvas.ds.offset[1];
|
||||||
|
|
||||||
|
const duration = 400; // Animation duration in milliseconds
|
||||||
|
const startTime = Date.now();
|
||||||
|
|
||||||
|
function easeOutCubic(t) {
|
||||||
|
return 1 - Math.pow(1 - t, 3);
|
||||||
|
}
|
||||||
|
|
||||||
|
function lerp(start, end, t) {
|
||||||
|
return start * (1 - t) + end * t;
|
||||||
|
}
|
||||||
|
|
||||||
|
function animate() {
|
||||||
|
const currentTime = Date.now();
|
||||||
|
const elapsedTime = currentTime - startTime;
|
||||||
|
const t = Math.min(elapsedTime / duration, 1);
|
||||||
|
|
||||||
|
const easedT = easeOutCubic(t);
|
||||||
|
|
||||||
|
const currentScale = lerp(startScale, targetScale, easedT);
|
||||||
|
const currentOffsetX = lerp(startOffsetX, targetOffsetX, easedT);
|
||||||
|
const currentOffsetY = lerp(startOffsetY, targetOffsetY, easedT);
|
||||||
|
|
||||||
|
canvas.setZoom(currentScale);
|
||||||
|
canvas.ds.offset = [currentOffsetX, currentOffsetY];
|
||||||
|
canvas.draw(true, true);
|
||||||
|
|
||||||
|
if (t < 1) {
|
||||||
|
requestAnimationFrame(animate);
|
||||||
|
}
|
||||||
|
}
|
||||||
|
|
||||||
|
animate();
|
||||||
|
}
|
||||||
|
// else if (message.type === "refresh") {
|
||||||
|
// sendEventToCD("cd_plugin_onRefresh");
|
||||||
|
// }
|
||||||
} catch (error) {
|
} catch (error) {
|
||||||
// console.error("Error processing message:", error);
|
// console.error("Error processing message:", error);
|
||||||
}
|
}
|
||||||
|
|
||||||
// if (!event.data.flow || Object.entries(event.data.flow).length <= 0)
|
|
||||||
// return;
|
|
||||||
// updateBlendshapesPrompts(event.data.flow);
|
|
||||||
});
|
});
|
||||||
|
|
||||||
api.addEventListener("executed", (evt) => {
|
api.addEventListener("executed", (evt) => {
|
||||||
@@ -339,6 +498,7 @@ function createDynamicUIHtml(data) {
|
|||||||
return html;
|
return html;
|
||||||
}
|
}
|
||||||
|
|
||||||
|
// Modify the existing deployWorkflow function
|
||||||
async function deployWorkflow() {
|
async function deployWorkflow() {
|
||||||
const deploy = document.getElementById("deploy-button");
|
const deploy = document.getElementById("deploy-button");
|
||||||
|
|
||||||
@@ -485,30 +645,30 @@ async function deployWorkflow() {
|
|||||||
console.log(hash);
|
console.log(hash);
|
||||||
return hash.file_hash;
|
return hash.file_hash;
|
||||||
},
|
},
|
||||||
handleFileUpload: async (file, hash, prevhash) => {
|
// handleFileUpload: async (file, hash, prevhash) => {
|
||||||
console.log("Uploading ", file);
|
// console.log("Uploading ", file);
|
||||||
loadingDialog.showLoading("Uploading file", file);
|
// loadingDialog.showLoading("Uploading file", file);
|
||||||
try {
|
// try {
|
||||||
const { download_url } = await fetch(`/comfyui-deploy/upload-file`, {
|
// const { download_url } = await fetch(`/comfyui-deploy/upload-file`, {
|
||||||
method: "POST",
|
// method: "POST",
|
||||||
body: JSON.stringify({
|
// body: JSON.stringify({
|
||||||
file_path: file,
|
// file_path: file,
|
||||||
token: apiKey,
|
// token: apiKey,
|
||||||
url: endpoint + "/api/upload-url",
|
// url: endpoint + "/api/upload-url",
|
||||||
}),
|
// }),
|
||||||
})
|
// })
|
||||||
.then((x) => x.json())
|
// .then((x) => x.json())
|
||||||
.catch(() => {
|
// .catch(() => {
|
||||||
loadingDialog.close();
|
// loadingDialog.close();
|
||||||
confirmDialog.confirm("Error", "Unable to upload file " + file);
|
// confirmDialog.confirm("Error", "Unable to upload file " + file);
|
||||||
});
|
// });
|
||||||
loadingDialog.showLoading("Uploaded file", file);
|
// loadingDialog.showLoading("Uploaded file", file);
|
||||||
console.log(download_url);
|
// console.log(download_url);
|
||||||
return download_url;
|
// return download_url;
|
||||||
} catch (error) {
|
// } catch (error) {
|
||||||
return undefined;
|
// return undefined;
|
||||||
}
|
// }
|
||||||
},
|
// },
|
||||||
existingDependencies: existing_workflow.dependencies,
|
existingDependencies: existing_workflow.dependencies,
|
||||||
});
|
});
|
||||||
|
|
||||||
@@ -533,6 +693,15 @@ async function deployWorkflow() {
|
|||||||
"Check dependencies",
|
"Check dependencies",
|
||||||
// JSON.stringify(deps, null, 2),
|
// JSON.stringify(deps, null, 2),
|
||||||
`
|
`
|
||||||
|
<div>
|
||||||
|
You will need to create a cloud machine with the following configuration on ComfyDeploy
|
||||||
|
<ol style="text-align: left; margin-top: 10px;">
|
||||||
|
<li>Review the dependencies listed in the graph below</li>
|
||||||
|
<li>Create a new cloud machine with the required configuration</li>
|
||||||
|
<li>Install missing models and check missing files</li>
|
||||||
|
<li>Deploy your workflow to the newly created machine</li>
|
||||||
|
</ol>
|
||||||
|
</div>
|
||||||
<div style="position: absolute; top: 50%; left: 50%; transform: translate(-50%, -50%);">${loadingIcon}</div>
|
<div style="position: absolute; top: 50%; left: 50%; transform: translate(-50%, -50%);">${loadingIcon}</div>
|
||||||
<iframe
|
<iframe
|
||||||
style="z-index: 10; min-width: 600px; max-width: 1024px; min-height: 600px; border: none; background-color: transparent;"
|
style="z-index: 10; min-width: 600px; max-width: 1024px; min-height: 600px; border: none; background-color: transparent;"
|
||||||
@@ -602,6 +771,14 @@ async function deployWorkflow() {
|
|||||||
`<span style="color:green;">Deployed successfully!</span> <a style="color:white;" target="_blank" href=${endpoint}/workflows/${data.workflow_id}>-> View here</a> <br/> <br/> Workflow ID: ${data.workflow_id} <br/> Workflow Name: ${workflow_name} <br/> Workflow Version: ${data.version} <br/>`,
|
`<span style="color:green;">Deployed successfully!</span> <a style="color:white;" target="_blank" href=${endpoint}/workflows/${data.workflow_id}>-> View here</a> <br/> <br/> Workflow ID: ${data.workflow_id} <br/> Workflow Name: ${workflow_name} <br/> Workflow Version: ${data.version} <br/>`,
|
||||||
);
|
);
|
||||||
|
|
||||||
|
// // Refresh the workflows list in the sidebar
|
||||||
|
// const sidebarEl = document.querySelector(
|
||||||
|
// '.comfy-sidebar-tab[data-id="search"]',
|
||||||
|
// );
|
||||||
|
// if (sidebarEl) {
|
||||||
|
// refreshWorkflowsList(sidebarEl);
|
||||||
|
// }
|
||||||
|
|
||||||
setTimeout(() => {
|
setTimeout(() => {
|
||||||
title.textContent = "Deploy";
|
title.textContent = "Deploy";
|
||||||
title.style.color = "white";
|
title.style.color = "white";
|
||||||
@@ -619,6 +796,85 @@ async function deployWorkflow() {
|
|||||||
}
|
}
|
||||||
}
|
}
|
||||||
|
|
||||||
|
// Add this function to refresh the workflows list
|
||||||
|
function refreshWorkflowsList(el) {
|
||||||
|
const workflowsList = el.querySelector("#workflows-list");
|
||||||
|
const workflowsLoading = el.querySelector("#workflows-loading");
|
||||||
|
|
||||||
|
workflowsLoading.style.display = "flex";
|
||||||
|
workflowsList.style.display = "none";
|
||||||
|
workflowsList.innerHTML = "";
|
||||||
|
|
||||||
|
client.workflows
|
||||||
|
.getAll({
|
||||||
|
page: "1",
|
||||||
|
pageSize: "10",
|
||||||
|
})
|
||||||
|
.then((result) => {
|
||||||
|
workflowsLoading.style.display = "none";
|
||||||
|
workflowsList.style.display = "block";
|
||||||
|
|
||||||
|
if (result.length === 0) {
|
||||||
|
workflowsList.innerHTML =
|
||||||
|
"<li style='color: #bdbdbd;'>No workflows found</li>";
|
||||||
|
return;
|
||||||
|
}
|
||||||
|
|
||||||
|
result.forEach((workflow) => {
|
||||||
|
const li = document.createElement("li");
|
||||||
|
li.style.marginBottom = "15px";
|
||||||
|
li.style.padding = "15px";
|
||||||
|
li.style.backgroundColor = "#2a2a2a";
|
||||||
|
li.style.borderRadius = "8px";
|
||||||
|
li.style.boxShadow = "0 2px 4px rgba(0,0,0,0.1)";
|
||||||
|
|
||||||
|
const lastRun = workflow.runs[0];
|
||||||
|
const lastRunStatus = lastRun ? lastRun.status : "No runs";
|
||||||
|
const statusColor =
|
||||||
|
lastRunStatus === "success"
|
||||||
|
? "#4CAF50"
|
||||||
|
: lastRunStatus === "error"
|
||||||
|
? "#F44336"
|
||||||
|
: "#FFC107";
|
||||||
|
|
||||||
|
const timeAgo = getTimeAgo(new Date(workflow.updatedAt));
|
||||||
|
|
||||||
|
li.innerHTML = `
|
||||||
|
<div style="display: flex; justify-content: space-between; align-items: center; margin-bottom: 10px;">
|
||||||
|
<div style="flex: 1; overflow: hidden; text-overflow: ellipsis; white-space: nowrap;">
|
||||||
|
<strong style="font-size: 18px; color: #e0e0e0;">${workflow.name}</strong>
|
||||||
|
</div>
|
||||||
|
<span style="font-size: 12px; color: ${statusColor}; margin-left: 10px;">Last run: ${lastRunStatus}</span>
|
||||||
|
</div>
|
||||||
|
<div style="font-size: 14px; color: #bdbdbd; margin-bottom: 10px;">Last updated ${timeAgo}</div>
|
||||||
|
<div style="display: flex; gap: 10px;">
|
||||||
|
<button class="open-cloud-btn" style="padding: 5px 10px; background-color: #4CAF50; color: white; border: none; border-radius: 4px; cursor: pointer;">Open in Cloud</button>
|
||||||
|
<button class="load-api-btn" style="padding: 5px 10px; background-color: #2196F3; color: white; border: none; border-radius: 4px; cursor: pointer;">Load Workflow</button>
|
||||||
|
</div>
|
||||||
|
`;
|
||||||
|
|
||||||
|
const openCloudBtn = li.querySelector(".open-cloud-btn");
|
||||||
|
openCloudBtn.onclick = () =>
|
||||||
|
window.open(
|
||||||
|
`${getData().endpoint}/workflows/${workflow.id}?workspace=true`,
|
||||||
|
"_blank",
|
||||||
|
);
|
||||||
|
|
||||||
|
const loadApiBtn = li.querySelector(".load-api-btn");
|
||||||
|
loadApiBtn.onclick = () => loadWorkflowApi(workflow.versions[0].id);
|
||||||
|
|
||||||
|
workflowsList.appendChild(li);
|
||||||
|
});
|
||||||
|
})
|
||||||
|
.catch((error) => {
|
||||||
|
console.error("Error fetching workflows:", error);
|
||||||
|
workflowsLoading.style.display = "none";
|
||||||
|
workflowsList.style.display = "block";
|
||||||
|
workflowsList.innerHTML =
|
||||||
|
"<li style='color: #F44336;'>Error fetching workflows</li>";
|
||||||
|
});
|
||||||
|
}
|
||||||
|
|
||||||
function addButton() {
|
function addButton() {
|
||||||
const menu = document.querySelector(".comfy-menu");
|
const menu = document.querySelector(".comfy-menu");
|
||||||
|
|
||||||
@@ -1111,3 +1367,118 @@ export class ConfigDialog extends ComfyDialog {
|
|||||||
}
|
}
|
||||||
|
|
||||||
export const configDialog = new ConfigDialog();
|
export const configDialog = new ConfigDialog();
|
||||||
|
|
||||||
|
const currentOrigin = window.location.origin;
|
||||||
|
const client = new ComfyDeploy({
|
||||||
|
bearerAuth: getData().apiKey,
|
||||||
|
serverURL: `${currentOrigin}/comfydeploy/api/`,
|
||||||
|
});
|
||||||
|
|
||||||
|
app.extensionManager.registerSidebarTab({
|
||||||
|
id: "search",
|
||||||
|
icon: "pi pi-cloud-upload",
|
||||||
|
title: "Deploy",
|
||||||
|
tooltip: "Deploy and Configure",
|
||||||
|
type: "custom",
|
||||||
|
render: (el) => {
|
||||||
|
el.innerHTML = `
|
||||||
|
<div style="padding: 20px;">
|
||||||
|
<h3>Comfy Deploy</h3>
|
||||||
|
<div id="deploy-container" style="margin-bottom: 20px;"></div>
|
||||||
|
<div id="workflows-container">
|
||||||
|
<h4>Your Workflows</h4>
|
||||||
|
<div id="workflows-loading" style="display: flex; justify-content: center; align-items: center; height: 100px;">
|
||||||
|
${loadingIcon}
|
||||||
|
</div>
|
||||||
|
<ul id="workflows-list" style="list-style-type: none; padding: 0; display: none;"></ul>
|
||||||
|
</div>
|
||||||
|
<div id="config-container"></div>
|
||||||
|
</div>
|
||||||
|
`;
|
||||||
|
|
||||||
|
// Add deploy button
|
||||||
|
const deployContainer = el.querySelector("#deploy-container");
|
||||||
|
const deployButton = document.createElement("button");
|
||||||
|
deployButton.id = "sidebar-deploy-button";
|
||||||
|
deployButton.style.display = "flex";
|
||||||
|
deployButton.style.alignItems = "center";
|
||||||
|
deployButton.style.justifyContent = "center";
|
||||||
|
deployButton.style.width = "100%";
|
||||||
|
deployButton.style.marginBottom = "10px";
|
||||||
|
deployButton.style.padding = "10px";
|
||||||
|
deployButton.style.fontSize = "16px";
|
||||||
|
deployButton.style.fontWeight = "bold";
|
||||||
|
deployButton.style.backgroundColor = "#4CAF50";
|
||||||
|
deployButton.style.color = "white";
|
||||||
|
deployButton.style.border = "none";
|
||||||
|
deployButton.style.borderRadius = "5px";
|
||||||
|
deployButton.style.cursor = "pointer";
|
||||||
|
deployButton.innerHTML = `<i class="pi pi-cloud-upload" style="margin-right: 8px;"></i><div id='sidebar-button-title'>Deploy</div>`;
|
||||||
|
deployButton.onclick = async () => {
|
||||||
|
await deployWorkflow();
|
||||||
|
// Refresh the workflows list after deployment
|
||||||
|
refreshWorkflowsList(el);
|
||||||
|
};
|
||||||
|
deployContainer.appendChild(deployButton);
|
||||||
|
|
||||||
|
// Add config button
|
||||||
|
const configContainer = el.querySelector("#config-container");
|
||||||
|
const configButton = document.createElement("button");
|
||||||
|
configButton.style.display = "flex";
|
||||||
|
configButton.style.alignItems = "center";
|
||||||
|
configButton.style.justifyContent = "center";
|
||||||
|
configButton.style.width = "100%";
|
||||||
|
configButton.style.padding = "8px";
|
||||||
|
configButton.style.fontSize = "14px";
|
||||||
|
configButton.style.backgroundColor = "#f0f0f0";
|
||||||
|
configButton.style.color = "#333";
|
||||||
|
configButton.style.border = "1px solid #ccc";
|
||||||
|
configButton.style.borderRadius = "5px";
|
||||||
|
configButton.style.cursor = "pointer";
|
||||||
|
configButton.innerHTML = `<i class="pi pi-cog" style="margin-right: 8px;"></i>Configure`;
|
||||||
|
configButton.onclick = () => {
|
||||||
|
configDialog.show();
|
||||||
|
};
|
||||||
|
deployContainer.appendChild(configButton);
|
||||||
|
|
||||||
|
// Fetch and display workflows
|
||||||
|
const workflowsList = el.querySelector("#workflows-list");
|
||||||
|
const workflowsLoading = el.querySelector("#workflows-loading");
|
||||||
|
|
||||||
|
refreshWorkflowsList(el);
|
||||||
|
},
|
||||||
|
});
|
||||||
|
|
||||||
|
function getTimeAgo(date) {
|
||||||
|
const seconds = Math.floor((new Date() - date) / 1000);
|
||||||
|
let interval = seconds / 31536000;
|
||||||
|
if (interval > 1) return Math.floor(interval) + " years ago";
|
||||||
|
interval = seconds / 2592000;
|
||||||
|
if (interval > 1) return Math.floor(interval) + " months ago";
|
||||||
|
interval = seconds / 86400;
|
||||||
|
if (interval > 1) return Math.floor(interval) + " days ago";
|
||||||
|
interval = seconds / 3600;
|
||||||
|
if (interval > 1) return Math.floor(interval) + " hours ago";
|
||||||
|
interval = seconds / 60;
|
||||||
|
if (interval > 1) return Math.floor(interval) + " minutes ago";
|
||||||
|
return Math.floor(seconds) + " seconds ago";
|
||||||
|
}
|
||||||
|
|
||||||
|
async function loadWorkflowApi(versionId) {
|
||||||
|
try {
|
||||||
|
const response = await client.comfyui.getWorkflowVersionVersionId({
|
||||||
|
versionId: versionId,
|
||||||
|
});
|
||||||
|
// Implement the logic to load the workflow API into the ComfyUI interface
|
||||||
|
console.log("Workflow API loaded:", response);
|
||||||
|
await window["app"].ui.settings.setSettingValueAsync(
|
||||||
|
"Comfy.Validation.Workflows",
|
||||||
|
false,
|
||||||
|
);
|
||||||
|
app.loadGraphData(response.workflow);
|
||||||
|
// You might want to update the UI or trigger some action in ComfyUI here
|
||||||
|
} catch (error) {
|
||||||
|
console.error("Error loading workflow API:", error);
|
||||||
|
// Show an error message to the user
|
||||||
|
}
|
||||||
|
}
|
||||||
|
|||||||
+1
-1
@@ -74,7 +74,7 @@
|
|||||||
"mitata": "^0.1.6",
|
"mitata": "^0.1.6",
|
||||||
"ms": "^2.1.3",
|
"ms": "^2.1.3",
|
||||||
"nanoid": "^5.0.4",
|
"nanoid": "^5.0.4",
|
||||||
"next": "14.1",
|
"next": "14.2",
|
||||||
"next-plausible": "^3.12.0",
|
"next-plausible": "^3.12.0",
|
||||||
"next-themes": "^0.2.1",
|
"next-themes": "^0.2.1",
|
||||||
"next-usequerystate": "^1.13.2",
|
"next-usequerystate": "^1.13.2",
|
||||||
|
|||||||
@@ -51,7 +51,9 @@ const createRunRoute = createRoute({
|
|||||||
export const registerCreateRunRoute = (app: App) => {
|
export const registerCreateRunRoute = (app: App) => {
|
||||||
app.openapi(createRunRoute, async (c) => {
|
app.openapi(createRunRoute, async (c) => {
|
||||||
const data = c.req.valid("json");
|
const data = c.req.valid("json");
|
||||||
const origin = new URL(c.req.url).origin;
|
const proto = c.req.headers.get('x-forwarded-proto') || "http";
|
||||||
|
const host = c.req.headers.get('x-forwarded-host') || c.req.headers.get('host');
|
||||||
|
const origin = `${proto}://${host}` || new URL(c.req.url).origin;
|
||||||
const apiKeyTokenData = c.get("apiKeyTokenData")!;
|
const apiKeyTokenData = c.get("apiKeyTokenData")!;
|
||||||
|
|
||||||
const { deployment_id, inputs } = data;
|
const { deployment_id, inputs } = data;
|
||||||
|
|||||||
@@ -102,7 +102,7 @@ export const createRun = withServerPromise(
|
|||||||
|
|
||||||
let prompt_id: string | undefined = undefined;
|
let prompt_id: string | undefined = undefined;
|
||||||
const shareData = {
|
const shareData = {
|
||||||
workflow_api: workflow_api,
|
workflow_api_raw: workflow_api,
|
||||||
status_endpoint: `${origin}/api/update-run`,
|
status_endpoint: `${origin}/api/update-run`,
|
||||||
file_upload_endpoint: `${origin}/api/file-upload`,
|
file_upload_endpoint: `${origin}/api/file-upload`,
|
||||||
};
|
};
|
||||||
|
|||||||
Reference in New Issue
Block a user