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https://git.datalinker.icu/comfyanonymous/ComfyUI
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I've added a script to execute a default pipeline and updated the README.
This update introduces a new Python script, `script_examples/execute_default_pipeline.py`, that allows you to execute a predefined ComfyUI pipeline. The script: - Defines a default pipeline structure in JSON format. - Sends the pipeline to a running ComfyUI server instance for execution. - Prints a success message upon queuing the prompt. The `README.md` has been updated to include: - A new section "Running a Default Pipeline". - Step-by-step instructions on how to run the new script. - Information on where to find the generated output images. - A note about the required checkpoint file (`v1-5-pruned-emaonly.safetensors`).
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README.md
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README.md
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This ui will let you design and execute advanced stable diffusion pipelines using a graph/nodes/flowchart based interface. For some workflow examples and see what ComfyUI can do you can check out:
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### [ComfyUI Examples](https://comfyanonymous.github.io/ComfyUI_examples/)
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## Running a Default Pipeline
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A script to execute a default pipeline is available in `script_examples/execute_default_pipeline.py`.
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To run this script:
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1. **Ensure ComfyUI Server is Running:**
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Start the ComfyUI server by running `python main.py` in your terminal from the root directory of this project. By default, the server runs at `http://127.0.0.1:8188`.
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2. **Execute the Script:**
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Open another terminal, navigate to the `script_examples/` directory, and run the script:
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```bash
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python execute_default_pipeline.py
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```
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3. **Find the Output:**
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If the execution is successful, the script will print "Prompt queued successfully!". The generated image will be saved in the `output/` directory with a filename starting with `ComfyUI` (e.g., `ComfyUI_00001_.png`).
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**Note:** The default pipeline uses the `v1-5-pruned-emaonly.safetensors` checkpoint. Make sure this checkpoint is available in your `models/checkpoints/` directory. If not, you can either download it or modify the `ckpt_name` in the `execute_default_pipeline.py` script to use a checkpoint you have.
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### [Installing ComfyUI](#installing)
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## Features
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115
script_examples/execute_default_pipeline.py
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script_examples/execute_default_pipeline.py
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import json
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from urllib import request
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# This is the ComfyUI api prompt format.
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# If you want it for a specific workflow you can "enable dev mode options"
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# in the settings of the UI (gear beside the "Queue Size: ") this will enable
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# a button on the UI to save workflows in api format.
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# keep in mind ComfyUI is pre alpha software so this format will change a bit.
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# this is the one for the default workflow
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prompt_text = """
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{
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"3": {
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"class_type": "KSampler",
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"inputs": {
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"cfg": 8,
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"denoise": 1,
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"latent_image": [
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"5",
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0
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],
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"model": [
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"4",
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0
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],
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"negative": [
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"7",
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0
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],
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"positive": [
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"6",
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0
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],
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"sampler_name": "euler",
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"scheduler": "normal",
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"seed": 8566257,
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"steps": 20
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}
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},
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"4": {
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"class_type": "CheckpointLoaderSimple",
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"inputs": {
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"ckpt_name": "v1-5-pruned-emaonly.safetensors"
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}
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},
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"5": {
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"class_type": "EmptyLatentImage",
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"inputs": {
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"batch_size": 1,
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"height": 512,
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"width": 512
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}
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},
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"6": {
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"class_type": "CLIPTextEncode",
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"inputs": {
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"clip": [
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"4",
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1
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],
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"text": "masterpiece best quality girl"
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}
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},
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"7": {
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"class_type": "CLIPTextEncode",
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"inputs": {
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"clip": [
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"4",
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1
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],
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"text": "bad hands"
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}
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},
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"8": {
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"class_type": "VAEDecode",
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"inputs": {
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"samples": [
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"3",
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0
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],
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"vae": [
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"4",
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2
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]
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}
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},
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"9": {
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"class_type": "SaveImage",
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"inputs": {
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"filename_prefix": "ComfyUI",
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"images": [
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"8",
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0
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]
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}
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}
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}
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"""
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def queue_prompt(prompt):
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p = {"prompt": prompt}
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data = json.dumps(p).encode('utf-8')
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req = request.Request("http://127.0.0.1:8188/prompt", data=data)
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request.urlopen(req)
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print("Prompt queued successfully!")
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if __name__ == "__main__":
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prompt = json.loads(prompt_text)
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# You can modify the prompt here if needed, for example:
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# prompt["6"]["inputs"]["text"] = "masterpiece best quality man"
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# prompt["3"]["inputs"]["seed"] = 5
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queue_prompt(prompt)
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