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jagilley /controlnet:8ebda4c7
Input
Run this model in Node.js with one line of code:
npm install replicate
REPLICATE_API_TOKEN
environment variable:export REPLICATE_API_TOKEN=<paste-your-token-here>
Find your API token in your account settings.
import Replicate from "replicate";
const replicate = new Replicate({
auth: process.env.REPLICATE_API_TOKEN,
});
Run jagilley/controlnet using Replicate’s API. Check out the model's schema for an overview of inputs and outputs.
const output = await replicate.run(
"jagilley/controlnet:8ebda4c70b3ea2a2bf86e44595afb562a2cdf85525c620f1671a78113c9f325b",
{
input: {
eta: 0,
scale: 9,
a_prompt: "best quality, extremely detailed",
n_prompt: "longbody, lowres, bad anatomy, bad hands, missing fingers, extra digit, fewer digits, cropped, worst quality, low quality",
ddim_steps: 20,
model_type: "canny",
num_samples: "1",
bg_threshold: 0,
low_threshold: 100,
high_threshold: 200,
value_threshold: 0.1,
image_resolution: "512",
detect_resolution: 512,
distance_threshold: 0.1
}
}
);
// To access the file URL:
console.log(output[0].url()); //=> "http://example.com"
// To write the file to disk:
fs.writeFile("my-image.png", output[0]);
To learn more, take a look at the guide on getting started with Node.js.
pip install replicate
REPLICATE_API_TOKEN
environment variable:export REPLICATE_API_TOKEN=<paste-your-token-here>
Find your API token in your account settings.
import replicate
Run jagilley/controlnet using Replicate’s API. Check out the model's schema for an overview of inputs and outputs.
output = replicate.run(
"jagilley/controlnet:8ebda4c70b3ea2a2bf86e44595afb562a2cdf85525c620f1671a78113c9f325b",
input={
"eta": 0,
"scale": 9,
"a_prompt": "best quality, extremely detailed",
"n_prompt": "longbody, lowres, bad anatomy, bad hands, missing fingers, extra digit, fewer digits, cropped, worst quality, low quality",
"ddim_steps": 20,
"model_type": "canny",
"num_samples": "1",
"bg_threshold": 0,
"low_threshold": 100,
"high_threshold": 200,
"value_threshold": 0.1,
"image_resolution": "512",
"detect_resolution": 512,
"distance_threshold": 0.1
}
)
print(output)
To learn more, take a look at the guide on getting started with Python.
REPLICATE_API_TOKEN
environment variable:export REPLICATE_API_TOKEN=<paste-your-token-here>
Find your API token in your account settings.
Run jagilley/controlnet using Replicate’s API. Check out the model's schema for an overview of inputs and outputs.
curl -s -X POST \
-H "Authorization: Bearer $REPLICATE_API_TOKEN" \
-H "Content-Type: application/json" \
-H "Prefer: wait" \
-d $'{
"version": "8ebda4c70b3ea2a2bf86e44595afb562a2cdf85525c620f1671a78113c9f325b",
"input": {
"eta": 0,
"scale": 9,
"a_prompt": "best quality, extremely detailed",
"n_prompt": "longbody, lowres, bad anatomy, bad hands, missing fingers, extra digit, fewer digits, cropped, worst quality, low quality",
"ddim_steps": 20,
"model_type": "canny",
"num_samples": "1",
"bg_threshold": 0,
"low_threshold": 100,
"high_threshold": 200,
"value_threshold": 0.1,
"image_resolution": "512",
"detect_resolution": 512,
"distance_threshold": 0.1
}
}' \
https://api.replicate.com/v1/predictions
To learn more, take a look at Replicate’s HTTP API reference docs.
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Output
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