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replicategithubwc /dreamlike-diffusion:c3babc6a
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 replicategithubwc/dreamlike-diffusion using Replicate’s API. Check out the model's schema for an overview of inputs and outputs.
const output = await replicate.run(
"replicategithubwc/dreamlike-diffusion:c3babc6a77a43831f6489965ff54ff7d931e374f3c783705c45742bbcd45751d",
{
input: {
width: 786,
height: 786,
prompt: "a photo of an astronaut riding a horse on mars",
scheduler: "DPMSolverMultistep",
num_outputs: 1,
guidance_scale: 7.5,
num_inference_steps: 50
}
}
);
// 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 replicategithubwc/dreamlike-diffusion using Replicate’s API. Check out the model's schema for an overview of inputs and outputs.
output = replicate.run(
"replicategithubwc/dreamlike-diffusion:c3babc6a77a43831f6489965ff54ff7d931e374f3c783705c45742bbcd45751d",
input={
"width": 786,
"height": 786,
"prompt": "a photo of an astronaut riding a horse on mars",
"scheduler": "DPMSolverMultistep",
"num_outputs": 1,
"guidance_scale": 7.5,
"num_inference_steps": 50
}
)
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 replicategithubwc/dreamlike-diffusion 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": "c3babc6a77a43831f6489965ff54ff7d931e374f3c783705c45742bbcd45751d",
"input": {
"width": 786,
"height": 786,
"prompt": "a photo of an astronaut riding a horse on mars",
"scheduler": "DPMSolverMultistep",
"num_outputs": 1,
"guidance_scale": 7.5,
"num_inference_steps": 50
}
}' \
https://api.replicate.com/v1/predictions
To learn more, take a look at Replicate’s HTTP API reference docs.
brew install cog
If you don’t have Homebrew, there are other installation options available.
Run this to download the model and run it in your local environment:
cog predict r8.im/replicategithubwc/dreamlike-diffusion@sha256:c3babc6a77a43831f6489965ff54ff7d931e374f3c783705c45742bbcd45751d \
-i 'width=786' \
-i 'height=786' \
-i 'prompt="a photo of an astronaut riding a horse on mars"' \
-i 'scheduler="DPMSolverMultistep"' \
-i 'num_outputs=1' \
-i 'guidance_scale=7.5' \
-i 'num_inference_steps=50'
To learn more, take a look at the Cog documentation.
Run this to download the model and run it in your local environment:
docker run -d -p 5000:5000 --gpus=all r8.im/replicategithubwc/dreamlike-diffusion@sha256:c3babc6a77a43831f6489965ff54ff7d931e374f3c783705c45742bbcd45751d
curl -s -X POST \ -H "Content-Type: application/json" \ -d $'{ "input": { "width": 786, "height": 786, "prompt": "a photo of an astronaut riding a horse on mars", "scheduler": "DPMSolverMultistep", "num_outputs": 1, "guidance_scale": 7.5, "num_inference_steps": 50 } }' \ http://localhost:5000/predictions
To learn more, take a look at the Cog documentation.
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Output
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