Readme
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(Updated 1 year, 9 months ago)
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";
import fs from "node:fs";
const replicate = new Replicate({
auth: process.env.REPLICATE_API_TOKEN,
});
Run jbilcke/sdxl-brussels using Replicateβs API. Check out the model's schema for an overview of inputs and outputs.
const output = await replicate.run(
"jbilcke/sdxl-brussels:1986ce53d4225df666ac61648aa2ac6e88858caeb1fe5eeee2df4473d9de450b",
{
input: {
width: 1024,
height: 1024,
prompt: "intricate details, beautiful, zeppelin flying over canyon, in the style of TOK",
refine: "no_refiner",
scheduler: "K_EULER",
lora_scale: 0.81,
num_outputs: 1,
guidance_scale: 18.6,
apply_watermark: true,
high_noise_frac: 0.8,
negative_prompt: "",
prompt_strength: 0.8,
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 jbilcke/sdxl-brussels using Replicateβs API. Check out the model's schema for an overview of inputs and outputs.
output = replicate.run(
"jbilcke/sdxl-brussels:1986ce53d4225df666ac61648aa2ac6e88858caeb1fe5eeee2df4473d9de450b",
input={
"width": 1024,
"height": 1024,
"prompt": "intricate details, beautiful, zeppelin flying over canyon, in the style of TOK",
"refine": "no_refiner",
"scheduler": "K_EULER",
"lora_scale": 0.81,
"num_outputs": 1,
"guidance_scale": 18.6,
"apply_watermark": True,
"high_noise_frac": 0.8,
"negative_prompt": "",
"prompt_strength": 0.8,
"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 jbilcke/sdxl-brussels using Replicateβs 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": "jbilcke/sdxl-brussels:1986ce53d4225df666ac61648aa2ac6e88858caeb1fe5eeee2df4473d9de450b",
"input": {
"width": 1024,
"height": 1024,
"prompt": "intricate details, beautiful, zeppelin flying over canyon, in the style of TOK",
"refine": "no_refiner",
"scheduler": "K_EULER",
"lora_scale": 0.81,
"num_outputs": 1,
"guidance_scale": 18.6,
"apply_watermark": true,
"high_noise_frac": 0.8,
"negative_prompt": "",
"prompt_strength": 0.8,
"num_inference_steps": 50
}
}' \
https://api.replicate.com/v1/predictions
To learn more, take a look at Replicateβs HTTP API reference docs.
Add a payment method to run this model.
By signing in, you agree to our
terms of service and privacy policy
{
"completed_at": "2023-08-29T09:54:27.475071Z",
"created_at": "2023-08-29T09:54:11.991806Z",
"data_removed": false,
"error": null,
"id": "ovzlbk3bdb37xenjflnlcoopbm",
"input": {
"width": 1024,
"height": 1024,
"prompt": "intricate details, beautiful, zeppelin flying over canyon, in the style of TOK",
"refine": "no_refiner",
"scheduler": "K_EULER",
"lora_scale": 0.81,
"num_outputs": 1,
"guidance_scale": 18.6,
"apply_watermark": true,
"high_noise_frac": 0.8,
"prompt_strength": 0.8,
"num_inference_steps": 50
},
"logs": "Using seed: 34930\nPrompt: intricate details, beautiful, zeppelin flying over canyon, in the style of <s0><s1>\ntxt2img mode\n 0%| | 0/50 [00:00<?, ?it/s]\n 2%|β | 1/50 [00:00<00:13, 3.71it/s]\n 4%|β | 2/50 [00:00<00:12, 3.70it/s]\n 6%|β | 3/50 [00:00<00:12, 3.69it/s]\n 8%|β | 4/50 [00:01<00:12, 3.68it/s]\n 10%|β | 5/50 [00:01<00:12, 3.68it/s]\n 12%|ββ | 6/50 [00:01<00:11, 3.68it/s]\n 14%|ββ | 7/50 [00:01<00:11, 3.67it/s]\n 16%|ββ | 8/50 [00:02<00:11, 3.67it/s]\n 18%|ββ | 9/50 [00:02<00:11, 3.68it/s]\n 20%|ββ | 10/50 [00:02<00:10, 3.67it/s]\n 22%|βββ | 11/50 [00:02<00:10, 3.67it/s]\n 24%|βββ | 12/50 [00:03<00:10, 3.67it/s]\n 26%|βββ | 13/50 [00:03<00:10, 3.67it/s]\n 28%|βββ | 14/50 [00:03<00:09, 3.67it/s]\n 30%|βββ | 15/50 [00:04<00:09, 3.67it/s]\n 32%|ββββ | 16/50 [00:04<00:09, 3.68it/s]\n 34%|ββββ | 17/50 [00:04<00:08, 3.68it/s]\n 36%|ββββ | 18/50 [00:04<00:08, 3.68it/s]\n 38%|ββββ | 19/50 [00:05<00:08, 3.69it/s]\n 40%|ββββ | 20/50 [00:05<00:08, 3.69it/s]\n 42%|βββββ | 21/50 [00:05<00:07, 3.69it/s]\n 44%|βββββ | 22/50 [00:05<00:07, 3.69it/s]\n 46%|βββββ | 23/50 [00:06<00:07, 3.69it/s]\n 48%|βββββ | 24/50 [00:06<00:07, 3.69it/s]\n 50%|βββββ | 25/50 [00:06<00:06, 3.69it/s]\n 52%|ββββββ | 26/50 [00:07<00:06, 3.69it/s]\n 54%|ββββββ | 27/50 [00:07<00:06, 3.69it/s]\n 56%|ββββββ | 28/50 [00:07<00:05, 3.69it/s]\n 58%|ββββββ | 29/50 [00:07<00:05, 3.68it/s]\n 60%|ββββββ | 30/50 [00:08<00:05, 3.68it/s]\n 62%|βββββββ | 31/50 [00:08<00:05, 3.68it/s]\n 64%|βββββββ | 32/50 [00:08<00:04, 3.68it/s]\n 66%|βββββββ | 33/50 [00:08<00:04, 3.68it/s]\n 68%|βββββββ | 34/50 [00:09<00:04, 3.68it/s]\n 70%|βββββββ | 35/50 [00:09<00:04, 3.68it/s]\n 72%|ββββββββ | 36/50 [00:09<00:03, 3.68it/s]\n 74%|ββββββββ | 37/50 [00:10<00:03, 3.68it/s]\n 76%|ββββββββ | 38/50 [00:10<00:03, 3.68it/s]\n 78%|ββββββββ | 39/50 [00:10<00:02, 3.68it/s]\n 80%|ββββββββ | 40/50 [00:10<00:02, 3.68it/s]\n 82%|βββββββββ | 41/50 [00:11<00:02, 3.68it/s]\n 84%|βββββββββ | 42/50 [00:11<00:02, 3.68it/s]\n 86%|βββββββββ | 43/50 [00:11<00:01, 3.68it/s]\n 88%|βββββββββ | 44/50 [00:11<00:01, 3.68it/s]\n 90%|βββββββββ | 45/50 [00:12<00:01, 3.68it/s]\n 92%|ββββββββββ| 46/50 [00:12<00:01, 3.68it/s]\n 94%|ββββββββββ| 47/50 [00:12<00:00, 3.68it/s]\n 96%|ββββββββββ| 48/50 [00:13<00:00, 3.68it/s]\n 98%|ββββββββββ| 49/50 [00:13<00:00, 3.67it/s]\n100%|ββββββββββ| 50/50 [00:13<00:00, 3.67it/s]\n100%|ββββββββββ| 50/50 [00:13<00:00, 3.68it/s]",
"metrics": {
"predict_time": 15.538952,
"total_time": 15.483265
},
"output": [
"https://replicate.delivery/pbxt/8bPN7VigciKeMiEesFKoXhaiqYjT6d3NUAolfqsoOnCkSu9iA/out-0.png"
],
"started_at": "2023-08-29T09:54:11.936119Z",
"status": "succeeded",
"urls": {
"get": "https://api.replicate.com/v1/predictions/ovzlbk3bdb37xenjflnlcoopbm",
"cancel": "https://api.replicate.com/v1/predictions/ovzlbk3bdb37xenjflnlcoopbm/cancel"
},
"version": "1986ce53d4225df666ac61648aa2ac6e88858caeb1fe5eeee2df4473d9de450b"
}
Using seed: 34930
Prompt: intricate details, beautiful, zeppelin flying over canyon, in the style of <s0><s1>
txt2img mode
0%| | 0/50 [00:00<?, ?it/s]
2%|β | 1/50 [00:00<00:13, 3.71it/s]
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This model runs on Nvidia L40S GPU hardware. We don't yet have enough runs of this model to provide performance information.
This model doesn't have a readme.
This model is cold. You'll get a fast response if the model is warm and already running, and a slower response if the model is cold and starting up.
Choose a file from your machine
Hint: you can also drag files onto the input
Choose a file from your machine
Hint: you can also drag files onto the input
Using seed: 34930
Prompt: intricate details, beautiful, zeppelin flying over canyon, in the style of <s0><s1>
txt2img mode
0%| | 0/50 [00:00<?, ?it/s]
2%|β | 1/50 [00:00<00:13, 3.71it/s]
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