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yosun /camcorgi-flux:1773b4ce
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 yosun/camcorgi-flux using Replicate’s API. Check out the model's schema for an overview of inputs and outputs.
const output = await replicate.run(
"yosun/camcorgi-flux:1773b4ce1e43deb754dca9da8119fa64cb2ab3650cbe1e99e69f555b3b1d951f",
{
input: {
model: "dev",
prompt: "photo of CAM corgi as a flying unicorn",
go_fast: false,
lora_scale: 1,
megapixels: "1",
num_outputs: 4,
aspect_ratio: "1:1",
output_format: "webp",
guidance_scale: 3.5,
output_quality: 90,
prompt_strength: 0.8,
extra_lora_scale: 1,
num_inference_steps: 28
}
}
);
// 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 yosun/camcorgi-flux using Replicate’s API. Check out the model's schema for an overview of inputs and outputs.
output = replicate.run(
"yosun/camcorgi-flux:1773b4ce1e43deb754dca9da8119fa64cb2ab3650cbe1e99e69f555b3b1d951f",
input={
"model": "dev",
"prompt": "photo of CAM corgi as a flying unicorn",
"go_fast": False,
"lora_scale": 1,
"megapixels": "1",
"num_outputs": 4,
"aspect_ratio": "1:1",
"output_format": "webp",
"guidance_scale": 3.5,
"output_quality": 90,
"prompt_strength": 0.8,
"extra_lora_scale": 1,
"num_inference_steps": 28
}
)
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 yosun/camcorgi-flux 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": "yosun/camcorgi-flux:1773b4ce1e43deb754dca9da8119fa64cb2ab3650cbe1e99e69f555b3b1d951f",
"input": {
"model": "dev",
"prompt": "photo of CAM corgi as a flying unicorn",
"go_fast": false,
"lora_scale": 1,
"megapixels": "1",
"num_outputs": 4,
"aspect_ratio": "1:1",
"output_format": "webp",
"guidance_scale": 3.5,
"output_quality": 90,
"prompt_strength": 0.8,
"extra_lora_scale": 1,
"num_inference_steps": 28
}
}' \
https://api.replicate.com/v1/predictions
To learn more, take a look at Replicate’s HTTP API reference docs.
Add a payment method to run this model.
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Output
{
"completed_at": "2025-02-18T05:33:45.090416Z",
"created_at": "2025-02-18T05:32:29.976000Z",
"data_removed": false,
"error": null,
"id": "29s2aw15k1rme0cn2y5ty5p5p4",
"input": {
"model": "dev",
"prompt": "photo of CAM corgi as a flying unicorn",
"go_fast": false,
"lora_scale": 1,
"megapixels": "1",
"num_outputs": 4,
"aspect_ratio": "1:1",
"output_format": "webp",
"guidance_scale": 3.5,
"output_quality": 90,
"prompt_strength": 0.8,
"extra_lora_scale": 1,
"num_inference_steps": 28
},
"logs": "Weights already loaded\nLoaded LoRAs in 0.02s\nUsing seed: 40616\nPrompt: photo of CAM corgi as a flying unicorn\n[!] txt2img mode\n 0%| | 0/28 [00:00<?, ?it/s]\n 4%|▎ | 1/28 [00:00<00:24, 1.09it/s]\n 7%|▋ | 2/28 [00:01<00:21, 1.23it/s]\n 11%|█ | 3/28 [00:02<00:21, 1.16it/s]\n 14%|█▍ | 4/28 [00:03<00:21, 1.13it/s]\n 18%|█▊ | 5/28 [00:04<00:20, 1.12it/s]\n 21%|██▏ | 6/28 [00:05<00:19, 1.11it/s]\n 25%|██▌ | 7/28 [00:06<00:19, 1.10it/s]\n 29%|██▊ | 8/28 [00:07<00:18, 1.10it/s]\n 32%|███▏ | 9/28 [00:08<00:17, 1.10it/s]\n 36%|███▌ | 10/28 [00:08<00:16, 1.09it/s]\n 39%|███▉ | 11/28 [00:09<00:15, 1.09it/s]\n 43%|████▎ | 12/28 [00:10<00:14, 1.09it/s]\n 46%|████▋ | 13/28 [00:11<00:13, 1.09it/s]\n 50%|█████ | 14/28 [00:12<00:12, 1.09it/s]\n 54%|█████▎ | 15/28 [00:13<00:11, 1.09it/s]\n 57%|█████▋ | 16/28 [00:14<00:10, 1.09it/s]\n 61%|██████ | 17/28 [00:15<00:10, 1.09it/s]\n 64%|██████▍ | 18/28 [00:16<00:09, 1.09it/s]\n 68%|██████▊ | 19/28 [00:17<00:08, 1.09it/s]\n 71%|███████▏ | 20/28 [00:18<00:07, 1.09it/s]\n 75%|███████▌ | 21/28 [00:19<00:06, 1.09it/s]\n 79%|███████▊ | 22/28 [00:19<00:05, 1.09it/s]\n 82%|████████▏ | 23/28 [00:20<00:04, 1.09it/s]\n 86%|████████▌ | 24/28 [00:21<00:03, 1.09it/s]\n 89%|████████▉ | 25/28 [00:22<00:02, 1.09it/s]\n 93%|█████████▎| 26/28 [00:23<00:01, 1.09it/s]\n 96%|█████████▋| 27/28 [00:24<00:00, 1.09it/s]\n100%|██████████| 28/28 [00:25<00:00, 1.09it/s]\n100%|██████████| 28/28 [00:25<00:00, 1.10it/s]\nTotal safe images: 4 out of 4",
"metrics": {
"predict_time": 26.593121887,
"total_time": 75.114416
},
"output": [
"https://replicate.delivery/xezq/P1GDijkjHG4SNlxrEZcaYeoCBHdrToEAftvelj6tCYjzt5goA/out-0.webp",
"https://replicate.delivery/xezq/JxVraXkF68KxJ5sPMEf8ddErj1XXfFOy716MErA3rYY52cQUA/out-1.webp",
"https://replicate.delivery/xezq/Pf0qAWG8SKxvFiVeJxbZuNKiM9kyrEHzNwO7hZ21uOu52cQUA/out-2.webp",
"https://replicate.delivery/xezq/dXTmCI0vz1rVNBUu8yE6BKsGbFNPwwzsCY19soZeses52cQUA/out-3.webp"
],
"started_at": "2025-02-18T05:33:18.497294Z",
"status": "succeeded",
"urls": {
"stream": "https://stream.replicate.com/v1/files/bcwr-wrnguy75oe52mioyxeebdz7cm7mwnt7wrefw7ior6ohlsanretza",
"get": "https://api.replicate.com/v1/predictions/29s2aw15k1rme0cn2y5ty5p5p4",
"cancel": "https://api.replicate.com/v1/predictions/29s2aw15k1rme0cn2y5ty5p5p4/cancel"
},
"version": "1773b4ce1e43deb754dca9da8119fa64cb2ab3650cbe1e99e69f555b3b1d951f"
}
Weights already loaded
Loaded LoRAs in 0.02s
Using seed: 40616
Prompt: photo of CAM corgi as a flying unicorn
[!] txt2img mode
0%| | 0/28 [00:00<?, ?it/s]
4%|▎ | 1/28 [00:00<00:24, 1.09it/s]
7%|▋ | 2/28 [00:01<00:21, 1.23it/s]
11%|█ | 3/28 [00:02<00:21, 1.16it/s]
14%|█▍ | 4/28 [00:03<00:21, 1.13it/s]
18%|█▊ | 5/28 [00:04<00:20, 1.12it/s]
21%|██▏ | 6/28 [00:05<00:19, 1.11it/s]
25%|██▌ | 7/28 [00:06<00:19, 1.10it/s]
29%|██▊ | 8/28 [00:07<00:18, 1.10it/s]
32%|███▏ | 9/28 [00:08<00:17, 1.10it/s]
36%|███▌ | 10/28 [00:08<00:16, 1.09it/s]
39%|███▉ | 11/28 [00:09<00:15, 1.09it/s]
43%|████▎ | 12/28 [00:10<00:14, 1.09it/s]
46%|████▋ | 13/28 [00:11<00:13, 1.09it/s]
50%|█████ | 14/28 [00:12<00:12, 1.09it/s]
54%|█████▎ | 15/28 [00:13<00:11, 1.09it/s]
57%|█████▋ | 16/28 [00:14<00:10, 1.09it/s]
61%|██████ | 17/28 [00:15<00:10, 1.09it/s]
64%|██████▍ | 18/28 [00:16<00:09, 1.09it/s]
68%|██████▊ | 19/28 [00:17<00:08, 1.09it/s]
71%|███████▏ | 20/28 [00:18<00:07, 1.09it/s]
75%|███████▌ | 21/28 [00:19<00:06, 1.09it/s]
79%|███████▊ | 22/28 [00:19<00:05, 1.09it/s]
82%|████████▏ | 23/28 [00:20<00:04, 1.09it/s]
86%|████████▌ | 24/28 [00:21<00:03, 1.09it/s]
89%|████████▉ | 25/28 [00:22<00:02, 1.09it/s]
93%|█████████▎| 26/28 [00:23<00:01, 1.09it/s]
96%|█████████▋| 27/28 [00:24<00:00, 1.09it/s]
100%|██████████| 28/28 [00:25<00:00, 1.09it/s]
100%|██████████| 28/28 [00:25<00:00, 1.10it/s]
Total safe images: 4 out of 4