Readme
This model doesn't have a readme.
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 lipex157zoi/lipexbradok using Replicate’s API. Check out the model's schema for an overview of inputs and outputs.
const output = await replicate.run(
"lipex157zoi/lipexbradok:bd6755a51bab4d0f81d08498b0a880d29dcdda99bbbfad60e78e5c59916bea1f",
{
input: {
model: "dev",
prompt: "Lipexbradok dressed in light gray sweats with a friendly smile. On a black background with cinematic lights in yellowish tones.\n",
go_fast: false,
lora_scale: 1,
megapixels: "1",
num_outputs: 1,
aspect_ratio: "1:1",
output_format: "png",
guidance_scale: 3.5,
output_quality: 100,
prompt_strength: 0.8,
extra_lora_scale: 0.8,
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 lipex157zoi/lipexbradok using Replicate’s API. Check out the model's schema for an overview of inputs and outputs.
output = replicate.run(
"lipex157zoi/lipexbradok:bd6755a51bab4d0f81d08498b0a880d29dcdda99bbbfad60e78e5c59916bea1f",
input={
"model": "dev",
"prompt": "Lipexbradok dressed in light gray sweats with a friendly smile. On a black background with cinematic lights in yellowish tones.\n",
"go_fast": False,
"lora_scale": 1,
"megapixels": "1",
"num_outputs": 1,
"aspect_ratio": "1:1",
"output_format": "png",
"guidance_scale": 3.5,
"output_quality": 100,
"prompt_strength": 0.8,
"extra_lora_scale": 0.8,
"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 lipex157zoi/lipexbradok 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": "bd6755a51bab4d0f81d08498b0a880d29dcdda99bbbfad60e78e5c59916bea1f",
"input": {
"model": "dev",
"prompt": "Lipexbradok dressed in light gray sweats with a friendly smile. On a black background with cinematic lights in yellowish tones.\\n",
"go_fast": false,
"lora_scale": 1,
"megapixels": "1",
"num_outputs": 1,
"aspect_ratio": "1:1",
"output_format": "png",
"guidance_scale": 3.5,
"output_quality": 100,
"prompt_strength": 0.8,
"extra_lora_scale": 0.8,
"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.
By signing in, you agree to our
terms of service and privacy policy
{
"completed_at": "2024-09-02T06:38:23.327315Z",
"created_at": "2024-09-02T06:37:51.178000Z",
"data_removed": false,
"error": null,
"id": "zrnr9mhys9rm20chp5tamfhs54",
"input": {
"model": "dev",
"prompt": "Lipexbradok dressed in light gray sweats with a friendly smile. On a black background with cinematic lights in yellowish tones.\n",
"lora_scale": 1,
"num_outputs": 1,
"aspect_ratio": "1:1",
"output_format": "png",
"guidance_scale": 3.5,
"output_quality": 100,
"extra_lora_scale": 0.8,
"num_inference_steps": 28
},
"logs": "Using seed: 30797\nPrompt: Lipexbradok dressed in light gray sweats with a friendly smile. On a black background with cinematic lights in yellowish tones.\ntxt2img mode\nUsing dev model\nfree=9171358134272\nDownloading weights\n2024-09-02T06:37:51Z | INFO | [ Initiating ] chunk_size=150M dest=/tmp/tmpdy_dz430/weights url=https://replicate.delivery/yhqm/b4SeKENjDfqEq0GhOQl1KqU9mjt165d60H27fVUmKCCsiefaC/trained_model.tar\n2024-09-02T06:37:53Z | INFO | [ Complete ] dest=/tmp/tmpdy_dz430/weights size=\"172 MB\" total_elapsed=1.887s url=https://replicate.delivery/yhqm/b4SeKENjDfqEq0GhOQl1KqU9mjt165d60H27fVUmKCCsiefaC/trained_model.tar\nDownloaded weights in 1.91s\nLoaded LoRAs in 23.14s\n 0%| | 0/28 [00:00<?, ?it/s]\n 4%|▎ | 1/28 [00:00<00:09, 2.96it/s]\n 7%|▋ | 2/28 [00:00<00:06, 3.80it/s]\n 11%|█ | 3/28 [00:00<00:06, 3.74it/s]\n 14%|█▍ | 4/28 [00:01<00:06, 3.73it/s]\n 18%|█▊ | 5/28 [00:01<00:06, 3.71it/s]\n 21%|██▏ | 6/28 [00:01<00:05, 3.70it/s]\n 25%|██▌ | 7/28 [00:01<00:05, 3.70it/s]\n 29%|██▊ | 8/28 [00:02<00:05, 3.70it/s]\n 32%|███▏ | 9/28 [00:02<00:05, 3.69it/s]\n 36%|███▌ | 10/28 [00:02<00:04, 3.69it/s]\n 39%|███▉ | 11/28 [00:02<00:04, 3.69it/s]\n 43%|████▎ | 12/28 [00:03<00:04, 3.69it/s]\n 46%|████▋ | 13/28 [00:03<00:04, 3.69it/s]\n 50%|█████ | 14/28 [00:03<00:03, 3.69it/s]\n 54%|█████▎ | 15/28 [00:04<00:03, 3.69it/s]\n 57%|█████▋ | 16/28 [00:04<00:03, 3.69it/s]\n 61%|██████ | 17/28 [00:04<00:02, 3.69it/s]\n 64%|██████▍ | 18/28 [00:04<00:02, 3.69it/s]\n 68%|██████▊ | 19/28 [00:05<00:02, 3.69it/s]\n 71%|███████▏ | 20/28 [00:05<00:02, 3.69it/s]\n 75%|███████▌ | 21/28 [00:05<00:01, 3.69it/s]\n 79%|███████▊ | 22/28 [00:05<00:01, 3.69it/s]\n 82%|████████▏ | 23/28 [00:06<00:01, 3.69it/s]\n 86%|████████▌ | 24/28 [00:06<00:01, 3.69it/s]\n 89%|████████▉ | 25/28 [00:06<00:00, 3.69it/s]\n 93%|█████████▎| 26/28 [00:07<00:00, 3.69it/s]\n 96%|█████████▋| 27/28 [00:07<00:00, 3.69it/s]\n100%|██████████| 28/28 [00:07<00:00, 3.69it/s]\n100%|██████████| 28/28 [00:07<00:00, 3.69it/s]",
"metrics": {
"predict_time": 32.137861545,
"total_time": 32.149315
},
"output": [
"https://replicate.delivery/yhqm/qiKYKzShCEr1LxEZeiRKZn3lA0Xq2NHbaNGN9GxySSyvewYTA/out-0.png"
],
"started_at": "2024-09-02T06:37:51.189453Z",
"status": "succeeded",
"urls": {
"get": "https://api.replicate.com/v1/predictions/zrnr9mhys9rm20chp5tamfhs54",
"cancel": "https://api.replicate.com/v1/predictions/zrnr9mhys9rm20chp5tamfhs54/cancel"
},
"version": "bd6755a51bab4d0f81d08498b0a880d29dcdda99bbbfad60e78e5c59916bea1f"
}
Using seed: 30797
Prompt: Lipexbradok dressed in light gray sweats with a friendly smile. On a black background with cinematic lights in yellowish tones.
txt2img mode
Using dev model
free=9171358134272
Downloading weights
2024-09-02T06:37:51Z | INFO | [ Initiating ] chunk_size=150M dest=/tmp/tmpdy_dz430/weights url=https://replicate.delivery/yhqm/b4SeKENjDfqEq0GhOQl1KqU9mjt165d60H27fVUmKCCsiefaC/trained_model.tar
2024-09-02T06:37:53Z | INFO | [ Complete ] dest=/tmp/tmpdy_dz430/weights size="172 MB" total_elapsed=1.887s url=https://replicate.delivery/yhqm/b4SeKENjDfqEq0GhOQl1KqU9mjt165d60H27fVUmKCCsiefaC/trained_model.tar
Downloaded weights in 1.91s
Loaded LoRAs in 23.14s
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This model costs approximately $0.028 to run on Replicate, or 35 runs per $1, but this varies depending on your inputs. It is also open source and you can run it on your own computer with Docker.
This model runs on Nvidia H100 GPU hardware. Predictions typically complete within 19 seconds.
This model doesn't have a readme.
This model is warm. 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: 30797
Prompt: Lipexbradok dressed in light gray sweats with a friendly smile. On a black background with cinematic lights in yellowish tones.
txt2img mode
Using dev model
free=9171358134272
Downloading weights
2024-09-02T06:37:51Z | INFO | [ Initiating ] chunk_size=150M dest=/tmp/tmpdy_dz430/weights url=https://replicate.delivery/yhqm/b4SeKENjDfqEq0GhOQl1KqU9mjt165d60H27fVUmKCCsiefaC/trained_model.tar
2024-09-02T06:37:53Z | INFO | [ Complete ] dest=/tmp/tmpdy_dz430/weights size="172 MB" total_elapsed=1.887s url=https://replicate.delivery/yhqm/b4SeKENjDfqEq0GhOQl1KqU9mjt165d60H27fVUmKCCsiefaC/trained_model.tar
Downloaded weights in 1.91s
Loaded LoRAs in 23.14s
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