realistic-titfuck
This lora model is uploaded on imagepipeline.io
Model details - Got sick of having to hope the stars align to get a good titfuck shot with photorealistic models so I threw together this LoRA. Trained on 500ish images 5 repeats. This is the 3rd epoch of 6 which seems to have a good handle on the concept without being too overtrained.
It's very good at putting a penis between breasts but doesn't always attach that penis to a person so it's best to try and avoid full body prompts. Higher strengths tend to lock it into a POV titfuck which helps with the floating penis problem however higher values also sometimes produce eldritch text/logos and I'm too lazy to go tag in all 500 photos to fix it.
Works best at around .6 to .8 strength. Tested on Hassan, Deliberate, PPP and URPM. Seems to work best with URPM but functional in all of them.
How to try this model ?
You can try using it locally or send an API call to test the output quality.
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import requests
import json
url = "https://imagepipeline.io/sd/text2image/v1/run"
payload = json.dumps({
"model_id": "sd1.5",
"prompt": "ultra realistic close up portrait ((beautiful pale cyberpunk female with heavy black eyeliner)), blue eyes, shaved side haircut, hyper detail, cinematic lighting, magic neon, dark red city, Canon EOS R3, nikon, f/1.4, ISO 200, 1/160s, 8K, RAW, unedited, symmetrical balance, in-frame, 8K",
"negative_prompt": "painting, extra fingers, mutated hands, poorly drawn hands, poorly drawn face, deformed, ugly, blurry, bad anatomy, bad proportions, extra limbs, cloned face, skinny, glitchy, double torso, extra arms, extra hands, mangled fingers, missing lips, ugly face, distorted face, extra legs, anime",
"width": "512",
"height": "512",
"samples": "1",
"num_inference_steps": "30",
"safety_checker": false,
"guidance_scale": 7.5,
"multi_lingual": "no",
"embeddings": "",
"lora_models": "dd644dac-337b-4592-b77d-0eb760dc55c6",
"lora_weights": "0.5"
})
headers = {
'Content-Type': 'application/json',
'API-Key': 'your_api_key'
}
response = requests.request("POST", url, headers=headers, data=payload)
print(response.text)
}
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API Reference
Generate Image
https://api.imagepipeline.io/sd/text2image/v1
Headers | Type | Description |
---|---|---|
API-Key |
str |
Get your API_KEY from imagepipeline.io |
Content-Type |
str |
application/json - content type of the request body |
Parameter | Type | Description |
---|---|---|
model_id |
str |
Your base model, find available lists in models page or upload your own |
prompt |
str |
Text Prompt. Check our Prompt Guide for tips |
num_inference_steps |
int [1-50] |
Noise is removed with each step, resulting in a higher-quality image over time. Ideal value 30-50 (without LCM) |
guidance_scale |
float [1-20] |
Higher guidance scale prioritizes text prompt relevance but sacrifices image quality. Ideal value 7.5-12.5 |
lora_models |
str, array |
Pass the model_id(s) of LoRA models that can be found in models page |
lora_weights |
str, array |
Strength of the LoRA effect |
license: creativeml-openrail-m tags:
- imagepipeline
- imagepipeline.io
- text-to-image
- ultra-realistic pinned: false pipeline_tag: text-to-image
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