KBlueLeaf / TIPO-100M

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Model's Last Updated: November 29 2024
text-generation

Introduction of TIPO-100M

Model Details of TIPO-100M

TIPO: Text to Image with text presampling for Prompt Optimization

This 100M model is still under development

100M LLaMA arch model trained for TIPO.
Tech Report: https://kblueleaf.net/document/TIPO-tech-report.pdf

image/png

Introduction

In this project, we introduce "TIPO" ( T ext to I mage with text presampling for P rompt O ptimization), an innovative framework designed to significantly enhance the quality and usability of Text-to-Image (T2I) generative models. TIPO utilizes the Large Language Models (LLMs) to perform "Text Presampling" within the inference pipeline of text-to-image generative modeling. By refining and extending user input prompts, TIPO enables generative models to produce superior results with minimal user effort, making T2I systems more accessible and effective for a wider range of users.

Usage

Use updated version of DTG extension (renamed to z-tipo-extension), current version of z-tipo-extension support stable-diffusion-webui, stable-diffusion-webui-forge and ComfyUI. SD-Next haven't been tested. https://github.com/KohakuBlueleaf/z-tipo-extension

Model arch and Training

This model is LLaMA arch with 200M parameters, the training data is combined version of Danbooru2023, Coyo-HD-11M.
The total token seen is around 50B tokens.
For more information please refer to the tech report and following table.

TIPO-200M TIPO-200M-ft TIPO-500M
Arch LLaMA LLaMA LLaMA
Max ctx length 1024 1024 1024
Batch Size 2048 2048 3584
Training dataset Danbooru, GBC10M, 5epoch
Danbooru, GBC10M, Coyo11M, 3epoch
Danbooru(pixtral), Coyo11M, 2epoch Danbooru, GBC10M, Coyo11M, 5epoch
Real Token Seen* 40B token 50B (10B more from TIPO-200M) 30B token
Training Hardware RTX 3090 x 4 RTX 3090 x 4 H100 x 8
Training Time 420 hour` 120 hour` 100 hour`
Huggingface KBlueLeaf/TIPO-200M · Hugging Face KBlueLeaf/TIPO-200M-ft · Hugging Face KBlueLeaf/TIPO-500M · Hugging Face

*: We only count "non-padding token" in the token seen, since all the training data have very large length range.
`: Since the training data is pretty short, it cost more time to reach same token seen than general LLM pretraining.
As reference, with 4096 as max ctx length and almost all the data have reach that length, you may only need 2days to reach 10B token seen on RTX 3090 x 4 with 200M model.

Evaluation

Evaluation are done on TIPO-200M model
We have tested TIPO compared to other Model in several test and metrics:

Scenery tag test

In this test we use single "scenery" tag as input. (With some certain meta)
To test each prompt gen method to see if they can obtain the desired distribution of outputs while maintain the quality of images.

Scenery Tag Test Original GPT4o-mini Prompt DB Promptis TIPO(ours)
FDD ↓ 0.3558 0.5414 0.3247 0.2350 0.2282
Aesthetic ↑ 5.0569 6.3676 6.1609 5.9468 6.2571
AI Corrupt ↑ 0.4257 0.7490 0.5024 0.5669 0.9195
Short/Truncated Long test

In this test we use short caption or manually truncated caption from GBC10M and CoyoHD11M.
This test examine the ability of prompt gen method on handling almostly completed prompts.

Short Original GPT4o-mini Prompt DB Promptis TIPO(ours)
FDD ↓ 0.0957 0.1668 0.0980 0.1783 0.1168
Aesthetic ↑ 5.8370 6.0589 5.8213 5.7963 5.8531
AI Corrupt ↑ 0.7113 0.6985 0.7064 0.6314 0.7131
Truncated Long Original GPT4o-mini Prompt DB Promptis TIPO(ours)
FDD ↓ 0.0955 0.1683 0.1247 0.2096 0.1210
Aesthetic ↑ 5.7497 6.0168 5.8191 5.7759 5.8364
AI Corrupt ↑ 0.6868 0.6712 0.6741 0.5925 0.7130
LICENSE

This model is released under Kohaku License 1.0
You can check the above provided URL or check the LICENSE file in this repo.

Citation
@misc{yeh2024tipo,
  title = {TIPO: Text to Image with text presampling for Prompt Optimization},
  author = {Yeh, Shih-Ying},
  year = {2024},
  month = {10},
  day = {6},
  note = {Technical report available at \url{https://kblueleaf.net/document/TIPO-tech-report.pdf}. 
          Model available at \url{https://huggingface.co/KBlueLeaf/TIPO-500M}. 
          Source code available at \url{https://github.com/KohakuBlueleaf/KGen}},
}

Runs of KBlueLeaf TIPO-100M on huggingface.co

1.1K
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24-hour runs
24
3-day runs
117
7-day runs
-271
30-day runs

More Information About TIPO-100M huggingface.co Model

More TIPO-100M license Visit here:

https://choosealicense.com/licenses/apache-2.0

TIPO-100M huggingface.co

TIPO-100M huggingface.co is an AI model on huggingface.co that provides TIPO-100M's model effect (), which can be used instantly with this KBlueLeaf TIPO-100M model. huggingface.co supports a free trial of the TIPO-100M model, and also provides paid use of the TIPO-100M. Support call TIPO-100M model through api, including Node.js, Python, http.

KBlueLeaf TIPO-100M online free

TIPO-100M huggingface.co is an online trial and call api platform, which integrates TIPO-100M's modeling effects, including api services, and provides a free online trial of TIPO-100M, you can try TIPO-100M online for free by clicking the link below.

KBlueLeaf TIPO-100M online free url in huggingface.co:

https://huggingface.co/KBlueLeaf/TIPO-100M

TIPO-100M install

TIPO-100M is an open source model from GitHub that offers a free installation service, and any user can find TIPO-100M on GitHub to install. At the same time, huggingface.co provides the effect of TIPO-100M install, users can directly use TIPO-100M installed effect in huggingface.co for debugging and trial. It also supports api for free installation.

TIPO-100M install url in huggingface.co:

https://huggingface.co/KBlueLeaf/TIPO-100M

Url of TIPO-100M

Provider of TIPO-100M huggingface.co

KBlueLeaf
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