commonart-beta / README.md
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metadata
license: apache-2.0
language:
  - ja
  - en
pipeline_tag: text-to-image
library_name: diffusers
tags:
  - art

Model Card for CommonArt

This is a text-to-image model learning from CC-BY-4.0, CC-0 or CC-0 like images.

Model Details

Model Description

At AI Picasso, we develop AI technology through active dialogue with creators, aiming for mutual understanding and cooperation. We strive to solve challenges faced by creators and grow together. One of these challenges is that some creators and fans want to use image generation but can't, likely due to the lack of permission to use certain images for training. To address this issue, we have developed CommonArt β. As it's still in beta, its capabilities are limited. However, its structure is expected to be the same as the final version.

Features of CommonArt β

  • Principally uses images with obtained learning permissions
  • Understands both Japanese and English text inputs directly
  • Uses the standard Apache-2.0 license for the model
  • Minimizes the risk of exact reproduction of training images
  • Utilizes cutting-edge technology for high quality and efficiency

Misc.

  • Developed by: alfredplpl
  • Funded by: AI Picasso, Inc.
  • Shared by: AI Picasso, Inc.
  • Model type: Diffusion Transformer based architecture
  • Language(s) (NLP): Japanese, English
  • License: Apache-2.0

Model Sources [optional]

  • Repository: [More Information Needed]
  • Paper [optional]: [More Information Needed]
  • Demo [optional]: [More Information Needed]

Uses

Direct Use

[More Information Needed]

Downstream Use [optional]

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Out-of-Scope Use

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Bias, Risks, and Limitations

[More Information Needed]

Recommendations

Users (both direct and downstream) should be made aware of the risks, biases and limitations of the model. More information needed for further recommendations.

How to Get Started with the Model

Use the code below to get started with the model.

[More Information Needed]

Training Details

Training Data

[More Information Needed]

Training Procedure

Preprocessing [optional]

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Training Hyperparameters

  • Training regime: [More Information Needed]

Speeds, Sizes, Times [optional]

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Evaluation

Testing Data, Factors & Metrics

Testing Data

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Factors

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Metrics

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Results

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Summary

Model Examination [optional]

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Environmental Impact

Carbon emissions can be estimated using the Machine Learning Impact calculator presented in Lacoste et al. (2019).

  • Hardware Type: [More Information Needed]
  • Hours used: [More Information Needed]
  • Cloud Provider: [More Information Needed]
  • Compute Region: [More Information Needed]
  • Carbon Emitted: [More Information Needed]

Technical Specifications [optional]

Model Architecture and Objective

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Compute Infrastructure

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Hardware

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Software

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Citation [optional]

BibTeX:

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APA:

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Glossary [optional]

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More Information [optional]

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Model Card Authors [optional]

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Model Card Contact

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