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<img src="./assets/gemma-2b-toxic.png" width="450"></img>

# Gemma-2b-it Model Card

## Model Details
This model, named "Gemma-2b-it," is a fine-tuned version of a larger language model, specifically tailored to understand and generate text based on uncensored and toxic data. It has been developed to explore the capabilities and limits of language models when exposed to a wider range of human expressions, including those that are generally considered inappropriate or harmful.

### Developer/Institution
[More Information Needed]

## Intended Use
### Primary Use
This model is intended for research purposes only, aiming to study the effects and challenges of training AI systems on uncensored data, including the propagation of harmful biases, the generation of illegal or unethical content, and the technical challenges in filtering and controlling such outputs.

### Secondary Uses
The model may also serve educational purposes in highlighting the importance of ethical AI development and the potential consequences of neglecting content moderation in training data.

### Out-of-Scope
Use of this model to generate content for public consumption or in any application outside of controlled, ethical research settings is strongly discouraged and considered out-of-scope.

## Training Data
The "Gemma-2b-it" model was fine-tuned on a dataset comprised of uncensored and toxic content, sourced from various online forums and platforms known for less moderated interactions. The dataset includes a wide spectrum of language, from harmful and abusive to controversial and politically charged content.

## Evaluation
[More Information Needed]

## Ethical Considerations
### Risks and Harms
The model has the potential to generate text that is harmful, offensive, or illegal. Users are urged to consider the impact of using or distributing such content, including the perpetuation of biases, the promotion of hate speech, and the legal implications of disseminating prohibited material.

### Mitigations
Efforts have been made to mitigate potential harms, including:
- Restricting access to the model to researchers and developers with a clear and ethical use case.
- Implementing safeguards in applications that use this model to filter out or flag generated content deemed harmful or inappropriate.

## Limitations
The model's understanding and generation of content are inherently influenced by its training data. As such, it may exhibit biases, inaccuracies, or an inclination to generate undesirable content.

## Recommendations
Users of this model are advised to:
- Clearly define the scope and ethical boundaries of their research or educational projects.
- Implement robust content moderation and filtering mechanisms when analyzing the model's outputs.
- Engage with ethical review boards or oversight committees when planning research involving this model.

## Model Card Authors
[More Information Needed]

## Model Card Contact
[More Information Needed]