laurentiubp
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MMLU
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- **Funded by [optional]:** [More Information Needed]
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- **Shared by [optional]:** [More Information Needed]
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- **Model type:** [More Information Needed]
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- **Language(s) (NLP):** [More Information Needed]
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- **License:** [More Information Needed]
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- **Finetuned from model [optional]:** [More Information Needed]
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### Model Sources [optional]
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## Uses
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##
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Users (both direct and downstream) should be made aware of the risks, biases and limitations of the model. More information needed for further recommendations.
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##
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<!-- This should link to a Dataset Card, perhaps with a short stub of information on what the training data is all about as well as documentation related to data pre-processing or additional filtering. -->
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[More Information Needed]
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### Training Procedure
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<!-- This relates heavily to the Technical Specifications. Content here should link to that section when it is relevant to the training procedure. -->
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#### Preprocessing [optional]
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[More Information Needed]
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#### Training Hyperparameters
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- **Training regime:** [More Information Needed] <!--fp32, fp16 mixed precision, bf16 mixed precision, bf16 non-mixed precision, fp16 non-mixed precision, fp8 mixed precision -->
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#### Speeds, Sizes, Times [optional]
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<!-- This section provides information about throughput, start/end time, checkpoint size if relevant, etc. -->
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[More Information Needed]
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## Evaluation
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<!-- This section describes the evaluation protocols and provides the results. -->
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### Testing Data, Factors & Metrics
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#### Testing Data
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<!-- This should link to a Dataset Card if possible. -->
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[More Information Needed]
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#### Factors
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<!-- These are the things the evaluation is disaggregating by, e.g., subpopulations or domains. -->
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[More Information Needed]
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#### Metrics
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<!-- These are the evaluation metrics being used, ideally with a description of why. -->
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[More Information Needed]
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### Results
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[More Information Needed]
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#### Summary
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## Model Examination [optional]
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<!-- Relevant interpretability work for the model goes here -->
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[More Information Needed]
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## Environmental Impact
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<!-- Total emissions (in grams of CO2eq) and additional considerations, such as electricity usage, go here. Edit the suggested text below accordingly -->
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Carbon emissions can be estimated using the [Machine Learning Impact calculator](https://mlco2.github.io/impact#compute) presented in [Lacoste et al. (2019)](https://arxiv.org/abs/1910.09700).
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- **Hardware Type:** [More Information Needed]
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- **Hours used:** [More Information Needed]
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- **Cloud Provider:** [More Information Needed]
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- **Compute Region:** [More Information Needed]
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- **Carbon Emitted:** [More Information Needed]
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## Technical Specifications [optional]
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### Model Architecture and Objective
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[More Information Needed]
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### Compute Infrastructure
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[More Information Needed]
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#### Hardware
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[More Information Needed]
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#### Software
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[More Information Needed]
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## Citation [optional]
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<!-- If there is a paper or blog post introducing the model, the APA and Bibtex information for that should go in this section. -->
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**BibTeX:**
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[More Information Needed]
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**APA:**
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[More Information Needed]
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## Glossary [optional]
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<!-- If relevant, include terms and calculations in this section that can help readers understand the model or model card. -->
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[More Information Needed]
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## More Information [optional]
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[More Information Needed]
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## Model Card Authors [optional]
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[More Information Needed]
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## Model Card Contact
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[More Information Needed]
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license: llama3
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base_model:
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- catallama/CataLlama-v0.2-Instruct-SFT
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- catallama/CataLlama-v0.2-Instruct-DPO
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tags:
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- llama
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- llama-3
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- catalan
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model-index:
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- name: CataLlama-v0.2-Instruct-SFT-DPO-Merged
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results: []
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datasets:
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- catallama/Catalan-DPO-V2
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- catallama/Catalan-Instruct-V2
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language:
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- ca
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- en
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pipeline_tag: text-generation
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![](https://huggingface.co/catallama/CataLlama-v0.2-Instruct-SFT/resolve/main/CataLlama-v0.2.png)
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# CataLlama-v0.2-Instruct-SFT-DPO-Merged
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**CataLlama-v0.2-Instruct-SFT-DPO-Merged** is a merge between [catallama/CataLlama-v0.2-Instruct-SFT](https://huggingface.co/catallama/CataLlama-v0.2-Instruct-SFT) and [catallama/CataLlama-v0.2-Instruct-DPO](https://huggingface.co/catallama/CataLlama-v0.2-Instruct-DPO)
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The resulting model scores better than it's parents on both MMLU and GSM8K.
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**This is an instruction fine-tuned model, optimised with DPO, proficient on the following tasks in Catalan**
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- *Information extraction (suitable for RAG)*
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- *Named Entity Recognition (NER)*
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- *Translation from English to Catalan and Catalan to English*
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- *Summarization - both short form and long form*
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- *Sentiment analysis*
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- *Chat*
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**Model developers** [Laurentiu Petrea](https://www.linkedin.com/in/laurentiupetrea/) based on Llama-3 from Meta.
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**Model Architecture** CataLlama is an auto-regressive language model that uses an optimized transformer architecture. The tuned versions use supervised fine-tuning (SFT) and direct preference optimisation (DPO) to align with human preferences for helpfulness and safety.
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**License** The model uses the llama-3 license available at: [https://llama.meta.com/llama3/license](https://llama.meta.com/llama3/license)
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## Benchmarks
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| Model | CataLlama-v0.2-Instruct-DPO | CataLlama-v0.2-Instruct-SFT | CataLlama-v0.2-Instruct-SFT-DPO-Merged |
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| ------------------ | --------------------------- | ------------------------------- | ------------------------------------------ |
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| MMLU 5 shot | 58.89 | 59.35 | **60.53** |
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| GSM8K CoT 8 shot | 60.05 | 76.04 | **77.26** |
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### Use with transformers
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See the snippet below for usage with Transformers:
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**The model follows the same prompt template as Llama-3 Instruct**
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```python
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import transformers
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import torch
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model_id = "catallama/CataLlama-v0.2-Instruct-SFT-DPO-Merged"
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pipeline = transformers.pipeline(
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"text-generation",
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model=model_id,
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model_kwargs={"torch_dtype": torch.bfloat16},
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device_map="auto",
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)
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messages = [
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{"role": "user", "content": "Ei com estàs avui?"},
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]
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prompt = pipeline.tokenizer.apply_chat_template(
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messages,
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tokenize=False,
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add_generation_prompt=True
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)
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outputs = pipeline(
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prompt,
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max_new_tokens=1024,
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do_sample=True,
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temperature=0.6,
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top_p=0.9,
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)
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print(outputs[0]["generated_text"][len(prompt):])
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```
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## Merging procedure
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The merge was performed between the 32 layers of the two models, excluding the embedding, norm and the head layers.
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The weights of the 32 layers were merged in equal proportion simply by calculating the average of the corresponding weights from the parent models.
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The embedding, norm and head layers are copied from CataLlama-v0.2-Instruct-DPO without modification.
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**This was done with a custom script, without mergekit.**
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## Intended Use
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**Note:** This model is not intended to beat benchmarks, but to demonstrate techniques for augmenting LLMs on new languages and preserve rare languages as part of our world heritage.
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**Intended Use Cases** Llama 3 is intended for commercial and research use in English. Instruction tuned models are intended for assistant-like chat, whereas pretrained models can be adapted for a variety of natural language generation tasks.
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**Out-of-scope** Use in any manner that violates applicable laws or regulations (including trade compliance laws). Use in any other way that is prohibited by the Acceptable Use Policy and Llama 3 Community License. Use in languages other than English**.
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**Note: Developers may fine-tune Llama 3 models for languages beyond English provided they comply with the Llama 3 Community License and the Acceptable Use Policy.
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