Model Card for Model ID
gemma-2b-tr fine-tuned with Turkish Instruction-Response pairs.
Model Details
Model Description
- Language(s) (NLP): Turkish, English
- License: Creative Commons Attribution Non Commercial 4.0
- Finetuned from model [optional]: gemma-2b-tr (https://huggingface.co/Metin/gemma-2b-tr)
Uses
The model is designed for Turkish instruction following and question answering. Its current response quality is limited, likely due to the small instruction set and model size. It is not recommended for real-world applications at this stage.
Restrictions
Gemma is provided under and subject to the Gemma Terms of Use found at ai.google.dev/gemma/terms Please refer to the gemma use restrictions before start using the model. https://ai.google.dev/gemma/terms#3.2-use
How to Get Started with the Model
from transformers import AutoTokenizer, AutoModelForCausalLM
tokenizer = AutoTokenizer.from_pretrained("Metin/gemma-2b-tr-inst")
model = AutoModelForCausalLM.from_pretrained("Metin/gemma-2b-tr-inst")
system_prompt = "You are a helpful assistant. Always reply in Turkish."
instruction = "Ankara hangi ülkenin başkentidir?"
prompt = f"{system_prompt} [INST] {instruction} [/INST]"
input_ids = tokenizer(prompt, return_tensors="pt")
outputs = model.generate(**input_ids)
print(tokenizer.decode(outputs[0]))
As it can be seen from the above example instructions should be framed within the following structure:
SYSTEM_PROMPT [INST] <Your instruction here> [/INST]
Training Details
Training Data
- Dataset: Turkish instructions from the Aya dataset (https://huggingface.co/datasets/CohereForAI/aya_dataset)
- Dataset size: ~550K Token or ~5K instruction-response pair.
Training Procedure
Training Hyperparameters
- Adapter: QLoRA
- Epochs: 1
- Context length: 1024
- LoRA Rank: 32
- LoRA Alpha: 32
- LoRA Dropout: 0.05
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