Kexer models are a collection of open-source generative text models fine-tuned on the
Kotlin Exercices
dataset.
This is a repository for the fine-tuned
Deepseek-coder-1.3b
model in the
Hugging Face Transformers
format.
How to use
from transformers import AutoModelForCausalLM, AutoTokenizer
# Load pre-trained model and tokenizer
model_name = 'JetBrains/deepseek-coder-1.3B-kexer'
tokenizer = AutoTokenizer.from_pretrained(model_name)
model = AutoModelForCausalLM.from_pretrained(model_name).to('cuda')
# Create and encode input
input_text = """\This function takes an integer n and returns factorial of a number:fun factorial(n: Int): Int {\"""
input_ids = tokenizer.encode(
input_text, return_tensors='pt'
).to('cuda')
# Generate
output = model.generate(
input_ids, max_length=60, num_return_sequences=1,
early_stopping=True, pad_token_id=tokenizer.eos_token_id,
)
# Decode output
generated_text = tokenizer.decode(output[0], skip_special_tokens=True)
print(generated_text)
As with the base model, we can use FIM. To do this, the following format must be used:
The model was trained on one A100 GPU with following hyperparameters:
Hyperparameter
Value
warmup
10%
max_lr
1e-4
scheduler
linear
total_batch_size
256 (~130K tokens per step)
num_epochs
4
More details about fine-tuning can be found in the technical report (coming soon!).
Fine-tuning data
For tuning this model, we used 15K exmaples from the synthetically generated
Kotlin Exercices
dataset. Every example follows the HumanEval format. In total, the dataset contains about 3.5M tokens.
Evaluation
For evaluation, we used the
Kotlin HumanEval
dataset, which contains all 161 tasks from HumanEval translated into Kotlin by human experts. You can find more details about the pre-processing necessary to obtain our results, including the code for running, on the
datasets's page
.
Here are the results of our evaluation:
Model name
Kotlin HumanEval Pass Rate
Deepseek-coder-1.3B
26.71
Deepseek-coder-1.3B-Kexer
36.65
Ethical considerations and limitations
Deepseek-coder-1.3B-Kexer is a new technology that carries risks with use. The testing conducted to date has not covered, nor could it cover all scenarios. For these reasons, as with all LLMs, Deepseek-coder-1.3B-Kexer's potential outputs cannot be predicted in advance, and the model may in some instances produce inaccurate or objectionable responses to user prompts. The model was fine-tuned on a specific data format (Kotlin tasks), and deviation from this format can also lead to inaccurate or undesirable responses to user queries. Therefore, before deploying any applications of Deepseek-coder-1.3B-Kexer, developers should perform safety testing and tuning tailored to their specific applications of the model.
Runs of JetBrains deepseek-coder-1.3B-kexer on huggingface.co
170
Total runs
2
24-hour runs
3
3-day runs
5
7-day runs
88
30-day runs
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