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Obtained from freecs/ThetaWave-7B after SFT fine tuning.

Open-Orca/SlimOrca datasets were used.

The model does not currently support system_prompt because it uses mistral's chat_template, and the next release is in training to switch to the chatml template to support system_prompt. system_prompt can be implemented if you manually change the chat_template, but the After testing, this seems to degrade the model performance.

More model details will be released...

Vllm deployment command

# Single graphics card
python /path/to/vllm/vllm/entrypoints/openai/api_server.py \
--model '/path/to/ThetaWave-7B-sft' \
--tokenizer '/path/to/ThetaWave-7B-sft' \
--tokenizer-mode auto \
--dtype float16 \
--enforce-eager \
--host 0.0.0.0 \
--port 6000 \
--disable-log-stats \
--disable-log-requests

# Dual graphics cards
python /path/to/vllm/vllm/entrypoints/openai/api_server.py \
--model '/path/to/ThetaWave-7B-sft' \
--tokenizer '/path/to/ThetaWave-7B-sft' \
--tokenizer-mode auto \
--dtype float16 \
--enforce-eager \
--tensor-parallel-size 2 \
--worker-use-ray \
--engine-use-ray \
--host 0.0.0.0 \
--port 6000 \
--disable-log-stats \
--disable-log-requests

Try it directly:

from transformers import AutoModelForCausalLM, AutoTokenizer

device = "cuda" # the device to load the model onto

model = AutoModelForCausalLM.from_pretrained("Liangmingxin/ThetaWave-7B-sft")
tokenizer = AutoTokenizer.from_pretrained("Liangmingxin/ThetaWave-7B-sft")

messages = [
    {"role": "user", "content": "Who are you?"},
]

encodeds = tokenizer.apply_chat_template(messages, return_tensors="pt")

model_inputs = encodeds.to(device)
model.to(device)

generated_ids = model.generate(model_inputs, max_new_tokens=1000, do_sample=True)
decoded = tokenizer.batch_decode(generated_ids)
print(decoded[0])
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Model size
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Tensor type
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Dataset used to train Liangmingxin/ThetaWave-7B-sft

Space using Liangmingxin/ThetaWave-7B-sft 1