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--- |
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base_model: |
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- meta-llama/Meta-Llama-3-70B |
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language: |
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- en |
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- ko |
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library_name: transformers |
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license: llama3 |
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--- |
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<a href="https://github.com/MLP-Lab/Bllossom"> |
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<img src="https://github.com/teddysum/bllossom/blob/main//bllossom_icon.png?raw=true" width="40%" height="50%"> |
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</a> |
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# Bllossom | [Demo]() | [Homepage](https://www.bllossom.ai/) | [Github](https://github.com/MLP-Lab/Bllossom) | [Colab-tutorial](https://colab.research.google.com/drive/1fBOzUVZ6NRKk_ugeoTbAOokWKqSN47IG?usp=sharing) | |
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```bash |
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μ ν¬ Bllossom νλ‘μ νΈ νμμ νκ΅μ΄-μμ΄ μ΄μ€ μΈμ΄λͺ¨λΈμΈ Bllossom-70.8Bλ₯Ό 곡κ°νμ΅λλ€! |
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μμΈκ³ΌκΈ°λ μνΌμ»΄ν¨ν
μΌν°μ μ§μμΌλ‘ 100GBκ°λλ νκ΅μ΄λ‘ λͺ¨λΈμ 체λ₯Ό ννλν νκ΅μ΄ κ°ν μ΄μ€μΈμ΄ λͺ¨λΈμ
λλ€! |
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νκ΅μ΄ μνλ λͺ¨λΈ μ°Ύκ³ μμ§ μμΌμ
¨λμ? |
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- νκ΅μ΄ μ΅μ΄! λ¬΄λ € 3λ§κ°κ° λλ νκ΅μ΄ μ΄ννμ₯ |
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- Llama3λλΉ λλ΅ 25% λ κΈ΄ κΈΈμ΄μ νκ΅μ΄ Context μ²λ¦¬κ°λ₯ |
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- νκ΅μ΄-μμ΄ Pararell Corpusλ₯Ό νμ©ν νκ΅μ΄-μμ΄ μ§μμ°κ²° (μ¬μ νμ΅) |
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- νκ΅μ΄ λ¬Έν, μΈμ΄λ₯Ό κ³ λ €ν΄ μΈμ΄νμκ° μ μν λ°μ΄ν°λ₯Ό νμ©ν λ―ΈμΈμ‘°μ |
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- κ°ννμ΅ |
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μ΄ λͺ¨λ κ² νκΊΌλ²μ μ μ©λκ³ μμ
μ μ΄μ©μ΄ κ°λ₯ν Bllossomμ μ΄μ©ν΄ μ¬λ¬λΆ λ§μ λͺ¨λΈμ λ§λ€μ΄λ³΄μΈμ₯! |
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GPUκ° λΆμ‘±νλ©΄ μμν λͺ¨λΈλ‘ λ°λ‘ μλΉμ€λ₯Ό νμ©ν΄ 보μΈμ [μμνλͺ¨λΈ](https://huggingface.co/Bllossom/llama-3-Korean-Bllossom-70B-gguf-Q4_K_M)!! |
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1. Bllossom-70.8Bλ μμΈκ³ΌκΈ°λ, ν
λμΈ, μ°μΈλ μΈμ΄μμ μ°κ΅¬μ€μ μΈμ΄νμμ νμ
ν΄ λ§λ μ€μ©μ£ΌμκΈ°λ° μΈμ΄λͺ¨λΈμ
λλ€! μμΌλ‘ μ§μμ μΈ μ
λ°μ΄νΈλ₯Ό ν΅ν΄ κ΄λ¦¬νκ² μ΅λλ€ λ§μ΄ νμ©ν΄μ£ΌμΈμ π |
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2. μ΄ κ°λ ₯ν Advanced-Bllossom 8B, 70Bλͺ¨λΈ, μκ°-μΈμ΄λͺ¨λΈμ 보μ νκ³ μμ΅λλ€! (κΆκΈνμ λΆμ κ°λ³ μ°λ½μ£ΌμΈμ!!) |
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3. Bllossomμ NAACL2024, LREC-COLING2024 (ꡬλ) λ°νλ‘ μ±νλμμ΅λλ€. |
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4. μ’μ μΈμ΄λͺ¨λΈ κ³μ μ
λ°μ΄νΈ νκ² μ΅λλ€!! νκ΅μ΄ κ°νλ₯Όμν΄ κ³΅λ μ°κ΅¬νμ€λΆ(νΉνλ
Όλ¬Έ) μΈμ λ νμν©λλ€!! |
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νΉν μλμ GPUλΌλ λμ¬ κ°λ₯ννμ μΈμ λ μ°λ½μ£ΌμΈμ! λ§λ€κ³ μΆμκ±° λμλλ €μ. |
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``` |
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The Bllossom language model is a Korean-English bilingual language model based on the open-source LLama3. It enhances the connection of knowledge between Korean and English. It has the following features: |
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* **Knowledge Linking**: Linking Korean and English knowledge through additional training |
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* **Vocabulary Expansion**: Expansion of Korean vocabulary to enhance Korean expressiveness. |
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* **Instruction Tuning**: Tuning using custom-made instruction following data specialized for Korean language and Korean culture |
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* **Human Feedback**: DPO has been applied |
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* **Vision-Language Alignment**: Aligning the vision transformer with this language model |
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**This model developed by [MLPLab at Seoultech](http://mlp.seoultech.ac.kr), [Teddysum](http://teddysum.ai/) and [Yonsei Univ](https://sites.google.com/view/hansaemkim/hansaem-kim)** |
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## Demo Video |
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<div style="display: flex; justify-content: space-between;"> |
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<!-- 첫 λ²μ§Έ μ»¬λΌ --> |
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<div style="width: 49%;"> |
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<a> |
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<img src="https://github.com/lhsstn/lhsstn/blob/main/x-llava_dem.gif?raw=true" style="width: 100%; height: auto;"> |
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</a> |
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<p style="text-align: center;">Bllossom-V Demo</p> |
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</div> |
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<!-- λ λ²μ§Έ μ»¬λΌ (νμνλ€λ©΄) --> |
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<div style="width: 49%;"> |
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<a> |
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<img src="https://github.com/lhsstn/lhsstn/blob/main/bllossom_demo_kakao.gif?raw=true" style="width: 70%; height: auto;"> |
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</a> |
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<p style="text-align: center;">Bllossom Demo(Kakao)γ
€γ
€γ
€γ
€γ
€γ
€γ
€γ
€</p> |
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</div> |
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</div> |
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## NEWS |
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* [2024.05.08] Vocab Expansion Model Update |
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* [2024.04.25] We released Bllossom v2.0, based on llama-3 |
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* [2023/12] We released Bllossom-Vision v1.0, based on Bllossom |
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* [2023/08] We released Bllossom v1.0, based on llama-2. |
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* [2023/07] We released Bllossom v0.7, based on polyglot-ko. |
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## Example code |
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### Colab Tutorial |
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- [Inference-Code-Link](https://colab.research.google.com/drive/1fBOzUVZ6NRKk_ugeoTbAOokWKqSN47IG?usp=sharing) |
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### Install Dependencies |
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```bash |
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pip install torch transformers==4.40.0 accelerate |
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``` |
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### Python code with Pipeline |
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```python |
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import transformers |
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import torch |
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model_id = "Bllossom/llama-3-Korean-Bllossom-70B" |
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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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pipeline.model.eval() |
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PROMPT = '''λΉμ μ μ μ©ν AI μ΄μμ€ν΄νΈμ
λλ€. μ¬μ©μμ μ§μμ λν΄ μΉμ νκ³ μ ννκ² λ΅λ³ν΄μΌ ν©λλ€. |
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You are a helpful AI assistant, you'll need to answer users' queries in a friendly and accurate manner.''' |
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instruction = "μμΈκ³ΌνκΈ°μ λνκ΅ MLPμ°κ΅¬μ€μ λν΄ μκ°ν΄μ€" |
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messages = [ |
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{"role": "system", "content": f"{PROMPT}"}, |
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{"role": "user", "content": f"{instruction}"} |
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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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terminators = [ |
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pipeline.tokenizer.eos_token_id, |
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pipeline.tokenizer.convert_tokens_to_ids("<|eot_id|>") |
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] |
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outputs = pipeline( |
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prompt, |
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max_new_tokens=2048, |
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eos_token_id=terminators, |
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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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# μμΈκ³ΌνκΈ°μ λνκ΅ MLPμ°κ΅¬μ€μ λ©ν°λͺ¨λ¬ μμ°μ΄μ²λ¦¬ μ°κ΅¬λ₯Ό νκ³ μμ΅λλ€. ꡬμ±μμ μκ²½ν κ΅μμ κΉλ―Όμ€, κΉμλ―Ό, μ΅μ°½μ, μμΈνΈ, μ νκ²°, μνμ, μ‘μΉμ°, μ‘μ ν, μ λμ¬ νμμ΄ μμ΅λλ€. |
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``` |
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### Python code with AutoModel |
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```python |
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import os |
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import torch |
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from transformers import AutoTokenizer, AutoModelForCausalLM |
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model_id = 'Bllossom/llama-3-Korean-Bllossom-70B' |
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tokenizer = AutoTokenizer.from_pretrained(model_id) |
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model = AutoModelForCausalLM.from_pretrained( |
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model_id, |
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torch_dtype=torch.bfloat16, |
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device_map="auto", |
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) |
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model.eval() |
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PROMPT = '''λΉμ μ μ μ©ν AI μ΄μμ€ν΄νΈμ
λλ€. μ¬μ©μμ μ§μμ λν΄ μΉμ νκ³ μ ννκ² λ΅λ³ν΄μΌ ν©λλ€. |
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You are a helpful AI assistant, you'll need to answer users' queries in a friendly and accurate manner.''' |
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instruction = "μμΈκ³ΌνκΈ°μ λνκ΅ MLPμ°κ΅¬μ€μ λν΄ μκ°ν΄μ€" |
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messages = [ |
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{"role": "system", "content": f"{PROMPT}"}, |
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{"role": "user", "content": f"{instruction}"} |
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] |
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input_ids = tokenizer.apply_chat_template( |
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messages, |
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add_generation_prompt=True, |
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return_tensors="pt" |
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).to(model.device) |
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terminators = [ |
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tokenizer.eos_token_id, |
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tokenizer.convert_tokens_to_ids("<|eot_id|>") |
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] |
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outputs = model.generate( |
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input_ids, |
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max_new_tokens=2048, |
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eos_token_id=terminators, |
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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(tokenizer.decode(outputs[0][input_ids.shape[-1]:], skip_special_tokens=True)) |
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# μμΈκ³ΌνκΈ°μ λνκ΅ MLPμ°κ΅¬μ€μ λ©ν°λͺ¨λ¬ μμ°μ΄μ²λ¦¬ μ°κ΅¬λ₯Ό νκ³ μμ΅λλ€. ꡬμ±μμ μκ²½ν κ΅μμ κΉλ―Όμ€, κΉμλ―Ό, μ΅μ°½μ, μμΈνΈ, μ νκ²°, μνμ, μ‘μΉμ°, μ‘μ ν, μ λμ¬ νμμ΄ μμ΅λλ€. |
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``` |
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## Citation |
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**Language Model** |
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```text |
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@misc{bllossom, |
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author = {ChangSu Choi, Yongbin Jeong, Seoyoon Park, InHo Won, HyeonSeok Lim, SangMin Kim, Yejee Kang, Chanhyuk Yoon, Jaewan Park, Yiseul Lee, HyeJin Lee, Younggyun Hahm, Hansaem Kim, KyungTae Lim}, |
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title = {Optimizing Language Augmentation for Multilingual Large Language Models: A Case Study on Korean}, |
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year = {2024}, |
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journal = {LREC-COLING 2024}, |
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paperLink = {\url{https://arxiv.org/pdf/2403.10882}}, |
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}, |
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} |
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``` |
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**Vision-Language Model** |
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```text |
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@misc{bllossom-V, |
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author = {Dongjae Shin, Hyunseok Lim, Inho Won, Changsu Choi, Minjun Kim, Seungwoo Song, Hangyeol Yoo, Sangmin Kim, Kyungtae Lim}, |
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title = {X-LLaVA: Optimizing Bilingual Large Vision-Language Alignment}, |
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year = {2024}, |
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publisher = {GitHub}, |
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journal = {NAACL 2024 findings}, |
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paperLink = {\url{https://arxiv.org/pdf/2403.11399}}, |
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}, |
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} |
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``` |
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## Contact |
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- μκ²½ν(KyungTae Lim), Professor at Seoultech. `[email protected]` |
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- ν¨μκ· (Younggyun Hahm), CEO of Teddysum. `[email protected]` |
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- κΉνμ(Hansaem Kim), Professor at Yonsei. `[email protected]` |
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## Contributor |
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- μ΅μ°½μ(Chansu Choi), [email protected] |
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- κΉμλ―Ό(Sangmin Kim), [email protected] |
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- μμΈνΈ(Inho Won), [email protected] |
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- κΉλ―Όμ€(Minjun Kim), [email protected] |
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- μ‘μΉμ°(Seungwoo Song), [email protected] |
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- μ λμ¬(Dongjae Shin), [email protected] |
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- μνμ(Hyeonseok Lim), [email protected] |
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- μ‘μ ν(Jeonghun Yuk), [email protected] |
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- μ νκ²°(Hangyeol Yoo), [email protected] |
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- μ‘μν(Seohyun Song), [email protected] |