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# 모델 서빙 [[Serving]]
Text Generation Inference (TGI) 및 vLLM과 같은 특수한 라이브러리를 사용해 Transformer 모델을 추론에 사용할 수 있습니다. 이러한 라이브러리는 vLLM의 성능을 최적화하도록 설계되었으며, Transformers에는 포함되지 않은 고유한 최적화 기능을 다양하게 제공합니다.
## TGI [[TGI]]
[네이티브로 구현된 모델](https://huggingface.co/docs/text-generation-inference/supported_models)이 아니더라도 TGI로 Transformers 구현 모델을 서빙할 수 있습니다. TGI에서 제공하는 일부 고성능 기능은 지원하지 않을 수 있지만 연속 배칭이나 스트리밍과 같은 기능들은 사용할 수 있습니다.
> [!TIP]
> 더 자세한 내용은 [논-코어 모델 서빙](https://huggingface.co/docs/text-generation-inference/basic_tutorials/non_core_models) 가이드를 참고하세요.
TGI 모델을 서빙하는 방식과 동일한 방식으로 Transformer 구현 모델을 서빙할 수 있습니다.
```docker
docker run --gpus all --shm-size 1g -p 8080:80 -v $volume:/data ghcr.io/huggingface/text-generation-inference:latest --model-id gpt2
```
커스텀 Transformers 모델을 서빙하려면 `--trust-remote_code`를 명령어에 추가하세요.
```docker
docker run --gpus all --shm-size 1g -p 8080:80 -v $volume:/data ghcr.io/huggingface/text-generation-inference:latest --model-id <CUSTOM_MODEL_ID> --trust-remote-code
```
## vLLM [[vLLM]]
[vLLM](https://docs.vllm.ai/en/latest/index.html)은 특정 모델이 vLLM에서 [네이티브로 구현된 모델](https://docs.vllm.ai/en/latest/models/supported_models.html#list-of-text-only-language-models)이 아닐 경우, Transformers 구현 모델을 서빙할 수도 있습니다.
Transformers 구현에서는 양자화, LoRA 어댑터, 분산 추론 및 서빙과 같은 다양한 기능이 지원됩니다.
> [!TIP]
> [Transformers fallback](https://docs.vllm.ai/en/latest/models/supported_models.html#transformers-fallback) 섹션에서 더 자세한 내용을 확인할 수 있습니다.
기본적으로 vLLM은 네이티브 구현을 서빙할 수 있지만, 해당 구현이 존재하지 않으면 Transformers 구현을 사용합니다. 하지만 `--model-impl transformers` 옵션을 설정하면 명시적으로 Transformers 모델 구현을 사용할 수 있습니다.
```shell
vllm serve Qwen/Qwen2.5-1.5B-Instruct \
--task generate \
--model-impl transformers \
```
`trust-remote-code` 파라미터를 추가해 원격 코드 모델 로드를 활성화할 수 있습니다.
```shell
vllm serve Qwen/Qwen2.5-1.5B-Instruct \
--task generate \
--model-impl transformers \
--trust-remote-code \
```