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Pixtral #8377
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add example
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Better examples
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Merge branch 'main' into pixtral
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I <3 yapf
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move up pixtral
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remove embedding support
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add vlm marker
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| Original file line number | Diff line number | Diff line change |
|---|---|---|
| @@ -0,0 +1,164 @@ | ||
| # ruff: noqa | ||
| import argparse | ||
|
|
||
| from vllm import LLM | ||
| from vllm.sampling_params import SamplingParams | ||
|
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| # This script is an offline demo for running Pixtral. | ||
| # | ||
| # If you want to run a server/client setup, please follow this code: | ||
| # | ||
| # - Server: | ||
| # | ||
| # ```bash | ||
| # vllm serve mistralai/Pixtral-12B-2409 --tokenizer_mode mistral --limit_mm_per_prompt 'image=4' --max_num_batched_tokens 16384 | ||
| # ``` | ||
| # | ||
| # - Client: | ||
| # | ||
| # ```bash | ||
| # curl --location 'http://<your-node-url>:8000/v1/chat/completions' \ | ||
| # --header 'Content-Type: application/json' \ | ||
| # --header 'Authorization: Bearer token' \ | ||
| # --data '{ | ||
| # "model": "mistralai/Pixtral-12B-2409", | ||
| # "messages": [ | ||
| # { | ||
| # "role": "user", | ||
| # "content": [ | ||
| # {"type" : "text", "text": "Describe this image in detail please."}, | ||
| # {"type": "image_url", "image_url": {"url": "https://s3.amazonaws.com/cms.ipressroom.com/338/files/201808/5b894ee1a138352221103195_A680%7Ejogging-edit/A680%7Ejogging-edit_hero.jpg"}}, | ||
| # {"type" : "text", "text": "and this one as well. Answer in French."}, | ||
| # {"type": "image_url", "image_url": {"url": "https://www.wolframcloud.com/obj/resourcesystem/images/a0e/a0ee3983-46c6-4c92-b85d-059044639928/6af8cfb971db031b.png"}} | ||
| # ] | ||
| # } | ||
| # ] | ||
| # }' | ||
| # ``` | ||
| # | ||
| # Usage: | ||
| # python demo.py simple | ||
| # python demo.py advanced | ||
|
|
||
|
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| def run_simple_demo(): | ||
| model_name = "mistralai/Pixtral-12B-2409" | ||
| sampling_params = SamplingParams(max_tokens=8192) | ||
|
|
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| llm = LLM(model=model_name, tokenizer_mode="mistral") | ||
|
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| prompt = "Describe this image in one sentence." | ||
| image_url = "https://picsum.photos/id/237/200/300" | ||
|
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| messages = [ | ||
| { | ||
| "role": | ||
| "user", | ||
| "content": [ | ||
| { | ||
| "type": "text", | ||
| "text": prompt | ||
| }, | ||
| { | ||
| "type": "image_url", | ||
| "image_url": { | ||
| "url": image_url | ||
| } | ||
| }, | ||
| ], | ||
| }, | ||
| ] | ||
| outputs = llm.chat(messages, sampling_params=sampling_params) | ||
|
|
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| print(outputs[0].outputs[0].text) | ||
|
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|
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| def run_advanced_demo(): | ||
| model_name = "mistralai/Pixtral-12B-2409" | ||
| max_img_per_msg = 5 | ||
| max_tokens_per_img = 4096 | ||
|
|
||
| sampling_params = SamplingParams(max_tokens=8192, temperature=0.7) | ||
| llm = LLM( | ||
| model=model_name, | ||
| tokenizer_mode="mistral", | ||
| limit_mm_per_prompt={"image": max_img_per_msg}, | ||
| max_num_batched_tokens=max_img_per_msg * max_tokens_per_img, | ||
| ) | ||
|
|
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| prompt = "Describe the following image." | ||
|
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| url_1 = "https://huggingface.co/datasets/patrickvonplaten/random_img/resolve/main/yosemite.png" | ||
| url_2 = "https://picsum.photos/seed/picsum/200/300" | ||
| url_3 = "https://picsum.photos/id/32/512/512" | ||
|
|
||
| messages = [ | ||
| { | ||
| "role": | ||
| "user", | ||
| "content": [ | ||
| { | ||
| "type": "text", | ||
| "text": prompt | ||
| }, | ||
| { | ||
| "type": "image_url", | ||
| "image_url": { | ||
| "url": url_1 | ||
| } | ||
| }, | ||
| { | ||
| "type": "image_url", | ||
| "image_url": { | ||
| "url": url_2 | ||
| } | ||
| }, | ||
| ], | ||
| }, | ||
| { | ||
| "role": "assistant", | ||
| "content": "The images show nature.", | ||
| }, | ||
| { | ||
| "role": "user", | ||
| "content": "More details please and answer only in French!.", | ||
| }, | ||
| { | ||
| "role": "user", | ||
| "content": [ | ||
| { | ||
| "type": "image_url", | ||
| "image_url": { | ||
| "url": url_3 | ||
| } | ||
| }, | ||
| ], | ||
| }, | ||
| ] | ||
|
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| outputs = llm.chat(messages=messages, sampling_params=sampling_params) | ||
| print(outputs[0].outputs[0].text) | ||
|
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|
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| def main(): | ||
| parser = argparse.ArgumentParser( | ||
| description="Run a demo in simple or advanced mode.") | ||
|
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| parser.add_argument( | ||
| "mode", | ||
| choices=["simple", "advanced"], | ||
| help="Specify the demo mode: 'simple' or 'advanced'", | ||
| ) | ||
|
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| args = parser.parse_args() | ||
|
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| if args.mode == "simple": | ||
| print("Running simple demo...") | ||
| run_simple_demo() | ||
| elif args.mode == "advanced": | ||
| print("Running advanced demo...") | ||
| run_advanced_demo() | ||
|
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||
|
|
||
| if __name__ == "__main__": | ||
| main() |
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| Original file line number | Diff line number | Diff line change |
|---|---|---|
| @@ -0,0 +1,58 @@ | ||
| """Compare the outputs of HF and vLLM for Mistral models using greedy sampling. | ||
|
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| Run `pytest tests/models/test_mistral.py`. | ||
| """ | ||
| import pytest | ||
|
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| from vllm.sampling_params import SamplingParams | ||
|
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| MODELS = ["mistralai/Pixtral-12B-2409"] | ||
|
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|
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| @pytest.mark.parametrize("model", MODELS) | ||
| @pytest.mark.parametrize("dtype", ["bfloat16"]) | ||
| @pytest.mark.parametrize("max_tokens", [64]) | ||
| @pytest.mark.parametrize("num_logprobs", [5]) | ||
| def test_models( | ||
| vllm_runner, | ||
| example_prompts, | ||
| model: str, | ||
| dtype: str, | ||
| max_tokens: int, | ||
| num_logprobs: int, | ||
| ) -> None: | ||
| image_urls = [ | ||
| "https://picsum.photos/id/237/200/300", | ||
| "https://picsum.photos/seed/picsum/200/300" | ||
| ] | ||
| expected = [ | ||
| "The image depicts a black dog lying on a wooden surface, looking directly at the camera with a calm expression.", # noqa | ||
| "The image depicts a serene landscape with a snow-covered mountain under a pastel-colored sky during sunset." # noqa | ||
| ] | ||
| prompt = "Describe the image in one short sentence." | ||
|
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| sampling_params = SamplingParams(max_tokens=512, temperature=0.0) | ||
|
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| with vllm_runner(model, dtype=dtype, | ||
| tokenizer_mode="mistral") as vllm_model: | ||
|
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| for i, image_url in enumerate(image_urls): | ||
| messages = [ | ||
| { | ||
| "role": | ||
| "user", | ||
| "content": [{ | ||
| "type": "text", | ||
| "text": prompt | ||
| }, { | ||
| "type": "image_url", | ||
| "image_url": { | ||
| "url": image_url | ||
| } | ||
| }] | ||
| }, | ||
| ] | ||
|
|
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| outputs = vllm_model.model.chat(messages, | ||
| sampling_params=sampling_params) | ||
| assert outputs[0].outputs[0].text == expected[i] |
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