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- **Add SPDX license headers to python source files**
- **Check for SPDX headers using pre-commit**
commit 9d7ef44c3cfb72ca4c32e1c677d99259d10d4745
Author: Russell Bryant <rbryant@redhat.com>
Date: Fri Jan 31 14:18:24 2025 -0500
Add SPDX license headers to python source files
This commit adds SPDX license headers to python source files as
recommended to
the project by the Linux Foundation. These headers provide a concise way
that is
both human and machine readable for communicating license information
for each
source file. It helps avoid any ambiguity about the license of the code
and can
also be easily used by tools to help manage license compliance.
The Linux Foundation runs license scans against the codebase to help
ensure
we are in compliance with the licenses of the code we use, including
dependencies. Having these headers in place helps that tool do its job.
More information can be found on the SPDX site:
- https://spdx.dev/learn/handling-license-info/
Signed-off-by: Russell Bryant <rbryant@redhat.com>
commit 5a1cf1cb3b80759131c73f6a9dddebccac039dea
Author: Russell Bryant <rbryant@redhat.com>
Date: Fri Jan 31 14:36:32 2025 -0500
Check for SPDX headers using pre-commit
Signed-off-by: Russell Bryant <rbryant@redhat.com>
---------
Signed-off-by: Russell Bryant <rbryant@redhat.com>
168 lines
4.5 KiB
Python
168 lines
4.5 KiB
Python
# SPDX-License-Identifier: Apache-2.0
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# ruff: noqa
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import argparse
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from vllm import LLM
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from vllm.sampling_params import SamplingParams
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# This script is an offline demo for running Pixtral.
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#
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# If you want to run a server/client setup, please follow this code:
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#
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# - Server:
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#
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# ```bash
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# vllm serve mistralai/Pixtral-12B-2409 --tokenizer-mode mistral --limit-mm-per-prompt 'image=4' --max-model-len 16384
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# ```
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#
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# - Client:
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#
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# ```bash
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# curl --location 'http://<your-node-url>:8000/v1/chat/completions' \
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# --header 'Content-Type: application/json' \
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# --header 'Authorization: Bearer token' \
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# --data '{
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# "model": "mistralai/Pixtral-12B-2409",
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# "messages": [
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# {
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# "role": "user",
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# "content": [
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# {"type" : "text", "text": "Describe this image in detail please."},
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# {"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"}},
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# {"type" : "text", "text": "and this one as well. Answer in French."},
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# {"type": "image_url", "image_url": {"url": "https://www.wolframcloud.com/obj/resourcesystem/images/a0e/a0ee3983-46c6-4c92-b85d-059044639928/6af8cfb971db031b.png"}}
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# ]
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# }
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# ]
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# }'
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# ```
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#
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# Usage:
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# python demo.py simple
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# python demo.py advanced
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def run_simple_demo():
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model_name = "mistralai/Pixtral-12B-2409"
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sampling_params = SamplingParams(max_tokens=8192)
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# Lower max_num_seqs or max_model_len on low-VRAM GPUs.
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llm = LLM(model=model_name, tokenizer_mode="mistral")
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prompt = "Describe this image in one sentence."
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image_url = "https://picsum.photos/id/237/200/300"
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messages = [
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{
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"role":
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"user",
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"content": [
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{
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"type": "text",
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"text": prompt
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},
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{
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"type": "image_url",
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"image_url": {
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"url": image_url
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}
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},
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],
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},
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]
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outputs = llm.chat(messages, sampling_params=sampling_params)
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print(outputs[0].outputs[0].text)
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def run_advanced_demo():
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model_name = "mistralai/Pixtral-12B-2409"
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max_img_per_msg = 5
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max_tokens_per_img = 4096
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sampling_params = SamplingParams(max_tokens=8192, temperature=0.7)
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llm = LLM(
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model=model_name,
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tokenizer_mode="mistral",
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limit_mm_per_prompt={"image": max_img_per_msg},
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max_model_len=max_img_per_msg * max_tokens_per_img,
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)
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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"
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url_2 = "https://picsum.photos/seed/picsum/200/300"
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url_3 = "https://picsum.photos/id/32/512/512"
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messages = [
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{
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"role":
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"user",
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"content": [
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{
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"type": "text",
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"text": prompt
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},
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{
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"type": "image_url",
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"image_url": {
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"url": url_1
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}
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},
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{
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"type": "image_url",
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"image_url": {
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"url": url_2
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}
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},
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],
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},
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{
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"role": "assistant",
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"content": "The images show nature.",
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},
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{
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"role": "user",
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"content": "More details please and answer only in French!.",
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},
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{
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"role": "user",
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"content": [
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{
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"type": "image_url",
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"image_url": {
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"url": url_3
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}
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},
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],
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},
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]
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outputs = llm.chat(messages=messages, sampling_params=sampling_params)
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print(outputs[0].outputs[0].text)
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def main():
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parser = argparse.ArgumentParser(
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description="Run a demo in simple or advanced mode.")
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parser.add_argument(
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"mode",
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choices=["simple", "advanced"],
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help="Specify the demo mode: 'simple' or 'advanced'",
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)
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args = parser.parse_args()
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if args.mode == "simple":
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print("Running simple demo...")
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run_simple_demo()
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elif args.mode == "advanced":
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print("Running advanced demo...")
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run_advanced_demo()
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if __name__ == "__main__":
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main()
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