119 lines
3.8 KiB
Markdown
119 lines
3.8 KiB
Markdown
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<!--Copyright 2025 The Qwen Team and The HuggingFace Inc. team. All rights reserved.
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Licensed under the Apache License, Version 2.0 (the "License"); you may not use this file except in compliance with
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the License. You may obtain a copy of the License at
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http://www.apache.org/licenses/LICENSE-2.0
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Unless required by applicable law or agreed to in writing, software distributed under the License is distributed on
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an "AS IS" BASIS, WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied. See the License for the
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specific language governing permissions and limitations under the License.
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⚠️ Note that this file is in Markdown but contain specific syntax for our doc-builder (similar to MDX) that may not be
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rendered properly in your Markdown viewer.
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-->
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*This model was released on 2025-02-19 and added to Hugging Face Transformers on 2025-09-15.*
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<div style="float: right;">
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<div class="flex flex-wrap space-x-1">
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<img alt="PyTorch" src="https://img.shields.io/badge/PyTorch-DE3412?style=flat&logo=pytorch&logoColor=white">
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<img alt="FlashAttention" src="https://img.shields.io/badge/%E2%9A%A1%EF%B8%8E%20FlashAttention-eae0c8?style=flat">
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<img alt="SDPA" src="https://img.shields.io/badge/SDPA-DE3412?style=flat&logo=pytorch&logoColor=white"> </div>
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</div>
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# Qwen3-VL
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[Qwen3-VL](https://huggingface.co/papers/2502.13923) is a multimodal vision-language model series, encompassing both dense and MoE variants, as well as Instruct and Thinking versions. Building upon its predecessors, Qwen3-VL delivers significant improvements in visual understanding while maintaining strong pure text capabilities. Key architectural advancements include: enhanced MRope with interleaved layout for better spatial-temporal modeling, DeepStack integration to effectively leverage multi-level features from the Vision Transformer (ViT), and improved video understanding through text-based time alignment—evolving from T-RoPE to text timestamp alignment for more precise temporal grounding. These innovations collectively enable Qwen3-VL to achieve superior performance in complex multimodal tasks.
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Model usage
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<hfoptions id="usage">
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<hfoption id="AutoModel">
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```py
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import torch
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from transformers import Qwen3VLForConditionalGeneration, AutoProcessor
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model = Qwen3VLForConditionalGeneration.from_pretrained(
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"Qwen/Qwen3-VL",
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dtype=torch.float16,
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device_map="auto",
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attn_implementation="sdpa"
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)
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processor = AutoProcessor.from_pretrained("Qwen/Qwen3-VL")
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messages = [
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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",
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"url": "https://huggingface.co/datasets/huggingface/documentation-images/resolve/main/pipeline-cat-chonk.jpeg"
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},
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{
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"type":"text",
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"text":"Describe this image."
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}
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]
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}
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]
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inputs = processor.apply_chat_template(
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messages,
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tokenize=True,
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add_generation_prompt=True,
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return_dict=True,
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return_tensors="pt",
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)
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inputs.pop("token_type_ids", None)
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generated_ids = model.generate(**inputs, max_new_tokens=128)
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generated_ids_trimmed = [
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out_ids[len(in_ids) :] for in_ids, out_ids in zip(inputs.input_ids, generated_ids)
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]
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output_text = processor.batch_decode(
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generated_ids_trimmed, skip_special_tokens=True, clean_up_tokenization_spaces=False
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)
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print(output_text)
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```
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</hfoption>
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</hfoptions>
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## Qwen3VLConfig
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[[autodoc]] Qwen3VLConfig
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## Qwen3VLTextConfig
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[[autodoc]] Qwen3VLTextConfig
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## Qwen3VLProcessor
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[[autodoc]] Qwen3VLProcessor
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## Qwen3VLVideoProcessor
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[[autodoc]] Qwen3VLVideoProcessor
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## Qwen3VLVisionModel
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[[autodoc]] Qwen3VLVisionModel
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- forward
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## Qwen3VLTextModel
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[[autodoc]] Qwen3VLTextModel
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- forward
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## Qwen3VLModel
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[[autodoc]] Qwen3VLModel
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- forward
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## Qwen3VLForConditionalGeneration
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[[autodoc]] Qwen3VLForConditionalGeneration
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- forward
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