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transformers/docs/source/en/model_doc/pix2struct.md
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first commit
2026-06-05 16:53:03 +08:00

4.3 KiB

This model was published in HF papers on 2022-10-07 and contributed to Hugging Face Transformers on 2023-03-22.

Pix2Struct

Overview

The Pix2Struct model was proposed in Pix2Struct: Screenshot Parsing as Pretraining for Visual Language Understanding by Kenton Lee, Mandar Joshi, Iulia Turc, Hexiang Hu, Fangyu Liu, Julian Eisenschlos, Urvashi Khandelwal, Peter Shaw, Ming-Wei Chang, Kristina Toutanova.

The abstract from the paper is the following:

Visually-situated language is ubiquitous -- sources range from textbooks with diagrams to web pages with images and tables, to mobile apps with buttons and forms. Perhaps due to this diversity, previous work has typically relied on domain-specific recipes with limited sharing of the underlying data, model architectures, and objectives. We present Pix2Struct, a pretrained image-to-text model for purely visual language understanding, which can be finetuned on tasks containing visually-situated language. Pix2Struct is pretrained by learning to parse masked screenshots of web pages into simplified HTML. The web, with its richness of visual elements cleanly reflected in the HTML structure, provides a large source of pretraining data well suited to the diversity of downstream tasks. Intuitively, this objective subsumes common pretraining signals such as OCR, language modeling, image captioning. In addition to the novel pretraining strategy, we introduce a variable-resolution input representation and a more flexible integration of language and vision inputs, where language prompts such as questions are rendered directly on top of the input image. For the first time, we show that a single pretrained model can achieve state-of-the-art results in six out of nine tasks across four domains: documents, illustrations, user interfaces, and natural images.

Tips:

Pix2Struct has been fine tuned on a variety of tasks and datasets, ranging from image captioning, visual question answering (VQA) over different inputs (books, charts, science diagrams), captioning UI components etc. The full list can be found in Table 1 of the paper. We therefore advise you to use these models for the tasks they have been fine tuned on. For instance, if you want to use Pix2Struct for UI captioning, you should use the model fine tuned on the UI dataset. If you want to use Pix2Struct for image captioning, you should use the model fine tuned on the natural images captioning dataset and so on.

If you want to use the model to perform conditional text captioning, make sure to use the processor with add_special_tokens=False.

This model was contributed by ybelkada. The original code can be found here.

Resources

Pix2StructConfig

autodoc Pix2StructConfig

Pix2StructTextConfig

autodoc Pix2StructTextConfig

Pix2StructVisionConfig

autodoc Pix2StructVisionConfig

Pix2StructProcessor

autodoc Pix2StructProcessor - call

Pix2StructImageProcessor

autodoc Pix2StructImageProcessor - preprocess

Pix2StructImageProcessorPil

autodoc Pix2StructImageProcessorPil - preprocess

Pix2StructTextModel

autodoc Pix2StructTextModel - forward

Pix2StructVisionModel

autodoc Pix2StructVisionModel - forward

Pix2StructForConditionalGeneration

autodoc Pix2StructForConditionalGeneration - forward