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VUT: Versatile UI Transformer for Multi-Modal Multi-Task User Interface Modeling

About

User interface modeling is inherently multimodal, which involves several distinct types of data: images, structures and language. The tasks are also diverse, including object detection, language generation and grounding. In this paper, we present VUT, a Versatile UI Transformer that takes multimodal input and simultaneously accomplishes 5 distinct tasks with the same model. Our model consists of a multimodal Transformer encoder that jointly encodes UI images and structures, and performs UI object detection when the UI structures are absent in the input. Our model also consists of an auto-regressive Transformer model that encodes the language input and decodes output, for both question-answering and command grounding with respect to the UI. Our experiments show that for most of the tasks, when trained jointly for multi-tasks, VUT substantially reduces the number of models and footprints needed for performing multiple tasks, while achieving accuracy exceeding or on par with baseline models trained for each individual task.

Yang Li, Gang Li, Xin Zhou, Mostafa Dehghani, Alexey Gritsenko• 2021

Related benchmarks

TaskDatasetResultRank
Widget CaptioningWidget Captioning (test)
CIDEr97
17
Image CaptioningScreen2Words (test)
CIDEr64.3
6
Image CaptioningScreen2Words
CIDEr64.3
6
Visual GroundingRefExp--
6
UI understandingScreen2Words (test)
CIDEr64.3
5
UI understandingWidget-Cap (test)
CIDEr97
5
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