Learning to Denoise Raw Mobile UI Layouts for Improving Datasets at Scale
Gang Li, Gilles Baechler, Manuel Tragut, Yang Li
Abstract
The layout of a mobile screen is a critical data source for UI design research and semantic understanding of the screen. However, UI layouts in existing datasets are often noisy, have mismatches with their visual representation, or consists of generic or app-specific types that are difficult to analyze and model. In this paper, we propose the CLAY pipeline that uses a deep learning approach for denoising UI layouts, allowing us to automatically improve existing mobile UI layout datasets at scale. Our pipeline takes both the screenshot and the raw UI layout, and annotates the raw layout by removing incorrect nodes and assigning a semantically meaningful type to each node. To experiment with our data-cleaning pipeline, we create the CLAY dataset of 59,555 human-annotated screen layouts, based on screenshots and raw layouts from Rico, a public mobile UI corpus. Our deep models achieve high accuracy with F1 scores of 82.7% for detecting layout objects that do not have a valid visual representation and 85.9% for recognizing object types, which significantly outperforms a heuristic baseline. Our work lays a foundation for creating large-scale high quality UI layout datasets for data-driven mobile UI research and reduces the need of manual labeling efforts that are prohibitively expensive.
• Human-centered computing → Human computer interaction (HCI).
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Install the CLIlune papers fulltext ee021d92-81b3-46f2-a6d2-36ecd4ec081aCited by top-tier papers21
- Enabling Conversational Interaction with Mobile UI using Large Language ModelsBryan Wang, Gang Li, Yang LiCHI 2023 · 149 citations
- WebUI: A Dataset for Enhancing Visual UI Understanding with Web SemanticsJason Wu, Siyan Wang, Siman Shen, Yi-Hao Peng et al.CHI 2023 · 49 citations
- PLay: Parametrically Conditioned Layout Generation using Latent DiffusionChin-Yi Cheng, Forrest Huang, Gang Li, Yang LiICML 2023 · 45 citations
- Unveiling the Tricks: Automated Detection of Dark Patterns in Mobile ApplicationsJieshan Chen, Jiamou Sun, Sidong Feng, Zhenchang Xing et al.UIST 2023 · 42 citations
- VisionTasker: Mobile Task Automation Using Vision Based UI Understanding and LLM Task PlanningYunpeng Song, Yiheng Bian, Yongtao Tang, Guiyu Ma et al.UIST 2024 · 24 citations
Builds on10
- Learning Transferable Visual Models From Natural Language SupervisionAlec Radford, Jong Wook Kim, Chris Hallacy, Aditya Ramesh et al.ICML 2021 · 47,906 citations
- Deformable DETR: Deformable Transformers for End-to-End Object DetectionXizhou Zhu, Weijie Su, Lewei Lu, Bin Li et al.ICLR 2021 · 7,353 citations
- Learnable Fourier Features for Multi-dimensional Spatial Positional EncodingYang Li, Si Si, Gang Li, Cho-Jui Hsieh et al.NeurIPS 2021 · 171 citations
- Screen Recognition: Creating Accessibility Metadata for Mobile Applications from PixelsXiaoyi Zhang, Lilian de Greef, Amanda Swearngin, Samuel White et al.CHI 2021 · 145 citations
- Object detection for graphical user interface: old fashioned or deep learning or a combination?Jieshan Chen, Mulong Xie, Zhenchang Xing, Chunyang Chen et al.FSE 2020 · 144 citations
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