Large-Scale Indoor Visual–Geometric Multimodal Dataset and Benchmark for Novel View Synthesis

Author:

Cao Junming12ORCID,Zhao Xiting3ORCID,Schwertfeger Sören3ORCID

Affiliation:

1. Shanghai Advanced Research Institute, Chinese Academy of Sciences, Shanghai 201210, China

2. University of Chinese Academy of Sciences, Beijing 100049, China

3. Key Laboratory of Intelligent Perception and Human-Machine Collaboration, ShanghaiTech University, Ministry of Education, Shanghai 201210, China

Abstract

The accurate reconstruction of indoor environments is crucial for applications in augmented reality, virtual reality, and robotics. However, existing indoor datasets are often limited in scale, lack ground truth point clouds, and provide insufficient viewpoints, which impedes the development of robust novel view synthesis (NVS) techniques. To address these limitations, we introduce a new large-scale indoor dataset that features diverse and challenging scenes, including basements and long corridors. This dataset offers panoramic image sequences for comprehensive coverage, high-resolution point clouds, meshes, and textures as ground truth, and a novel benchmark specifically designed to evaluate NVS algorithms in complex indoor environments. Our dataset and benchmark aim to advance indoor scene reconstruction and facilitate the creation of more effective NVS solutions for real-world applications.

Funder

Science and Technology Commission of Shanghai Municipality

Shanghai Frontiers Science Center of Human-centered Artificial Intelligence

core facility Platform of Computer Science and Communication, SIST, ShanghaiTech University

Publisher

MDPI AG

Reference50 articles.

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