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Nerfstudio: A modular framework for neural radiance field development
Neural Radiance Fields (NeRF) are a rapidly growing area of research with wide-ranging
applications in computer vision, graphics, robotics, and more. In order to streamline the …
applications in computer vision, graphics, robotics, and more. In order to streamline the …
2d gaussian splatting for geometrically accurate radiance fields
3D Gaussian Splatting (3DGS) has recently revolutionized radiance field reconstruction,
achieving high quality novel view synthesis and fast rendering speed. However, 3DGS fails …
achieving high quality novel view synthesis and fast rendering speed. However, 3DGS fails …
Nerfacc: Efficient sampling accelerates nerfs
Abstract Optimizing and rendering Neural Radiance Fields is computationally expensive
due to the vast number of samples required by volume rendering. Recent works have …
due to the vast number of samples required by volume rendering. Recent works have …
Gaussian opacity fields: Efficient adaptive surface reconstruction in unbounded scenes
Recently, 3D Gaussian Splatting (3DGS) has demonstrated impressive novel view synthesis
results, while allowing the rendering of high-resolution images in real-time. However …
results, while allowing the rendering of high-resolution images in real-time. However …
Binary opacity grids: Capturing fine geometric detail for mesh-based view synthesis
While surface-based view synthesis algorithms are appealing due to their low computational
requirements, they often struggle to reproduce thin structures. In contrast, more expensive …
requirements, they often struggle to reproduce thin structures. In contrast, more expensive …
A critical analysis of NeRF-based 3D reconstruction
This paper presents a critical analysis of image-based 3D reconstruction using neural
radiance fields (NeRFs), with a focus on quantitative comparisons with respect to traditional …
radiance fields (NeRFs), with a focus on quantitative comparisons with respect to traditional …
A digital 4D information system on the world scale: research challenges, approaches, and preliminary results
Numerous digital media repositories have been set up during recent decades, each
containing plenty of data about historic cityscapes. In contrast, digital 3D reconstructions of …
containing plenty of data about historic cityscapes. In contrast, digital 3D reconstructions of …
Deep-learning-based 3-d surface reconstruction—a survey
In the last decade, deep learning (DL) has significantly impacted industry and science.
Initially largely motivated by computer vision tasks in 2-D imagery, the focus has shifted …
Initially largely motivated by computer vision tasks in 2-D imagery, the focus has shifted …
Dynamic mesh-aware radiance fields
Embedding polygonal mesh assets within photorealistic Neural Radience Fields (NeRF)
volumes, such that they can be rendered and their dynamics simulated in a physically …
volumes, such that they can be rendered and their dynamics simulated in a physically …
Debsdf: Delving into the details and bias of neural indoor scene reconstruction
In recent years, the neural implicit surface has emerged as a powerful representation for
multi-view surface reconstruction due to its simplicity and State-of-the-Art performance …
multi-view surface reconstruction due to its simplicity and State-of-the-Art performance …