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Efficient Cloud Pipelines for Neural Radiance Fields

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PubDate: Nov 2023

Teams: Univ of Victoria;Northeastern University

Writers: Derek Jacoby, Donglin Xu, Weder Ribas, Minyi Xu, Ting Liu, Vishwanath Jayaraman, Mengdi Wei, Emma De Blois, Yvonne Coady

PDF: Efficient Cloud Pipelines for Neural Radiance Fields

Abstract

Since their introduction in 2020, Neural Radiance Fields (NeRFs) have taken the computer vision community by storm. They provide a multi-view representation of a scene or object that is ideal for eXtended Reality (XR) applications and for creative endeavors such as virtual production, as well as change detection operations in geospatial analytics. The computational cost of these generative AI models is quite high, however, and the construction of cloud pipelines to generate NeRFs is neccesary to realize their potential in client applications. In this paper, we present pipelines on a high performance academic computing cluster and compare it with a pipeline implemented on Microsoft Azure. Along the way, we describe some uses of NeRFs in enabling novel user interaction scenarios.

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