Compressive light transport sensing

Author:

Peers Pieter1,Mahajan Dhruv K.2,Lamond Bruce1,Ghosh Abhijeet1,Matusik Wojciech3,Ramamoorthi Ravi4,Debevec Paul1

Affiliation:

1. Institute for Creative Technologies, University of Southern California, Marina del Ray, CA

2. Columbia University, NY, NY

3. Adobe Inc., Newton, MA

4. University of California, Berkeley, CA

Abstract

In this article we propose a new framework for capturing light transport data of a real scene, based on the recently developed theory of compressive sensing. Compressive sensing offers a solid mathematical framework to infer a sparse signal from a limited number of nonadaptive measurements. Besides introducing compressive sensing for fast acquisition of light transport to computer graphics, we develop several innovations that address specific challenges for image-based relighting, and which may have broader implications. We develop a novel hierarchical decoding algorithm that improves reconstruction quality by exploiting interpixel coherency relations. Additionally, we design new nonadaptive illumination patterns that minimize measurement noise and further improve reconstruction quality. We illustrate our framework by capturing detailed high-resolution reflectance fields for image-based relighting.

Funder

Office of Naval Research

Division of Computing and Communication Foundations

Publisher

Association for Computing Machinery (ACM)

Subject

Computer Graphics and Computer-Aided Design

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