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Efficient Graphics Representation with Differentiable Indirection

12 September 2023
Sayantan Datta
Carl S. Marshall
Derek Nowrouzezahrai
Zhao Dong
Zhengqin Li
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Abstract

We introduce differentiable indirection -- a novel learned primitive that employs differentiable multi-scale lookup tables as an effective substitute for traditional compute and data operations across the graphics pipeline. We demonstrate its flexibility on a number of graphics tasks, i.e., geometric and image representation, texture mapping, shading, and radiance field representation. In all cases, differentiable indirection seamlessly integrates into existing architectures, trains rapidly, and yields both versatile and efficient results.

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