Optimizing Geometry Compression Using Quantum Annealing

Sebastian Feld, Markus Friedrich, Claudia Linnhoff-Popien
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引用次数: 6

Abstract

The compression of geometry data is an important aspect of bandwidth-efficient data transfer for distributed 3d computer vision applications. We propose a quantum-enabled lossy 3d point cloud compression pipeline based on the constructive solid geometry (CSG) model representation. Key parts of the pipeline are mapped to NP-complete problems for which an efficient Ising formulation suitable for the execution on a Quantum Annealer exists. We describe existing Ising formulations for the maximum clique search problem and the smallest exact cover problem, both of which are important building blocks of the proposed compression pipeline. Additionally, we discuss the properties of the overall pipeline regarding result optimality and described Ising formulations.
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利用量子退火优化几何压缩
几何数据的压缩是分布式三维计算机视觉应用中带宽高效数据传输的一个重要方面。我们提出了一种基于构造立体几何(CSG)模型表示的量子支持有损三维点云压缩管道。管道的关键部分被映射到np完全问题,其中存在一个适合在量子退火机上执行的有效的Ising公式。我们描述了现有的最大团搜索问题和最小精确覆盖问题的Ising公式,这两个问题都是所提出的压缩管道的重要组成部分。此外,我们讨论了有关结果最优性和描述的Ising公式的整个管道的性质。
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