Utilization of VLSI for Creating an Active Data Base of 3-D Geometric Models

J. Skyttä, T. Takala
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引用次数: 0

Abstract

Parallelism of geometric computation can be achieved by distributing the computation efforts according to essentially three different strategies, based on functional, spatial and structural division, respectively (Mantyla 1983). The conventional and already commercialized way to introduce parallel computation for viewing 3-D geometric models is employing functional parallelism as a pipeline for performing different sequential transformation phases of the 3-D viewing operation (Clark 1981). This approach limits the number of parallel activities to the number of separable functional computational modules. A second approach for parallelism is the division of the modeling space into separable volume elements, which can be processed independently using a suitable data structure like an octree(Kronlof 1985). The logical component structure of a model gives a third distribution strategy. Then each processor answers only to the computational needs of its assigned objects.
利用VLSI建立三维几何模型活动数据库
几何计算的并行性可以通过根据本质上三种不同的策略(分别基于功能、空间和结构划分)分配计算努力来实现(Mantyla 1983)。将并行计算引入三维几何模型的传统和已经商业化的方法是采用函数并行作为执行三维观察操作的不同顺序转换阶段的管道(Clark 1981)。这种方法将并行活动的数量限制在可分离的功能计算模块的数量上。并行性的第二种方法是将建模空间划分为可分离的体元,这些体元可以使用合适的数据结构(如八叉树)独立处理(Kronlof 1985)。模型的逻辑组件结构提供了第三种分布策略。然后,每个处理器只响应其分配对象的计算需求。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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