Crosspoint Arithmetic Processor architecture for wafer scale integration

J. T. Arcos, B. Evans, S. Kung
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Abstract

The crosspoint (or crossbar) switch allows direct connection between arbitrary pairs of processors, minimizing the communication time overhead, but is considered impractical for large numbers of processors because the number of required connections is proportional to the square of the number of processors. However, crosspoint switches are very useful for small configurations (tens vs. hundreds of processors). In this paper, the authors explore the use of a crosspoint switch as the backbone of a general parallel arithmetic processor. This approach is appealing because it permits a compact, simple and easily producible chip set that could perform a variety of signal processing functions at high speed. The design can also provide the reconfigurability critical for improving the fault tolerance of the architecture. The basic configuration of the Crosspoint Arithmetic Processor (CAP) system consists of three principal components: a 32*32 crosspoint switch, an array of 32 computational nodes (CN), and a system controller.<>
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面向晶圆级集成的交叉点算法处理器架构
交叉点(或交叉条)开关允许在任意对处理器之间直接连接,从而最大限度地减少通信时间开销,但对于大量处理器来说被认为是不切实际的,因为所需连接的数量与处理器数量的平方成正比。但是,交叉点开关对于小型配置(数十个处理器或数百个处理器)非常有用。在本文中,作者探讨了使用交叉点开关作为通用并行算术处理器的骨干。这种方法很有吸引力,因为它允许紧凑、简单和易于生产的芯片组,可以在高速下执行各种信号处理功能。该设计还可以提供可重构性,这对提高体系结构的容错性至关重要。交叉点算术处理器(CAP)系统的基本配置由三个主要部件组成:一个32*32的交叉点交换机、一个32个计算节点(CN)阵列和一个系统控制器。
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