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Parallel reconfigurable computing and its application to hidden Markov model

机译:并行可重新配置计算及其在隐藏的Markov模型中的应用

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Parallel processing techniques are increasingly found in reconfigurable computing, especially in digital signal processing (DSP) applications. In this paper, we design a parallel reconfigurable computing (PRC) architecture which consists of multiple dynamically reconfigurable computing units. The hidden Markov model (HMM) algorithm is mapped onto the PRC architecture. First, we construct a directed acyclic graph (DAG) to represent the HMM algorithms. A novel parallel partition approach is then proposed to map the HMM DAG onto the multiple DRC units in a PRC system. This partitioning algorithm is capable of design optimization of parallel processing reconfigurable systems for a given number of processing elements in different HHM states.
机译:在可重新配置的计算中越来越多地发现并行处理技术,尤其是在数字信号处理(DSP)应用中。在本文中,我们设计了一种并行可重构计算(PRC)架构,该架构包括多个动态可重新配置的计算单元。隐藏的马尔可夫模型(HMM)算法映射到PRC架构上。首先,我们构建一个定向的非循环图(DAG)来表示HMM算法。然后提出一种新颖的并行分区方法来将HMM DAG映射到PRC系统中的多个DRC单元上。该分区算法能够设计用于不同HHM状态的给定数量的处理元件的并行处理可重新配置系统的优化。

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