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Adaptive resource allocation architecture a

机译:自适应资源分配架构

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Abstract: Recent research has demonstrated the benefits of a multiple hypothesis, multiple model sonar line tracking solution, achieved at significant computational cost. We have developed an adaptive architecture that trades computational resources for algorithm complexity based on environmental conditions. A Fuzzy Logic Rule-Based approach is applied to adaptively assign algorithmic resources to meet system requirements. The resources allocated by the Fuzzy Logic algorithm include (1) the number of hypotheses permitted (yielding multi-hypothesis and single-hypothesis modes), (2) the number of signal models to use (yielding an interacting multiple model capability), (3) a new track likelihood for hypothesis generation, (4) track attribute evaluator activation (for signal to noise ratio, frequency bandwidth, and others), and (5) adaptive cluster threshold control. Algorithm allocation is driven by a comparison of current throughput rates to a desired real time rate. The Fuzzy Logic Controlled (FLC) line tracker, a single hypothesis line tracker, and a multiple hypothesis line tracker are compared on real sonar data. System resource usage results demonstrate the utility of the FLC line tracker.!6
机译:摘要:最近的研究表明,以大量计算成本实现的多假设,多模型声纳线跟踪解决方案的好处。我们已经开发了一种自适应体系结构,可以根据环境条件为算法复杂性交换计算资源。应用基于模糊逻辑规则的方法来自适应分配算法资源,以满足系统需求。模糊逻辑算法分配的资源包括(1)允许的假设数量(产生多假设和单假设模式),(2)要使用的信号模型的数量(产生相互作用的多模型能力),(3 )用于生成假设的新轨道可能性;(4)轨道属性评估器激活(针对信噪比,频率带宽等),以及(5)自适应集群阈值控制。通过将当前吞吐率与所需实时率进行比较来驱动算法分配。在真实声纳数据上比较了模糊逻辑控制(FLC)线跟踪器,单个假设线跟踪器和多个假设线跟踪器。系统资源使用情况结果证明了FLC线路跟踪器的实用性。!6

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