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A HIGH PERFORMANCE FUZZY LOGIC ARCHITECTURE FOR UAV DECISION MAKING

机译:用于无人机决策的高性能模糊逻辑架构

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The majority of Unmanned Aerial Vehicles (UAVs) in operation today are not truly autonomous, but are instead reliant on a remote human pilot. A high degree of autonomy can provide many advantages in terms of cost, operational resources and safety. However, one of the challenges involved in achieving autonomy is that of replicating the reasoning and decision making capabilities of a human pilot. One candidate method for providing this decision making capability is fuzzy logic. In this role, the fuzzy system must satisfy real-time constraints, process large quantities of data and relate to large knowledge bases. Consequently, there is a need for a generic, high performance fuzzy computation platform for UAV applications. Based on Lees' [1] original work, a high performance fuzzy processing architecture, implemented in Field Programmable Gate Arrays (FPGAs), has been developed and is shown to outclass the performance of existing fuzzy processors.
机译:今天的经营中的大多数无人驾驶航空公司(无人机)并非真正自主,而是依赖于远程人类飞行员。高度的自主权可以在成本,运营资源和安全方面提供许多优点。然而,实现自治的挑战之一是复制人类飞行员的推理和决策能力。提供该决策能力的一种候选方法是模糊逻辑。在此作用中,模糊系统必须满足实时约束,处理大量数据并涉及大知识库。因此,需要一种用于UAV应用程序的通用,高性能模糊计算平台。基于LEES'[1]原始工作,已经开发出在现场可编程门阵列(FPGA)中实现的高性能模糊处理架构,并被示出了超出现有模糊处理器的性能。

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