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A Novel Approach to Fuzzy Model Identification Based on Bat Algorithm

机译:一种基于BAT算法的模糊模型识别的一种新方法

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摘要

The identification of a fuzzy model is a complex and nonlinear problem. This can be formulated as a search and optimisation problem and many computing approaches are available in the literature to solve this problem. This research paper is focused on using a new nature inspired approach for fuzzy modeling based on Bat Algorithm which is derived from the behaviour of micro-bats to search for their prey. The bat algorithm approach has been implemented and validated successfully on a rapid battery charger fuzzy controller problem. Currently, the key requirement is real-time solutions to complex problems at a blazing speed. Bat algorithm evolved the optimised fuzzy model within a few seconds as compared to other approaches.
机译:模糊模型的识别是复杂和非线性问题。这可以制定为搜索和优化问题,并且在文献中可以使用许多计算方法来解决这个问题。本研究论文专注于基于基于BAT算法的基于BAT算法的新自然启发方法,这是源自微蝙蝠的行为来搜寻他们的猎物。在快速电池充电器模糊控制器问题上成功实现和验证了BAT算法方法。目前,关键要求是对燃烧速度复杂问题的实时解决方案。与其他方法相比,BAT算法在几秒钟内在几秒钟内进化了优化的模糊模型。

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