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首页> 外文期刊>Applied Intelligence: The International Journal of Artificial Intelligence, Neural Networks, and Complex Problem-Solving Technologies >Evolutionary algorithms with user's preferences for solving hybrid interval multi-objective optimization problems
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Evolutionary algorithms with user's preferences for solving hybrid interval multi-objective optimization problems

机译:具有用户偏好的演化算法,用于求解混合区间多目标优化问题

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摘要

Hybrid interval multi-objective optimization problems are common in real-world applications. These problems involve both explicit and implicit objectives, and the values of these objectives are intervals. Few previous methods are suitable for them. An evolutionary algorithm with a large population and a user's interval preferences was presented to effectively solve the problems in this paper. In the proposed algorithm, a similarity-based strategy was employed to estimate the interval values of implicit objectives of evolutionary individuals that the user had not evaluated in order to alleviate user fatigue; the user's preferences to different objectives were expressed precisely as intervals by solving an auxiliary optimization problem; a sorting scheme based on the user's preferences was proposed to guide the population evolving toward the user's preferred regions. We applied the proposed method to an interior layout problem, which is a typical optimization problem with both interval parameters in the explicit objective and interval value of the implicit objective. The proposed algorithm was compared with four other optimization algorithms on the interior layout problem. Experimental results validated its effectiveness and superiority over the compared algorithms in terms of solution quality and the number of user's evaluations.
机译:混合区间多目标优化问题在实际应用中很常见。这些问题涉及显式和隐式目标,这些目标的值是间隔。很少有以前的方法适合他们。为了有效解决该问题,提出了一种具有大种群和用户区间偏好的进化算法。该算法采用了基于相似度的策略来估计用户尚未评估的进化个体隐性目标的区间值,以减轻用户的疲劳感。通过解决辅助优化问题,将用户对不同目标的偏好精确地表达为间隔;提出了一种基于用户偏好的排序方案,以指导总体向用户的首选区域发展。我们将提出的方法应用于室内布局问题,这是一个典型的优化问题,在显式目标中使用间隔参数,在隐式目标中使用间隔值。在室内布局问题上,将该算法与其他四个优化算法进行了比较。实验结果证明了其在解决方案质量和用户评估数量方面优于比较算法的有效性和优越性。

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