使用用户选择所需的时间信息的交互式差分进化:在优化香水成分的情况下

M. Fukumoto, M. Inoue, Shimpei Koga, Jun-ichi Imai
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引用次数: 12

摘要

交互进化计算(IEC)扩展了它的应用领域。作为应用的一个例子,我们已经提出了一个IEC,通过使用交互式差分进化(IDE)来优化适合每个用户感觉的香水成分。为了制造出香味,将6种香气源混合在一起,并以香气源的强度为优化目标。主观评价采用配对比较法。为了提高IDE方法的搜索能力,本研究提出了一种利用DE向量(候选解)演化水平和配对比较中用户选择所需时间信息的新IDE。换句话说,由于两个向量之间的适应度差异较大,因此考虑选择所需的时间更短。胜利者往往有机会自我进化。所提出的方法中的这些方案有望加速寻找更好的解。在本研究中,我们基于所提出的方法构建了一个香气优化IDE系统。此外,利用IDE系统,我们进行了嗅探实验,以调查所提出方法的基本效率。创作的目标是放松的香味。实验结果表明,最后一代获得的香味评价显著优于第一代(P<;0.01)。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Interactive differential evolution using time information required for user's selection: In a case of optimizing fragrance composition
Interactive Evolutionary Computation (IEC) spreads its area of applications. As an example of the applications, we have already proposed an IEC that optimizes fragrance composition suited to each user's feelings by using Interactive Differential Evolution (IDE). To create the fragrance, six aroma sources were mixed, and the intensity of them were target of optimization. Paired comparison was employed as subjective evaluation method. To enhance searching ability of the IDE method, this study proposes a new IDE utilizing both of evolution level of DE's vector (solution candidate) and time information required in user's selection in the paired comparison. In other words, shorter time duration required in the selection is considered as there is larger difference of fitness level between two vectors. Winner vector tended to have chance to evolve itself. These schemes in the proposed method are expected to accelerate searching better solutions. In this study, we constructed an IDE system optimizing fragrances based on the proposed method. Furthermore, with the IDE system, we conducted smelling experiments for investigating the fundamental efficiency of the proposed method. Target of creation was relaxing fragrance. The experimental results showed that obtained fragrances in the last generation was evaluated better than fragrances in initial generation significantly (P<;0.01).
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