基于多层感知器神经网络的盐水消遣性愤怒动机识别

Y. Chi
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引用次数: 2

摘要

本研究的目的是检查咸水休闲垂钓者对关于钓鱼旅行重要性的15个陈述的回答,并使用从2013年全国咸水垂钓者调查收集的数据库中提取的数据,对个人休闲垂钓动机表现出共同反应模式的群体进行分类。利用因子分析,这15个陈述被简化为五个维度,分别是捕获、信息、站点偏好、社会和管理。基于k-means聚类分析的实证结果确定了三个不同的咸水休闲垂钓者群体,命名为捕获和社会,地点选择和钓鱼相关群体。判别分析结果表明,聚类均值差异显著。利用多层感知器神经网络模型作为预测模型,根据休闲垂钓动机对咸水垂钓者进行分类。从建筑的角度来看,它展示了一个15-9-3神经网络结构。本研究可能为了解存在何种类型的咸水娱乐愤怒群体提供信息,并在数据集中识别未知群体,以用于咸水娱乐钓鱼的规划和管理目的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Recognizing Saltwater Recreational Angers’ Motivations Using Multilayer Perceptron Neural Network
The purpose of this study was to examine saltwater recreational anglers’ answers to the fifteen statements regarding the importance of fishing trips, and to classify groups exhibiting common patterns of responses from individuals’ recreational fishing motivations using the data extracted from the database collected from the 2013 National Saltwater Angler Survey. Using the factor analysis, the fifteen statements were reduced into five dimensions, named catch, information, site preferences, social, and management. Empirical results based on the k-means clustering analysis identified three different saltwater recreational angler groups, named catch and social, site choice, and fishing related groups. Results of the discriminant analysis indicated that cluster means were significantly different. The multilayer perceptron neural network model was utilized as a predictive model in deciding the classification of saltwater anglers based on recreational fishing motivations. From an architectural perspective, it showed a 15-9-3 neural network construction. This study may provide insight into the information about what types of saltwater recreational anger groups exist and identifying unknown groups in the data set for saltwater recreational fishing planning and management purposes.
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