SVM与感知机算法在工作方案分类中的比较分析

Jaka Tirta Samudra, Rika Rosnelly, Z. Situmorang
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引用次数: 0

摘要

政府机构必须动员每年进行的出版物的各个方面,必须对每个接收出版物的设备进行核算和执行,例如援助村,利用现有的apbd资金,最大限度地设计工作方案,使其能够得到最佳和有效的执行。从工作计划实施的各个方面做到最好,当然,设计年度工作计划也有重要的几点,无一例外。数据挖掘本身可以帮助人口、计划生育、妇女赋权和儿童保护部门从实施之前开始分析每个工作方案设计,以查看过去以分类形式分组的数据的各个方面。本研究的目的是建立一个添加了sigmoid激活函数的分类模型,使用svm和感知器对算法的准确率进行比较,以获得最佳工作方案设计。将分类结果用于对最佳P2KBP3A工作程序数据集进行分类得到最佳值,可以看到平均准确率值为87.5%,f1值为82.2%,精度值为80.2%,召回率值为87.5%,从而使研究结果的最终结果获得了较好的准确率值。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Comparative Analysis of SVM and Perceptron Algorithms in Classification of Work Programs
Government agencies are required to mobilize every aspect of publication which is carried out every year which must be accounted for and also carried out for each device that receives it such as assisted villages by utilizing available apbd funds in maximizing work programs designed so that they can be implemented optimally and effectively. by getting the best from all aspects of the work program implementation, of course there are important points in designing an annual work program without exception. data mining itself can help the department of population, family planning, women's empowerment and child protection in analyzing each work program design from before it is implemented onwards to look at various aspects of past data whose grouping is in the form of classification. The purpose of this study is to build a classification model with the addition of a sigmoid activation function that uses svm and perceptron to obtain a comparison value for the accuracy of the algorithm used to obtain the best working program design. The classification results are used to get the best value for classifying the best P2KBP3A work program dataset where it can be seen that the average accuracy value is 87.5%, the f1 value is 82.2%, the precision value is 80.2%, and the recall value is 87.5% so that the final result of the research results obtained a good accuracy value.
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