Nur Misbahul Arfiana, Evawati Alisah, Dewi Ismiarti
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引用次数: 2

摘要

目前最发达的预测方法是时间序列,它采用定量的方法,以过去的数据为参考,对未来进行预测。模糊时间序列是将时间序列数据应用模糊方法进行预测的一种解决方案。本研究使用模糊时间序列对印度尼西亚共和国雇员合作社(KPRI) Selorejo区,Blitar Regency在2015-2021年的销售数据进行了应用。本文描述了利用高阶模糊时间序列(FTS)预测合作销售结果的问题。该方法利用数学规则对FTS方法进行改进,并应用于合作销售结果预测过程的各个阶段。采用最佳均方误差(MSE)、平均绝对百分比误差(MAPE)和平均绝对误差(MAE)精度值对高阶模糊时间序列预测结果进行检验。高阶模糊时间序列由二阶傅氏变换、三阶傅氏变换和四阶傅氏变换组成。最小精度值的计算结果在四阶FTS中,即MSE为19,333,658,980,372,MAPE为11%,MAE为267,749。因此可以得出结论,四阶傅里叶变换是本研究的最佳方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Penerapan Metode Fuzzy Time Series Chen Orde Tinggi Pada Peramalan Hasil Penjualan (Studi Kasus: KPRI “Serba Guna” Kecamatan Selorejo Kabupaten Blitar)
The most developed forecasting method currently is the time series, which uses a quantitative approach with past data as a reference for future forecasting. Fuzzy time series is a solution that uses time series data by applying fuzzy methods in forecasting. This research using fuzzy time series is applied on data from the sale of the Republic of Indonesia Employee Cooperative (KPRI) Selorejo District, Blitar Regency in 2015-2021. This study describes the problem of forecasting the results of cooperative sales using the Fuzzy Time Series (FTS) which was developed with the High Order. The development of the method is done by improving the FTS method with mathematical rules and is applied to the stages of the process of forecasting the results of cooperative sales. Testing the results of the High Order Fuzzy Time Series forecasting using the best Mean Squared Error (MSE), Mean Absolute Percentage Error (MAPE) and Mean Absolute Error (MAE) accuracy values . The High Order Fuzzy Time Series consists of second order FTS, third order FTS and fourth order FTS. The results of the calculation of the smallest accuracy values are found in the fourth-order FTS, namely MSE of 19,333,658,980,372, MAPE of 11%, and MAE of 267,749. So it can be concluded that the fourth-order FTS is the best method in this study.
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