The Sales Forecasting and Development of a Statistical Website for P.E. Paper Co., Ltd.
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| Collection | RMUTK Research Repository (RMUTK IR) วารสารวิชาการ — e-Journal Articles |
| ID RMUTK Digital | RMUTK000112 |
| Title | The Sales Forecasting and Development of a Statistical Website for P.E. Paper Co., Ltd. |
| Alternative title | The Sales Forecasting and Development of a Statistical Website for P.E. Paper Co., Ltd. |
| Authors | ผศ.ดร.นิกร กรรณิกากลาง Corresponding อ.รุ่งทิพย์ โคบาล ผู้แต่งหลัก ผศ.สุภษี ดวงใส |
| Faculty | คณะบริหารธุรกิจ |
| Journal Title | International Journal of Social Sciences and Business Research (IJSSBR) |
| ISSN | 3088-3717 |
| Volume / Issue / Pages | Vol.1 | No.1 | pp.30-42 |
| Published | 2025-02-18 |
| Year | 2568 |
| Level | ระดับนานาชาติ (อื่นๆ) |
| DOI | https://so20.tci-thaijo.org/index.php/ijssbr/article/view/572 |
| Funding Source | มทร.กรุงเทพ |
| Abstract | This research presents a comprehensive approach to developing and implementing a sales forecasting system alongside a statistical website for P.E. Paper Co., Ltd. The study has three main objectives: first, to generate accurate forecasts of monthly and yearly sales; second, to identify product co-purchase patterns using association rule mining; and third, to develop a dedicated online platform for displaying the forecasting and analysis results. Adopting the Cross-Industry Standard Process for Data Mining (CRISP-DM), the methodology involves time series analysis for sales forecasting and the Apriori algorithm to uncover items that customers frequently purchase together. Drawing from a dataset of 5,622 sales records collected between 2017 and 2021, the study projects total sales of 21,402,008 THB in 2022 and 21,402,192 THB in 2023, indicating a consistent upward trend. Additionally, the most significant product association demonstrates that customers who buy brown paper (rolls) commonly also purchase perforated paper (rolls), reflecting a 60.54% confidence level. Expert assessments of the system revealed high efficiency (mean = 3.96, SD = 0.84) in both data analysis and website design. Furthermore, a user-satisfaction survey involving 30 participants rated the platform at the highest satisfaction level (mean = 4.52, SD = 0.50). The findings underscore the feasibility and advantages of an integrated forecasting and analytics website in optimizing inventory management and strategic decision-making. |
| Abstract (EN) | This research presents a comprehensive approach to developing and implementing a sales forecasting system alongside a statistical website for P.E. Paper Co., Ltd. The study has three main objectives: first, to generate accurate forecasts of monthly and yearly sales; second, to identify product co-purchase patterns using association rule mining; and third, to develop a dedicated online platform for displaying the forecasting and analysis results. Adopting the Cross-Industry Standard Process for Data Mining (CRISP-DM), the methodology involves time series analysis for sales forecasting and the Apriori algorithm to uncover items that customers frequently purchase together. Drawing from a dataset of 5,622 sales records collected between 2017 and 2021, the study projects total sales of 21,402,008 THB in 2022 and 21,402,192 THB in 2023, indicating a consistent upward trend. Additionally, the most significant product association demonstrates that customers who buy brown paper (rolls) commonly also purchase perforated paper (rolls), reflecting a 60.54% confidence level. Expert assessments of the system revealed high efficiency (mean = 3.96, SD = 0.84) in both data analysis and website design. Furthermore, a user-satisfaction survey involving 30 participants rated the platform at the highest satisfaction level (mean = 4.52, SD = 0.50). The findings underscore the feasibility and advantages of an integrated forecasting and analytics website in optimizing inventory management and strategic decision-making. |
| Keywords (TH) | Sales ForecastingAssociation RulesTime Series AnalysisWebsite DevelopmentCRISP-DM |
| Keywords (EN) | Sales ForecastingAssociation RulesTime Series AnalysisWebsite DevelopmentCRISP-DM |
| Access Level | Open Access (เปิดสาธารณะ) |
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https://so20.tci-thaijo.org/index.php/ijssbr/article/view/572
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