利用线性回归设计基于网络的房产销售价值预测系统

Jordi Septriaznu
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引用次数: 0

摘要

本研究的目的是根据房屋的物理特征和位置,更清晰、更准确地描述 Ziva Graha 地产的房产价值。研究使用 PHP 进行数据处理和建模。所使用的数据包括土地面积、建筑面积、建造年份、楼层数、卧室数、浴室数、车库数和售价等信息。使用 PHP 软件对这些数据进行了探索和处理,以评估线性回归方法在预测房屋价值方面的功效。研究结果表明,土地面积、建筑面积和卧室数量等变量对 Ziva Graha 房产公司的房屋售价有重大影响。其他变量,如楼层数、浴室数、与市中心的距离和道路宽度,影响较小。预计本研究的结果可为潜在的买家和卖家提供有用的指导,帮助他们根据房屋的物理特征确定公平、实际的价格。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Rancang Bangun Sistem Prediksi Nilai Jual Properti Berbasis Web Menggunakan Regresi Linear
This research was conducted to provide a clearer and more accurate depiction of the property value at Ziva Graha Property based on the physical characteristics and location of the houses. The study utilized PHP for data processing and modeling. The data employed included information on land area, building area, year of construction, number of floors, number of bedrooms, number of bathrooms, number of garages, and selling prices. This data was explored and processed using PHP software to assess the efficacy of linear regression methods in predicting house values. The research findings indicate that variables such as land area, building area, and number of bedrooms significantly influence the house's selling price at Ziva Graha Property. Other variables, such as the number of floors, number of bathrooms, distance to the city center, and road width, have a smaller impact. It is expected that the results of this research can provide a useful guide for prospective buyers and sellers in determining fair and realistic prices based on the physical characteristics of the houses.
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