汽车经济学:利用机器学习预测二手车市场的价格

Kandugula Sadhvik, K. Dhanush, Seelaboyina Jayaditya, B. Ravinder Reddy
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引用次数: 0

摘要

一辆新车的购买价格和一些额外的费用是由制造这辆车的公司决定的。由于新车价格上涨和人们不愿购买,全球二手车销量正在增长。这种策略是成功的,因为卖方通常会冲动地设定价格,而买方通常不会意识到所有的功能和汽车的市场价值。根据研究,计算出二手车的公平市场价值既困难又重要。因此,有必要建立一种精确的估算二手车成本的方法。在这种情况下,机器学习预测方法可能会有所帮助。该模型在使用之前必须使用随机森林和决策树等技术在大量数据集上进行训练。我们的主要目标是开发一个模型,根据客户提供的信息,可以准确可靠地预测二手车的销售价格。在这个项目中,我们的团队设计了一个令人惊叹的用户界面(UI),它可以询问客户的评论并提供价格估计。数据库存储用户输入和汽车的预测成本。
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Car-Economics: Forecasting Prices in the Pre-Owned Market Using Machine Learning
The purchase price of a new car and a few additional costs are determined by the company that makes the vehicle. Used vehicle sales are increasing globally as a result of rising new car prices and people’s unwillingness to afford them. This strategy is successful since the vendor often sets the price impulsively and the buyer normally isn’t aware of all the features and the car’s market value. According to research, figuring out a used car’s fair market value is both difficult and important. Consequently, it is necessary to create a precise method for estimating used automobile cost. In this case, machine learning prediction approaches could be helpful. The model has to be trained on the massive dataset using techniques like random forest and decision tree before it can be used. Our primary objective is to develop a model that, given the information provided by the client, can accurately and dependably anticipate the selling price of a used car. In this project, our team designed a stunning User Interface (UI) that asks customers for comments and provides pricing estimates. The database stores both the user inputs and the predicted cost of the automobile.
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