Rideshare Transportation Fare Prediction using Deep Neural Networks

Namrata Mohan Bagal, Madhuri Dinesh Gabhane, C. Mahamuni
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Abstract

The taxi service industry has been growing recently, and in the coming years, a strong increase is predicted. So many companies have developed to respond to this increased demand for cab rides. To maintain transparency and avoid unfair practices, the main goal is to predict travel costs before booking a taxi reservation. Our system is made to enable users to calculate the cost of a taxi trip by using a variety of dynamic factors, including the weather, the availability of cabs, cab size, and the distance between two sites. Here our system uses many algorithms to predict the fare amount but in all of them, the DNN algorithm works better than other algorithms.
基于深度神经网络的拼车交通票价预测
出租车服务行业最近一直在增长,预计在未来几年将有强劲的增长。因此,许多公司已经发展起来,以应对日益增长的出租车出行需求。为了保持透明度和避免不公平的做法,主要目标是在预订出租车之前预测出行成本。我们的系统使用户能够通过使用各种动态因素来计算出租车旅行的成本,包括天气、出租车的可用性、出租车的大小和两个站点之间的距离。在这里,我们的系统使用了许多算法来预测车费金额,但在所有这些算法中,DNN算法都比其他算法效果更好。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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