International flight fare prediction and analysis of factors impacting flight fare

Tianyun Deng
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Abstract

In the rapidly evolving landscape of global travel, understanding international flight prices has become pivotal for both travellers and airlines. This paper delves into the intricate web of factors influencing flight prices, utilizing a dataset from Ease My Trip spanning 50 days. Employing rigorous data processing techniques, including handling missing values and label encoding, the study explores correlations between various parameters such as cabin class, flight numbers, airlines, and duration, shedding light on pricing dynamics. The research employs linear regression, decision trees, and random forest models for prediction. The results showcase the significance of class, flight numbers, and duration on prices. Particularly, higher cabin classes correlate strongly with increased prices, offering vital insights for airlines to optimize revenue. The models predictive accuracies are commendable, with the random forest model standing out, explaining 98.9% of the variance. This study not only illuminates the complex interplay of factors steering international flight prices but also provides airlines with robust pricing strategies. The findings empower travellers to make informed decisions, promising a harmonious future for the aviation industry in an ever-changing global market.
国际航班票价预测及影响因素分析
在全球旅游业迅速发展的今天,了解国际机票价格对旅客和航空公司来说都至关重要。本文利用 "轻松我的旅行 "50 天的数据集,深入探讨了影响航班价格的各种错综复杂的因素。研究采用了严格的数据处理技术,包括处理缺失值和标签编码,探讨了机舱等级、航班号、航空公司和持续时间等各种参数之间的相关性,揭示了定价动态。研究采用线性回归、决策树和随机森林模型进行预测。研究结果表明,舱位等级、航班数量和持续时间对价格具有重要影响。特别是,舱位等级越高,价格越高,这为航空公司优化收入提供了重要启示。这些模型的预测准确性值得称赞,其中随机森林模型表现突出,解释了 98.9% 的方差。这项研究不仅揭示了影响国际航班价格的各种因素之间复杂的相互作用,还为航空公司提供了强有力的定价策略。研究结果使旅客能够做出明智的决定,为航空业在瞬息万变的全球市场中创造和谐的未来带来了希望。
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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