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Flight Delay Prediction Using Deep Learning and Conversational Voice-Based Agents

Authors :
Sia Gholami
Saba Khashe
Sia Gholami
Saba Khashe
Source :
American Scientific Research Journal for Engineering, Technology, and Sciences; Vol. 89 No. 1 (2022); 60-72; 2313-4402; 2313-4410
Publication Year :
2022

Abstract

Airlines are critical today for carrying people and commodities on time. Any delay in the schedule of these planes can potentially disrupt the business and trade of thousands of employees at any given time. Therefore, precise flight delay prediction is beneficial for the aviation industry and passenger travel. Recent research has focused on using artificial intelligence algorithms to predict the possibility of flight delays. Earlier prediction algorithms were designed for a specific air route or airfield. Many present flight delay prediction algorithms rely on tiny samples and are challenging to understand, allowing almost no room for machine learning implementation. This research study develops a flight delay prediction system by analyzing data from domestic flights inside the United States of America. The proposed models learn about the factors that cause flight delays and cancellations and the link between departure and arrival delays.

Details

Database :
OAIster
Journal :
American Scientific Research Journal for Engineering, Technology, and Sciences; Vol. 89 No. 1 (2022); 60-72; 2313-4402; 2313-4410
Notes :
application/pdf, English
Publication Type :
Electronic Resource
Accession number :
edsoai.on1350395460
Document Type :
Electronic Resource