Artificial Intelligence and Metaheuristic-Based Location-Based Advertising

Author:

Rohilla Vinita12ORCID,Chakraborty Sudeshna3,Kaur Mandeep1

Affiliation:

1. Department of Computer Science and Engineering, School of Engineering and Technology, Sharda University, Greater Noida, Uttar Pradesh 201306, India

2. Department of Computer Science and Engineering, Maharaja Surajmal Institute of Technology, Janakpuri, New Delhi 110058, India

3. Department of Computer Science and Engineering, Lloyd Institute of Engineering and Technology, Greater Noida, Uttar Pradesh, India

Abstract

Location-based services (LBS) are necessary for obtaining the important details since the user needs vary based on the location. Location-based advertising (LBA) are utilized for abandoning the user location and to offer assistance by using the obtained information. Therefore, an efficient machine learning and metaheuristic-based model referred as GANM is designed for LBS. Initially, the potential location information is evaluated utilizing the geographic information system (GIS). Thereafter, significant features are computed using the location data. Obtained features are then segmented to improve the process of LBS. Adaptive network-based fuzzy inference system (ANFIS) is then utilized to efficiently classify the user data. Finally, the optimization of classified documents is achieved using the nondominated sorting genetic algorithm-III (NSGA-III). Extensive experiments are performed to validate GANM for LBS. Comparative analyses reveal that GANM outperforms the competitive LBS models in terms of F-score, accuracy, sensitivity, specificity, and area under curve by 2.2734%, 2.3981%, 2.3947%, 2.4271%, and 2.1638%, respectively.

Publisher

Hindawi Limited

Subject

Computer Science Applications,Software

Cited by 2 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. A Survey on QoS in Flying Ad Hoc Network based on Fuzzy Inference Based Routing Protocol;2024 International Conference on Automation and Computation (AUTOCOM);2024-03-14

2. A Comprehensive Examination of Digital Privacy in Crowdsourcing Applications;2024 International Conference on Automation and Computation (AUTOCOM);2024-03-14

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