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Article | Open Access

A Virtual Probe Deployment Method Based on User Behavioral Feature Analysis

Bing ZhangWenqi Shi( )
Key Laboratory of Cyberspace Situation Awareness of Henan Province, Zhengzhou, 450001, China
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Abstract

To address the challenge of low survival rates and limited data collection efficiency in current virtual probe deployments, which results from anomaly detection mechanisms in location-based service (LBS) applications, this paper proposes a novel virtual probe deployment method based on user behavioral feature analysis. The core idea is to circumvent LBS anomaly detection by mimicking real-user behavior patterns. First, we design an automated data extraction algorithm that recognizes graphical user interface (GUI) elements to collect spatio-temporal behavior data. Then, by analyzing the automatically collected user data, we identify normal users’ spatio-temporal patterns and extract their features such as high-activity time windows and spatial clustering characteristics. Subsequently, an anti-detection scheduling strategy is developed, integrating spatial clustering optimization, load-balanced allocation, and time window control to generate probe scheduling schemes. Additionally, a self-correction mechanism based on an exponential backoff strategy is implemented to rectify anomalous behaviors and maintain system stability. Experiments in real-world environments demonstrate that the proposed method significantly outperforms baseline methods in terms of both probe ban rate and task completion rate, while maintaining high time efficiency. This study provides a more reliable and clandestine solution for geosocial data collection and lays the foundation for building more robust virtual probe systems.

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Computers, Materials & Continua
Pages 1-19

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Cite this article:
Zhang B, Shi W. A Virtual Probe Deployment Method Based on User Behavioral Feature Analysis. Computers, Materials & Continua, 2026, 86(2): 1-19. https://doi.org/10.32604/cmc.2025.067470

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Received: 05 May 2025
Accepted: 09 October 2025
Published: 09 December 2025
© The Author 2025.

This work is licensed under a Creative Commons Attribution 4.0 International License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.