保护国家边界的人工智能(AI)模型开发框架,重点分析行为模式

Amirali Kerimovs
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摘要

本研究探讨了人工智能(AI)模型的开发和实施,该模型旨在预测非法越境地点,从而提高国家边境安全措施的有效性。通过整合和分析各种数据源,包括卫星图像、社交媒体和环境因素,该人工智能模型旨在识别潜在的移民模式和非法越境的高风险区域。这项研究强调了该模型提供实时风险评估的能力,为边境安全提供了一种新方法,在效率和成本效益方面都超越了传统方法。该模型的适应性、持续学习能力和用户友好界面确保了其在应对当代边境安全挑战方面的实用性。本文提出了一种利用技术改善移民服务、政府组织和国际机构之间协调的解决方案,为当前有关人工智能在国家安全领域应用的讨论做出了贡献。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Artificial Intelligence (AI) Model Development Framework for the Protection of State Borders, with a Focus on Analyzing Behavioral Patterns
This study explores the development and implementation of an artificial intelligence (AI) model designed to predict illegal border crossing locations, thereby enhancing the effectiveness of national border security measures. By integrating and analyzing diverse data sources, -including satellite imagery, social media, and environmental factors, -this AI model aims to identify potential migration patterns and high-risk areas for illegal crossing. This research highlights the model's ability to provide real-time risk assessments, offering a novel approach to border security that surpasses traditional methods in terms of both efficiency and cost-effectiveness. The model's adaptability, continuous learning capabilities, and user-friendly interfaces ensure its relevance in addressing contemporary border-security challenges. This article contributes to the ongoing discourse on the application of AI in national security by proposing a solution that leverages technology for improved coordination among immigration services, government organizations, and international bodies.
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