基于局域网的GIS无线网络覆盖优化

Israa Salman Atiyah, G. Cansever, A. S. Ahmed
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引用次数: 0

摘要

机器学习是人工智能的一个分支,其基础是系统可以在最少的人为干预下学习识别模式并做出决策。在本文中,将使用演示学习,在无人机原型中使用神经网络来在受控环境中执行轨迹。为了加速训练收敛过程,提出了一种新的训练数据选择方法,即基于优先级而不是随机从经验池中选择数据。提出了一种双无人机橄榄编队空战自主机动策略,利用无人机的避障、编队和对抗等能力,最大限度地提高攻击效率。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
LAN Based GIS Optimization for Coverage in Wireless Networks
Machine learning is a branch of artificial intelligence based on the idea that systems can learn to identify patterns and make decisions with a minimum of human intervention. In this Paper, demonstration learning will be used, using neural networks in a prototype of a drone built to perform trajectories in controlled environments. To accelerate the training convergence process, a new training data selection approach has been introduced, which picks data from the experience pool based on priority instead of randomness. An autonomous maneuver strategy for dual-UAV olive formation air warfare is provided, which makes use of UAV capabilities such as obstacle avoidance, formation, and confrontation to maximize the effectiveness of the attack.
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