计算机与现代化 ›› 2023, Vol. 0 ›› Issue (12): 100-104.doi: 10.3969/j.issn.1006-2475.2023.12.017

• 信息系统 • 上一篇    下一篇

基于意图识别的空中群目标动态威胁评估

  

  1. (华北计算技术研究所,北京 100083)
  • 出版日期:2023-12-24 发布日期:2024-01-29
  • 作者简介:王宇航(1998—),男,北京人,硕士研究生,研究方向:人工智能,指挥控制,E-mail: 1093710033@qq.com; 董宝良(1972—),男,北京人,高级工程师,本科,研究方向:人工智能,系统综合集成,E-mail: dblap@sohu.com; 公超(1990—),男,北京人,高级工程师,博士研究生,研究方向:人工智能,E-mail: gongchaosd@126.com。

Dynamic Threat Assessment of Air Swarm Targets Based on Intent Recognition

  1. (North China Institute of Computing Technology, Beijing 100083, China)
  • Online:2023-12-24 Published:2024-01-29

摘要: 摘要:为解决传统威胁评估算法对态势要素随时间变化的忽略所导致的评估准确率下降的问题,本文提出基于意图识别的空中群目标动态威胁评估方法。本方法首先利用长短期记忆网络(Long Short-Term Memory, LSTM)进行意图预测,接着采用注意力机制(Attention)提升意图预测模型的特征学习能力,通过对输入的多维特征进行一定的加权处理,使得不同特征对结果的影响程度不一样,运用Softmax进行意图结果分类,再以级联的方式将意图预测的结果作为威胁评估的重要输入,并结合静态态势要素和当前时刻的动态态势要素利用多层感知机(MLP)进行威胁评估。通过仿真实验表明,对比传统威胁评估方法,基于意图识别的空中群目标动态威胁评估方法结果更准确。

关键词: 关键词:意图预测, 威胁评估, 神经网络, 多层感知机, 注意力机制, 长短期记忆网络

Abstract: Abstract: In order to solve the problem of the decline of evaluation accuracy caused by the ignorance of situation elements with time by traditional threat assessment algorithms, this paper proposes a dynamic threat assessment method for air swarm targets based on intent recognition. In this method, the Long Short-Term Memory (LSTM) network is first used for intention prediction, and then the attention mechanism is used to improve the feature learning ability of the intention prediction model, and the multi-dimensional features of the input are weighted to a certain extent, so that the degree of influence of different features on the results is different. Softmax is used to classify the intention results, and then the results of intention prediction are used as important inputs for threat assessment in a cascading manner. Combined with static situation elements and dynamic situation elements at the current moment, multi-layer perceptron (MLP) is used for threat assessment. Simulation experiments show that compared with the traditional threat assessment method, the dynamic threat assessment method for air swarm targets based on intent recognition is more accurate.

Key words: Key words: intent prediction, threat assessment, neural networks, multilayer perceptron, attention mechanisms, long short-term memory networks

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