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371.
研究了地空导弹爆炸时战斗部破片对地面人员附带损伤的问题,选取了破片对人体的杀伤准则,通过分析破片的空中运动特性,对导弹战斗部爆炸时的破片飞散规律进行了探讨,建立了破片散布的数学模型,并在典型的给定计算条件下进行了仿真分析.仿真结果表明,地空导弹在不同高度爆炸时,可计算出对地面人员的有效杀伤破片数量、破片杀伤面积和平均密度以及导弹的安全高度.  相似文献   
372.
现有的Link16网络同步算法,假定了询问与应答报文的传播时间相同,导致E值误差较大。提出一种改进算法,待同步JU相继向网内不同NTR发送询问报文,NTR分别发回应答报文。同时NTR间也发送往返计时报文,通过联立计算,提高时间误差的精度。改进算法的仿真分析结果,验证了新同步算法的可行性和有效性。  相似文献   
373.
发射装药号是影响火炮身管寿命的重要因素,为自动识别火炮发射药的装药号,避免人工记录失误和完善火炮射弹履历,分析了装药号自动识别原理,运用火炮动力学分析理论和ADAMS虚拟样机技术,建立火炮发射动力学虚拟样机.通过仿真试验获取样本数据,应用BP神经网络进行学习和训练,从而建立装药号和测试数据之间的非线性映射关系,实现对火炮发射装药号的精确预测.  相似文献   
374.
针对BP神经网络对初始值敏感、容易陷入局部寻优且收敛速度较慢,提出用粒子群对神经网络的参数进行优化,同时设计了衰减的指数函数对惯性权重进行动态调整以提高算法性能.并应用该算法对导弹飞控系统的逆误差进行补偿,仿真结果表明,该方法对逆误差进行了有效的补偿,避免了局部寻优并提高了学习效率.  相似文献   
375.
研究一类不确定时滞混沌系统的全局鲁棒自适应神经网络同步控制器设计,其系统中的不确定时滞项不是简单的线性有界条件,而是允许其存在高阶项,因此具有全局特性.在控制器的设计上;首先通过选取合适的径向基函数(RBF)神经网络的权向量去逼近时滞系统中的未知连续有界部分;然后在RBF神经网络输出的基础上,选用一个鲁棒自适应控制器来趋近时滞系统的不确定部分;同时,利用Lyapunov稳定性理论对混沌同步的条件给出了论证;最后,数据仿真的结果表明该方法的有效性.  相似文献   
376.
主要研究了基于Levenberg-Marquardt算法的人工神经网络的火灾时人员疏散反应时间的可靠性和可行性。首先介绍了人员疏散现状调研和LP神经网络背景特点,然后将问卷调查、疏散演练基于同一平台,建构人员疏散反应数学模型,最后通过LP神经网络进行实际测试和分析,验证了人员疏散反应时间数学模型的可靠性。  相似文献   
377.
采用神经网络集成方法对我国31个地区的经济总量、消防基本投入、火灾损失之间的关系进行定量分析,研究发现神经网络集成方法能有效地反应各地区经济发展水平、消防基本投入与火灾损失之间的内在联系。  相似文献   
378.
ABSTRACT

This article is the conclusion to a special issue that examines the European Union (EU), peacebuilding, and “the local.” It argues that technocracy—particularly EU technocracy—shapes the extent to which local actors can hope to achieve ownership of externally funded and directed peace support projects and programs. Although some actors within the EU have worked hard to push localization agendas, a number of technocracy linked factors come together to limit the extent to which the EU can truly connect with the local level in its peace support activities. While the EU and other international actors have invested heavily into capacity building in conflict-affected contexts, the EU’s own capacity has not necessarily been built to address the scalar problem of accessing the local in ways that are meaningful.  相似文献   
379.
《防务技术》2020,16(5):1062-1072
Recent years have seen an explosion in graph data from a variety of scientific, social and technological fields. From these fields, emotion recognition is an interesting research area because it finds many applications in real life such as in effective social robotics to increase the interactivity of the robot with human, driver safety during driving, pain monitoring during surgery etc. A novel facial emotion recognition based on graph mining has been proposed in this paper to make a paradigm shift in the way of representing the face region, where the face region is represented as a graph of nodes and edges and the gSpan frequent sub-graphs mining algorithm is used to find the frequent sub-structures in the graph database of each emotion. To reduce the number of generated sub-graphs, overlap ratio metric is utilized for this purpose. After encoding the final selected sub-graphs, binary classification is then applied to classify the emotion of the queried input facial image using six levels of classification. Binary cat swarm intelligence is applied within each level of classification to select proper sub-graphs that give the highest accuracy in that level. Different experiments have been conducted using Surrey Audio-Visual Expressed Emotion (SAVEE) database and the final system accuracy was 90.00%. The results show significant accuracy improvements (about 2%) by the proposed system in comparison to current published works in SAVEE database.  相似文献   
380.
《防务技术》2020,16(6):1116-1129
Object detection models based on convolutional neural networks (CNN) have achieved state-of-the-art performance by heavily rely on large-scale training samples. They are insufficient when used in specific applications, such as the detection of military objects, as in these instances, a large number of samples is hard to obtain. In order to solve this problem, this paper proposes the use of Gabor-CNN for object detection based on a small number of samples. First of all, a feature extraction convolution kernel library composed of multi-shape Gabor and color Gabor is constructed, and the optimal Gabor convolution kernel group is obtained by means of training and screening, which is convolved with the input image to obtain feature information of objects with strong auxiliary function. Then, the k-means clustering algorithm is adopted to construct several different sizes of anchor boxes, which improves the quality of the regional proposals. We call this regional proposal process the Gabor-assisted Region Proposal Network (Gabor-assisted RPN). Finally, the Deeply-Utilized Feature Pyramid Network (DU-FPN) method is proposed to strengthen the feature expression of objects in the image. A bottom-up and a top-down feature pyramid is constructed in ResNet-50 and feature information of objects is deeply utilized through the transverse connection and integration of features at various scales. Experimental results show that the method proposed in this paper achieves better results than the state-of-art contrast models on data sets with small samples in terms of accuracy and recall rate, and thus has a strong application prospect.  相似文献   
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