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81.
舒忠正 《南京航空航天大学学报》1992,(2)
本文介绍了黑板框架知识表达方法的设计思想和技术。黑板框架是由框架、知识源和黑板模型组成,是产生式规则、谓词、框架等多种知识表达功能的组合形式,它将知识表达和知识处理结合成一体,既能表达静态的知识,又能表达动态的知识;既能方便地表达断言性知识,又能自然地表达结构性知识。表达功能强、灵活性大;方便知识调度,加快推理速度,提高推理效率;方便知识获取并有利于机器学习。 黑板框架是一种能表达特定领域复杂知识结构的良好的方法,具有表达充分、推理充分、推理效率和获取效率高的特点。 文中还对目前各种知识表达方法进行了评价,对黑板模型、知识源、黑板框架的概念进行了描述,并对黑板框架给出了严格的BNF定义。 黑板框架的知识表达方法,已在医学专家系统开发工具BFBEST中获得了成功的应用,并取得满意的效果。 相似文献
82.
针对飞行器在高速飞行时受气流干扰、惯性数据易发散等问题,从传感器数据融合角度出发,提出了通过无迹卡尔曼滤波(UKF)融合嵌入式大气数据观测系统(FADS)和惯性导航系统(INS)估计飞行器实时大气数据的算法。算法使用高维度非线性方程对惯性系统和大气系统间的关系建模,结合FADS与INS的数据,计算飞行器速度和高度,进而估算出攻角、侧滑角等参数。实验结果显示,与INS直接解算、扩展卡尔曼滤波(EKF)融合等原有估计方法相比,文章所述的算法在估计精度和系统稳定性方面均有所提高。 相似文献
83.
84.
建立了某型飞机故障诊断的数学模型.开发了故障诊断系统的计算机软件.实现了以人机交互的方式在计算机上进行故障诊断,而且该诊断方法可以按飞机系统功能分解推广到各分系统。 相似文献
85.
针对飞行器机动过程中关键飞行参数容易超出其边界的问题,研究了基于多滑模调节器的边界保护控制器。利用滑模方法设计多个边界调节器并采用最大/最小逻辑在各调节器之间进行切换。首先对边界约束集的正不变性以及系统最终的收敛性进行了严格的证明,然后通过将系统化为可控标准型,提出了确定系统最终收敛点的直观方法;其次通过引入分段线性滑模和分段二次Lyapunov函数对闭环系统的稳定性进行了分析;然后在此基础上给出了机动边界保护系统控制器的设计步骤;最后通过仿真表明,所设计的控制器能够保证在机动过程中关键飞行参数不越界的同时对输入指令进行很好的跟踪。 相似文献
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87.
基于T-S模糊系统的空天飞行器鲁棒自适应轨迹线性化控制 总被引:1,自引:0,他引:1
基于T-S模糊系统提出了鲁棒自适应轨迹线性化控制(RATLC)方法。利用T-S模糊系统逼近未知干扰和不确定性因素,并采用Lyapunov方法设计了鲁棒自适应控制律。不论系统状态的维数和用于逼近不确定的模糊系统规则数为多少,整个系统仅有两个参数在线调整。理论分析证明了闭环系统所有信号一致最终有界。应用提出的控制方案设计了空天飞行器(ASV)飞行控制系统,并在高超声速飞行条件下进行了仿真验证,仿真结果表明了控制方案的有效性和鲁棒性。 相似文献
88.
89.
T. Hopf S. KumarW.J. Karl W.T. Pike 《Advances in Space Research (includes Cospar's Information Bulletin, Space Research Today)》2010
It is often necessary for space-borne instrumentation to cope with substantial levels of shock acceleration both in the initial launch phase, as well as during entry, descent and landing in the case of planetary exploration. Current plans for a new generation of penetrator-based space missions will subject the associated on-board instrumentation to far greater levels of shock, and ways must therefore be found to either ruggedize or else protect any sensitive components during the impact phase. In this paper, we present an innovative method of shock protection that is suited for use in a number of planetary environments, based upon the temporary encapsulation of said components within a waxy solid which may then be sublimated to return the instrument back to its normal operation. We have tested this method experimentally using micromachined silicon suspensions under applied shock loads of up to 15,000g, and found that these were able to survive without incurring damage. Furthermore, quality factor measurements undertaken on these suspensions indicate that their mechanical performance remains unaffected by the encapsulation and subsequent sublimation process. 相似文献
90.
Remote sensing scientists work under assumptions that should not be taken for granted and should, therefore, be challenged. These assumptions include the following:1. Space, especially Low Earth Orbit (LEO), will always be available to governmental and commercial space entities that launch Earth remote sensing missions.2. Space launches are benign with respect to environmental impacts.3. Minimization of Type 1 error, which provides increased confidence in the experimental outcome, is the best way to assess the significance of environmental change.4. Large-area remote sensing investigations, i.e. national, continental, global studies, are best done from space.5. National space missions should trump international, cooperative space missions to ensure national control and distribution of the data products.At best, all of these points are arguable, and in some cases, they're wrong. Development of observational space systems that are compatible with sustainability principles should be a primary concern when Earth remote sensing space systems are envisioned, designed, and launched. The discussion is based on the hypothesis that reducing the environmental impacts of the data acquisition step, which is at the very beginning of the information stream leading to decision and action, will enhance coherence in the information stream and strengthen the capacity of measurement processes to meet their stated functional goal, i.e. sustainable management of Earth resources. We suggest that unconventional points of view should be adopted and when appropriate, remedial measures considered that could help to reduce the environmental footprint of space remote sensing and of Earth observation and monitoring systems in general. This article discusses these five assumptions in the context of sustainable management of Earth's resources. Taking each assumption in turn, we find the following:(1) Space debris may limit access to Low Earth Orbit over the next decades.(2) Relatively speaking, given that they're rare event, space launches may be benign, but study is merited on upper stratospheric and exospheric layers given the chemical activity associated with rocket combustion by-products.(3) Minimization of Type II error should be considered in situations where minimization of Type I error greatly hampers or precludes our ability to correct the environmental condition being studied.(4) In certain situations, airborne collects may be less expensive and more environmentally benign, and comparative studies should be done to determine which path is wisest.(5) International cooperation and data sharing will reduce instrument and launch costs and mission redundancy. Given fiscal concerns of most of the major space agencies – e.g. NASA, ESA, CNES – it seems prudent to combine resources. 相似文献