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61.
针对多输入多输出的定常线性系统的迭代学习控制问题, 给出改进的P型迭代学习控制算法, 该算法中利用最新算出的控制分量代替旧的控制分量, 这样可以加快控制输入的收敛速度, 利用该算法进行学习控制, 使系统的实际输出以更快的速度收敛于系统的理想输出. 相似文献
62.
随着频谱信息资源愈发紧张,信号的调制处理方式也愈发多样化.由于通信信号的调制识别广泛应用于民用和军用领域,所以,对调制方式进行识别的研究具有极其重要的意义与战术价值.首先,根据大量文献,对基于最大似然函数和特征提取的经典调制识别方法进行了系统地梳理;其次,从常用数据集、深度神经网络结构和现有识别算法等方面,着重介绍了深... 相似文献
63.
不稳定和召回率低效的软件缺陷预测模型难以在行业领域应用,为解决稳定和高效各项性能评价指标的软件缺陷预测模型在工程实践应用的问题,提出了一种基于知识图谱和自动化机器学习的软件缺陷预测方法AutoKGGAS,首先获取软件缺陷预测模型数据,对知识建模、知识获取、知识融合、知识储存与知识计算等知识图谱构建技术研究,实现知识图谱... 相似文献
64.
Bojian CHEN Changqing SHEN Juanjuan SHI Lin KONG Luyang TAN Dong WANG Zhongkui ZHU 《中国航空学报》2023,36(6):361-377
As a data-driven approach, Deep Learning(DL)-based fault diagnosis methods need to collect the relatively comprehensive data on machine fault types to achieve satisfactory performance. A mechanical system may include multiple submachines in the real-world. During condition monitoring of a mechanical system, fault data are distributed in a continuous flow of constantly generated information and new faults will inevitably occur in unconsidered submachines, which are also called machine increments.... 相似文献
65.
针对MBD环境下的零件分类问题,研究MBD信息提取、零件编码转换和深度学习分类算法技术,并创建MBD-计算机辅助零件分类系统(MBD-CAPC),实现从输入MBD模型到输出零件分类结果的自动化。 相似文献
66.
67.
基于小波的能源消费弹性系数预测方法 总被引:1,自引:0,他引:1
能源消费弹性系数反映了一个国家能源消费增长速度与国民经济增长速度之间的比例关系,是衡量一个国家能源利用效率的重要指标。鉴于数据中存在较多的噪声,首先用小波分析方法对数据进行滤波,然后用滤除了噪声的数据作为输入变量,用支持向量回归方法建模,并预测未来10年我国能源消费弹性系数变化的规律。实际数据检验表明,该预测方法还是可行的。 相似文献
68.
杨爱荣 《中国民航学院学报》1998,(2)
语言学习策略(Languagelearningstrategies)是学习者用于提高学习效率所采用的方法和步骤。作者调查了中国部分高校理工科大学生在英语学习中运用语言学习策略的能力。调查采用了Oxford的一套自我测试调查表。根据我国学生的实际情况对调查表中某些项目做了适当的修改。调查涉及两个高校两个年级的300名学生,并采用科学的方法进行统计,结果表明语言学习策略与英语学习有密切联系;语言学习策略对中国学生学习外语十分重要。 相似文献
69.
《中国航空学报》2023,36(1):91-104
Transition prediction has always been a frontier issue in the field of aerodynamics. A supervised learning model with probability interpretation for transition judgment based on experimental data was developed in this paper. It solved the shortcomings of the point detection method in the experiment, that which was often only one transition point could be obtained, and comparison of multi-point data was necessary. First, the Variable-Interval Time Average (VITA) method was used to transform the fluctuating pressure signal measured on the airfoil surface into a sequence of states which was described by Markov chain model. Second, a feature vector consisting of one-step transition matrix and its stationary distribution was extracted. Then, the Hidden Markov Model (HMM) was used to pre-classify the feature vectors marked using the traditional Root Mean Square (RMS) criteria. Finally, a classification model with probability interpretation was established, and the cross-validation method was used for model validation. The research results show that the developed model is effective and reliable, and it has strong Reynolds number generalization ability. The developed model was theoretically analyzed in depth, and the effect of parameters on the model was studied in detail. Compared with the traditional RMS criterion, a reasonable transition zone can be obtained using the developed classification model. In addition, the developed model does not require comparison of multi-point data. The developed supervised learning model provides new ideas for the transition detection in flight experiments and other experiments. 相似文献
70.
《中国航空学报》2023,36(1):75-90
The modeling of dynamic stall aerodynamics is essential to stall flutter, due to the flow separation in a large-amplitude pitching oscillation process. A newly neural network based Reduced Order Model (ROM) framework for predicting the aerodynamic forces of an airfoil undergoing large-amplitude pitching oscillation at various velocities is presented in this work. First, the dynamic stall aerodynamics is calculated by solving RANS equations and the transitional SST-γ model. Afterwards, the stall flutter bifurcation behavior is calculated by the above CFD solver coupled with structural dynamic equation. The critical flutter speed and limit-cycle oscillation amplitudes are consistent with those obtained by experiments. A newly multi-layer Gated Recurrent Unit (GRU) neural network based ROM is constructed to accelerate the calculation of aerodynamic forces. The training and validation process are carried out upon the unsteady aerodynamic data obtained by the proposed CFD method. The well-trained ROM is then coupled with the structure equation at a specific velocity, the Limit-Cycle Oscillation (LCO) of stall flutter under this flow condition is predicted precisely and more quickly. In order to predict both the critical flutter velocity and LCO amplitudes after bifurcation at different velocities, a new ROM with GRU neural network considering the variation of flow velocities is developed. The stall flutter results predicted by ROM agree well with the CFD ones at different velocities. Finally, a brief sensitivity analysis of two structural parameters of ROM is carried out. It infers the potential of the presented modeling method to depict the nonlinearity of dynamic stall and stall flutter phenomenon. 相似文献