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基于跨断层形变异常预测云南地震的试验 被引量:21
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作者 施顺英 张燕 +1 位作者 吴云 安利 《大地测量与地球动力学》 CSCD 北大核心 2007年第5期82-87,共6页
利用云南地区的跨断层形变观测资料,按动态灰箱法提取长趋势异常和突跳异常,再用蕴震系统信息合成方法进行合成,以达到群体异常的信息增益(即提高异常识别的可靠性)。在此基础上,对12年来利用跨断层短水准和短基线观测资料所做的地震预... 利用云南地区的跨断层形变观测资料,按动态灰箱法提取长趋势异常和突跳异常,再用蕴震系统信息合成方法进行合成,以达到群体异常的信息增益(即提高异常识别的可靠性)。在此基础上,对12年来利用跨断层短水准和短基线观测资料所做的地震预测与实际发生地震的情况进行了检验。结果表明,年度预测准确率可达60%,证明基于跨断层形变测量异常的动态灰箱法与蕴震系统信息合成法是预测地震的有效方法。 展开更多
关键词 断层形变异常 断层网络系统 信息合成 异常判别 地震预测
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云南文山5.3级地震跨断层形变短期前兆研究 被引量:3
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作者 施顺英 张燕 +1 位作者 吴云 安利 《大地测量与地球动力学》 CSCD 北大核心 2005年第4期55-58,共4页
将云南东部的断层网络视为一个互有关联的动力学系统,利用蕴震系统信息合成方法对该系统15条跨断层短水准和14条短基线资料进行处理与分析,结果表明:2005年8月云南文山5.3级地震前,断层形变短期异常明显,且水平运动异常较垂直运动更为... 将云南东部的断层网络视为一个互有关联的动力学系统,利用蕴震系统信息合成方法对该系统15条跨断层短水准和14条短基线资料进行处理与分析,结果表明:2005年8月云南文山5.3级地震前,断层形变短期异常明显,且水平运动异常较垂直运动更为明显。 展开更多
关键词 文山5.3级地震 断层网络系统 断层形变 信息合成 前兆异常
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Research on fault mode and diagnosis of methane sensor 被引量:1
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作者 WANG Qi-jun CHENG Jiu-long 《Journal of China University of Mining and Technology》 EI 2008年第3期386-388,共3页
To improve the reliability of coal mine safety monitoring systems we have analyzed the characteristics of a methane sensor, an important component of the monitoring system of production safety in a coal mine and studi... To improve the reliability of coal mine safety monitoring systems we have analyzed the characteristics of a methane sensor, an important component of the monitoring system of production safety in a coal mine and studied the main type and mode of faults when the sensor was used on-line. We introduced a new method based on artificial neural network to detect faults of methane sensors. In addition, using the output information of a single methane sensor, we established a sensor output model of a dynamic non-linear neural network for on-line fault detection. Finally, the fault of the heating wire of the sensor was simulated, indicating that, when the methane sensor had a fault, the predicted output of the neural network clearly deviated from the actual output, exceeding the pre-set threshold and showing that a fault had occurred in the methane sensor. The result shows that the model has good convergence and stability, and is quite capable of meeting the requirements for on-line fault detection of methane sensors. 展开更多
关键词 methane sensor fault characteristics fault diagnosis neural network
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Nuclear power plant fault diagnosis based on genetic-RBF neural network 被引量:1
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作者 SHI Xiao-cheng XIE Chun-ling WANG Yuan-hui 《Journal of Marine Science and Application》 2006年第3期57-62,共6页
It is necessary to develop an automatic fault diagnosis system to avoid a possible nuclear disaster caused by an inaccurate fault diagnosis in the nuclear power plant by the operator. Because Radial Basis Function Neu... It is necessary to develop an automatic fault diagnosis system to avoid a possible nuclear disaster caused by an inaccurate fault diagnosis in the nuclear power plant by the operator. Because Radial Basis Function Neural Network (RBFNN) has the characteristics of optimal approximation and global approximation. The mixed coding of binary system and decimal system is introduced to the structure and parameters of RBFNN, which is trained in course of the genetic optimization. Finally, a fault diagnosis system according to the frequent faults in condensation and feed water system of nuclear power plant is set up. As a result, Genetic-RBF Neural Network (GRBFNN) makes the neural network smaller in size and higher in generalization ability. The diagnosis speed and accuracy are also improved. 展开更多
关键词 geneticalgorithm (GA) RBF neural network nuclear power plant
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