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Quantitative Method of Classification and Discrimination of a Porous Carbonate Reservoir Integrating K-means Clustering and Bayesian Theory
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作者 FANG Xinxin ZHU Guotao +2 位作者 YANG Yiming LI Fengling FENG Hong 《Acta Geologica Sinica(English Edition)》 SCIE CAS CSCD 2023年第1期176-189,共14页
Reservoir classification is a key link in reservoir evaluation.However,traditional manual means are inefficient,subjective,and classification standards are not uniform.Therefore,taking the Mishrif Formation of the Wes... Reservoir classification is a key link in reservoir evaluation.However,traditional manual means are inefficient,subjective,and classification standards are not uniform.Therefore,taking the Mishrif Formation of the Western Iraq as an example,a new reservoir classification and discrimination method is established by using the K-means clustering method and the Bayesian discrimination method.These methods are applied to non-cored wells to calculate the discrimination accuracy of the reservoir type,and thus the main reasons for low accuracy of reservoir discrimination are clarified.The results show that the discrimination accuracy of reservoir type based on K-means clustering and Bayesian stepwise discrimination is strongly related to the accuracy of the core data.The discrimination accuracy rate of TypeⅠ,TypeⅡ,and TypeⅤreservoirs is found to be significantly higher than that of TypeⅢand TypeⅣreservoirs using the method of combining K-means clustering and Bayesian theory based on logging data.Although the recognition accuracy of the new methodology for the TypeⅣreservoir is low,with average accuracy the new method has reached more than 82%in the entire study area,which lays a good foundation for rapid and accurate discrimination of reservoir types and the fine evaluation of a reservoir. 展开更多
关键词 UPSTREAM resource exploration reservoir classification CARBONATE K-means clustering bayesian discrimination CENOMANIAN-TURONIAN Iraq
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Probabilistic Methods in Multi-Class Brain-Computer Interface 被引量:1
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作者 Ping Yang Xu Lei Tie-Jun Liu Peng Xu De-Zhong Yao 《Journal of Electronic Science and Technology of China》 2009年第1期12-16,共5页
Abstract-Two probabilistic methods are extended to research multi-class motor imagery of brain-computer interface (BCI): support vector machine (SVM) with posteriori probability (PSVM) and Bayesian linear discr... Abstract-Two probabilistic methods are extended to research multi-class motor imagery of brain-computer interface (BCI): support vector machine (SVM) with posteriori probability (PSVM) and Bayesian linear discriminant analysis with probabilistic output (PBLDA). A comparative evaluation of these two methods is conducted. The results shows that: 1) probabilistie information can improve the performance of BCI for subjects with high kappa coefficient, and 2) PSVM usually results in a stable kappa coefficient whereas PBLDA is more efficient in estimating the model parameters. 展开更多
关键词 bayesian linear discriminant analysis brain-computer interface kappa coefficient support vector machine.
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基于贝叶斯判别的激光除漆声学监测方法研究
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作者 陈赟 黄海鹏 +1 位作者 叶德俊 郝本田 《激光技术》 CAS CSCD 北大核心 2022年第2期248-253,共6页
为了解决激光除漆声学监测方法难以满足实际生产需要的问题,采用贝叶斯判别方法进行了理论分析和实验验证,将除漆过程分为正在清洗、清洗完成且基底无损伤、基底损伤3种类别,结合光声效应分析除漆声信号在清洗过程的变化,提取特征参量... 为了解决激光除漆声学监测方法难以满足实际生产需要的问题,采用贝叶斯判别方法进行了理论分析和实验验证,将除漆过程分为正在清洗、清洗完成且基底无损伤、基底损伤3种类别,结合光声效应分析除漆声信号在清洗过程的变化,提取特征参量建立判别模型,实现了对激光除漆的定量判别。结果表明,训练样本准确率达到99%,测试样本准确率达到98.7%。该方法具有较高的准确性和实用性,可为激光清洗声学监测的研究提供借鉴。 展开更多
关键词 激光技术 激光清洗 声学监测 贝叶斯判别 光声效应
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A model for discrimination and prediction of mental workload of aircraft cockpit display interface 被引量:19
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作者 Wei Zongmin Zhuang Damin +2 位作者 Wanyan Xiaoru Liu Chen Zhuang Huan 《Chinese Journal of Aeronautics》 SCIE EI CAS CSCD 2014年第5期1070-1077,共8页
With respect to the ergonomic evaluation and optimization in the mental task design of the aircraft cockpit display interface, the experimental measurement and theoretical modeling of mental workload were carried out ... With respect to the ergonomic evaluation and optimization in the mental task design of the aircraft cockpit display interface, the experimental measurement and theoretical modeling of mental workload were carried out under flight simulation task conditions using the performance evaluation, subjective evaluation and physiological measurement methods. The experimental results show that with an increased mental workload, the detection accuracy of flight operation significantly reduced and the reaction time was significantly prolonged; the standard deviation of R-R intervals(SDNN) significantly decreased, while the mean heart rate exhibited little change; the score of NASA_TLX scale significantly increased. On this basis, the indexes sensitive to mental workload were screened, and an integrated model for the discrimination and prediction of mental workload of aircraft cockpit display interface was established based on the Bayesian Fisher discrimination and classification method. The original validation and cross-validation methods were employed to test the accuracy of the results of discrimination and prediction of the integrated model, and the average prediction accuracies determined by these two methods are both higher than 85%. Meanwhile, the integrated model shows a higher accuracy in discrimination and prediction of mental workload compared with single indexes. The model proposed in this paper exhibits a satisfactory coincidence with the measured data and could accurately reflect the variation characteristics of the mental workload of aircraft cockpit display interface, thus providing a basis for the ergonomic evaluation and optimization design of the aircraft cockpit display interface in the future. 展开更多
关键词 bayesian Fisher discrimination Cockpit Display interface Heart rate variability Mental workload NASA_TLX
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