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饲料霉菌污染与霉菌总数检测方法 被引量:8
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作者 周芷锦 赵真效 +2 位作者 穆琳 鲁马媚 王侃 《中国饲料》 北大核心 2014年第8期35-37,41,共4页
霉菌是目前饲料安全的主要危害菌。本文就饲料霉菌污染对饲料产生的危害以及其计数检测方法作一综述,以期为霉菌检验工作提供参考。
关键词 霉菌 饲料 污染 计数检测方法
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Design of motion control of dam safety inspection underwater vehicle 被引量:6
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作者 孙玉山 万磊 +2 位作者 甘永 王建国 姜春萌 《Journal of Central South University》 SCIE EI CAS 2012年第6期1522-1529,共8页
Plenty of dams in China are in danger while there are few effective methods for underwater dam inspections of hidden problems such as conduits,cracks and inanitions.The dam safety inspection remotely operated vehicle(... Plenty of dams in China are in danger while there are few effective methods for underwater dam inspections of hidden problems such as conduits,cracks and inanitions.The dam safety inspection remotely operated vehicle(DSIROV) is designed to solve these problems which can be equipped with many advanced sensors such as acoustical,optical and electrical sensors for underwater dam inspection.A least-square parameter estimation method is utilized to estimate the hydrodynamic coefficients of DSIROV,and a four degree-of-freedom(DOF) simulation system is constructed.The architecture of DSIROV's motion control system is introduced,which includes hardware and software structures.The hardware based on PC104 BUS,uses AMD ELAN520 as the controller's embedded CPU and all control modules work in VxWorks real-time operating system.Information flow of the motion system of DSIROV,automatic control of dam scanning and dead-reckoning algorithm for navigation are also discussed.The reliability of DSIROV's control system can be verified and the control system can fulfill the motion control mission because embankment checking can be demonstrated by the lake trials. 展开更多
关键词 dam safety inspection remotely operated vehicle (DSIROV) control system architecture embedded system automaticcontrol of dam-scanning dead-reckoning
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A Mo LC+Mo M-based G^0 distribution parameter estimation method with application to synthetic aperture radar target detection
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作者 朱正为 周建江 郭玉英 《Journal of Central South University》 SCIE EI CAS CSCD 2015年第6期2207-2217,共11页
The accuracy of background clutter model is a key factor which determines the performance of a constant false alarm rate(CFAR) target detection method. G0 distribution is one of the optimal statistic models in the syn... The accuracy of background clutter model is a key factor which determines the performance of a constant false alarm rate(CFAR) target detection method. G0 distribution is one of the optimal statistic models in the synthetic aperture radar(SAR) image background clutter modeling and can accurately model various complex background clutters in the SAR images. But the application of the distribution is greatly limited by its disadvantages that the parameter estimation is complex and the local detection threshold is difficult to be obtained. In order to solve the above-mentioned problems, an synthetic aperture radar CFAR target detection method using the logarithmic cumulant(Mo LC) + method of moment(Mo M)-based G0 distribution clutter model is proposed. In the method, G0 distribution is used for modeling the background clutters, a new Mo LC+Mo M-based parameter estimation method coupled with a fast iterative algorithm is used for estimating the parameters of G0 distribution and an exquisite dichotomy method is used for obtaining the local detection threshold of CFAR detection, which greatly improves the computational efficiency, detection performance and environmental adaptability of CFAR detection. Experimental results show that the proposed SAR CFAR target detection method has good target detection performance in various complex background clutter environments. 展开更多
关键词 synthetic aperture radar (SAR) target detection statistical modeling parameter estimation method of logarithmic cumulant (MoLC)
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