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采样误差

采样误差的相关文献在1989年到2022年内共计104篇,主要集中在电工技术、自动化技术、计算机技术、环境质量评价与环境监测 等领域,其中期刊论文70篇、会议论文7篇、专利文献67480篇;相关期刊61种,包括地球化学、内蒙古电力技术、电子测试等; 相关会议7种,包括第八届工业仪表与自动化学术会议、2006全国暖通空调制冷学术年会、中国高等学校电力系统及其自动化专业第二十二届学术年会等;采样误差的相关文献由235位作者贡献,包括谢求成、赵冶、吴彩林等。

采样误差—发文量

期刊论文>

论文:70 占比:0.10%

会议论文>

论文:7 占比:0.01%

专利文献>

论文:67480 占比:99.89%

总计:67557篇

采样误差—发文趋势图

采样误差

-研究学者

  • 谢求成
  • 赵冶
  • 吴彩林
  • 潘小波
  • 于淑贤
  • 于贇
  • 井长瑞
  • 何瑞瑞
  • 余之贡
  • 余高旺
  • 期刊论文
  • 会议论文
  • 专利文献

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    • 王俊炎; 袁鹏飞; 陈宏伟
    • 摘要: 在对电机振动噪声要求较高的场合,实现电机转矩的精确控制,精确的电流控制是关键,而不可避免的电流采样误差会影响控制精度,引起不必要的转矩和转速波动。针对此问题,本文以典型的永磁同步电机控制系统为研究对象,对电流传感器可能产生的电流采样误差进行了分析,将误差引入系统控制模型,实现了精确的误差分析建模。依据此模型分析了采样误差对系统运行造成的影响,并进行了仿真。根据仿真实验结果和理论计算结果对比可知,二者有高度的一致性,验证了所建立模型的准确性。
    • 郭建宾; 王桂伟; 赵娜
    • 摘要: 煤炭品质检验结果是商品煤炭贸易结算的重要依据,本文基于采样环节在煤炭品质检验中的重要性,分析了采样误差影响因素,重点讨论煤炭采样方法的运用,指出了煤炭采样环节中的重点和难点.
    • 姜哲; 卜飞飞; 潘子昊; 轩富强
    • 摘要: 高性能电流环是提升永磁同步电机伺服系统性能的重要保证和基础,在控制过程中,电流环易受延迟环节、采样误差等因素影响,需具备较强的抗扰动能力。基于此,文中研究了一种带电流校正环节的改进型无差拍电流控制算法。该方法以传统无差拍电流控制算法为基础,对电流采样环节进行改进。将k时刻的电流采样值与k时刻的电流预测值进行加权处理,作为新的电流反馈值,再进行无差拍控制,抑制采样误差对电流控制的影响,进而提升稳态过程中电流的抗扰动能力。并针对永磁伺服系统样机进行了Matlab仿真和实验,验证了文中方法的正确性和有效性。
    • 姜哲; 卜飞飞; 潘子昊; 轩富强
    • 摘要: 高性能电流环是提升永磁同步电机伺服系统性能的重要保证和基础,在控制过程中,电流环易受延迟环节、采样误差等因素影响,需具备较强的抗扰动能力.基于此,文中研究了一种带电流校正环节的改进型无差拍电流控制算法.该方法以传统无差拍电流控制算法为基础,对电流采样环节进行改进.将k时刻的电流采样值与k时刻的电流预测值进行加权处理,作为新的电流反馈值,再进行无差拍控制,抑制采样误差对电流控制的影响,进而提升稳态过程中电流的抗扰动能力.并针对永磁伺服系统样机进行了Matlab仿真和实验,验证了文中方法的正确性和有效性.
    • 李慧静; 金晓民; 井雅; 张博尧
    • 摘要: To design intelligent infrared remote control based on the network,a method of the original remote control signal receiving and signal compressing was proposed.Based on the analysis of infrared remote control encoding,according to encoding format diversity and the characteristics of no unified standard,the pulse width counting method was used to receive remote control signals,which was universal,but occupied larger storage space.For the SCM limited storage space,the structure recognition mean compression algorithm was proposed so that data were compressed and replicated efficiently.On the BTF340 development board,the infrared transceiver circuit was built as the experimental platform to complete the study effectively and realize a variety of home appliances remote control.Experimental results show that the proposed algorithm is effective for the infrared remote control signal receiving,compressing,storing and transmitting and it has strong universality.%为设计基于网络的智能型红外遥控器,研究一种对原配遥控器遥控信号接收与压缩的方法.在分析研究红外遥控编码的基础上,针对编码格式多样无统一标准的特点,采用脉宽计数法接收遥控指令,这种方法通用性强,但其占用存储空间较大.针对单片机存储空间有限,提出结构识别均值压缩算法,能够高效压缩并复现数据.在BTF340开发板上搭建红外收发电路为实验平台,完成多种家电遥控器遥控指令的学习与复现.实验结果表明,该方法对红外遥控信号的接收、压缩、存储、发射均行之有效,具有很强的通用性.
    • 唐力军
    • 摘要: 中性点非有效接地系统中,单相接地选线准确性不高.根据现有常见的几种小电流选线原理,从取样准确性角度分析小电流选线准确性偏低的原因,并提出了提高小电流选线采样可靠性的具体措施.
    • 孟鲁民; 段修全; 陆希峰; 曹岩
    • 摘要: 采样误差是液体流量标准装置系统误差的重要组成部分,该文以国内常用的标准表法液体流量标准装置和静态质量法液体流量标准装置为例,根据装置电流采样、脉冲采样的原理,从理论上分析了液体流量标准装置电流采样误差和脉冲采样误差的来源,提出了减小采样误差的方法,并通过实验进行了验证.
    • 闵锦忠; 黄欣慧; 陈耀登; 杨春
    • 摘要: 在中尺度WRF-EnSRF系统中最新引入的采样误差订正局地化方法不仅考虑了回归系数偏差,而且计算量较小.该方法基于状态变量和对应观测值的相关系数的分布关系,根据离线蒙特卡洛技术制作的关于集合数和样本相关系数的查找表格确定局地化系数因子,进而订正由集合数选取有限造成的背景误差协方差被低估引起的采样误差.本文利用风暴过程的雷达观测资料做了一系列风暴尺度的资料同化理想试验,探讨了采样误差订正局地化方法在风暴尺度集合卡尔曼滤波同化中的技术特点和同化效果.结果表明:相比于经验局地化方法,采样误差订正局地化方法能够有效地改善集合同化的效果,对距离的敏感度更低,尤其在天气系统发展变化较快的阶段,新方法优势更大.并且,对不同观测变量以及在风暴发展的不同阶段使用不同的局地化方法,所得的结果都存在一定的差异,因此需要根据同化对象合理地选择局地化方法.%An Ensemble Square Root Filter (EnSRF) is a deterministic algorithm without disturbance observations,which was derived from the traditional Ensemble Kalman Filter (EnKF) in order to avoid the sampling errors caused by disturbance observations.An EnSRF uses the flow dependent background error covariance to analyze data,which solves the problem of adjoint models in the variational assimilation.Previous studies have completed the construction of EnSRF systems for storm scale in the Weather Research and Forecasting(WRF) model.However,some problems,such as the sampling error,still exist in the WRF-EnSRF system.Therefore,various other techniques,such as an empirical localization method,should be used to overcome these problems.Since the weight coefficients of the empirical localization method are linear,and are dependent on the local distance radius,they do not reflect the real situation of the state variables and observations.In this study,attempts were made to improve the assimilation effect of a WRF-EnSRF system by utilizing a sampling error correction localization method instead of the empirical localization method.The sampling error correction localization method took into account the biases of regression coefficients,and used less computation.Then,based on the prior distribution information of the correlation coefficient between the state variables and corresponding observations,the method obtained the coefficient factor of the localization through a lookup table,which was related to the ensemble numbers and sample correlation coefficients,and produced by the offline Monte Carlo technique.The sampling error was then corrected,which had resulted from the underestimation of the background error covariance due to the limitation of the selected ensemble numbers.Meanwhile,the weighting coefficient was updated with the assimilation time for each of the observational data assimilations,and reflected the flow dependent feature.This method has been widely used in large-scale models.However,it has also been considered to be applicable,or even more suitable,to small and medium scale weather systems.Therefore,this study attempted to put the method into the WRF-EnSRF,and conducted a series of storm-scale data assimilation tests using Doppler radar observations during storm periods,in order to prove the feasibility of the localization,as well as to explore the technical features and assimilation effects of the sampling error correction localization method in the storm-scale ensemble Kalman filter assimilation.The data in the WRF during a typical super storm which occurred in Del City(central Oklahoma,USA) on May 20,1977,were used in this study.In order to reduce the calculation and avoid the spurious correlation with long distance observations,this study selected reasonable local distance radiuses for the different variables in the assimilation tests.Then,based on the tests with only assimilating radial velocity,it was found that the sampling error correction localization method was able be implemented in the WRF-EnSRF system,and the results achieved the physical analysis field more accurate after adding the assimilation of the radar reflectivity.Since the weighting coefficient of the sampling error correction localization was not dependent on the distance,the assimilation results reduced the sensitivity to the distance.In addition,it was found that there were some differences in the results with different localization methods for the various observed variables and stages of the storm.This is due to the fact that the sampling error correction localization had strong nonlinear characteristics itself,especially for the variables containing water substances.Therefore,the sampling error correction localization achieved better results of the tests in the nonlinear and rapid development stages of the synoptic system or assimilating nonlinear variables,when compared to the empirical localization method.However,in the stable development stage or assimilating linear variables,the empirical method was determined to have more advantages.In summary,according to the results of the tests,it was necessary to reasonably choose the appropriate localization method according to the object of the assimilation.
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