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二维PSD非线性修正共轭梯度算法

Conjugate Gradient Optimum Algorithm of Non-linear Correction of Two-Dimension PSD

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【作者】 莫长涛陈长征张黎丽孙凤久

【Author】 MO Changtao1, CHEN Changzheng2, ZHANG Lili3, SUN Fengjiu1(1. School of Science, Northeastern University, Shenyang 110004, China; 2. Diagnosis and Control Center, Shenyang University of Technology, Shenyang 110023, China; 3. Foundation Department, Harbin Commercial University, Harbin 150076, China. Correspondent: MO Changtao,associate professor, Email: mochangtao?@?yahoo.com.cn)

【机构】 东北大学理学院沈阳工业大学诊断与控制中心哈尔滨商业大学基础部东北大学理学院 辽宁沈阳 110004辽宁沈阳 110023黑龙江哈尔滨 150076辽宁沈阳 110004

【摘要】 根据光电位置敏感器件的原理和光点位置方程分析了PSD的非线性成因,并根据PSD的非线性特点,提出用神经网络的共轭梯度算法对PSD的非线性进行补偿·利用神经网络共轭梯度算法具有逼近任意非线性函数的特点,通过神经网络建立PSD实际输出与其理想值之间的非线性映射关系,实现光电位置敏感器件非线性补偿·计算机仿真表明,该方法不仅能有效地消除非线性的影响,而且在神经网络的输出端得到期望的线性输出·从而使PSD的B区获得了与A区近似的线性度,故在不增加成本,不改变测量设备复杂度的情况下,扩大了测量范围,提高了B区的测量准确度及数据的置信度·

【Abstract】 ?The causes of non1inearity of Position Sensitive Detector were analyzed. A conjugate gradient optimum algorithm for neural network is provided to correct the nonlinearity of PSD after precalibration. In order to supply the nonlinear compensation over a full range, the neural network was properly trained to represent the nonlinear mapping between sensor reading and their represent output accurately. Simulation result shows that the influence of background light fluctuation can be eliminated effectively, and a desired linear relationship between the sensor input and the neural network output can be obtained.The correction leads to prominent improvement of linearity of Barea, and the usable area of PSD is thus extended. The reliability of data is also improved without increasing the complexity of hardware by the method.

【基金】 国家自然科学基金资助项目(50174020)
  • 【文献出处】 东北大学学报 ,JOURNAL OF NORTHEASTERN UNIVERSITY , 编辑部邮箱 ,2003年05期
  • 【分类号】TP212
  • 【被引频次】24
  • 【下载频次】178
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