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高速铁路轨道几何不平顺改进模糊消刺方法

刘金朝 黎国清 孙善超 赵钢 郭剑峰

刘金朝, 黎国清, 孙善超, 赵钢, 郭剑峰. 高速铁路轨道几何不平顺改进模糊消刺方法[J]. 交通运输工程学报, 2016, 16(2): 37-45. doi: 10.19818/j.cnki.1671-1637.2016.02.005
引用本文: 刘金朝, 黎国清, 孙善超, 赵钢, 郭剑峰. 高速铁路轨道几何不平顺改进模糊消刺方法[J]. 交通运输工程学报, 2016, 16(2): 37-45. doi: 10.19818/j.cnki.1671-1637.2016.02.005
LIU Jin-chao, LI Guo-qing, SUN Shan-chao, ZHAO Gang, GUO Jian-feng. Improved fuzzy method of removing abnormal spike data from track's geometric irregularity of high-speed railway[J]. Journal of Traffic and Transportation Engineering, 2016, 16(2): 37-45. doi: 10.19818/j.cnki.1671-1637.2016.02.005
Citation: LIU Jin-chao, LI Guo-qing, SUN Shan-chao, ZHAO Gang, GUO Jian-feng. Improved fuzzy method of removing abnormal spike data from track's geometric irregularity of high-speed railway[J]. Journal of Traffic and Transportation Engineering, 2016, 16(2): 37-45. doi: 10.19818/j.cnki.1671-1637.2016.02.005

高速铁路轨道几何不平顺改进模糊消刺方法

doi: 10.19818/j.cnki.1671-1637.2016.02.005
基金项目: 

国家973计划项目 2013CB329406

国家国际科技合作专项项目 2015DFA81780

中国铁道科学研究院基金项目 2014YJ056

详细信息
    作者简介:

    刘金朝(1971-), 男, 湖南常宁人, 中国铁道科学研究院研究员, 理学博士, 从事铁路检测数据分析与数值仿真研究

  • 中图分类号: U212.24

Improved fuzzy method of removing abnormal spike data from track's geometric irregularity of high-speed railway

More Information
  • 摘要: 根据高速铁路轨道几何不平顺毛刺异常值突然变化的特性, 设计了改进模糊消刺方法, 将差分突然增大或变小的点定义为毛刺异常值的起点, 将与起点相近的差分反向突然变化的点定义为毛刺异常值的终点, 选取包含毛刺异常值的最小区间的两个端点为插值点, 用其近似线性插值代替原来的毛刺异常值。按照单位分解原理构造隶属度函数, 并通过增加预判断, 避免数据点正常时计算向前差分、规则激发度量函数和模糊基函数。计算结果表明: 改进方法的计算精度与原模糊滤波方法相同, 但当计算长度大于500 km时, 计算时间小于原来的1/300, 它更适合在线实现; 利用改进方法对包含毛刺异常值的模拟轨道几何不平顺信号进行消刺处理, 滤波后的信号与解析信号的误差小于10-3; 利用改进方法不但能准确识别毛刺异常值的位置并自动修复, 而且能完整保留道岔处大轨距和大轨向等有用信息。

     

  • 图  1  加噪轨道几何不平顺信号

    Figure  1.  Noise-imposed signal of track geometry irregularity

    图  2  轨道几何不平顺模拟信号

    Figure  2.  Simulation signal of track geometry irregularity

    图  3  冲击噪声信号

    Figure  3.  Impulse noise signal

    图  4  滤波后的模拟几何不平顺信号

    Figure  4.  Simulation signal of geometry irregularity after filtering

    图  5  几何不平顺信号的误差曲线

    Figure  5.  Error curve of geometry irregularity signal

    图  6  滤波前高低不平顺信号

    Figure  6.  Profile irregularity signal before filtering

    图  7  滤波后的高低不平顺信号

    Figure  7.  Profile irregularity signal after filtering

    图  8  滤波前后高低不平顺信号差

    Figure  8.  Profile irregularity signals'difference before and after filtering

    图  9  K186+030~060处滤波前后的高低不平顺信号

    Figure  9.  Profile irregularity signals before and after filtering at K186+030-060

    图  10  K205+025~055处滤波前后的高低不平顺信号

    Figure  10.  Profile irregularity signals before and after filtering at K205+025-055

    图  11  K221+360~390滤波前后的高低不平顺信号

    Figure  11.  Profile irregularity signals before and after filtering at K221+360-390

    图  12  K304+930~960处滤波前后的高低不平顺信号

    Figure  12.  Profile irregularity signals before and after filtering at K304+930-960

    图  13  滤波前的轨向不平顺信号

    Figure  13.  Track alignment irregularity signal before filtering

    图  14  滤波后的轨向不平顺信号

    Figure  14.  Track alignment irregularity signal after filtering

    图  15  滤波前后的轨向不平顺信号差

    Figure  15.  Track alignment irregularity signal's difference before and after filtering

    图  16  K201+680~710处滤波前后的轨向不平顺信号

    Figure  16.  Track alignment irregularity signals before and after filtering at K201+680-710

    图  17  K468+165~195处滤波前后的轨向不平顺信号

    Figure  17.  Track alignment irregularity signals before and after filtering at K468+165-195

    图  18  K200+225~255处滤波前后的轨向不平顺信号

    Figure  18.  Track alignment irregularity signals before and after filtering at K200+225-255

    图  19  K404+610~640滤波前后的轨向不平顺信号

    Figure  19.  Track alignment irregularity signals before and after filtering at K404+610-640

    图  20  滤波前的轨距信号

    Figure  20.  Track gauge signal before filtering

    图  21  滤波后的轨距信号

    Figure  21.  Track gauge signal after filtering

    图  22  滤波前后的轨距信号差

    Figure  22.  Track gauge signal difference before and after filtering

    图  23  K64+670~700处滤波前后的轨距信号

    Figure  23.  Track gauge signals before and after filtering at K64+670-700

    图  24  K76+060~110处滤波前后的轨距信号

    Figure  24.  Track gauge signals before and after filtering at K76+060-110

    图  25  K67+215~245处滤波前后的轨距信号

    Figure  25.  Track gauge signals before and after filtering at K67+215-245

    图  26  K200+520~570滤波前后的轨距信号

    Figure  26.  Track gauge signals before and after filtering at K200+520-570

    表  1  计算时间比较

    Table  1.   Comparison of computation times

  • [1] MADEJSKI J. Autonomous track geometry diagnostics system[J]. Journal of Materials Processing Technology, 2004, 157-158: 194-202. doi: 10.1016/j.jmatprotec.2004.09.029
    [2] 柴东明, 魏世斌, 夏亮光, 等. 轨道状态确认车检测系统的研制[J]. 中国铁道科学, 2004, 25(1): 34-40. doi: 10.3321/j.issn:1001-4632.2004.01.006

    CHAI Dong-ming, WEI Shi-bin, XIA Liang-guang, et al. Research on measurement systems of track status confirmation car[J]. China Railway Science, 2004, 25(1): 34-40. (in Chinese) doi: 10.3321/j.issn:1001-4632.2004.01.006
    [3] CHANDRA C, MOORE M S, MITRA S K. An efficient method for the removal of impulse noise from speech and audio signals[C]//IEEE. Proceedings of the 1998 IEEE International Symposium on Circuits and Systems. New York: IEEE, 1998: 206-209.
    [4] 王旌阳, 张潇, 朱俊敏, 等. 基于时频谱图的脉冲噪声抑制方法[J]. 振动与冲击, 2010, 29(2): 149-153, 192, 227. doi: 10.3969/j.issn.1000-3835.2010.02.034

    WANG Jing-yang, ZHANG Xiao, ZHU Jun-min, et al. Impulsive noise suppression based on time-frequency spectrogram[J]. Journal of Vibration and Shock, 2010, 29(2): 149-153, 192, 227. (in Chinese) doi: 10.3969/j.issn.1000-3835.2010.02.034
    [5] ABREU E, LIGHTSTONE M, MITRA S K, et al. A new efficient approach for the removal of impulse noise from highly corrupted images[J]. IEEE Transactions on Image Processing, 1996, 5(6): 1012-1025. doi: 10.1109/83.503916
    [6] CIVICIOGLU P. Removal of random-valued impulsive noise from corrupted images[J]. IEEE Transactions on Consumer Electronics, 2009, 55(4): 2097-2104. doi: 10.1109/TCE.2009.5373774
    [7] ALIS A, MAN Hong, KHASHANAH K. Cascade windowbased procedure for impulse noise removal in heavily corrupted images[J]. Journal of Electronic Imaging, 2010, 19(1): 1-10.
    [8] SCHULTES, NACHTEGAEL M, WITTE V D, et al. Fuzzy impulse noise detection and reduction method[J]. IEEE Transactions on Image Processing, 2006, 15(5): 1153-1162. doi: 10.1109/TIP.2005.864179
    [9] RUSSO F, RAMPONI G. A fuzzy filter for images corrupted by impulse noise[J]. IEEE Signal Processing Letters, 1996, 3(6): 168-170. doi: 10.1109/97.503279
    [10] 范磊, 黄双华. 一种基于小波去噪的脉冲噪声抑制方法[J]. 舰船电子工程, 2008, 28(9): 104-106. doi: 10.3969/j.issn.1627-9730.2008.09.029

    FAN Lei, HUANG Shuang-hua. An impulse denoising algorithm based on wavelet denoising[J]. Ship Electronic Engineering, 2008, 28(9): 104-106. (in Chinese) doi: 10.3969/j.issn.1627-9730.2008.09.029
    [11] MALLATS G. A theory of multiresolution signal decomposition: the wavelet representation[J]. IEEE Transactions on Pattern Analysis and Machine Intelligence, 1989, 11(7): 674-693. doi: 10.1109/34.192463
    [12] YIN Lin, YANG Rui-kang, GABBOUJ M, et al. Weighted median filters: a tutorial[J]. IEEE Transactions Symposium on Circuits and Systems, 1996, 43(3): 157-192. doi: 10.1109/82.486465
    [13] CHAN R H, HO C W, NIKOLOVA M. Salt-and-pepper noise removal by median-type noise detectors and detailpreserving regularization[J]. IEEE Transactions on Image Processing, 2005, 14(10): 1479-1485. doi: 10.1109/TIP.2005.852196
    [14] ASTOLA J T. Performance analysis of the two-state signaldependent rank order mean filter[J]. Nonlinear Image Processing, 1999, 1(2): 56-66.
    [15] 刘金朝, 王卫东, 孙善超, 等. 铁路轨道几何数据冲击噪声小波-有序中值滤波方法[J]. 振动与冲击, 2014, 33(10): 29-33. https://www.cnki.com.cn/Article/CJFDTOTAL-ZDCJ201410006.htm

    LIU Jin-zhao, WANG Wei-dong, SUN Shan-chao, et al. Removing spike noise in railway track geometric data with a wavelet-rank order mean filter[J]. Journal of Vibration and Shock, 2014, 33(10): 29-33. (in Chinese) https://www.cnki.com.cn/Article/CJFDTOTAL-ZDCJ201410006.htm
    [16] ITAGAKI H. Improvements of nuclear magnetic resonance image quality using iterations of adaptive nonlinear filtering[J]. IEEE Transactions on Medical Imaging, 1993, 12(2): 322-327. doi: 10.1109/42.232262
    [17] CHEN Tao, WU Hong-ren. Adaptive impulse detection using center-weighted median filters[J]. IEEE Signal Processing Letters, 2001, 8(1): 1-3. doi: 10.1109/97.889633
    [18] AKKOUL S, LÉDÉE R, LECONGE R, et al. A new adaptive switching median filter[J]. IEEE Signal Processing Letters, 2010, 17(6): 587-590. doi: 10.1109/LSP.2010.2048646
    [19] CHAN R H, HU C, NIKOLOVA M. An iterative procedure for removing random-valued impulse noise[J]. IEEE Signal Processing Letters, 2004, 11(12): 921-924. doi: 10.1109/LSP.2004.838190
    [20] DI CLAUDIO E D, ORLANDI G, PIAZZA F, et al. An improved LS algorithm for the estimation of an impulsive noise corrupted signal by linear programming[C]//IEEE. Proceedings IEEE International Symposium on Circuits and Systems, 1991. New York: IEEE, 1991: 714-717.
    [21] NASO D, SCALERA A, AURISICCHIO G, et al. Removing spike noise from railway geometry measures with a fuzzy filter[J]. IEEE Transactions on Systems, Man and Cybernetics-Part C: Applications and Reviews, 2006, 36(4): 485-494. doi: 10.1109/TSMCC.2006.875422
    [22] RUSSO F. Impulse noise detection and filtering using fuzzy models[C]//IEEE. Proceedings of the 17th IEEE Instrumentation and Measurement Technology Conference. New York: IEEE, 2000: 1041-1044.
    [23] ZHANG D, WANG Z. Impulse noise detection and removal using fuzzy techniques[J]. IEEE Electronics Letters, 1997, 33(5): 378-379.
    [24] BABUSKA I, MELENK J M. The partition of unity method[J]. Computer Method in Applied Mechanics and Engineering, 1997, 140(4): 727-758.
    [25] MELENK J M, BABUSKA I. The partition of unity finite element method: basic theory and application[J]. Computer Method in Applied Mechanics and Engineering, 1996, 139(1-4): 289-314.
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  • 收稿日期:  2015-11-13
  • 刊出日期:  2016-04-25

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