• Optics and Precision Engineering
  • Vol. 18, Issue 7, 1661 (2010)
ZHANG Hao*, YUAN Yi-bao, and ZHANG Feng
Author Affiliations
  • [in Chinese]
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    DOI: Cite this Article
    ZHANG Hao, YUAN Yi-bao, ZHANG Feng. Application of Butterworth wavelet to surface topographic signal separation[J]. Optics and Precision Engineering, 2010, 18(7): 1661 Copy Citation Text show less
    References

    [1] BRUZZONE A A G, MONTANARO J S, FERRANDO A, et al.. Wavelet analysis for surface characterisation: an experimental assessment[J]. CIRP Annals - Manufacturing Technology, 2004,53(1):479-482.

    [2] International Organization for Standardization.ISO4287:1997. Geometrial product specificatin(GPS)-surface texture: profile method-terms, definitions and surface texture parameters[S].Switzerland:International Organization for Standardization.

    [3] ZHANG H, YUAN Y B, ZHANG F, et al.. Application of generalized B spline filter to surface measurement[J]. Opt. Precision Eng., 2008,16(9):1722-1726.(in Chinese)

    [4] XU J B, YUAN Y B, LIU B. Establishment of mean line in surface metrology by B-spline filter[J]. Opt. Precision Eng., 2008,16(8):1411-1415.(in Chinese)

    [5] LI H Y, LIU G D, LIU B G, et al.. Application of double density wavelet transform to surface topographic signal separation[J]. Opt. Precision Eng., 2008,16(6):1093-1097.(in Chinese)

    [6] RAJA J, MURALIKRISHNAN B, SHENGYU F. Recent advances in separation of roughness, waviness and form[J]. Precision Engineering, 2002,26(2):222-235.

    [7] XIAO S J, JIANG X Q, BlUNT L, et al.. Comparison study of the biorthogonal spline wavelet filtering for areal rough surfaces[J]. International Journal of Machine Tools & Manufacture, 2001,41(13-14):2103-2111.

    [8] FAN Q B. Wavelet Analysis[M]. Wuhan: Wuhan University Press, 2008.(in Chinese)

    [9] SHENGYU F, MURALIKRISHNAN B, RAJA J. Engineering surface analysis with different wavelet bases[J]. Journal of Manufacturing Science and Engineering, 2003,125:844-852.

    [10] AMIR Z A, VALERY A Z. Construction of bior- thogonal discrete wavelet transforms using interpolatory splines[J]. Applied and Computational Harmonic Analysis, 2002,12(1):25-56.

    [11] AMIR Z A, ALEXANDERl B P, VALERY A Z. Butterworth wavelet transforms derived form discrete interpolatory splines; recursive implementation[J]. Signal Processing, 2001,81(11):2363-2382.

    [12] JIANG X Q, BLUNT L, STOUT K J. Application of the lifting wavelet to rough surfaces[J]. Precision Engineering, 2001,25(2):83-89.

    [13] SWELDENS W. The lifting scheme: a custom design construction of biorthogonal wavelets[J]. Appl. Comput. Harmon. Anal., 1996,3(2):186-200.

    [14] JIANG X, SCOTT P, WHITEHOUSE D. Wavelets and their applications for surface metrology[J]. Manufacturing Technology, 2008,57(1):555-558.

    [15] CHEN Q H, YANG S N, LI Z. Surface roughness evaluation by using wavelets analysis[J]. Precision Engineering, 1999,23(3):209-212.

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    ZHANG Hao, YUAN Yi-bao, ZHANG Feng. Application of Butterworth wavelet to surface topographic signal separation[J]. Optics and Precision Engineering, 2010, 18(7): 1661
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