• Laser & Optoelectronics Progress
  • Vol. 57, Issue 22, 221101 (2020)
Peng Jiang1, Weixin Wang2, Ning Zhang2、*, Chengming Wang3, Wei Huang2, Gaojun Shi2, Xiaojing Xu2, and Shuhui Gao1、*
Author Affiliations
  • 1School of Forensic Science and investigation, People's Public Security University of China, Beijing 100038, China
  • 2National Engineering Laboratory for Forensic Science, Institute of Forensic Science, Ministry of Public Security, Beijing 100038, China
  • 3State Key Laboratory of Low-Dimensional Quantum Physics, Tsinghua University, Beijing 100084, China
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    DOI: 10.3788/LOP57.221101 Cite this Article Set citation alerts
    Peng Jiang, Weixin Wang, Ning Zhang, Chengming Wang, Wei Huang, Gaojun Shi, Xiaojing Xu, Shuhui Gao. Preliminary Study on Determining the Sequence of Intersecting Lines Using Optical Coherence Tomography[J]. Laser & Optoelectronics Progress, 2020, 57(22): 221101 Copy Citation Text show less
    References

    [1] Poulin G. Establishing the sequence of strokes: the state of the art[J]. International Journal of Forensic Document Examiners, 2, 16-32(1996).

    [2] Han W[M]. Theory and new technology of identification of seals and stamps identification about forensic science, 7-15(2018).

    [3] Ellen D. The scientific examination of documents: methods and techniques[M]. 2nd ed. London: Taylor & Francis(1997).

    [4] Feng C, Liu K M, Li J[J]. The research of sequence determination of seal and printed characters by measuring the stroke width Forensic Science and Technology, 2012, 35-38.

    [5] Wang X G, Hao H G, Wang J S et al. Experimental study on the timing of printed text and laser printed handwriting using fuser transfer method[J]. Journal of Chinese People's Public Security University (Science and Technology), 17, 5-8(2011).

    [6] Han W[J]. A study on identification of analyzing the sequence of handwriting and stamp by resistance measurement technology Journal of Criminal Investigation Police University of China, 2019, 97-102.

    [7] Radley R W. Determination of sequence of ball point pen writing utilizing infrared luminescence techniques[J]. Journal of the Forensic Science Society, 22, 373-375(1982).

    [8] Kim J, Kim M, An J et al. Determination of the sequence of intersecting lines using focused ion beam/scanning electron microscope[J]. Journal of Forensic Sciences, 61, 803-808(2016).

    [9] Li B, Ouyang G L, Zhao P N. Preliminary study on determining the sequence of intersecting lines by fluorescence technique[J]. Journal of Forensic Sciences, 63, 577-582(2018).

    [10] Jia Y W, Zou M L[M]. Inspection of Chinese criminal science and technology encyclopedia(2002).

    [11] Cheng K C, Chao C H, Jeng B S et al. A new method of identifying writing sequence with the laser scanning confocal microscope[J]. Journal of Forensic Sciences, 43, 348-352(1998).

    [12] Wei S, Liu S, Chen W N et al[J]. Sequencing of the crossed stamp impression and printed text by polarized microscope Chinese Journal of Forensic Sciences, 2018, 60-63.

    [13] Kasas S, Khanmy-Vital A, Dietler G. Examination of line crossings by atomic force microscopy[J]. Forensic Science International, 119, 290-298(2001).

    [14] Song Z Y, Bai X F[J]. Sequencing of cross strokes by three-dimensional stereomicroscope Chinese Journal of Forensic Sciences, 2018, 56-60.

    [15] Fabiañska E, Kunicki M. Raman spectroscopy as a new technique for determining the sequence of intersecting lines[J]. Problems of Forensic Sciences, 53, 60-73(2003).

    [16] Li B. An examination of the sequence of intersecting lines using microspectrophotometry[J]. Journal of Forensic Sciences, 61, 809-814(2016).

    [17] Bojko K, Roux C, Reedy B J. An examination of the sequence of intersecting lines using attenuated total reflectance Fourier transform infrared spectral imaging[J]. Journal of Forensic Sciences, 53, 1458-1467(2008).

    [18] Bao R, Zhang C X[J]. Research on the application of spectral imaging in sequencing writing and stamp impressions Chinese Journal of Forensic Sciences, 2008, 36-38.

    [19] Kaur R, Saini K, Sood N C. Application of video spectral comparator (absorption spectra) for establishing the chronological order of intersecting printed strokes and writing pen strokes[J]. Science & Justice, 53, 212-219(2013).

    [20] Huang D, Swanson E, Lin C et al. Optical coherence tomography[J]. Science, 254, 1178-1181(1991).

    [21] Gao Y, Li Z L, Zhang J H et al. Automatic measurement method for corneal thickness of optical coherence tomography images[J]. Acta Optica Sinica, 39, 0311003(2019).

    [22] Wang Q, Peng H L, Wang P H et al. Dither removing of three-dimensional optical coherence tomography retinal image[J]. Acta Optica Sinica, 39, 0317001(2019).

    [23] Cense B, Chen T C, Park B H et al. In vivo birefringence and thickness measurements of the human retinal nerve fiber layer using polarization-sensitive optical coherence tomography[J]. Journal of Biomedical Optics, 9, 121-125(2004).

    [24] Chen Z P, Zhao Y H, Srinivas S M et al. Optical Doppler tomography[J]. IEEE Journal of Selected Topics in Quantum Electronics, 5, 1134-1142(1999).

    [25] Gao Y Z, Yuan Y, Ma Z H. High-resolution cortical blood flow imaging based on optical coherence tomography[J]. Laser&Optoelectronics Progress, 56, 111101(2019).

    [26] Li P, Li P. Mass sample optical coherence tomography angiography technology and application[J]. Chinese Journal of Lasers, 45, 0307001(2018).

    [27] Welzel J, Lankenau E, Birngruber R et al. Optical coherence tomography of the human skin[J]. Journal of the American Academy of Dermatology, 37, 958-963(1997).

    [28] Fu L, Su Y, Li G H et al. Application of maximum likelihood type estimates in noninvasive blood glucose monitoring in vivo using optical coherence tomography[J]. Laser & Optoelectronics Progress, 53, 031701(2016).

    [29] Su Y, Meng Z, Wang L Z et al. Correlation analysis and calibration of noninvasive blood glucose monitoring in vivo with optical coherence tomography[J]. Chinese Journal of Lasers, 41, 0704002(2014).

    [30] Sun W, Li J N, Qi L Y et al. Detection of dental root fractures based on endoscopic swept source optical coherence tomography[J]. Acta Optica Sinica, 39, 0811002(2019).

    [31] Shi B Y, Meng Z, Liu T G et al. Non-distorted imaging depth of optical coherence tomography system in human dental tissues[J]. Acta Optica Sinica, 34, 0217001(2014).

    [32] Wang Z G, Durand D B, Schoenberg M et al. Fluorescence guided optical coherence tomography for the diagnosis of early bladder cancer in a rat model[J]. Journal of Urology, 174, 2376-2381(2005).

    [33] Si P J, Wang L, Xu M E et al. Tumor cell invasion imaging based on optical coherence tomography[J]. Chinese Journal of Lasers, 46, 0907003(2019).

    [34] Hou F, Yang Z H, Gu W Q et al. Intraoperative three-dimensional imaging of neck tissues based on optical coherence tomography[J]. Acta Optica Sinica, 39, 0117001(2019).

    [35] Luo S T, Fan Y W, Chang W et al. Boundary region of stomach mucinous carcinoma with swept source optical coherence tomography[J]. Acta Optica Sinica, 38, 0517001(2018).

    [36] Choi W J, Min G H, Lee B H et al. Counterfeit detection using characterization of safety feature on banknote with full-field optical coherence tomography[J]. Journal of the Optical Society of Korea, 14, 316-320(2010).

    [37] Meissner S, Breithaupt R, Koch E. Fingerprint fake detection by optical coherence tomography[J]. Proceedings of SPIE, 8571, 85713L(2013).

    [38] Laan N, Bremmer R H. Aalders M C G, et al. Volume determination of fresh and dried bloodstains by means of optical coherence tomography[J]. Journal of Forensic Sciences, 59, 34-41(2014).

    [39] Choi W J, Pi L Q, Min G et al. Qualitative investigation of fresh human scalp hair with full-field optical coherence tomography[J]. Journal of Biomedical Optics, 17, 036010(2012).

    [40] Dubey S K, Anna T, Shakher C et al. Fingerprint detection using full-field swept-source optical coherence tomography[J]. Applied Physics Letters, 91, 181106(2007).

    [41] Zhang N, Wang C M, Sun Z W et al. Characterization of automotive paint by optical coherence tomography[J]. Forensic Science International, 266, 239-244(2016).

    [42] Liu K K, Meng L, Zhang N et al. Characterization of electrical tapes by optical coherence tomography[J]. Laser&Optoelectronics Progress, 55, 011101(2018).

    [43] Chen J T, Chen W N. Research on the application of micro 3D stereo imaging technology in sequencing writing and stamp impressions[J]. Journal of Railway Police College, 26, 36-40(2016).

    [44] Drexler W, Fujimoto J G. Optical coherence tomography[M]. Berlin: Springer(2008).

    [45] Zhang Q Q. Spectral domain optical coherence tomography and the application in biomedicine[D]. Tianjin: Nankai University, 25(2012).

    [46] Wang L. Research and implementation of wideband high resolution frequency synthesizer[D]. Chengdu: University of Electronic Science and Technology of China, 8(2017).

    [47] Zhang N. Study of the endoscopic spectral-domain optical coherence tomography[D]. Beijing: Tsinghua University, 3(2014).

    [48] Pan W B. Modeling and analysis of thermal bubble inkjet based on hybrid system theory[D]. Xi’an: Xidian University, 7-9(2010).

    Peng Jiang, Weixin Wang, Ning Zhang, Chengming Wang, Wei Huang, Gaojun Shi, Xiaojing Xu, Shuhui Gao. Preliminary Study on Determining the Sequence of Intersecting Lines Using Optical Coherence Tomography[J]. Laser & Optoelectronics Progress, 2020, 57(22): 221101
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