• Journal of Innovative Optical Health Sciences
  • Vol. 10, Issue 1, 1650031 (2017)
, , , , and *
Author Affiliations
  • Department of Biomedical Engineering, Nanjing University of Aeronautics and Astronautics, 29 Yudao Street, Nanjing 210016, P. R. China
  • show less
    DOI: 10.1142/s1793545816500310 Cite this Article
    [in Chinese], [in Chinese], [in Chinese], [in Chinese], [in Chinese]. A real-time artifact reduction algorithm based on precise threshold during short-separation optical probe insertion in neurosurgery[J]. Journal of Innovative Optical Health Sciences, 2017, 10(1): 1650031 Copy Citation Text show less
    References

    [1] L. Zhao, L. V.-Metman, J. H. Kim, C. C. Liu, F. A. Lenz, “EMG activity and neuronal activity in the internal globus pallidus (GPi) and their interaction are different between hemiballismus and apomor-phine induced dyskinesias of Parkinson's disease (AID)," Brain Res. 1603, 50–64 (2015).

    [2] C. R. Johannes, K. Y. Michele, C. Kim, P. Luo, J. M. William, M. W. Frances, S. Matthew, F. Kenneth, R. Domenic, “Neuropsychological changes following deep brain stimulation surgery for Parkinson's dis-ease: Comparisons of treatment at pallidal and sub-thalamic targets versus best medical therapy," J. Neurol. Neurosurg. Psychiatry 86, 622–629 (2015).

    [3] J. Z. Andrew, J. N. Gerald, D. Michel, S. T. Robert, “Movement-related discharge in the macaque globus pallidus during high-frequency stimulation of the subthalamic nucleus," J. Neurosci. 35, 3978–3989 (2015).

    [4] A. B. David, M. D. Anders, A. F. Maria, “Deep-brain stimulation of the subthalamic nucleus or the pars interna of the globus pallidus in Parkinson's disease," The New Eng. J. Med. 345, 956–963 (2001).

    [5] J. A. Obeso, C. M. Olanow, M. C. Rodriguez-Oroz, P. Krack, R. Kumar, A. E. Lang, “Diffuse optical imaging of brain activation: Approaches to opti-mizing image sensitivity, resolution," NeuroImage 23, 275–288 (2004).

    [6] H. Lai, R. Y. John, L. A. Daniel, J. K. Yu-Chieh, I. S. Yen-Yu, “Functional MRI reveals frequency-dependent responses during deep brain stimulation at the subthalamic nucleus or internal globus pal-lidus," NeuroImage 84, 11–18 (2014).

    [7] K. Joshua, U. Maren, M. Rosalyn, F. Guillaume, M. Andre, M. Laura, W. Mark, T. John, Y. Tarek, Z. Ludvic, H. Marwan, L. Patricia, F. Karl, F. Tom, “Resting state functional MRI in Parkinson's dis-ease: The impact of deep brain stimulation on `ef-fective' connectivity," Brain 173, 1130–1144 (2014).

    [8] J. A. Frederick, R. B. Bastiaan, M. Philipp, S. Klaus, G. Bozena, “Update on diffusion MRI in Parkinson's disease and atypical parkinsonism," J. Neurol. Sci. 332, 21–29 (2014).

    [9] F. Jobsis, “Non-invasive infrared monitoring of ce-rebral and myocardial oxygen sufficiency and cir-culatory Parameters," Science 198, 1264–1267 (1977).

    [10] L. Dai, Z. Qian, K. Li, T. Yang, H. Wang, “In vivo detection of reduced scattering coefficient of C6 glioma in rat brain tissue by near-infrared spectro-scopy," J. Biomed. Opt. 13, 044003 (2008).

    [11] S.-H. Kong, Y.-W. Noh, Y.-S. Suh, H. S. Park, H.-J. Lee, K. W. Kang, H. C. Kim, Y. T. Lim, H.-K. Yang, “Evaluation of the novel near-infrared fluo-rescence tracers pullulan polymer nanogel and indocyanine green/ -glutamic acid complex for sentinel lymph node navigation surgery in large animal models," Gastric Cancer 18, 55–64 (2015).

    [12] N. R.-Labarbe, A. Fenoglio, A. Aggarwal, M. Dehaes, St. A Carp, M. A. Franceschini, P. E. Grant, “Near-infrared spectroscopy assessment of cerebral oxygen metabolism in the developing pre-mature brain," J. Cerebral Blood Flow Metabol. 32, 481–488 (2012).

    [13] J. Maureen, G. Cole, H. Liu, “Computational and in vivo investigation of optical reflectance from human brain to assist neurosurgery," J. Biomed. Opt. 3, 437–445 (1998).

    [14] A. G. Cole, J. Maureen, H. Liu, “Use of an intra-cranial near-infrared probe for localization during stereotactic surgery for movement disorders," J. Neurosurg. 93, 498–505 (2000).

    [15] A. G. Cole, H. Liu, G. Prem, V. Sundar, Y. Umar, C. G. Dwight, “Validation of a near-infrared probe for detection of thin intracranial white matter structures," J. Neurosurg. 98, 1299–1306 (2003).

    [16] J. R. Mourant, T. M. Johnson, G. Los, I. J. Bigio, “Non-invasive measurement of chemotherapy drug concentrations in tissue: Preliminary demonstra-tions of in vivo measurement," Phys. Med. Biol. 44, 1397–1417 (1999).

    [17] Z. Qian, S. V. Sundar, Y. Gu, A. G. Cole, H. Liu, Look-Ahead Distance" of a fiber probe used to assist neurosurgery: Phantom and Monte Carlo study," Opt. Express 11, 1844–1855 (2003).

    [18] L. Guo, Z. Qian, W. Li, “Research on look ahead distance (LAD) in the mini-invasive penetration track of biology tissue by near infrared spectroscopy (NIRS) technique," Annual Meeting of the Chinese Optical Society, Quanzhou, Fujian (2008).

    [19] J. Maureen, H. Liu, “Calculating the reduced scat-tering coefficient of turbid media from a single op-tical reflectance signal," Proc. SPIE 4958, 251–258 (2003).

    [20] J. Maureen, A. G. Cole, C. G. Dwight, H. Liu, “Determination of reduced scattering coefficient of biological tissue from a needle-like probe," Opt. Express 13, 4828–4842 (2005).

    [21] L. J. Elizabeth, J. Huang, R. A. Nadeem, J. G. Ginger, L. B. Carol, S. Yukio, R. B. Richard, A. L. Douglas, M. L. Mario, “Detection of sentinel lymph nodes in minimally invasive surgery using indocya-nine green and near-infrared fluorescence imaging for uterine and cervical malignancies," Gynecol. Oncol. 133, 274–277 (2014).

    [22] M. Ikeda, A. Matsushita, “Matsushita Reflectance of rat brain structures mapped by an optical fiber technique," J. Neurosci. Methods 2, 9–17 (1980).

    [23] M. Dehaes, P. E. Grant, D. D. Sliva, N. R.-Labarbe, R. Pienaar, D. A. Boas, M. A. Franceschini, J. Selb, “Assessment of the frequency-domain multi-distance method to evaluate the brain optical properties: Monte Carlo simulations from neonate to adult," Biomed. Opt. Express 2, 552–567 (2011).

    [24] R. S. Agnes, A.-M. Broome, J. Wang, A. Verma, K. Lavik, J. P. Basilion,“An optical probe for nonin-vasive molecular imaging of orthotopic brain tumors overexpressing epidermal growth factor receptor," Mol. Cancer Ther. 11, 2202–2211 (2012).

    [25] J. R. Lee, M. T. Madsen, D. Bushnel, Y. Menda, “A threshold method to improve standardized uptake value reproducibility," Nucl. Med. Commun. 21, 685–690 (2000).

    [in Chinese], [in Chinese], [in Chinese], [in Chinese], [in Chinese]. A real-time artifact reduction algorithm based on precise threshold during short-separation optical probe insertion in neurosurgery[J]. Journal of Innovative Optical Health Sciences, 2017, 10(1): 1650031
    Download Citation