Clinical evaluation of non-invasive blood glucose measurement by using near infrared spectroscopy via inter- and intra-subject analysis
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[1] Dawn M. Bina,et al. Clinical impact of prandial state, exercise, and site preparation on the equivalence of alternative-site blood glucose testing. , 2003, Diabetes care.
[2] M. Kinnunen,et al. Effect of glucose on photoacoustic signals at the wavelengths of 1064 and 532 nm in pig blood and intralipid , 2005 .
[3] S. Mirov,et al. Using two discrete frequencies within the middle infrared to quantitatively determine glucose in serum. , 2002, Journal of biomedical optics.
[4] S. Piletsky,et al. In vitro diagnostics in diabetes: meeting the challenge. , 1999, Clinical chemistry.
[5] Risto Myllylä,et al. In vitro studies toward noninvasive glucose monitoring with optical coherence tomography. , 2006, Applied optics.
[6] B. Wilson,et al. Monte Carlo modeling studies of the effect of physiological factors andother analytes on the determination of glucose concentration in vivoby near infrared optical absorption and scattering measurements. , 1997, Journal of biomedical optics.
[7] Olga Lyandres,et al. Real-time glucose sensing by surface-enhanced Raman spectroscopy in bovine plasma facilitated by a mixed decanethiol/mercaptohexanol partition layer. , 2005, Analytical chemistry.
[8] Gilwon Yoon,et al. Factor analysis for comparing NIR reflection and transmittance for noninvasive glucose measurement , 2004, SPIE BiOS.
[9] Y. Jang,et al. Standards of Medical Care in Diabetes-2010 by the American Diabetes Association: Prevention and Management of Cardiovascular Disease , 2010 .
[10] G. Coté,et al. Dual-wavelength polarimetry for monitoring glucose in the presence of varying birefringence. , 2005, Journal of biomedical optics.
[11] R O Potts,et al. Detection of hypoglycemia with the GlucoWatch biographer. , 2001, Diabetes care.
[12] O. Khalil,et al. Spectroscopic and clinical aspects of noninvasive glucose measurements. , 1999, Clinical chemistry.
[13] Kexin Xu,et al. Influence of contact state on NIR diffuse reflectance spectroscopy in vivo , 2005 .
[14] M. Riley,et al. The effect of analyte concentration range on measurement errors obtained by NIR spectroscopy. , 2000, Talanta.
[15] J. Schultz,et al. A fluorescence affinity hollow fiber sensor for continuous transdermal glucose monitoring. , 2000, Analytical chemistry.
[16] Mark A Arnold,et al. In vivo near-infrared spectroscopy of rat skin tissue with varying blood glucose levels , 2004, SPIE BiOS.
[17] D. Cox,et al. Evaluating Clinical Accuracy of Systems for Self-Monitoring of Blood Glucose , 1987, Diabetes Care.
[18] Dawn B. Marks,et al. Basic Medical Biochemistry: A Clinical Approach , 1997 .
[19] H. H. Madden. Comments on the Savitzky-Golay convolution method for least-squares-fit smoothing and differentiation of digital data , 1976 .
[20] H. Heise,et al. Noninvasive Blood Glucose Assay by Near-Infrared Diffuse Reflectance Spectroscopy of the Human Inner Lip , 1993 .
[21] Jeffrey J. Kelly,et al. Tissue temperature by near-infrared spectroscopy , 1995, Photonics West.
[22] Jürgen Popp,et al. Non-invasive glucose determination in the human eye , 2005 .
[23] M A Arnold,et al. Noninvasive blood glucose measurements by near-infrared transmission spectroscopy across human tongues. , 2000, Diabetes technology & therapeutics.
[24] Shu-Jen Yeh,et al. Monitoring blood glucose changes in cutaneous tissue by temperature-modulated localized reflectance measurements. , 2003, Clinical chemistry.
[25] Yukio Yamada,et al. Simulation study of in vitro glucose measurement by NIR spectroscopy and a method of error reduction. , 2003, Physics in medicine and biology.
[26] S. Wild,et al. Global prevalence of diabetes: estimates for the year 2000 and projections for 2030. , 2004, Diabetes care.
[27] J. W. Hall,et al. Near-infrared spectrophotometry: a new dimension in clinical chemistry. , 1992, Clinical chemistry.
[28] Frank K. Tittel,et al. Mid-Infrared Laser Applications in Spectroscopy , 2003 .
[29] Mamoru Tamura,et al. Noninvasive blood glucose monitoring by novel optical-fiber probe , 2002, SPIE BiOS.
[30] F. D. de Mul,et al. Temperature modulation of the visible and near infrared absorption and scattering coefficients of human skin. , 2003, Journal of biomedical optics.
[31] J. Castillo,et al. Determination of Glucose in Blood Based on the Intrinsic Fluorescence of Glucose Oxidase , 1997 .
[32] R. Tobias. An Introduction to Partial Least Squares Regression , 1996 .
[33] Myllyl¨a Risto,et al. Pulsed Photoacoustic Techniques and Glucose Determination in Human Blood and Tissue , 2002 .
[34] H M Heise,et al. Transcutaneous glucose measurements using near-infrared spectroscopy: validation of statistical calibration models. , 2000, Diabetes care.
[35] Britton Chance,et al. Optical Tomography, Photon Migration, and Spectroscopy of Tissue and Model Media: Theory, Human Studies, and Instrumentation , 1995 .
[36] H. M. Heise,et al. Clinical Chemistry and near Infrared Spectroscopy: Technology for Non-Invasive Glucose Monitoring , 1998 .
[37] J. Samet,et al. Food and Drug Administration , 2007, BMJ : British Medical Journal.
[38] P. A. Gorry. General least-squares smoothing and differentiation by the convolution (Savitzky-Golay) method , 1990 .
[39] M. Faupel,et al. Glucose sensing in transdermal body fluid collected under continuous vacuum pressure via micropores in the stratum corneum. , 2003, Diabetes technology & therapeutics.
[40] A. Duncan,et al. A Portable Non-invasive Blood Glucose Monitor , 1995, Proceedings of the International Solid-State Sensors and Actuators Conference - TRANSDUCERS '95.
[41] M A Arnold,et al. Phantom glucose calibration models from simulated noninvasive human near-infrared spectra. , 1998, Analytical chemistry.
[42] A. Savitzky,et al. Smoothing and Differentiation of Data by Simplified Least Squares Procedures. , 1964 .
[43] H M Heise. Non-invasive monitoring of metabolites using near infrared spectroscopy: state of the art. , 1996, Hormone and metabolic research = Hormon- und Stoffwechselforschung = Hormones et metabolisme.
[44] Sang Jun Moon,et al. A novel fabrication method of a microneedle array using inclined deep x-ray exposure , 2005 .
[45] E. V. Thomas,et al. Noninvasive glucose monitoring in diabetic patients: a preliminary evaluation. , 1992, Clinical chemistry.
[46] Kexin Xu,et al. Chance correlation in non-invasive glucose measurement using near-infrared spectroscopy , 2005 .
[47] Bruce A Buckingham,et al. Use of the Cygnus GlucoWatch biographer at a diabetes camp. , 2004, Pediatrics.
[48] Hideyuki Abe,et al. A Study on the Universality of a Calibration with Sample Temperature Compensation , 2000 .
[49] H. M. Heise. Technology for non-invasive monitoring of glucose , 1996, Proceedings of 18th Annual International Conference of the IEEE Engineering in Medicine and Biology Society.
[50] H. Heise,et al. Near-Infrared Reflectance Spectroscopy for Noninvasive Monitoring of Metabolites , 2000, Clinical chemistry and laboratory medicine.
[51] S. Kawano,et al. Development of a Calibration Equation with Temperature Compensation for Determining the Brix Value in Intact Peaches , 1995 .
[52] M. Feld,et al. Raman spectroscopy for noninvasive glucose measurements. , 2005, Journal of biomedical optics.
[53] D. Price,et al. Physiological influences on off-finger glucose testing. , 2001, Diabetes technology & therapeutics.
[54] Yukio Yamada,et al. Noninvasive blood glucose assay using a newly developed near-infrared system , 2003 .
[55] R. Esenaliev,et al. Noninvasive monitoring of glucose concentration with optical coherence tomography , 2001 .
[56] Anthony T. Tu,et al. Raman spectroscopy in biology: Principles and applications , 1982 .
[57] T. B. Blank,et al. Noninvasive prediction of glucose by near-infrared diffuse reflectance spectroscopy. , 1999, Clinical chemistry.
[58] M A Arnold,et al. Evaluation of measurement sites for noninvasive blood glucose sensing with near-infrared transmission spectroscopy. , 1999, Clinical chemistry.
[59] K. Jeon,et al. Comparison between transmittance and reflectance measurements in glucose determination using near infrared spectroscopy. , 2006, Journal of biomedical optics.
[60] L. Rovati,et al. New optical scheme for a polarimetric-based glucose sensor. , 2004, Journal of biomedical optics.
[61] Yukio Yamada,et al. Temperature-Insensitive Measurement of Glucose Concentration Based on Near Infrared Spectroscopy and Partial Least Squares Analysis , 2003 .
[62] Human oral mucosa studies with varying blood glucose concentration by non-invasive ATR-FT-IR-spectroscopy. , 1998, Cellular and molecular biology.
[63] S. D. Jong. SIMPLS: an alternative approach to partial least squares regression , 1993 .
[64] M. Fox,et al. Noninvasive optical polarimetric glucose sensing using a true phase measurement technique , 1992, IEEE Transactions on Biomedical Engineering.
[65] Massoud Motamedi,et al. Specificity of noninvasive blood glucose sensing using optical coherence tomography technique: a pilot study. , 2003, Physics in medicine and biology.
[66] Qingshi Zhu,et al. A new cylindrical photoacoustic cell with improved performance , 2002 .
[67] C. Malchoff,et al. A novel noninvasive blood glucose monitor. , 2002, Diabetes care.
[68] Gilwon Yoon,et al. Determination of glucose in whole blood samples by mid-infrared spectroscopy. , 2003, Applied optics.
[69] M. Feld,et al. Feasibility of measuring blood glucose concentration by near-infrared Raman spectroscopy. , 1997, Spectrochimica acta. Part A, Molecular and biomolecular spectroscopy.
[70] R. Potts,et al. Physiological differences between interstitial glucose and blood glucose measured in human subjects. , 2003, Diabetes care.
[71] T. Medsger,et al. A comparison between anti-Th/To- and anticentromere antibody-positive systemic sclerosis patients with limited cutaneous involvement. , 2003, Arthritis and rheumatism.
[72] A. Sämann,et al. Non-invasive blood glucose monitoring by means of near infrared spectroscopy: investigation of long-term accuracy and stability. , 2000, Experimental and clinical endocrinology & diabetes : official journal, German Society of Endocrinology [and] German Diabetes Association.
[73] G. S. Wilson,et al. Prevention of hypoglycemia using risk assessment with a continuous glucose monitoring system. , 2002, Diabetes.
[74] Kexin Xu,et al. Quantitative effect of temperature to the absorbance of aqueous glucose in wavelength range from 1200 nm to 1700 nm , 2006, International Conference on Photonics and Imaging in Biology and Medicine.
[75] S. Thennadil,et al. Optical properties of human skin in the near infrared wavelength range of 1000 to 2200 nm. , 2001, Journal of biomedical optics.
[76] Measurement of Physiologic Glucose Levels Using Raman Spectroscopy in a Rabbit Aqueous Humor Model , 1998 .
[77] Linda M. Harvey,et al. Employing near-infrared spectroscopic methods of analysis for fermentation monitoring and control: Part 1, method development , 2002 .
[78] S. Daunert,et al. Fluorescence Glucose Detection: Advances Toward the Ideal In Vivo Biosensor , 2004, Journal of Fluorescence.
[79] Airat K. Amerov,et al. Kromoscopic measurement of glucose in the first overtone region of the near-infrared spectrum , 2002, SPIE BiOS.
[80] Roman Rosipal,et al. Overview and Recent Advances in Partial Least Squares , 2005, SLSFS.
[81] Takashi Maeno,et al. Development of a Texture Sensor Emulating the Tissue Structure and Perceptual Mechanism of Human Fingers , 2005, Proceedings of the 2005 IEEE International Conference on Robotics and Automation.
[82] D. Frape. Metabolism and nutrition , 1983 .
[83] G. W. Small,et al. Comparison of combination and first overtone spectral regions for near-infrared calibration models for glucose and other biomolecules in aqueous solutions. , 2004, Analytical chemistry.
[84] D. Côté,et al. Balanced detection for low-noise precision polarimetric measurements of optically active, multiply scattering tissue phantoms. , 2004, Journal of biomedical optics.
[85] R. V. Van Duyne,et al. A glucose biosensor based on surface-enhanced Raman scattering: improved partition layer, temporal stability, reversibility, and resistance to serum protein interference. , 2004, Analytical chemistry.
[86] Y. Ozaki,et al. In Vivo Noninvasive Measurement of Blood Glucose by Near-Infrared Diffuse-Reflectance Spectroscopy , 2003, Applied spectroscopy.
[87] E. Hull,et al. Clinical assessment of near-infrared spectroscopy for noninvasive diabetes screening. , 2005, Diabetes technology & therapeutics.
[88] Y. Ozaki,et al. Temperature-Dependent Near-Infrared Spectra of Bovine Serum Albumin in Aqueous Solutions: Spectral Analysis by Principal Component Analysis and Evolving Factor Analysis , 2003, Applied spectroscopy.
[89] Richard H Guy,et al. Reverse iontophoresis for non-invasive transdermal monitoring. , 2004, Physiological measurement.
[90] R. Esenaliev,et al. Noninvasive blood glucose monitoring with optical coherence tomography: a pilot study in human subjects. , 2002, Diabetes care.
[91] M. Lopatin,et al. Home Use of the GlucoWatch G2 Biographer in Children With Diabetes , 2005, Pediatrics.
[92] Yaochun Shen,et al. Advances in photoacoustic noninvasive glucose testing. , 1999, Clinical chemistry.
[93] J D Kruse-Jarres,et al. Multivariate determination of glucose in whole blood by attenuated total reflection infrared spectroscopy. , 1989, Analytical chemistry.
[94] M. Bromba,et al. Application hints for Savitzky-Golay digital smoothing filters , 1981 .