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		<image:caption>Intensity of Balance Task Intensity, as Measured by the Rate of Perceived Stability, is Independent of Physical Exertion as Measured by Heart Rate</image:caption>
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		<image:caption>Altered Postural Sway and Fear of Fall in Patients Suffering from NonspecificLow Back Pain</image:caption>
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		<image:caption>Effect of Manipulating Object Shape, Size and Weight Combined with HandArm Bimanual Intensive Training HABIT in Improving Upper ExtremityFunction in Children with Hemiplegic Cerebral PalsyA Randomized ControlledTrial</image:caption>
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		<image:caption>Effect of Manipulating Object Shape, Size and Weight Combined with HandArm Bimanual Intensive Training HABIT in Improving Upper ExtremityFunction in Children with Hemiplegic Cerebral PalsyA Randomized ControlledTrial</image:caption>
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		<image:caption>Effect of Manipulating Object Shape, Size and Weight Combined with HandArm Bimanual Intensive Training HABIT in Improving Upper ExtremityFunction in Children with Hemiplegic Cerebral PalsyA Randomized ControlledTrial</image:caption>
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		<image:caption>Effect of Manipulating Object Shape, Size and Weight Combined with HandArm Bimanual Intensive Training HABIT in Improving Upper ExtremityFunction in Children with Hemiplegic Cerebral PalsyA Randomized ControlledTrial</image:caption>
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		<image:caption>Effect of Manipulating Object Shape, Size and Weight Combined with HandArm Bimanual Intensive Training HABIT in Improving Upper ExtremityFunction in Children with Hemiplegic Cerebral PalsyA Randomized ControlledTrial</image:caption>
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		<image:caption>Effect of Capacitive and Resistive Electric Transfer on Tissue Temperature, Muscle Flexibility, and Blood Circulation</image:caption>
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		<image:caption>Effect of Capacitive and Resistive Electric Transfer on Tissue Temperature, Muscle Flexibility, and Blood Circulation</image:caption>
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		<image:caption>Effect of Capacitive and Resistive Electric Transfer on Tissue Temperature, Muscle Flexibility, and Blood Circulation</image:caption>
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		<image:caption>Effect of Capacitive and Resistive Electric Transfer on Tissue Temperature, Muscle Flexibility, and Blood Circulation</image:caption>
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		<image:caption>Effect of Capacitive and Resistive Electric Transfer on Tissue Temperature, Muscle Flexibility, and Blood Circulation</image:caption>
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		<image:caption>Effect of Capacitive and Resistive Electric Transfer on Tissue Temperature, Muscle Flexibility, and Blood Circulation</image:caption>
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		<image:caption>Healthcare Utilization Disparity between Caucasian and AfricanAmericanPatients with Diabetes from 20062008 and 20092011</image:caption>
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		<image:caption>Healthcare Utilization Disparity between Caucasian and AfricanAmericanPatients with Diabetes from 20062008 and 20092011</image:caption>
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		<image:caption>Healthcare Utilization Disparity between Caucasian and AfricanAmericanPatients with Diabetes from 20062008 and 20092011</image:caption>
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		<image:caption>Healthcare Utilization Disparity between Caucasian and AfricanAmericanPatients with Diabetes from 20062008 and 20092011</image:caption>
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		<image:caption>Oxygen Uptake during Aerobic Cycling Exercise Simultaneously Combined with Neuromuscular Electrical Stimulation of Antagonists</image:caption>
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		<image:caption>Oxygen Uptake during Aerobic Cycling Exercise Simultaneously Combined with Neuromuscular Electrical Stimulation of Antagonists</image:caption>
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		<image:loc>https://www.omicsonline.org/articles-images/2165-7025-3-185-e005.gif</image:loc>
		<image:caption>Oxygen Uptake during Aerobic Cycling Exercise Simultaneously Combined with Neuromuscular Electrical Stimulation of Antagonists</image:caption>
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		<image:loc>https://www.omicsonline.org/articles-images/2165-7025-3-185-e004.gif</image:loc>
		<image:caption>Oxygen Uptake during Aerobic Cycling Exercise Simultaneously Combined with Neuromuscular Electrical Stimulation of Antagonists</image:caption>
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		<image:loc>https://www.omicsonline.org/articles-images/2165-7025-3-185-e003.gif</image:loc>
		<image:caption>Oxygen Uptake during Aerobic Cycling Exercise Simultaneously Combined with Neuromuscular Electrical Stimulation of Antagonists</image:caption>
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		<image:caption>Oxygen Uptake during Aerobic Cycling Exercise Simultaneously Combined with Neuromuscular Electrical Stimulation of Antagonists</image:caption>
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		<image:loc>https://www.omicsonline.org/articles-images/2165-7025-3-185-e002.gif</image:loc>
		<image:caption>Oxygen Uptake during Aerobic Cycling Exercise Simultaneously Combined with Neuromuscular Electrical Stimulation of Antagonists</image:caption>
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		<loc>https://www.omicsonline.org/open-access/variable-impedance-control-based-on-impedance-estimation-model-with-emg-signals-during-extension-and-flexion-tasks-for-a-lower-limb-rehabilitation-robotic-system-2165-7025-178.php?aid=19135</loc>
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		<image:caption>Variable Impedance Control Based on Impedance Estimation Model with EMG Signals during Extension and Flexion Tasks for a Lower LimbRehabilitation Robotic System</image:caption>
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		<image:loc>https://www.omicsonline.org/articles-images/2165-7025-3-178-e013.gif</image:loc>
		<image:caption>Variable Impedance Control Based on Impedance Estimation Model with EMG Signals during Extension and Flexion Tasks for a Lower LimbRehabilitation Robotic System</image:caption>
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		<image:loc>https://www.omicsonline.org/articles-images/2165-7025-3-178-e012.gif</image:loc>
		<image:caption>Variable Impedance Control Based on Impedance Estimation Model with EMG Signals during Extension and Flexion Tasks for a Lower LimbRehabilitation Robotic System</image:caption>
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		<image:loc>https://www.omicsonline.org/articles-images/2165-7025-3-178-e011.gif</image:loc>
		<image:caption>Variable Impedance Control Based on Impedance Estimation Model with EMG Signals during Extension and Flexion Tasks for a Lower LimbRehabilitation Robotic System</image:caption>
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		<image:loc>https://www.omicsonline.org/articles-images/2165-7025-3-178-e010.gif</image:loc>
		<image:caption>Variable Impedance Control Based on Impedance Estimation Model with EMG Signals during Extension and Flexion Tasks for a Lower LimbRehabilitation Robotic System</image:caption>
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		<image:loc>https://www.omicsonline.org/articles-images/2165-7025-3-178-e009.gif</image:loc>
		<image:caption>Variable Impedance Control Based on Impedance Estimation Model with EMG Signals during Extension and Flexion Tasks for a Lower LimbRehabilitation Robotic System</image:caption>
		</image:image>
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		<image:loc>https://www.omicsonline.org/articles-images/2165-7025-3-178-e008.gif</image:loc>
		<image:caption>Variable Impedance Control Based on Impedance Estimation Model with EMG Signals during Extension and Flexion Tasks for a Lower LimbRehabilitation Robotic System</image:caption>
		</image:image>
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		<image:loc>https://www.omicsonline.org/articles-images/2165-7025-3-178-e007.gif</image:loc>
		<image:caption>Variable Impedance Control Based on Impedance Estimation Model with EMG Signals during Extension and Flexion Tasks for a Lower LimbRehabilitation Robotic System</image:caption>
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		<image:loc>https://www.omicsonline.org/articles-images/2165-7025-3-178-e006.gif</image:loc>
		<image:caption>Variable Impedance Control Based on Impedance Estimation Model with EMG Signals during Extension and Flexion Tasks for a Lower LimbRehabilitation Robotic System</image:caption>
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		<image:loc>https://www.omicsonline.org/articles-images/2165-7025-3-178-e005.gif</image:loc>
		<image:caption>Variable Impedance Control Based on Impedance Estimation Model with EMG Signals during Extension and Flexion Tasks for a Lower LimbRehabilitation Robotic System</image:caption>
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		<image:loc>https://www.omicsonline.org/articles-images/2165-7025-3-178-e004.gif</image:loc>
		<image:caption>Variable Impedance Control Based on Impedance Estimation Model with EMG Signals during Extension and Flexion Tasks for a Lower LimbRehabilitation Robotic System</image:caption>
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		<image:loc>https://www.omicsonline.org/articles-images/2165-7025-3-178-e003.gif</image:loc>
		<image:caption>Variable Impedance Control Based on Impedance Estimation Model with EMG Signals during Extension and Flexion Tasks for a Lower LimbRehabilitation Robotic System</image:caption>
		</image:image>
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		<image:caption>Variable Impedance Control Based on Impedance Estimation Model with EMG Signals during Extension and Flexion Tasks for a Lower LimbRehabilitation Robotic System</image:caption>
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		<image:caption>Variable Impedance Control Based on Impedance Estimation Model with EMG Signals during Extension and Flexion Tasks for a Lower LimbRehabilitation Robotic System</image:caption>
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		<loc>https://www.omicsonline.org/open-access/sensitive-lcmsms-method-for-the-simultaneous-determination-ofalogliptin-and-voglibose-in-human-plasma-2155-9872-1000354.php?aid=87396</loc>
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		<image:caption>Sensitive LCMSMS Method for the Simultaneous Determination ofAlogliptin and Voglibose in Human Plasma</image:caption>
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		<image:caption>Sensitive LCMSMS Method for the Simultaneous Determination ofAlogliptin and Voglibose in Human Plasma</image:caption>
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		<image:caption>Sensitive LCMSMS Method for the Simultaneous Determination ofAlogliptin and Voglibose in Human Plasma</image:caption>
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		<image:loc>https://www.omicsonline.org/articles-images/analytical-bioanalytical-techniques-Human-blank-plasma-8-354-g013.png</image:loc>
		<image:caption>Sensitive LCMSMS Method for the Simultaneous Determination ofAlogliptin and Voglibose in Human Plasma</image:caption>
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		<image:loc>https://www.omicsonline.org/articles-images/analytical-bioanalytical-techniques-Human-blank-8-354-g012.png</image:loc>
		<image:caption>Sensitive LCMSMS Method for the Simultaneous Determination ofAlogliptin and Voglibose in Human Plasma</image:caption>
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		<image:image>
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		<image:image>
		<image:loc>https://www.omicsonline.org/articles-images/analytical-bioanalytical-techniques-chromatograms-Typical-8-354-g010.png</image:loc>
		<image:caption>Sensitive LCMSMS Method for the Simultaneous Determination ofAlogliptin and Voglibose in Human Plasma</image:caption>
		</image:image>
		<image:image>
		<image:loc>https://www.omicsonline.org/articles-images/analytical-bioanalytical-techniques-chromatograms-Miglitol-8-354-g009.png</image:loc>
		<image:caption>Sensitive LCMSMS Method for the Simultaneous Determination ofAlogliptin and Voglibose in Human Plasma</image:caption>
		</image:image>
		<image:image>
		<image:loc>https://www.omicsonline.org/articles-images/analytical-bioanalytical-techniques-Mass-fragmentation-Miglitol-8-354-g008.png</image:loc>
		<image:caption>Sensitive LCMSMS Method for the Simultaneous Determination ofAlogliptin and Voglibose in Human Plasma</image:caption>
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		<image:image>
		<image:loc>https://www.omicsonline.org/articles-images/analytical-bioanalytical-techniques-Mass-fragmentation-Alogliptin-8-354-g007.png</image:loc>
		<image:caption>Sensitive LCMSMS Method for the Simultaneous Determination ofAlogliptin and Voglibose in Human Plasma</image:caption>
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		<image:image>
		<image:loc>https://www.omicsonline.org/articles-images/analytical-bioanalytical-techniques-Mass-fragmentation-Voglibose-8-354-g006.png</image:loc>
		<image:caption>Sensitive LCMSMS Method for the Simultaneous Determination ofAlogliptin and Voglibose in Human Plasma</image:caption>
		</image:image>
		<image:image>
		<image:loc>https://www.omicsonline.org/articles-images/analytical-bioanalytical-techniques-Mass-fragmentation-8-354-g005.png</image:loc>
		<image:caption>Sensitive LCMSMS Method for the Simultaneous Determination ofAlogliptin and Voglibose in Human Plasma</image:caption>
		</image:image>
		<image:image>
		<image:loc>https://www.omicsonline.org/articles-images/analytical-bioanalytical-techniques-representation-Miglitol-8-354-g004.png</image:loc>
		<image:caption>Sensitive LCMSMS Method for the Simultaneous Determination ofAlogliptin and Voglibose in Human Plasma</image:caption>
		</image:image>
		<image:image>
		<image:loc>https://www.omicsonline.org/articles-images/analytical-bioanalytical-techniques-representation-8-354-g003.png</image:loc>
		<image:caption>Sensitive LCMSMS Method for the Simultaneous Determination ofAlogliptin and Voglibose in Human Plasma</image:caption>
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		<image:image>
		<image:loc>https://www.omicsonline.org/articles-images/analytical-bioanalytical-techniques-Structural-Voglibose-8-354-g002.png</image:loc>
		<image:caption>Sensitive LCMSMS Method for the Simultaneous Determination ofAlogliptin and Voglibose in Human Plasma</image:caption>
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		<image:image>
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		<image:caption>Sensitive LCMSMS Method for the Simultaneous Determination ofAlogliptin and Voglibose in Human Plasma</image:caption>
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		</url>
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		<image:caption>Validation and Development of HPTLC Method for Simultaneous Estimation of Apigenin and Luteolin in Selected Marketed Ayurvedic Formulations of Dashmula and in Ethyl Acetate Extract of Premna integrifolia L</image:caption>
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		<image:caption>Validation and Development of HPTLC Method for Simultaneous Estimation of Apigenin and Luteolin in Selected Marketed Ayurvedic Formulations of Dashmula and in Ethyl Acetate Extract of Premna integrifolia L</image:caption>
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		<image:caption>Validation and Development of HPTLC Method for Simultaneous Estimation of Apigenin and Luteolin in Selected Marketed Ayurvedic Formulations of Dashmula and in Ethyl Acetate Extract of Premna integrifolia L</image:caption>
		</image:image>
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		<image:caption>Validation and Development of HPTLC Method for Simultaneous Estimation of Apigenin and Luteolin in Selected Marketed Ayurvedic Formulations of Dashmula and in Ethyl Acetate Extract of Premna integrifolia L</image:caption>
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		<image:caption>Validation and Development of HPTLC Method for Simultaneous Estimation of Apigenin and Luteolin in Selected Marketed Ayurvedic Formulations of Dashmula and in Ethyl Acetate Extract of Premna integrifolia L</image:caption>
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		<image:caption>Validation and Development of HPTLC Method for Simultaneous Estimation of Apigenin and Luteolin in Selected Marketed Ayurvedic Formulations of Dashmula and in Ethyl Acetate Extract of Premna integrifolia L</image:caption>
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		<image:caption>Validation and Development of HPTLC Method for Simultaneous Estimation of Apigenin and Luteolin in Selected Marketed Ayurvedic Formulations of Dashmula and in Ethyl Acetate Extract of Premna integrifolia L</image:caption>
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		<image:caption>Graphene and Polyaniline Composite Modified Glassy Carbon Electrode for Electrochemical Determination of Doripenem and Meropenem Metabolites</image:caption>
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		<image:caption>Graphene and Polyaniline Composite Modified Glassy Carbon Electrode for Electrochemical Determination of Doripenem and Meropenem Metabolites</image:caption>
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		<image:caption>Graphene and Polyaniline Composite Modified Glassy Carbon Electrode for Electrochemical Determination of Doripenem and Meropenem Metabolites</image:caption>
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		<image:caption>Graphene and Polyaniline Composite Modified Glassy Carbon Electrode for Electrochemical Determination of Doripenem and Meropenem Metabolites</image:caption>
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		<image:caption>Determination of Interleaf Translocated Free Glyphosate in emArabidopsis thalianaem using Liquid Chromatography Tandem Mass Spectrometry LCMS MS after Derivatization with Fluorenylmethyloxycarbonyl Chloride FMOCCl</image:caption>
		</image:image>
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		<image:caption>Determination of Interleaf Translocated Free Glyphosate in emArabidopsis thalianaem using Liquid Chromatography Tandem Mass Spectrometry LCMS MS after Derivatization with Fluorenylmethyloxycarbonyl Chloride FMOCCl</image:caption>
		</image:image>
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		<image:caption>Determination of Interleaf Translocated Free Glyphosate in emArabidopsis thalianaem using Liquid Chromatography Tandem Mass Spectrometry LCMS MS after Derivatization with Fluorenylmethyloxycarbonyl Chloride FMOCCl</image:caption>
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		<image:loc>https://www.omicsonline.org/articles-images/analytical-bioanalytical-techniques-Arabidopsis-S2-007-g002.png</image:loc>
		<image:caption>Determination of Interleaf Translocated Free Glyphosate in emArabidopsis thalianaem using Liquid Chromatography Tandem Mass Spectrometry LCMS MS after Derivatization with Fluorenylmethyloxycarbonyl Chloride FMOCCl</image:caption>
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		<image:caption>Determination of Interleaf Translocated Free Glyphosate in emArabidopsis thalianaem using Liquid Chromatography Tandem Mass Spectrometry LCMS MS after Derivatization with Fluorenylmethyloxycarbonyl Chloride FMOCCl</image:caption>
		</image:image>
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		<image:loc>https://www.omicsonline.org/articles-images/analytical-bioanalytical-techniques-Glyphosate-S2-007-s001.png</image:loc>
		<image:caption>Determination of Interleaf Translocated Free Glyphosate in emArabidopsis thalianaem using Liquid Chromatography Tandem Mass Spectrometry LCMS MS after Derivatization with Fluorenylmethyloxycarbonyl Chloride FMOCCl</image:caption>
		</image:image>
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		<image:caption>Determination of Heavy Metals in Blood, Urine and Water Samples by Inductively Coupled Plasma Atomic Emission Spectrophotometer and Fluoride Using IonSelective Electrode</image:caption>
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		<image:image>
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