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PMOD Technologies pmod computer software
Illustration of the ROIs and VOI defined for the hot region of the myocardium ( a ) and the hot value voxels of the IVC ( b ) in a representative male C57BL/6 mouse. The myocardium ROIs were selected using late frames (frames 27–32) of <t>the</t> <t>PET</t> scan, while the IVC VOI was selected using short-duration (2 s) early frames (frames 1–3) of the PET scan. The figure was created via <t>PMOD</t> software . The scalar values in the color bar range from zero (black) to the maximum (white) of the reconstruction algorithm Tera-Tomo 4–13. A = anterior, F = feet, H = head, L = left, P = posterior, and R = right.
Pmod Computer Software, supplied by PMOD Technologies, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/computer+software+pmod+software/software+program+pmod/pmc11278115-109-18-23
Average 90 stars, based on 1 article reviews
pmod computer software - by Bioz Stars, 2026-10
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1) Product Images from "Noninvasive Quantification of Glucose Metabolism in Mice Myocardium Using the Spline Reconstruction Technique"

Article Title: Noninvasive Quantification of Glucose Metabolism in Mice Myocardium Using the Spline Reconstruction Technique

Journal: Journal of Imaging

doi: 10.3390/jimaging10070170

Illustration of the ROIs and VOI defined for the hot region of the myocardium ( a ) and the hot value voxels of the IVC ( b ) in a representative male C57BL/6 mouse. The myocardium ROIs were selected using late frames (frames 27–32) of the PET scan, while the IVC VOI was selected using short-duration (2 s) early frames (frames 1–3) of the PET scan. The figure was created via PMOD software . The scalar values in the color bar range from zero (black) to the maximum (white) of the reconstruction algorithm Tera-Tomo 4–13. A = anterior, F = feet, H = head, L = left, P = posterior, and R = right.
Figure Legend Snippet: Illustration of the ROIs and VOI defined for the hot region of the myocardium ( a ) and the hot value voxels of the IVC ( b ) in a representative male C57BL/6 mouse. The myocardium ROIs were selected using late frames (frames 27–32) of the PET scan, while the IVC VOI was selected using short-duration (2 s) early frames (frames 1–3) of the PET scan. The figure was created via PMOD software . The scalar values in the color bar range from zero (black) to the maximum (white) of the reconstruction algorithm Tera-Tomo 4–13. A = anterior, F = feet, H = head, L = left, P = posterior, and R = right.

Techniques Used: Software

Analytic reconstructions using FBP and SRT. Coronal view of the myocardium ( a ) and the IVC ( b ) in a representative male C57BL/6 mouse. The figure was created via PMOD software . The scalar values in the color bar range from zero (black) to the maximum (red) of each reconstruction algorithm.
Figure Legend Snippet: Analytic reconstructions using FBP and SRT. Coronal view of the myocardium ( a ) and the IVC ( b ) in a representative male C57BL/6 mouse. The figure was created via PMOD software . The scalar values in the color bar range from zero (black) to the maximum (red) of each reconstruction algorithm.

Techniques Used: Software

Iterative reconstructions using the two variants of the Tera-Tomo 3D algorithm, namely, Tera-Tomo 4-5 and Tera-Tomo 4-13. Coronal view of the myocardium ( a ) and the IVC ( b ) in a representative male C57BL/6 mouse. The figure was created via PMOD software . The scalar values in the color bar range from zero (black) to the maximum (red) of each reconstruction algorithm.
Figure Legend Snippet: Iterative reconstructions using the two variants of the Tera-Tomo 3D algorithm, namely, Tera-Tomo 4-5 and Tera-Tomo 4-13. Coronal view of the myocardium ( a ) and the IVC ( b ) in a representative male C57BL/6 mouse. The figure was created via PMOD software . The scalar values in the color bar range from zero (black) to the maximum (red) of each reconstruction algorithm.

Techniques Used: Software

Measured metabolic value slope K i (mL/ccm/min) of the applied Patlak kinetic model in the myocardium of seven male C57BL/6 mice ( n = 7 ) using FBP, SRT, and the variants of Tera-Tomo 3D algorithm. The VOI analysis was conducted via  PMOD software  [ <xref ref-type= 35 ]." title="... 3D algorithm. The VOI analysis was conducted via PMOD software [ 35 ..." property="contentUrl" width="100%" height="100%"/>
Figure Legend Snippet: Measured metabolic value slope K i (mL/ccm/min) of the applied Patlak kinetic model in the myocardium of seven male C57BL/6 mice ( n = 7 ) using FBP, SRT, and the variants of Tera-Tomo 3D algorithm. The VOI analysis was conducted via PMOD software [ 35 ].

Techniques Used: Mouse Assay, Software

Measured metabolic value M R G l u ( μ mol/min/100 g) of the applied Patlak kinetic model in the myocardium of seven male C57BL/6 mice ( n = 7 ) using FBP, SRT, and the variants of Tera-Tomo 3D algorithm. The VOI analysis was conducted via  PMOD software  [ <xref ref-type= 35 ]." title="... 3D algorithm. The VOI analysis was conducted via PMOD software [ 35 ..." property="contentUrl" width="100%" height="100%"/>
Figure Legend Snippet: Measured metabolic value M R G l u ( μ mol/min/100 g) of the applied Patlak kinetic model in the myocardium of seven male C57BL/6 mice ( n = 7 ) using FBP, SRT, and the variants of Tera-Tomo 3D algorithm. The VOI analysis was conducted via PMOD software [ 35 ].

Techniques Used: Mouse Assay, Software

The averaged slope K i (mL/ccm/min) of the applied Patlak kinetic model for all four reconstruction algorithms employed, namely, FBP, SRT, Tera-Tomo 4-5, and Tera-Tomo 4-13. The averaged slope K i was calculated via PMOD software . The results are illustrated as mean ± SD.
Figure Legend Snippet: The averaged slope K i (mL/ccm/min) of the applied Patlak kinetic model for all four reconstruction algorithms employed, namely, FBP, SRT, Tera-Tomo 4-5, and Tera-Tomo 4-13. The averaged slope K i was calculated via PMOD software . The results are illustrated as mean ± SD.

Techniques Used: Software

The averaged M R G l u ( μ mol/min/100 g) of the applied Patlak kinetic model for all four reconstruction algorithms employed, namely, FBP, SRT, Tera-Tomo 4-5, and Tera-Tomo 4-13. The averaged M R G l u was calculated via PMOD software . The results are illustrated as mean ± SD.
Figure Legend Snippet: The averaged M R G l u ( μ mol/min/100 g) of the applied Patlak kinetic model for all four reconstruction algorithms employed, namely, FBP, SRT, Tera-Tomo 4-5, and Tera-Tomo 4-13. The averaged M R G l u was calculated via PMOD software . The results are illustrated as mean ± SD.

Techniques Used: Software

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Article Title: Relationship Between Cerebral Glucose Metabolism and Neurodevelopmental Outcomes in Very-Low-Birth-Weight Infants without Structural Abnormalities
Article Snippet: .. The software program PMOD (PMOD Technologies Ltd, Zurich, Switzerland) was used for quantitative analyses of F-18 FDG brain PET images based on volumes of interest (VOIs), as previously described [9, 15]. ..

Article Title: Stitching of 3D ultrasound datasets for the determination of large thyroid volumes - phantom study part II: mechanically-swept probes.
Article Snippet: .. After transferring the data from the US device to the computer software PMOD (software version 3.409, PMOD Technologies Ltd., Zurich, Switzerland), we noticed that the edge lengths of the image voxels were incorrect and did not fit in an appropriate rectangular matrix. ..

Article Title: Noninvasive Quantification of Glucose Metabolism in Mice Myocardium Using the Spline Reconstruction Technique
Article Snippet: .. The Patlak graphical kinetic analysis of the PET reconstructed images (a total of 202,048 images) was performed via PMOD computer software (version 3.506, PMOD Technologies LLC, Fällanden, Switzerland) [ ], which is known as the reference tool for PET kinetic modeling. ..

Article Title: Association between Visceral Adipose Tissue Metabolism and Alzheimer’s Disease Pathology
Article Snippet: .. Quantitative analysis of the cerebral Aβ burden was conducted for the VOIs using the software program PMOD (PMOD Technologies Ltd., Zurich, Switzerland), as previously described [ ]. ..

Article Title: Association between white matter lesions and cerebral glucose metabolism in patients with cognitive impairment
Article Snippet: Aim: White matter lesions (WMLs), detected as hyperintensities in T2-weighted MRI, represent small vessel disease in the brain and are considered a potential risk factor for memory and cognitive impairment.. It has not been sufficiently evidenced that cognitive impairment in patients with Alzheimer’s disease is caused by WMLs as well as -amyloid (A ) pathology.. The aim of this study was to evaluate the relationship between WMLs and cerebral glucose metabolism in patients with cognitive impairment after adjustment of cerebral A burden.

Article Title: 2020 Annual Meeting of the American Society for Bone and Mineral Research Virtual Event September 11-15, 2020.
Article Snippet: .. The operator guided computer software PMOD software (PMOD Technologies LLC, Switzerland) was used to segment individual vertebra, and calculate SUV. ..

Positron Emission Tomography:

Article Title: Relationship Between Cerebral Glucose Metabolism and Neurodevelopmental Outcomes in Very-Low-Birth-Weight Infants without Structural Abnormalities
Article Snippet: .. The software program PMOD (PMOD Technologies Ltd, Zurich, Switzerland) was used for quantitative analyses of F-18 FDG brain PET images based on volumes of interest (VOIs), as previously described [9, 15]. ..

Article Title: Noninvasive Quantification of Glucose Metabolism in Mice Myocardium Using the Spline Reconstruction Technique
Article Snippet: .. The Patlak graphical kinetic analysis of the PET reconstructed images (a total of 202,048 images) was performed via PMOD computer software (version 3.506, PMOD Technologies LLC, Fällanden, Switzerland) [ ], which is known as the reference tool for PET kinetic modeling. ..

Article Title: Association between white matter lesions and cerebral glucose metabolism in patients with cognitive impairment
Article Snippet: Aim: White matter lesions (WMLs), detected as hyperintensities in T2-weighted MRI, represent small vessel disease in the brain and are considered a potential risk factor for memory and cognitive impairment.. It has not been sufficiently evidenced that cognitive impairment in patients with Alzheimer’s disease is caused by WMLs as well as -amyloid (A ) pathology.. The aim of this study was to evaluate the relationship between WMLs and cerebral glucose metabolism in patients with cognitive impairment after adjustment of cerebral A burden.

Article Title: Association between white matter lesions and cerebral Aβ burden
Article Snippet: .. PET images were analyzed quantitatively based on volumes of interest (VOIs) using the PMOD software program (PMOD Technologies Ltd, Zurich, Switzerland), as previously described [ ]. ..

Transferring:

Article Title: Stitching of 3D ultrasound datasets for the determination of large thyroid volumes - phantom study part II: mechanically-swept probes.
Article Snippet: .. After transferring the data from the US device to the computer software PMOD (software version 3.409, PMOD Technologies Ltd., Zurich, Switzerland), we noticed that the edge lengths of the image voxels were incorrect and did not fit in an appropriate rectangular matrix. ..

other:

Article Title: Utility of FDG PET/CT in assessing bowel inflammation
Article Snippet: An operator guided computer software, PMOD (PMOD Technologies LLC, Switzerland), was used to carry out the segmentation of the bowel and to perform standard uptake value (SUV) calculations.

Imaging:

Article Title: Association between white matter lesions and cerebral glucose metabolism in patients with cognitive impairment
Article Snippet: Aim: White matter lesions (WMLs), detected as hyperintensities in T2-weighted MRI, represent small vessel disease in the brain and are considered a potential risk factor for memory and cognitive impairment.. It has not been sufficiently evidenced that cognitive impairment in patients with Alzheimer’s disease is caused by WMLs as well as -amyloid (A ) pathology.. The aim of this study was to evaluate the relationship between WMLs and cerebral glucose metabolism in patients with cognitive impairment after adjustment of cerebral A burden.

Magnetic Resonance Imaging:

Article Title: Association between white matter lesions and cerebral glucose metabolism in patients with cognitive impairment
Article Snippet: Aim: White matter lesions (WMLs), detected as hyperintensities in T2-weighted MRI, represent small vessel disease in the brain and are considered a potential risk factor for memory and cognitive impairment.. It has not been sufficiently evidenced that cognitive impairment in patients with Alzheimer’s disease is caused by WMLs as well as -amyloid (A ) pathology.. The aim of this study was to evaluate the relationship between WMLs and cerebral glucose metabolism in patients with cognitive impairment after adjustment of cerebral A burden.



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Illustration of the ROIs and VOI defined for the hot region of the myocardium ( a ) and the hot value voxels of the IVC ( b ) in a representative male C57BL/6 mouse. The myocardium ROIs were selected using late frames (frames 27–32) of <t>the</t> <t>PET</t> scan, while the IVC VOI was selected using short-duration (2 s) early frames (frames 1–3) of the PET scan. The figure was created via <t>PMOD</t> software . The scalar values in the color bar range from zero (black) to the maximum (white) of the reconstruction algorithm Tera-Tomo 4–13. A = anterior, F = feet, H = head, L = left, P = posterior, and R = right.
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Illustration of the ROIs and VOI defined for the hot region of the myocardium ( a ) and the hot value voxels of the IVC ( b ) in a representative male C57BL/6 mouse. The myocardium ROIs were selected using late frames (frames 27–32) of <t>the</t> <t>PET</t> scan, while the IVC VOI was selected using short-duration (2 s) early frames (frames 1–3) of the PET scan. The figure was created via <t>PMOD</t> software . The scalar values in the color bar range from zero (black) to the maximum (white) of the reconstruction algorithm Tera-Tomo 4–13. A = anterior, F = feet, H = head, L = left, P = posterior, and R = right.
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Illustration of the ROIs and VOI defined for the hot region of the myocardium ( a ) and the hot value voxels of the IVC ( b ) in a representative male C57BL/6 mouse. The myocardium ROIs were selected using late frames (frames 27–32) of <t>the</t> <t>PET</t> scan, while the IVC VOI was selected using short-duration (2 s) early frames (frames 1–3) of the PET scan. The figure was created via <t>PMOD</t> software . The scalar values in the color bar range from zero (black) to the maximum (white) of the reconstruction algorithm Tera-Tomo 4–13. A = anterior, F = feet, H = head, L = left, P = posterior, and R = right.
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Illustration of the ROIs and VOI defined for the hot region of the myocardium ( a ) and the hot value voxels of the IVC ( b ) in a representative male C57BL/6 mouse. The myocardium ROIs were selected using late frames (frames 27–32) of <t>the</t> <t>PET</t> scan, while the IVC VOI was selected using short-duration (2 s) early frames (frames 1–3) of the PET scan. The figure was created via <t>PMOD</t> software . The scalar values in the color bar range from zero (black) to the maximum (white) of the reconstruction algorithm Tera-Tomo 4–13. A = anterior, F = feet, H = head, L = left, P = posterior, and R = right.
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Illustration of the ROIs and VOI defined for the hot region of the myocardium ( a ) and the hot value voxels of the IVC ( b ) in a representative male C57BL/6 mouse. The myocardium ROIs were selected using late frames (frames 27–32) of <t>the</t> <t>PET</t> scan, while the IVC VOI was selected using short-duration (2 s) early frames (frames 1–3) of the PET scan. The figure was created via <t>PMOD</t> software . The scalar values in the color bar range from zero (black) to the maximum (white) of the reconstruction algorithm Tera-Tomo 4–13. A = anterior, F = feet, H = head, L = left, P = posterior, and R = right.
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Illustration of the ROIs and VOI defined for the hot region of the myocardium ( a ) and the hot value voxels of the IVC ( b ) in a representative male C57BL/6 mouse. The myocardium ROIs were selected using late frames (frames 27–32) of <t>the</t> <t>PET</t> scan, while the IVC VOI was selected using short-duration (2 s) early frames (frames 1–3) of the PET scan. The figure was created via <t>PMOD</t> software . The scalar values in the color bar range from zero (black) to the maximum (white) of the reconstruction algorithm Tera-Tomo 4–13. A = anterior, F = feet, H = head, L = left, P = posterior, and R = right.
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Illustration of the ROIs and VOI defined for the hot region of the myocardium ( a ) and the hot value voxels of the IVC ( b ) in a representative male C57BL/6 mouse. The myocardium ROIs were selected using late frames (frames 27–32) of <t>the</t> <t>PET</t> scan, while the IVC VOI was selected using short-duration (2 s) early frames (frames 1–3) of the PET scan. The figure was created via <t>PMOD</t> software . The scalar values in the color bar range from zero (black) to the maximum (white) of the reconstruction algorithm Tera-Tomo 4–13. A = anterior, F = feet, H = head, L = left, P = posterior, and R = right.
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Illustration of the ROIs and VOI defined for the hot region of the myocardium ( a ) and the hot value voxels of the IVC ( b ) in a representative male C57BL/6 mouse. The myocardium ROIs were selected using late frames (frames 27–32) of <t>the</t> <t>PET</t> scan, while the IVC VOI was selected using short-duration (2 s) early frames (frames 1–3) of the PET scan. The figure was created via <t>PMOD</t> software . The scalar values in the color bar range from zero (black) to the maximum (white) of the reconstruction algorithm Tera-Tomo 4–13. A = anterior, F = feet, H = head, L = left, P = posterior, and R = right.
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Image Search Results


Illustration of the ROIs and VOI defined for the hot region of the myocardium ( a ) and the hot value voxels of the IVC ( b ) in a representative male C57BL/6 mouse. The myocardium ROIs were selected using late frames (frames 27–32) of the PET scan, while the IVC VOI was selected using short-duration (2 s) early frames (frames 1–3) of the PET scan. The figure was created via PMOD software . The scalar values in the color bar range from zero (black) to the maximum (white) of the reconstruction algorithm Tera-Tomo 4–13. A = anterior, F = feet, H = head, L = left, P = posterior, and R = right.

Journal: Journal of Imaging

Article Title: Noninvasive Quantification of Glucose Metabolism in Mice Myocardium Using the Spline Reconstruction Technique

doi: 10.3390/jimaging10070170

Figure Lengend Snippet: Illustration of the ROIs and VOI defined for the hot region of the myocardium ( a ) and the hot value voxels of the IVC ( b ) in a representative male C57BL/6 mouse. The myocardium ROIs were selected using late frames (frames 27–32) of the PET scan, while the IVC VOI was selected using short-duration (2 s) early frames (frames 1–3) of the PET scan. The figure was created via PMOD software . The scalar values in the color bar range from zero (black) to the maximum (white) of the reconstruction algorithm Tera-Tomo 4–13. A = anterior, F = feet, H = head, L = left, P = posterior, and R = right.

Article Snippet: The Patlak graphical kinetic analysis of the PET reconstructed images (a total of 202,048 images) was performed via PMOD computer software (version 3.506, PMOD Technologies LLC, Fällanden, Switzerland) [ ], which is known as the reference tool for PET kinetic modeling.

Techniques: Software

Analytic reconstructions using FBP and SRT. Coronal view of the myocardium ( a ) and the IVC ( b ) in a representative male C57BL/6 mouse. The figure was created via PMOD software . The scalar values in the color bar range from zero (black) to the maximum (red) of each reconstruction algorithm.

Journal: Journal of Imaging

Article Title: Noninvasive Quantification of Glucose Metabolism in Mice Myocardium Using the Spline Reconstruction Technique

doi: 10.3390/jimaging10070170

Figure Lengend Snippet: Analytic reconstructions using FBP and SRT. Coronal view of the myocardium ( a ) and the IVC ( b ) in a representative male C57BL/6 mouse. The figure was created via PMOD software . The scalar values in the color bar range from zero (black) to the maximum (red) of each reconstruction algorithm.

Article Snippet: The Patlak graphical kinetic analysis of the PET reconstructed images (a total of 202,048 images) was performed via PMOD computer software (version 3.506, PMOD Technologies LLC, Fällanden, Switzerland) [ ], which is known as the reference tool for PET kinetic modeling.

Techniques: Software

Iterative reconstructions using the two variants of the Tera-Tomo 3D algorithm, namely, Tera-Tomo 4-5 and Tera-Tomo 4-13. Coronal view of the myocardium ( a ) and the IVC ( b ) in a representative male C57BL/6 mouse. The figure was created via PMOD software . The scalar values in the color bar range from zero (black) to the maximum (red) of each reconstruction algorithm.

Journal: Journal of Imaging

Article Title: Noninvasive Quantification of Glucose Metabolism in Mice Myocardium Using the Spline Reconstruction Technique

doi: 10.3390/jimaging10070170

Figure Lengend Snippet: Iterative reconstructions using the two variants of the Tera-Tomo 3D algorithm, namely, Tera-Tomo 4-5 and Tera-Tomo 4-13. Coronal view of the myocardium ( a ) and the IVC ( b ) in a representative male C57BL/6 mouse. The figure was created via PMOD software . The scalar values in the color bar range from zero (black) to the maximum (red) of each reconstruction algorithm.

Article Snippet: The Patlak graphical kinetic analysis of the PET reconstructed images (a total of 202,048 images) was performed via PMOD computer software (version 3.506, PMOD Technologies LLC, Fällanden, Switzerland) [ ], which is known as the reference tool for PET kinetic modeling.

Techniques: Software

Measured metabolic value slope K i (mL/ccm/min) of the applied Patlak kinetic model in the myocardium of seven male C57BL/6 mice ( n = 7 ) using FBP, SRT, and the variants of Tera-Tomo 3D algorithm. The VOI analysis was conducted via  PMOD software  [ <xref ref-type= 35 ]." width="100%" height="100%">

Journal: Journal of Imaging

Article Title: Noninvasive Quantification of Glucose Metabolism in Mice Myocardium Using the Spline Reconstruction Technique

doi: 10.3390/jimaging10070170

Figure Lengend Snippet: Measured metabolic value slope K i (mL/ccm/min) of the applied Patlak kinetic model in the myocardium of seven male C57BL/6 mice ( n = 7 ) using FBP, SRT, and the variants of Tera-Tomo 3D algorithm. The VOI analysis was conducted via PMOD software [ 35 ].

Article Snippet: The Patlak graphical kinetic analysis of the PET reconstructed images (a total of 202,048 images) was performed via PMOD computer software (version 3.506, PMOD Technologies LLC, Fällanden, Switzerland) [ ], which is known as the reference tool for PET kinetic modeling.

Techniques: Mouse Assay, Software

Measured metabolic value M R G l u ( μ mol/min/100 g) of the applied Patlak kinetic model in the myocardium of seven male C57BL/6 mice ( n = 7 ) using FBP, SRT, and the variants of Tera-Tomo 3D algorithm. The VOI analysis was conducted via  PMOD software  [ <xref ref-type= 35 ]." width="100%" height="100%">

Journal: Journal of Imaging

Article Title: Noninvasive Quantification of Glucose Metabolism in Mice Myocardium Using the Spline Reconstruction Technique

doi: 10.3390/jimaging10070170

Figure Lengend Snippet: Measured metabolic value M R G l u ( μ mol/min/100 g) of the applied Patlak kinetic model in the myocardium of seven male C57BL/6 mice ( n = 7 ) using FBP, SRT, and the variants of Tera-Tomo 3D algorithm. The VOI analysis was conducted via PMOD software [ 35 ].

Article Snippet: The Patlak graphical kinetic analysis of the PET reconstructed images (a total of 202,048 images) was performed via PMOD computer software (version 3.506, PMOD Technologies LLC, Fällanden, Switzerland) [ ], which is known as the reference tool for PET kinetic modeling.

Techniques: Mouse Assay, Software

The averaged slope K i (mL/ccm/min) of the applied Patlak kinetic model for all four reconstruction algorithms employed, namely, FBP, SRT, Tera-Tomo 4-5, and Tera-Tomo 4-13. The averaged slope K i was calculated via PMOD software . The results are illustrated as mean ± SD.

Journal: Journal of Imaging

Article Title: Noninvasive Quantification of Glucose Metabolism in Mice Myocardium Using the Spline Reconstruction Technique

doi: 10.3390/jimaging10070170

Figure Lengend Snippet: The averaged slope K i (mL/ccm/min) of the applied Patlak kinetic model for all four reconstruction algorithms employed, namely, FBP, SRT, Tera-Tomo 4-5, and Tera-Tomo 4-13. The averaged slope K i was calculated via PMOD software . The results are illustrated as mean ± SD.

Article Snippet: The Patlak graphical kinetic analysis of the PET reconstructed images (a total of 202,048 images) was performed via PMOD computer software (version 3.506, PMOD Technologies LLC, Fällanden, Switzerland) [ ], which is known as the reference tool for PET kinetic modeling.

Techniques: Software

The averaged M R G l u ( μ mol/min/100 g) of the applied Patlak kinetic model for all four reconstruction algorithms employed, namely, FBP, SRT, Tera-Tomo 4-5, and Tera-Tomo 4-13. The averaged M R G l u was calculated via PMOD software . The results are illustrated as mean ± SD.

Journal: Journal of Imaging

Article Title: Noninvasive Quantification of Glucose Metabolism in Mice Myocardium Using the Spline Reconstruction Technique

doi: 10.3390/jimaging10070170

Figure Lengend Snippet: The averaged M R G l u ( μ mol/min/100 g) of the applied Patlak kinetic model for all four reconstruction algorithms employed, namely, FBP, SRT, Tera-Tomo 4-5, and Tera-Tomo 4-13. The averaged M R G l u was calculated via PMOD software . The results are illustrated as mean ± SD.

Article Snippet: The Patlak graphical kinetic analysis of the PET reconstructed images (a total of 202,048 images) was performed via PMOD computer software (version 3.506, PMOD Technologies LLC, Fällanden, Switzerland) [ ], which is known as the reference tool for PET kinetic modeling.

Techniques: Software