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  •   Ιδρυματικό Αποθετήριο Πανεπιστημίου Θεσσαλίας
  • Επιστημονικές Δημοσιεύσεις Μελών ΠΘ (ΕΔΠΘ)
  • Δημοσιεύσεις σε περιοδικά, συνέδρια, κεφάλαια βιβλίων κλπ.
  • Προβολή τεκμηρίου
  •   Ιδρυματικό Αποθετήριο Πανεπιστημίου Θεσσαλίας
  • Επιστημονικές Δημοσιεύσεις Μελών ΠΘ (ΕΔΠΘ)
  • Δημοσιεύσεις σε περιοδικά, συνέδρια, κεφάλαια βιβλίων κλπ.
  • Προβολή τεκμηρίου
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Ιδρυματικό Αποθετήριο Πανεπιστημίου Θεσσαλίας
Όλο το DSpace
  • Κοινότητες & Συλλογές
  • Ανά ημερομηνία δημοσίευσης
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  • Τίτλοι
  • Λέξεις κλειδιά

Development of Convolutional Neural Networks to identify bone metastasis for prostate cancer patients in bone scintigraphy

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Συγγραφέας
Papandrianos N., Papageorgiou E.I., Anagnostis A.
Ημερομηνία
2020
Γλώσσα
en
DOI
10.1007/s12149-020-01510-6
Λέξη-κλειδί
medronate technetium tc 99m
oxidronate technetium tc 99m
poltechmdp
Article
back propagation
bone metastasis
bone scintiscanning
cancer classification
cancer patient
clinical outcome
comparative study
computer assisted diagnosis
controlled study
convolutional neural network
diagnostic accuracy
diagnostic test accuracy study
gold standard
human
image processing
major clinical study
male
physician
positron emission tomography-computed tomography
priority journal
prostate cancer
radiodiagnosis
retrospective study
sensitivity and specificity
whole body scintiscanning
bone
bone tumor
diagnostic imaging
pathology
prostate tumor
scintiscanning
Bone and Bones
Bone Neoplasms
Humans
Image Interpretation, Computer-Assisted
Male
Neural Networks, Computer
Prostatic Neoplasms
Radionuclide Imaging
Retrospective Studies
Springer Japan
Εμφάνιση Μεταδεδομένων
Επιτομή
Objective: The main aim of this work is to build a robust Convolutional Neural Network (CNN) algorithm that efficiently and quickly classifies bone scintigraphy images, by determining the presence or absence of prostate cancer metastasis. Methods: CNN, widely applied in medical image classification, was used for bone scintigraphy image classification. The retrospective study included 778 sequential male patients who underwent whole-body bone scans. A nuclear medicine physician classified all the cases into 3 categories: (1) normal, (2) malignant, and (3) degenerative, which were used as the gold standard. Results: An efficient CNN architecture was built, based on CNN exploration performance, achieving high prediction accuracy. The results showed that the method is sufficiently precise when it comes to differentiating a bone metastasis from other either degenerative changes or normal tissue (overall classification accuracy = 91.42% ± 1.64%). To strengthen the outcomes of this study the authors further compared the best performing CNN method to other popular CNN architectures for medical imaging, like ResNet50, VGG16 and GoogleNet, as reported in the literature. Conclusions: The prediction results reveal the efficacy of the proposed CNN-based approach and its ability for an easier and more precise interpretation of whole-body images in bone metastasis diagnosis for prostate cancer patients in nuclear medicine. This leads to marked effects on the diagnostic accuracy and decision-making regarding the treatment to be applied. © 2020, The Japanese Society of Nuclear Medicine.
URI
http://hdl.handle.net/11615/77775
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  • Δημοσιεύσεις σε περιοδικά, συνέδρια, κεφάλαια βιβλίων κλπ. [19735]

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