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Integrating radiomics into holomics for personalised oncology: from algorithms to bedside
by
Gatta, Roberto
, Ratib, Osman
, Leimgruber, Antoine
, Michielin, Olivier
, Depeursinge, Adrien
in
Algorithms
/ Artificial intelligence
/ Big Data
/ Clinical medicine
/ Decision making
/ Deep learning
/ Diagnostic Imaging
/ Diagnostic Radiology
/ Feature selection
/ Genomics
/ Health care networks
/ Holomics
/ Humans
/ Imaging
/ Information technology
/ Internal Medicine
/ Interventional Radiology
/ Machine learning
/ Medical imaging
/ Medical Oncology
/ Medical prognosis
/ Medicine
/ Medicine & Public Health
/ Narrative Review
/ Neuroradiology
/ Oncology
/ Patients
/ Precision medicine
/ Precision Medicine - methods
/ Quality control
/ Radiology
/ Radiomics
/ Reproducibility
/ Software
/ Statistical analysis
/ Tomography
/ Trends
/ Ultrasound
2020
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Integrating radiomics into holomics for personalised oncology: from algorithms to bedside
by
Gatta, Roberto
, Ratib, Osman
, Leimgruber, Antoine
, Michielin, Olivier
, Depeursinge, Adrien
in
Algorithms
/ Artificial intelligence
/ Big Data
/ Clinical medicine
/ Decision making
/ Deep learning
/ Diagnostic Imaging
/ Diagnostic Radiology
/ Feature selection
/ Genomics
/ Health care networks
/ Holomics
/ Humans
/ Imaging
/ Information technology
/ Internal Medicine
/ Interventional Radiology
/ Machine learning
/ Medical imaging
/ Medical Oncology
/ Medical prognosis
/ Medicine
/ Medicine & Public Health
/ Narrative Review
/ Neuroradiology
/ Oncology
/ Patients
/ Precision medicine
/ Precision Medicine - methods
/ Quality control
/ Radiology
/ Radiomics
/ Reproducibility
/ Software
/ Statistical analysis
/ Tomography
/ Trends
/ Ultrasound
2020
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Do you wish to request the book?
Integrating radiomics into holomics for personalised oncology: from algorithms to bedside
by
Gatta, Roberto
, Ratib, Osman
, Leimgruber, Antoine
, Michielin, Olivier
, Depeursinge, Adrien
in
Algorithms
/ Artificial intelligence
/ Big Data
/ Clinical medicine
/ Decision making
/ Deep learning
/ Diagnostic Imaging
/ Diagnostic Radiology
/ Feature selection
/ Genomics
/ Health care networks
/ Holomics
/ Humans
/ Imaging
/ Information technology
/ Internal Medicine
/ Interventional Radiology
/ Machine learning
/ Medical imaging
/ Medical Oncology
/ Medical prognosis
/ Medicine
/ Medicine & Public Health
/ Narrative Review
/ Neuroradiology
/ Oncology
/ Patients
/ Precision medicine
/ Precision Medicine - methods
/ Quality control
/ Radiology
/ Radiomics
/ Reproducibility
/ Software
/ Statistical analysis
/ Tomography
/ Trends
/ Ultrasound
2020
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Integrating radiomics into holomics for personalised oncology: from algorithms to bedside
Journal Article
Integrating radiomics into holomics for personalised oncology: from algorithms to bedside
2020
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Overview
Radiomics, artificial intelligence, and deep learning figure amongst recent buzzwords in current medical imaging research and technological development. Analysis of medical big data in assessment and follow-up of personalised treatments has also become a major research topic in the area of precision medicine. In this review, current research trends in radiomics are analysed, from handcrafted radiomics feature extraction and statistical analysis to deep learning. Radiomics algorithms now include genomics and immunomics data to improve patient stratification and prediction of treatment response. Several applications have already shown conclusive results demonstrating the potential of including other “omics” data to existing imaging features. We also discuss further challenges of data harmonisation and management infrastructure to shed a light on the much-needed integration of radiomics and all other “omics” into clinical workflows. In particular, we point to the emerging paradigm shift in the implementation of big data infrastructures to facilitate databanks growth, data extraction and the development of expert software tools. Secured access, sharing, and integration of all health data, called “holomics”, will accelerate the revolution of personalised medicine and oncology as well as expand the role of imaging specialists.
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