Artificial Intelligence for Infectious Disease Imaging
Artificial Intelligence for Infectious Disease Imaging
批准号:
10682304
负责人:
Joseph Frank
金额:
$0.0万
依托单位:
依托单位国家:
美国
项目类别:
财政年份:
--
资助国家:
美国
项目状态:
未结题
起止时间:
至
关键词:
2019-nCoVArchitectureArtificial IntelligenceCOVID-19ClassificationCommunicable DiseasesCommunitiesDataDisease ProgressionEbola virusEnvironmentGlassHigh Performance ComputingImageInfectious Diseases ResearchLassa virusLesionLiverMarburgvirusMedical ImagingMethodsModelingNational Institute of Allergy and Infectious DiseaseNipah VirusOrganPathologyPhenotypeProcessResearch PersonnelSARS-CoV-2 infectionSeveritiesSeverity of illnessSpecificitySpleenTestingTrainingX-Ray Computed Tomographybaseclassification algorithmdeep learningexperimental studyfeature extractionfeature selectionimaging Segmentationimaging studyinterestlung lesionlung lobemachine learning classificationmachine learning methodmedical countermeasuremultimodalitynetwork modelsnonhuman primatenovelparallel processingpredictive modelingradiomicsresearch facility
中文摘要
使用CNN架构创建了基于深度学习的非人类灵长类动物(NHP)肝脏CT扫描的分割模型。采用特征金字塔网络(feature pyramid network, FPN)对CNN结构进行了优化。然后利用该FPN模型将SARS-CoV-2感染的NHP模型中的肝脏分割推广到其他器官,如脾脏,然后是整个肺和肺病变,正如在IRF进行的那样。为了更好地与COVID-19的组织病理学结果相关联,开发了肺叶分割。这是一项正在进行的工作,因为CT扫描上肺叶注释的数量是最少的,这是由于创建这个基础真实数据的困难。目前,正在探索使用少量训练数据的方法。
英文摘要
A CNN architecture was used to create a deep learning-based segmentation model of the liver seen on CT scans of a nonhuman primate (NHP). The CNN architecture was optimized by implementing a feature pyramid network (FPN). This FPN model was then utilized to generalize liver segmentation to other organs such as the spleen and then the whole lung and lung lesions in NHP models of SARS-CoV-2 infection, as conducted at the IRF. Lung lobe segmentation was developed in order to better correlate with histopathologic findings of COVID-19. This is a work-in-progress as the number of lung lobe annotations on CT scans is at a minimum due to the difficulty in creating this ground truth data. Currently, methods that function with low numbers of training data are being explored.
To make these deep learning-based image segmentation methods available for use by the imaging community at the IRF, an automated pipeline process was developed. This pipeline utilizes the NIAID high performance computing environment (Locus) to allow for enhanced parallel processing with graphical processing units (GPUs). These methods are being used by other imaging researchers at IRF to post-process images acquired during infectious disease imaging studies of SARS-CoV-2, Marburg, Ebola, Nipah and Lassa viruses. In addition, these segmentations provide regions of interest for radiomic feature extraction. These hundreds of radiomic features have been input into feature selections methods, such as maximum relevance minimum redundancy (mRMR), to reduce and optimize features for predictive analyses. In addition, a novel feature selection method was developed (mRMR-permute), which uses permutation testing to automatically limit the number of features chosen. The predictive analyses are implemented with conventional machine learning methods that were explored to determine optimal use for SARS-CoV-2 imaging experiments.
To further the specificity of image segmentations, a lesion phenotype classification algorithm is being developed. As an initial implementation, lung lesions seen in CT scans are to be classified as ground glass opacities or consolidations. This classification will help with severity assessment during longitudinal quantification.
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Core Research Services for Molecular Imaging and Imaging Sciences
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批准号:8565580
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项目类别:
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资助金额:$0.0万
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负责人:Joseph Frank
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批准号:8565599
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批准号:10672090
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项目类别:
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资助金额:$0.0万
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负责人:Joseph Frank
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依托单位:
Artificial Intelligence for Infectious Disease Imaging
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批准号:10913213
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项目类别:
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资助金额:$0.0万
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财政年份:--
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负责人:Joseph Frank
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依托单位:
Core Research Services for Molecular Imaging and Imaging Sciences
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批准号:10913229
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项目类别:
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资助金额:$0.0万
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依托单位:
Pre-clinical evaluation of Magnetically labeled Cells for Cellular MRI
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批准号:7733683
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Development And Evaluation Of Magnetic Resonance Contrast Agents
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依托单位:
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批准号:9550597
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项目类别:
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资助金额:$0.0万
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负责人:Joseph Frank
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批准号:9549507
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批准号:10455955
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资助金额:$0.0万
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负责人:Joseph Frank
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依托单位:
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批准号:9549516
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项目类别:
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资助金额:$0.0万
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依托单位:
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批准号:8565395
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项目类别:
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资助金额:$0.0万
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财政年份:--
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负责人:Joseph Frank
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依托单位:
海外基金