TR&D 1: Reimagining the Future of Scanning: Intelligent image acquisition, reconstruction, and analysis
TR
基本信息
- 批准号:10246947
- 负责人:
- 金额:$ 20.49万
- 依托单位:
- 依托单位国家:美国
- 项目类别:
- 财政年份:2014
- 资助国家:美国
- 起止时间:2014-09-30 至 2024-07-31
- 项目状态:已结题
- 来源:
- 关键词:AbdomenAreaArtificial IntelligenceBackBiological MarkersBiophysicsBrainBreathingCollaborationsComplexComputer softwareDataDevelopmentDiagnosisDiagnosticDiffusionDiseaseDoctor of PhilosophyEvaluationEyeFacebookFoundationsFundingFutureGoalsHigh Performance ComputingHumanImageImage AnalysisImaging technologyIndividualIntelligenceInvestigationJointsMachine LearningMagnetic Resonance ImagingMeasurementMedical ImagingMethodsMissionModelingMorphologic artifactsMultimodal ImagingPerfusionPhysiologic pulsePositioning AttributePositron-Emission TomographyProcessProtocols documentationRadialResearchResearch PersonnelScanningSensorySeriesServicesStreamSystemTherapeutic procedureTissuesTrainingTranslatingTranslational ResearchUrsidae FamilyValidationWorkbasebioimagingbreast imagingcartilage degradationclinical applicationclinical practiceclinical translationdata acquisitiondata spacedata streamsdeep learningdesignimage reconstructionimaging modalityimaging systeminnovationinterestlearning networkmultimodalitynovelpatient populationradiologistrapid techniquereconstructionsensortechnology research and developmentward
项目摘要
TRD1 Project Summary
The broad mission of our Center for Advanced Imaging Innovation and Research (CAI2R) is to bring
together collaborative translational research teams for the development of high-impact biomedical imaging
technologies, with the ultimate goal of changing day-to-day clinical practice. Technology Research and
Development (TR&D) Project 1 aims to replace traditional complex and inefficient imaging protocols with
simple, comprehensive acquisitions that also yield quantitative parameters sensitive to specific disease
processes. In the first funding period of this P41 Center, our project team led the way in establishing rapid,
continuous, comprehensive imaging methods, which are now available on a growing number of commercial
magnetic resonance imaging (MRI) scanners worldwide. This foundation will allow us, in the proposed
research plan for the next period, to enrich our data streams, to advance the extraction of actionable
information from those data streams, and to feed the resulting information back into the design of our
acquisition software and hardware. Thanks to developments during our first funding period, we are now in a
position to question long-established assumptions about scanner design, originating from the classical imaging
pipeline of human radiologists interpreting multiple series of qualitative images. We will reimagine the process
of MR scanning, leveraging our core expertise in pulse-sequence design, parallel imaging, compressed
sensing, model-based image reconstruction and machine learning. We will also extend our methods to
complex multifaceted data streams, arising not only from MRI but also from Positron Emission Tomography
(PET) and other imaging modalities, as well as from diverse arrays of complementary sensors.
TRD 1项目摘要
我们的先进成像创新与研究中心(CAI2R)的广泛使命是
合作的翻译研究团队一起开发高影响力的生物医学成像
技术,最终目标是改变日常临床实践。技术研究和
开发(TR&D)项目1旨在取代传统的复杂和低效的成像协议,
简单、全面的采集,还可获得对特定疾病敏感的定量参数
流程.在P41中心的第一个资助期内,我们的项目团队率先建立了快速,
连续、全面的成像方法,现在越来越多的商业
磁共振成像(MRI)扫描仪。这一基础将使我们能够在拟议的
下一阶段的研究计划,以丰富我们的数据流,推进可操作的提取
从这些数据流中提取信息,并将所得信息反馈到我们的设计中。
采集软件和硬件。由于我们第一个融资期的发展,我们现在处于一个
立场质疑长期建立的假设扫描仪设计,起源于经典的成像
人类放射科医师解释多个系列的定性图像的流水线。我们将重新构想这个过程
利用我们在脉冲序列设计、并行成像、压缩
传感、基于模型的图像重建和机器学习。我们还将扩展我们的方法,
复杂的多方面数据流,不仅来自MRI,还来自正电子发射断层扫描
(PET)和其它成像模态,以及来自互补传感器的不同阵列。
项目成果
期刊论文数量(0)
专著数量(0)
科研奖励数量(0)
会议论文数量(0)
专利数量(0)
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Daniel Sodickson其他文献
Daniel Sodickson的其他文献
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{{ truncateString('Daniel Sodickson', 18)}}的其他基金
TR&D 1: Reimagining the Future of Scanning: Intelligent image acquisition, reconstruction, and analysis
TR
- 批准号:
10453644 - 财政年份:2014
- 资助金额:
$ 20.49万 - 项目类别:
TR&D 1: Reimagining the Future of Scanning: Intelligent image acquisition, reconstruction, and analysis
TR
- 批准号:
10701716 - 财政年份:2014
- 资助金额:
$ 20.49万 - 项目类别:
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