Topologically invariant manifold learning for medical imaging
Topologically invariant manifold learning for medical imaging
批准号:
435904-2013
负责人:
Kadoury, Samuel
金额:
$1.46万
依托单位国家:
加拿大
项目类别:
Discovery Grants Program - Individual
财政年份:
2018
资助国家:
加拿大
项目状态:
已结题
起止时间:
2018-01-01 至 2019-12-31
中文摘要
在工程问题中,科学数据分析的一个重要目标是在给定一些观察样本的情况下理解复杂系统、生物过程或物理状态变化的行为。这带来了合成大量多变量数据的需要,并提出了数据简化的基本问题:如何发现高维数据的紧凑和有意义的表示?虽然在流形学习领域已经取得了重大进展,但这些方法仍然受到基本挑战的阻碍,例如缺乏等距、真实世界样本所展示的高度可变的结构拓扑以及处理大量数据以有效地学习相关的表示。我们建议采取必要的步骤,弥合现有的理论和应用之间的鸿沟。该研究计划的总体目标是开发一种新的流形学习技术范例,其数据表示不随底层拓扑而变化。这将针对在医学成像和计算机视觉中遇到的应用问题。通过将结构分解为关节嵌入并保持平滑特性,该方法将能够减少大量复杂的高维医学图像。提出的计算框架将结合高度创新的理论发展,即:(1)使用联合Grassman嵌入从高维训练集重建流形和非流形表面的算法,独立于固有数据结构的算法,(2)执行环境空间和流形空间之间映射的参数化模型,以及(3)使用高阶马尔可夫随机场从底层空间推断新模型的离散优化框架。这个创新的平台通过提供处理大量和多参数数据所需的工具,对许多应用程序具有很大的价值,例如在医学成像和计算机视觉方面。它有可能为神经疾病的可能早期预测提供新的见解和适应症,并在计算解剖学、肿瘤生长和器官modeling.********************************************************方面开辟新的线索
英文摘要
An important goal of scientific data analysis in engineering problems is to understand the behaviour of a complex system, biological process or physical-state alterations given some observation samples. This introduces the need to synthesize large amounts of multivariate data and raises the fundamental question of data reduction: how to discover compact and meaningful representations of high-dimensional data? While significant progress has been made in the field of manifold learning, these approaches are still hamstrung by fundamental challenges such as lack of isometry, highly variable structural topologies demonstrated by real-world samples and handling very large amounts of data to efficiently learn the associated representation. We propose to take the required steps to bridge the existing chasm between theory and application. The overall objective of the research program is to develop a new paradigm of manifold learning techniques, which data representation is invariant to the underlying topology. This will be geared towards applied problems encountered in medical imaging and in computer vision. The approach will be able to reduce large amounts of complex, high-dimensional medical images by decomposing structures into joint embeddings and preserving smoothness properties. The proposed computational framework would incorporate highly innovative theoretical developments, namely: (1) an algorithm to reconstruct both manifold and non-manifold surfaces from high-dimensional training sets independently of the inherent data structure using joint Grassmannian embeddings, (2) a parameterization model to perform mappings between ambient and manifold spaces and (3) a discrete optimization framework using higher-order Markov Random Fields to infer new models from the underlying space. This innovative platform can be of great value for a number of applications, such as in medical imaging and in computer vision, by providing the required tools to process high volume and multi- parametric data. It has the potential to contribute new insights and indications for possible early predictors of neurological disorders and open new leads in computational anatomy, tumor growth and organ modeling.********************************************************
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