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A Closed-Loop Filtering Framework for Active Contours

A Closed-Loop Filtering Framework for Active Contours
主动轮廓的闭环过滤框架
批准号:
0622006
负责人:
Patricio Vela
金额:
$0.0万
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2006
资助国家:
美国
项目状态:
已结题
起止时间:
2006-09-01 至 2010-08-31

项目摘要

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中文摘要
翻译
本提案中描述的项目旨在开发一个框架,用于生成用于闭环系统的鲁棒计算机视觉算法。研究的一个主要目标是检验控制理论在增强闭环计算机视觉算法方面可能发挥的作用。知识价值。作为传感器,成像系统可以通过实际传感过程或通过成像场景的几何形状受到噪声的影响。因此,计算机视觉过程可以被解释为存在噪声和不确定性的信号处理任务。这对于闭环视觉系统来说更加复杂,因为控制的努力可能会引起额外的干扰。通过对有限维系统的经典Luenberger观测器的分析,pii提出系统地建立一个类似的框架来过滤封闭曲线,这是被称为主动轮廓的计算机视觉算法的副产品。从本质上讲,这项研究工作涉及到封闭曲线的卡尔曼滤波算法的发展,并涉及到基本的预测和更新方案。主要的研究挑战在于闭合曲线形成了一个无限维的空间,这是经典状态空间观测器理论无法处理的。更广泛的影响。成功地将计算机视觉算法作为控制和动态系统的组成部分,能够极大地提高其鲁棒性水平,而不会使其处理的性质严重复杂化。作为一个特定的应用,展示了这一研究途径在特定领域的潜在影响和挑战,该项目寻求在微观尺度上研究生物膜的闭环控制和估计。本文描述的观测器概念具有改善由基于视觉的算法产生的信号的能力,这些算法构成了闭环过程的主要信息途径。拟议的教育计划将许多这些想法纳入现有的计算机视觉课程,因为它们是将计算机视觉用于反馈驱动系统的重要组成部分。其次,暑期研究和高级设计项目有望激发控制和动态系统理论对计算机视觉的重要性。
英文摘要
The project described in this proposal seeks to a develop a framework for generating robustcomputer vision algorithms for use in closed-loop systems. A principal goal of the research endeavouris to examine the role that control theory may play in enhancing closed-loop computer visionalgorithms.Intellectual Merit. As a sensor, the imaging system can be wrought with noise, either throughthe actual sensing process or through the geometry of the imaged scene. Consequently, the computervision process can be interpreted as a signal processing task in the presence of noise and uncertainy.This is further compounded for closed-loop vision systems, because the control effort can induceadditional disturbances.Through an analysis of the classical Luenberger observer for finite- dimensional systems, the PIproposes to systematically build up a similar framework for filtering of closed curves, which are theby-products of th e computer vision algorithms known as active contours. Essentially, this researchendeavour involves the development of a Kalman filter algorithm for closed curves, and involves aprincipled predict and update scheme. The main investigative challenge lies in the fact that closedcurves form an infinite-dimensional space which classical state-space observer theory is not capableof handling.Broader Impact. The successful consideration of computer vision algorithms as components ofa control and dynamical system has the ability to tremendously increase their level of robustness,without severely complicating the nature of their processing. As a particular application demonstratingthe potential impact and challenges of this research avenue within a specific area, the PIseeks to study the closed-loop control and estimation of bio-membranes at the mico-scale. The observerconcept described herein has the capacity to improve the signal generated from vision-basedalgorithms that form the main information pathway of a closed-loop process.The proposed education plan incorporates many of these ideas into existing computer visioncourses, as they are essential components in the use of computer vision for feedback-driven systems.Secondly, summer research and senior-design projects are anticipated to motivate the importanceof control and dynamical systems theory for computer vision.
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