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A Variational Level Set Method for Multiple Object Detection

机译:一种用于多目标检测的变分水平集方法

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A novel variational level set method for multiple object detection is presented, which uses n - 1 level set functions for n - 1 objects and the background without overlapping and vacuum problems. The energy functional includes three parts. The first part is a parametric region-based model via generic image noise distributions, the second part is the classic edge-based model, the third part is a term used to enforce the constraints of level set functions as signed distance functions. Characteristic functions for region partitioning are written in a unified form using Heaviside functions of level set functions. Some intermediate terms in evolution equations are extracted in a unified form for simplification of expressions and computation efficiency. The corresponding semi-implicit schemes are derived and used to some examples for segmentation of synthetic and real images to validate the method suggested in this paper.
机译:提出了一种新颖的多目标检测水平集方法,该方法对n-1个对象和背景使用n-1个水平集函数,而不会出现重叠和真空问题。能源功能包括三个部分。第一部分是通过通用图像噪声分布的基于参数区域的模型,第二部分是基于边缘的经典模型,第三部分是用于强制将水平集函数约束为带符号距离函数的术语。使用级别集函数的Heaviside函数以统一的形式编写用于区域划分的特征函数。为了简化表达式和提高计算效率,以统一的形式提取了演化方程中的一些中间项。推导了相应的半隐式方案,并将其用于合成和真实图像分割的一些示例,以验证本文提出的方法。

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