基于 PDE 的直方图修改与嵌入式层次集形态学处理

G. Cserey, C. Rekeczky, P. Foldesy
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引用次数: 2

摘要

本文介绍了在 CNN-UM 框架内采用嵌入式形态学预处理方法的并行直方图修改技术。该程序由非线性偏微分方程(PDE)构成,并通过空间有限差分进行逼近,最终形成耦合非线性常微分方程(ODE)。系统的 I/O 映射(包含局部和全局耦合)可通过在存储程序非线性阵列处理器(称为蜂窝非线性网络通用机(CNN-UM))上执行的复杂模拟(模拟和逻辑)算法进行计算。我们描述并说明了当直方图修改与有限(低)灰度级别的嵌入式形态学处理相结合时,该算法的实施如何产生自适应多阈值方案。如果进一步的处理步骤是分割和/或识别,这就具有明显的优势。在不同的硬件/软件平台(包括 64/spl times/64 CNN-UM 芯片 (ACE4k))上测量了处理真实图像和超声心动图的实验结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
PDE based histogram modification with embedded morphological processing of the level-sets
This paper describes parallel histogram modification techniques with embedded morphological preprocessing methods within the CNN-UM framework. The procedure is formulated in terms of nonlinear partial differential equations (PDE) and approximated through finite differences in space, resulting in coupled nonlinear ordinary differential equations (ODE). The I/O mapping of the system (containing both local and global couplings) can be calculated by a complex analogic (analog and logic) algorithm executed on a stored program nonlinear array processor, called the cellular nonlinear network universal machine (CNN-UM). We describe and illustrate how implementation of the algorithm results in an adaptive multi-thresholding scheme when histogram modification is combined with embedded morphological processing at a finite (low) number of grayscale levels. This has obvious advantages if the further processing steps are segmentation and/or recognition. Experimental results processing real-life and echocardiography images are measured on different hardware/software platforms, including a 64/spl times/64 CNN-UM chip (ACE4k).
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