GRIPLAB 1.0:分布式机器视觉应用网格图像处理实验室

Antonino Crisafi, D. Giordano, C. Spampinato
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引用次数: 31

摘要

计算网格已经成为高性能计算必不可少的新兴平台。然而,网格和网格应用程序的发展还远远没有得到肯定,这主要是由于网格计算环境的不发达。因此,在本文中,我们提出了一个名为GrIPLab 1.0(网格图像处理实验室)的工具箱,旨在通过使用EGEE项目中开发的GLite中间件,在网格计算环境中提供高性能图像处理平台。GrIPLab 1.0是视觉算法(最常见的和一些新颖的方法)的组合,复杂的分布式视觉应用程序可以在其上建模为用户友好界面中的简单选择序列。因此,所提出的动态网格工具箱的主要优点是为科学软件开发人员和用户提供了一种新颖而舒适的访问方式,而无需事先了解网格技术甚至底层体系结构。在本文中,我们讨论了提供灵活和有用的机制来实现序列图像处理操作的基础设施,并分析了使用这种系统的优点。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
GRIPLAB 1.0: Grid Image Processing Laboratory for Distributed Machine Vision Applications
Computational grids have become an imperative rising platform for high-performance computing. However, the grid and the grid applications development are still far from being affirmed, which is mainly due to the undeveloped grid-enabled computing environments. For that reason in this paper we propose a toolbox, called GrIPLab 1.0 (Grid Image Processing Laboratory), that aims at providing high performance image-processing platform in a grid computing environment by using the GLite middleware developed in the EGEE project. GrIPLab 1.0 is a combination of vision algorithms (the most common and some novel approaches) on which complex distributed vision applications can be modeled as a simple sequence of choices in a user friendly interface. Therefore, the main advantage of the presented dynamic grid toolbox is that provides a novel and comfortable access for scientific software developers and users without prior knowledge of grid technologies or even the underlying architecture. In this paper, we discuss the infrastructure that provides flexible and useful mechanism to achieve series image processing operations and we analyze the advantages of using such a system.
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