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Unified Framework for Development, Deployment and Robust Testing of Neuroimaging Algorithms

机译:神经成像算法开发,部署和鲁棒测试的统一框架

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摘要

Developing both graphical and commandline user interfaces for neuroimaging algorithms requires considerable effort. Neuroimaging algorithms can meet their potential only if they can be easily and frequently used by their intended users. Deployment of a large suite of such algorithms on multiple platforms requires consistency of user interface controls, consistent results across various platforms and thorough testing.We present the design and implementation of a novel object-oriented framework that allows for rapid development of complex image analysis algorithms with many reusable components and the ability to easily add graphical user interface controls. Our framework also allows for simplified yet robust nightly testing of the algorithms to ensure stability and cross platform interoperability. All of the functionality is encapsulated into a software object requiring no separate source code for user interfaces, testing or deployment. This formulation makes our framework ideal for developing novel, stable and easy-to-use algorithms for medical image analysis and computer assisted interventions. The technological The framework has been both deployed at Yale and released for public use in the open source multi-platform image analysis software - BioImage Suite (bioimagesuite.org).
机译:开发用于神经成像算法的图形用户界面和命令行用户界面都需要大量的精力。神经成像算法只有能够被预期的用户轻松,频繁地使用,才能发挥其潜力。在多种平台上部署大量此类算法需要用户界面控件的一致性,跨各种平台的一致结果以及全面的测试。我们介绍了一种新颖的面向对象框架的设计和实现,该框架可快速开发复杂的图像分析算法具有许多可重用的组件,并能够轻松添加图形用户界面控件。我们的框架还允许对算法进行简化而强大的夜间测试,以确保稳定性和跨平台的互操作性。所有功能都封装在一个软件对象中,不需要用于用户界面,测试或部署的单独源代码。这种表述使我们的框架成为开发新颖,稳定且易于使用的算法以进行医学图像分析和计算机辅助干预的理想选择。技术该框架已在耶鲁大学进行了部署,并已在开源多平台图像分析软件-BioImage Suite(bioimagesuite.org)中公开发布。

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