机器学习应用的设计模式

Ruchi Sharma, K. Davuluri
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引用次数: 2

摘要

本文的目的是检测和分析两个分别使用机器学习(ML)和深度学习技术的软件应用程序的设计模式和架构模式。分类是根据标准设计和体系结构模式需要遵循的设计原则进行的。基于ML的应用程序通常在某种程度上具有无处不在的模块。然而,通过不同的设计模式对它们的组件进行建模,可以对系统的性能产生积极的变化,并减轻许多在其他方面面临的计算缺陷。尽管对于实现机器学习算法的系统来说,这仍然是一种新颖的方法,但本文旨在为分析系统模型带来一种新的范式。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Design patterns for Machine Learning Applications
The aim of this paper is detecting and analyzing design patterns and architectural patterns for two software applications that use Machine Learning (ML) and Deep Learning techniques respectively. The classification is done based on the design principles that need to be adhered for a standard design and architectural patterns. ML based applications generally have ubiquitous modules to some extent. However, modeling their components through varied design patterns bring out positive changes to the performance of the systems as well as mitigates many of the computational shortcomings faced otherwise. Although it is still a novel approach for systems implementing machine learning algorithms, the paper aims to bring a new paradigm in analyzing system models.
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