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We get the algorithms of our ground truths: Designing referential databases in digital image processing

机译:我们得到了基本事实的算法:在数字图像处理中设计参考数据库

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摘要

This article documents the practical efforts of a group of scientists designing an image-processing algorithm for saliency detection. By following the actors of this computer science project, the article shows that the problems often considered to be the starting points of computational models are in fact provisional results of time-consuming, collective and highly material processes that engage habits, desires, skills and values. In the project being studied, problematization processes lead to the constitution of referential databases called ‘ground truths’ that enable both the effective shaping of algorithms and the evaluation of their performances. Working as important common touchstones for research communities in image processing, the ground truths are inherited from prior problematization processes and may be imparted to subsequent ones. The ethnographic results of this study suggest two complementary analytical perspectives on algorithms: (1) an ‘axiomatic’ perspective that understands algorithms as sets of instructions designed to solve given problems computationally in the best possible way, and (2) a ‘problem-oriented’ perspective that understands algorithms as sets of instructions designed to computationally retrieve outputs designed and designated during specific problematization processes. If the axiomatic perspective on algorithms puts the emphasis on the numerical transformations of inputs into outputs, the problem-oriented perspective puts the emphasis on the definition of both inputs and outputs.
机译:本文记录了一组科学家在设计用于显着性检测的图像处理算法时的实际努力。通过跟踪此计算机科学项目的参与者,该文章表明,通常被视为计算模型起点的问题实际上是耗时,集体和高度实质性过程的临时结果,这些过程涉及习惯,欲望,技能和价值观。在正在研究的项目中,问题化过程导致了被称为“基本事实”的参考数据库的构建,该数据库既可以有效地塑造算法,又可以评估其性能。地面真理是图像处理领域研究社区的重要共同试金石,它是从先前的问题处理过程中继承而来的,并可以传递给后续的问题处理过程。人种学研究的结果提出了关于算法的两种互补分析观点:(1)“公理”观点,将算法理解为旨在以最佳方式以计算方式解决给定问题的指令集,以及(2)“面向问题”将算法理解为指令集的观点,这些指令集旨在通过计算来检索在特定问题处理过程中设计和指定的输出。如果对算法的公理化观点将重点放在输入到输出的数值转换上,那么面向问题的观点将重点放在输入和输出的定义上。

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