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AISO: Annotation of Image Segments with Ontologies

机译:AISO:带有本体的图像片段注释

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摘要

BackgroundLarge quantities of digital images are now generated for biological collections, including those developed in projects premised on the high-throughput screening of genome-phenome experiments. These images often carry annotations on taxonomy and observable features, such as anatomical structures and phenotype variations often recorded in response to the environmental factors under which the organisms were sampled. At present, most of these annotations are described in free text, may involve limited use of non-standard vocabularies, and rarely specify precise coordinates of features on the image plane such that a computer vision algorithm could identify, extract and annotate them. Therefore, researchers and curators need a tool that can identify and demarcate features in an image plane and allow their annotation with semantically contextual ontology terms. Such a tool would generate data useful for inter and intra-specific comparison and encourage the integration of curation standards. In the future, quality annotated image segments may provide training data sets for developing machine learning applications for automated image annotation.
机译:背景技术现在已经生成了大量的数字图像用于生物学收集,包括在以高通量筛选基因组-现象学实验为前提的项目中开发的图像。这些图像通常带有关于分类法和可观察特征的注释,例如通常记录下来的解剖结构和表型变化,以响应对生物采样所依据的环境因素。当前,这些注释中的大多数以自由文本形式描述,可能涉及非标准词汇的有限使用,并且很少在图像平面上指定特征的精确坐标,因此计算机视觉算法可以识别,提取和注释它们。因此,研究人员和策展人需要一种可以识别和划分图像平面中的特征并允许其使用语义上下文本体术语进行注释的工具。这种工具将产生有用的数据,以进行种间和种内比较,并鼓励整合策展标准。将来,质量带注释的图像片段可能会提供训练数据集,以开发用于自动图像注释的机器学习应用程序。

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