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Hierarchical segmentation-based software for cover classification analyses of seabed images (Seascape)

机译:基于层次分割的软件,用于海底图像的封面分类分析(Seascape)

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摘要

An important aspect of marine research is to quantify the areal coverage of benthic communities. It is technically feasible to efficiently obtain images of marine environments at different depths and benthic habitats over large spatial and temporal scales. Currently, there is a large and growing library of digital images to analyze, representing a valuable benthic ecological archive. Benthic coverage is the basis of studies on biodiversity, characterization of communities and evaluation of changes over temporal and spatial scales. However, there is still a lack of automatic or semi-automatic analytical methods for deriving ecologically relevant data from these images. We introduce a software program named Seascape to obtain semi-automatically segmented images (patch outlines) from underwater photographs of benthic communities, where each individual patch (species/categories) is routinely associated to its area cover and perimeter. Seascape is an analog to the classical and better known discipline of landscape ecology approach, which focuses on the concept that communities can be observed as a patch mosaic at any scale. The process starts with a hierarchical segmentation, using a color space criteria adapted to the problem of segmenting complex benthic images. As an endproduct, we obtain a set of images segmented into classified homogenous regions at different resolution levels (hierarchical segmentation). To illustrate the versatility and capacity of Seascape, we analyzed 4 digital images from different habitats and depths: coral reefs (Pacific Ocean), coralligenous communities (NW Mediterranean Sea), deep-water coral reefs (NW Mediterranean Sea) and the Antarctic continental shelf (Weddell Sea). The development of this semi-automatic outline tool and its use for classification constitute an important step forward in the analysis and processing time of underwater seabed images at any scale.
机译:海洋研究的一个重要方面是量化底栖生物的面积。在大的时空尺度上有效获取不同深度和底栖生境的海洋环境图像在技术上是可行的。当前,有一个庞大且不断增长的数字图像库可供分析,代表着宝贵的底栖生态档案。底栖生物覆盖是生物多样性研究,社区特征以及评估时空尺度变化的基础。然而,仍然缺乏用于从这些图像中得出生态相关数据的自动或半自动分析方法。我们引入了一个名为Seascape的软件程序,以从底栖生物的水下照片中获取半自动分割的图像(斑块轮廓),其中每个单独的斑块(物种/类别)通常与其区域覆盖范围和周长相关联。海景是经典的和更广为人知的景观生态学方法的类似物,该方法侧重于以下概念:可以以任何规模将社区视为斑块状的马赛克。该过程从分层分割开始,使用适合于分割复杂底栖图像问题的色彩空间标准。作为最终产品,我们获得了一组以不同分辨率级别划分为同质区域的图像(层次划分)。为了说明海景的多功能性和功能,我们分析了来自不同栖息地和深度的4个数字图像:珊瑚礁(太平洋),珊瑚群落(地中海西北),深水珊瑚礁(地中海地中海)和南极大陆架(韦德尔海)。这种半自动轮廓工具的开发及其用于分类的工作,构成了在任何规模下分析和处理水下海底图像的重要一步。

著录项

  • 来源
    《Marine ecology progress series》 |2011年第2011期|p.45-53|共9页
  • 作者单位

    Centre d'Estudis Avangats de Blanes (CEAB-CSIC), Acces Cala Sant Francesc 14, 17300 Blanes, Girona, Spain,Institut Ciencies del Mar (ICM-CSIC), Passeig Maritim de la Barceloneta 37-49, 08003 Barcelona, Spain,Departament d'Ecologia, Facultat Biologia, Universitat Barcelona, Avda Diagonal 645, 08028 Barcelona, Spain;

    Starlab, C. Teodor Roviralta n45, 08022 Barcelona, Spain;

    Institut Geographique National IGN-Laboratoire MATIS, 2/4, av. Pasteur, 94165 Saint-Mande, France;

    Institut Geographique National, Pare Technologique du Canal, BP 42116, 6 av. De l'Europe, 31521 Ramonville Cedex, France;

    Institut Ciencies del Mar (ICM-CSIC), Passeig Maritim de la Barceloneta 37-49, 08003 Barcelona, Spain;

    Institut Ciencies del Mar (ICM-CSIC), Passeig Maritim de la Barceloneta 37-49, 08003 Barcelona, Spain;

    CREATIS, UMR CNRS 5515, U 630 Inserm, INSA, 7 rue Jean Capelle, bat. Blaise Pascal, 69621 Villeurbanne Cedex, France;

    Institut Ciencies del Mar (ICM-CSIC), Passeig Maritim de la Barceloneta 37-49, 08003 Barcelona, Spain;

    Marine Technology Unit (UTM-CSIC), Passeig Maritim de la Barceloneta 37-49, 08003 Barcelona, Spain;

    Institut Geographique National IGN-Laboratoire MATIS, 2/4, av. Pasteur, 94165 Saint-Mande, France;

    Starlab, C. Teodor Roviralta n45, 08022 Barcelona, Spain;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    area cover; benthic communities; digital photography; image analysis; hierarchical segmentation;

    机译:区域覆盖;底栖社区;数字摄影;图像分析;分层分割;

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