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Evaluation of classification techniques for benthic habitat mapping

机译:底栖生境制图分类技术评估

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The coral ecosystem is sensitive to environmental changes thus accurate, up to date information on their status is critical for effective management of these important marine resources. However, environments containing these habitats are challenging to map due to their remoteness, extent and costs of monitoring. In this research, the capabilities of satellite remote sensing techniques combined with in situ data were assessed to generate coral habitat map of Lang Tengah Island, Terengganu, Malaysia. Several classification techniques were utilized in identifying coral distribution to assess their ability to map different type of benthic habitat associated with coral reefs. Five classifiers were used to classify the study area mainly, Parallelepiped, Minimum distance, Maximum likelihood, Fisher and K-Nearest Neighbour. Using the same training data sets to evaluate their effectiveness, results from the classification shows that each method produced different accuracy based on bottom type. Utilizing the strength of each classifier this study was able to increase per class accuracy of the habitat map through several image processing techniques mainly majority voting, simple averaging and mode combination. Results show that by utilizing these ensemble techniques for classifying benthic habitat the accuracy produced was higher than conventional supervised techniques.
机译:珊瑚生态系统对环境变化敏感,因此,准确,最新的状态信息对于有效管理这些重要的海洋资源至关重要。但是,包含这些栖息地的环境由于其偏远,范围和监控成本而难以绘制地图。在这项研究中,评估了卫星遥感技术与原位数据相结合的能力,以生成马来西亚登嘉楼郎登加岛的珊瑚栖息地图。利用几种分类技术来识别珊瑚分布,以评估其绘制与珊瑚礁相关的不同类型底栖生境的能力。五个分类器主要用于对研究区域进行分类,即平行六面体,最小距离,最大似然,Fisher和K最近邻。使用相同的训练数据集来评估其有效性,分类结果表明,每种方法根据底部类型产生的准确性不同。利用每个分类器的优势,这项研究能够通过几种图像处理技术(主要是多数表决,简单平均和模式组合)来提高栖息地地图的每类准确性。结果表明,通过使用这些合奏技术对底栖生境进行分类,所产生的精度要高于传统的监督技术。

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