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Mapping of Benthic Habitats at Marine Renewable Energy Sites Using Multibeam Echosounder and Sediment Profile Imaging Technologies

机译:利用多滨呼吸枢纽和沉积物剖面技术映射海洋可再生能源站点的底栖栖息地

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Objectives/Scope: The goal of this work was to develop a consistent and semi-automated seafloor survey method for generating high-resolution, benthic habitat maps for environmental assessments and monitoring of marine renewable energy sites. Sediment profile and plan view imaging (SPI/PV) technology was combined with multibeam bathymetry and acoustic backscatter methods to demonstrate a rapid, cost-effective benthic mapping protocol. A key technical innovation of this project was the development of an image processing platfonn that automatically measures key features from the images.Methods: Multibeam echosounder (MBES) acoustic and SPI/PV surveys were conducted at three coastal areas off the U.S. west coast, including the Pac Wave South energy test site off of Newport, Oregon. Point data on physical and biological sediment conditions obtained from the SPI/PV imagery were used to efficiently ground-truth the high-resolution MBES bathymetry and backscatter mosaics. The SPI camera is an optical corer that obtains an undisturbed 21 by 15 cm, high-resolution, cross-sectional image of the sediment-water interface and upper sediment column. The plan view camera attached to the SPI camera frame captures a downward looking view of the seabed immediately before the SPI image is obtained. As part of this project, we developed a computer vision image processing platform (iSPI) that uses deep convolutional neural networks and other approaches to automatically identify and measure key features in the images, such as grain size and surface relief.Results: Detailed benthic habitat maps were generated using this mapping approach for three different marine settings. The sites mapped included a silt-dominated embayment; a sloping, nearshore, transitional very fine to coarse sand bottom; and a medium, sand-dominated continental shelf marine energy test site. In each case, acoustic and imaging surveys were completed in less than week, and detailed benthic habitat maps were generated within 60 days. The results were placed within the Coastal and Marine Ecological Classification Standard (CMECS) habitat mapping framework, and various combinations of the bathymetry, backscatter, and SPI and PV data were used to generate CMECS component maps.Novel Information: This project developed and demonstrated a repeatable and cost-effective approach for efficiently mapping benthic habitat conditions over broad areas of the seafloor by combining state-of-the-art acoustic and imaging techniques. The primary survey tools used in this project have been used previously in both the offshore renewable (wind) and oil and gas sectors to map and monitor benthic environments. This project's innovations include 1) the focused use of high-resolution SPI/PV imagery to ground-truth acoustic mosaics, and 2) the development of a computer automated image analysis processing tool that both streamlines and standardizes the generation of data from the imagery and makes the data extraction process more cost-effective and repeatable.
机译:目标/范围:这项工作的目标是开发一种始终如一和半自动的海底测量方法,用于产生高分辨率,用于环境评估和监测海洋可再生能源地点的高分辨率地图。沉积物剖面和平面图成像(SPI / PV)技术与多波米浴浴和声反向散射方法相结合,以展示快速,经济高效的底层映射协议。该项目的一个关键技术创新是开发图像处理Platfonn,它自动测量来自图像的关键功能。方法:Multibeam Echosounder(MBES)声学和SPI / PV调查是在美国西海岸的三个沿海地区进行的,包括俄勒冈州纽波特的PAC波南能试验网站。关于从SPI / PV图像获得的物理和生物沉积物条件的点数据用于有效地对立实际理论,高分辨率MBES沐浴浴和反向散射马赛克。 SPI相机是一种光学啮合,可在沉积物 - 水界面和上沉积柱的沉积物柱的不受干扰的21×15cm,高分辨率横截面图像中获得。附接到SPI相机框架的平面图相机在获得SPI图像之前立即捕获海底的向下看。作为该项目的一部分,我们开发了一种计算机视觉图像处理平台(ISPI),它使用深度卷积神经网络和其他方法来自动识别和测量图像中的关键特征,例如晶粒尺寸和表面浮雕。结果:详细的底栖栖息地使用此映射方法为三种不同的海洋设置生成映射。映射的网站包括淤泥主导的扶手;倾斜,近岸,过渡性非常精细到粗砂底部;和中等,砂占大陆架海洋能源试验网站。在每种情况下,声学和成像调查在不到一周内完成,并且在60天内产生了详细的底栖栖息地地图。将结果放在沿海和海洋生态学分类标准(CMEC)栖息地映射框架内,以及沐浴散,反向散射和SPI和PV数据的各种组合来生成CMECS组件MAPS.Novel信息:该项目开发并展示了一个通过组合最先进的声学和成像技术,可重复且经济有效的方法,用于有效地在海底的宽面积上绘制底栖栖息地条件。本项目中使用的主要调查工具以前在海上可再生(风)和石油和天然气部门来映射和监控底蕴环境。该项目的创新包括1)集中使用高分辨率SPI / PV图像到地面声音马赛克,2)开发计算机自动图像分析处理工具,其简化并标准化图像的生成和标准化图像的生成和标准化使数据提取过程更具成本效益和可重复的。

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