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Active and passive optical remote sensing of the aquatic environment: introduction to the feature issue

机译:积极环境的主动和被动光学遥感:功能问题简介

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摘要

Through decades of efforts and practices, we have achieved great progress in understanding ocean biology and biogeochemistry through satellite measurements of ocean (water) color, or passive remote sensing. These include detailed global maps of the distribution of surface phytoplankton, the production of newly formed particulate organic matter through photosynthesis (i.e., primary production), as well as the change and feedback of phytoplankton in a changing climate, to name a few. However, these results are still far from a full account of ocean biology and biogeochemistry, where we want more detailed information of phytoplankton (e.g., types and sizes), as well as information in the vertical dimension. For such, we are happy to see new developments in ocean optics and ocean color remote sensing. These include, but certainly are not limited to, hyperspectral sensors, measurements via polarized setups, as well as ocean lidar systems. In particular, through pumping laser light into deeper ocean, lidar has demonstrated great potential to fill the gap of passive ocean color remote sensing. These developments in technology are providing exciting new findings where breakthroughs in ocean biogeochemistry are on the horizon. Thus, we organized this feature issue in Applied Optics to summarize a few recent developments and achievements, where readers and the community can easily capture progress on both fronts, as well as the potential and advantages of the fusion of passive and active optical sensing. Specifically, this issue contains 12 papers describing research in both active and passive optical remote sensing of aquatic environment. They are still limited in number and subject, but are expected to stimulate the ocean color community with findings relevant for satellite applications. (C) 2020 Optical Society of America
机译:通过数十年的努力和做法,我们通过海洋(水)颜色或被动遥感的卫星测量来了解海洋生物学和生物地球化学方面取得了巨大进展。这些包括表面浮游植物分布的详细全球地图,通过光合作用的新形成的颗粒有机物质的生产,以及浮游植物在变化的气候中的变化和反馈,名称。然而,这些结果仍然远未完整的海洋生物和生物地球化学,在那里我们想要更详细的浮游植物(例如,类型和尺寸)的详细信息,以及垂直尺寸中的信息。为此,我们很乐意在海洋光学和海洋颜色遥感中看到新的发展。这些包括但肯定不限于高光谱传感器,通过偏振设置以及海洋激光雷达系统进行测量。特别是,通过将激光泵入更深的海洋,LIDAR表现出填补被动海洋遥感的差距的巨大潜力。技术的这些发展正在提供令人兴奋的新发现,其中海洋生物地球化学的突破是在地平线上。因此,我们在应用光学中组织了这个特色问题,总结了最近的一些发展和成就,读者和社区可以轻松捕获前方的进步,以及被动和主动光学传感融合的潜力和优势。具体而言,这个问题包含12篇论文,描述了水生环境的主动和被动光学遥感研究。它们仍然有限于数量和主题,但预计将刺激与卫星应用相关的结果的海洋彩色社区。 (c)2020美国光学学会

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    《Applied optics》 |2020年第10期|共2页
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