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The new synthesis of cabled observatory science: Technology meets deep-sea ecology

机译:有线天文台科学的新综合:技术与深海生态相遇

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Constraints in sampling repeatability at statistically relevant frequencies are limiting the progress of marine ecology, especially in the vast and still largely unexplored deep sea. Within the framework of novel cabled observatory science, it is now possible to study and monitor the fauna of geologically different ecosystems at any depth of the continental margin and abyssal plains, at sampling frequencies and over temporal durations never attained before (i.e. from seconds to decades). New multiparametric platforms endowed with video cameras that are being progressively installed in different oceans, can be used not only for a broad faunal characterization but also to quantify the massive three-dimensional displacements of marine populations in response to cyclic oceanographic, chemical, and geologic fluctuations (also measured in a multiparametric fashion). Here, we will review how automated video-imaging protocols for animal classification and counting could be implemented to transform the video-camera into one of the first intelligent marine sensors for remote, autonomous and continuous monitoring of communities in relation to their diel (i.e. inertial, internal-tidal or day-night), seasonal, and inter-annual cycles of functioning. We will also discuss the possibility to study the responses of benthic species to other more stochastic habitat changes (e.g. those induced in the water column by the meteorology), through the measurement of modifications in water column properties by observatory vertical elongations. Studies of this kind may allow an efficient modeling of marine community modifications in view of future climate change scenarios, based on alterations of the benthopelagic coupling equilibrium. A special emphasis will also be given to the faunal monitoring prior and after catastrophic events (e.g. seismic activity or tsunamis), to initiate a critical discussion on the reliability of biologically-based early warning systems based on the continuous moni- oring of the deep sea. The reliability of these systems should be evaluated by considering whether significant changes in automatically video-counted benthos occur prior to, or only after, the incoming catastrophe.
机译:在统计上相关的频率上采样重复性的限制限制了海洋生态学的进展,特别是在广阔且仍未开发的深海中。在新颖的有线天文台科学框架内,现在有可能以前所未有的采样频率和持续时间(即从几秒到几十年)研究和监测大陆边缘和深海平原任何深度的地质生态系统的动物群)。配备摄像机的新型多参数平台已逐步安装在不同的海洋中,不仅可以用于广泛的动物区系特征,而且可以量化海洋种群响应周期性海洋,化学和地质波动的大规模三维位移(也以多参数方式衡量)。在这里,我们将回顾如何实现用于动物分类和计数的自动视频成像协议,以将视频相机转换为首批智能海洋传感器之一,以对与它们的diel(即惯性)有关的社区进行远程,自治和连续监控,潮汐内部或昼夜),季节性和年际运行周期。我们还将讨论通过观测天文台垂直伸长量测量水柱特性的变化来研究底栖生物对其他更随机生境变化(例如气象学在水柱中引起的变化)的响应的可能性。鉴于未来的气候变化情景,这种研究可以使海生生物群落的有效建模成为可能,该建模基于底盘上耦合耦合的变化。在灾难性事件(例如地震活动或海啸)发生之前和之后,还将特别重视对动物的监测,以就基于深海持续监测的生物预警系统的可靠性展开批判性讨论。 。这些系统的可靠性应通过考虑自动视频计数的便当是否在传入灾难发生之前或之后发生重大变化来进行评估。

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