智能asv如何帮助我们支持蓝藻华检测、预测和预警?

J. A. López-Orozco, Gonzalo Carazo-Barbero, L. García-Pérez, J. Girón-Sierra, E. Besada-Portas
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引用次数: 0

摘要

自动化革命为自动化水面车辆提供了机会,这些车辆支持不同自主和智能水平的行为,从遥控水面车辆(RPSV)实现的行为到自主水面车辆(asv)和智能水面车辆(iasv)支持的行为。简而言之,负责RPSVs的工作人员做出所有决策并将其赶出海岸,而asv和iasv可以控制局势并自主移动。它们都配备了探针,可以用来收集物理参数和物质的信息,从而监测蓝藻繁殖(CBs)可能性高的水体。这些载具对这一目的特别有用,因为cb是动态的生物过程,可以发生在水体的许多位置,只有当它们出现在水面时才可见。此外,由于它们产生的有毒代谢物威胁到多种物种的生命,限制了娱乐用水和人类用水,当局应该预测它们的进化或尽快发现它们,以尽量减少人口和动物暴露于它们的有害影响。目前使用的早期预警系统不能捕捉到CBs的时空演变,因为它们的固定探头不能提供来自水体任何兴趣点(POI)的信息。此外,为了经常监测足够多的水体位置,以便了解生物多样性的现状,将人员带船到poi是一种昂贵的不切实际的解决方案。另一种解决方案包括:(1)频繁地将asv自己发送到水体的任何POI,(2)让它们系统地探索感兴趣的区域(roi),或(3)要求它们智能地搜索水体内的相关信息。在第三种选择中,IASV替换可以适应不同的环境,例如由cb演变模拟器提供的信息,由IASV机载传感器提供的信息,或两者兼有。最后,通过将探针连接到自动绞车上,可以调查水柱中每天垂直的蓝藻位移,该绞车也可以远程,自动或智能控制,以便能够在第三维度上探索水体。在这次演讲中,我们将讨论asv和iasv在蓝藻管理领域可以打开的不同可能性。
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How Intelligent ASVs Can Help Us to Support Cyanobacteria Blooms Detection, Predictions, and Early Warning?
: The automation revolution provides access to robotized water-surface vehicles, which support behaviors of different autonomy and intelligence levels, ranging from those achieved by Remotely Piloted Surface Vehicle (RPSV) to those supported by Autonomous Surface Vehicles (ASVs) and Intelligent ASVs (IASVs). In short, the staff in charge of the RPSVs makes all the decisions and drives them from the shore, while ASVs and IASVs can take control of the situation and move themselves autonomously. Equipped with probes, all of them can be used to collect information about physical parameters and substances, and therefore to monitor water bodies where there is a high probability of Cyanobacteria Blooms (CBs). These vehicles are especially useful for this purpose, as CBs are dynamic biological processes that can occur inside many locations of the water body and become only visible when they emerge into the water surface. In addition, as they produce toxic metabolites that threaten the life of multiple species and limit the recreational use and human consumption of water, the authorities should anticipate their evolution or detect them as soon as possible to minimize the exposure of the population and animals to their harmful effects. Early warning systems in use today cannot capture the temporal-space evolution of CBs, because their fixed probes do not provide information from any Point of Interest (POI) of the water body. In addition, taking personnel to the POIs with boats is an expensive impractical solution to frequently monitor enough water-body locations in order to understand the current state of the CB. An alternative solution consists of: (1) frequently sending the ASVs on their own to any POI of the water body, (2) making them systematically explore Regions of Interest (ROIs), or (3) asking them to intelligently search for relevant information within the water body. In the third option, IASV displacements can adapt themselves to different circumstances, such as the information provided by simulators of the CBs evolution, by the IASVs onboard sensors, or by both. Finally, the diurnal vertical cyanobacteria displacements in the water column can be investigated by attaching the probe to an automatic winch that can also be remotely, automatically or intelligently controlled to be able to explore the water body in its third dimension. During this presentation we will discuss different possibilities that ASVs and IASVs can open in the field of cyanobacteria management.
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