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Strike-alert: Towards real-time, high resolution navigational software for whale avoidance

机译:罢工警报:走向实时,高分辨率导航软件,用于鲸鱼避免

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Over the past few years, it has been shown that collisions with ships have become one of the major threats for whales. In order to reduce whale-ship strikes, we have started to develop schemes for identifying areas where whales are likely to be present in order to produce maps updated in real time for ships. Our case study is set in the Mediterranean Sea and our goal is to gather all the data available to improve our knowledge on whale distribution using machine learning techniques. The wide variety of data sources (e.g. very high resolution sensors on-board satellites, acoustical measurements, satellite tagging, direct reports from commercial ships, and social media along with streaming earth observation data) and the use of real time and streaming data will allow the development of high precision, real time maps of the likelihood of whale encounters. Our work seeks to dramatically improve the marine spatial effort by moving beyond ecological/environmental models to harness the full array of data and machine learning techniques. The driving idea is not to just create models of where strikes are likely to be, but to develop high resolution maps of probability of whale encounters in real time using all available data sources.
机译:在过去的几年里,已经表明,与船只的碰撞已成为鲸鱼的主要威胁之一。为了减少鲸鱼舰艇,我们已经开始开发用于识别鲸鱼可能出现的区域的计划,以便在实时更新船舶的地图。我们的案例研究位于地中海,我们的目标是收集所有可用于使用机器学习技术提高我们关于鲸鱼分布知识的数据。各种数据源(例如,高分辨率传感器车载卫星,声学测量,卫星标记,从商业船舶的直接报告以及社交媒体以及流媒体观测数据)以及实时和流数据的使用将允许开发高精度,实时地图的鲸鱼遭遇的可能性。我们的工作旨在通过超越生态/环境模型来利用完整的数据和机器学习技术来大幅提高海洋空间努力。驾驶思想不仅仅是创造罢工可能的模型,而是使用所有可用的数据源实时开发鲸鱼遭遇概率的高分辨率映射。

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