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Decomposition-based mission planning for fixed-wing UAVs surveying in wind

机译:固定翼无人机在风中测量的基于分解的任务计划

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This paper presents a new method for planning fixed-wing aerial survey paths that ensures efficient image coverage of a large complex agricultural field in the presence of wind. By decomposing any complex polygonal field into multiple convex polygons, the traditional back-and-forth boustrophedon paths can be used to ensure coverage of these decomposed regions. To decompose a complex field in an efficient and fast manner, a top-down recursive greedy approach is used to traverse the search space to minimize the flight time of the survey. This optimization can be computed fast enough for use in the field. As wind can severely affect flight time, it is included in the flight time calculation in a systematic way using a verified cost function that offers greatly reduced survey times in the wind. Other improved cost functions have been developed to take into account real-world problems, for example, No-Fly Zones, in addition to flight time. A number of real surveys are performed to show the flight time in wind model is accurate, to make further comparisons to previous techniques and to show that the proposed method works in real-world conditions providing total image coverage. A number of missions are generated and flown for real complex agricultural fields. In addition to this, the wind field around a survey area is measured from a multirotor carrying an ultrasonic wind speed sensor. This shows that the assumption of steady uniform wind holds true for the small areas and time scales of an unmanned aerial vehicle aerial survey.
机译:本文提出了一种用于规划固定翼航测路径的新方法,该方法可确保在有风的情况下有效地覆盖大型复杂农业领域。通过将任何复杂的多边形场分解为多个凸多边形,可以使用传统的来回牛逼路径来确保这些分解区域的覆盖。为了以高效,快速的方式分解复杂的字段,可以使用自上而下的递归贪婪方法遍历搜索空间,以最大程度地减少调查的飞行时间。可以足够快地计算出该优化,以用于现场。由于风会严重影响飞行时间,因此使用经过验证的成本函数可以系统地将其包含在飞行时间计算中,从而大大减少了风中的测量时间。还开发了其他改进的成本函数,以考虑现实世界中的问题,例如,除了飞行时间以外,还设有禁飞区。进行了许多实际调查,以表明风模型中的飞行时间是准确的,与以前的技术进行了进一步的比较,并证明了所提出的方法在现实环境中有效,能够提供全部图像覆盖。为实际的复杂农业领域产生并执行了许多任务。除此之外,还从带有超声波风速传感器的多旋翼测量测量区域周围的风场。这表明在无人飞行器航空勘测的小范围和时间尺度上均等风稳定假设是成立的。

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