论文标题

用火星同轴二极管对火星熔岩管进行节能的自主探索

Towards Energy Efficient Autonomous Exploration of Mars Lava Tube with a Martian Coaxial Quadrotor

论文作者

Patel, Akash, Karlsson, Samuel, Lindqvist, Bjorn, Kanellakis, Christoforos, Mohammadi, Ali Akbar Agha, Nikolakopoulos, George

论文摘要

自从MARS直升机的创造力成功地演示飞行以来,用飞行器对火星地形的映射和探索已成为新兴的研究方向。尽管事实证明,火星直升机状态的自主性和导航能力在开放的环境中是有效的,但在火星上进行探索的下一个感兴趣的领域是洞穴或古老的熔岩管,例如环境,尤其是在其他行星上无休止地寻找生命。本文介绍了一个基于修改后的边境方法的自主探索任务,以及风险意识的计划和综合碰撞避免计划,特别关注火星模拟的熔岩管中定制设计的MARS同轴肌电轴心四角形(MCQ)的能量方面。本文的最大新颖性之一是解决了探索能力,同时在当地迅速进行探索,并在到达死亡端时智能地重新定位了MCQ,以便有效地利用基于电池的消耗能量,同时增加勘探量。提出的基于三层成本的全球重位点选择有助于将MCQ迅速重定向到以前看到的部分,这些区域可能导致熔岩管中更多未开发的部分。在本文中提出的火星完全模拟的任务考虑到在薄的大气,低表面压力和地球的低重力方面,火星状况的物理学的保真度,而证明了拟议方案在探索由于地下类似于地下的环境而尤其具有挑战性的区域方面的效率。通过将其与基于图的探索计划者进行比较,在模拟中还验证了拟议的探索计划框架。

Mapping and exploration of a Martian terrain with an aerial vehicle has become an emerging research direction, since the successful flight demonstration of the Mars helicopter Ingenuity. Although the autonomy and navigation capability of the state of the art Mars helicopter has proven to be efficient in an open environment, the next area of interest for exploration on Mars are caves or ancient lava tube like environments, especially towards the never-ending search of life on other planets. This article presents an autonomous exploration mission based on a modified frontier approach along with a risk aware planning and integrated collision avoidance scheme with a special focus on energy aspects of a custom designed Mars Coaxial Quadrotor (MCQ) in a Martian simulated lava tube. One of the biggest novelties of the article stems from addressing the exploration capability, while rapidly exploring in local areas and intelligently global re-positioning of the MCQ when reaching dead ends in order to to efficiently use the battery based consumed energy, while increasing the volume of the exploration. The proposed three layer cost based global re-position point selection assists in rapidly redirecting the MCQ to previously partially seen areas that could lead to more unexplored part of the lava tube. The Martian fully simulated mission presented in this article takes into consideration the fidelity of physics of Mars condition in terms of thin atmosphere, low surface pressure and low gravity of the planet, while proves the efficiency of the proposed scheme in exploring an area that is particularly challenging due to the subterranean-like environment. The proposed exploration-planning framework is also validated in simulation by comparing it against the graph based exploration planner.

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