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Identifying optimal working conditions for close-up imagining during the ExoMars rover mission

机译:识别屈光罗孚特派团期间特写模型的最佳工作条件

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摘要

A Close-Up Imager named CLUPI is one of the instruments that will be onboard the Rosalind Franklin rover, a robot that will explore the surface of Mars in the framework of the ESA/Roscosmos ExoMars mission. CLUPI will be principally used for acquiring close-up images of rock textures and sedimentary structures, identifying materials that may record information about the hypothetical existence of past microbial life. Although the technical specifications of CLUPI are well known, it is not possible to readily translate such specifications in terms of feasibility to recognize "textures of interest" at a given distance under specific light conditions on Mars. Accurate predictions are important for making fast and informed decisions during the daily tactical planning of the rover. Here, we describe the results of some mission-preparation activities, during which a commercial camera that allows for producing images analogue to those of CLUPI has been used to photograph rock samples in an indoor facility (i.e., the Marslabor of the University of Basel) that has been built ad hoc for simulating a Martian landscape. By varying the working distance and light conditions it has been possible to perform a preliminary assessment of the minimal-working-distance required for interpreting rock textures and sedimentary structures that are potentially present on Mars, including textures that allow for differentiating sedimentary rocks from igneous rocks, grains that allow for classifying sedimentary rocks based on their granulometry, and stromatolitic laminations representing morphological biosignatures. In general, the results suggest that rock textures tend to be recognizable even from distances that exceed those one would predict based on the resolution of the instrument and the size of the structure or particles that defines the rock texture or sedimentary structure. We also show that the angle between the illumination axis (i.e., the direction of incident light) and the target surface plays a significant role for the recognition of textural and compositional heterogeneities within the acquired images. The produced data represents a first step in identifying ideal CLUPI working-distances and illumination, and in preparing an image database that will be of help for optimizing rover operations and the scientific return of CLUPI during the ExoMars mission.
机译:名为Clupi的特写成像仪是将在Rosalind Franklin Rover船上滚动的仪器之一,该机器人将在ESA / Roscosmos Exomars Mission的框架中探索火星表面的机器人。 Clupi将主要用于获取岩石纹理和沉积结构的特写图像,识别可能记录有关过去微生物寿命的假设存在信息的材料。尽管Clupi的技术规范是众所周知的,但是不可能在可行性方面容易地翻译这些规范,以在火星上的特定光条件下识别给定距离的“感兴趣的纹理”。准确的预测对于在流动站的日常战术规划期间制作快速和明智的决定很重要。在这里,我们描述了一些任务制作活动的结果,在此期间允许为Clupi生产类似图像的商业摄像机已被用于在室内设施中拍摄岩石样本(即巴塞尔大学的Marsleabor)已经建立了模拟火星景观的ad hoc。通过改变工作距离和光的条件,可以对解释岩石纹理和沉积结构所需的最小工作距离进行初步评估,这些距离火星可能存在的岩石纹理和沉积结构,包括允许从火成岩中区分沉积岩石的纹理,允许基于其粒度测定的沉积岩和代表形态学生物炎的胚胎层叠的晶粒。通常,结果表明,即使从超过那些基于仪器的分辨率的距离和限定岩石纹理或沉积结构的结构或粒度的尺寸,岩石纹理趋于可识别。我们还表明照明轴(即入射光方向)和目标表面之间的角度在获得所获取的图像内的纹理和组成异质性方面起着重要作用。所产生的数据代表识别理想的Clupi工作距离和照明的第一步,以及准备将有助于优化流动仪运营和Clupi的科学回归的图像数据库。

著录项

  • 来源
    《Planetary and space science》 |2021年第11期|105355.1-105355.9|共9页
  • 作者单位

    Space Explorat Inst 68 Faubourg Hop CH-2000 Neuchatel Switzerland|Univ Basel Dept Environm Sci Phys Geog & Environm Change Klingelbergstr 27 CH-4056 Basel Switzerland;

    Univ Basel Dept Environm Sci Phys Geog & Environm Change Klingelbergstr 27 CH-4056 Basel Switzerland;

    Univ Basel Dept Environm Sci Phys Geog & Environm Change Klingelbergstr 27 CH-4056 Basel Switzerland;

    Space Explorat Inst 68 Faubourg Hop CH-2000 Neuchatel Switzerland;

    Nat Hist Museum Bern Bernastr 15 CH-3005 Bern Switzerland|Univ Bern Geol Inst Baltzerstr 1 3 CH-3012 Bern Switzerland;

    Univ Basel Dept Environm Sci Phys Geog & Environm Change Klingelbergstr 27 CH-4056 Basel Switzerland;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Mars yard; ExoMars; Close-up imaging; Planetary exploration; Analogue testing; Science operations;

    机译:火星围场;exoMars;特写成像;行星探索;模拟测试;科学运营;

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