Stanford Root

Schedule

Stanford Root

Schedule

EPS 245

Planetary and Geological Optical Remote Sensing (AA 132, AA 232, EPS 195, GEOPHYS 192, GEOPHYS 244)

UNITS:3
GRADING:Letter or Credit/No Credit
LEVEL:Graduate
GER:—

In this class, we will learn the physical principles behind observing reflected and emitted light from planetary bodies. We will cover different types of optical remote sensing instrumentation, such as cameras, UV- visible- near- and shortwave infrared imaging spectrometers, and thermal infrared imaging spectrometers. We will explore how scientific questions, instrument hardware design, and resulting data products are linked and integrated in spacecraft mission design as well as how these datasets are analyzed and how uncertainties, errors, and accuracies are quantified for these data types. We will walk through and discuss spacecraft instrument papers to understand how a data pipeline is constructed and how an instrument is designed, built, and tested. The course will focus on offering in-depth hands-on experience in computational techniques for analyzing real optical remote sensing spacecraft data for geological and planetary applications during a 3-week mini project (equivalent to 3 weeklong homework problems). The class will also provide a shorter experience with remote sensing techniques in the laboratory through one 2-week homework problem and an optional in-field ground-truthing weekend (TBD Memorial Day weekend for the field trip; however, a make-up assignment can be done instead of the field trip if there are date conflicts). Finally, each student will select a scientific question of interest in the planetary sciences or geology and address it by either proposing an instrument design (engineering student-targeted option) or performing an analysis on a real spacecraft dataset for their final project (science student-targeted option). At the end of the class, you will have an opportunity to also discuss what you have learned with an industry professional, who has worked on instrumentation pipelines and machine learning applications in remote sensing at NASA, Bay Area/El Segundo start-up, and the DOD. Instructor consent is required for undergraduate student enrollment.

Syllabus for selected term:
View Spring 2027 Syllabus

Sections

1 Term
Lecture 1Open
ID: 27184
0 / 20 enrolled
DAYS:Wednesday, Friday
TIME:1:30 PM – 2:50 PM
LOCATION:320-241
INSTRUCTOR:
Scheller, Eva
3units

EPS 245: Planetary and Geological Optical Remote Sensing (AA 132, AA 232, EPS 195, GEOPHYS 192, GEOPHYS 244)

3 units · Letter or Credit/No Credit

In this class, we will learn the physical principles behind observing reflected and emitted light from planetary bodies. We will cover different types of optical remote sensing instrumentation, such as cameras, UV- visible- near- and shortwave infrared imaging spectrometers, and thermal infrared imaging spectrometers. We will explore how scientific questions, instrument hardware design, and resulting data products are linked and integrated in spacecraft mission design as well as how these datasets are analyzed and how uncertainties, errors, and accuracies are quantified for these data types. We will walk through and discuss spacecraft instrument papers to understand how a data pipeline is constructed and how an instrument is designed, built, and tested. The course will focus on offering in-depth hands-on experience in computational techniques for analyzing real optical remote sensing spacecraft data for geological and planetary applications during a 3-week mini project (equivalent to 3 weeklong homework problems). The class will also provide a shorter experience with remote sensing techniques in the laboratory through one 2-week homework problem and an optional in-field ground-truthing weekend (TBD Memorial Day weekend for the field trip; however, a make-up assignment can be done instead of the field trip if there are date conflicts). Finally, each student will select a scientific question of interest in the planetary sciences or geology and address it by either proposing an instrument design (engineering student-targeted option) or performing an analysis on a real spacecraft dataset for their final project (science student-targeted option). At the end of the class, you will have an opportunity to also discuss what you have learned with an industry professional, who has worked on instrumentation pipelines and machine learning applications in remote sensing at NASA, Bay Area/El Segundo start-up, and the DOD. Instructor consent is required for undergraduate student enrollment.

Offered in Spring 2027 at Stanford University.

Spring 2027 sections

  • Lecture — Wednesday Friday 1:30 PM – 2:50 PM — 320-241 — Scheller, Eva (Graduate)

More EPS courses

  • EPS 233: Planetary Geophysics: Theory, Observational Techniques and Data Analysis (AA 234, GEOPHYS 243)
  • EPS 235: Sedimentary Geochemistry and Analysis (EPS 135)
  • EPS 236: Macroevolution (BIO 136, BIO 236, EPS 136)
  • EPS 237: The Sixth Extinction (and the Other Five) (EARTHSYS 127A, EARTHSYS 227A, EPS 137)
  • EPS 239: 500 Million Years of Land Plant Evolution (EPS 139)
  • EPS 240: Data Science for Geoscience (EARTHSYS 240, ENERGY 240, EPS 140, ESS 239)
  • EPS 251: Sedimentary Basins
  • EPS 254: Sedimentology and Rock Physics of Carbonates (GEOPHYS 254)
  • EPS 262: Life and Landscape Linkages Seminar
  • EPS 264: Geochemical Thermodynamics (EPS 164)
  • EPS 271: Mining and the Green Transition (EARTHSYS 171, EARTHSYS 271, ENERGY 161, ENERGY 261, EPS 171)
  • EPS 280: Magmatic and Eruptive Processes (EPS 180)

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