German Aerospace Center (DLR)

Exploring Deep Learning and Computer Vision in Solar Forecasting: Benchmarking Data-Driven Models

German Aerospace Center (DLR) Almeria, Eastern Visayas, Philippines

Steigen Sie ein in die faszinierende Welt des Deutschen Zentrums für Luft- und Raumfahrt (DLR), um mit Forschung und Innovation die Zukunft mitzugestalten! Mit dem Know-how und der Neugier unserer 11.000 Mitarbeitenden aus 100 Nationen sowie unserer einzigartigen Infrastruktur, bieten wir ein spannendes und inspirierendes Arbeitsumfeld. Gemeinsam entwickeln wir nachhaltige Technologien und tragen so zur Lösung globaler Herausforderungen bei. Möchten Sie diese große Zukunftsaufgabe mit uns zusammen angehen? Dann ist Ihr Platz bei uns!Für unser Institut für Solarforschung in Almeria (Spanien) suchen wir eine/n

Master's Student (f/m/x) Computer Science or similar

Exploring Deep Learning and Computer Vision in Solar Forecasting: Benchmarking Data-Driven ModelsDas erwartet Sie:

Background:

The Institute of Solar Research is dedicated to advancing the application of solar energy on Earth. Access to reliable solar resource information is crucial for our work. Within the solar energy meteorology group, we gather meteorological data and identify parameters essential for the design, operation, and qualification of solar power plants. Predicting future solar irradiance is a key aspect, with cloud dynamics significantly influencing shortwave radiation and, consequently, impacting solar power plant efficiency. The development of advanced solar forecasting models is essential. These models anticipate perturbations in solar irradiance induced by cloud dynamics. They contribute to the seamless integration of solar energy and thereby address the challenges of the energy transition for climate change mitigation. In recent years, the field has seen significant growth, particularly with the advent of deep learning in computer vision, leading to the publication of numerous data-driven models. However, comparing these models is challenging as they are often trained and tested on proprietary data not publicly shared. To evaluate the true forecast performance, a benchmark study on a common and high-quality database is necessary.

Objective of the Master's Thesis:

This master's thesis aims to conduct a benchmark of data-driven solar forecasting models based on sky images from so called all-sky imagers and time series data. Utilizing high-quality data from the Plataforma Solar de Almería, the models will be trained on a standardized training set and validated on a versatile test set. In addition to exploring model architectures, the research will focus on data preprocessing and training methodologies of published results. The main tasks include:

  • Conduct a comprehensive review of data-driven and machine learning-based methods for solar forecasting with all-sky imagers.
  • Select and implement the most promising approaches from the literature, reproducing published results if data is available.
  • Prepare training, validation, and test datasets for benchmarking the selected models.
  • Validate the selected models, including our own model currently under development at DLR.
  • Analyze benchmark results using standard forecasting metrics (e.g., RMSE) and investigate ramp event detection capabilities.
  • Visualize results using explainable AI techniques to enhance understanding of model behavior.
  • Compile findings and insights into a well-structured master's thesis.

Organizational Notes:

  • Location: Almería, Spain
  • Minimum Period: 6 months (extendable)

Das erwarten wir von Ihnen:

  • Ongoing university studies in computer science, mathematics, physics, or engineering (Diplom/Master, Uni/FH)
  • Background in machine learning
  • Strong programming skills in Python (experience in Pytorch desired)
  • Familiarity with software versioning tools (git/gitlab) advantageous
  • Proficient in oral and written English
  • German and/or Spanish language skills are beneficial (not required)

Das DLR steht für Vielfalt, Wertschätzung und Gleichstellung aller Menschen. Wir fördern eigenverantwortliches Arbeiten und die individuelle Weiterentwicklung unserer Mitarbeitenden im persönlichen und beruflichen Umfeld. Dafür stehen Ihnen unsere zahlreichen Fort- und Weiterbildungsmöglichkeiten zur Verfügung. Chancengerechtigkeit ist uns ein besonderes Anliegen, wir möchten daher insbesondere den Anteil von Frauen in der Wissenschaft und Führung erhöhen. Bewerbungen schwerbehinderter Menschen bevorzugen wir bei fachlicher Eignung. Weitere Angaben: Eintrittsdatum: 01.04.2024

Dauer: 6 month

Beschäftigungsgrad: full time Vergütung: 450 € + ERASMUS funding Kennziffer: 90599
  • Seniority level

    Internship
  • Employment type

    Full-time
  • Job function

    Engineering and Information Technology
  • Industries

    Research Services

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