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Master Thesis on Semantic-aware PHY-Layer Techniques for Cooperative Drone Swarm Communication

German Aerospace Center (DLR)vor 3 TagenWerkstudent
Vor OrtEnglisch erforderlichIngenieurwesenElektrotechnik

Erforderliche Skills

Feature ExtractionSignal ProcessingClassificationSDRUWBMATLABPythonWireless NetworksSemantic CommunicationsEmbedded SystemsC/C++

Stellenbeschreibung

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Beschreibung bereitgestellt von German Aerospace Center (DLR)

Vacancy-ID: 5902

Place of work: Oberpfaffenhofen

Starting date: 01.10.2026

Career level: Student research project and final thesis

Type of employment: Part time

Duration of contract: 6 months

Remuneration: Remuneration is in accordance with the Collective Agreement for the Public Sector - Federal Government (TVöD-Bund)

The DLR Institute of Communications and Navigation is dedicated to mission-oriented research in selected areas of communications and navigation. Its work ranges from the theoretical foundations to the demonstration of new procedures and systems in a real environment and is embedded in DLR's Space, Aeronautics, Transport, Security and Digitalization programmes.

What To Expect

The Swarm Exploration Group develops innovative technologies for resilient communication, navigation, and cooperative autonomy across air, road, and maritime sectors. Its core focus is on integrating communication with precise localization and building prototype systems to enable reliable connectivity and situational awareness in safety-critical and infrastructure-limited scenarios.

The thesis focuses on the design and evaluation of physical layer (PHY) techniques for UAV swarm networks. While standard communications focus on bit-error-rate, the project explores a goal-oriented approach: extracting only the information that is actually relevant for swarm operations (e.g., for localization, navigation, communication) directly from the radio signal. This semantic, data-reduced representation can significantly cut the communication overhead needed for continuous swarm coordination. The work complements higher-layer protocol development (e.g., MAC/DECT NR+) by defining the PHY-layer constraints and data formats required for reliable cooperative operation.

Your Tasks

  • Study how to extract relevant, task-specific information (i.e., features) from wireless signals, rather than transmitting raw data, to reduce payload size while preserving the semantic information required for cooperative localization and tracking.
  • Evaluate the approach through software simulations, analyzing the impact of channel effects (e.g., multipath, Doppler) on the accuracy of the extracted information necessary for the upper layers to operate effectively.
  • Gain hands-on experience testing your methods on real hardware platforms (e.g., SDR, UWB modules, flying drones), implementing the signal processing pipeline for real-time operation in airborne environments.
  • Collaborate with the team working on higher-layer protocols to define the best trade-off between raw and processed data transmission to maximize swarm efficiency.

Your Profile

  • Solid background in communication systems, signal processing, and wireless networks.
  • Interest in AI-based signal processing (feature extraction, classification) and semantic communications.
  • Experience with SDR platforms, radio hardware, and embedded systems (testing software on hardware) is a plus.
  • Programming skills in C/C++, MATLAB, and Python.
  • Ability to work independently and interest in interdisciplinary research topics (PHY protocols, AI, and hardware).

We offer

DLR stands for diversity, appreciation and equality for all people. We promote independent work and the individual development of our employees both personally and professionally. To this end, we offer numerous training and development opportunities. Equal opportunities are of particular importance to us, which is why we want to increase the proportion of women in science and management in particular. Applicants with severe disabilities will be given preference if they are qualified.

We look forward to getting to know you!

If you have any questions about this position (Vacancy-ID 5902) please contact:

Dr. Christian Gentner

Tel.: +49 8153 28 2890

Start of internal publication: 03.08.2026

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