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Master Thesis: Brain-Inspired Algorithms for Radio Access Networks
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Stockholm, Schweden
A Master's thesis at Ericsson Research in Stockholm (Kista) investigating brain-inspired algorithms for representative RAN workloads. The goal is to evaluate trade-offs among performance, latency, robustness and hardware suitability.
Responsibilities
- ▹Review brain-inspired algorithms for RAN workloads
- ▹Select a representative RAN use case, research question and evaluation metrics
- ▹Prepare data and experimental scenarios suitable for the selected capabilities
- ▹Implement conventional baseline methods and obtain reference KPIs
- ▹Develop and validate a brain-inspired algorithm, focusing on a capability such as robust inference, low-latency processing, multi-timescale temporal processing, sparse representations or adaptation
- ▹Evaluate the algorithm against the baselines using the defined metrics
- ▹Assess hardware suitability by analysing operation count, memory requirements, sparsity and parallelism
- ▹Document the solution and evaluation results
Requirements
- ▹Pursuing a Master's degree in Machine Learning, Mathematics, Engineering Physics, Computer Science, Embedded Systems or a related field
- ▹Strong foundation in probability theory, deep neural networks, spiking neural networks or coupled dynamical systems
- ▹Understanding of neuromorphic computing hardware such as Loihi 2 or SpiNNaker 2, and software simulation frameworks
- ▹Good programming skills and knowledge of C++, Python and Linux
- ▹Strong analytical and problem-solving skills
- ▹Good technical writing and communication skills
Nice to have
- ▹Experience with brain-inspired algorithms or neuromorphic computing
- ▹Familiarity with RAN workloads, wireless communication systems or signal processing
- ▹Experience with experimental evaluation, KPI analysis or hardware-oriented modelling
Soft skills
Analytical thinkingProblem solvingTechnical writingCommunication
About the company
Ericsson is a team of diverse innovators and an equal opportunity employer that welcomes applicants from all backgrounds.
Languages: Angol: a jelentkezést angolul kell beküldeni
Education: Mesterszakos hallgató gépi tanulás, matematika, mérnökfizika, informatika, beágyazott rendszerek vagy rokon területen
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