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ETH Zürich
Postdoc in High Performance Computing (Development of Parallel Numerical Algorithms for Nano-Device Simulation)
Zürich
FULL TIME
November 19, 2024
Postdoc in High Performance Computing (Development of Parallel Numerical Algorithms for Nano-Device Simulation)
100%, Zurich, fixed-term
The Computational Nanoelectronics Group of ETH Zurich recently started implementing a novel device simulator called Qua Tr Ex that exploits the latest developments in high performance computing to run on today's and future exascale computers. Qua Tr Ex is the successor of OMEN, which was awarded the ACM Gordon Bell Prize in 2019. It is written in Python based on the Num Py, Sci Py, Cu Py, and mpi4py modules. It makes use of optimized BLAS, LAPACK, and FFT libraries for both CPU and GPU architectures. Through Cu Py, custom GPU (CUDA/HIP) kernels are seamlessly integrated to bypass bottlenecks that are not amenable to the aforementioned optimized libraries.
Project background
The Computational Nanoelectronic Group will be supported by PASC from 2025 till 2027 to further develop the Qua Tr Ex code and make it a state-of-the-art device simulator. To accomplish the required work, we are looking for a post-doctoral fellow who will collaborate with the existing development team (two post-docs and four Ph D students).
Job description
In particular, the NEGF and SSE methods build upon several computational kernels that are very similar to each other and whose performance can be further enhanced. They involve matrix-matrix multiplications of either “sparse times sparse,” “sparse times dense,” or “dense times sparse” type, with filling densities going from less than 5% up to more than 90%. These computations may be performed on blocks of the H, S, or SSE matrices with sizes in the order of hundreds to thousands or on full-device matrices, whose sizes range from tens of thousands to even millions. In case of small sizes, a single GPU is sufficient, whereas multiple GPUs are needed in large configurations. Preliminary tests revealed that libraries provided by vendors, e.g., cu SPARSE, or by the community, e.g., DBCSR, do not lend themselves optimally to our matrix-matrix multiplications, thus limiting the overall computational efficiency of Qua Tr Ex.
As part of this PASC project:
- An open-source matrix-matrix multiplication library that is specifically tailored to our problems and that works on single and multiple GPUs from different vendors should be developed
- A suitable strategy should be devised to store our sparse matrices and support rapid block extractions, dense matrix multiplications, or Fast Fourier Transforms (FFT), depending on the task at hand
- The algorithms to solve the NEGF equations should be generalized to make them capable of handling matrices with structured sparsity patterns going beyond block-tri-diagonal configurations, e.g., arrow-head matrices, that can be found, for example, in climate modeling applications
Profile
- possess a demonstrated expertise in parallel numerical algorithms, high performance computing, and scientific programming (C/C++, CUDA, Python, · · ·)
- enjoy collaborating with other researchers developing the same application as them and publishing their results in journals and conference proceedings
- be ready to supervise junior students
Workplace
Workplace
We offer
We value diversity
Curious? So are we.
- CV and list of publications
- Letter of motivation
- Short description of Ph D thesis
Further information about the Computational Nanoelectronics Group can be found on our website. Questions regarding the position should be directed to Prof. Dr. Mathieu Luisier, email mluisier@iis.ee.ethz.ch (no applications).
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