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of solid-state matter to dynamic compression on nanosecond timescales. The academic standing of the Fellow, as an independent group leader, will be on a par with the other academics in the Department who
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different model sizes and deployment settings. Apply and advance model compression techniques, including quantization, pruning, knowledge distillation, low-rank adaptation, and related methods. Conduct
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energy-efficient cooling technologies for cryogenic temperatures (<70 K). At such low temperatures, conventional refrigeration technologies based on gas compression become inefficient or impractical, as
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simulation realism and by enforcing quantitative validation against helioseismic constraints. The project combines surface-cooling-driven convection, compressible fluid dynamics, and magnetic fields in ultra
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enforcing quantitative validation against helioseismic constraints. The project combines surface-cooling-driven convection, compressible fluid dynamics, and magnetic fields in ultra-high-resolution models
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based on gas compression become inefficient or impractical, as suitable compressible gases no longer exist and the required infrastructure becomes prohibitively complex and energy intensive. Solid-state
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develop new techniques for optimisation/modification of the laser pulse parameters, such as pulse focusing, filamentation, chirping, and temporal compression. Validate computational codes and implement
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contact information for two referees Attachments must be uploaded as separate files. If the attachments exceed 30 MB, they must be compressed prior to upload. It is the applicant's responsibility to ensure
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We are looking for a researcher, whose expertise lies in Discontinuous Galerkin discretisations, compressible flows, and FEniCS/Firedrake/Dune, to work with Luis Espath & Prof Paul Houston jointly
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such low temperatures, conventional refrigeration technologies based on gas compression become inefficient or impractical, as suitable compressible gases no longer exist and the required infrastructure