51ÁÔÆæÈë¿Ú

Skip to main content
Department Of Physics text logo
  • Research
    • Our research
    • Our research groups
    • Our research in action
    • Research funding support
    • Summer internships for undergraduates
  • 51ÁÔÆæÈë¿Ú
    • Undergraduates
    • Postgraduates
  • Engage
    • For alumni
    • For business
    • For schools
    • For the public
  • Support
Menu
Relative vorticity in SpeedyWeather, painted like clouds.

Milan Kloewer (he|him)

NERC Research Fellow

Research theme

  • Climate physics

Sub department

  • Atmospheric, Oceanic and Planetary Physics

Research groups

  • Climate processes
milan.kloewer@physics.ox.ac.uk
  • About
  • Publications

Earth Virtualization Engines -- A Technical Perspective

ArXiv 2309.09002 (2023)

Authors:

Torsten Hoefler, Bjorn Stevens, Andreas F Prein, Johanna Baehr, Thomas Schulthess, Thomas F Stocker, John Taylor, Daniel Klocke, Pekka Manninen, Piers M Forster, Tobias Kölling, Nicolas Gruber, Hartwig Anzt, Claudia Frauen, Florian Ziemen, Milan Klöwer, Karthik Kashinath, Christoph Schär, Oliver Fuhrer, Bryan N Lawrence

How can we reduce the climate costs of OHBM? A vision for a more sustainable meeting

Aperture Neuro Organization for Human Brain Mapping 3 (2023)

Authors:

Samira Epp, Heejung Jung, Valentina Borghesani, Milan Klöwer, Marie-Eve Hoeppli, Maria Misiura, Elinor Thompson, Niall W Duncan, Anne E Urai, Michele Veldsman, Sepideh Sadaghiani, Charlotte L Rae

Periodic orbits in chaotic systems simulated at low precision

Scientific Reports Nature Research 13:1 (2023) 11410

Authors:

Milan Klöwer, Peter V Coveney, E Adam Paxton, Tim N Palmer

Abstract:

Non-periodic solutions are an essential property of chaotic dynamical systems. Simulations with deterministic finite-precision numbers, however, always yield orbits that are eventually periodic. With 64-bit double-precision floating-point numbers such periodic orbits are typically negligible due to very long periods. The emerging trend to accelerate simulations with low-precision numbers, such as 16-bit half-precision floats, raises questions on the fidelity of such simulations of chaotic systems. Here, we revisit the 1-variable logistic map and the generalised Bernoulli map with various number formats and precisions: floats, posits and logarithmic fixed-point. Simulations are improved with higher precision but stochastic rounding prevents periodic orbits even at low precision. For larger systems the performance gain from low-precision simulations is often reinvested in higher resolution or complexity, increasing the number of variables. In the Lorenz 1996 system, the period lengths of orbits increase exponentially with the number of variables. Moreover, invariant measures are better approximated with an increased number of variables than with increased precision. Extrapolating to large simulations of natural systems, such as million-variable climate models, periodic orbit lengths are far beyond reach of present-day computers. Such orbits are therefore not expected to be problematic compared to high-precision simulations but the deviation of both from the continuum solution remains unclear

Forecasting feels-like temperatures as a strategy to reduce heat illnesses during sport events

British Journal of Sports Medicine BMJ 57:10 (2023) 564-565

Authors:

Milan Klöwer, Pascal Edouard, Andreas M Niess, Sebastien Racinais, Yannis P Pitsiladis, Florian Pappenberger, Karsten Hollander

Earth Virtualization Engines: A Technical Perspective

Computing in Science & Engineering Institute of Electrical and Electronics Engineers (IEEE) 25:3 (2023) 50-59

Authors:

Torsten Hoefler, Bjorn Stevens, Andreas F Prein, Johanna Baehr, Thomas Schulthess, Thomas F Stocker, John Taylor, Daniel Klocke, Pekka Manninen, Piers M Forster, Tobias Kölling, Nicolas Gruber, Hartwig Anzt, Claudia Frauen, Florian Ziemen, Milan Klöwer, Karthik Kashinath, Christoph Schär, Oliver Fuhrer, Bryan N Lawrence

Pagination

  • First page First
  • Previous page Prev
  • Page 1
  • Page 2
  • Current page 3
  • Page 4
  • Page 5
  • Page 6
  • Next page Next
  • Last page Last

Footer Menu

  • Contact us
  • Giving to the Dept of Physics
  • Work with us
  • Media

User account menu

  • Log in

Follow us

FIND US

Clarendon Laboratory,

Parks Road,

Oxford,

OX1 3PU

CONTACT US

Tel: +44(0)1865272200

Department Of Physics text logo

© University of Oxford - Department of Physics

Cookies | Privacy policy | Accessibility statement

  • Home
  • Research
  • 51ÁÔÆæÈë¿Ú
  • Engage
  • Our people
  • News & Comment
  • Events
  • Our facilities & services
  • 51ÁÔÆæÈë¿Ú
  • Giving to Physics