Deep Learning Closure of the Navier--Stokes Equations for Transitional Flows
MacArt, J Sirignano, J Panesi, M (03 Jan 2022)
person looking at a computer screen and editing a web page
How to create a page, add it to the menu, decide who can access it, and publish it.
THE INFLUENCE OF WALL FLEXIBILITY AND SURFACTANT ON LIQUID BOLUS PROPAGATION ALONG A LIQUID-LINED TUBE
Waters, S Howell, P Grotberg, J ASME International Mechanical Engineering Congress and Exposition, Proceedings (IMECE) volume 1998-D 97-98 (01 Jan 1998)
Tue, 31 May 2022

16:00 - 18:00
L5

'My avid fellow feeling' and 'Fleas': Playing with words on the computer

Troy Astarte
(Swansea University)
Abstract

Computers have been used to process natural language for many years. This talk considers two historical examples of computers used rather to play with human language, one well-known and the other a new archival discovery: Strachey’s 1952 love letters program, and a poetry programming competition held at Newcastle University in 1968. Strachey’s program used random number generation to pick words to fit into a template, resulting in letters of varying quality, and apparently much amusement for Strachey. The poetry competition required the entrants, mostly PhD students, to write programs whose output or source code was in some way poetic: the entries displayed remarkable ingenuity. Various analyses of Strachey’s work depict it as a parody of attitudes to love, an artistic endeavour, or as a technical exploration. In this talk I will consider how these apply to the Newcastle competition and add my own interpretations.

Dyadic decomposition of convex domains of finite type and applications
Gan, C Hu, B Khan, I Mathematische Zeitschrift volume 301 1939-1962 (08 Feb 2022)
Edmund John Crampin 1973-2021.
Maini, P Hunter, P Gawthrop, P Smith, N Bulletin of mathematical biology volume 84 issue 3 35 (29 Jan 2022)
Generation time of the alpha and delta SARS-CoV-2 variants: an epidemiological analysis
Hart, W Miller, E Andrews, N Waight, P Maini, P Funk, S Thompson, R Lancet Infectious Diseases volume 22 issue 5 603-610 (14 Feb 2022)
Tue, 22 Feb 2022
14:00
C2

Minimum degree stability and locally colourable graphs

Freddie Illingworth
(Oxford)
Abstract

We tie together two natural but, a priori, different themes. As a starting point consider Erdős and Simonovits's classical edge stability for an $(r + 1)$-chromatic graph $H$. This says that any $n$-vertex $H$-free graph with $(1 − 1/r + o(1)){n \choose 2}$ edges is close to (within $o(n^2)$ edges of) $r$-partite. This is false if $1 − 1/r$ is replaced by any smaller constant. However, instead of insisting on many edges, what if we ask that the $n$-vertex graph has large minimum degree? This is the basic question of minimum degree stability: what constant $c$ guarantees that any $n$-vertex $H$-free graph with minimum degree greater than $cn$ is close to $r$-partite? $c$ depends not just on chromatic number of $H$ but also on its finer structure.

Somewhat surprisingly, answering the minimum degree stability question requires understanding locally colourable graphs -- graphs in which every neighbourhood has small chromatic number -- with large minimum degree. This is a natural local-to-global colouring question: if every neighbourhood is big and has small chromatic number must the whole graph have small chromatic number? The triangle-free case has a rich history. The more general case has some similarities but also striking differences.

A map of the world with incidence circles

The first months of 2020 brought the world to an almost complete standstill due to the occurrence and outbreak of the SARS-CoV-2 coronavirus, which causes the highly contagious COVID-19 disease. Despite the hopes that rapidly developing medical sciences would quickly find an effective remedy, the last two years have made it quite clear that, despite vaccines, this is not very likely.

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