From: Wolfgang Bangerth Date: Mon, 23 Apr 2018 21:21:23 +0000 (-0600) Subject: Update the section on tutorial/code gallery programs. X-Git-Url: https://gitweb.dealii.org/cgi-bin/gitweb.cgi?a=commitdiff_plain;h=f9f93526076869930a19411443a39ec34b11fc3c;p=release-papers.git Update the section on tutorial/code gallery programs. --- diff --git a/9.0/paper.tex b/9.0/paper.tex index 2c1a6db..bcfce8d 100644 --- a/9.0/paper.tex +++ b/9.0/paper.tex @@ -193,7 +193,10 @@ The major changes of this release are: \item Interfaces to more external libraries and programs. \item C++11 is now both required and used. \item Support for GPU computations. - +\end{itemize} +These will all be discussed in more detail in the +following section. In addition, this release contains the following changes: +\begin{itemize} \item \dealii{} has made extensive use of both the Clang-Tidy \cite{clang-tidy} and Coverity Scan \cite{coverity} static analysis tools for detecting bugs and other issues in the code. For example, around 260 issues were detected and @@ -235,15 +238,12 @@ are mainly used in Boundary Element Methods. Support for complex-valued vectors at the same level as real-valued vectors. -\item New python tutorial program tutorial-1; as well as +\item A new python tutorial program tutorial-1; as well as updates to step-37. In addition, the separate code gallery of \dealii{} has gained a number of new entries. - - \item More than 330 other features and bugfixes. \end{itemize} -The more important ones of these changes will be detailed in the -following section. Information on how to cite \dealii{} is provided -in Section \ref{sec:cite}. +Beyond these changes, the changelog lists more than 330 other features and bugfixes. + @@ -264,20 +264,28 @@ the release announcement.) %%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%% \subsection{xxx something with Manifolds xxx} - Manifold smoothing: The manifold smoothing algorithms applied in the - Triangulation class and MappingQGeneric have been changed from the old - Laplace-style smoothing to a transfinite interpolation that linearly - blends between the descriptions on the faces around a cell. The old - transformation introduced boundary layers inside cells that prevented - convergence rates from exceeding \(3.5\) in the global \(L^2\) errors on typical - settings. This change also considerably improves mesh quality on settings - where curved descriptions are only applied to the boundary rather than - the whole volume. +\marginpar{All: please edit as appropriate} + +(i) separation between manifold and boundary ids, (ii) manifold +smoothing via the transfinite mapping, (iii) maybe: grid generator functions already attach manifolds? + +Previous text: + +Manifold smoothing: The manifold smoothing algorithms applied in the +Triangulation class and MappingQGeneric have been changed from the old +Laplace-style smoothing to a transfinite interpolation that linearly +blends between the descriptions on the faces around a cell. The old +transformation introduced boundary layers inside cells that prevented +convergence rates from exceeding \(3.5\) in the global \(L^2\) errors on typical +settings. This change also considerably improves mesh quality on settings +where curved descriptions are only applied to the boundary rather than +the whole volume. %%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%% \subsection{Support for particle-in-cell methods} +\marginpar{Rene: Please edit as appropriate} While \dealii{} is a package intended to solve problems with the finite element method -- i.e., using continuous or discontinuous \textit{fields} --, is often convenient in fluid dynamics problems to @@ -298,19 +306,31 @@ and supports efficient data transfer during mesh refinement and checkpoint/restart phases. A much more detailed view of the underlying algorithms can be found in -\cite{GLHPB18}. A longer report is at \cite{GHPB16}. +\cite{GLHPB18}. A longer report is at \cite{GHPB16}. The +implementation here originated in the \aspect{} code, see \cite{KHB12,HDGB17}. %%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%% \subsection{Dedicated support for automatic and symbolic differentiation} -A dedicated differentiation module has been created to provide support for -automatic and symbolic differentiation. Automatic differentiation is a set of -technique to evaluate the derivatives of a function defined by a compute -program. Currently the Adol-C and Sacado libraries are supported through a -unified interface. In practice, this support means that Adol-c and Sacado -data types can be used in the \texttt{FEValues} and \texttt{FEValuesViews} -to represent degree-of-freedom values. +\marginpar{J-P: Please edit as appropriate} +Automatic differentiation is often used to automatically derive +residuals from the stored energy functional, and to derive Jacobian +matrices from residual vectors for simulations that use complicated +material models. Examples can be found widely for nonlinear solid +mechanics as well as for nonlinear viscosity models in fluid flow. + +\dealii{} has had a tutorial program (step-33) since 2007 that +demonstrates this technique based on the Trilinos Sacado package, but +the functionality was not available pervasively throughout +deal.II. This has changed with release 9.0 where support for +differentiation has been collected in one module that provides both +automatic and symbolic differentiation. Currently, this module relies +on either the Adol-C and Sacado libraries, through a unified +interface. In practice, this support means that Adol-C and Sacado data +types can be used in the \texttt{FEValues}, \texttt{FEValuesViews}, +and related classes that are generally used to assemble linear systems +and right hand sides. %%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%% @@ -414,44 +434,27 @@ thereby clarifying object ownership responsibilities and avoiding memory leaks. %%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%% -\subsection{New and updated tutorial programs} +\subsection{Tutorial and code gallery programs} -\marginpar{OLD} -In addition to the updated tutorial programs mentioned in the previous -section, this release of \dealii{} includes three new tutorials TODO: old: -\begin{itemize} - \item {\bf step-55} explains how to solve the Stokes - equations efficiently in parallel. It is a good introduction to solving - systems of PDEs in parallel, discusses optimal block - preconditioners, and demonstrates other aspects like error computation. - Inverses of individual blocks of the linear system are approximated with an algebraic - multigrid preconditioner. - - \item {\bf step-56} shows how to apply geometric multigrid - preconditioners on a subset of a system of PDEs. The problem solved here is the - Stokes equations, like in step-55. - - \item {\bf step-57} solves the stationary Navier-Stokes equations. - The nonlinear system is solved using Newton's method on a sequence of adaptively refined - grids. The preconditioner is again built on a block factorization of the saddle point - system like in step-55 and step-56, but the non-symmetric terms stemming from the - nonlinear convective part requires more sophisticated solvers. The benchmark problem, - flow in the 2d lid-driven cavity, requires a continuation method for high Reynolds - numbers. - \end{itemize} - -In addition to tutorials, \dealii{} has a separate ``code gallery'' that +This release does not contain any new tutorial programs, though +several have been updated extensively for the changes to the manifold +handling as well as to adjust for current functionality +compared to what that was available when the programs were first written. + +\dealii{} has a separate ``code gallery'' that consists of programs shared by users as examples of what can be done with \dealii{}. While not part of the release process, it is nonetheless worth mentioning that the set of new programs since the last release covers the following topics: -\marginpar{OLD} - \begin{itemize} - \item Quasi-static quasi-incompressible visco-elastic material behavior; - \item Multiphase Navier-Stokes flow; - \item The evolution of global-scale topography on planetary bodies; - \item Goal-oriented elastoplasticity. - \end{itemize} +\begin{itemize} +\item The multipoint flux mixed finite element method (MFMFE) applied + to the Darcy problem of porous media flow; +\item A linearized active skeletal muscle model with application to + the simulation concentric contraction of the human biceps brachii; +\item A parallel implementation of the Local Discontinuous Galerkin + (LDG) method applied to the Poisson equation. +\end{itemize} +With these additions, the code gallery now contains 10 different applications. %%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%