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2 changes: 2 additions & 0 deletions tutorials/CMakeLists.txt
Original file line number Diff line number Diff line change
Expand Up @@ -83,4 +83,6 @@ copy_tutorial_file (features/t8_features_curved_meshes_generate_cmesh_tri.geo)

if( T8CODE_BUILD_MESH_HANDLE )
add_mesh_handle_tutorial( NAME t8_mesh_element_data SOURCES mesh_handle/t8_mesh_element_data.cxx )
add_mesh_handle_tutorial( NAME t8_mesh_stepA_competences SOURCES mesh_handle/t8_mesh_stepA_competences.cxx )
endif()

256 changes: 256 additions & 0 deletions tutorials/mesh_handle/t8_mesh_stepA_competences.cxx
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@@ -0,0 +1,256 @@
/*
This file is part of t8code.
t8code is a C library to manage a collection (a forest) of multiple
connected adaptive space-trees of general element types in parallel.

Copyright (C) 2026 the developers

t8code is free software; you can redistribute it and/or modify
it under the terms of the GNU General Public License as published by
the Free Software Foundation; either version 2 of the License, or
(at your option) any later version.

t8code is distributed in the hope that it will be useful,
but WITHOUT ANY WARRANTY; without even the implied warranty of
MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
GNU General Public License for more details.

You should have received a copy of the GNU General Public License
along with t8code; if not, write to the Free Software Foundation, Inc.,
51 Franklin Street, Fifth Floor, Boston, MA 02110-1301, USA.
*/

/** \file t8_mesh_stepA_competences.cxx
* This is step A of the t8code mesh handle tutorials.
* After finishing the core t8code features, we will now go into an important feature which is native to the mesh handle.
* These so called competences are a way to extend the functionality of the mesh handle and its elements.
*
* The competences are organized in different types, depending the functionality.
* Element data competences are used to store data in the mesh elements and work with it in different ways
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* Cache competences are used to store data in the mesh elements to work with it more efficiently, e.g. to avoid recomputing the same data multiple times.
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* The keypoint about competences though is, that you can create your own competence packs with all the competences you want to use and then use this pack to create a mesh handle with all the functionality you need.
* This can be further expanded by creating your own competences and adding them to your competence pack, making the mesh handle really flexible and individual for each use case.
*
* In this tutorial, we will go through the most important competences and caching, as well as create custom competences.
*/

#include <t8.h> /** General t8code header. Always include this. */

#include <mesh_handle/mesh.hxx> /** General Mesh header, always needed for mesh_handle code. */
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#include <mesh_handle/competence_pack.hxx> /** Competence Pack for basic mesh_handle features. */
#include <mesh_handle/constructor_wrappers.hxx> /** Wrapper for basic Cmesh to mesh_handle conversions. */
#include <mesh_handle/mesh_io.hxx> /** Used to export mesh to vtk files. */
#include <mesh_handle/concepts.hxx> /** Include this to use c++ concepts related to the mesh handle. This can be used to constraint the template parameters to only allow mesh handle classes. */
#include <t8_types/t8_vec.hxx> /** t8code vector dataclass. */

using namespace t8_mesh_handle; /** Using the namespace to avoid the t8_mesh_handle:: prefix everywhere and shorten the code. */

/**
* Creating a simple custom competence that computes the squared volume of an element.
*
* All custom competences follow the same CRTP inheritance pattern:
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* They are templated on the underlying element type and inherit from
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* t8_crtp_operator<TUnderlying, Competence>. This gives the competence access to the functionality
* of the underlying element with using this->underlying(), allowing it to extend the element with additional methods.
* The use of t8_crtp_operator also avoids diamond-shaped inheritance when multiple competences are combined into one pack.
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*
* \tparam TUnderlying The underlying element type that we want to extend with this competence.
*/
template <typename TUnderlying>
struct volume_squared_custom_competence: public t8_crtp_operator<TUnderlying, volume_squared_custom_competence>
{
public:
/**
* Returns the squared volume of the underlying element.
*/
double
get_squared_volume () const
{
double volume = this->underlying ().get_volume ();
return volume * volume;
}
};

/**
* Example element data type that stores the volume of an element.
*/
struct element_data_volume
{
double volume; /**< Volume of the element. */
};

/**
* Demonstrates the use of the standard element data competences by computing the total volume of a mesh.
*
* \param [in] mesh The mesh to compute the total volume of.
* \param [in] comm The MPI communicator to use for the reduction of the total volume.
*/
template <typename MeshType>
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void
demonstrate_element_data (MeshType& mesh, sc_MPI_Comm comm)
{
/** The most used geometric standard competences. */
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for (auto& elem : mesh) {
element_data_volume data { elem.get_volume () }; /**< Get the volume of the element. */
elem.set_element_data (data); /**< Save the volume in the data of the element. */
}

double local_volume = 0.0;

/** Read the element data of each element in the mesh. */
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for (const auto& elem : mesh) {
local_volume += elem.get_element_data ().volume; /**< Sum up all volumes.*/
}

double global_volume = 0.0;

sc_MPI_Reduce (&local_volume, &global_volume, 1, sc_MPI_DOUBLE, sc_MPI_SUM, 0,
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comm); /**< Reduce the local volumes to the root process. */

t8_global_productionf (" [t8 Step A Mesh handle] Total volume of the mesh: %f\n", global_volume);
}

/**
* Demonstrates the use of the cache competences by comparing the freshly computed values to the one saved in the cache.
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*
* \param [in] elem The element to demonstrate the cache competences on.
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*/
template <typename ElementType>
void
demonstrate_cache_competences (const ElementType& elem)
{

t8_global_productionf ("Vertex cache initially filled: %d\n", elem.vertex_cache_filled ());
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auto vertices1 = elem.get_vertex_coordinates (); /**< Compute the Vertex Coordinates for the first time. */
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t8_global_productionf ("Vertex coordinates (first call):\n");
for (const auto& v : vertices1) {
t8_global_productionf ("(%f, %f, %f)\n", v[0], v[1], v[2]);
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}

t8_global_productionf ("Vertex cache filled after first call: %d\n", elem.vertex_cache_filled ());

auto vertices2 = elem.get_vertex_coordinates (); /**< Compute the Vertex Coordinates for the second time. */
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if (vertices1 == vertices2) {
t8_global_productionf ("Vertex coordinates are the same for both calls.\n");
}
}

/**
* Demonstrates the use of the custom competence 'volume_squared' that was defined at the top so that we can compute the squared volume of each element in the mesh.
* Only the first and last local elements are printed to avoid excessive output when running with multiple MPI processes.
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*
* \param [in] mesh The mesh to demonstrate the custom competence on.
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*/
template <typename MeshType>
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void
demonstrate_custom_competence (const MeshType& mesh)
{
auto first_elem = mesh.cbegin (); /**< Get the first element of this MPI process. */
auto last_elem = mesh.cend () - 1; /**< Get the last element of this MPI process. */

t8_global_productionf (
"First element: Volume: %f Squared volume: %f\n",
first_elem->get_volume (), /**< Compute default Volume of the element*/
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first_elem->get_squared_volume ()); /**< Computing the squared Volume using the custom competence. */
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t8_global_productionf (
"Last element: Volume: %f Squared volume: %f\n",
last_elem->get_volume (), /**< Compute default Volume of the element*/
last_elem->get_squared_volume ()); /**< Computing the squared Volume using the custom competence. */
}

int
main (int argc, char** argv)
{
/* Initialize MPI. This has to happen before we initialize sc or t8code. */
int mpiret = sc_MPI_Init (&argc, &argv);
/* Error check the MPI return value. */
SC_CHECK_MPI (mpiret);
/* Initialize the sc library, has to happen before we initialize t8code. */
sc_init (sc_MPI_COMM_WORLD, 1, 1, NULL, SC_LP_ESSENTIAL);
/* Initialize t8code with log level SC_LP_PRODUCTION. See sc.h for more info on the log levels. */
t8_init (SC_LP_PRODUCTION);
/* We will use MPI_COMM_WORLD as a communicator. */
sc_MPI_Comm comm = sc_MPI_COMM_WORLD;

/* Print a starting message on the root process. */
t8_global_productionf (" [t8 Step A Mesh handle] \n");
t8_global_productionf (
" [t8 Step A Mesh handle] Hello, this is the competence tutorial of t8code using the mesh handle.\n");
t8_global_productionf (
" [t8 Step A Mesh handle] In this tutorial we will go through the most important competences and caching,"
"as well as create custom competences.\n");
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t8_global_productionf (" [t8 Step A Mesh handle] \n");
{ /* Start of mesh scope. */
/* Initializing all the competence packs with the functions/competences we want to use. */
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using data_competences
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= data_element_competences; /**< Element data Competence to store element data on an element. */

/** Combine the data competence pack with the predefined 'all_cache_element_competences' (see competence_pack.hxx) pack into one with union_competence_packs_type. */
using element_competences = union_competence_packs_type<all_cache_element_competences, data_competences>;

using mesh_competences
= data_mesh_competences<element_data_volume>; /**< Element data Competence to store element data on an element. */
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/* Defining our mesh type with the competence packs defined above. */
using mesh_type = mesh<element_competences, mesh_competences>;

const int level = 2;
t8_global_productionf (" [t8 Step A Mesh handle] \n");
t8_global_productionf (" [t8 Step A Mesh handle] Creating a default mesh with refinement level %d.\n", level);
t8_global_productionf (" [t8 Step A Mesh handle] \n");
/* Creating a simple mesh of Hexahedrons and an initial refinement level of 2. Our competences get transferred onto the mesh by the mesh type we defined above. */
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auto default_mesh = handle_hypercube_hybrid_uniform_default<mesh_type> (level, comm);

t8_global_productionf (" [t8 Step A Mesh handle] \n");
t8_global_productionf (
" [t8 Step A Mesh handle] Demonstrating standard element data competences by computing the total volume.\n");
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t8_global_productionf (" [t8 Step A Mesh handle] \n");

demonstrate_element_data (*default_mesh, comm); /**< Calling the element data competence function defined above. */
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t8_global_productionf (" [t8 Step A Mesh handle] \n");
t8_global_productionf (
" [t8 Step A Mesh handle] Demonstrating the cache competences by comparing the freshly computed values to "
"the one saved in the cache.\n");
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t8_global_productionf (" [t8 Step A Mesh handle] \n");

demonstrate_cache_competences (
(*default_mesh)[0]); /** Only demonstrating the cache competences for the first element of the mesh*/

/**
* We will now create a second mesh with our custom competence pack that includes the volume competence and our custom defined competence 'volume_squared'.
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*/
/* Defining a competence pack with the volume cache competence and our custom defined competence. */
using custom_element_competences = element_competence_pack<cache_volume, volume_squared_custom_competence>;
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/* Defining a custom mesh_type with our competence pack. */
using custom_mesh = mesh<custom_element_competences>;
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t8_global_productionf (" [t8 Step A Mesh handle] \n");
t8_global_productionf (" [t8 Step A Mesh handle] Creating a custom mesh for the custom competence with initial "
"refinement level of %d.\n",
level);
t8_global_productionf (" [t8 Step A Mesh handle] \n");
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/* Creating a custom mesh with the mesh_type including our custom competence pack and the initial refinement level 2. */
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auto custom = handle_hypercube_hybrid_uniform_default<custom_mesh> (level, comm);
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t8_global_productionf (" [t8 Step A Mesh handle] \n");
t8_global_productionf (" [t8 Step A Mesh handle] Demonstrating the custom competence 'Squared Value'.\n");
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t8_global_productionf (" [t8 Step A Mesh handle] \n");

demonstrate_custom_competence (*custom);
} /* End of mesh scope. */
/* Finalizing. */
sc_finalize ();

mpiret = sc_MPI_Finalize ();
SC_CHECK_MPI (mpiret);

return 0;
}
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