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========= |
\\ / F ield | OpenFOAM: The Open Source CFD Toolbox
\\ / O peration | Website: https://openfoam.org
\\ / A nd | Copyright (C) 2011-2026 OpenFOAM Foundation
\\/ M anipulation |
-------------------------------------------------------------------------------
License
This file is part of OpenFOAM.
OpenFOAM 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 3 of the License, or
(at your option) any later version.
OpenFOAM 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 OpenFOAM. If not, see <http://www.gnu.org/licenses/>.
Description
Post-processing mesh subset tool. Given the original mesh and the
list of selected cells, it creates the mesh consisting only of the
desired cells, with the mapping list for points, faces, and cells.
\*---------------------------------------------------------------------------*/
#include "fvMeshSubset.H"
#include "boolList.H"
#include "Pstream.H"
#include "internalPolyPatch.H"
#include "demandDrivenData.H"
#include "cyclicPolyPatch.H"
#include "processorPolyPatch.H"
#include "removeCells.H"
#include "polyTopoChange.H"
#include "polyTopoChangeMap.H"
// * * * * * * * * * * * * * * Static Data Members * * * * * * * * * * * * * //
namespace Foam
{
defineTypeNameAndDebug(fvMeshSubset, 0);
}
// * * * * * * * * * * * * * Private Member Functions * * * * * * * * * * * //
bool Foam::fvMeshSubset::checkCellSubset() const
{
if (fvMeshSubsetPtr_.empty())
{
FatalErrorInFunction
<< "void setCellSubset(const labelHashSet& cellsToSubset)" << endl
<< "before attempting to access subset data"
<< abort(FatalError);
return false;
}
else
{
return true;
}
}
void Foam::fvMeshSubset::markPoints
(
const labelList& curPoints,
Map<label>& pointMap
)
{
forAll(curPoints, pointi)
{
// Note: insert will only insert if not yet there.
pointMap.insert(curPoints[pointi], 0);
}
}
void Foam::fvMeshSubset::markPoints
(
const labelList& curPoints,
labelList& pointMap
)
{
forAll(curPoints, pointi)
{
pointMap[curPoints[pointi]] = 0;
}
}
void Foam::fvMeshSubset::doCoupledPatches
(
const bool syncPar,
Map<label>& facesToSubset,
labelList& nCellsUsingFace
) const
{
// Synchronise facesToSubset on both sides of coupled patches.
// Marks faces that become 'uncoupled' with 3.
const polyBoundaryMesh& oldPatches = baseMesh().poly().boundary();
label nUncoupled = 0;
if (syncPar && Pstream::parRun())
{
PstreamBuffers pBufs(Pstream::commsTypes::nonBlocking);
// Send face usage across processor patches
forAll(oldPatches, oldPatchi)
{
const polyPatch& pp = oldPatches[oldPatchi];
if (isA<processorPolyPatch>(pp))
{
const processorPolyPatch& procPatch =
refCast<const processorPolyPatch>(pp);
UOPstream toNeighbour(procPatch.neighbProcNo(), pBufs);
if (!facesToSubset.empty())
{
DynamicList<label> patchFacesToSubset;
forAll(pp, i)
{
if
(
facesToSubset.found(pp.start()+i)
&& facesToSubset[pp.start()+i] == 1
)
{
patchFacesToSubset.append(i);
}
}
toNeighbour << patchFacesToSubset;
}
else if (!nCellsUsingFace.empty())
{
toNeighbour <<
SubList<label>(nCellsUsingFace, pp.size(), pp.start());
}
else
{
toNeighbour << labelList();
}
}
}
pBufs.finishedSends();
// Receive face usage count and check for faces that become uncoupled.
forAll(oldPatches, oldPatchi)
{
const polyPatch& pp = oldPatches[oldPatchi];
if (isA<processorPolyPatch>(pp))
{
const processorPolyPatch& procPatch =
refCast<const processorPolyPatch>(pp);
UIPstream fromNeighbour(procPatch.neighbProcNo(), pBufs);
const labelList nbrList(fromNeighbour);
// Combine with this side.
if (!facesToSubset.empty())
{
const labelHashSet nbrPatchFacesToSubset(nbrList);
forAll(pp, i)
{
if
(
facesToSubset.found(pp.start()+i)
&& facesToSubset[pp.start()+i] == 1
&& !nbrPatchFacesToSubset.found(i)
)
{
// Face's neighbour is no longer there. Mark face
// off as coupled
facesToSubset[pp.start()+i] = 3;
nUncoupled++;
}
}
}
else if (!nCellsUsingFace.empty())
{
const labelList& nbrCellsUsingFace(nbrList);
// Combine with this side.
forAll(pp, i)
{
if
(
nCellsUsingFace[pp.start()+i] == 1
&& nbrCellsUsingFace[i] == 0
)
{
// Face's neighbour is no longer there. Mark face
// off as coupled
nCellsUsingFace[pp.start()+i] = 3;
nUncoupled++;
}
}
}
}
}
}
// Do same for cyclics.
forAll(oldPatches, oldPatchi)
{
const polyPatch& pp = oldPatches[oldPatchi];
if (isA<cyclicPolyPatch>(pp))
{
const cyclicPolyPatch& cycPatch =
refCast<const cyclicPolyPatch>(pp);
if (!facesToSubset.empty())
{
forAll(cycPatch, i)
{
const label thisFacei = cycPatch.start() + i;
const label otherFacei =
cycPatch.transformGlobalFace(thisFacei);
if
(
facesToSubset.found(thisFacei)
&& facesToSubset[thisFacei] == 1
&& !facesToSubset.found(otherFacei)
)
{
facesToSubset[thisFacei] = 3;
nUncoupled++;
}
}
}
else if (!nCellsUsingFace.empty())
{
forAll(cycPatch, i)
{
const label thisFacei = cycPatch.start() + i;
const label otherFacei =
cycPatch.transformGlobalFace(thisFacei);
if
(
nCellsUsingFace[thisFacei] == 1
&& nCellsUsingFace[otherFacei] == 0
)
{
nCellsUsingFace[thisFacei] = 3;
nUncoupled++;
}
}
}
}
}
if (syncPar)
{
reduce(nUncoupled, sumOp());
}
if (debug && nUncoupled > 0)
{
Info<< "Uncoupled " << nUncoupled << " faces on coupled patches. "
<< "(processorPolyPatch, cyclicPolyPatch)" << endl;
}
}
Foam::labelList Foam::fvMeshSubset::subset
(
const label nElems,
const labelList& selectedElements,
const labelList& subsetMap
)
{
// Mark selected elements.
boolList selected(nElems, false);
forAll(selectedElements, i)
{
selected[selectedElements[i]] = true;
}
// Count subset of selected elements
label n = 0;
forAll(subsetMap, i)
{
if (selected[subsetMap[i]])
{
n++;
}
}
// Collect selected elements
labelList subsettedElements(n);
n = 0;
forAll(subsetMap, i)
{
if (selected[subsetMap[i]])
{
subsettedElements[n++] = i;
}
}
return subsettedElements;
}
void Foam::fvMeshSubset::subsetZones()
{
// Keep all zones, even if zero size.
const pointZoneList& pointZones = baseMesh().pointZones();
// PointZones
List<pointZone*> pZonePtrs(pointZones.size());
forAll(pointZones, i)
{
const pointZone& pz = pointZones[i];
pZonePtrs[i] = new pointZone
(
pz.name(),
subset(baseMesh().nPoints(), pz, pointMap()),
fvMeshSubsetPtr_().pointZones()
);
}
// FaceZones
const faceZoneList& faceZones = baseMesh().faceZones();
// Do we need to remove zones where the side we're interested in
// no longer exists? Guess not.
List<faceZone*> fZonePtrs(faceZones.size());
forAll(faceZones, i)
{
const faceZone& fz = faceZones[i];
// Expand faceZone to full mesh
// +1 : part of faceZone, flipped
// -1 : ,, , unflipped
// 0 : not part of faceZone
labelList zone(baseMesh().nFaces(), 0);
if (fz.oriented())
{
const boolList& flipMap = fz.flipMap();
forAll(fz, j)
{
if (flipMap[j])
{
zone[fz[j]] = 1;
}
else
{
zone[fz[j]] = -1;
}
}
}
else
{
forAll(fz, j)
{
zone[fz[j]] = -1;
}
}
// Select faces
label nSub = 0;
forAll(faceMap(), j)
{
if (zone[faceMap()[j]] != 0)
{
nSub++;
}
}
labelList subAddressing(nSub);
boolList subFlipStatus(nSub);
nSub = 0;
forAll(faceMap(), subFacei)
{
const label meshFacei = faceMap()[subFacei];
if (zone[meshFacei] != 0)
{
subAddressing[nSub] = subFacei;
const label subOwner = subMesh().faceOwner()[subFacei];
const label baseOwner = baseMesh().faceOwner()[meshFacei];
// If subowner is the same cell as the base keep the flip status
const bool sameOwner = (cellMap()[subOwner] == baseOwner);
const bool flip = (zone[meshFacei] == 1);
subFlipStatus[nSub] = (sameOwner == flip);
nSub++;
}
}
if (fz.oriented())
{
fZonePtrs[i] = new faceZone
(
fz.name(),
subAddressing,
subFlipStatus,
fvMeshSubsetPtr_().faceZones()
);
}
else
{
fZonePtrs[i] = new faceZone
(
fz.name(),
subAddressing,
fvMeshSubsetPtr_().faceZones()
);
}
}
// CellZones
const cellZoneList& cellZones = baseMesh().cellZones();
List<cellZone*> cZonePtrs(cellZones.size());
forAll(cellZones, i)
{
const cellZone& cz = cellZones[i];
cZonePtrs[i] = new cellZone
(
cz.name(),
subset(baseMesh().nCells(), cz, cellMap()),
fvMeshSubsetPtr_().cellZones()
);
}
// Add the zones
fvMeshSubsetPtr_().addZones(pZonePtrs, fZonePtrs, cZonePtrs);
}
Foam::labelList Foam::fvMeshSubset::getCellsToRemove
(
const labelList& region,
const label currentRegion
) const
{
// Count
label nKeep = 0;
forAll(region, cellI)
{
if (region[cellI] == currentRegion)
{
nKeep++;
}
}
// Collect cells to remove
label nRemove = baseMesh().nCells() - nKeep;
labelList cellsToRemove(nRemove);
nRemove = 0;
forAll(region, cellI)
{
if (region[cellI] != currentRegion)
{
cellsToRemove[nRemove++] = cellI;
}
}
return cellsToRemove;
}
// * * * * * * * * * * * * * * * * Constructors * * * * * * * * * * * * * * //
Foam::fvMeshSubset::fvMeshSubset(const fvMesh& baseMesh)
:
baseMesh_(baseMesh),
fvMeshSubsetPtr_(nullptr),
pointMap_(0),
faceMap_(0),
cellMap_(0),
patchMap_(0),
faceFlipMapPtr_()
{}
// * * * * * * * * * * * * * * * * Destructor * * * * * * * * * * * * * * * //
Foam::fvMeshSubset::~fvMeshSubset()
{}
// * * * * * * * * * * * * * * * Member Functions * * * * * * * * * * * * * //
void Foam::fvMeshSubset::setCellSubset
(
const labelHashSet& globalCellMap,
const label patchID,
const bool syncPar
)
{
// Initial check on patches before doing anything time consuming.
const polyBoundaryMesh& oldPatches = baseMesh().poly().boundary();
const cellList& oldCells = baseMesh().cells();
const faceList& oldFaces = baseMesh().faces();
const pointField& oldPoints = baseMesh().points();
const labelList& oldOwner = baseMesh().faceOwner();
const labelList& oldNeighbour = baseMesh().faceNeighbour();
label wantedPatchID = patchID;
if (wantedPatchID == -1)
{
// No explicit patch specified. Put in oldInternalFaces patch.
// Check if patch with this name already exists.
wantedPatchID = oldPatches.findIndex("oldInternalFaces");
}
else if (wantedPatchID < 0 || wantedPatchID >= oldPatches.size())
{
FatalErrorInFunction
<< "Non-existing patch index " << wantedPatchID << endl
<< "Should be between 0 and " << oldPatches.size()-1
<< abort(FatalError);
}
// Clear demand driven data
faceFlipMapPtr_.clear();
cellMap_ = globalCellMap.toc();
// Sort the cell map in the ascending order
sort(cellMap_);
// Approximate sizing parameters for face and point lists
const label avgNFacesPerCell = 6;
const label avgNPointsPerFace = 4;
const label nCellsInSet = cellMap_.size();
// Mark all used faces
Map<label> facesToSubset(avgNFacesPerCell*nCellsInSet);
forAll(cellMap_, celli)
{
// Mark all faces from the cell
const labelList& curFaces = oldCells[cellMap_[celli]];
forAll(curFaces, facei)
{
if (!facesToSubset.found(curFaces[facei]))
{
facesToSubset.insert(curFaces[facei], 1);
}
else
{
facesToSubset[curFaces[facei]]++;
}
}
}
// Handle coupled faces. Modifies patch faces to be uncoupled to 3.
labelList empty;
doCoupledPatches(syncPar, facesToSubset, empty);
// Mark all used points and make a global-to-local face map
Map<label> globalFaceMap(facesToSubset.size());
// Make a global-to-local point map
Map<label> globalPointMap(avgNPointsPerFace*facesToSubset.size());
// This is done in two goes, so that the boundary faces are last
// in the list. Because of this, I need to create the face map
// along the way rather than just grab the table of contents.
labelList facesToc = facesToSubset.toc();
sort(facesToc);
faceMap_.setSize(facesToc.size());
// 1. Get all faces that will be internal to the submesh.
forAll(facesToc, facei)
{
if (facesToSubset[facesToc[facei]] == 2)
{
// Mark face and increment number of points in set
faceMap_[globalFaceMap.size()] = facesToc[facei];
globalFaceMap.insert(facesToc[facei], globalFaceMap.size());
// Mark all points from the face
markPoints(oldFaces[facesToc[facei]], globalPointMap);
}
}
// These are all the internal faces in the mesh.
const label nInternalFaces = globalFaceMap.size();
// Where to insert old internal faces.
label oldPatchStart = labelMax;
if (wantedPatchID != -1)
{
oldPatchStart = oldPatches[wantedPatchID].start();
}
label facei = 0;
// 2. Boundary faces up to where we want to insert old internal faces
for (; facei< facesToc.size(); facei++)
{
if (facesToc[facei] >= oldPatchStart)
{
break;
}
if
(
!baseMesh().isInternalFace(facesToc[facei])
&& facesToSubset[facesToc[facei]] == 1
)
{
// Mark face and increment number of points in set
faceMap_[globalFaceMap.size()] = facesToc[facei];
globalFaceMap.insert(facesToc[facei], globalFaceMap.size());
// Mark all points from the face
markPoints(oldFaces[facesToc[facei]], globalPointMap);
}
}
// 3. old internal faces and uncoupled faces
forAll(facesToc, intFacei)
{
if
(
(
baseMesh().isInternalFace(facesToc[intFacei])
&& facesToSubset[facesToc[intFacei]] == 1
)
|| (
!baseMesh().isInternalFace(facesToc[intFacei])
&& facesToSubset[facesToc[intFacei]] == 3
)
)
{
// Mark face and increment number of points in set
faceMap_[globalFaceMap.size()] = facesToc[intFacei];
globalFaceMap.insert(facesToc[intFacei], globalFaceMap.size());
// Mark all points from the face
markPoints(oldFaces[facesToc[intFacei]], globalPointMap);
}
}
// 4. Remaining boundary faces
for (; facei< facesToc.size(); facei++)
{
if
(
!baseMesh().isInternalFace(facesToc[facei])
&& facesToSubset[facesToc[facei]] == 1
)
{
// Mark face and increment number of points in set
faceMap_[globalFaceMap.size()] = facesToc[facei];
globalFaceMap.insert(facesToc[facei], globalFaceMap.size());
// Mark all points from the face
markPoints(oldFaces[facesToc[facei]], globalPointMap);
}
}
// Grab the points map
pointMap_ = globalPointMap.toc();
sort(pointMap_);
forAll(pointMap_, pointi)
{
globalPointMap[pointMap_[pointi]] = pointi;
}
// Make a new mesh
pointField newPoints(globalPointMap.size());
label nNewPoints = 0;
forAll(pointMap_, pointi)
{
newPoints[nNewPoints] = oldPoints[pointMap_[pointi]];
nNewPoints++;
}
faceList newFaces(globalFaceMap.size());
label nNewFaces = 0;
// Make internal faces
for (label facei = 0; facei < nInternalFaces; facei++)
{
const face& oldF = oldFaces[faceMap_[facei]];
face newF(oldF.size());
forAll(newF, i)
{
newF[i] = globalPointMap[oldF[i]];
}
newFaces[nNewFaces] = newF;
nNewFaces++;
}
// Make boundary faces
label nbSize = oldPatches.size();
label oldInternalPatchID = -1;
if (wantedPatchID == -1)
{
// Create 'oldInternalFaces' patch at the end
// and put all exposed internal faces in there.
oldInternalPatchID = nbSize;
nbSize++;
}
else
{
oldInternalPatchID = wantedPatchID;
}
// Grad size and start of each patch on the fly. Because of the
// structure of the underlying mesh, the patches will appear in the
// ascending order
labelList boundaryPatchSizes(nbSize, 0);
// Assign boundary faces. Visited in order of faceMap_.
for (label facei = nInternalFaces; facei < faceMap_.size(); facei++)
{
const label oldFacei = faceMap_[facei];
face oldF = oldFaces[oldFacei];
// Turn the faces as necessary to point outwards
if (baseMesh().isInternalFace(oldFacei))
{
// Internal face. Possibly turned the wrong way round
if
(
!globalCellMap.found(oldOwner[oldFacei])
&& globalCellMap.found(oldNeighbour[oldFacei])
)
{
oldF = oldFaces[oldFacei].reverseFace();
}
// Update count for patch
boundaryPatchSizes[oldInternalPatchID]++;
}
else if (facesToSubset[oldFacei] == 3)
{
// Uncoupled face. Increment the old patch.
boundaryPatchSizes[oldInternalPatchID]++;
}
else
{
// Boundary face. Increment the appropriate patch
const label patchOfFace = oldPatches.whichPatch(oldFacei);
// Update count for patch
boundaryPatchSizes[patchOfFace]++;
}
face newF(oldF.size());
forAll(newF, i)
{
newF[i] = globalPointMap[oldF[i]];
}
newFaces[nNewFaces] = newF;
nNewFaces++;
}
// Create cells
cellList newCells(nCellsInSet);
label nNewCells = 0;
forAll(cellMap_, celli)
{
const labelList& oldC = oldCells[cellMap_[celli]];
labelList newC(oldC.size());
forAll(newC, i)
{
newC[i] = globalFaceMap[oldC[i]];
}
newCells[nNewCells] = cell(newC);
nNewCells++;
}
// Delete any old mesh
fvMeshSubsetPtr_.clear();
// Make a new mesh
fvMeshSubsetPtr_.reset
(
new fvMesh
(
IOobject
(
baseMesh().name() + "SubSet",
baseMesh().time().name(),
baseMesh().time(),
IOobject::NO_READ,
IOobject::NO_WRITE
),
move(newPoints),
move(newFaces),
move(newCells)
)
);
// Add old patches
List<polyPatch*> newBoundary(nbSize);
patchMap_.setSize(nbSize);
label nNewPatches = 0;
label patchStart = nInternalFaces;
forAll(oldPatches, patchi)
{
if (boundaryPatchSizes[patchi] > 0)
{
// Patch still exists. Add it
newBoundary[nNewPatches] = oldPatches[patchi].clone
(
fvMeshSubsetPtr_().poly().boundary(),
nNewPatches,
boundaryPatchSizes[patchi],
patchStart
).ptr();
patchStart += boundaryPatchSizes[patchi];
patchMap_[nNewPatches] = patchi;
nNewPatches++;
}
}
if (wantedPatchID == -1)
{
// Newly created patch so is at end. Check if any faces in it.
if (boundaryPatchSizes[oldInternalPatchID] > 0)
{
newBoundary[nNewPatches] = new internalPolyPatch
(
"oldInternalFaces",
boundaryPatchSizes[oldInternalPatchID],
patchStart,
nNewPatches,
fvMeshSubsetPtr_().poly().boundary()
);
// The index for the first patch is -1 as it originates from
// the internal faces
patchMap_[nNewPatches] = -1;
nNewPatches++;
}
}
// else
// {
// patchMap_[wantedPatchID] = -1;
// }
// Reset the patch lists
newBoundary.setSize(nNewPatches);
patchMap_.setSize(nNewPatches);
// Add the fvPatches
fvMeshSubsetPtr_().addFvPatches(newBoundary);
// Subset and add any zones
subsetZones();
}
void Foam::fvMeshSubset::setLargeCellSubset
(
const labelList& region,
const label currentRegion,
const label patchID,
const bool syncPar
)
{
const cellList& oldCells = baseMesh().cells();
const faceList& oldFaces = baseMesh().faces();
const pointField& oldPoints = baseMesh().points();
const labelList& oldOwner = baseMesh().faceOwner();
const labelList& oldNeighbour = baseMesh().faceNeighbour();
const polyBoundaryMesh& oldPatches = baseMesh().poly().boundary();
const label oldNInternalFaces = baseMesh().nInternalFaces();
// Initial checks
if (region.size() != oldCells.size())
{
FatalErrorInFunction
<< "Size of region " << region.size()
<< " is not equal to number of cells in mesh " << oldCells.size()
<< abort(FatalError);
}
label wantedPatchID = patchID;
if (wantedPatchID == -1)
{
// No explicit patch specified. Put in oldInternalFaces patch.
// Check if patch with this name already exists.
wantedPatchID = oldPatches.findIndex("oldInternalFaces");
}
else if (wantedPatchID < 0 || wantedPatchID >= oldPatches.size())
{
FatalErrorInFunction
<< "Non-existing patch index " << wantedPatchID << endl
<< "Should be between 0 and " << oldPatches.size()-1
<< abort(FatalError);
}
// Clear demand driven data
faceFlipMapPtr_.clear();
// Get the cells for the current region.
cellMap_.setSize(oldCells.size());
label nCellsInSet = 0;
forAll(region, oldCelli)
{
if (region[oldCelli] == currentRegion)
{
cellMap_[nCellsInSet++] = oldCelli;
}
}
cellMap_.setSize(nCellsInSet);
// Mark all used faces. Count number of cells using them
// 0: face not used anymore
// 1: face used by one cell, face becomes/stays boundary face
// 2: face still used and remains internal face
// 3: face coupled and used by one cell only (so should become normal,
// non-coupled patch face)
//
// Note that this is not really necessary - but means we can size things
// correctly. Also makes handling coupled faces much easier.
labelList nCellsUsingFace(oldFaces.size(), 0);
label nFacesInSet = 0;
forAll(oldFaces, oldFacei)
{
bool faceUsed = false;
if (region[oldOwner[oldFacei]] == currentRegion)
{
nCellsUsingFace[oldFacei]++;
faceUsed = true;
}
if
(
baseMesh().isInternalFace(oldFacei)
&& (region[oldNeighbour[oldFacei]] == currentRegion)
)
{
nCellsUsingFace[oldFacei]++;
faceUsed = true;
}
if (faceUsed)
{
nFacesInSet++;
}
}
faceMap_.setSize(nFacesInSet);
// Handle coupled faces. Modifies patch faces to be uncoupled to 3.
Map<label> empty;
doCoupledPatches(syncPar, empty, nCellsUsingFace);
// See which patch to use for exposed internal faces.
label oldInternalPatchID = 0;
// Insert faces before which patch
label nextPatchID = oldPatches.size();
// old to new patches
labelList globalPatchMap(oldPatches.size());
// New patch size
label nbSize = oldPatches.size();
if (wantedPatchID == -1)
{
// Create 'oldInternalFaces' patch at the end (or before
// processorPatches)
// and put all exposed internal faces in there.
forAll(oldPatches, patchi)
{
if (isA<processorPolyPatch>(oldPatches[patchi]))
{
nextPatchID = patchi;
break;
}
oldInternalPatchID++;
}
nbSize++;
// adapt old to new patches for inserted patch
for (label oldPatchi = 0; oldPatchi < nextPatchID; oldPatchi++)
{
globalPatchMap[oldPatchi] = oldPatchi;
}
for
(
label oldPatchi = nextPatchID;
oldPatchi < oldPatches.size();
oldPatchi++
)
{
globalPatchMap[oldPatchi] = oldPatchi + 1;
}
}
else
{
oldInternalPatchID = wantedPatchID;
nextPatchID = wantedPatchID + 1;
// old to new patches
globalPatchMap = identityMap(oldPatches.size());
}
labelList boundaryPatchSizes(nbSize, 0);
// Make a global-to-local point map
labelList globalPointMap(oldPoints.size(), -1);
labelList globalFaceMap(oldFaces.size(), -1);
label facei = 0;
// 1. Pick up all preserved internal faces.
for (label oldFacei = 0; oldFacei < oldNInternalFaces; oldFacei++)
{
if (nCellsUsingFace[oldFacei] == 2)
{
globalFaceMap[oldFacei] = facei;
faceMap_[facei++] = oldFacei;
// Mark all points from the face
markPoints(oldFaces[oldFacei], globalPointMap);
}
}
// These are all the internal faces in the mesh.
label nInternalFaces = facei;
// 2. Boundary faces up to where we want to insert old internal faces
for
(
label oldPatchi = 0;
oldPatchi < oldPatches.size()
&& oldPatchi < nextPatchID;
oldPatchi++
)
{
const polyPatch& oldPatch = oldPatches[oldPatchi];
label oldFacei = oldPatch.start();
forAll(oldPatch, i)
{
if (nCellsUsingFace[oldFacei] == 1)
{
// Boundary face is kept.
// Mark face and increment number of points in set
globalFaceMap[oldFacei] = facei;
faceMap_[facei++] = oldFacei;
// Mark all points from the face
markPoints(oldFaces[oldFacei], globalPointMap);
// Increment number of patch faces
boundaryPatchSizes[globalPatchMap[oldPatchi]]++;
}
oldFacei++;
}
}
// 3a. old internal faces that have become exposed.
for (label oldFacei = 0; oldFacei < oldNInternalFaces; oldFacei++)
{
if (nCellsUsingFace[oldFacei] == 1)
{
globalFaceMap[oldFacei] = facei;
faceMap_[facei++] = oldFacei;
// Mark all points from the face
markPoints(oldFaces[oldFacei], globalPointMap);
// Increment number of patch faces
boundaryPatchSizes[oldInternalPatchID]++;
}
}
// 3b. coupled patch faces that have become uncoupled.
for
(
label oldFacei = oldNInternalFaces;
oldFacei < oldFaces.size();
oldFacei++
)
{
if (nCellsUsingFace[oldFacei] == 3)
{
globalFaceMap[oldFacei] = facei;
faceMap_[facei++] = oldFacei;
// Mark all points from the face
markPoints(oldFaces[oldFacei], globalPointMap);
// Increment number of patch faces
boundaryPatchSizes[oldInternalPatchID]++;
}
}
// 4. Remaining boundary faces
for
(
label oldPatchi = nextPatchID;
oldPatchi < oldPatches.size();
oldPatchi++
)
{
const polyPatch& oldPatch = oldPatches[oldPatchi];
label oldFacei = oldPatch.start();
forAll(oldPatch, i)
{
if (nCellsUsingFace[oldFacei] == 1)
{
// Boundary face is kept.
// Mark face and increment number of points in set
globalFaceMap[oldFacei] = facei;
faceMap_[facei++] = oldFacei;
// Mark all points from the face
markPoints(oldFaces[oldFacei], globalPointMap);
// Increment number of patch faces
boundaryPatchSizes[globalPatchMap[oldPatchi]]++;
}
oldFacei++;
}
}
if (facei != nFacesInSet)
{
FatalErrorInFunction
<< "Problem" << abort(FatalError);
}
// Grab the points map
label nPointsInSet = 0;
forAll(globalPointMap, pointi)
{
if (globalPointMap[pointi] != -1)
{
nPointsInSet++;
}
}
pointMap_.setSize(nPointsInSet);
nPointsInSet = 0;
forAll(globalPointMap, pointi)
{
if (globalPointMap[pointi] != -1)
{
pointMap_[nPointsInSet] = pointi;
globalPointMap[pointi] = nPointsInSet;
nPointsInSet++;
}
}
// Make a new mesh
pointField newPoints(pointMap_.size());
label nNewPoints = 0;
forAll(pointMap_, pointi)
{
newPoints[nNewPoints] = oldPoints[pointMap_[pointi]];
nNewPoints++;
}
faceList newFaces(faceMap_.size());
label nNewFaces = 0;
// Make internal faces
for (label facei = 0; facei < nInternalFaces; facei++)
{
const face& oldF = oldFaces[faceMap_[facei]];
face newF(oldF.size());
forAll(newF, i)
{
newF[i] = globalPointMap[oldF[i]];
}
newFaces[nNewFaces] = newF;
nNewFaces++;
}
// Make boundary faces. (different from internal since might need to be
// flipped)
for (label facei = nInternalFaces; facei < faceMap_.size(); facei++)
{
const label oldFacei = faceMap_[facei];
face oldF = oldFaces[oldFacei];
// Turn the faces as necessary to point outwards
if (baseMesh().isInternalFace(oldFacei))
{
// Was internal face. Possibly turned the wrong way round
if
(
region[oldOwner[oldFacei]] != currentRegion
&& region[oldNeighbour[oldFacei]] == currentRegion
)
{
oldF = oldFaces[oldFacei].reverseFace();
}
}
// Relabel vertices of the (possibly turned) face.
face newF(oldF.size());
forAll(newF, i)
{
newF[i] = globalPointMap[oldF[i]];
}
newFaces[nNewFaces] = newF;
nNewFaces++;
}
// Create cells
cellList newCells(nCellsInSet);
label nNewCells = 0;
forAll(cellMap_, celli)
{
const labelList& oldC = oldCells[cellMap_[celli]];
labelList newC(oldC.size());
forAll(newC, i)
{
newC[i] = globalFaceMap[oldC[i]];
}
newCells[nNewCells] = cell(newC);
nNewCells++;
}
// Delete any old one
fvMeshSubsetPtr_.clear();
// Make a new mesh
// Note that mesh gets registered with same name as original mesh. This is
// not proper but cannot be avoided since otherwise surfaceInterpolation
// cannot find its fvSchemes (it will try to read e.g.
// system/region0SubSet/fvSchemes)
// Make a new mesh
fvMeshSubsetPtr_.reset
(
new fvMesh
(
IOobject
(
baseMesh().name(),
baseMesh().time().name(),
baseMesh().time(),
IOobject::NO_READ,
IOobject::NO_WRITE
),
move(newPoints),
move(newFaces),
move(newCells),
syncPar // parallel synchronisation
)
);
// Add old patches
List<polyPatch*> newBoundary(nbSize);
patchMap_.setSize(nbSize);
label nNewPatches = 0;
label patchStart = nInternalFaces;
// For parallel: only remove patch if none of the processors has it.
// This only gets done for patches before the one being inserted
// (so patches < nextPatchID)
// Get sum of patch sizes. Zero if patch can be deleted.
labelList globalPatchSizes(boundaryPatchSizes);
globalPatchSizes.setSize(nextPatchID);
if (syncPar && Pstream::parRun())
{
// Get patch names (up to nextPatchID)
List<wordList> patchNames(Pstream::nProcs());
patchNames[Pstream::myProcNo()] = oldPatches.names();
patchNames[Pstream::myProcNo()].setSize(nextPatchID);
Pstream::gatherList(patchNames);
Pstream::scatterList(patchNames);
// Get patch sizes (up to nextPatchID).
// Note that up to nextPatchID the globalPatchMap is an identity so
// no need to index through that.
Pstream::listCombineGather(globalPatchSizes, addEqOp());
Pstream::listCombineScatter(globalPatchSizes);
// Now all processors have all the patchnames.
// Decide: if all processors have the same patch names and size is zero
// everywhere remove the patch.
bool samePatches = true;
for (label proci = 1; proci < patchNames.size(); proci++)
{
if (patchNames[proci] != patchNames[0])
{
samePatches = false;
break;
}
}
if (!samePatches)
{
// Patchnames not sync on all processors so disable removal of
// zero sized patches.
globalPatchSizes = labelMax;
}
}
// Old patches
for
(
label oldPatchi = 0;
oldPatchi < oldPatches.size()
&& oldPatchi < nextPatchID;
oldPatchi++
)
{
const label newSize = boundaryPatchSizes[globalPatchMap[oldPatchi]];
// Clone (even if 0 size)
newBoundary[nNewPatches] = oldPatches[oldPatchi].clone
(
fvMeshSubsetPtr_().poly().boundary(),
nNewPatches,
newSize,
patchStart
).ptr();
patchStart += newSize;
patchMap_[nNewPatches] = oldPatchi; // compact patchMap
nNewPatches++;
}
// Inserted patch
if (wantedPatchID == -1)
{
label oldInternalSize = boundaryPatchSizes[oldInternalPatchID];
if (syncPar)
{
reduce(oldInternalSize, sumOp());
}
// Newly created patch so is at end. Check if any faces in it.
if (oldInternalSize > 0)
{
newBoundary[nNewPatches] = new internalPolyPatch
(
"oldInternalFaces",
boundaryPatchSizes[oldInternalPatchID],
patchStart,
nNewPatches,
fvMeshSubsetPtr_().poly().boundary()
);
// The index for the first patch is -1 as it originates from
// the internal faces
patchStart += boundaryPatchSizes[oldInternalPatchID];
patchMap_[nNewPatches] = -1;
nNewPatches++;
}
}
// else
// {
// patchMap_[wantedPatchID] = -1;
// }
// Old patches
for
(
label oldPatchi = nextPatchID;
oldPatchi < oldPatches.size();
oldPatchi++
)
{
const label newSize = boundaryPatchSizes[globalPatchMap[oldPatchi]];
// Patch still exists. Add it
newBoundary[nNewPatches] = oldPatches[oldPatchi].clone
(
fvMeshSubsetPtr_().poly().boundary(),
nNewPatches,
newSize,
patchStart
).ptr();
patchStart += newSize;
patchMap_[nNewPatches] = oldPatchi; // compact patchMap
nNewPatches++;
}
// Reset the patch lists
newBoundary.setSize(nNewPatches);
patchMap_.setSize(nNewPatches);
// Add the fvPatches
fvMeshSubsetPtr_().addFvPatches(newBoundary, syncPar);
// Subset and add any zones
subsetZones();
}
void Foam::fvMeshSubset::setLargeCellSubset
(
const labelHashSet& globalCellMap,
const label patchID,
const bool syncPar
)
{
labelList region(baseMesh().nCells(), 0);
forAllConstIter(labelHashSet, globalCellMap, iter)
{
region[iter.key()] = 1;
}
setLargeCellSubset(region, 1, patchID, syncPar);
}
Foam::labelList Foam::fvMeshSubset::getExposedFaces
(
const labelList& region,
const label currentRegion,
const bool syncCouples
) const
{
// Collect cells to remove
const labelList cellsToRemove(getCellsToRemove(region, currentRegion));
return removeCells(baseMesh(), syncCouples).getExposedFaces(cellsToRemove);
}
void Foam::fvMeshSubset::setLargeCellSubset
(
const labelList& region,
const label currentRegion,
const labelList& exposedFaces,
const labelList& patchIDs,
const bool syncCouples
)
{
// Collect cells to remove
labelList cellsToRemove(getCellsToRemove(region, currentRegion));
// Mesh changing engine.
polyTopoChange meshMod(baseMesh());
removeCells cellRemover(baseMesh(), syncCouples);
cellRemover.setRefinement
(
cellsToRemove,
exposedFaces,
patchIDs,
meshMod
);
// Create mesh, return map from old to new mesh.
autoPtr<polyTopoChangeMap> map = meshMod.makeMesh
(
fvMeshSubsetPtr_,
IOobject
(
baseMesh().name(),
baseMesh().time().name(),
baseMesh().time(),
IOobject::NO_READ,
IOobject::NO_WRITE
),
baseMesh(),
syncCouples
);
pointMap_ = map().pointMap();
faceMap_ = map().faceMap();
cellMap_ = map().cellMap();
patchMap_ = identityMap(baseMesh().poly().boundary().size());
}
bool Foam::fvMeshSubset::hasSubMesh() const
{
return fvMeshSubsetPtr_.valid();
}
const Foam::fvMesh& Foam::fvMeshSubset::subMesh() const
{
checkCellSubset();
return fvMeshSubsetPtr_();
}
Foam::fvMesh& Foam::fvMeshSubset::subMesh()
{
checkCellSubset();
return fvMeshSubsetPtr_();
}
const Foam::labelList& Foam::fvMeshSubset::pointMap() const
{
checkCellSubset();
return pointMap_;
}
const Foam::labelList& Foam::fvMeshSubset::faceMap() const
{
checkCellSubset();
return faceMap_;
}
const Foam::labelList& Foam::fvMeshSubset::faceFlipMap() const
{
if (!faceFlipMapPtr_.valid())
{
const labelList& subToBaseFace = faceMap();
const labelList& subToBaseCell = cellMap();
faceFlipMapPtr_.reset(new labelList(subToBaseFace.size()));
labelList& faceFlipMap = faceFlipMapPtr_();
// Only exposed internal faces might be flipped (since we don't do
// any cell renumbering, just compacting)
label subInt = subMesh().nInternalFaces();
const labelList& subOwn = subMesh().faceOwner();
const labelList& own = baseMesh_.faceOwner();
for (label subFacei = 0; subFacei < subInt; subFacei++)
{
faceFlipMap[subFacei] = subToBaseFace[subFacei] + 1;
}
for (label subFacei = subInt; subFacei < subOwn.size(); subFacei++)
{
const label facei = subToBaseFace[subFacei];
if (subToBaseCell[subOwn[subFacei]] == own[facei])
{
faceFlipMap[subFacei] = facei + 1;
}
else
{
faceFlipMap[subFacei] = -facei - 1;
}
}
}
return faceFlipMapPtr_();
}
const Foam::labelList& Foam::fvMeshSubset::cellMap() const
{
checkCellSubset();
return cellMap_;
}
const Foam::labelList& Foam::fvMeshSubset::patchMap() const
{
checkCellSubset();
return patchMap_;
}
// ************************************************************************* //
|