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rtabmap/guilib/src/CloudViewer.cpp

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22 KiB
C++

/*
* CloudViewer.cpp
*
* Created on: 2013-10-13
* Author: Mathieu
*/
#include "rtabmap/gui/CloudViewer.h"
#include <rtabmap/utilite/ULogger.h>
#include <rtabmap/utilite/UTimer.h>
#include <rtabmap/utilite/UConversion.h>
#include <rtabmap/core/util3d.h>
#include <pcl/visualization/pcl_visualizer.h>
#include <pcl/filters/frustum_culling.h>
#include <QtGui/QMenu>
#include <QtGui/QAction>
#include <QtGui/QContextMenuEvent>
#include <QtGui/QInputDialog>
#include <QtGui/QWheelEvent>
#include <QtGui/QKeyEvent>
#include <QtGui/QColorDialog>
#include <set>
#include <vtkRenderWindow.h>
namespace rtabmap {
void CloudViewer::mouseEventOccurred (const pcl::visualization::MouseEvent &event, void* viewer_void)
{
if (event.getButton () == pcl::visualization::MouseEvent::LeftButton ||
event.getButton () == pcl::visualization::MouseEvent::MiddleButton)
{
this->render(); // this will apply frustum
}
}
CloudViewer::CloudViewer(QWidget *parent) :
QVTKWidget(parent),
#if defined(WIN32) || defined(__APPLE__)
_visualizer(new pcl::visualization::PCLVisualizer("PCLVisualizer")),
#else
_visualizer(new pcl::visualization::PCLVisualizer("PCLVisualizer", false)),
#endif
_aLockCamera(0),
_aFollowCamera(0),
_aResetCamera(0),
_aLockViewZ(0),
_aShowTrajectory(0),
_aSetTrajectorySize(0),
_aClearTrajectory(0),
_aShowGrid(0),
_aSetBackgroundColor(0),
_menu(0),
_trajectory(new pcl::PointCloud<pcl::PointXYZ>),
_maxTrajectorySize(100),
_lastPose(Transform::getIdentity())
{
this->setMinimumSize(200, 200);
this->SetRenderWindow(_visualizer->getRenderWindow());
#if !defined(WIN32) && !defined(__APPLE__)
_visualizer->setupInteractor(this->GetInteractor(), this->GetRenderWindow());
#endif
_visualizer->registerMouseCallback (&CloudViewer::mouseEventOccurred, *this, (void*)_visualizer);
_visualizer->setCameraPosition(
-1, 0, 0,
0, 0, 0,
0, 0, 1);
//setup menu/actions
createMenu();
}
CloudViewer::~CloudViewer()
{
UDEBUG("");
this->removeAllClouds();
delete _visualizer;
}
void CloudViewer::createMenu()
{
_aLockCamera = new QAction("Lock target", this);
_aLockCamera->setCheckable(true);
_aLockCamera->setChecked(false);
_aFollowCamera = new QAction("Follow", this);
_aFollowCamera->setCheckable(true);
_aFollowCamera->setChecked(true);
QAction * freeCamera = new QAction("Free", this);
freeCamera->setCheckable(true);
freeCamera->setChecked(false);
_aLockViewZ = new QAction("Lock view Z", this);
_aLockViewZ->setCheckable(true);
_aLockViewZ->setChecked(true);
_aResetCamera = new QAction("Reset position", this);
_aShowTrajectory= new QAction("Show trajectory", this);
_aShowTrajectory->setCheckable(true);
_aShowTrajectory->setChecked(true);
_aSetTrajectorySize = new QAction("Set trajectory size...", this);
_aClearTrajectory = new QAction("Clear trajectory", this);
_aShowGrid = new QAction("Show grid", this);
_aShowGrid->setCheckable(true);
_aSetBackgroundColor = new QAction("Set background color...", this);
QMenu * cameraMenu = new QMenu("Camera", this);
cameraMenu->addAction(_aLockCamera);
cameraMenu->addAction(_aFollowCamera);
cameraMenu->addAction(freeCamera);
cameraMenu->addSeparator();
cameraMenu->addAction(_aLockViewZ);
cameraMenu->addAction(_aResetCamera);
QActionGroup * group = new QActionGroup(this);
group->addAction(_aLockCamera);
group->addAction(_aFollowCamera);
group->addAction(freeCamera);
QMenu * trajectoryMenu = new QMenu("Trajectory", this);
trajectoryMenu->addAction(_aShowTrajectory);
trajectoryMenu->addAction(_aSetTrajectorySize);
trajectoryMenu->addAction(_aClearTrajectory);
//menus
_menu = new QMenu(this);
_menu->addMenu(cameraMenu);
_menu->addMenu(trajectoryMenu);
_menu->addAction(_aShowGrid);
_menu->addAction(_aSetBackgroundColor);
}
bool CloudViewer::updateCloudPose(
const std::string & id,
const Transform & pose)
{
if(_addedClouds.contains(id))
{
UDEBUG("Updating pose %s to %s", id.c_str(), pose.prettyPrint().c_str());
if(_addedClouds.find(id).value() == pose ||
_visualizer->updatePointCloudPose(id, util3d::transformToEigen3f(pose)))
{
_addedClouds.find(id).value() = pose;
return true;
}
}
return false;
}
bool CloudViewer::updateCloud(
const std::string & id,
const pcl::PointCloud<pcl::PointXYZRGB>::Ptr & cloud,
const Transform & pose)
{
if(_addedClouds.contains(id))
{
UDEBUG("Updating %s with %d points", id.c_str(), (int)cloud->size());
int index = _visualizer->getColorHandlerIndex(id);
this->removeCloud(id);
if(this->addCloud(id, cloud, pose))
{
_visualizer->updateColorHandlerIndex(id, index);
return true;
}
}
return false;
}
bool CloudViewer::updateCloud(
const std::string & id,
const pcl::PointCloud<pcl::PointXYZ>::Ptr & cloud,
const Transform & pose)
{
if(_addedClouds.contains(id))
{
UDEBUG("Updating %s with %d points", id.c_str(), (int)cloud->size());
int index = _visualizer->getColorHandlerIndex(id);
this->removeCloud(id);
if(this->addCloud(id, cloud, pose))
{
_visualizer->updateColorHandlerIndex(id, index);
return true;
}
}
return false;
}
bool CloudViewer::addOrUpdateCloud(
const std::string & id,
const pcl::PointCloud<pcl::PointXYZRGB>::Ptr & cloud,
const Transform & pose)
{
if(!updateCloud(id, cloud, pose))
{
return addCloud(id, cloud, pose);
}
return true;
}
bool CloudViewer::addOrUpdateCloud(
const std::string & id,
const pcl::PointCloud<pcl::PointXYZ>::Ptr & cloud,
const Transform & pose)
{
if(!updateCloud(id, cloud, pose))
{
return addCloud(id, cloud, pose);
}
return true;
}
bool CloudViewer::addCloud(
const std::string & id,
const pcl::PCLPointCloud2Ptr & binaryCloud,
const Transform & pose,
bool rgb)
{
if(!_addedClouds.contains(id))
{
Eigen::Vector4f origin(pose.x(), pose.y(), pose.z(), 0.0f);
Eigen::Quaternionf orientation = Eigen::Quaternionf(util3d::transformToEigen3f(pose).rotation());
// add random color channel
pcl::visualization::PointCloudColorHandler<pcl::PCLPointCloud2>::Ptr colorHandler;
colorHandler.reset (new pcl::visualization::PointCloudColorHandlerRandom<pcl::PCLPointCloud2> (binaryCloud));
if(_visualizer->addPointCloud (binaryCloud, colorHandler, origin, orientation, id))
{
// white
colorHandler.reset (new pcl::visualization::PointCloudColorHandlerCustom<pcl::PCLPointCloud2> (binaryCloud, 255, 255, 255));
_visualizer->addPointCloud (binaryCloud, colorHandler, origin, orientation, id);
// x,y,z
colorHandler.reset (new pcl::visualization::PointCloudColorHandlerGenericField<pcl::PCLPointCloud2> (binaryCloud, "x"));
_visualizer->addPointCloud (binaryCloud, colorHandler, origin, orientation, id);
colorHandler.reset (new pcl::visualization::PointCloudColorHandlerGenericField<pcl::PCLPointCloud2> (binaryCloud, "y"));
_visualizer->addPointCloud (binaryCloud, colorHandler, origin, orientation, id);
colorHandler.reset (new pcl::visualization::PointCloudColorHandlerGenericField<pcl::PCLPointCloud2> (binaryCloud, "z"));
_visualizer->addPointCloud (binaryCloud, colorHandler, origin, orientation, id);
if(rgb)
{
//rgb
colorHandler.reset(new pcl::visualization::PointCloudColorHandlerRGBField<pcl::PCLPointCloud2>(binaryCloud));
_visualizer->addPointCloud (binaryCloud, colorHandler, origin, orientation, id);
_visualizer->updateColorHandlerIndex(id, 5);
}
_addedClouds.insert(id, pose);
return true;
}
}
return false;
}
bool CloudViewer::addCloud(
const std::string & id,
const pcl::PointCloud<pcl::PointXYZRGB>::Ptr & cloud,
const Transform & pose)
{
if(!_addedClouds.contains(id))
{
UDEBUG("Adding %s with %d points", id.c_str(), (int)cloud->size());
pcl::PCLPointCloud2Ptr binaryCloud(new pcl::PCLPointCloud2);
pcl::toPCLPointCloud2(*cloud, *binaryCloud);
return addCloud(id, binaryCloud, pose, true);
}
return false;
}
bool CloudViewer::addCloud(
const std::string & id,
const pcl::PointCloud<pcl::PointXYZ>::Ptr & cloud,
const Transform & pose)
{
if(!_addedClouds.contains(id))
{
UDEBUG("Adding %s with %d points", id.c_str(), (int)cloud->size());
pcl::PCLPointCloud2Ptr binaryCloud(new pcl::PCLPointCloud2);
pcl::toPCLPointCloud2(*cloud, *binaryCloud);
return addCloud(id, binaryCloud, pose, false);
}
return false;
}
bool CloudViewer::addCloudMesh(
const std::string & id,
const pcl::PointCloud<pcl::PointXYZRGB>::Ptr & cloud,
const std::vector<pcl::Vertices> & polygons,
const Transform & pose)
{
if(!_addedClouds.contains(id))
{
UDEBUG("Adding %s with %d points and %d polygons", id.c_str(), (int)cloud->size(), (int)polygons.size());
if(_visualizer->addPolygonMesh<pcl::PointXYZRGB>(cloud, polygons, id))
{
_visualizer->updatePointCloudPose(id, util3d::transformToEigen3f(pose));
_addedClouds.insert(id, pose);
return true;
}
}
return false;
}
bool CloudViewer::addCloudMesh(
const std::string & id,
const pcl::PolygonMesh::Ptr & mesh,
const Transform & pose)
{
if(!_addedClouds.contains(id))
{
UDEBUG("Adding %s with %d polygons", id.c_str(), (int)mesh->polygons.size());
if(_visualizer->addPolygonMesh(*mesh, id))
{
_visualizer->updatePointCloudPose(id, util3d::transformToEigen3f(pose));
_addedClouds.insert(id, pose);
return true;
}
}
return false;
}
void CloudViewer::setTrajectoryShown(bool shown)
{
_aShowTrajectory->setChecked(shown);
}
void CloudViewer::setTrajectorySize(int value)
{
_maxTrajectorySize = value;
}
void CloudViewer::removeAllClouds()
{
_addedClouds.clear();
_visualizer->removeAllPointClouds();
}
bool CloudViewer::removeCloud(const std::string & id)
{
_addedClouds.remove(id);
return _visualizer->removePointCloud(id);
}
bool CloudViewer::getPose(const std::string & id, Transform & pose)
{
if(_addedClouds.contains(id))
{
pose = _addedClouds.value(id);
return true;
}
return false;
}
void CloudViewer::updateCameraPosition(const Transform & pose)
{
if(!pose.isNull())
{
Eigen::Affine3f m = util3d::transformToEigen3f(pose);
Eigen::Vector3f pos = m.translation();
Eigen::Vector3f lastPos(0,0,0);
if(_trajectory->size())
{
lastPos[0]=_trajectory->back().x;
lastPos[1]=_trajectory->back().y;
lastPos[2]=_trajectory->back().z;
}
_trajectory->push_back(pcl::PointXYZ(pos[0], pos[1], pos[2]));
if(_maxTrajectorySize>0)
{
while(_trajectory->size() > _maxTrajectorySize)
{
_trajectory->erase(_trajectory->begin());
}
}
if(_aShowTrajectory->isChecked())
{
_visualizer->removeShape("trajectory");
pcl::PolygonMesh mesh;
pcl::Vertices vertices;
vertices.vertices.resize(_trajectory->size());
for(unsigned int i=0; i<vertices.vertices.size(); ++i)
{
vertices.vertices[i] = i;
}
pcl::toPCLPointCloud2(*_trajectory, mesh.cloud);
mesh.polygons.push_back(vertices);
_visualizer->addPolylineFromPolygonMesh(mesh, "trajectory");
}
if(pose != _lastPose)
{
std::vector<pcl::visualization::Camera> cameras;
_visualizer->getCameras(cameras);
if(_aLockCamera->isChecked())
{
//update camera position
Eigen::Vector3f diff = pos - Eigen::Vector3f(_lastPose.x(), _lastPose.y(), _lastPose.z());
cameras.front().pos[0] += diff[0];
cameras.front().pos[1] += diff[1];
cameras.front().pos[2] += diff[2];
cameras.front().focal[0] += diff[0];
cameras.front().focal[1] += diff[1];
cameras.front().focal[2] += diff[2];
}
else if(_aFollowCamera->isChecked())
{
Eigen::Vector3f vPosToFocal = Eigen::Vector3f(cameras.front().focal[0] - cameras.front().pos[0],
cameras.front().focal[1] - cameras.front().pos[1],
cameras.front().focal[2] - cameras.front().pos[2]).normalized();
Eigen::Vector3f zAxis(cameras.front().view[0], cameras.front().view[1], cameras.front().view[2]);
Eigen::Vector3f yAxis = zAxis.cross(vPosToFocal);
Eigen::Vector3f xAxis = yAxis.cross(zAxis);
Transform PR(xAxis[0], xAxis[1], xAxis[2],0,
yAxis[0], yAxis[1], yAxis[2],0,
zAxis[0], zAxis[1], zAxis[2],0);
Transform P(PR[0], PR[1], PR[2], cameras.front().pos[0],
PR[4], PR[5], PR[6], cameras.front().pos[1],
PR[8], PR[9], PR[10], cameras.front().pos[2]);
Transform F(PR[0], PR[1], PR[2], cameras.front().focal[0],
PR[4], PR[5], PR[6], cameras.front().focal[1],
PR[8], PR[9], PR[10], cameras.front().focal[2]);
Transform N = pose;
Transform O = _lastPose;
Transform O2N = O.inverse()*N;
Transform F2O = F.inverse()*O;
Transform T = F2O * O2N * F2O.inverse();
Transform Fp = F * T;
Transform P2F = P.inverse()*F;
Transform Pp = P * P2F * T * P2F.inverse();
cameras.front().pos[0] = Pp.x();
cameras.front().pos[1] = Pp.y();
cameras.front().pos[2] = Pp.z();
cameras.front().focal[0] = Fp.x();
cameras.front().focal[1] = Fp.y();
cameras.front().focal[2] = Fp.z();
//FIXME: the view up is not set properly...
cameras.front().view[0] = Fp[8];
cameras.front().view[1] = Fp[9];
cameras.front().view[2] = Fp[10];
}
_visualizer->setCameraPosition(
cameras.front().pos[0], cameras.front().pos[1], cameras.front().pos[2],
cameras.front().focal[0], cameras.front().focal[1], cameras.front().focal[2],
cameras.front().view[0], cameras.front().view[1], cameras.front().view[2]);
}
_visualizer->removeCoordinateSystem(0);
_visualizer->addCoordinateSystem(0.2, m, 0);
}
_lastPose = pose;
}
void CloudViewer::render()
{
// camera view up z locked?
if(_aLockViewZ->isChecked())
{
std::vector<pcl::visualization::Camera> cameras;
_visualizer->getCameras(cameras);
cameras.front().view[0] = 0;
cameras.front().view[1] = 0;
cameras.front().view[2] = 1;
_visualizer->setCameraPosition(
cameras.front().pos[0], cameras.front().pos[1], cameras.front().pos[2],
cameras.front().focal[0], cameras.front().focal[1], cameras.front().focal[2],
cameras.front().view[0], cameras.front().view[1], cameras.front().view[2]);
}
this->GetRenderWindow()->Render();
}
void CloudViewer::setBackgroundColor(const QColor & color)
{
_visualizer->setBackgroundColor(color.redF(), color.greenF(), color.blueF());
}
void CloudViewer::setCloudVisibility(const std::string & id, bool isVisible)
{
pcl::visualization::CloudActorMapPtr cloudActorMap = _visualizer->getCloudActorMap();
pcl::visualization::CloudActorMap::iterator iter = cloudActorMap->find(id);
if(iter != cloudActorMap->end())
{
iter->second.actor->SetVisibility(isVisible?1:0);
}
else
{
UERROR("Cannot find actor named \"%s\".", id.c_str());
}
}
bool CloudViewer::getCloudVisibility(const std::string & id)
{
pcl::visualization::CloudActorMapPtr cloudActorMap = _visualizer->getCloudActorMap();
pcl::visualization::CloudActorMap::iterator iter = cloudActorMap->find(id);
if(iter != cloudActorMap->end())
{
return iter->second.actor->GetVisibility() != 0;
}
else
{
UERROR("Cannot find actor named \"%s\".", id.c_str());
}
return false;
}
void CloudViewer::setCloudOpacity(const std::string & id, double opacity)
{
double lastOpacity;
_visualizer->getPointCloudRenderingProperties(pcl::visualization::PCL_VISUALIZER_OPACITY, lastOpacity, id);
if(lastOpacity != opacity)
{
_visualizer->setPointCloudRenderingProperties(pcl::visualization::PCL_VISUALIZER_OPACITY, opacity, id);
}
}
void CloudViewer::setCloudPointSize(const std::string & id, int size)
{
double lastSize;
_visualizer->getPointCloudRenderingProperties(pcl::visualization::PCL_VISUALIZER_POINT_SIZE, lastSize, id);
if((int)lastSize != size)
{
_visualizer->setPointCloudRenderingProperties(pcl::visualization::PCL_VISUALIZER_POINT_SIZE, (double)size, id);
}
}
void CloudViewer::setCameraTargetLocked()
{
_aLockCamera->setChecked(true);
}
void CloudViewer::setCameraTargetFollow()
{
_aFollowCamera->setChecked(true);
}
Eigen::Vector3f rotatePointAroundAxe(
const Eigen::Vector3f & point,
const Eigen::Vector3f & axis,
float angle)
{
Eigen::Vector3f direction = point;
Eigen::Vector3f zAxis = axis;
float dotProdZ = zAxis.dot(direction);
Eigen::Vector3f ptOnZaxis = zAxis * dotProdZ;
direction -= ptOnZaxis;
Eigen::Vector3f xAxis = direction.normalized();
Eigen::Vector3f yAxis = zAxis.cross(xAxis);
Eigen::Matrix3f newFrame;
newFrame << xAxis[0], yAxis[0], zAxis[0],
xAxis[1], yAxis[1], zAxis[1],
xAxis[2], yAxis[2], zAxis[2];
// transform to axe frame
// transpose=inverse for orthogonal matrices
Eigen::Vector3f newDirection = newFrame.transpose() * direction;
// rotate about z
float cosTheta = cos(angle);
float sinTheta = sin(angle);
float magnitude = newDirection.norm();
newDirection[0] = ( magnitude * cosTheta );
newDirection[1] = ( magnitude * sinTheta );
// transform back to global frame
direction = newFrame * newDirection;
return direction + ptOnZaxis;
}
void CloudViewer::keyReleaseEvent(QKeyEvent * event) {
if(event->key() == Qt::Key_Up ||
event->key() == Qt::Key_Down ||
event->key() == Qt::Key_Left ||
event->key() == Qt::Key_Right)
{
_keysPressed -= (Qt::Key)event->key();
}
else
{
QVTKWidget::keyPressEvent(event);
}
}
void CloudViewer::keyPressEvent(QKeyEvent * event)
{
if(event->key() == Qt::Key_Up ||
event->key() == Qt::Key_Down ||
event->key() == Qt::Key_Left ||
event->key() == Qt::Key_Right)
{
_keysPressed += (Qt::Key)event->key();
std::vector<pcl::visualization::Camera> cameras;
_visualizer->getCameras(cameras);
//update camera position
Eigen::Vector3f pos(cameras.front().pos[0], cameras.front().pos[1], _aLockViewZ->isChecked()?0:cameras.front().pos[2]);
Eigen::Vector3f focal(cameras.front().focal[0], cameras.front().focal[1], _aLockViewZ->isChecked()?0:cameras.front().focal[2]);
Eigen::Vector3f viewUp(cameras.front().view[0], cameras.front().view[1], cameras.front().view[2]);
Eigen::Vector3f cummulatedDir(0,0,0);
Eigen::Vector3f cummulatedFocalDir(0,0,0);
float step = 0.2f;
float stepRot = 0.02f; // radian
if(_keysPressed.contains(Qt::Key_Up))
{
Eigen::Vector3f dir;
if(event->modifiers() & Qt::ShiftModifier)
{
dir = viewUp * step;// up
}
else
{
dir = (focal-pos).normalized() * step; // forward
}
cummulatedDir += dir;
}
if(_keysPressed.contains(Qt::Key_Down))
{
Eigen::Vector3f dir;
if(event->modifiers() & Qt::ShiftModifier)
{
dir = viewUp * -step;// down
}
else
{
dir = (focal-pos).normalized() * -step; // backward
}
cummulatedDir += dir;
}
if(_keysPressed.contains(Qt::Key_Right))
{
if(event->modifiers() & Qt::ShiftModifier)
{
// rotate right
Eigen::Vector3f point = (focal-pos);
Eigen::Vector3f newPoint = rotatePointAroundAxe(point, viewUp, -stepRot);
Eigen::Vector3f diff = newPoint - point;
cummulatedFocalDir += diff;
}
else
{
Eigen::Vector3f dir = ((focal-pos).cross(viewUp)).normalized() * step; // strafing right
cummulatedDir += dir;
}
}
if(_keysPressed.contains(Qt::Key_Left))
{
if(event->modifiers() & Qt::ShiftModifier)
{
// rotate left
Eigen::Vector3f point = (focal-pos);
Eigen::Vector3f newPoint = rotatePointAroundAxe(point, viewUp, stepRot);
Eigen::Vector3f diff = newPoint - point;
cummulatedFocalDir += diff;
}
else
{
Eigen::Vector3f dir = ((focal-pos).cross(viewUp)).normalized() * -step; // strafing left
cummulatedDir += dir;
}
}
cameras.front().pos[0] += cummulatedDir[0];
cameras.front().pos[1] += cummulatedDir[1];
cameras.front().pos[2] += cummulatedDir[2];
cameras.front().focal[0] += cummulatedDir[0] + cummulatedFocalDir[0];
cameras.front().focal[1] += cummulatedDir[1] + cummulatedFocalDir[1];
cameras.front().focal[2] += cummulatedDir[2] + cummulatedFocalDir[2];
_visualizer->setCameraPosition(
cameras.front().pos[0], cameras.front().pos[1], cameras.front().pos[2],
cameras.front().focal[0], cameras.front().focal[1], cameras.front().focal[2],
cameras.front().view[0], cameras.front().view[1], cameras.front().view[2]);
render();
}
else
{
QVTKWidget::keyPressEvent(event);
}
}
void CloudViewer::contextMenuEvent(QContextMenuEvent * event)
{
QAction * a = _menu->exec(event->globalPos());
if(a)
{
handleAction(a);
}
}
void CloudViewer::handleAction(QAction * a)
{
if(a == _aSetTrajectorySize)
{
bool ok;
int value = QInputDialog::getInt(this, tr("Set trajectory size"), tr("Size (0=infinite)"), _maxTrajectorySize, 0, 10000, 10, &ok);
if(ok)
{
_maxTrajectorySize = value;
}
}
else if(a == _aClearTrajectory)
{
_trajectory->clear();
_visualizer->removeShape("trajectory");
this->render();
}
else if(a == _aResetCamera)
{
_visualizer->setCameraPosition(
-1, 0, 0,
0, 0, 0,
0, 0, 1);
this->render();
}
else if(a == _aShowGrid)
{
if(_aShowGrid->isChecked())
{
float cellSize = 1.0f;
int cellCount = 50;
double r=0.5;
double g=0.5;
double b=0.5;
int id = 0;
float min = -float(cellCount/2) * cellSize;
float max = float(cellCount/2) * cellSize;
std::string name;
for(float i=min; i<=max; i += cellSize)
{
//over x
name = uFormat("line%d", ++id);
_visualizer->addLine(pcl::PointXYZ(i, min, 0.0f), pcl::PointXYZ(i, max, 0.0f), r, g, b, name);
_gridLines.push_back(name);
//over y
name = uFormat("line%d", ++id);
_visualizer->addLine(pcl::PointXYZ(min, i, 0.0f), pcl::PointXYZ(max, i, 0.0f), r, g, b, name);
_gridLines.push_back(name);
}
}
else
{
for(std::list<std::string>::iterator iter = _gridLines.begin(); iter!=_gridLines.end(); ++iter)
{
_visualizer->removeShape(*iter);
}
_gridLines.clear();
}
this->render();
}
else if(a == _aSetBackgroundColor)
{
QColor color = Qt::black;
color = QColorDialog::getColor(color, this);
this->setBackgroundColor(color);
}
}
} /* namespace rtabmap */