7 #include "CLHEP/Units/GlobalSystemOfUnits.h"
8 #include "CLHEP/Units/SystemOfUnits.h"
24 #include "Math/GenVector/AxisAngle.h"
25 #include "Math/GenVector/Cartesian3D.h"
26 #include "Math/GenVector/DisplacementVector3D.h"
27 #include "Math/GenVector/Rotation3D.h"
28 #include "Math/GenVector/RotationZ.h"
49 eval.
set(ns,
"length",
"20.*m");
52 eval.
set(ns,
"corner",
"[length]/4.");
55 DDName worldName(
"world",ns);
57 DDName nitrogenName(
"Nitrogen",
"elements");
58 DDName oxygenName(
"Oxygen",
"elements");
61 eval.
eval(ns,
"[length]/2."),
62 eval.
eval(ns,
"[length]/2."));
77 eval.
eval(ns,
"14.007*g/mole"),
78 eval.
eval(ns,
"0.808*g/cm3") );
82 eval.
eval(ns,
"15.999*g/mole"),
83 eval.
eval(ns,
"1.43*g/cm3") );
120 cout <<
"main::initialize DDL parser" << endl;
123 cout <<
"main::about to set configuration" << endl;
128 eval.
eval(ns,
"[setup:corner]/4."),
129 eval.
eval(ns,
"[setup:corner]/8."),
130 eval.
eval(ns,
"[setup:corner]/4.")
133 eval.
eval(ns,
"[setup:corner]/16."),
134 eval.
eval(ns,
"[setup:corner]/16."),
135 eval.
eval(ns,
"[setup:corner]/16.")
139 DDName(
"Oxygen",
"elements"),
143 DDName(
"Nitrogen",
"elements"),
157 eval.
eval(ns,
"[setup:corner]/16."),
158 eval.
eval(ns,
"[setup:corner]/8.")
161 eval.
eval(ns,
"[setup:corner]*1.25*sin(0.)"),
164 eval.
eval(ns,
"[setup:corner]*1.25*sin(30.*deg)"),
167 eval.
eval(ns,
"[setup:corner]*1.25*sin(60.*deg)"),
170 eval.
eval(ns,
"[setup:corner]*1.25*sin(90.*deg)"),
190 os <<
"Starting Regressiontest Output" << endl;
193 cout <<
"main::initialize DDL parser" << endl;
196 cout <<
"main::about to set configuration" << endl;
198 cf.
readConfig(
"DetectorDescription/RegressionTest/test/configuration.xml");
200 cout <<
"main::about to start parsing" << endl;
204 cout <<
"main::completed Parser" << endl;
207 vector<DDTranslation> tvec;
209 std::cout <<
"Before the loop..." << std::endl;
211 ROOT::Math::AxisAngle ra(exv.
rotation());
216 os <<
" " << ra.Axis() << ra.Angle()/deg << endl;
221 vector<DDTranslation>::iterator it = tvec.begin();
222 os << endl <<
"center points of all solids" << endl;
223 for (; it != tvec.end(); ++it) {
224 os << (*it).x() <<
" " << (*it).y() <<
" " << (*it).z() << endl;
231 cout <<
"main:: initialize" << endl;
233 cout <<
"main::initialize DDL parser" << endl;
236 cout <<
"main::about to set configuration" << endl;
239 cf.
readConfig(
"DetectorDescription/RegressionTest/test/configuration.xml");
241 cout <<
"main::about to start parsing" << endl;
245 cout <<
"main::completed Parser" << endl;
247 cout << endl << endl <<
"main::Start checking!" << endl << endl;
252 cout <<
"main::PROBLEM:" << endl
258 std::cout <<
"rot asis\n" << rot << std::endl;
260 rot.GetComponents(x,y,z);
265 cout <<
"phiX=" << x.phi() <<
" or in degrees = "
266 << x.phi()/deg << endl;
267 cout <<
"thetaX=" << x.theta() <<
" or in degrees = "
268 << x.theta()/deg << endl;
269 cout <<
"phiY=" << y.phi() <<
" or in degrees = "
270 << y.phi()/deg << endl;
271 cout <<
"thetaY=" << y.theta() <<
" or in degrees = "
272 << y.theta()/deg << endl;
273 cout <<
"phiZ=" << z.phi() <<
" or in degrees = "
274 << z.phi()/deg << endl;
275 cout <<
"thetaZ=" << z.theta() <<
" or in degrees = "
276 << z.theta()/deg << endl;
278 cout <<
"some factor/equations..." << endl;
279 cout <<
" sin(thetaX()) * cos(phiX()) = "
280 <<
sin(x.theta()) *
cos(x.phi()) << endl;
287 ROOT::Math::AxisAngle aa(
DD3Vector(1.,1.,1.), 20.*deg);
289 cout <<
"DD3Vector was " <<
DD3Vector(1.,1.,1.) <<
" and the rotation was 20*deg around that axis." << endl;
294 cout <<
"(1,0,0, 0,-1,0, 0,0,1)" << endl;
bool next()
set current node to the next node in the expanded tree
const DDRotationMatrix & rotation() const
The absolute rotation of the current node.
int parse(const DDLDocumentProvider &dp)
Parse all files. Return is meaningless.
DDMaterial is used to define and access material information.
Sin< T >::type sin(const T &t)
void position(const DDLogicalPart &self, const DDLogicalPart &parent, std::string copyno, const DDTranslation &trans, const DDRotation &rot, const DDDivision *div=NULL)
DDName is used to identify DDD entities uniquely.
const DDSolid & solid(void) const
Returns a reference object of the solid being the shape of this LogicalPart.
type of data representation of DDCompactView
void regressionTest_first()
A DDSolid represents the shape of a part.
ROOT::Math::DisplacementVector3D< ROOT::Math::Cartesian3D< double > > DDTranslation
Represents a uniquely identifyable rotation matrix.
void printRot(const DDRotationMatrix &rot)
int addMaterial(const DDMaterial &m, double fm)
adds a material to the mixture proportional to its fraction-mass fm.
T x() const
Cartesian x coordinate.
static value_type & instance()
void regressionTest_setup()
ROOT::Math::DisplacementVector3D< ROOT::Math::Cartesian3D< double > > DD3Vector
A DD Translation is currently implemented with Root Vector3D.
auto const T2 &decltype(t1.eta()) t2
Cos< T >::type cos(const T &t)
A DDLogicalPart aggregates information concerning material, solid and sensitveness ...
static DDSolid box(const DDName &name, double xHalf, double yHalf, double zHalf)
Creates a box with side length 2*xHalf, 2*yHalf, 2*zHalf.
const DDTranslation & translation() const
The absolute translation of the current node.
DDLParser is the main class of Detector Description Language Parser.
FIPConfiguration reads in the configuration file for the DDParser.
int readConfig(const std::string &filename)
Read in the configuration file.
static DDSolid shapeless(const DDName &name)
void set(const std::string &ns, const std::string &name, const std::string &exprValue)
double eval(const std::string &ns, const std::string &expr)
const DDLogicalPart & logicalPart() const
The logical-part of the current node in the expanded-view.
Provides an exploded view of the detector (tree-view)
ROOT::Math::Rotation3D DDRotationMatrix
A DDRotationMatrix is currently implemented with a ROOT Rotation3D.
const DDMaterial & material(void) const
Returns a reference object of the material this LogicalPart is made of.