Belle II Software  release-08-01-10
EffPlotsModule Class Reference

This module takes the MCParticles, the RecoTracks and Tracks/V0 in input and produce a root file containing various histograms showing the efficiencies (as a function of different variables) of the V0 finding module. More...

#include <EffPlotsModule.h>

Inheritance diagram for EffPlotsModule:
Collaboration diagram for EffPlotsModule:

Public Types

enum  EModulePropFlags {
  c_Input = 1 ,
  c_Output = 2 ,
  c_ParallelProcessingCertified = 4 ,
  c_HistogramManager = 8 ,
  c_InternalSerializer = 16 ,
  c_TerminateInAllProcesses = 32 ,
  c_DontCollectStatistics = 64
}
 Each module can be tagged with property flags, which indicate certain features of the module. More...
 
typedef ModuleCondition::EAfterConditionPath EAfterConditionPath
 Forward the EAfterConditionPath definition from the ModuleCondition.
 

Public Member Functions

 EffPlotsModule ()
 Constructor.
 
 ~EffPlotsModule ()
 Destructor.
 
void initialize () override
 Initializer.
 
void beginRun () override
 Called when entering a new run.
 
void event () override
 This method is called for each event.
 
void endRun () override
 This method is called if the current run ends.
 
void terminate () override
 This method is called at the end of the event processing.
 
virtual std::vector< std::string > getFileNames (bool outputFiles)
 Return a list of output filenames for this modules. More...
 
const std::string & getName () const
 Returns the name of the module. More...
 
const std::string & getType () const
 Returns the type of the module (i.e. More...
 
const std::string & getPackage () const
 Returns the package this module is in.
 
const std::string & getDescription () const
 Returns the description of the module.
 
void setName (const std::string &name)
 Set the name of the module. More...
 
void setPropertyFlags (unsigned int propertyFlags)
 Sets the flags for the module properties. More...
 
LogConfiggetLogConfig ()
 Returns the log system configuration.
 
void setLogConfig (const LogConfig &logConfig)
 Set the log system configuration.
 
void setLogLevel (int logLevel)
 Configure the log level.
 
void setDebugLevel (int debugLevel)
 Configure the debug messaging level.
 
void setAbortLevel (int abortLevel)
 Configure the abort log level.
 
void setLogInfo (int logLevel, unsigned int logInfo)
 Configure the printed log information for the given level. More...
 
void if_value (const std::string &expression, const std::shared_ptr< Path > &path, EAfterConditionPath afterConditionPath=EAfterConditionPath::c_End)
 Add a condition to the module. More...
 
void if_false (const std::shared_ptr< Path > &path, EAfterConditionPath afterConditionPath=EAfterConditionPath::c_End)
 A simplified version to add a condition to the module. More...
 
void if_true (const std::shared_ptr< Path > &path, EAfterConditionPath afterConditionPath=EAfterConditionPath::c_End)
 A simplified version to set the condition of the module. More...
 
bool hasCondition () const
 Returns true if at least one condition was set for the module.
 
const ModuleConditiongetCondition () const
 Return a pointer to the first condition (or nullptr, if none was set)
 
const std::vector< ModuleCondition > & getAllConditions () const
 Return all set conditions for this module.
 
bool evalCondition () const
 If at least one condition was set, it is evaluated and true returned if at least one condition returns true. More...
 
std::shared_ptr< PathgetConditionPath () const
 Returns the path of the last true condition (if there is at least one, else reaturn a null pointer). More...
 
Module::EAfterConditionPath getAfterConditionPath () const
 What to do after the conditional path is finished. More...
 
std::vector< std::shared_ptr< Path > > getAllConditionPaths () const
 Return all condition paths currently set (no matter if the condition is true or not).
 
bool hasProperties (unsigned int propertyFlags) const
 Returns true if all specified property flags are available in this module. More...
 
bool hasUnsetForcedParams () const
 Returns true and prints error message if the module has unset parameters which the user has to set in the steering file.
 
const ModuleParamListgetParamList () const
 Return module param list.
 
template<typename T >
ModuleParam< T > & getParam (const std::string &name) const
 Returns a reference to a parameter. More...
 
bool hasReturnValue () const
 Return true if this module has a valid return value set.
 
int getReturnValue () const
 Return the return value set by this module. More...
 
std::shared_ptr< PathElementclone () const override
 Create an independent copy of this module. More...
 
std::shared_ptr< boost::python::list > getParamInfoListPython () const
 Returns a python list of all parameters. More...
 

Static Public Member Functions

static void exposePythonAPI ()
 Exposes methods of the Module class to Python.
 

Protected Member Functions

virtual void def_initialize ()
 Wrappers to make the methods without "def_" prefix callable from Python. More...
 
virtual void def_beginRun ()
 Wrapper method for the virtual function beginRun() that has the implementation to be used in a call from Python.
 
virtual void def_event ()
 Wrapper method for the virtual function event() that has the implementation to be used in a call from Python.
 
virtual void def_endRun ()
 This method can receive that the current run ends as a call from the Python side. More...
 
virtual void def_terminate ()
 Wrapper method for the virtual function terminate() that has the implementation to be used in a call from Python.
 
void setDescription (const std::string &description)
 Sets the description of the module. More...
 
void setType (const std::string &type)
 Set the module type. More...
 
template<typename T >
void addParam (const std::string &name, T &paramVariable, const std::string &description, const T &defaultValue)
 Adds a new parameter to the module. More...
 
template<typename T >
void addParam (const std::string &name, T &paramVariable, const std::string &description)
 Adds a new enforced parameter to the module. More...
 
void setReturnValue (int value)
 Sets the return value for this module as integer. More...
 
void setReturnValue (bool value)
 Sets the return value for this module as bool. More...
 
void setParamList (const ModuleParamList &params)
 Replace existing parameter list.
 

Private Member Functions

bool isK_Short (const MCParticle &the_mcParticle)
 determine if the MCParticle is a K-short
 
bool isLambda0 (const MCParticle &the_mcParticle)
 determine if the MCParticle is a Lambda0
 
int nMatchedDaughters (const MCParticle &the_mcParticle)
 get the number of matched daughters of the MCParticle
 
std::list< ModulePtrgetModules () const override
 no submodules, return empty list
 
std::string getPathString () const override
 return the module name.
 
void setParamPython (const std::string &name, const boost::python::object &pyObj)
 Implements a method for setting boost::python objects. More...
 
void setParamPythonDict (const boost::python::dict &dictionary)
 Implements a method for reading the parameter values from a boost::python dictionary. More...
 
TH1F * createHistogram1D (const char *name, const char *title, Int_t nbins, Double_t min, Double_t max, const char *xtitle, TList *histoList=nullptr)
 Create a 1D histogram and add it to the TList of 1D-histograms.
 
TH1F * createHistogram1D (const char *name, const char *title, Int_t nbins, Double_t *bins, const char *xtitle, TList *histoList=nullptr)
 Create a 1D histogram and add it to the TList of 1D-histograms.
 
TH2F * createHistogram2D (const char *name, const char *title, Int_t nbinsX, Double_t minX, Double_t maxX, const char *titleX, Int_t nbinsY, Double_t minY, Double_t maxY, const char *titleY, TList *histoList=nullptr)
 Create a 2D histogram and add it to the TList of 2D-histograms. More...
 
TH2F * createHistogram2D (const char *name, const char *title, Int_t nbinsX, Double_t *binsX, const char *titleX, Int_t nbinsY, Double_t *binsY, const char *titleY, TList *histoList=nullptr)
 Create a 2D histogram and add it to the TList of 2D-histograms.
 
TH3F * createHistogram3D (const char *name, const char *title, Int_t nbinsX, Double_t minX, Double_t maxX, const char *titleX, Int_t nbinsY, Double_t minY, Double_t maxY, const char *titleY, Int_t nbinsZ, Double_t minZ, Double_t maxZ, const char *titleZ, TList *histoList=nullptr)
 Create a 3D histogram and add it to the TList of 3D-histograms.
 
TH3F * createHistogram3D (const char *name, const char *title, Int_t nbinsX, Double_t *binsX, const char *titleX, Int_t nbinsY, Double_t *binsY, const char *titleY, Int_t nbinsZ, Double_t *binsZ, const char *titleZ, TList *histoList=nullptr)
 Create a 3D histogram and add it to the TList of 3D-histograms.
 
TH1 * duplicateHistogram (const char *newname, const char *newtitle, TH1 *h, TList *histoList=nullptr)
 Make a copy of a 1D histogram and add it to the TList of 1D-histograms.
 
TH1F * createHistogramsRatio (const char *name, const char *title, TH1 *hNum, TH1 *hDen, bool isEffPlot, int axisRef)
 Make a new 1D histogram from the ratio of two others and add it to the TList of 1D-histograms.
 
void addEfficiencyPlots (TList *graphList=nullptr, TH3F *h3_xPerMCParticle=nullptr, TH3F *h3_MCParticle=nullptr)
 Create pt-, theta- and phi-efficiency 1D histograms and add them to the TList of 1D-histograms.
 
void addInefficiencyPlots (TList *graphList=nullptr, TH3F *h3_xPerMCParticle=nullptr, TH3F *h3_MCParticle=nullptr)
 Create pt-, theta- and phi-inefficiency 1D histograms and add them to the TList of 1D-histograms.
 
void addPurityPlots (TList *graphList=nullptr, TH3F *h3_xPerMCParticle=nullptr, TH3F *h3_MCParticle=nullptr)
 Create pt-, theta- and phi-purity 1D histograms and add them to the TList of 1D-histograms.
 
TH1F * effPlot1D (TH1F *h1_den, TH1F *h1_num, const char *name, const char *title, bool geo_accettance, TList *histoList=nullptr)
 Create a 1D efficiency histogram and add it to the TList of 1D-histograms.
 
TH1F * effPlot1D (TH1F *h1_MC, TH1F *h1_RecoTrack, TH1F *h1_Track, const char *name, const char *title, TList *histoList=nullptr)
 Create a 1D efficiency histogram and add it to the TList of 1D-histograms.
 
TH2F * effPlot2D (TH2F *h2_den, TH2F *h2_num, const char *name, const char *title, bool geo_accettance, TList *histoList=nullptr)
 Create a 2D efficiency histogram and add it to the TList of 2D-histograms.
 
TH2F * effPlot2D (TH2F *h2_MC, TH2F *h2_RecoTrack, TH2F *h2_Track, const char *name, const char *title, TList *histoList)
 Create a 2D efficiency histogram and add it to the TList of 2D-histograms.
 
TH1F * geoAcc1D (TH1F *h1_den, TH1F *h1_num, const char *name, const char *title, TList *histoList=nullptr)
 Create a 1D efficiency histogram for geometric acceptance and add it to the TList of 1D-histograms.
 
TH2F * geoAcc2D (TH2F *h2_den, TH2F *h2_num, const char *name, const char *title, TList *histoList=nullptr)
 Create a 2D efficiency histogram for geometric acceptance and add it to the TList of 2D-histograms.
 
TH1F * V0FinderEff (TH1F *h1_dau0, TH1F *h1_dau1, TH1F *h1_Mother, const char *name, const char *title, TList *histoList=nullptr)
 Create a 1D efficiency histogram for V0 finding and add it to the TList of 1D-histograms.
 

Private Attributes

std::string m_MCParticlesName
 user-defined parameters More...
 
std::string m_V0sName
 name of the V0s dataobjects collection
 
std::string m_RecoTracksName
 name of the RecoTracks dataobjects collection
 
std::string m_MCRecoTracksName
 name of the MCRecoTracks dataobjects collection
 
std::string m_TFRColName
 name of the TFR dataobjects collection
 
std::string m_TrackColName
 name of the Tracks dataobjects collection
 
std::string m_V0sType
 type (as a string) of the selected V0
 
StoreArray< MCParticlem_MCParticles
 MCParticle StoreArray.
 
bool m_allHistograms
 true to create all histograms
 
bool m_geometricalAccettance
 true to create output for the geometrical acceptance
 
MCParticlem_MCDaughter0 = nullptr
 daughter 0 of a decayed MCParticle
 
MCParticlem_MCDaughter1 = nullptr
 daughter 1 of a decayed MCParticle
 
TList * m_histoList_MCParticles = nullptr
 list of histograms for MCParticles
 
TList * m_histoList_RecoTracks = nullptr
 list of histograms for RecoTracks
 
TList * m_histoList_Tracks = nullptr
 list of histograms for Tracks
 
TList * m_histoList_Efficiencies = nullptr
 list of histograms of efficiencies
 
TList * m_histoList_GA = nullptr
 list of histograms of geometric acceptance
 
TList * m_histoList_check = nullptr
 list of histograms of MCParticle mother and daughters
 
TH1F * m_h1_MC_dau0_d0 = nullptr
 list of histograms filled per MCParticle found in the event More...
 
TH1F * m_h1_MC_dau0_z0 = nullptr
 histogram of MCParticle daughter 0's z0
 
TH1F * m_h1_MC_dau0_RMother = nullptr
 histogram of MCParticle daughter 0's RMother
 
TH3F * m_h3_MC_dau0 = nullptr
 histogram of MCParticle daughter 0's pt vs theta vs phi
 
TH1F * m_h1_MC_dau0_pt = nullptr
 histogram of MCParticle daughter 0's pt
 
TH1F * m_h1_MC_dau0_pz = nullptr
 histogram of MCParticle daughter 0's pz
 
TH1F * m_h1_MC_dau0_p = nullptr
 histogram of MCParticle daughter 0's p
 
TH1F * m_h1_MC_dau0_phi = nullptr
 histogram of MCParticle daughter 0's phi
 
TH1F * m_h1_MC_dau0_phi_BW = nullptr
 histogram of MCParticle daughter 0's phi (backward region)
 
TH1F * m_h1_MC_dau0_phi_barrel = nullptr
 histogram of MCParticle daughter 0's phi (barrel region)
 
TH1F * m_h1_MC_dau0_phi_FW = nullptr
 histogram of MCParticle daughter 0's phi (forward region)
 
TH1F * m_h1_MC_dau0_theta = nullptr
 histogram of MCParticle daughter 0's theta
 
TH1F * m_h1_MC_dau0_costheta = nullptr
 histogram of MCParticle daughter 0's cos(theta)
 
TH1F * m_h1_MC_dau0_Mother_cosAngle = nullptr
 histogram of MCParticle daughter 0's and mother's cos(opening-angle)
 
TH1F * m_h1_MC_dau0_phiMother_total = nullptr
 histogram of MCParticle daughter 0's mother's phi
 
TH1F * m_h1_MC_dau0_phiMother_BW = nullptr
 histogram of MCParticle daughter 0's mother's phi (backward region)
 
TH1F * m_h1_MC_dau0_phiMother_barrel = nullptr
 histogram of MCParticle daughter 0's mother's phi (barrel region)
 
TH1F * m_h1_MC_dau0_phiMother_FW = nullptr
 histogram of MCParticle daughter 0's mother's phi (forward region)
 
TH1F * m_h1_MC_dau0_thetaMother = nullptr
 histogram of MCParticle daughter 0's mother's theta
 
TH1F * m_h1_MC_dau0_ptMother = nullptr
 histogram of MCParticle daughter 0's mother's pt
 
TH2F * m_h2_MC_dau0_2D = nullptr
 histogram of MCParticle daughter 0's pt vs theta
 
TH2F * m_h2_MC_dau0_2D_BP = nullptr
 histogram of MCParticle daughter 0's pt vs theta (beam pipe)
 
TH2F * m_h2_MC_dau0_2DMother = nullptr
 histogram of MCParticle daughter 0's mother's pt vs theta
 
TH2F * m_h2_MC_dau0_pVScostheta = nullptr
 histogram of MCParticle daughter 0's p vs cos(theta)
 
TH1F * m_h1_MC_dau0_PDG = nullptr
 histogram of MCParticle daughter 0's PDG code
 
TH1F * m_h1_MC_dau1_d0 = nullptr
 histogram of MCParticle daughter 1's d0
 
TH1F * m_h1_MC_dau1_z0 = nullptr
 histogram of MCParticle daughter 1's z0
 
TH1F * m_h1_MC_dau1_RMother = nullptr
 histogram of MCParticle daughter 1's RMother
 
TH3F * m_h3_MC_dau1 = nullptr
 histogram of MCParticle daughter 1's pt vs theta vs phi
 
TH1F * m_h1_MC_dau1_pt = nullptr
 histogram of MCParticle daughter 1's pt
 
TH1F * m_h1_MC_dau1_pz = nullptr
 histogram of MCParticle daughter 1's pz
 
TH1F * m_h1_MC_dau1_p = nullptr
 histogram of MCParticle daughter 1's p
 
TH1F * m_h1_MC_dau1_phi = nullptr
 histogram of MCParticle daughter 1's phi
 
TH1F * m_h1_MC_dau1_phi_BW = nullptr
 histogram of MCParticle daughter 1's phi (backward region)
 
TH1F * m_h1_MC_dau1_phi_barrel = nullptr
 histogram of MCParticle daughter 1's phi (barrel region)
 
TH1F * m_h1_MC_dau1_phi_FW = nullptr
 histogram of MCParticle daughter 1's phi (forward region)
 
TH1F * m_h1_MC_dau1_theta = nullptr
 histogram of MCParticle daughter 1's theta
 
TH1F * m_h1_MC_dau1_costheta = nullptr
 histogram of MCParticle daughter 1's cos(theta)
 
TH1F * m_h1_MC_dau1_Mother_cosAngle = nullptr
 histogram of MCParticle daughter 1's and mother's cos(opening-angle)
 
TH1F * m_h1_MC_dau1_phiMother_total = nullptr
 histogram of MCParticle daughter 1's mother's phi
 
TH1F * m_h1_MC_dau1_phiMother_BW = nullptr
 histogram of MCParticle daughter 1's mother's phi (backward region)
 
TH1F * m_h1_MC_dau1_phiMother_barrel = nullptr
 histogram of MCParticle daughter 1's mother's phi (barrel region)
 
TH1F * m_h1_MC_dau1_phiMother_FW = nullptr
 histogram of MCParticle daughter 1's mother's phi (forward region)
 
TH1F * m_h1_MC_dau1_thetaMother = nullptr
 histogram of MCParticle daughter 1's mother's theta
 
TH1F * m_h1_MC_dau1_ptMother = nullptr
 histogram of MCParticle daughter 1's mother's pt
 
TH2F * m_h2_MC_dau1_2D = nullptr
 histogram of MCParticle daughter 1's pt vs theta
 
TH2F * m_h2_MC_dau1_2D_BP = nullptr
 histogram of MCParticle daughter 1's pt vs theta (beam pipe)
 
TH2F * m_h2_MC_dau1_2DMother = nullptr
 histogram of MCParticle daughter 1's mother's pt vs theta
 
TH2F * m_h2_MC_dau1_pVScostheta = nullptr
 histogram of MCParticle daughter 1's p vs cos(theta)
 
TH1F * m_h1_MC_dau1_PDG = nullptr
 histogram of MCParticle daughter 1's PDG code
 
TH1F * m_h1_MC_Mother_RMother = nullptr
 histogram of MCParticle mother's RMother
 
TH3F * m_h3_MC_Mother = nullptr
 histogram of MCParticle mother's pt vs theta vs phi
 
TH1F * m_h1_MC_Mother_pt = nullptr
 histogram of MCParticle mother's pt
 
TH1F * m_h1_MC_Mother_pz = nullptr
 histogram of MCParticle mother's pz
 
TH1F * m_h1_MC_Mother_p = nullptr
 histogram of MCParticle mother's p
 
TH1F * m_h1_MC_Mother_phi = nullptr
 histogram of MCParticle mother's phi
 
TH1F * m_h1_MC_Mother_phi_BW = nullptr
 histogram of MCParticle mother's phi (backward region)
 
TH1F * m_h1_MC_Mother_phi_barrel = nullptr
 histogram of MCParticle mother's phi (barrel region)
 
TH1F * m_h1_MC_Mother_phi_FW = nullptr
 histogram of MCParticle mother's phi (forward region)
 
TH1F * m_h1_MC_Mother_theta = nullptr
 histogram of MCParticle mother's theta
 
TH1F * m_h1_MC_Mother_costheta = nullptr
 histogram of MCParticle mother's cos(theta)
 
TH2F * m_h2_MC_Mother_2D = nullptr
 histogram of MCParticle mother's pt vs theta
 
TH2F * m_h2_MC_Mother_2D_BP = nullptr
 histogram of MCParticle mother's pt vs theta (beam pipe)
 
TH2F * m_h2_MC_Mother_pVScostheta = nullptr
 histogram of MCParticle mother's p vs cos(theta)
 
TH1F * m_h1_MC_Mother_PDG = nullptr
 histogram of MCParticle mother's PDG code
 
TH1F * m_h1_track_dau0_d0 = nullptr
 list of histograms filled per Tracks/V0 found in the event More...
 
TH1F * m_h1_track_dau0_z0 = nullptr
 histogram of Track daughter 0's z0
 
TH1F * m_h1_track_dau0_RMother = nullptr
 histogram of Track daughter 0's RMother
 
TH3F * m_h3_track_dau0 = nullptr
 histogram of Track daughter 0's pt vs theta vs phi
 
TH1F * m_h1_track_dau0_pt = nullptr
 histogram of Track daughter 0's pt
 
TH1F * m_h1_track_dau0_pz = nullptr
 histogram of Track daughter 0's pz
 
TH1F * m_h1_track_dau0_p = nullptr
 histogram of Track daughter 0's p
 
TH1F * m_h1_track_dau0_phi = nullptr
 histogram of Track daughter 0's phi
 
TH1F * m_h1_track_dau0_phi_BW = nullptr
 histogram of Track daughter 0's phi (backward region)
 
TH1F * m_h1_track_dau0_phi_barrel = nullptr
 histogram of Track daughter 0's phi (barrel region)
 
TH1F * m_h1_track_dau0_phi_FW = nullptr
 histogram of Track daughter 0's phi (forward region)
 
TH1F * m_h1_track_dau0_theta = nullptr
 histogram of Track daughter 0's theta
 
TH1F * m_h1_track_dau0_costheta = nullptr
 histogram of Track daughter 0's cos(theta)
 
TH1F * m_h1_track_dau0_Mother_cosAngle = nullptr
 histogram of Track daughter 0's and mother's cos(opening-angle)
 
TH1F * m_h1_track_dau0_phiMother_total = nullptr
 histogram of Track daughter 0's mother's phi
 
TH1F * m_h1_track_dau0_phiMother_BW = nullptr
 histogram of Track daughter 0's mother's phi (backward region)
 
TH1F * m_h1_track_dau0_phiMother_barrel = nullptr
 histogram of Track daughter 0's mother's phi (barrel region)
 
TH1F * m_h1_track_dau0_phiMother_FW = nullptr
 histogram of Track daughter 0's mother's phi (forward region)
 
TH1F * m_h1_track_dau0_thetaMother = nullptr
 histogram of Track daughter 0's mother's theta
 
TH1F * m_h1_track_dau0_ptMother = nullptr
 histogram of Track daughter 0's mother's pt
 
TH2F * m_h2_track_dau0_2D = nullptr
 histogram of Track daughter 0's pt vs theta
 
TH2F * m_h2_track_dau0_2D_BP = nullptr
 histogram of Track daughter 0's pt vs theta (beam pipe)
 
TH2F * m_h2_track_dau0_2DMother = nullptr
 histogram of Track daughter 0's mother's pt vs theta
 
TH2F * m_h2_track_dau0_pVScostheta = nullptr
 histogram of Track daughter 0's p vs cos(theta)
 
TH1F * m_h1_track_dau1_d0 = nullptr
 histogram of Track daughter 1's d0
 
TH1F * m_h1_track_dau1_z0 = nullptr
 histogram of Track daughter 1's z0
 
TH1F * m_h1_track_dau1_RMother = nullptr
 histogram of Track daughter 1's RMother
 
TH3F * m_h3_track_dau1 = nullptr
 histogram of Track daughter 1's pt vs theta vs phi
 
TH1F * m_h1_track_dau1_pt = nullptr
 histogram of Track daughter 1's pt
 
TH1F * m_h1_track_dau1_pz = nullptr
 histogram of Track daughter 1's pz
 
TH1F * m_h1_track_dau1_p = nullptr
 histogram of Track daughter 1's p
 
TH1F * m_h1_track_dau1_phi = nullptr
 histogram of Track daughter 1's phi
 
TH1F * m_h1_track_dau1_phi_BW = nullptr
 histogram of Track daughter 1's phi (backward region)
 
TH1F * m_h1_track_dau1_phi_barrel = nullptr
 histogram of Track daughter 1's phi (barrel region)
 
TH1F * m_h1_track_dau1_phi_FW = nullptr
 histogram of Track daughter 1's phi (forward region)
 
TH1F * m_h1_track_dau1_theta = nullptr
 histogram of Track daughter 1's theta
 
TH1F * m_h1_track_dau1_costheta = nullptr
 histogram of Track daughter 1's cos(theta)
 
TH1F * m_h1_track_dau1_Mother_cosAngle = nullptr
 histogram of Track daughter 1's and mother's cos(opening-angle)
 
TH1F * m_h1_track_dau1_phiMother_total = nullptr
 histogram of Track daughter 1's mother's phi
 
TH1F * m_h1_track_dau1_phiMother_BW = nullptr
 histogram of Track daughter 1's mother's phi (backward region)
 
TH1F * m_h1_track_dau1_phiMother_barrel = nullptr
 histogram of Track daughter 1's mother's phi (barrel region)
 
TH1F * m_h1_track_dau1_phiMother_FW = nullptr
 histogram of Track daughter 1's mother's phi (forward region)
 
TH1F * m_h1_track_dau1_thetaMother = nullptr
 histogram of Track daughter 1's mother's theta
 
TH1F * m_h1_track_dau1_ptMother = nullptr
 histogram of Track daughter 1's mother's pt
 
TH2F * m_h2_track_dau1_2D = nullptr
 histogram of Track daughter 1's pt vs theta
 
TH2F * m_h2_track_dau1_2D_BP = nullptr
 histogram of Track daughter 1's pt vs theta (beam pipe)
 
TH2F * m_h2_track_dau1_2DMother = nullptr
 histogram of Track daughter 1's mother's pt vs theta
 
TH2F * m_h2_track_dau1_pVScostheta = nullptr
 histogram of Track daughter 1's p vs cos(theta)
 
TH1F * m_h1_V0_RMother = nullptr
 histogram of V0 mother's RMother
 
TH3F * m_h3_V0 = nullptr
 histogram of V0 mother's pt vs theta vs phi
 
TH1F * m_h1_V0_pt = nullptr
 histogram of V0 mother's pt
 
TH1F * m_h1_V0_pz = nullptr
 histogram of V0 mother's pz
 
TH1F * m_h1_V0_p = nullptr
 histogram of V0 mother's p
 
TH1F * m_h1_V0_phi = nullptr
 histogram of V0 mother's phi
 
TH1F * m_h1_V0_phi_BW = nullptr
 histogram of V0 mother's phi (backward region)
 
TH1F * m_h1_V0_phi_barrel = nullptr
 histogram of V0 mother's phi (barrel region)
 
TH1F * m_h1_V0_phi_FW = nullptr
 histogram of V0 mother's phi (forward region)
 
TH1F * m_h1_V0_theta = nullptr
 histogram of V0 mother's theta
 
TH1F * m_h1_V0_costheta = nullptr
 histogram of V0 mother's cos(theta)
 
TH2F * m_h2_V0_Mother_2D = nullptr
 histogram of V0 mother's pt vs theta
 
TH2F * m_h2_V0_Mother_2D_BP = nullptr
 histogram of V0 mother's pt vs theta (beam pipe)
 
TH2F * m_h2_V0_Mother_pVScostheta = nullptr
 histogram of V0 mother's p vs cos(theta)
 
TH1F * m_h1_RecoTrack_dau0_d0 = nullptr
 list of histograms filled per RecoTracks found in the event More...
 
TH1F * m_h1_RecoTrack_dau0_z0 = nullptr
 histogram of RecoTrack daughter 0's z0
 
TH1F * m_h1_RecoTrack_dau0_RMother = nullptr
 histogram of RecoTrack daughter 0's RMother
 
TH3F * m_h3_RecoTrack_dau0 = nullptr
 histogram of RecoTrack daughter 0's pt vs theta vs phi
 
TH1F * m_h1_RecoTrack_dau0_pt = nullptr
 histogram of RecoTrack daughter 0's pt
 
TH1F * m_h1_RecoTrack_dau0_pz = nullptr
 histogram of RecoTrack daughter 0's pz
 
TH1F * m_h1_RecoTrack_dau0_p = nullptr
 histogram of RecoTrack daughter 0's p
 
TH1F * m_h1_RecoTrack_dau0_phi = nullptr
 histogram of RecoTrack daughter 0's phi
 
TH1F * m_h1_RecoTrack_dau0_phi_BW = nullptr
 histogram of RecoTrack daughter 0's phi (backward region)
 
TH1F * m_h1_RecoTrack_dau0_phi_barrel = nullptr
 histogram of RecoTrack daughter 0's phi (barrel region)
 
TH1F * m_h1_RecoTrack_dau0_phi_FW = nullptr
 histogram of RecoTrack daughter 0's phi (forward region)
 
TH1F * m_h1_RecoTrack_dau0_theta = nullptr
 histogram of RecoTrack daughter 0's theta
 
TH1F * m_h1_RecoTrack_dau0_costheta = nullptr
 histogram of RecoTrack daughter 0's cos(theta)
 
TH1F * m_h1_RecoTrack_dau0_Mother_cosAngle = nullptr
 histogram of RecoTrack daughter 0's and mother's cos(opening-angle)
 
TH1F * m_h1_RecoTrack_dau0_phiMother_total = nullptr
 histogram of RecoTrack daughter 0's mother's phi
 
TH1F * m_h1_RecoTrack_dau0_phiMother_BW = nullptr
 histogram of RecoTrack daughter 0's mother's phi (backward region)
 
TH1F * m_h1_RecoTrack_dau0_phiMother_barrel = nullptr
 histogram of RecoTrack daughter 0's mother's phi (barrel region)
 
TH1F * m_h1_RecoTrack_dau0_phiMother_FW = nullptr
 histogram of RecoTrack daughter 0's mother's phi (forward region)
 
TH1F * m_h1_RecoTrack_dau0_thetaMother = nullptr
 histogram of RecoTrack daughter 0's mother's theta
 
TH1F * m_h1_RecoTrack_dau0_ptMother = nullptr
 histogram of RecoTrack daughter 0's mother's pt
 
TH2F * m_h2_RecoTrack_dau0_2D = nullptr
 histogram of RecoTrack daughter 0's pt vs theta
 
TH2F * m_h2_RecoTrack_dau0_2D_BP = nullptr
 histogram of RecoTrack daughter 0's pt vs theta (beam pipe)
 
TH2F * m_h2_RecoTrack_dau0_2DMother = nullptr
 histogram of RecoTrack daughter 0's mother's pt vs theta
 
TH2F * m_h2_RecoTrack_dau0_pVScostheta = nullptr
 histogram of RecoTrack daughter 0's p vs cos(theta)
 
TH1F * m_h1_RecoTrack_dau1_d0 = nullptr
 histogram of RecoTrack daughter 1's d0
 
TH1F * m_h1_RecoTrack_dau1_z0 = nullptr
 histogram of RecoTrack daughter 1's z0
 
TH1F * m_h1_RecoTrack_dau1_RMother = nullptr
 histogram of RecoTrack daughter 1's RMother
 
TH3F * m_h3_RecoTrack_dau1 = nullptr
 histogram of RecoTrack daughter 1's pt vs theta vs phi
 
TH1F * m_h1_RecoTrack_dau1_pt = nullptr
 histogram of RecoTrack daughter 1's pt
 
TH1F * m_h1_RecoTrack_dau1_pz = nullptr
 histogram of RecoTrack daughter 1's pz
 
TH1F * m_h1_RecoTrack_dau1_p = nullptr
 histogram of RecoTrack daughter 1's p
 
TH1F * m_h1_RecoTrack_dau1_phi = nullptr
 histogram of RecoTrack daughter 1's phi
 
TH1F * m_h1_RecoTrack_dau1_phi_BW = nullptr
 histogram of RecoTrack daughter 1's phi (backward region)
 
TH1F * m_h1_RecoTrack_dau1_phi_barrel = nullptr
 histogram of RecoTrack daughter 1's phi (barrel region)
 
TH1F * m_h1_RecoTrack_dau1_phi_FW = nullptr
 histogram of RecoTrack daughter 1's phi (forward region)
 
TH1F * m_h1_RecoTrack_dau1_theta = nullptr
 histogram of RecoTrack daughter 1's theta
 
TH1F * m_h1_RecoTrack_dau1_costheta = nullptr
 histogram of RecoTrack daughter 1's cos(theta)
 
TH1F * m_h1_RecoTrack_dau1_Mother_cosAngle = nullptr
 histogram of RecoTrack daughter 1's and mother's cos(opening-angle)
 
TH1F * m_h1_RecoTrack_dau1_phiMother_total = nullptr
 histogram of RecoTrack daughter 1's mother's phi
 
TH1F * m_h1_RecoTrack_dau1_phiMother_BW = nullptr
 histogram of RecoTrack daughter 1's mother's phi (backward region)
 
TH1F * m_h1_RecoTrack_dau1_phiMother_barrel = nullptr
 histogram of RecoTrack daughter 1's mother's phi (barrel region)
 
TH1F * m_h1_RecoTrack_dau1_phiMother_FW = nullptr
 histogram of RecoTrack daughter 1's mother's phi (forward region)
 
TH1F * m_h1_RecoTrack_dau1_thetaMother = nullptr
 histogram of RecoTrack daughter 1's mother's theta
 
TH1F * m_h1_RecoTrack_dau1_ptMother = nullptr
 histogram of RecoTrack daughter 1's mother's pt
 
TH2F * m_h2_RecoTrack_dau1_2D = nullptr
 histogram of RecoTrack daughter 1's pt vs theta
 
TH2F * m_h2_RecoTrack_dau1_2D_BP = nullptr
 histogram of RecoTrack daughter 1's pt vs theta (beam pipe)
 
TH2F * m_h2_RecoTrack_dau1_2DMother = nullptr
 histogram of RecoTrack daughter 1's mother's pt vs theta
 
TH2F * m_h2_RecoTrack_dau1_pVScostheta = nullptr
 histogram of RecoTrack daughter 1's p vs cos(theta)
 
TH1F * m_h1_RecoTrack_Mother_RMother = nullptr
 histogram of RecoTrack mother's RMother
 
TH3F * m_h3_RecoTrack_Mother = nullptr
 histogram of RecoTrack mother's pt vs theta vs phi
 
TH1F * m_h1_RecoTrack_Mother_pt = nullptr
 histogram of RecoTrack mother's pt
 
TH1F * m_h1_RecoTrack_Mother_pz = nullptr
 histogram of RecoTrack mother's pz
 
TH1F * m_h1_RecoTrack_Mother_p = nullptr
 histogram of RecoTrack mother's p
 
TH1F * m_h1_RecoTrack_Mother_phi = nullptr
 histogram of RecoTrack mother's phi
 
TH1F * m_h1_RecoTrack_Mother_phi_BW = nullptr
 histogram of RecoTrack mother's phi (backward region)
 
TH1F * m_h1_RecoTrack_Mother_phi_barrel = nullptr
 histogram of RecoTrack mother's phi (barrel region)
 
TH1F * m_h1_RecoTrack_Mother_phi_FW = nullptr
 histogram of RecoTrack mother's phi (forward region)
 
TH1F * m_h1_RecoTrack_Mother_theta = nullptr
 histogram of RecoTrack mother's theta
 
TH1F * m_h1_RecoTrack_Mother_costheta = nullptr
 histogram of RecoTrack mother's cos(theta)
 
TH2F * m_h2_RecoTrack_Mother_2D = nullptr
 histogram of RecoTrack mother's pt vs theta
 
TH2F * m_h2_RecoTrack_Mother_2D_BP = nullptr
 histogram of RecoTrack mother's pt vs theta (beam pipe)
 
TH2F * m_h2_RecoTrack_Mother_pVScostheta = nullptr
 histogram of RecoTrack mother's p vs cos(theta)
 
std::string m_name
 The name of the module, saved as a string (user-modifiable)
 
std::string m_type
 The type of the module, saved as a string.
 
std::string m_package
 Package this module is found in (may be empty).
 
std::string m_description
 The description of the module.
 
unsigned int m_propertyFlags
 The properties of the module as bitwise or (with |) of EModulePropFlags.
 
LogConfig m_logConfig
 The log system configuration of the module.
 
ModuleParamList m_moduleParamList
 List storing and managing all parameter of the module.
 
bool m_hasReturnValue
 True, if the return value is set.
 
int m_returnValue
 The return value.
 
std::vector< ModuleConditionm_conditions
 Module condition, only non-null if set.
 
TList * m_histoList = nullptr
 List of performance-evaluation histograms.
 
TList * m_histoList_multiplicity = nullptr
 List of multiplicity histograms.
 
TList * m_histoList_evtCharacterization = nullptr
 List of event-characterization histograms.
 
TList * m_histoList_trkQuality = nullptr
 List of track-quality histograms.
 
TList * m_histoList_firstHit = nullptr
 List of first-hit-position histograms.
 
TList * m_histoList_pr = nullptr
 List of pattern-recognition histograms.
 
TList * m_histoList_fit = nullptr
 List of track-fit histograms.
 
TList * m_histoList_efficiency = nullptr
 List of efficiency histograms.
 
TList * m_histoList_purity = nullptr
 List of purity histograms.
 
TList * m_histoList_others = nullptr
 List of other performance-evaluation histograms.
 
std::string m_rootFileName
 root file name
 
TFile * m_rootFilePtr = nullptr
 pointer at root file used for storing histograms
 

Detailed Description

This module takes the MCParticles, the RecoTracks and Tracks/V0 in input and produce a root file containing various histograms showing the efficiencies (as a function of different variables) of the V0 finding module.

Efficiencies normalized to MCParticles and RecoTracks are both produced. It requires V0ValidationVertexs.

Definition at line 37 of file EffPlotsModule.h.

Member Enumeration Documentation

◆ EModulePropFlags

enum EModulePropFlags
inherited

Each module can be tagged with property flags, which indicate certain features of the module.

Enumerator
c_Input 

This module is an input module (reads data).

c_Output 

This module is an output module (writes data).

c_ParallelProcessingCertified 

This module can be run in parallel processing mode safely (All I/O must be done through the data store, in particular, the module must not write any files.)

c_HistogramManager 

This module is used to manage histograms accumulated by other modules.

c_InternalSerializer 

This module is an internal serializer/deserializer for parallel processing.

c_TerminateInAllProcesses 

When using parallel processing, call this module's terminate() function in all processes().

This will also ensure that there is exactly one process (single-core if no parallel modules found) or at least one input, one main and one output process.

c_DontCollectStatistics 

No statistics is collected for this module.

Definition at line 77 of file Module.h.

Member Function Documentation

◆ clone()

std::shared_ptr< PathElement > clone ( ) const
overridevirtualinherited

Create an independent copy of this module.

Note that parameters are shared, so changing them on a cloned module will also affect the original module.

Implements PathElement.

Definition at line 179 of file Module.cc.

◆ createHistogram2D()

TH2F * createHistogram2D ( const char *  name,
const char *  title,
Int_t  nbinsX,
Double_t  minX,
Double_t  maxX,
const char *  titleX,
Int_t  nbinsY,
Double_t  minY,
Double_t  maxY,
const char *  titleY,
TList *  histoList = nullptr 
)
inherited

Create a 2D histogram and add it to the TList of 2D-histograms.

Create 2D histogram

Definition at line 56 of file PerformanceEvaluationBaseClass.cc.

61 {
62 
63  TH2F* h = new TH2F(name, title, nbinsX, minX, maxX, nbinsY, minY, maxY);
64 
65  h->GetXaxis()->SetTitle(titleX);
66  h->GetYaxis()->SetTitle(titleY);
67 
68  if (histoList)
69  histoList->Add(h);
70 
71  return h;
72 }

◆ def_endRun()

virtual void def_endRun ( )
inlineprotectedvirtualinherited

This method can receive that the current run ends as a call from the Python side.

For regular C++-Modules that forwards the call to the regular endRun() method.

Reimplemented in PyModule.

Definition at line 439 of file Module.h.

◆ def_initialize()

virtual void def_initialize ( )
inlineprotectedvirtualinherited

Wrappers to make the methods without "def_" prefix callable from Python.

Overridden in PyModule. Wrapper method for the virtual function initialize() that has the implementation to be used in a call from Python.

Reimplemented in PyModule.

Definition at line 420 of file Module.h.

◆ evalCondition()

bool evalCondition ( ) const
inherited

If at least one condition was set, it is evaluated and true returned if at least one condition returns true.

If no condition or result value was defined, the method returns false. Otherwise, the condition is evaluated and true returned, if at least one condition returns true. To speed up the evaluation, the condition strings were already parsed in the method if_value().

Returns
True if at least one condition and return value exists and at least one condition expression was evaluated to true.

Definition at line 96 of file Module.cc.

◆ getAfterConditionPath()

Module::EAfterConditionPath getAfterConditionPath ( ) const
inherited

What to do after the conditional path is finished.

(defaults to c_End if no condition is set)

Definition at line 133 of file Module.cc.

◆ getConditionPath()

std::shared_ptr< Path > getConditionPath ( ) const
inherited

Returns the path of the last true condition (if there is at least one, else reaturn a null pointer).


Definition at line 113 of file Module.cc.

◆ getFileNames()

virtual std::vector<std::string> getFileNames ( bool  outputFiles)
inlinevirtualinherited

Return a list of output filenames for this modules.

This will be called when basf2 is run with "--dry-run" if the module has set either the c_Input or c_Output properties.

If the parameter outputFiles is false (for modules with c_Input) the list of input filenames should be returned (if any). If outputFiles is true (for modules with c_Output) the list of output files should be returned (if any).

If a module has sat both properties this member is called twice, once for each property.

The module should return the actual list of requested input or produced output filenames (including handling of input/output overrides) so that the grid system can handle input/output files correctly.

This function should return the same value when called multiple times. This is especially important when taking the input/output overrides from Environment as they get consumed when obtained so the finalized list of output files should be stored for subsequent calls.

Reimplemented in RootOutputModule, StorageRootOutputModule, and RootInputModule.

Definition at line 134 of file Module.h.

◆ getName()

const std::string& getName ( ) const
inlineinherited

Returns the name of the module.

This can be changed via e.g. set_name() in the steering file to give more useful names if there is more than one module of the same type.

For identifying the type of a module, using getType() (or type() in Python) is recommended.

Definition at line 187 of file Module.h.

◆ getParamInfoListPython()

std::shared_ptr< boost::python::list > getParamInfoListPython ( ) const
inherited

Returns a python list of all parameters.

Each item in the list consists of the name of the parameter, a string describing its type, a python list of all default values and the description of the parameter.

Returns
A python list containing the parameters of this parameter list.

Definition at line 279 of file Module.cc.

◆ getReturnValue()

int getReturnValue ( ) const
inlineinherited

Return the return value set by this module.

This value is only meaningful if hasReturnValue() is true

Definition at line 381 of file Module.h.

◆ getType()

const std::string & getType ( ) const
inherited

Returns the type of the module (i.e.

class name minus 'Module')

Definition at line 41 of file Module.cc.

◆ hasProperties()

bool hasProperties ( unsigned int  propertyFlags) const
inherited

Returns true if all specified property flags are available in this module.

Parameters
propertyFlagsOred EModulePropFlags which should be compared with the module flags.

Definition at line 160 of file Module.cc.

◆ if_false()

void if_false ( const std::shared_ptr< Path > &  path,
EAfterConditionPath  afterConditionPath = EAfterConditionPath::c_End 
)
inherited

A simplified version to add a condition to the module.

Please note that successive calls of this function will add more than one condition to the module. If more than one condition results in true, only the last of them will be used.

Please be careful: Avoid creating cyclic paths, e.g. by linking a condition to a path which is processed before the path where this module is located in.

It is equivalent to the if_value() method, using the expression "<1". This method is meant to be used together with the setReturnValue(bool value) method.

Parameters
pathShared pointer to the Path which will be executed if the return value is false.
afterConditionPathWhat to do after executing 'path'.

Definition at line 85 of file Module.cc.

◆ if_true()

void if_true ( const std::shared_ptr< Path > &  path,
EAfterConditionPath  afterConditionPath = EAfterConditionPath::c_End 
)
inherited

A simplified version to set the condition of the module.

Please note that successive calls of this function will add more than one condition to the module. If more than one condition results in true, only the last of them will be used.

Please be careful: Avoid creating cyclic paths, e.g. by linking a condition to a path which is processed before the path where this module is located in.

It is equivalent to the if_value() method, using the expression ">=1". This method is meant to be used together with the setReturnValue(bool value) method.

Parameters
pathShared pointer to the Path which will be executed if the return value is true.
afterConditionPathWhat to do after executing 'path'.

Definition at line 90 of file Module.cc.

◆ if_value()

void if_value ( const std::string &  expression,
const std::shared_ptr< Path > &  path,
EAfterConditionPath  afterConditionPath = EAfterConditionPath::c_End 
)
inherited

Add a condition to the module.

Please note that successive calls of this function will add more than one condition to the module. If more than one condition results in true, only the last of them will be used.

See https://confluence.desy.de/display/BI/Software+ModCondTut or ModuleCondition for a description of the syntax.

Please be careful: Avoid creating cyclic paths, e.g. by linking a condition to a path which is processed before the path where this module is located in.

Parameters
expressionThe expression of the condition.
pathShared pointer to the Path which will be executed if the condition is evaluated to true.
afterConditionPathWhat to do after executing 'path'.

Definition at line 79 of file Module.cc.

◆ setDescription()

void setDescription ( const std::string &  description)
protectedinherited

Sets the description of the module.

Parameters
descriptionA description of the module.

Definition at line 214 of file Module.cc.

◆ setLogInfo()

void setLogInfo ( int  logLevel,
unsigned int  logInfo 
)
inherited

Configure the printed log information for the given level.

Parameters
logLevelThe log level (one of LogConfig::ELogLevel)
logInfoWhat kind of info should be printed? ORed combination of LogConfig::ELogInfo flags.

Definition at line 73 of file Module.cc.

◆ setName()

void setName ( const std::string &  name)
inlineinherited

Set the name of the module.

Note
The module name is set when using the REG_MODULE macro, but the module can be renamed before calling process() using the set_name() function in your steering file.
Parameters
nameThe name of the module

Definition at line 214 of file Module.h.

◆ setParamPython()

void setParamPython ( const std::string &  name,
const boost::python::object &  pyObj 
)
privateinherited

Implements a method for setting boost::python objects.

The method supports the following types: list, dict, int, double, string, bool The conversion of the python object to the C++ type and the final storage of the parameter value is done in the ModuleParam class.

Parameters
nameThe unique name of the parameter.
pyObjThe object which should be converted and stored as the parameter value.

Definition at line 234 of file Module.cc.

◆ setParamPythonDict()

void setParamPythonDict ( const boost::python::dict &  dictionary)
privateinherited

Implements a method for reading the parameter values from a boost::python dictionary.

The key of the dictionary has to be the name of the parameter and the value has to be of one of the supported parameter types.

Parameters
dictionaryThe python dictionary from which the parameter values are read.

Definition at line 249 of file Module.cc.

◆ setPropertyFlags()

void setPropertyFlags ( unsigned int  propertyFlags)
inherited

Sets the flags for the module properties.

Parameters
propertyFlagsbitwise OR of EModulePropFlags

Definition at line 208 of file Module.cc.

◆ setReturnValue() [1/2]

void setReturnValue ( bool  value)
protectedinherited

Sets the return value for this module as bool.

The bool value is saved as an integer with the convention 1 meaning true and 0 meaning false. The value can be used in the steering file to divide the analysis chain into several paths.

Parameters
valueThe value of the return value.

Definition at line 227 of file Module.cc.

◆ setReturnValue() [2/2]

void setReturnValue ( int  value)
protectedinherited

Sets the return value for this module as integer.

The value can be used in the steering file to divide the analysis chain into several paths.

Parameters
valueThe value of the return value.

Definition at line 220 of file Module.cc.

◆ setType()

void setType ( const std::string &  type)
protectedinherited

Set the module type.

Only for use by internal modules (which don't use the normal REG_MODULE mechanism).

Definition at line 48 of file Module.cc.

Member Data Documentation

◆ m_h1_MC_dau0_d0

TH1F* m_h1_MC_dau0_d0 = nullptr
private

list of histograms filled per MCParticle found in the event

histogram of MCParticle daughter 0's d0

Definition at line 112 of file EffPlotsModule.h.

◆ m_h1_RecoTrack_dau0_d0

TH1F* m_h1_RecoTrack_dau0_d0 = nullptr
private

list of histograms filled per RecoTracks found in the event

histogram of RecoTrack daughter 0's d0

Definition at line 247 of file EffPlotsModule.h.

◆ m_h1_track_dau0_d0

TH1F* m_h1_track_dau0_d0 = nullptr
private

list of histograms filled per Tracks/V0 found in the event

histogram of Track daughter 0's d0

Definition at line 181 of file EffPlotsModule.h.

◆ m_MCParticlesName

std::string m_MCParticlesName
private

user-defined parameters

name of the MCParticles dataobjects collection

Definition at line 88 of file EffPlotsModule.h.


The documentation for this class was generated from the following files: