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LArShapeSubsetCnv_p1 Class Reference

#include <LArShapeSubsetCnv_p1.h>

Inheritance diagram for LArShapeSubsetCnv_p1:
Collaboration diagram for LArShapeSubsetCnv_p1:

Public Types

using base_class = TPConverterConstBase
typedef TRANS Trans_t
typedef PERS Pers_t
typedef PERS PersBase_t
typedef TRANS TransBase_t
typedef ITPConverterFor< TRANS > PolyCnvBase_t
typedef Gaudi::PluginService::Factory< ITPCnvBase *()> Factory

Public Member Functions

 LArShapeSubsetCnv_p1 ()
virtual void persToTrans (const LArShapePersType1 *persObj, LArShapeTransType1 *transObj, MsgStream &log) const override
virtual void transToPers (const LArShapeTransType1 *transObj, LArShapePersType1 *persObj, MsgStream &log) const override
virtual void transToPers (const TRANS *transObj, PERS *persObj, MsgStream &log) const=0
 Convert transient representation to persistent one.
virtual void transToPers (const TRANS *transObj, PERS *persObj, MsgStream &log) override final
 Convert transient representation to persistent one.
virtual void persToTrans (const PERS *persObj, TRANS *transObj, MsgStream &log) const=0
 Convert persistent representation to transient one.
virtual void persToTrans (const PERS *persObj, TRANS *transObj, MsgStream &log) override final
 Convert persistent representation to transient one.
virtual TRANS * createTransientConst (const PERS *persObj, MsgStream &log) const
virtual PERScreatePersistentConst (const TRANS *transObj, MsgStream &log) const
virtual TPObjRef virt_toPersistent (const TRANS *trans, MsgStream &log)
 Internal interface method that is used to invoke the real conversion method (toPersistent_impl) in the derived converter.
virtual TPObjRef virt_toPersistentWithKey (const TRANS *trans, const std::string &key, MsgStream &log)
 Internal interface method that is used to invoke the real conversion method (toPersistent_impl) in the derived converter.
virtual void pstoreToTrans (unsigned index, TRANS *trans, MsgStream &log)
 Convert persistent representation stored in the storage vector of the top-level object to transient.
virtual TRANS * createTransient (const PERS *persObj, MsgStream &log)
 Create transient representation of a persistent object.
virtual TRANS * createTransientWithKey (const PERS *persObj, const std::string &key, MsgStream &log)
 Create transient representation of a persistent object, with SG key.
virtual TRANS * virt_createTransFromPStore (unsigned index, MsgStream &log)
 Internal interface method that is used to invoke the real conversion method (createTransient)
virtual TRANS * virt_createTransFromPStoreWithKey (unsigned index, const std::string &key, MsgStream &log)
 Internal interface method that is used to invoke the real conversion method (createTransient)
virtual void persToTransWithKey (const PERS *persObj, TRANS *transObj, const std::string &, MsgStream &log)
 Convert persistent representation to transient one.
virtual void transToPersWithKey (const TRANS *transObj, PERS *persObj, const std::string &, MsgStream &log)
 Convert transient representation to persistent one.
virtual void persToTransUntyped (const void *pers, void *trans, MsgStream &log)
 Convert persistent object representation to transient.
virtual void transToPersUntyped (const void *trans, void *pers, MsgStream &log)
 Convert transient object representation to persistent.
virtual void persToTransWithKeyUntyped (const void *pers, void *trans, const std::string &key, MsgStream &log)
 Convert persistent object representation to transient.
virtual void transToPersWithKeyUntyped (const void *trans, void *pers, const std::string &key, MsgStream &log)
 Convert transient object representation to persistent.
virtual PERScreatePersistent (const TRANS *transObj, MsgStream &log)
 Create persistent representation of a transient object.
virtual PERScreatePersistentWithKey (const TRANS *transObj, const std::string &key, MsgStream &log)
 Create persistent representation of a transient object, with SG key.
TPObjRef toPersistentWithKey_impl (const TRANS *trans, const std::string &key, MsgStream &log)
 Convert transient object to persistent representation.
virtual const std::type_info & transientTInfo () const
 return C++ type id of the transient class this converter is for
virtual const std::type_info & persistentTInfo () const
 return C++ type id of the persistent class this converter is for
void setPStorage (std::vector< PERS > *storage)
 Tell this converter which storage vector it should use to store or retrieve persistent representations.
void setRecursive (bool flag=true)
 Tell the converter if it should work in recursive mode slower but it can safely handle recursion.
void ignoreRecursion (bool flag=false)
 Tell the converter to ignore recursion (do not throw errors) even when recurion is detected.
virtual void reservePStorage (size_t size)
 Reserve 'size' elements for persistent storage.
template<class CNV>
CNV * converterForType (CNV *cnv, const std::type_info &t_info, MsgStream &log) const
 Find converter for a given C++ type ID, that is or ihnerits from CNV type.
template<class CNV>
CNV * converterForRef (CNV *cnv, const TPObjRef &ref, MsgStream &log) const
 Find converter for a TP type ID (passed in a TP Ref), that is or ihnerits from CNV type.
template<class CNV>
TPObjRef baseToPersistent (CNV **cnv, const typename CNV::Trans_t *transObj, MsgStream &log) const
 Persistify bass class of a given object and store the persistent represenation in the storage vector of the top-level persistent object.
template<class CNV>
TPObjRef toPersistent (CNV **cnv, const typename CNV::TransBase_t *transObj, MsgStream &log) const
 Persistify an object and store the persistent represenation in the storage vector of the top-level persistent object.
template<class CNV, class TRANS_T>
void fillTransFromPStore (CNV **cnv, const TPObjRef &ref, TRANS_T *trans, MsgStream &log) const
 Convert persistent object, stored in the the top-level persistent object and referenced by the TP Ref, to transient representation.
template<class CNV>
CNV::Trans_t * createTransFromPStore (CNV **cnv, const TPObjRef &ref, MsgStream &log) const
 Create transient representation of a persistent object, stored in the the top-level persistent object and referenced by the TP Ref.
virtual void initPrivateConverters (TopLevelTPCnvBase *)
virtual TopLevelTPCnvBasetopConverter ()
 return the top-level converter for this elemental TP converter
virtual const TopLevelTPCnvBasetopConverter () const
 return the top-level converter for this elemental TP converter
const std::type_info & transBaseTInfo () const
 return C++ type id of the common base transient type for all converters for a group of polymorphic types
virtual const TPObjRef::typeID_ttypeID () const
 Return TP typeID for persistent objects produced by this converter.
unsigned typeIDvalue () const
 inlined non-virtual version to get the typeID value fast
virtual void setRuntimeTopConverter (TopLevelTPCnvBase *topConverter)
 Set runtime top-level converter - usually it is the owning TL converter, but in case of extended objects it will be the TL converter of the extended object.
virtual void setTopConverter (TopLevelTPCnvBase *topConverter, const TPObjRef::typeID_t &TPtypeID)
 Set which top-level converter owns this elemental converter, and what TPtypeID was assigned to the persistent objects it produces.
void setReadingFlag ()
void clearReadingFlag ()
bool wasUsedForReading ()
virtual void converterNotFound (const std::type_info &converterType, ITPConverter *c, const std::string &typeName, MsgStream &log) const
 method called when the right TP converter was not found during writing
virtual void converterNotFound (unsigned typeID, ITPConverter *c, const std::string &typeName, MsgStream &log) const
 method called when the right TP converter was not found during reading

Protected Attributes

std::vector< PERS > * m_pStorage
 the address of the storage vector for persistent representations
int m_curRecLevel
 count recursive invocations, to detect recursion
bool m_recursive
 if true, work in recursion-safe way (slower)
bool m_ignoreRecursion
 if true, do not throw errors in case of recursion.
TPObjRef::typeID_t m_pStorageTID
 TP Ref typeID for the persistent objects this converter is creating.
unsigned m_pStorageTIDvalue
 m_pStorageTID converted to integer value
TopLevelTPCnvBasem_topConverter
 top level converter that owns this elemental TP converter it also holds the storage object
TopLevelTPCnvBasem_topConverterRuntime
 top level converter "owning" this TP converter at runtime (different from m_topConverter in case the top-level converter and object have extensions)
bool m_wasUsedForReading
 flag set when using this converter for reading triggers search for a new converter before writing, to prevent possible use of old version

Detailed Description

Definition at line 18 of file LArShapeSubsetCnv_p1.h.

Member Typedef Documentation

◆ base_class

template<class TRANS, class PERS>
using TPConverterConstBase< TRANS, PERS >::base_class = TPConverterConstBase
inherited

Definition at line 779 of file TPConverter.h.

◆ Factory

typedef Gaudi::PluginService::Factory<ITPCnvBase*()> ITPCnvBase::Factory
inherited

Definition at line 26 of file ITPCnvBase.h.

◆ Pers_t

typedef PERS TPAbstractPolyCnvBase< TRANS, TRANS, PERS >::Pers_t
inherited

Definition at line 335 of file TPConverter.h.

◆ PersBase_t

typedef PERS TPAbstractPolyCnvBase< TRANS, TRANS, PERS >::PersBase_t
inherited

Definition at line 336 of file TPConverter.h.

◆ PolyCnvBase_t

template<class TRANS>
typedef ITPConverterFor< TRANS > ITPConverterFor< TRANS >::PolyCnvBase_t
inherited

Definition at line 41 of file TPConverter.h.

◆ Trans_t

typedef TRANS TPAbstractPolyCnvBase< TRANS, TRANS, PERS >::Trans_t
inherited

Definition at line 334 of file TPConverter.h.

◆ TransBase_t

template<class TRANS>
typedef TRANS ITPConverterFor< TRANS >::TransBase_t
inherited

Definition at line 39 of file TPConverter.h.

Constructor & Destructor Documentation

◆ LArShapeSubsetCnv_p1()

LArShapeSubsetCnv_p1::LArShapeSubsetCnv_p1 ( )
inline

Definition at line 25 of file LArShapeSubsetCnv_p1.h.

25{}

Member Function Documentation

◆ baseToPersistent()

template<class TRANS>
template<class CNV>
TPObjRef ITPConverterFor< TRANS >::baseToPersistent ( CNV ** cnv,
const typename CNV::Trans_t * transObj,
MsgStream & log ) const
inlineinherited

Persistify bass class of a given object and store the persistent represenation in the storage vector of the top-level persistent object.

The converter is located using the transient type from the CNV parameter, not from the object itself (because we need the base type, not the actual type)

Parameters
cnv[IN/OUT] type of this parameter decides which converter will be used. Once the converter is found, this pointer will be set so the search is done only once
transObj[IN] transient object
log[IN] output message stream
Returns
TPObjRef TP reference to the persistent representation stored in the storage vector of the top-level persistent object

Definition at line 97 of file TPConverter.h.

97 {
98 if( !*cnv || (*cnv)->wasUsedForReading() ) {
99 // don't trust the converter if it was used for reading, find again
100 *cnv = converterForType( *cnv, typeid(typename CNV::Trans_t), log );
101 if( !*cnv ) return TPObjRef();
102 (*cnv)->clearReadingFlag();
103 }
104// return (**cnv).toPersistent_impl(transObj, log);
105 return (**cnv).virt_toPersistent(transObj, log);
106 }
Common base class for all TP converters, specialized for a given transient type.
Definition TPConverter.h:37
CNV * converterForType(CNV *cnv, const std::type_info &t_info, MsgStream &log) const
Find converter for a given C++ type ID, that is or ihnerits from CNV type.
Definition TPConverter.h:58
bool wasUsedForReading()

◆ clearReadingFlag()

template<class TRANS>
void ITPConverterFor< TRANS >::clearReadingFlag ( )
inlineinherited

Definition at line 235 of file TPConverter.h.

235{ m_wasUsedForReading = false; }
bool m_wasUsedForReading
flag set when using this converter for reading triggers search for a new converter before writing,...

◆ converterForRef()

template<class TRANS>
template<class CNV>
CNV * ITPConverterFor< TRANS >::converterForRef ( CNV * cnv,
const TPObjRef & ref,
MsgStream & log ) const
inlineinherited

Find converter for a TP type ID (passed in a TP Ref), that is or ihnerits from CNV type.

Parameters
cnv[IN] parameter specifying the converter type
ref[IN] TP Ref to an object for which a converter is sought
log[IN] output message stream
Returns
CNV* pointer to the converter, if found

Definition at line 74 of file TPConverter.h.

74 {
75 ITPConverter *c = m_topConverterRuntime->converterForRef( ref );
76 cnv = dynamic_cast<CNV*>(c);
77 if( !cnv )
78 this->converterNotFound( ref.typeID(), c, typeid(CNV).name(), log );
79 return cnv;
80 }
TopLevelTPCnvBase * m_topConverterRuntime
top level converter "owning" this TP converter at runtime (different from m_topConverter in case the ...
virtual const TPObjRef::typeID_t & typeID() const
Return TP typeID for persistent objects produced by this converter.
virtual void converterNotFound(const std::type_info &converterType, ITPConverter *c, const std::string &typeName, MsgStream &log) const
method called when the right TP converter was not found during writing

◆ converterForType()

template<class TRANS>
template<class CNV>
CNV * ITPConverterFor< TRANS >::converterForType ( CNV * cnv,
const std::type_info & t_info,
MsgStream & log ) const
inlineinherited

Find converter for a given C++ type ID, that is or ihnerits from CNV type.

Parameters
cnv[IN] parameter specifying the converter type
t_info[IN] C++ type id for which a converter is sought
log[IN] output message stream
Returns
CNV* pointer to the converter, if found

Definition at line 58 of file TPConverter.h.

58 {
59 ITPConverter *c = m_topConverterRuntime->converterForType( t_info );
60 cnv = dynamic_cast< CNV* >( c );
61 if( !cnv )
62 this->converterNotFound( typeid(CNV), c, t_info.name(), log );
63 return cnv;
64 }

◆ converterNotFound() [1/2]

void ITPConverter::converterNotFound ( const std::type_info & converterType,
ITPConverter * c,
const std::string & typeName,
MsgStream & log ) const
virtualinherited

method called when the right TP converter was not found during writing

  • useful as a debugging hook, prints a detailed error message
Parameters
converterType[IN] converterType that was requested
c[IN] converter that was actually found (0 if not)
typeName[IN] the C++ type name of the type for which converter was searched for
log[IN] output message stream

Definition at line 22 of file ITPConverter.cxx.

26{
27 log << MSG::ERROR << ">>>>>> in parent TP converter " << typeid(*this).name()
28 << ": could not find matching TP converter for type " << typeName << endmsg;
29 if( c ) {
30 log << MSG::ERROR << " - found incompatible converter of type "
31 << typeid(*c).name() << endmsg;
32 }
33 log << MSG::ERROR << " Converter handle type was " << converterType.name() << endmsg;
35}
#define endmsg
static void errorHandler()

◆ converterNotFound() [2/2]

void ITPConverter::converterNotFound ( unsigned typeID,
ITPConverter * c,
const std::string & typeName,
MsgStream & log ) const
virtualinherited

method called when the right TP converter was not found during reading

  • useful as a debugging hook, prints a detailed error message
Parameters
typeID[IN] converter ID that was requested
c[IN] converter that was actually found (0 if not)
typeName[IN] the C++ type name of the type for which converter was searched for
log[IN] output message stream

Definition at line 40 of file ITPConverter.cxx.

44{
45 log << MSG::ERROR << ">>>>>> in parent TP converter " << typeid(*this).name()
46 << " requested TP converter for TP type ID " << typeID << " not found " << endmsg;
47 if( c ) {
48 log << MSG::ERROR << " - found converter " << typeid(*c).name()
49 << " for " << c->transientTInfo().name()
50 << " with an incompatible base type " << c->transBaseTInfo().name()
51 << endmsg;
52 }
53 log << MSG::ERROR << " Converter handle type was " << reqCnvTypeName << endmsg;
55}
virtual const TPObjRef::typeID_t & typeID() const =0
Return TP typeID for persistent objects produced by this converter.

◆ createPersistent()

virtual PERS * TPAbstractPolyCnvBase< TRANS, TRANS, PERS >::createPersistent ( const TRANS * transObj,
MsgStream & log )
virtualinherited

Create persistent representation of a transient object.

Simply creates a new persistent object and calls transToPers()

Parameters
transObj[IN] transient object
log[IN] output message stream
Returns
the created persistent representation

◆ createPersistentConst()

template<class TRANS, class PERS>
virtual PERS * TPConverterConstBase< TRANS, PERS >::createPersistentConst ( const TRANS * transObj,
MsgStream & log ) const
virtualinherited

◆ createPersistentWithKey()

virtual PERS * TPAbstractPolyCnvBase< TRANS, TRANS, PERS >::createPersistentWithKey ( const TRANS * transObj,
const std::string & key,
MsgStream & log )
virtualinherited

Create persistent representation of a transient object, with SG key.

Simply creates a new persistent object and calls transToPersWithKey()

Parameters
transObj[IN] transient object
key[IN] SG key of object being written
log[IN] output message stream
Returns
the created persistent representation

◆ createTransFromPStore()

template<class TRANS>
template<class CNV>
CNV::Trans_t * ITPConverterFor< TRANS >::createTransFromPStore ( CNV ** cnv,
const TPObjRef & ref,
MsgStream & log ) const
inlineinherited

Create transient representation of a persistent object, stored in the the top-level persistent object and referenced by the TP Ref.

If a TP converter is not specified, it will be found based on the Ref type.

Parameters
cnv[IN][OUT] pointer to the converter, usually 0 at the start. Once the right converter is found, this pointer will be set so the search is done only once
ref[IN] TP Ref to the persistent object to be converted
log[IN] output message stream
Returns
pointer to the created transient represention

Definition at line 172 of file TPConverter.h.

172 {
173 if( ref.isNull() ) return 0;
174 CNV *temp_cnv_p = 0;
175 if( !cnv ) cnv = &temp_cnv_p;
176 // see if we already have a converter and if it is the right one
177 if( !*cnv || (*cnv)->typeID().value() != ref.typeID() ) {
178 // we don't - find the right converter for ref.typeID()
179 *cnv = converterForRef( *cnv, ref, log );
180 if( !*cnv ) return 0;
181 (*cnv)->setReadingFlag();
182 }
183 return (**cnv).virt_createTransFromPStore( ref.index(), log );
184 }
CNV * converterForRef(CNV *cnv, const TPObjRef &ref, MsgStream &log) const
Find converter for a TP type ID (passed in a TP Ref), that is or ihnerits from CNV type.
Definition TPConverter.h:74
virtual TRANS * virt_createTransFromPStore(unsigned index, MsgStream &log)=0
Internal interface method that is used to invoke the real conversion method (createTransient) in the ...
unsigned value() const
Returns the type ID as an integer.
Definition TPObjRef.h:46

◆ createTransient()

virtual TRANS * TPPolyCnvBase< TRANS, TRANS, PERS >::createTransient ( const PERS * persObj,
MsgStream & log )
virtualinherited

Create transient representation of a persistent object.

Simply creates a new transient object and calls persToTrans()

Parameters
persObj[IN] persistent object
log[IN] output message stream
Returns
the created transient object

◆ createTransientConst()

template<class TRANS, class PERS>
virtual TRANS * TPConverterConstBase< TRANS, PERS >::createTransientConst ( const PERS * persObj,
MsgStream & log ) const
virtualinherited

◆ createTransientWithKey()

virtual TRANS * TPPolyCnvBase< TRANS, TRANS, PERS >::createTransientWithKey ( const PERS * persObj,
const std::string & key,
MsgStream & log )
virtualinherited

Create transient representation of a persistent object, with SG key.

Simply creates a new transient object and calls persToTransWithKey()

Parameters
persObj[IN] persistent object
key[IN] SG key of object being read
log[IN] output message stream
Returns
the created transient object

◆ fillTransFromPStore()

template<class TRANS>
template<class CNV, class TRANS_T>
void ITPConverterFor< TRANS >::fillTransFromPStore ( CNV ** cnv,
const TPObjRef & ref,
TRANS_T * trans,
MsgStream & log ) const
inlineinherited

Convert persistent object, stored in the the top-level persistent object and referenced by the TP Ref, to transient representation.

An empty transient object to be filled in is provided. If converter is not given, it will be found based on the Ref type.

Parameters
cnv[IN][OUT] pointer to the converter, usually 0 at the start. Once the right converter is found, this pointer will be set so the search is done only once
ref[IN] TP Ref to the persistent object to be converted
trans[IN] pointer to the empty transient object
log[IN] output message stream

Definition at line 145 of file TPConverter.h.

145 {
146 if( ref.isNull() ) return;
147 CNV *temp_cnv_p = 0;
148 if( !cnv ) cnv = &temp_cnv_p;
149 // see if we already have a converter and if it is the right one
150 if( !*cnv || (*cnv)->typeID().value() != ref.typeID() ) {
151 // we don't - find the right converter for ref.typeID()
152 *cnv = converterForRef( *cnv, ref, log );
153 if( !*cnv ) return;
154 (*cnv)->setReadingFlag();
155 }
156 (**cnv).pstoreToTrans( ref.index(), trans, log );
157 }
virtual void pstoreToTrans(unsigned index, TransBase_t *transObj, MsgStream &log)=0
Internal interface method that is used to invoke the real conversion method (persToTrans) in the deri...

◆ ignoreRecursion()

void TPAbstractPolyCnvBase< TRANS, TRANS, PERS >::ignoreRecursion ( bool flag = false)
inlineinherited

Tell the converter to ignore recursion (do not throw errors) even when recurion is detected.

UNSAFE! use only if you are sure you preallocated enough persistent storage

Definition at line 568 of file TPConverter.h.

568 {
570 }
The most basic TP converter template which is parametrized by transient and persistent types.

◆ initPrivateConverters()

◆ persistentTInfo()

virtual const std::type_info & TPAbstractPolyCnvBase< TRANS, TRANS, PERS >::persistentTInfo ( ) const
inlinevirtualinherited

return C++ type id of the persistent class this converter is for

Returns
std::type_info&

Implements ITPCnvBase.

Definition at line 482 of file TPConverter.h.

482{ return typeid(PERS); }

◆ persToTrans() [1/3]

void LArShapeSubsetCnv_p1::persToTrans ( const LArShapePersType1 * persObj,
LArShapeTransType1 * transObj,
MsgStream & log ) const
overridevirtual

Definition at line 9 of file LArShapeSubsetCnv_p1.cxx.

12{
13 transObj->initialize (persObj->m_subset.m_febIds, persObj->m_subset.m_gain);
14
15 // Copy conditions
16 unsigned int nfebids = persObj->m_subset.m_febIds.size();
17 unsigned int nShapes = persObj->m_vShapeSize;
18 unsigned int nShapeDers = persObj->m_vShapeDerSize;
19 unsigned int shapeIndex = 0;
20 unsigned int shapederIndex = 0;
21 const unsigned int nChannelsPerFeb = persObj->m_subset.subsetSize();
22 // Loop over febs
23 unsigned int ifebWithData = 0; // counter for febs with data
24
25 auto subsetIt = transObj->subsetBegin();
26 for (unsigned int i = 0; i < nfebids; ++i, ++subsetIt){
27 // Set febid
28 unsigned int febid = subsetIt->first;
29
30 bool hasSparseData = false;
31 unsigned int chansSet = 0;
32 unsigned int chansOffset = 0;
33 if (ifebWithData+1 < persObj->m_subset.m_febsWithSparseData.size() &&
34 febid == persObj->m_subset.m_febsWithSparseData[ifebWithData]) {
35 // Found feb with sparse data
36 hasSparseData = true;
37 ifebWithData++;
38 chansSet = persObj->m_subset.m_febsWithSparseData[ifebWithData];
39 chansOffset = 0;
40 ifebWithData++;
41 }
42
43 // Loop over channels in feb - only some channels are filled
44 for (unsigned int j = 0; j < nChannelsPerFeb; ++j){
45
46 bool copyChannel = true;
47 if (hasSparseData) {
48 // coverity[bad_shift]
49 // coverity[integer_overflow]
50 if (!(chansSet & (1 << (j - chansOffset)))) {
51 // Channel is missing data - skip
52 copyChannel = false;
53 }
54 if (j%32 == 31 && j < nChannelsPerFeb-2) {
55 chansSet = persObj->m_subset.m_febsWithSparseData[ifebWithData];
56 chansOffset += 32;
57 ifebWithData++;
58 }
59 }
60 if (copyChannel) {
61
62 // Channel has shapes - loop over shapes per channel
63 // and copy to the persistent object
64
65 // check indexes
66 if (shapeIndex >= persObj->m_vShape.size() ||
67 shapederIndex >= persObj->m_vShapeDer.size()) {
68 log << MSG::ERROR
69 << "LArShapeSubsetCnv_p1::persToTrans - shape index too large: shape/size, shapeder/size "
70 << shapeIndex << " " << persObj->m_vShape.size() << " "
71 << shapederIndex << " " << persObj->m_vShapeDer.size()
72 << endmsg;
73 return;
74 }
75
76 // This channel has shapes, resize vectors
77 subsetIt->second[j].m_vShape.resize(nShapes);
78 subsetIt->second[j].m_vShapeDer.resize(nShapeDers);
79
80 for (unsigned int k = 0; k < persObj->m_vShapeSize; ++k){
81 subsetIt->second[j].m_vShape[k] = persObj->m_vShape[shapeIndex];
82 shapeIndex++;
83 }
84 // Loop over shapeders per channel
85 for (unsigned int k = 0; k < persObj->m_vShapeDerSize; ++k){
86 subsetIt->second[j].m_vShapeDer[k] = persObj->m_vShapeDer[shapederIndex];
87 shapederIndex++;
88 }
89 }
90
91// static unsigned int nch1 = 0;
92// ++nch1;
93// std::cout << "persToTrans - i, j, copy " << i << " " << j << " "
94// << copyChannel << " " << (chansSet & (1 << (j + chansOffset))) << " "
95// << (chansSet & (1 << (j - chansOffset))) << " "
96// << nch1
97// << " hasSparseData " << hasSparseData
98// << " chansSet, chansOffset, ifebWithData " << std::hex
99// << chansSet << std::dec << " " << chansOffset << " " << ifebWithData
100// << " febids " << febid
101// << std::endl;
102
103 }
104 }
105
106 // Copy corrections
107 unsigned int ncorrs = persObj->m_subset.m_corrChannels.size();
109
110 if (ncorrs) {
111 // corrs exist - resize vector
112 std::vector<float> vShape(nShapes,0.0);
113 std::vector<float> vShapeDer(nShapeDers,0.0);
114 LArShapeP1 larShapeP1(vShape, vShapeDer);
115
116 corrs.resize(ncorrs, LArShapeTransType1::CorrectionPair(0, larShapeP1));
117 }
118
119 // Loop over corrections
120 for (unsigned int i = 0; i < ncorrs; ++i){
121 // check indexes
122 if (shapeIndex >= persObj->m_vShape.size() ||
123 shapederIndex >= persObj->m_vShapeDer.size()) {
124 log << MSG::ERROR
125 << "LArShapeSubsetCnv_p1::persToTrans - shape index too large: shape/size, shapeder/size "
126 << shapeIndex << " " << persObj->m_vShape.size() << " "
127 << shapederIndex << " " << persObj->m_vShapeDer.size()
128 << endmsg;
129 return;
130 }
131 corrs[i].first = persObj->m_subset.m_corrChannels[i];
132 // Loop over shapes per channel
133 for (unsigned int k = 0; k < persObj->m_vShapeSize; ++k){
134 corrs[i].second.m_vShape[k] = persObj->m_vShape[shapeIndex];
135 shapeIndex++;
136 }
137 // Loop over shapeders per channel
138 for (unsigned int k = 0; k < persObj->m_vShapeDerSize; ++k){
139 corrs[i].second.m_vShapeDer[k] = persObj->m_vShapeDer[shapederIndex];
140 shapederIndex++;
141 }
142 }
143 transObj->insertCorrections (std::move (corrs));
144
145 // Copy the rest
146 transObj->setChannel (persObj->m_subset.m_channel);
147 transObj->setGroupingType (persObj->m_subset.m_groupingType);
148}
std::vector< unsigned int > m_febIds
std::vector< unsigned int > m_corrChannels
unsigned int subsetSize() const
std::vector< unsigned int > m_febsWithSparseData
std::pair< ChannelId, LArShapeP1 > CorrectionPair
void initialize(const std::vector< FebId > &ids, unsigned int gain)
Initialize with set of FEB ids.
void setGroupingType(unsigned int type)
set the type of grouping - defined in LArConditionsContainerBase.h
ConstSubsetIt subsetBegin() const
Iterators over subset.
std::vector< CorrectionPair > CorrectionVec
void insertCorrections(CorrectionVec &&corrs)
Insert a group of corrections.
void setChannel(unsigned int channel)
set the COOL channel number
unsigned int m_vShapeDerSize
std::vector< float > m_vShape
unsigned int m_vShapeSize
std::vector< float > m_vShapeDer
LArConditionsSubset_p1 m_subset

◆ persToTrans() [2/3]

virtual void TPConverterConstBase< TRANS, PERS >::persToTrans ( const PERS * persObj,
TRANS * transObj,
MsgStream & log ) const
virtual

Convert persistent representation to transient one.

Copies data members from persistent object to an existing transient one. Needs to be implemented by the developer on the actual converter.

Parameters
persObj[IN] persistent object
transObj[IN] transient object
log[IN] output message stream

Implements TPConverterConstBase< TRANS, PERS >.

◆ persToTrans() [3/3]

virtual void TPConverterConstBase< TRANS, PERS >::persToTrans ( const PERS * persObj,
TRANS * transObj,
MsgStream & log )
inlinefinaloverridevirtual

Convert persistent representation to transient one.

Copies data members from persistent object to an existing transient one. Needs to be implemented by the developer on the actual converter.

Parameters
persObj[IN] persistent object
transObj[IN] transient object
log[IN] output message stream

Reimplemented from TPConverterConstBase< TRANS, PERS >.

Definition at line 807 of file TPConverter.h.

810 {
811 return const_cast<const TPConverterConstBase*>(this)->persToTrans (persObj, transObj, log);
812 }
virtual void persToTrans(const LArShapePersType1 *persObj, LArShapeTransType1 *transObj, MsgStream &log) const override

◆ persToTransUntyped()

virtual void TPAbstractPolyCnvBase< TRANS, TRANS, PERS >::persToTransUntyped ( const void * pers,
void * trans,
MsgStream & log )
inlinevirtualinherited

Convert persistent object representation to transient.

Parameters
pers[IN] void* pointer to the persistent object
trans[OUT] void* pointer to the empty transient object
log[IN] output message stream

Implements ITPCnvBase.

Definition at line 400 of file TPConverter.h.

403 {
404 persToTrans (reinterpret_cast<const PERS*> (pers),
405 reinterpret_cast<TRANS*> (trans),
406 log);
407 }
virtual void persToTrans(const PERS *persObj, TRANS *transObj, MsgStream &log)=0

◆ persToTransWithKey()

virtual void TPAbstractPolyCnvBase< TRANS, TRANS, PERS >::persToTransWithKey ( const PERS * persObj,
TRANS * transObj,
const std::string & ,
MsgStream & log )
inlinevirtualinherited

Convert persistent representation to transient one.

Copies data members from persistent object to an existing transient one. Needs to be implemented by the developer on the actual converter.

Parameters
persObj[IN] persistent object
transObj[IN] transient object
log[IN] output message stream

Reimplemented in AthExParticlesCnv_p1, CaloCellContainerCnv_p1, CaloCellLinkContainerCnv_p1, CaloCellLinkContainerCnv_p2, CaloClusterCellLinkContainerCnv_p1, TPConverterWithKeyBase< TRANS, PERS >, and xAODTauJetAuxContainerCnv_v2.

Definition at line 376 of file TPConverter.h.

379 {
380 return persToTrans (persObj, transObj, log);
381 }

◆ persToTransWithKeyUntyped()

virtual void TPAbstractPolyCnvBase< TRANS, TRANS, PERS >::persToTransWithKeyUntyped ( const void * pers,
void * trans,
const std::string & key,
MsgStream & log )
inlinevirtualinherited

Convert persistent object representation to transient.

Parameters
pers[IN] void* pointer to the persistent object
trans[OUT] void* pointer to the empty transient object
key[IN] SG key of object being read.
log[IN] output message stream

Reimplemented from ITPCnvBase.

Definition at line 420 of file TPConverter.h.

424 {
425 persToTransWithKey (reinterpret_cast<const PERS*> (pers),
426 reinterpret_cast<TRANS*> (trans),
427 key,
428 log);
429 }
virtual void persToTransWithKey(const PERS *persObj, TRANS *transObj, const std::string &, MsgStream &log)

◆ pstoreToTrans()

template<class TRANS, class PERS>
virtual void TPConverterBase< TRANS, PERS >::pstoreToTrans ( unsigned index,
TRANS * trans,
MsgStream & log )
inlinevirtualinherited

Convert persistent representation stored in the storage vector of the top-level object to transient.

Internal.

Parameters
index[IN] index of the persistent representation in the storage vector
trans[IN] empty transient object
log[IN] output message stream

Reimplemented from TPAbstractPolyCnvBase< TRANS, TRANS, PERS >.

Definition at line 760 of file TPConverter.h.

760 {
762 this->persToTrans( &(*this->m_pStorage)[index], trans, log );
763 }
TP Converter template for a "regular" type.

◆ reservePStorage()

virtual void TPAbstractPolyCnvBase< TRANS, TRANS, PERS >::reservePStorage ( size_t size)
inlinevirtualinherited

Reserve 'size' elements for persistent storage.

Implements ITPConverter.

Definition at line 573 of file TPConverter.h.

573 {
574 m_pStorage->reserve( size );
575 }

◆ setPStorage()

void TPAbstractPolyCnvBase< TRANS, TRANS, PERS >::setPStorage ( std::vector< PERS > * storage)
inlineinherited

Tell this converter which storage vector it should use to store or retrieve persistent representations.

Parameters
storage[IN] the address of the storage vector

Definition at line 551 of file TPConverter.h.

◆ setReadingFlag()

template<class TRANS>
void ITPConverterFor< TRANS >::setReadingFlag ( )
inlineinherited

Definition at line 234 of file TPConverter.h.

234{ m_wasUsedForReading = true; }

◆ setRecursive()

void TPAbstractPolyCnvBase< TRANS, TRANS, PERS >::setRecursive ( bool flag = true)
inlineinherited

Tell the converter if it should work in recursive mode slower but it can safely handle recursion.

Definition at line 559 of file TPConverter.h.

◆ setRuntimeTopConverter()

template<class TRANS>
virtual void ITPConverterFor< TRANS >::setRuntimeTopConverter ( TopLevelTPCnvBase * topConverter)
inlinevirtualinherited

Set runtime top-level converter - usually it is the owning TL converter, but in case of extended objects it will be the TL converter of the extended object.

Parameters
topConverter[IN] runtime top-level converter for this converter

Implements ITPConverter.

Definition at line 215 of file TPConverter.h.

215 {
218 }
virtual void initPrivateConverters(TopLevelTPCnvBase *)
virtual TopLevelTPCnvBase * topConverter()
return the top-level converter for this elemental TP converter

◆ setTopConverter()

template<class TRANS>
virtual void ITPConverterFor< TRANS >::setTopConverter ( TopLevelTPCnvBase * topConverter,
const TPObjRef::typeID_t & TPtypeID )
inlinevirtualinherited

Set which top-level converter owns this elemental converter, and what TPtypeID was assigned to the persistent objects it produces.

Parameters
topConverter[IN] the top-level converter owning this converter
TPtypeID[IN] TP type id for persistent objects (used in TP refs)

Implements ITPConverter.

Definition at line 221 of file TPConverter.h.

223 {
228 }
unsigned m_pStorageTIDvalue
m_pStorageTID converted to integer value
TPObjRef::typeID_t m_pStorageTID
TP Ref typeID for the persistent objects this converter is creating.
TopLevelTPCnvBase * m_topConverter
top level converter that owns this elemental TP converter it also holds the storage object

◆ topConverter() [1/2]

template<class TRANS>
virtual TopLevelTPCnvBase * ITPConverterFor< TRANS >::topConverter ( )
inlinevirtualinherited

return the top-level converter for this elemental TP converter

Returns
TopLevelTPCnvBas

Reimplemented from ITPConverter.

Definition at line 191 of file TPConverter.h.

191 {
192 return m_topConverter;
193 }

◆ topConverter() [2/2]

template<class TRANS>
virtual const TopLevelTPCnvBase * ITPConverterFor< TRANS >::topConverter ( ) const
inlinevirtualinherited

return the top-level converter for this elemental TP converter

Returns
TopLevelTPCnvBas

Reimplemented from ITPConverter.

Definition at line 196 of file TPConverter.h.

196 {
197 return m_topConverter;
198 }

◆ toPersistent()

template<class TRANS>
template<class CNV>
TPObjRef ITPConverterFor< TRANS >::toPersistent ( CNV ** cnv,
const typename CNV::TransBase_t * transObj,
MsgStream & log ) const
inlineinherited

Persistify an object and store the persistent represenation in the storage vector of the top-level persistent object.

The correct converter is located using the actual object type.

Parameters
cnv[IN/OUT] pointer to the converter, usually 0 at the start. Once the right converter is found, this pointer will be set so the search is done only once
transObj[IN] transient object
log[IN] output message stream
Returns
TPObjRef TP reference to the persistent representation stored in the storage vector of the top-level persistent object

Definition at line 119 of file TPConverter.h.

119 {
120 if( !transObj ) return TPObjRef();
121 CNV *temp_cnv_p = 0;
122 if( !cnv ) cnv = &temp_cnv_p;
123 if( !*cnv || (*cnv)->wasUsedForReading() ) {
124 // don't trust the converter if it was used for reading, find again
125 *cnv = converterForType( *cnv, typeid(*transObj), log );
126 if( !*cnv ) return TPObjRef();
127 (*cnv)->clearReadingFlag();
128 }
129 return (**cnv).virt_toPersistent(transObj, log);
130 }
virtual TPObjRef virt_toPersistent(const TransBase_t *trans, MsgStream &log)=0
Internal interface method that is used to invoke the real conversion method (toPersistent_impl) in th...

◆ toPersistentWithKey_impl()

TPObjRef TPAbstractPolyCnvBase< TRANS, TRANS, PERS >::toPersistentWithKey_impl ( const TRANS * trans,
const std::string & key,
MsgStream & log )
inherited

Convert transient object to persistent representation.

Stores the result in the storage vector of the top-level object and returns a TP Ref to it.

Parameters
trans[IN] transient object
key[IN] SG key of object being converted
log[IN] output message stream
Returns
TP reference to the persistent representation

◆ transBaseTInfo()

template<class TRANS>
const std::type_info & ITPConverterFor< TRANS >::transBaseTInfo ( ) const
inlinevirtualinherited

return C++ type id of the common base transient type for all converters for a group of polymorphic types

Returns
std::type_info& this method is not overwritten in the subclasses like transientTInfo()

Implements ITPConverter.

Definition at line 205 of file TPConverter.h.

205{ return typeid(TRANS); }

◆ transientTInfo()

virtual const std::type_info & TPAbstractPolyCnvBase< TRANS, TRANS, PERS >::transientTInfo ( ) const
inlinevirtualinherited

return C++ type id of the transient class this converter is for

Returns
std::type_info&

Reimplemented from ITPConverterFor< TRANS >.

Definition at line 479 of file TPConverter.h.

479{ return typeid(TRANS); }

◆ transToPers() [1/3]

void LArShapeSubsetCnv_p1::transToPers ( const LArShapeTransType1 * transObj,
LArShapePersType1 * persObj,
MsgStream & log ) const
overridevirtual

Definition at line 154 of file LArShapeSubsetCnv_p1.cxx.

157{
158 // Copy conditions
159
160 // We copy all shapes into a single vector and the same for
161 // shaperDers.
162 // For the conditions, there are two situations to treat:
163 // 1) dense data: normal conditions where each feb has 128
164 // channels and all channels have data,
165 // 2) sparse data: conditions data where some channels are
166 // missing data. This is true for MC conditions (only some
167 // channels have data, and symmetry is used to obtain
168 // conditions for the rest of the channels), as well for
169 // 'normal' conditions it may happen that some channels may
170 // be missing data.
171 //
172 // Treating 1) is straight-forward. For 2) we need to keep track
173 // of which channels are present. We do so with
174 // m_subset.m_febsWithSparseData where we store the febid followed by
175 // four unsigned ints which contain the full bit pattern of the
176 // channels set (i.e. bits 0-127).
177 //
178 // Note that one may also have a subset with all channels missing
179 // data. In this case, we do not write out the empty subset.
180 //
181 // Finally, for corrections, we save the channel ids in
182 // m_subset.m_corrChannels and the shapes and shapeders in the
183 // same vectors as the rest of the conditions data.
184 //
185 // For each channel with data, the number of shapes and shape
186 // derivatives is assumed constant. This is calculated at the
187 // beginning, along with whether a feb is sparse or not.
188 //
189
190 // Get the number of channels, corrections and the size of shape and shapeder
191 unsigned int nsubsetsNotEmpty = 0;
192 unsigned int ncorrs = transObj->correctionVecSize();
193 unsigned int nchans = 0;
194 unsigned int nShapes = 0;
195 unsigned int nShapeDers = 0;
196 bool foundNShapes = false;
197 std::vector<unsigned int> febsWithSparseData;
198 const unsigned int nChannelsPerFeb = transObj->channelVectorSize();
199 // Find the number of shapes/shapeders and check for sparse
200 // conditions, e.g. MC conditions
201 const auto subsetEnd = transObj->subsetEnd();
202 for (auto subsetIt = transObj->subsetBegin();
203 subsetIt != subsetEnd;
204 ++subsetIt)
205 {
206 unsigned int nfebChans = subsetIt->second.size();
207
208 if (nfebChans != 0 && nfebChans != nChannelsPerFeb) {
209 log << MSG::ERROR
210 << "LArShapeSubsetCnv_p1::transToPers - found incorrect number of channels per feb: " << nfebChans
211 << endmsg;
212 return;
213 }
214 if (nfebChans) ++nsubsetsNotEmpty; // count number of non-empty subsets
215
216 // Loop over channels and check if this subset has sparse data
217 bool subsetIsSparse = false;
218 for (unsigned int j = 0; j < nfebChans; ++j) {
219 const LArShapeP1& shape = subsetIt->second[j];
220 if (shape.m_vShape.size() == 0) {
221 if (!subsetIsSparse) {
222 // save febids for sparse subsets
223 subsetIsSparse = true;
224 febsWithSparseData.push_back(subsetIt->first);
225 }
226 }
227 else {
228 nchans++; // count number of channels
229 if (!foundNShapes) {
230 // Save the number of shapes and derivatives from first channels present
231 nShapes = shape.m_vShape.size();
232 nShapeDers = shape.m_vShapeDer.size();
233 foundNShapes = true;
234 }
235 }
236 }
237 }
238 if (!foundNShapes && ncorrs > 0) {
239 // Save the number of shapes and derivatives from first
240 // correct - couldn't find it from channels
241 const LArShapeP1& shape = transObj->correctionVecBegin()->second;
242 nShapes = shape.m_vShape.size();
243 nShapeDers = shape.m_vShapeDer.size();
244 }
245 if (nShapes == 0 && nShapeDers == 0) {
246 log << MSG::ERROR
247 << "LArShapeSubsetCnv_p1::transToPers - cannot get number of shapes and shape derivatives"
248 << endmsg;
249 return;
250 }
251
252 // Save sizes
253 persObj->m_vShapeSize = nShapes;
254 persObj->m_vShapeDerSize = nShapeDers;
255
256 // Reserve space in vectors
257 persObj->m_subset.m_febIds.reserve(nsubsetsNotEmpty);
258 persObj->m_subset.m_corrChannels.reserve(ncorrs);
259 unsigned int nShapesTot = (nchans + ncorrs)*nShapes;
260 unsigned int nShapeDersTot = (nchans + ncorrs)*nShapeDers;
261 persObj->m_vShape.reserve(nShapesTot);
262 persObj->m_vShapeDer.reserve(nShapeDersTot);
263
264 // For subsets with sparse data, reserve space for identifying
265 // channels written out:
266 // 1 - febid
267 // 4 - for 128 bits (4*32)
268 if (febsWithSparseData.size())
269 persObj->m_subset.m_febsWithSparseData.reserve(febsWithSparseData.size()*5);
270
271 // Copy conditions in subset
272 unsigned int isparse = 0;
273 for (auto subsetIt = transObj->subsetBegin();
274 subsetIt != subsetEnd;
275 ++subsetIt)
276 {
277 unsigned int nfebChans = subsetIt->second.size();
278
279 // skip subsets without any channels
280 if (nfebChans == 0) continue;
281
282 unsigned int febid = subsetIt->first;
283 persObj->m_subset.m_febIds.push_back(febid);
284
285
286 bool isSparse = false;
287 if (isparse < febsWithSparseData.size() &&
288 febsWithSparseData[isparse] == febid) {
289 // sparse subset, save channels with data
290 isparse++;
291 isSparse = true;
292 // save febid
293 persObj->m_subset.m_febsWithSparseData.push_back(febid);
294 }
295
296 // Now loop over channels and save shapes/shapeders and
297 // channel number
298 unsigned int chansSet = 0;
299 unsigned int chansOffset = 0;
300 for (unsigned int j = 0; j < nfebChans; ++j){
301
302 bool saveShapes = true;
303 if (isSparse) {
304 // subset with sparse data
305
306 if (subsetIt->second[j].m_vShape.size() > 0) {
307 // store the channel number in bit map
308 assert (j >= chansOffset && (j - chansOffset) <= 31);
309 // coverity[integer_overflow]
310 chansSet |= (1 << (j - chansOffset));
311 }
312 else {
313 saveShapes = false;
314 }
315 // Save chansSet
316 if (j == (chansOffset + 31) || j == nfebChans-1) {
317 persObj->m_subset.m_febsWithSparseData.push_back(chansSet);
318 chansSet = 0;
319 chansOffset += 32;
320 }
321 }
322 if (saveShapes) {
323 // save shapes
324 for (unsigned int k = 0; k < nShapes; ++k){
325 persObj->m_vShape.push_back(subsetIt->second[j].m_vShape[k]);
326 }
327 // save shapeders
328 for (unsigned int k = 0; k < nShapeDers; ++k){
329 persObj->m_vShapeDer.push_back(subsetIt->second[j].m_vShapeDer[k]);
330 }
331 }
332
333// static unsigned int nch = 0;
334// ++nch;
335// std::cout << "transToPers - i, j, save " << i << " " << j << " "
336// << saveShapes << " " << nch << " febid " << febid
337// << " chansSet " << std::hex << chansSet << std::dec
338// << " chansOffset " << chansOffset
339// << std::endl;
340
341 }
342 }
343
344 // Copy corrections
345 const auto corrEnd = transObj->correctionVecEnd();
346 for (auto corrIt = transObj->correctionVecBegin();
347 corrIt != corrEnd;
348 ++corrIt)
349 {
350 // Save channel id in febid vector
351 persObj->m_subset.m_corrChannels.push_back(corrIt->first);
352 // Shapes
353 for (unsigned int k = 0; k < nShapes; ++k){
354 persObj->m_vShape.push_back(corrIt->second.m_vShape[k]);
355 }
356 // ShapeDers
357 for (unsigned int k = 0; k < nShapeDers; ++k){
358 persObj->m_vShapeDer.push_back(corrIt->second.m_vShapeDer[k]);
359 }
360 }
361
362 // Copy the rest
363 persObj->m_subset.m_gain = transObj->gain();
364 persObj->m_subset.m_channel = transObj->channel();
365 persObj->m_subset.m_groupingType = transObj->groupingType();
366}
ConstSubsetIt subsetEnd() const
unsigned channelVectorSize() const
ConstCorrectionVecIt correctionVecBegin() const
Iterators over channel set.
unsigned int groupingType() const
Type of grouping - defined in LArConditionsContainerBase.h.
ConstCorrectionVecIt correctionVecEnd() const
unsigned int gain() const
Access to gain.
size_type correctionVecSize() const
Size of channel set.
unsigned int channel() const
Access to the COOL channel number.
std::vector< float > m_vShapeDer
Definition LArShapeP1.h:25
std::vector< float > m_vShape
Definition LArShapeP1.h:24

◆ transToPers() [2/3]

virtual void TPConverterConstBase< TRANS, PERS >::transToPers ( const TRANS * transObj,
PERS * persObj,
MsgStream & log ) const
virtual

Convert transient representation to persistent one.

Copies data members from transient object to an existing persistent one. Needs to be implemented by the developer on the actual converter.

Parameters
transObj[IN] transient object
persObj[IN] persistent object
log[IN] output message stream

Implements TPConverterConstBase< TRANS, PERS >.

◆ transToPers() [3/3]

virtual void TPConverterConstBase< TRANS, PERS >::transToPers ( const TRANS * transObj,
PERS * persObj,
MsgStream & log )
inlinefinaloverridevirtual

Convert transient representation to persistent one.

Copies data members from transient object to an existing persistent one. Needs to be implemented by the developer on the actual converter.

Parameters
transObj[IN] transient object
persObj[IN] persistent object
log[IN] output message stream

Reimplemented from TPConverterConstBase< TRANS, PERS >.

Definition at line 815 of file TPConverter.h.

818 {
819 return const_cast<const TPConverterConstBase*>(this)->transToPers (transObj, persObj, log);
820 }
virtual void transToPers(const LArShapeTransType1 *transObj, LArShapePersType1 *persObj, MsgStream &log) const override

◆ transToPersUntyped()

virtual void TPAbstractPolyCnvBase< TRANS, TRANS, PERS >::transToPersUntyped ( const void * trans,
void * pers,
MsgStream & log )
inlinevirtualinherited

Convert transient object representation to persistent.

Parameters
trans[IN] void* pointer to the transient object
pers[OUT] void* pointer to the empty persistent object
log[IN] output message stream

Implements ITPCnvBase.

Definition at line 410 of file TPConverter.h.

413 {
414 transToPers (reinterpret_cast<const TRANS*> (trans),
415 reinterpret_cast<PERS*> (pers),
416 log);
417 }
virtual void transToPers(const TRANS *transObj, PERS *persObj, MsgStream &log)=0

◆ transToPersWithKey()

virtual void TPAbstractPolyCnvBase< TRANS, TRANS, PERS >::transToPersWithKey ( const TRANS * transObj,
PERS * persObj,
const std::string & ,
MsgStream & log )
inlinevirtualinherited

Convert transient representation to persistent one.

Copies data members from transient object to an existing persistent one. Needs to be implemented by the developer on the actual converter.

Parameters
transObj[IN] transient object
persObj[IN] persistent object
key[IN] SG key of object being written.
log[IN] output message stream

Reimplemented in AthExParticlesCnv_p1, CaloCellContainerCnv_p1, CaloCellLinkContainerCnv_p1, CaloCellLinkContainerCnv_p2, CaloClusterCellLinkContainerCnv_p1, TPConverterWithKeyBase< TRANS, PERS >, and xAODTauJetAuxContainerCnv_v2.

Definition at line 392 of file TPConverter.h.

395 {
396 return transToPers (transObj, persObj, log);
397 }

◆ transToPersWithKeyUntyped()

virtual void TPAbstractPolyCnvBase< TRANS, TRANS, PERS >::transToPersWithKeyUntyped ( const void * trans,
void * pers,
const std::string & key,
MsgStream & log )
inlinevirtualinherited

Convert transient object representation to persistent.

Parameters
trans[IN] void* pointer to the transient object
pers[OUT] void* pointer to the empty persistent object
key[IN] SG key of object being written.
log[IN] output message stream

Reimplemented from ITPCnvBase.

Definition at line 432 of file TPConverter.h.

436 {
437 transToPersWithKey (reinterpret_cast<const TRANS*> (trans),
438 reinterpret_cast<PERS*> (pers),
439 key,
440 log);
441 }
virtual void transToPersWithKey(const TRANS *transObj, PERS *persObj, const std::string &, MsgStream &log)

◆ typeID()

template<class TRANS>
virtual const TPObjRef::typeID_t & ITPConverterFor< TRANS >::typeID ( ) const
inlinevirtualinherited

Return TP typeID for persistent objects produced by this converter.

Returns
TPObjRef::typeID_t&

Implements ITPConverter.

Definition at line 208 of file TPConverter.h.

208{ return m_pStorageTID; }

◆ typeIDvalue()

template<class TRANS>
unsigned ITPConverterFor< TRANS >::typeIDvalue ( ) const
inlineinherited

inlined non-virtual version to get the typeID value fast

Definition at line 211 of file TPConverter.h.

211{ return m_pStorageTIDvalue; }

◆ virt_createTransFromPStore()

virtual TRANS * TPPolyCnvBase< TRANS, TRANS, PERS >::virt_createTransFromPStore ( unsigned index,
MsgStream & log )
inlinevirtualinherited

Internal interface method that is used to invoke the real conversion method (createTransient)

Parameters
index[IN] index of the persistent object in the storage vector
log[IN] output message stream
Returns
Created transient object (by pointer)

Reimplemented from TPAbstractPolyCnvBase< TRANS, TRANS, PERS >.

Definition at line 706 of file TPConverter.h.

706 {
708 return createTransient( &(*this->m_pStorage)[index], log );
709 }
Base TP converter template parametrized by transient and persistent types.
virtual TRANS * createTransient(const PERS *persObj, MsgStream &log)

◆ virt_createTransFromPStoreWithKey()

virtual TRANS * TPPolyCnvBase< TRANS, TRANS, PERS >::virt_createTransFromPStoreWithKey ( unsigned index,
const std::string & key,
MsgStream & log )
inlinevirtualinherited

Internal interface method that is used to invoke the real conversion method (createTransient)

Parameters
index[IN] index of the persistent object in the storage vector
key[IN] SG key of the object being converted
log[IN] output message stream
Returns
Created transient object (by pointer)

Reimplemented from TPAbstractPolyCnvBase< TRANS, TRANS, PERS >.

Definition at line 718 of file TPConverter.h.

721 {
723 return createTransientWithKey( &(*this->m_pStorage)[index], key, log );
724 }
virtual TRANS * createTransientWithKey(const PERS *persObj, const std::string &key, MsgStream &log)

◆ virt_toPersistent()

template<class TRANS, class PERS>
virtual TPObjRef TPConverterBase< TRANS, PERS >::virt_toPersistent ( const TRANS * trans,
MsgStream & log )
inlinevirtualinherited

Internal interface method that is used to invoke the real conversion method (toPersistent_impl) in the derived converter.

Parameters
trans[IN] transient object
log[IN] output message stream
Returns
TPObjRef TP reference to the persistent representation stored in the storage vector of the top-level persistent object Here toPersistent_impl is invoked with the dynamic cast of the transient type pointer to it's actual type

Reimplemented from TPAbstractPolyCnvBase< TRANS, TRANS, PERS >.

Definition at line 747 of file TPConverter.h.

747 {
748 return this->toPersistentWithKey_impl( trans, "", log);
749 }
TPObjRef toPersistentWithKey_impl(const TRANS *trans, const std::string &key, MsgStream &log)

◆ virt_toPersistentWithKey()

template<class TRANS, class PERS>
virtual TPObjRef TPConverterBase< TRANS, PERS >::virt_toPersistentWithKey ( const TRANS * trans,
const std::string & key,
MsgStream & log )
inlinevirtualinherited

Internal interface method that is used to invoke the real conversion method (toPersistent_impl) in the derived converter.

Parameters
trans[IN] transient object
key[IN] SG key of the object being converted.
log[IN] output message stream
Returns
TPObjRef TP reference to the persistent representation stored in the storage vector of the top-level persistent object Here toPersistentWithKey_impl is invoked with the dynamic cast of the transient type pointer to it's actual type

Reimplemented from TPAbstractPolyCnvBase< TRANS, TRANS, PERS >.

Definition at line 752 of file TPConverter.h.

755 {
756 return this->toPersistentWithKey_impl( trans, key, log);
757 }

◆ wasUsedForReading()

template<class TRANS>
bool ITPConverterFor< TRANS >::wasUsedForReading ( )
inlineinherited

Definition at line 236 of file TPConverter.h.

236{ return m_wasUsedForReading; }

Member Data Documentation

◆ m_curRecLevel

int TPAbstractPolyCnvBase< TRANS, TRANS, PERS >::m_curRecLevel
protectedinherited

count recursive invocations, to detect recursion

Definition at line 582 of file TPConverter.h.

◆ m_ignoreRecursion

bool TPAbstractPolyCnvBase< TRANS, TRANS, PERS >::m_ignoreRecursion
protectedinherited

if true, do not throw errors in case of recursion.

Definition at line 588 of file TPConverter.h.

◆ m_pStorage

std::vector< PERS >* TPAbstractPolyCnvBase< TRANS, TRANS, PERS >::m_pStorage
protectedinherited

the address of the storage vector for persistent representations

Definition at line 579 of file TPConverter.h.

◆ m_pStorageTID

template<class TRANS>
TPObjRef::typeID_t ITPConverterFor< TRANS >::m_pStorageTID
protectedinherited

TP Ref typeID for the persistent objects this converter is creating.

Definition at line 292 of file TPConverter.h.

◆ m_pStorageTIDvalue

template<class TRANS>
unsigned ITPConverterFor< TRANS >::m_pStorageTIDvalue
protectedinherited

m_pStorageTID converted to integer value

Definition at line 295 of file TPConverter.h.

◆ m_recursive

bool TPAbstractPolyCnvBase< TRANS, TRANS, PERS >::m_recursive
protectedinherited

if true, work in recursion-safe way (slower)

Definition at line 585 of file TPConverter.h.

◆ m_topConverter

template<class TRANS>
TopLevelTPCnvBase* ITPConverterFor< TRANS >::m_topConverter
protectedinherited

top level converter that owns this elemental TP converter it also holds the storage object

Definition at line 299 of file TPConverter.h.

◆ m_topConverterRuntime

template<class TRANS>
TopLevelTPCnvBase* ITPConverterFor< TRANS >::m_topConverterRuntime
protectedinherited

top level converter "owning" this TP converter at runtime (different from m_topConverter in case the top-level converter and object have extensions)

Definition at line 302 of file TPConverter.h.

◆ m_wasUsedForReading

template<class TRANS>
bool ITPConverterFor< TRANS >::m_wasUsedForReading
protectedinherited

flag set when using this converter for reading triggers search for a new converter before writing, to prevent possible use of old version

Definition at line 306 of file TPConverter.h.


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