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clingwrapper.cxx
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1// Bindings
2#include "capi.h"
3#include "cpp_cppyy.h"
4#include "callcontext.h"
5
6// ROOT
7#include "TBaseClass.h"
8#include "TClass.h"
9#include "TClassRef.h"
10#include "TClassTable.h"
11#include "TClassEdit.h"
12#include "TCollection.h"
13#include "TDataMember.h"
14#include "TDataType.h"
15#include "TEnum.h"
16#include "TEnumConstant.h"
17#include "TEnv.h"
18#include "TError.h"
19#include "TException.h"
20#include "TFunction.h"
21#include "TFunctionTemplate.h"
22#include "TGlobal.h"
23#include "THashList.h"
24#include "TInterpreter.h"
25#include "TList.h"
26#include "TListOfDataMembers.h"
27#include "TListOfEnums.h"
28#include "TMethod.h"
29#include "TMethodArg.h"
30#include "TROOT.h"
31#include "TSystem.h"
32
33// Standard
34#include <assert.h>
35#include <algorithm> // for std::count, std::remove
36#include <climits>
37#include <stdexcept>
38#include <map>
39#include <new>
40#include <set>
41#include <sstream>
42#include <signal.h>
43#include <stdlib.h> // for getenv
44#include <string.h>
45#include <typeinfo>
46
47// temp
48#include <iostream>
50// --temp
51
52
53// small number that allows use of stack for argument passing
54const int SMALL_ARGS_N = 8;
55
56// convention to pass flag for direct calls (similar to Python's vector calls)
57#define DIRECT_CALL ((size_t)1 << (8 * sizeof(size_t) - 1))
58static inline size_t CALL_NARGS(size_t nargs) {
59 return nargs & ~DIRECT_CALL;
60}
61
62// data for life time management ---------------------------------------------
63typedef std::vector<TClassRef> ClassRefs_t;
65static const ClassRefs_t::size_type GLOBAL_HANDLE = 1;
66static const ClassRefs_t::size_type STD_HANDLE = GLOBAL_HANDLE + 1;
67
68typedef std::map<std::string, ClassRefs_t::size_type> Name2ClassRefIndex_t;
70
71namespace {
72
73static inline Cppyy::TCppType_t find_memoized(const std::string& name)
74{
75 auto icr = g_name2classrefidx.find(name);
76 if (icr != g_name2classrefidx.end())
77 return (Cppyy::TCppType_t)icr->second;
78 return (Cppyy::TCppType_t)0;
79}
80
81class CallWrapper {
82public:
83 typedef const void* DeclId_t;
84
85public:
86 CallWrapper(TFunction* f) : fDecl(f->GetDeclId()), fName(f->GetName()), fTF(nullptr) {}
87 CallWrapper(DeclId_t fid, const std::string& n) : fDecl(fid), fName(n), fTF(nullptr) {}
88 ~CallWrapper() {
89 if (fTF && fDecl == fTF->GetDeclId())
90 delete fTF;
91 }
92
93public:
95 DeclId_t fDecl;
96 std::string fName;
97 TFunction* fTF;
98};
99
100}
101
102static std::vector<CallWrapper*> gWrapperHolder;
103static inline CallWrapper* new_CallWrapper(TFunction* f)
104{
105 CallWrapper* wrap = new CallWrapper(f);
106 gWrapperHolder.push_back(wrap);
107 return wrap;
108}
109
110static inline CallWrapper* new_CallWrapper(CallWrapper::DeclId_t fid, const std::string& n)
111{
112 CallWrapper* wrap = new CallWrapper(fid, n);
113 gWrapperHolder.push_back(wrap);
114 return wrap;
115}
116
117typedef std::vector<TGlobal*> GlobalVars_t;
119
120static std::set<std::string> gSTLNames;
121
122
123// data ----------------------------------------------------------------------
125
126// builtin types (including a few common STL templates as long as they live in
127// the global namespace b/c of choices upstream)
128static std::set<std::string> g_builtins =
129 {"bool", "char", "signed char", "unsigned char", "wchar_t", "short", "unsigned short",
130 "int", "unsigned int", "long", "unsigned long", "long long", "unsigned long long",
131 "float", "double", "long double", "void",
132 "allocator", "array", "basic_string", "complex", "initializer_list", "less", "list",
133 "map", "pair", "set", "vector"};
134
135// smart pointer types
136static std::set<std::string> gSmartPtrTypes =
137 {"auto_ptr", "std::auto_ptr", "shared_ptr", "std::shared_ptr",
138 "unique_ptr", "std::unique_ptr", "weak_ptr", "std::weak_ptr"};
139
140// to filter out ROOT names
141static std::set<std::string> gInitialNames;
142static std::set<std::string> gRootSOs;
143
144// configuration
145static bool gEnableFastPath = true;
146
147
148// global initialization -----------------------------------------------------
149namespace {
150
151// names copied from TUnixSystem
152#ifdef WIN32
153const int SIGBUS = 0; // simple placeholders for ones that don't exist
154const int SIGSYS = 0;
155const int SIGPIPE = 0;
156const int SIGQUIT = 0;
157const int SIGWINCH = 0;
158const int SIGALRM = 0;
159const int SIGCHLD = 0;
160const int SIGURG = 0;
161const int SIGUSR1 = 0;
162const int SIGUSR2 = 0;
163#endif
164
165static struct Signalmap_t {
166 int fCode;
167 const char *fSigName;
168} gSignalMap[kMAXSIGNALS] = { // the order of the signals should be identical
169 { SIGBUS, "bus error" }, // to the one in TSysEvtHandler.h
170 { SIGSEGV, "segmentation violation" },
171 { SIGSYS, "bad argument to system call" },
172 { SIGPIPE, "write on a pipe with no one to read it" },
173 { SIGILL, "illegal instruction" },
174 { SIGABRT, "abort" },
175 { SIGQUIT, "quit" },
176 { SIGINT, "interrupt" },
177 { SIGWINCH, "window size change" },
178 { SIGALRM, "alarm clock" },
179 { SIGCHLD, "death of a child" },
180 { SIGURG, "urgent data arrived on an I/O channel" },
181 { SIGFPE, "floating point exception" },
182 { SIGTERM, "termination signal" },
183 { SIGUSR1, "user-defined signal 1" },
184 { SIGUSR2, "user-defined signal 2" }
185};
186
187static void inline do_trace(int sig) {
188 std::cerr << " *** Break *** " << (sig < kMAXSIGNALS ? gSignalMap[sig].fSigName : "") << std::endl;
190}
191
192class TExceptionHandlerImp : public TExceptionHandler {
193public:
194 void HandleException(Int_t sig) override {
195 if (TROOT::Initialized()) {
196 if (gException) {
197 gInterpreter->RewindDictionary();
198 gInterpreter->ClearFileBusy();
199 }
200
201 if (!getenv("CPPYY_CRASH_QUIET"))
202 do_trace(sig);
203
204 // jump back, if catch point set
205 Throw(sig);
206 }
207
208 do_trace(sig);
209 gSystem->Exit(128 + sig);
210 }
211};
212
213class ApplicationStarter {
214public:
215 ApplicationStarter() {
216 // initialize ROOT early to guarantee proper order of shutdown later on (gROOT is a
217 // macro that resolves to the ROOT::GetROOT() function call)
218 (void)gROOT;
219
220 // setup dummy holders for global and std namespaces
221 assert(g_classrefs.size() == GLOBAL_HANDLE);
223 g_classrefs.push_back(TClassRef(""));
224
225 // aliases for std (setup already in pythonify)
227 g_name2classrefidx["::std"] = g_name2classrefidx["std"];
228 g_classrefs.push_back(TClassRef("std"));
229
230 // add a dummy global to refer to as null at index 0
231 g_globalvars.push_back(nullptr);
232
233 // disable fast path if requested
234 if (getenv("CPPYY_DISABLE_FASTPATH")) gEnableFastPath = false;
235
236 // fill the set of STL names
237 const char* stl_names[] = {"allocator", "auto_ptr", "bad_alloc", "bad_cast",
238 "bad_exception", "bad_typeid", "basic_filebuf", "basic_fstream", "basic_ifstream",
239 "basic_ios", "basic_iostream", "basic_istream", "basic_istringstream",
240 "basic_ofstream", "basic_ostream", "basic_ostringstream", "basic_streambuf",
241 "basic_string", "basic_stringbuf", "basic_stringstream", "binary_function",
242 "binary_negate", "bitset", "byte", "char_traits", "codecvt_byname", "codecvt", "collate",
243 "collate_byname", "compare", "complex", "ctype_byname", "ctype", "default_delete",
244 "deque", "divides", "domain_error", "equal_to", "exception", "forward_list", "fpos",
245 "function", "greater_equal", "greater", "gslice_array", "gslice", "hash", "indirect_array",
246 "integer_sequence", "invalid_argument", "ios_base", "istream_iterator", "istreambuf_iterator",
247 "istrstream", "iterator_traits", "iterator", "length_error", "less_equal", "less",
248 "list", "locale", "localedef utility", "locale utility", "logic_error", "logical_and",
249 "logical_not", "logical_or", "map", "mask_array", "mem_fun", "mem_fun_ref", "messages",
250 "messages_byname", "minus", "modulus", "money_get", "money_put", "moneypunct",
251 "moneypunct_byname", "multimap", "multiplies", "multiset", "negate", "not_equal_to",
252 "num_get", "num_put", "numeric_limits", "numpunct", "numpunct_byname",
253 "ostream_iterator", "ostreambuf_iterator", "ostrstream", "out_of_range",
254 "overflow_error", "pair", "plus", "pointer_to_binary_function",
255 "pointer_to_unary_function", "priority_queue", "queue", "range_error",
256 "raw_storage_iterator", "reverse_iterator", "runtime_error", "set", "shared_ptr",
257 "slice_array", "slice", "stack", "string", "strstream", "strstreambuf",
258 "time_get_byname", "time_get", "time_put_byname", "time_put", "unary_function",
259 "unary_negate", "unique_ptr", "underflow_error", "unordered_map", "unordered_multimap",
260 "unordered_multiset", "unordered_set", "valarray", "vector", "weak_ptr", "wstring",
261 "__hash_not_enabled"};
262 for (auto& name : stl_names)
263 gSTLNames.insert(name);
264
265 // set opt level (default to 2 if not given; Cling itself defaults to 0)
266 int optLevel = 2;
267 if (getenv("CPPYY_OPT_LEVEL")) optLevel = atoi(getenv("CPPYY_OPT_LEVEL"));
268 if (optLevel != 0) {
269 std::ostringstream s;
270 s << "#pragma cling optimize " << optLevel;
271 gInterpreter->ProcessLine(s.str().c_str());
272 }
273
274 // load frequently used headers
275 const char* code =
276 "#include <iostream>\n"
277 "#include <string>\n"
278 "#include <DllImport.h>\n" // defines R__EXTERN
279 "#include <vector>\n"
280 "#include <utility>";
281 gInterpreter->ProcessLine(code);
282
283 // create helpers for comparing thingies
284 gInterpreter->Declare(
285 "namespace __cppyy_internal { template<class C1, class C2>"
286 " bool is_equal(const C1& c1, const C2& c2) { return (bool)(c1 == c2); } }");
287 gInterpreter->Declare(
288 "namespace __cppyy_internal { template<class C1, class C2>"
289 " bool is_not_equal(const C1& c1, const C2& c2) { return (bool)(c1 != c2); } }");
290
291 // retrieve all initial (ROOT) C++ names in the global scope to allow filtering later
292 if (!getenv("CPPYY_NO_ROOT_FILTER")) {
293 gROOT->GetListOfGlobals(true); // force initialize
294 gROOT->GetListOfGlobalFunctions(true); // id.
295 std::set<std::string> initial;
297 gInitialNames = initial;
298
299#ifndef WIN32
300 gRootSOs.insert("libCore.so ");
301 gRootSOs.insert("libRIO.so ");
302 gRootSOs.insert("libThread.so ");
303 gRootSOs.insert("libMathCore.so ");
304#else
305 gRootSOs.insert("libCore.dll ");
306 gRootSOs.insert("libRIO.dll ");
307 gRootSOs.insert("libThread.dll ");
308 gRootSOs.insert("libMathCore.dll ");
309#endif
310 }
311
312 // start off with a reasonable size placeholder for wrappers
313 gWrapperHolder.reserve(1024);
314
315 // create an exception handler to process signals
316 gExceptionHandler = new TExceptionHandlerImp{};
317 }
318
319 ~ApplicationStarter() {
320 for (auto wrap : gWrapperHolder)
321 delete wrap;
322 delete gExceptionHandler; gExceptionHandler = nullptr;
323 }
324} _applicationStarter;
325
326} // unnamed namespace
327
328
329// local helpers -------------------------------------------------------------
330static inline
332{
333 assert((ClassRefs_t::size_type)scope < g_classrefs.size());
334 return g_classrefs[(ClassRefs_t::size_type)scope];
335}
336
337static inline
339 CallWrapper* wrap = ((CallWrapper*)method);
340 if (!wrap->fTF || wrap->fTF->GetDeclId() != wrap->fDecl) {
341 MethodInfo_t* mi = gInterpreter->MethodInfo_Factory(wrap->fDecl);
342 wrap->fTF = new TFunction(mi);
343 }
344 return wrap->fTF;
345}
346
347static inline
348CallWrapper::DeclId_t m2d(Cppyy::TCppMethod_t method) {
349 CallWrapper* wrap = ((CallWrapper*)method);
350 if (!wrap->fTF || wrap->fTF->GetDeclId() != wrap->fDecl) {
351 MethodInfo_t* mi = gInterpreter->MethodInfo_Factory(wrap->fDecl);
352 wrap->fTF = new TFunction(mi);
353 }
354 return wrap->fDecl;
355}
356
357static inline
358char* cppstring_to_cstring(const std::string& cppstr)
359{
360 char* cstr = (char*)malloc(cppstr.size()+1);
361 memcpy(cstr, cppstr.c_str(), cppstr.size()+1);
362 return cstr;
363}
364
365static inline
366bool match_name(const std::string& tname, const std::string fname)
367{
368// either match exactly, or match the name as template
369 if (fname.rfind(tname, 0) == 0) {
370 if ((tname.size() == fname.size()) ||
371 (tname.size() < fname.size() && fname[tname.size()] == '<'))
372 return true;
373 }
374 return false;
375}
376
377static inline
378bool is_missclassified_stl(const std::string& name)
379{
380 std::string::size_type pos = name.find('<');
381 if (pos != std::string::npos)
382 return gSTLNames.find(name.substr(0, pos)) != gSTLNames.end();
383 return gSTLNames.find(name) != gSTLNames.end();
384}
385
386
387// direct interpreter access -------------------------------------------------
388bool Cppyy::Compile(const std::string& code, bool /*silent*/)
389{
390 return gInterpreter->Declare(code.c_str());
391}
392
394{
395 if (klass && obj && !IsNamespace((TCppScope_t)klass))
396 return gInterpreter->ToString(GetScopedFinalName(klass).c_str(), (void*)obj);
397 return "";
398}
399
400
401// name to opaque C++ scope representation -----------------------------------
402std::string Cppyy::ResolveName(const std::string& cppitem_name)
403{
404// Fully resolve the given name to the final type name.
405
406// try memoized type cache, in case seen before
407 TCppType_t klass = find_memoized(cppitem_name);
408 if (klass) return GetScopedFinalName(klass);
409
410// remove global scope '::' if present
411 std::string tclean = cppitem_name.compare(0, 2, "::") == 0 ?
412 cppitem_name.substr(2, std::string::npos) : cppitem_name;
413
414// classes (most common)
415 tclean = TClassEdit::CleanType(tclean.c_str());
416 if (tclean.empty() /* unknown, eg. an operator */) return cppitem_name;
417
418// reduce [N] to []
419 if (tclean[tclean.size()-1] == ']')
420 tclean = tclean.substr(0, tclean.rfind('[')) + "[]";
421
422 if (tclean.rfind("byte", 0) == 0 || tclean.rfind("std::byte", 0) == 0)
423 return tclean;
424
425// check data types list (accept only builtins as typedefs will
426// otherwise not be resolved)
427 TDataType* dt = gROOT->GetType(tclean.c_str());
428 if (dt && dt->GetType() != kOther_t) return dt->GetFullTypeName();
429
430// special case for enums
431 if (IsEnum(cppitem_name))
432 return ResolveEnum(cppitem_name);
433
434// special case for clang's builtin __type_pack_element (which does not resolve)
435 if (cppitem_name.rfind("__type_pack_element", 0) != std::string::npos) {
436 // shape is "__type_pack_element<index,type1,type2,...,typeN>cpd": extract
437 // first the index, and from there the indexed type; finally, restore the
438 // qualifiers
439 const char* str = cppitem_name.c_str();
440 char* endptr = nullptr;
441 unsigned long index = strtoul(str+20, &endptr, 0);
442
443 std::string tmplvars{endptr};
444 auto start = tmplvars.find(',') + 1;
445 auto end = tmplvars.find(',', start);
446 while (index != 0) {
447 start = end+1;
448 end = tmplvars.find(',', start);
449 if (end == std::string::npos) end = tmplvars.rfind('>');
450 --index;
451 }
452
453 std::string resolved = tmplvars.substr(start, end-start);
454 auto cpd = tmplvars.rfind('>');
455 if (cpd != std::string::npos && cpd+1 != tmplvars.size())
456 return resolved + tmplvars.substr(cpd+1, std::string::npos);
457 return resolved;
458 }
459
460// typedefs
461 return TClassEdit::ResolveTypedef(tclean.c_str(), true);
462}
463
464static std::map<std::string, std::string> resolved_enum_types;
465std::string Cppyy::ResolveEnum(const std::string& enum_type)
466{
467// The underlying type of a an enum may be any kind of integer.
468// Resolve that type via a workaround (note: this function assumes
469// that the enum_type name is a valid enum type name)
470 auto res = resolved_enum_types.find(enum_type);
471 if (res != resolved_enum_types.end())
472 return res->second;
473
474// desugar the type before resolving
475 std::string et_short = TClassEdit::ShortType(enum_type.c_str(), 1);
476 if (et_short.find("(unnamed") == std::string::npos) {
477 std::ostringstream decl;
478 // TODO: now presumed fixed with https://sft.its.cern.ch/jira/browse/ROOT-6988
479 for (auto& itype : {"unsigned int"}) {
480 decl << "std::is_same<"
481 << itype
482 << ", std::underlying_type<"
483 << et_short
484 << ">::type>::value;";
485 if (gInterpreter->ProcessLine(decl.str().c_str())) {
486 // TODO: "re-sugaring" like this is brittle, but the top
487 // should be re-translated into AST-based code anyway
488 std::string resugared;
489 if (et_short.size() != enum_type.size()) {
490 auto pos = enum_type.find(et_short);
491 if (pos != std::string::npos) {
492 resugared = enum_type.substr(0, pos) + itype;
493 if (pos+et_short.size() < enum_type.size())
494 resugared += enum_type.substr(pos+et_short.size(), std::string::npos);
495 }
496 }
497 if (resugared.empty()) resugared = itype;
498 resolved_enum_types[enum_type] = resugared;
499 return resugared;
500 }
501 }
502 }
503
504// failed or anonymous ... signal upstream to special case this
505 int ipos = (int)enum_type.size()-1;
506 for (; 0 <= ipos; --ipos) {
507 char c = enum_type[ipos];
508 if (isspace(c)) continue;
509 if (isalnum(c) || c == '_' || c == '>' || c == ')') break;
510 }
511 bool isConst = enum_type.find("const ", 6) != std::string::npos;
512 std::string restype = isConst ? "const " : "";
513 restype += "internal_enum_type_t"+enum_type.substr((std::string::size_type)ipos+1, std::string::npos);
514 resolved_enum_types[enum_type] = restype;
515 return restype; // should default to some int variant
516}
517
518Cppyy::TCppScope_t Cppyy::GetScope(const std::string& sname)
519{
520// First, try cache
521 TCppType_t result = find_memoized(sname);
522 if (result) return result;
523
524// Second, skip builtins before going through the more expensive steps of resolving
525// typedefs and looking up TClass
526 if (g_builtins.find(sname) != g_builtins.end())
527 return (TCppScope_t)0;
528
529// TODO: scope_name should always be final already?
530// Resolve name fully before lookup to make sure all aliases point to the same scope
531 std::string scope_name = ResolveName(sname);
532 bool bHasAlias = sname != scope_name;
533 if (bHasAlias) {
534 result = find_memoized(scope_name);
535 if (result) return result;
536 }
537
538// both failed, but may be STL name that's missing 'std::' now, but didn't before
539 bool b_scope_name_missclassified = is_missclassified_stl(scope_name);
540 if (b_scope_name_missclassified) {
541 result = find_memoized("std::"+scope_name);
542 if (result) g_name2classrefidx["std::"+scope_name] = (ClassRefs_t::size_type)result;
543 }
544 bool b_sname_missclassified = bHasAlias ? is_missclassified_stl(sname) : false;
545 if (b_sname_missclassified) {
546 if (!result) result = find_memoized("std::"+sname);
547 if (result) g_name2classrefidx["std::"+sname] = (ClassRefs_t::size_type)result;
548 }
549
550 if (result) return result;
551
552// use TClass directly, to enable auto-loading; class may be stubbed (eg. for
553// function returns) or forward declared, leading to a non-null TClass that is
554// otherwise invalid/unusable
555 TClassRef cr(TClass::GetClass(scope_name.c_str(), true /* load */, true /* silent */));
556 if (!cr.GetClass())
557 return (TCppScope_t)0;
558
559// memoize found/created TClass
560 ClassRefs_t::size_type sz = g_classrefs.size();
561 g_name2classrefidx[scope_name] = sz;
562 if (bHasAlias) g_name2classrefidx[sname] = sz;
563 g_classrefs.push_back(TClassRef(scope_name.c_str()));
564
565// TODO: make ROOT/meta NOT remove std :/
566 if (b_scope_name_missclassified)
567 g_name2classrefidx["std::"+scope_name] = sz;
568 if (b_sname_missclassified)
569 g_name2classrefidx["std::"+sname] = sz;
570
571 return (TCppScope_t)sz;
572}
573
574bool Cppyy::IsTemplate(const std::string& template_name)
575{
576 return (bool)gInterpreter->CheckClassTemplate(template_name.c_str());
577}
578
579namespace {
580 class AutoCastRTTI {
581 public:
582 virtual ~AutoCastRTTI() {}
583 };
584}
585
587{
588 TClassRef& cr = type_from_handle(klass);
589 if (!cr.GetClass() || !obj) return klass;
590
591#ifdef _WIN64
592// Cling does not provide a consistent ImageBase address for calculating relative addresses
593// as used in Windows 64b RTTI. So, check for our own RTTI extension instead. If that fails,
594// see whether the unmangled raw_name is available (e.g. if this is an MSVC compiled rather
595// than JITed class) and pass on if it is.
596 volatile const char* raw = nullptr; // to prevent too aggressive reordering
597 try {
598 // this will filter those objects that do not have RTTI to begin with (throws)
599 AutoCastRTTI* pcst = (AutoCastRTTI*)obj;
600 raw = typeid(*pcst).raw_name();
601
602 // check the signature id (0 == absolute, 1 == relative, 2 == ours)
603 void* vfptr = *(void**)((intptr_t)obj);
604 void* meta = (void*)((intptr_t)*((void**)((intptr_t)vfptr-sizeof(void*))));
605 if (*(intptr_t*)meta == 2) {
606 // access the extra data item which is an absolute pointer to the RTTI
607 void* ptdescr = (void*)((intptr_t)meta + 4*sizeof(unsigned long)+sizeof(void*));
608 if (ptdescr && *(void**)ptdescr) {
609 auto rtti = *(std::type_info**)ptdescr;
610 raw = rtti->raw_name();
611 if (raw && raw[0] != '\0') // likely unnecessary
612 return (TCppType_t)GetScope(rtti->name());
613 }
614
615 return klass; // do not fall through if no RTTI info available
616 }
617
618 // if the raw name is the empty string (no guarantees that this is so as truly, the
619 // address is corrupt, but it is common to be empty), then there is no accessible RTTI
620 // and getting the unmangled name will crash ...
621 if (!raw)
622 return klass;
623 } catch (std::bad_typeid) {
624 return klass; // can't risk passing to ROOT/meta as it may do RTTI
625 }
626#endif
627
628 TClass* clActual = cr->GetActualClass((void*)obj);
629 // The additional check using TClass::GetClassInfo is to prevent returning classes of which the Interpreter has no info
630 if (clActual && clActual != cr.GetClass() && clActual->GetClassInfo()) {
631 auto itt = g_name2classrefidx.find(clActual->GetName());
632 if (itt != g_name2classrefidx.end())
633 return (TCppType_t)itt->second;
634 return (TCppType_t)GetScope(clActual->GetName());
635 }
636
637 return klass;
638}
639
641{
642 TClassRef& cr = type_from_handle(klass);
643 if (cr.GetClass() && cr->GetClassInfo())
644 return (size_t)gInterpreter->ClassInfo_Size(cr->GetClassInfo());
645 return (size_t)0;
646}
647
648size_t Cppyy::SizeOf(const std::string& type_name)
649{
650 TDataType* dt = gROOT->GetType(type_name.c_str());
651 if (dt) return dt->Size();
652 return SizeOf(GetScope(type_name));
653}
654
655bool Cppyy::IsBuiltin(const std::string& type_name)
656{
657 TDataType* dt = gROOT->GetType(TClassEdit::CleanType(type_name.c_str(), 1).c_str());
658 if (dt) return dt->GetType() != kOther_t;
659 return false;
660}
661
662bool Cppyy::IsComplete(const std::string& type_name)
663{
664// verify whether the dictionary of this class is fully available
665 bool b = false;
666
667 int oldEIL = gErrorIgnoreLevel;
668 gErrorIgnoreLevel = 3000;
669 TClass* klass = TClass::GetClass(TClassEdit::ShortType(type_name.c_str(), 1).c_str());
670 if (klass && klass->GetClassInfo()) // works for normal case w/ dict
671 b = gInterpreter->ClassInfo_IsLoaded(klass->GetClassInfo());
672 else { // special case for forward declared classes
673 ClassInfo_t* ci = gInterpreter->ClassInfo_Factory(type_name.c_str());
674 if (ci) {
675 b = gInterpreter->ClassInfo_IsLoaded(ci);
676 gInterpreter->ClassInfo_Delete(ci); // we own the fresh class info
677 }
678 }
679 gErrorIgnoreLevel = oldEIL;
680 return b;
681}
682
683// memory management ---------------------------------------------------------
685{
687 return (TCppObject_t)::operator new(gInterpreter->ClassInfo_Size(cr->GetClassInfo()));
688}
689
691{
692 ::operator delete(instance);
693}
694
696{
698 if (arena)
699 return (TCppObject_t)cr->New(arena, TClass::kRealNew);
700 return (TCppObject_t)cr->New(TClass::kRealNew);
701}
702
703static std::map<Cppyy::TCppType_t, bool> sHasOperatorDelete;
705{
708 cr->Destructor((void*)instance);
709 else {
710 ROOT::DelFunc_t fdel = cr->GetDelete();
711 if (fdel) fdel((void*)instance);
712 else {
713 auto ib = sHasOperatorDelete.find(type);
714 if (ib == sHasOperatorDelete.end()) {
715 TFunction *f = (TFunction *)cr->GetMethodAllAny("operator delete");
716 sHasOperatorDelete[type] = (bool)(f && (f->Property() & kIsPublic));
717 ib = sHasOperatorDelete.find(type);
718 }
719 ib->second ? cr->Destructor((void *)instance) : ::operator delete((void *)instance);
720 }
721 }
722}
723
724
725// method/function dispatching -----------------------------------------------
727{
728// TODO: method should be a callfunc, so that no mapping would be needed.
729 CallWrapper* wrap = (CallWrapper*)method;
730
731 CallFunc_t* callf = gInterpreter->CallFunc_Factory();
732 MethodInfo_t* meth = gInterpreter->MethodInfo_Factory(wrap->fDecl);
733 gInterpreter->CallFunc_SetFunc(callf, meth);
734 gInterpreter->MethodInfo_Delete(meth);
735
736 if (!(callf && gInterpreter->CallFunc_IsValid(callf))) {
737 // TODO: propagate this error to caller w/o use of Python C-API
738 /*
739 PyErr_Format(PyExc_RuntimeError, "could not resolve %s::%s(%s)",
740 const_cast<TClassRef&>(klass).GetClassName(),
741 wrap.fName, callString.c_str()); */
742 std::cerr << "TODO: report unresolved function error to Python\n";
743 if (callf) gInterpreter->CallFunc_Delete(callf);
745 }
746
747// generate the wrapper and JIT it; ignore wrapper generation errors (will simply
748// result in a nullptr that is reported upstream if necessary; often, however,
749// there is a different overload available that will do)
750 auto oldErrLvl = gErrorIgnoreLevel;
752 wrap->fFaceptr = gInterpreter->CallFunc_IFacePtr(callf);
753 gErrorIgnoreLevel = oldErrLvl;
754
755 gInterpreter->CallFunc_Delete(callf); // does not touch IFacePtr
756 return wrap->fFaceptr;
757}
758
759static inline
760bool copy_args(Parameter* args, size_t nargs, void** vargs)
761{
762 bool runRelease = false;
763 for (size_t i = 0; i < nargs; ++i) {
764 switch (args[i].fTypeCode) {
765 case 'X': /* (void*)type& with free */
766 runRelease = true;
767 case 'V': /* (void*)type& */
768 vargs[i] = args[i].fValue.fVoidp;
769 break;
770 case 'r': /* const type& */
771 vargs[i] = args[i].fRef;
772 break;
773 default: /* all other types in union */
774 vargs[i] = (void*)&args[i].fValue.fVoidp;
775 break;
776 }
777 }
778 return runRelease;
779}
780
781static inline
782void release_args(Parameter* args, size_t nargs) {
783 for (size_t i = 0; i < nargs; ++i) {
784 if (args[i].fTypeCode == 'X')
785 free(args[i].fValue.fVoidp);
786 }
787}
788
789static inline bool WrapperCall(Cppyy::TCppMethod_t method, size_t nargs, void* args_, void* self, void* result)
790{
791 Parameter* args = (Parameter*)args_;
792 //bool is_direct = nargs & DIRECT_CALL;
793 nargs = CALL_NARGS(nargs);
794
795 CallWrapper* wrap = (CallWrapper*)method;
796 const TInterpreter::CallFuncIFacePtr_t& faceptr = wrap->fFaceptr.fGeneric ? wrap->fFaceptr : GetCallFunc(method);
797 if (!faceptr.fGeneric)
798 return false; // happens with compilation error
799
801 bool runRelease = false;
802 if (nargs <= SMALL_ARGS_N) {
803 void* smallbuf[SMALL_ARGS_N];
804 if (nargs) runRelease = copy_args(args, nargs, smallbuf);
805 faceptr.fGeneric(self, (int)nargs, smallbuf, result);
806 } else {
807 std::vector<void*> buf(nargs);
808 runRelease = copy_args(args, nargs, buf.data());
809 faceptr.fGeneric(self, (int)nargs, buf.data(), result);
810 }
811 if (runRelease) release_args(args, nargs);
812 return true;
813 }
814
816 bool runRelease = false;
817 if (nargs <= SMALL_ARGS_N) {
818 void* smallbuf[SMALL_ARGS_N];
819 if (nargs) runRelease = copy_args(args, nargs, (void**)smallbuf);
820 faceptr.fCtor((void**)smallbuf, result, (unsigned long)nargs);
821 } else {
822 std::vector<void*> buf(nargs);
823 runRelease = copy_args(args, nargs, buf.data());
824 faceptr.fCtor(buf.data(), result, (unsigned long)nargs);
825 }
826 if (runRelease) release_args(args, nargs);
827 return true;
828 }
829
831 std::cerr << " DESTRUCTOR NOT IMPLEMENTED YET! " << std::endl;
832 return false;
833 }
834
835 return false;
836}
837
838template<typename T>
839static inline
840T CallT(Cppyy::TCppMethod_t method, Cppyy::TCppObject_t self, size_t nargs, void* args)
841{
842 T t{};
843 if (WrapperCall(method, nargs, args, (void*)self, &t))
844 return t;
845 return (T)-1;
846}
847
848#define CPPYY_IMP_CALL(typecode, rtype) \
849rtype Cppyy::Call##typecode(TCppMethod_t method, TCppObject_t self, size_t nargs, void* args)\
850{ \
851 return CallT<rtype>(method, self, nargs, args); \
852}
853
854void Cppyy::CallV(TCppMethod_t method, TCppObject_t self, size_t nargs, void* args)
855{
856 if (!WrapperCall(method, nargs, args, (void*)self, nullptr))
857 return /* TODO ... report error */;
858}
859
860CPPYY_IMP_CALL(B, unsigned char)
867CPPYY_IMP_CALL(D, double )
869
870void* Cppyy::CallR(TCppMethod_t method, TCppObject_t self, size_t nargs, void* args)
871{
872 void* r = nullptr;
873 if (WrapperCall(method, nargs, args, (void*)self, &r))
874 return r;
875 return nullptr;
876}
877
879 TCppMethod_t method, TCppObject_t self, size_t nargs, void* args, size_t* length)
880{
881 char* cstr = nullptr;
882 TClassRef cr("std::string");
883 std::string* cppresult = (std::string*)malloc(sizeof(std::string));
884 if (WrapperCall(method, nargs, args, self, (void*)cppresult)) {
885 cstr = cppstring_to_cstring(*cppresult);
886 *length = cppresult->size();
887 cppresult->std::string::~basic_string();
888 } else
889 *length = 0;
890 free((void*)cppresult);
891 return cstr;
892}
893
895 TCppMethod_t method, TCppType_t /* klass */, size_t nargs, void* args)
896{
897 void* obj = nullptr;
898 if (WrapperCall(method, nargs, args, nullptr, &obj))
899 return (TCppObject_t)obj;
900 return (TCppObject_t)0;
901}
902
904{
906 cr->Destructor((void*)self, true);
907}
908
910 TCppObject_t self, size_t nargs, void* args, TCppType_t result_type)
911{
912 TClassRef& cr = type_from_handle(result_type);
913 void* obj = ::operator new(gInterpreter->ClassInfo_Size(cr->GetClassInfo()));
914 if (WrapperCall(method, nargs, args, self, obj))
915 return (TCppObject_t)obj;
916 ::operator delete(obj);
917 return (TCppObject_t)0;
918}
919
921{
922 if (check_enabled && !gEnableFastPath) return (TCppFuncAddr_t)nullptr;
923 TFunction* f = m2f(method);
924 TCppFuncAddr_t pf = gInterpreter->FindSym(f->GetMangledName());
925 if (pf) return pf;
926
927 int ierr = 0;
928 const char* fn = TClassEdit::DemangleName(f->GetMangledName(), ierr);
929 if (ierr || !fn)
930 return pf;
931
932 // TODO: the following attempts are all brittle and leak transactions, but
933 // each properly exposes the symbol so subsequent lookups will succeed
934 if (strstr(f->GetName(), "<")) {
935 // force explicit instantiation and try again
936 std::ostringstream sig;
937 sig << "template " << fn << ";";
938 gInterpreter->ProcessLine(sig.str().c_str());
939 } else {
940 std::string sfn(fn);
941 std::string addrstr;
942 addrstr.reserve(128);
943 addrstr.push_back('(');
944 addrstr.append(Cppyy::GetMethodResultType(method));
945 addrstr.append(" (");
946
947 if (gInterpreter->FunctionDeclId_IsMethod(m2d(method))) {
948 std::string::size_type colon = sfn.rfind("::");
949 if (colon != std::string::npos) addrstr.append(sfn.substr(0, colon+2));
950 }
951
952 addrstr.append("*)");
953 addrstr.append(Cppyy::GetMethodSignature(method, false));
954 addrstr.append(") &");
955
956 addrstr.append(sfn.substr(0, sfn.find('(')));
957
958 gInterpreter->Calc(addrstr.c_str());
959 }
960
961 return (TCppFuncAddr_t)gInterpreter->FindSym(f->GetMangledName());
962}
963
964
965// handling of function argument buffer --------------------------------------
967{
968 return new Parameter[nargs];
969}
970
972{
973 delete [] (Parameter*)args;
974}
975
977{
978 return sizeof(Parameter);
979}
980
982{
983 return offsetof(Parameter, fTypeCode);
984}
985
986
987// scope reflection information ----------------------------------------------
989{
990// Test if this scope represents a namespace.
991 if (scope == GLOBAL_HANDLE)
992 return true;
993 TClassRef& cr = type_from_handle(scope);
994 if (cr.GetClass())
995 return cr->Property() & kIsNamespace;
996 return false;
997}
998
1000{
1001// Test if this type may not be instantiated.
1002 TClassRef& cr = type_from_handle(klass);
1003 if (cr.GetClass())
1004 return cr->Property() & kIsAbstract;
1005 return false;
1006}
1007
1008bool Cppyy::IsEnum(const std::string& type_name)
1009{
1010 if (type_name.empty()) return false;
1011 std::string tn_short = TClassEdit::ShortType(type_name.c_str(), 1);
1012 if (tn_short.empty()) return false;
1013 return gInterpreter->ClassInfo_IsEnum(tn_short.c_str());
1014}
1015
1017{
1018// Test if this type is an aggregate type
1019 TClassRef& cr = type_from_handle(klass);
1020 if (cr.GetClass())
1021 return cr->ClassProperty() & kClassIsAggregate;
1022 return false;
1023}
1024
1026{
1027// Test if this type has a default constructor or is a "plain old data" type
1029 if (cr.GetClass())
1030 return cr->HasDefaultConstructor() || (cr->ClassProperty() & kClassIsAggregate);
1031 return true;
1032}
1033
1034// helpers for stripping scope names
1035static
1036std::string outer_with_template(const std::string& name)
1037{
1038// Cut down to the outer-most scope from <name>, taking proper care of templates.
1039 int tpl_open = 0;
1040 for (std::string::size_type pos = 0; pos < name.size(); ++pos) {
1041 std::string::value_type c = name[pos];
1042
1043 // count '<' and '>' to be able to skip template contents
1044 if (c == '<')
1045 ++tpl_open;
1046 else if (c == '>')
1047 --tpl_open;
1048
1049 // collect name up to "::"
1050 else if (tpl_open == 0 && \
1051 c == ':' && pos+1 < name.size() && name[pos+1] == ':') {
1052 // found the extend of the scope ... done
1053 return name.substr(0, pos-1);
1054 }
1055 }
1056
1057// whole name is apparently a single scope
1058 return name;
1059}
1060
1061static
1062std::string outer_no_template(const std::string& name)
1063{
1064// Cut down to the outer-most scope from <name>, drop templates
1065 std::string::size_type first_scope = name.find(':');
1066 if (first_scope == std::string::npos)
1067 return name.substr(0, name.find('<'));
1068 std::string::size_type first_templ = name.find('<');
1069 if (first_templ == std::string::npos)
1070 return name.substr(0, first_scope);
1071 return name.substr(0, std::min(first_templ, first_scope));
1072}
1073
1074#define FILL_COLL(type, filter) { \
1075 TIter itr{coll}; \
1076 type* obj = nullptr; \
1077 while ((obj = (type*)itr.Next())) { \
1078 const char* nm = obj->GetName(); \
1079 if (nm && nm[0] != '_' && !(obj->Property() & (filter))) { \
1080 if (gInitialNames.find(nm) == gInitialNames.end()) \
1081 cppnames.insert(nm); \
1082 }}}
1083
1084static inline
1085void cond_add(Cppyy::TCppScope_t scope, const std::string& ns_scope,
1086 std::set<std::string>& cppnames, const char* name, bool nofilter = false)
1087{
1088 if (!name || name[0] == '_' || strstr(name, ".h") != 0 || strncmp(name, "operator", 8) == 0)
1089 return;
1090
1091 if (scope == GLOBAL_HANDLE) {
1092 std::string to_add = outer_no_template(name);
1093 if ((nofilter || gInitialNames.find(to_add) == gInitialNames.end()) && !is_missclassified_stl(name))
1094 cppnames.insert(outer_no_template(name));
1095 } else if (scope == STD_HANDLE) {
1096 if (strncmp(name, "std::", 5) == 0) {
1097 name += 5;
1098#ifdef __APPLE__
1099 if (strncmp(name, "__1::", 5) == 0) name += 5;
1100#endif
1101 } else if (!is_missclassified_stl(name))
1102 return;
1103 cppnames.insert(outer_no_template(name));
1104 } else {
1105 if (strncmp(name, ns_scope.c_str(), ns_scope.size()) == 0)
1106 cppnames.insert(outer_with_template(name + ns_scope.size()));
1107 }
1108}
1109
1110void Cppyy::GetAllCppNames(TCppScope_t scope, std::set<std::string>& cppnames)
1111{
1112// Collect all known names of C++ entities under scope. This is useful for IDEs
1113// employing tab-completion, for example. Note that functions names need not be
1114// unique as they can be overloaded.
1115 TClassRef& cr = type_from_handle(scope);
1116 if (scope != GLOBAL_HANDLE && !(cr.GetClass() && cr->Property()))
1117 return;
1118
1119 std::string ns_scope = GetFinalName(scope);
1120 if (scope != GLOBAL_HANDLE) ns_scope += "::";
1121
1122// add existing values from read rootmap files if within this scope
1123 TCollection* coll = gInterpreter->GetMapfile()->GetTable();
1124 {
1125 TIter itr{coll};
1126 TEnvRec* ev = nullptr;
1127 while ((ev = (TEnvRec*)itr.Next())) {
1128 // TEnv contains rootmap entries and user-side rootmap files may be already
1129 // loaded on startup. Thus, filter on file name rather than load time.
1130 if (gRootSOs.find(ev->GetValue()) == gRootSOs.end())
1131 cond_add(scope, ns_scope, cppnames, ev->GetName(), true);
1132 }
1133 }
1134
1135// do we care about the class table or are the rootmap and list of types enough?
1136/*
1137 gClassTable->Init();
1138 const int N = gClassTable->Classes();
1139 for (int i = 0; i < N; ++i)
1140 cond_add(scope, ns_scope, cppnames, gClassTable->Next());
1141*/
1142
1143// any other types (e.g. that may have come from parsing headers)
1144 coll = gROOT->GetListOfTypes();
1145 {
1146 TIter itr{coll};
1147 TDataType* dt = nullptr;
1148 while ((dt = (TDataType*)itr.Next())) {
1149 if (!(dt->Property() & kIsFundamental)) {
1150 cond_add(scope, ns_scope, cppnames, dt->GetName());
1151 }
1152 }
1153 }
1154
1155// add functions
1156 coll = (scope == GLOBAL_HANDLE) ?
1157 gROOT->GetListOfGlobalFunctions() : cr->GetListOfMethods();
1158 {
1159 TIter itr{coll};
1160 TFunction* obj = nullptr;
1161 while ((obj = (TFunction*)itr.Next())) {
1162 const char* nm = obj->GetName();
1163 // skip templated functions, adding only the un-instantiated ones
1164 if (nm && nm[0] != '_' && strstr(nm, "<") == 0 && strncmp(nm, "operator", 8) != 0) {
1165 if (gInitialNames.find(nm) == gInitialNames.end())
1166 cppnames.insert(nm);
1167 }
1168 }
1169 }
1170
1171// add uninstantiated templates
1172 coll = (scope == GLOBAL_HANDLE) ?
1173 gROOT->GetListOfFunctionTemplates() : cr->GetListOfFunctionTemplates();
1175
1176// add (global) data members
1177 if (scope == GLOBAL_HANDLE) {
1178 coll = gROOT->GetListOfGlobals();
1180 } else {
1181 coll = cr->GetListOfDataMembers();
1183 coll = cr->GetListOfUsingDataMembers();
1185 }
1186
1187// add enums values only for user classes/namespaces
1188 if (scope != GLOBAL_HANDLE && scope != STD_HANDLE) {
1189 coll = cr->GetListOfEnums();
1191 }
1192
1193#ifdef __APPLE__
1194// special case for Apple, add version namespace '__1' entries to std
1195 if (scope == STD_HANDLE)
1196 GetAllCppNames(GetScope("std::__1"), cppnames);
1197#endif
1198}
1199
1200
1201// class reflection information ----------------------------------------------
1202std::vector<Cppyy::TCppScope_t> Cppyy::GetUsingNamespaces(TCppScope_t scope)
1203{
1204 std::vector<Cppyy::TCppScope_t> res;
1205 if (!IsNamespace(scope))
1206 return res;
1207
1208#ifdef __APPLE__
1209 if (scope == STD_HANDLE) {
1210 res.push_back(GetScope("__1"));
1211 return res;
1212 }
1213#endif
1214
1215 TClassRef& cr = type_from_handle(scope);
1216 if (!cr.GetClass() || !cr->GetClassInfo())
1217 return res;
1218
1219 const std::vector<std::string>& v = gInterpreter->GetUsingNamespaces(cr->GetClassInfo());
1220 res.reserve(v.size());
1221 for (const auto& uid : v) {
1222 Cppyy::TCppScope_t uscope = GetScope(uid);
1223 if (uscope) res.push_back(uscope);
1224 }
1225
1226 return res;
1227}
1228
1229
1230// class reflection information ----------------------------------------------
1232{
1233 if (klass == GLOBAL_HANDLE)
1234 return "";
1235 TClassRef& cr = type_from_handle(klass);
1236 std::string clName = cr->GetName();
1237// TODO: why is this template splitting needed?
1238 std::string::size_type pos = clName.substr(0, clName.find('<')).rfind("::");
1239 if (pos != std::string::npos)
1240 return clName.substr(pos+2, std::string::npos);
1241 return clName;
1242}
1243
1245{
1246 if (klass == GLOBAL_HANDLE)
1247 return "";
1248 TClassRef& cr = type_from_handle(klass);
1249 if (cr.GetClass()) {
1250 std::string name = cr->GetName();
1252 return std::string("std::")+cr->GetName();
1253 return cr->GetName();
1254 }
1255 return "";
1256}
1257
1259{
1260 TClassRef& cr = type_from_handle(klass);
1261 if (!cr.GetClass())
1262 return false;
1263
1264 TFunction* f = cr->GetMethod(("~"+GetFinalName(klass)).c_str(), "");
1265 if (f && (f->Property() & kIsVirtual))
1266 return true;
1267
1268 return false;
1269}
1270
1272{
1273 int is_complex = 1;
1274 size_t nbases = 0;
1275
1276 TClassRef& cr = type_from_handle(klass);
1277 if (cr.GetClass() && cr->GetListOfBases() != 0)
1278 nbases = GetNumBases(klass);
1279
1280 if (1 < nbases)
1281 is_complex = 1;
1282 else if (nbases == 0)
1283 is_complex = 0;
1284 else { // one base class only
1285 TBaseClass* base = (TBaseClass*)cr->GetListOfBases()->At(0);
1286 if (base->Property() & kIsVirtualBase)
1287 is_complex = 1; // TODO: verify; can be complex, need not be.
1288 else
1289 is_complex = HasComplexHierarchy(GetScope(base->GetName()));
1290 }
1291
1292 return is_complex;
1293}
1294
1296{
1297// Get the total number of base classes that this class has.
1298 TClassRef& cr = type_from_handle(klass);
1299 if (cr.GetClass() && cr->GetListOfBases() != 0)
1300 return (TCppIndex_t)cr->GetListOfBases()->GetSize();
1301 return (TCppIndex_t)0;
1302}
1303
1304////////////////////////////////////////////////////////////////////////////////
1305/// \fn Cppyy::TCppIndex_t GetLongestInheritancePath(TClass *klass)
1306/// \brief Retrieve number of base classes in the longest branch of the
1307/// inheritance tree of the input class.
1308/// \param[in] klass The class to start the retrieval process from.
1309///
1310/// This is a helper function for Cppyy::GetNumBasesLongestBranch.
1311/// Given an inheritance tree, the function assigns weight 1 to each class that
1312/// has at least one base. Starting from the input class, the function is
1313/// called recursively on all the bases. For each base the return value is one
1314/// (the weight of the base itself) plus the maximum value retrieved for their
1315/// bases in turn. For example, given the following inheritance tree:
1316///
1317/// ~~~{.cpp}
1318/// class A {}; class B: public A {};
1319/// class X {}; class Y: public X {}; class Z: public Y {};
1320/// class C: public B, Z {};
1321/// ~~~
1322///
1323/// calling this function on an instance of `C` will return 3, the steps
1324/// required to go from C to X.
1326{
1327
1328 auto directbases = klass->GetListOfBases();
1329 if (!directbases) {
1330 // This is a leaf with no bases
1331 return 0;
1332 }
1333 auto ndirectbases = directbases->GetSize();
1334 if (ndirectbases == 0) {
1335 // This is a leaf with no bases
1336 return 0;
1337 } else {
1338 // If there is at least one direct base
1339 std::vector<Cppyy::TCppIndex_t> nbases_branches;
1340 nbases_branches.reserve(ndirectbases);
1341
1342 // Traverse all direct bases of the current class and call the function
1343 // recursively
1344 for (auto baseclass : TRangeDynCast<TBaseClass>(directbases)) {
1345 if (!baseclass)
1346 continue;
1347 if (auto baseclass_tclass = baseclass->GetClassPointer()) {
1349 }
1350 }
1351
1352 // Get longest path among the direct bases of the current class
1353 auto longestbranch = std::max_element(std::begin(nbases_branches), std::end(nbases_branches));
1354
1355 // Add 1 to include the current class in the count
1356 return 1 + *longestbranch;
1357 }
1358}
1359
1360////////////////////////////////////////////////////////////////////////////////
1361/// \fn Cppyy::TCppIndex_t Cppyy::GetNumBasesLongestBranch(TCppType_t klass)
1362/// \brief Retrieve number of base classes in the longest branch of the
1363/// inheritance tree.
1364/// \param[in] klass The class to start the retrieval process from.
1365///
1366/// The function converts the input class to a `TClass *` and calls
1367/// GetLongestInheritancePath.
1369{
1370
1371 const auto &cr = type_from_handle(klass);
1372
1373 if (auto klass_tclass = cr.GetClass()) {
1375 }
1376
1377 // In any other case, return zero
1378 return 0;
1379}
1380
1382{
1384 return ((TBaseClass*)cr->GetListOfBases()->At((int)ibase))->GetName();
1385}
1386
1388{
1389 if (derived == base)
1390 return true;
1393 return derived_type->GetBaseClass(base_type) != 0;
1394}
1395
1397{
1399 const std::string& tn = cr->GetName();
1400 if (gSmartPtrTypes.find(tn.substr(0, tn.find("<"))) != gSmartPtrTypes.end())
1401 return true;
1402 return false;
1403}
1404
1406 const std::string& tname, TCppType_t* raw, TCppMethod_t* deref)
1407{
1408 const std::string& rn = ResolveName(tname);
1409 if (gSmartPtrTypes.find(rn.substr(0, rn.find("<"))) != gSmartPtrTypes.end()) {
1410 if (!raw && !deref) return true;
1411
1413 if (cr.GetClass()) {
1414 TFunction* func = cr->GetMethod("operator->", "");
1415 if (!func) {
1416 gInterpreter->UpdateListOfMethods(cr.GetClass());
1417 func = cr->GetMethod("operator->", "");
1418 }
1419 if (func) {
1420 if (deref) *deref = (TCppMethod_t)new_CallWrapper(func);
1421 if (raw) *raw = GetScope(TClassEdit::ShortType(
1422 func->GetReturnTypeNormalizedName().c_str(), 1));
1423 return (!deref || *deref) && (!raw || *raw);
1424 }
1425 }
1426 }
1427
1428 return false;
1429}
1430
1431void Cppyy::AddSmartPtrType(const std::string& type_name)
1432{
1434}
1435
1436void Cppyy::AddTypeReducer(const std::string& /*reducable*/, const std::string& /*reduced*/)
1437{
1438 // This function is deliberately left empty, because it is not used in
1439 // PyROOT, and synchronizing it with cppyy-backend upstream would require
1440 // patches to ROOT meta.
1441}
1442
1443
1444// type offsets --------------------------------------------------------------
1446 TCppObject_t address, int direction, bool rerror)
1447{
1448// calculate offsets between declared and actual type, up-cast: direction > 0; down-cast: direction < 0
1449 if (derived == base || !(base && derived))
1450 return (ptrdiff_t)0;
1451
1453 TClassRef& cb = type_from_handle(base);
1454
1455 if (!cd.GetClass() || !cb.GetClass())
1456 return (ptrdiff_t)0;
1457
1458 ptrdiff_t offset = -1;
1459 if (!(cd->GetClassInfo() && cb->GetClassInfo())) { // gInterpreter requirement
1460 // would like to warn, but can't quite determine error from intentional
1461 // hiding by developers, so only cover the case where we really should have
1462 // had a class info, but apparently don't:
1463 if (cd->IsLoaded()) {
1464 // warn to allow diagnostics
1465 std::ostringstream msg;
1466 msg << "failed offset calculation between " << cb->GetName() << " and " << cd->GetName();
1467 // TODO: propagate this warning to caller w/o use of Python C-API
1468 // PyErr_Warn(PyExc_RuntimeWarning, const_cast<char*>(msg.str().c_str()));
1469 std::cerr << "Warning: " << msg.str() << '\n';
1470 }
1471
1472 // return -1 to signal caller NOT to apply offset
1473 return rerror ? (ptrdiff_t)offset : 0;
1474 }
1475
1476 offset = gInterpreter->ClassInfo_GetBaseOffset(
1477 cd->GetClassInfo(), cb->GetClassInfo(), (void*)address, direction > 0);
1478 if (offset == -1) // Cling error, treat silently
1479 return rerror ? (ptrdiff_t)offset : 0;
1480
1481 return (ptrdiff_t)(direction < 0 ? -offset : offset);
1482}
1483
1484
1485// method/function reflection information ------------------------------------
1487{
1489 return (TCppIndex_t)0; // enforce lazy
1490
1491 if (scope == GLOBAL_HANDLE)
1492 return gROOT->GetListOfGlobalFunctions(true)->GetSize();
1493
1495 if (cr.GetClass() && cr->GetListOfMethods(true)) {
1496 Cppyy::TCppIndex_t nMethods = (TCppIndex_t)cr->GetListOfMethods(false)->GetSize();
1497 if (nMethods == (TCppIndex_t)0) {
1498 std::string clName = GetScopedFinalName(scope);
1499 if (clName.find('<') != std::string::npos) {
1500 // chicken-and-egg problem: TClass does not know about methods until
1501 // instantiation, so force it
1502 std::ostringstream stmt;
1503 stmt << "template class " << clName << ";";
1504 gInterpreter->Declare(stmt.str().c_str()/*, silent = true*/);
1505
1506 // now reload the methods
1507 return (TCppIndex_t)cr->GetListOfMethods(true)->GetSize();
1508 }
1509 }
1510 return nMethods;
1511 }
1512
1513 return (TCppIndex_t)0; // unknown class?
1514}
1515
1516std::vector<Cppyy::TCppIndex_t> Cppyy::GetMethodIndicesFromName(
1517 TCppScope_t scope, const std::string& name)
1518{
1519 std::vector<TCppIndex_t> indices;
1521 if (cr.GetClass()) {
1522 gInterpreter->UpdateListOfMethods(cr.GetClass());
1523 int imeth = 0;
1524 TFunction* func = nullptr;
1525 TIter next(cr->GetListOfMethods());
1526 while ((func = (TFunction*)next())) {
1527 if (match_name(name, func->GetName())) {
1528 if (func->Property() & kIsPublic)
1529 indices.push_back((TCppIndex_t)imeth);
1530 }
1531 ++imeth;
1532 }
1533 } else if (scope == GLOBAL_HANDLE) {
1534 TCollection* funcs = gROOT->GetListOfGlobalFunctions(true);
1535
1536 // tickle deserialization
1537 if (!funcs->FindObject(name.c_str()))
1538 return indices;
1539
1540 TFunction* func = nullptr;
1541 TIter ifunc(funcs);
1542 while ((func = (TFunction*)ifunc.Next())) {
1543 if (match_name(name, func->GetName()))
1544 indices.push_back((TCppIndex_t)new_CallWrapper(func));
1545 }
1546 }
1547
1548 return indices;
1549}
1550
1552{
1554 if (cr.GetClass()) {
1555 TFunction* f = (TFunction*)cr->GetListOfMethods(false)->At((int)idx);
1556 if (f) return (Cppyy::TCppMethod_t)new_CallWrapper(f);
1557 return (Cppyy::TCppMethod_t)nullptr;
1558 }
1559
1561 return (Cppyy::TCppMethod_t)idx;
1562}
1563
1565{
1566 if (method) {
1567 const std::string& name = ((CallWrapper*)method)->fName;
1568
1569 if (name.compare(0, 8, "operator") != 0)
1570 // strip template instantiation part, if any
1571 return name.substr(0, name.find('<'));
1572 return name;
1573 }
1574 return "<unknown>";
1575}
1576
1578{
1579 if (method) {
1580 std::string name = ((CallWrapper*)method)->fName;
1581 name.erase(std::remove(name.begin(), name.end(), ' '), name.end());
1582 return name;
1583 }
1584 return "<unknown>";
1585}
1586
1588{
1589 if (method)
1590 return m2f(method)->GetMangledName();
1591 return "<unknown>";
1592}
1593
1595{
1596 if (method) {
1597 TFunction* f = m2f(method);
1598 if (f->ExtraProperty() & kIsConstructor)
1599 return "constructor";
1600 std::string restype = f->GetReturnTypeName();
1601 // TODO: this is ugly, but we can't use GetReturnTypeName() for ostreams
1602 // and maybe others, whereas GetReturnTypeNormalizedName() has proven to
1603 // be save in all cases (Note: 'int8_t' covers 'int8_t' and 'uint8_t')
1604 if (restype.find("int8_t") != std::string::npos)
1605 return restype;
1606 restype = f->GetReturnTypeNormalizedName();
1607 if (restype == "(lambda)") {
1608 std::ostringstream s;
1609 // TODO: what if there are parameters to the lambda?
1610 s << "__cling_internal::FT<decltype("
1611 << GetMethodFullName(method) << "(";
1612 for (Cppyy::TCppIndex_t i = 0; i < Cppyy::GetMethodNumArgs(method); ++i) {
1613 if (i != 0) s << ", ";
1614 s << Cppyy::GetMethodArgType(method, i) << "{}";
1615 }
1616 s << "))>::F";
1617 TClass* cl = TClass::GetClass(s.str().c_str());
1618 if (cl) return cl->GetName();
1619 // TODO: signal some type of error (or should that be upstream?
1620 }
1621 return restype;
1622 }
1623 return "<unknown>";
1624}
1625
1627{
1628 if (method)
1629 return m2f(method)->GetNargs();
1630 return 0;
1631}
1632
1634{
1635 if (method) {
1636 TFunction* f = m2f(method);
1637 return (TCppIndex_t)(f->GetNargs() - f->GetNargsOpt());
1638 }
1639 return (TCppIndex_t)0;
1640}
1641
1643{
1644 if (method) {
1645 TFunction* f = m2f(method);
1646 TMethodArg* arg = (TMethodArg*)f->GetListOfMethodArgs()->At((int)iarg);
1647 return arg->GetName();
1648 }
1649 return "<unknown>";
1650}
1651
1653{
1654 if (method) {
1655 TFunction* f = m2f(method);
1656 TMethodArg* arg = (TMethodArg*)f->GetListOfMethodArgs()->At((int)iarg);
1657 return arg->GetTypeNormalizedName();
1658 }
1659 return "<unknown>";
1660}
1661
1663{
1664 if (method) {
1665 TFunction* f = m2f(method);
1666 TMethodArg* arg = (TMethodArg *)f->GetListOfMethodArgs()->At((int)iarg);
1667 void *argqtp = gInterpreter->TypeInfo_QualTypePtr(arg->GetTypeInfo());
1668
1669 TypeInfo_t *reqti = gInterpreter->TypeInfo_Factory(req_type.c_str());
1670 void *reqqtp = gInterpreter->TypeInfo_QualTypePtr(reqti);
1671
1672 // This scoring is not based on any particular rules
1673 if (gInterpreter->IsSameType(argqtp, reqqtp))
1674 return 0; // Best match
1675 else if ((gInterpreter->IsSignedIntegerType(argqtp) && gInterpreter->IsSignedIntegerType(reqqtp)) ||
1676 (gInterpreter->IsUnsignedIntegerType(argqtp) && gInterpreter->IsUnsignedIntegerType(reqqtp)) ||
1677 (gInterpreter->IsFloatingType(argqtp) && gInterpreter->IsFloatingType(reqqtp)))
1678 return 1;
1679 else if ((gInterpreter->IsSignedIntegerType(argqtp) && gInterpreter->IsUnsignedIntegerType(reqqtp)) ||
1680 (gInterpreter->IsFloatingType(argqtp) && gInterpreter->IsUnsignedIntegerType(reqqtp)))
1681 return 2;
1682 else if ((gInterpreter->IsIntegerType(argqtp) && gInterpreter->IsIntegerType(reqqtp)))
1683 return 3;
1684 else if ((gInterpreter->IsVoidPointerType(argqtp) && gInterpreter->IsPointerType(reqqtp)))
1685 return 4;
1686 else
1687 return 10; // Penalize heavily for no possible match
1688 }
1689 return INT_MAX; // Method is not valid
1690}
1691
1693{
1694 if (method) {
1695 TFunction* f = m2f(method);
1696 TMethodArg* arg = (TMethodArg*)f->GetListOfMethodArgs()->At((int)iarg);
1697 const char* def = arg->GetDefault();
1698 if (def)
1699 return def;
1700 }
1701
1702 return "";
1703}
1704
1706{
1707 TFunction* f = m2f(method);
1708 if (f) {
1709 std::ostringstream sig;
1710 sig << "(";
1711 int nArgs = f->GetNargs();
1712 if (maxargs != (TCppIndex_t)-1) nArgs = std::min(nArgs, (int)maxargs);
1713 for (int iarg = 0; iarg < nArgs; ++iarg) {
1714 TMethodArg* arg = (TMethodArg*)f->GetListOfMethodArgs()->At(iarg);
1715 sig << arg->GetFullTypeName();
1716 if (show_formalargs) {
1717 const char* argname = arg->GetName();
1718 if (argname && argname[0] != '\0') sig << " " << argname;
1719 const char* defvalue = arg->GetDefault();
1720 if (defvalue && defvalue[0] != '\0') sig << " = " << defvalue;
1721 }
1722 if (iarg != nArgs-1) sig << (show_formalargs ? ", " : ",");
1723 }
1724 sig << ")";
1725 return sig.str();
1726 }
1727 return "<unknown>";
1728}
1729
1731{
1732 std::string scName = GetScopedFinalName(scope);
1733 TFunction* f = m2f(method);
1734 if (f) {
1735 std::ostringstream sig;
1736 sig << f->GetReturnTypeName() << " "
1737 << scName << "::" << f->GetName();
1739 return sig.str();
1740 }
1741 return "<unknown>";
1742}
1743
1745{
1746 if (method) {
1747 TFunction* f = m2f(method);
1748 return f->Property() & kIsConstMethod;
1749 }
1750 return false;
1751}
1752
1754{
1756 return (TCppIndex_t)0; // enforce lazy
1757
1758 if (scope == GLOBAL_HANDLE) {
1759 TCollection* coll = gROOT->GetListOfFunctionTemplates();
1760 if (coll) return (TCppIndex_t)coll->GetSize();
1761 } else {
1763 if (cr.GetClass()) {
1764 TCollection* coll = cr->GetListOfFunctionTemplates(true);
1765 if (coll) return (TCppIndex_t)coll->GetSize();
1766 }
1767 }
1768
1769// failure ...
1770 return (TCppIndex_t)0;
1771}
1772
1774{
1776 return ((THashList*)gROOT->GetListOfFunctionTemplates())->At((int)imeth)->GetName();
1777 else {
1779 if (cr.GetClass())
1780 return cr->GetListOfFunctionTemplates(false)->At((int)imeth)->GetName();
1781 }
1782
1783// failure ...
1784 assert(!"should not be called unless GetNumTemplatedMethods() succeeded");
1785 return "";
1786}
1787
1789{
1791 return false;
1792
1794 if (cr.GetClass()) {
1795 TFunctionTemplate* f = (TFunctionTemplate*)cr->GetListOfFunctionTemplates(false)->At((int)imeth);
1796 return f->ExtraProperty() & kIsConstructor;
1797 }
1798
1799 return false;
1800}
1801
1803{
1805 return (bool)gROOT->GetFunctionTemplate(name.c_str());
1806 else {
1808 if (cr.GetClass())
1809 return (bool)cr->GetFunctionTemplate(name.c_str());
1810 }
1811
1812// failure ...
1813 return false;
1814}
1815
1817{
1819 if (cr.GetClass()) {
1820 TFunction* f = (TFunction*)cr->GetListOfMethods(false)->At((int)idx);
1821 if (f && strstr(f->GetName(), "<")) return true;
1822 return false;
1823 }
1824
1826 if (((CallWrapper*)idx)->fName.find('<') != std::string::npos) return true;
1827 return false;
1828}
1829
1830// helpers for Cppyy::GetMethodTemplate()
1831static std::map<TDictionary::DeclId_t, CallWrapper*> gMethodTemplates;
1832
1834 TCppScope_t scope, const std::string& name, const std::string& proto)
1835{
1836// There is currently no clean way of extracting a templated method out of ROOT/meta
1837// for a variety of reasons, none of them fundamental. The game played below is to
1838// first get any pre-existing functions already managed by ROOT/meta, but if that fails,
1839// to do an explicit lookup that ignores the prototype (i.e. the full name should be
1840// enough), and finally to ignore the template arguments part of the name as this fails
1841// in cling if there are default parameters.
1842// It would be possible to get the prototype from the created functions and use that to
1843// do a new lookup, after which ROOT/meta will manage the function. However, neither
1844// TFunction::GetPrototype() nor TFunction::GetSignature() is of the proper form, so
1845// we'll/ manage the new TFunctions instead and will assume that they are cached on the
1846// calling side to prevent multiple creations.
1847 TFunction* func = nullptr; ClassInfo_t* cl = nullptr;
1849 func = gROOT->GetGlobalFunctionWithPrototype(name.c_str(), proto.c_str());
1850 if (func && name.back() == '>' && name != func->GetName())
1851 func = nullptr; // happens if implicit conversion matches the overload
1852 } else {
1854 if (cr.GetClass()) {
1855 func = cr->GetMethodWithPrototype(name.c_str(), proto.c_str());
1856 if (!func) {
1857 cl = cr->GetClassInfo();
1858 // try base classes to cover a common 'using' case (TODO: this is stupid and misses
1859 // out on base classes; fix that with improved access to Cling)
1861 for (TCppIndex_t i = 0; i < nbases; ++i) {
1863 if (base.GetClass()) {
1864 func = base->GetMethodWithPrototype(name.c_str(), proto.c_str());
1865 if (func) break;
1866 }
1867 }
1868 }
1869 }
1870 }
1871
1872 if (!func && name.back() == '>' && (cl || scope == (cppyy_scope_t)GLOBAL_HANDLE)) {
1873 // try again, ignoring proto in case full name is complete template
1874 auto declid = gInterpreter->GetFunction(cl, name.c_str());
1875 if (declid) {
1876 auto existing = gMethodTemplates.find(declid);
1877 if (existing == gMethodTemplates.end()) {
1878 auto cw = new_CallWrapper(declid, name);
1879 existing = gMethodTemplates.insert(std::make_pair(declid, cw)).first;
1880 }
1881 return (TCppMethod_t)existing->second;
1882 }
1883 }
1884
1885 if (func) {
1886 // make sure we didn't match a non-templated overload
1887 if (func->ExtraProperty() & kIsTemplateSpec)
1888 return (TCppMethod_t)new_CallWrapper(func);
1889
1890 // disregard this non-templated method as it will be considered when appropriate
1891 return (TCppMethod_t)nullptr;
1892 }
1893
1894// try again with template arguments removed from name, if applicable
1895 if (name.back() == '>') {
1896 auto pos = name.find('<');
1897 if (pos != std::string::npos) {
1899 if (cppmeth) {
1900 // allow if requested template names match up to the result
1901 const std::string& alt = GetMethodFullName(cppmeth);
1902 if (name.size() < alt.size() && alt.find('<') == pos) {
1903 const std::string& partial = name.substr(pos, name.size()-1-pos);
1904 if (strncmp(partial.c_str(), alt.substr(pos, alt.size()-1-pos).c_str(), partial.size()) == 0)
1905 return cppmeth;
1906 }
1907 }
1908 }
1909 }
1910
1911// failure ...
1912 return (TCppMethod_t)nullptr;
1913}
1914
1915static inline
1916std::string type_remap(const std::string& n1, const std::string& n2)
1917{
1918// Operator lookups of (C++ string, Python str) should succeeded, for the combos of
1919// string/str, wstring/str, string/unicode and wstring/unicode; since C++ does not have a
1920// operator+(std::string, std::wstring), we'll have to look up the same type and rely on
1921// the converters in CPyCppyy/_cppyy.
1922 if (n1 == "str") {
1923 if (n2 == "std::basic_string<wchar_t,std::char_traits<wchar_t>,std::allocator<wchar_t> >")
1924 return n2; // match like for like
1925 return "std::string"; // probably best bet
1926 } else if (n1 == "float")
1927 return "double"; // debatable, but probably intended
1928 return n1;
1929}
1930
1932 TCppType_t scope, const std::string& lc, const std::string& rc, const std::string& opname)
1933{
1934// Find a global operator function with a matching signature; prefer by-ref, but
1935// fall back on by-value if that fails.
1936 std::string lcname1 = TClassEdit::CleanType(lc.c_str());
1937 const std::string& rcname = rc.empty() ? rc : type_remap(TClassEdit::CleanType(rc.c_str()), lcname1);
1938 const std::string& lcname = type_remap(lcname1, rcname);
1939
1940 std::string proto = lcname + "&" + (rc.empty() ? rc : (", " + rcname + "&"));
1942 TFunction* func = gROOT->GetGlobalFunctionWithPrototype(opname.c_str(), proto.c_str());
1943 if (func) return (TCppIndex_t)new_CallWrapper(func);
1944 proto = lcname + (rc.empty() ? rc : (", " + rcname));
1945 func = gROOT->GetGlobalFunctionWithPrototype(opname.c_str(), proto.c_str());
1946 if (func) return (TCppIndex_t)new_CallWrapper(func);
1947 } else {
1949 if (cr.GetClass()) {
1950 TFunction* func = cr->GetMethodWithPrototype(opname.c_str(), proto.c_str());
1951 if (func) return (TCppIndex_t)cr->GetListOfMethods()->IndexOf(func);
1952 proto = lcname + (rc.empty() ? rc : (", " + rcname));
1953 func = cr->GetMethodWithPrototype(opname.c_str(), proto.c_str());
1954 if (func) return (TCppIndex_t)cr->GetListOfMethods()->IndexOf(func);
1955 }
1956 }
1957
1958// failure ...
1959 return (TCppIndex_t)-1;
1960}
1961
1962// method properties ---------------------------------------------------------
1964{
1965 if (method) {
1966 TFunction* f = m2f(method);
1967 return f->Property() & kIsPublic;
1968 }
1969 return false;
1970}
1971
1973{
1974 if (method) {
1975 TFunction* f = m2f(method);
1976 return f->Property() & kIsProtected;
1977 }
1978 return false;
1979}
1980
1982{
1983 if (method) {
1984 TFunction* f = m2f(method);
1985 return f->ExtraProperty() & kIsConstructor;
1986 }
1987 return false;
1988}
1989
1991{
1992 if (method) {
1993 TFunction* f = m2f(method);
1994 return f->ExtraProperty() & kIsDestructor;
1995 }
1996 return false;
1997}
1998
2000{
2001 if (method) {
2002 TFunction* f = m2f(method);
2003 return f->Property() & kIsStatic;
2004 }
2005 return false;
2006}
2007
2008// data member reflection information ----------------------------------------
2010{
2012 return (TCppIndex_t)0; // enforce lazy
2013
2014 if (scope == GLOBAL_HANDLE)
2015 return gROOT->GetListOfGlobals(true)->GetSize();
2016
2018 if (cr.GetClass() && cr->GetListOfDataMembers())
2019 return cr->GetListOfDataMembers()->GetSize();
2020
2021 return (TCppIndex_t)0; // unknown class?
2022}
2023
2025{
2026 if (!cr.GetClass() || !cr->GetListOfDataMembers())
2027 return nullptr;
2028
2029 int numDMs = cr->GetListOfDataMembers()->GetSize();
2030 if ((int)idata < numDMs)
2031 return (TDataMember*)cr->GetListOfDataMembers()->At((int)idata);
2032 return (TDataMember*)cr->GetListOfUsingDataMembers()->At((int)idata - numDMs);
2033}
2034
2036{
2038 if (cr.GetClass()) {
2040 return m->GetName();
2041 }
2044 return gbl->GetName();
2045}
2046
2048{
2049 if (scope == GLOBAL_HANDLE) {
2051 std::string fullType = gbl->GetFullTypeName();
2052
2053 if ((int)gbl->GetArrayDim()) {
2054 std::ostringstream s;
2055 for (int i = 0; i < (int)gbl->GetArrayDim(); ++i)
2056 s << '[' << gbl->GetMaxIndex(i) << ']';
2057 fullType.append(s.str());
2058 }
2059 return fullType;
2060 }
2061
2063 if (cr.GetClass()) {
2065 // TODO: fix this upstream. Usually, we want m->GetFullTypeName(), because it does
2066 // not resolve typedefs, but it looses scopes for inner classes/structs, so in that
2067 // case m->GetTrueTypeName() should be used (this also cleans up the cases where
2068 // the "full type" retains spurious "struct" or "union" in the name).
2069 std::string fullType = m->GetFullTypeName();
2070 if (fullType != m->GetTrueTypeName()) {
2071 const std::string& trueName = m->GetTrueTypeName();
2072 if (fullType.find("::") == std::string::npos && trueName.find("::") != std::string::npos)
2074 }
2075
2076 if ((int)m->GetArrayDim()) {
2077 std::ostringstream s;
2078 for (int i = 0; i < (int)m->GetArrayDim(); ++i)
2079 s << '[' << m->GetMaxIndex(i) << ']';
2080 fullType.append(s.str());
2081 }
2082 return fullType;
2083 }
2084
2085 return "<unknown>";
2086}
2087
2089{
2090 if (scope == GLOBAL_HANDLE) {
2092 if (!gbl->GetAddress() || gbl->GetAddress() == (void*)-1) {
2093 // CLING WORKAROUND: make sure variable is loaded
2094 intptr_t addr = (intptr_t)gInterpreter->ProcessLine((std::string("&")+gbl->GetName()+";").c_str());
2095 if (gbl->GetAddress() && gbl->GetAddress() != (void*)-1)
2096 return (intptr_t)gbl->GetAddress(); // now loaded!
2097 return addr; // last resort ...
2098 }
2099 return (intptr_t)gbl->GetAddress();
2100 }
2101
2103 if (cr.GetClass()) {
2105 // CLING WORKAROUND: the following causes templates to be instantiated first within the proper
2106 // scope, making the lookup succeed and preventing spurious duplicate instantiations later. Also,
2107 // if the variable is not yet loaded, pull it in through gInterpreter.
2108 if (m->Property() & kIsStatic) {
2109 if (strchr(cr->GetName(), '<'))
2110 gInterpreter->ProcessLine(((std::string)cr->GetName()+"::"+m->GetName()+";").c_str());
2111 if ((intptr_t)m->GetOffsetCint() == (intptr_t)-1)
2112 return (intptr_t)gInterpreter->ProcessLine((std::string("&")+cr->GetName()+"::"+m->GetName()+";").c_str());
2113 }
2114 return (intptr_t)m->GetOffsetCint(); // yes, CINT (GetOffset() is both wrong
2115 // and caches that wrong result!
2116 }
2117
2118 return (intptr_t)-1;
2119}
2120
2122{
2123 if (scope == GLOBAL_HANDLE) {
2124 TGlobal* gb = (TGlobal*)gROOT->GetListOfGlobals(false /* load */)->FindObject(name.c_str());
2125 if (!gb) gb = (TGlobal*)gROOT->GetListOfGlobals(true /* load */)->FindObject(name.c_str());
2126 if (!gb) {
2127 // some enums are not loaded as they are not considered part of
2128 // the global scope, but of the enum scope; get them w/o checking
2129 TDictionary::DeclId_t did = gInterpreter->GetDataMember(nullptr, name.c_str());
2130 if (did) {
2131 DataMemberInfo_t* t = gInterpreter->DataMemberInfo_Factory(did, nullptr);
2132 ((TListOfDataMembers*)gROOT->GetListOfGlobals())->Get(t, true);
2133 gb = (TGlobal*)gROOT->GetListOfGlobals(false /* load */)->FindObject(name.c_str());
2134 }
2135 }
2136
2137 if (gb && strcmp(gb->GetFullTypeName(), "(lambda)") == 0) {
2138 // lambdas use a compiler internal closure type, so we wrap
2139 // them, then return the wrapper's type
2140 // TODO: this current leaks the std::function; also, if possible,
2141 // should instantiate through TClass rather then ProcessLine
2142 std::ostringstream s;
2143 s << "auto __cppyy_internal_wrap_" << name << " = "
2144 "new __cling_internal::FT<decltype(" << name << ")>::F"
2145 "{" << name << "};";
2146 gInterpreter->ProcessLine(s.str().c_str());
2147 TGlobal* wrap = (TGlobal*)gROOT->GetListOfGlobals(true)->FindObject(
2148 ("__cppyy_internal_wrap_"+name).c_str());
2149 if (wrap && wrap->GetAddress()) gb = wrap;
2150 }
2151
2152 if (gb) {
2153 // TODO: do we ever need a reverse lookup?
2154 g_globalvars.push_back(gb);
2155 return TCppIndex_t(g_globalvars.size() - 1);
2156 }
2157
2158 } else {
2160 if (cr.GetClass()) {
2161 TDataMember* dm =
2162 (TDataMember*)cr->GetListOfDataMembers()->FindObject(name.c_str());
2163 // TODO: turning this into an index is silly ...
2164 if (dm) return (TCppIndex_t)cr->GetListOfDataMembers()->IndexOf(dm);
2165 dm = (TDataMember*)cr->GetListOfUsingDataMembers()->FindObject(name.c_str());
2166 if (dm)
2167 return (TCppIndex_t)cr->GetListOfDataMembers()->IndexOf(dm)
2168 + cr->GetListOfDataMembers()->GetSize();
2169 }
2170 }
2171
2172 return (TCppIndex_t)-1;
2173}
2174
2175
2176// data member properties ----------------------------------------------------
2178{
2179 if (scope == GLOBAL_HANDLE)
2180 return true;
2182 if (cr->Property() & kIsNamespace)
2183 return true;
2185 return m->Property() & kIsPublic;
2186}
2187
2189{
2190 if (scope == GLOBAL_HANDLE)
2191 return true;
2193 if (cr->Property() & kIsNamespace)
2194 return true;
2196 return m->Property() & kIsProtected;
2197}
2198
2200{
2201 if (scope == GLOBAL_HANDLE)
2202 return true;
2204 if (cr->Property() & kIsNamespace)
2205 return true;
2207 return m->Property() & kIsStatic;
2208}
2209
2211{
2212 if (scope == GLOBAL_HANDLE) {
2214 return gbl->Property() & kIsConstant;
2215 }
2217 if (cr.GetClass()) {
2219 return m->Property() & kIsConstant;
2220 }
2221 return false;
2222}
2223
2225{
2226// TODO: currently, ROOT/meta does not properly distinguish between variables of enum
2227// type, and values of enums. The latter are supposed to be const. This code relies on
2228// odd features (bugs?) to figure out the difference, but this should really be fixed
2229// upstream and/or deserves a new API.
2230
2231 if (scope == GLOBAL_HANDLE) {
2233
2234 // make use of an oddity: enum global variables do not have their kIsStatic bit
2235 // set, whereas enum global values do
2236 return (gbl->Property() & kIsEnum) && (gbl->Property() & kIsStatic);
2237 }
2238
2240 if (cr.GetClass()) {
2242 std::string ti = m->GetTypeName();
2243
2244 // can't check anonymous enums by type name, so just accept them as enums
2245 if (ti.rfind("(unnamed)") != std::string::npos)
2246 return m->Property() & kIsEnum;
2247
2248 // since there seems to be no distinction between data of enum type and enum values,
2249 // check the list of constants for the type to see if there's a match
2250 if (ti.rfind(cr->GetName(), 0) != std::string::npos) {
2251 std::string::size_type s = strlen(cr->GetName())+2;
2252 if (s < ti.size()) {
2253 TEnum* ee = ((TListOfEnums*)cr->GetListOfEnums())->GetObject(ti.substr(s, std::string::npos).c_str());
2254 if (ee) return ee->GetConstant(m->GetName());
2255 }
2256 }
2257 }
2258
2259// this default return only means that the data will be writable, not that it will
2260// be unreadable or otherwise misrepresented
2261 return false;
2262}
2263
2265{
2266 if (scope == GLOBAL_HANDLE) {
2268 return gbl->GetMaxIndex(dimension);
2269 }
2271 if (cr.GetClass()) {
2273 return m->GetMaxIndex(dimension);
2274 }
2275 return -1;
2276}
2277
2278
2279// enum properties -----------------------------------------------------------
2281{
2282 if (scope == GLOBAL_HANDLE)
2283 return (TCppEnum_t)gROOT->GetListOfEnums(kTRUE)->FindObject(enum_name.c_str());
2284
2286 if (cr.GetClass())
2287 return (TCppEnum_t)cr->GetListOfEnums(kTRUE)->FindObject(enum_name.c_str());
2288
2289 return (TCppEnum_t)0;
2290}
2291
2293{
2294 return (TCppIndex_t)((TEnum*)etype)->GetConstants()->GetSize();
2295}
2296
2298{
2299 return ((TEnumConstant*)((TEnum*)etype)->GetConstants()->At(idata))->GetName();
2300}
2301
2303{
2304 TEnumConstant* ecst = (TEnumConstant*)((TEnum*)etype)->GetConstants()->At(idata);
2305 return (long long)ecst->GetValue();
2306}
2307
2308
2309//- C-linkage wrappers -------------------------------------------------------
2310
2311extern "C" {
2312/* direct interpreter access ---------------------------------------------- */
2313int cppyy_compile(const char* code) {
2314 return Cppyy::Compile(code);
2315}
2316
2317
2318/* name to opaque C++ scope representation -------------------------------- */
2322
2326
2330
2334
2338
2339size_t cppyy_size_of_type(const char* type_name) {
2340 return Cppyy::SizeOf(type_name);
2341}
2342
2343
2344/* memory management ------------------------------------------------------ */
2348
2352
2356
2360
2361
2362/* method/function dispatching -------------------------------------------- */
2363/* Exception types:
2364 1: default (unknown exception)
2365 2: standard exception
2366*/
2367#define CPPYY_HANDLE_EXCEPTION \
2368 catch (std::exception& e) { \
2369 cppyy_exctype_t* etype = (cppyy_exctype_t*)((Parameter*)args+nargs); \
2370 *etype = (cppyy_exctype_t)2; \
2371 *((char**)(etype+1)) = cppstring_to_cstring(e.what()); \
2372 } \
2373 catch (...) { \
2374 cppyy_exctype_t* etype = (cppyy_exctype_t*)((Parameter*)args+nargs); \
2375 *etype = (cppyy_exctype_t)1; \
2376 *((char**)(etype+1)) = \
2377 cppstring_to_cstring("unhandled, unknown C++ exception"); \
2378 }
2379
2381 try {
2382 Cppyy::CallV(method, (void*)self, nargs, args);
2384}
2385
2386unsigned char cppyy_call_b(cppyy_method_t method, cppyy_object_t self, int nargs, void* args) {
2387 try {
2388 return (unsigned char)Cppyy::CallB(method, (void*)self, nargs, args);
2390 return (unsigned char)-1;
2391}
2392
2394 try {
2395 return (char)Cppyy::CallC(method, (void*)self, nargs, args);
2397 return (char)-1;
2398}
2399
2401 try {
2402 return (short)Cppyy::CallH(method, (void*)self, nargs, args);
2404 return (short)-1;
2405}
2406
2408 try {
2409 return (int)Cppyy::CallI(method, (void*)self, nargs, args);
2411 return (int)-1;
2412}
2413
2415 try {
2416 return (long)Cppyy::CallL(method, (void*)self, nargs, args);
2418 return (long)-1;
2419}
2420
2422 try {
2423 return (long long)Cppyy::CallLL(method, (void*)self, nargs, args);
2425 return (long long)-1;
2426}
2427
2429 try {
2430 return (float)Cppyy::CallF(method, (void*)self, nargs, args);
2432 return (float)-1;
2433}
2434
2436 try {
2437 return (double)Cppyy::CallD(method, (void*)self, nargs, args);
2439 return (double)-1;
2440}
2441
2443 try {
2444 return (long double)Cppyy::CallLD(method, (void*)self, nargs, args);
2446 return (long double)-1;
2447}
2448
2450 return (double)cppyy_call_ld(method, self, nargs, args);
2451}
2452
2454 try {
2455 return (void*)Cppyy::CallR(method, (void*)self, nargs, args);
2457 return (void*)nullptr;
2458}
2459
2461 cppyy_method_t method, cppyy_object_t self, int nargs, void* args, size_t* lsz) {
2462 try {
2463 return Cppyy::CallS(method, (void*)self, nargs, args, lsz);
2465 return (char*)nullptr;
2466}
2467
2475
2479
2481 int nargs, void* args, cppyy_type_t result_type) {
2482 try {
2483 return cppyy_object_t(Cppyy::CallO(method, (void*)self, nargs, args, result_type));
2485 return (cppyy_object_t)0;
2486}
2487
2491
2492
2493/* handling of function argument buffer ----------------------------------- */
2495// for calls through C interface, require extra space for reporting exceptions
2496 return malloc(nargs*sizeof(Parameter)+sizeof(cppyy_exctype_t)+sizeof(char**));
2497}
2498
2500 free(args);
2501}
2502
2504 return (size_t)Cppyy::GetFunctionArgSizeof();
2505}
2506
2510
2511
2512/* scope reflection information ------------------------------------------- */
2516
2518 return (int)Cppyy::IsTemplate(template_name);
2519}
2520
2524
2525int cppyy_is_enum(const char* type_name) {
2526 return (int)Cppyy::IsEnum(type_name);
2527}
2528
2532
2533const char** cppyy_get_all_cpp_names(cppyy_scope_t scope, size_t* count) {
2534 std::set<std::string> cppnames;
2536 const char** c_cppnames = (const char**)malloc(cppnames.size()*sizeof(const char*));
2537 int i = 0;
2538 for (const auto& name : cppnames) {
2540 ++i;
2541 }
2542 *count = cppnames.size();
2543 return c_cppnames;
2544}
2545
2546
2547/* namespace reflection information --------------------------------------- */
2549 const std::vector<Cppyy::TCppScope_t>& uv = Cppyy::GetUsingNamespaces((Cppyy::TCppScope_t)scope);
2550
2551 if (uv.empty())
2552 return (cppyy_index_t*)nullptr;
2553
2554 cppyy_scope_t* llresult = (cppyy_scope_t*)malloc(sizeof(cppyy_scope_t)*(uv.size()+1));
2555 for (int i = 0; i < (int)uv.size(); ++i) llresult[i] = uv[i];
2556 llresult[uv.size()] = (cppyy_scope_t)0;
2557 return llresult;
2558}
2559
2560
2561/* class reflection information ------------------------------------------- */
2565
2569
2573
2577
2581
2585
2589
2591 return (int)Cppyy::IsSubtype(derived, base);
2592}
2593
2597
2599 return (int)Cppyy::GetSmartPtrInfo(name, raw, deref);
2600}
2601
2605
2606
2607/* calculate offsets between declared and actual type, up-cast: direction > 0; down-cast: direction < 0 */
2609 return (ptrdiff_t)Cppyy::GetBaseOffset(derived, base, (void*)address, direction, 0);
2610}
2611
2612
2613/* method/function reflection information --------------------------------- */
2617
2619{
2620 std::vector<cppyy_index_t> result = Cppyy::GetMethodIndicesFromName(scope, name);
2621
2622 if (result.empty())
2623 return (cppyy_index_t*)nullptr;
2624
2626 for (int i = 0; i < (int)result.size(); ++i) llresult[i] = result[i];
2627 llresult[result.size()] = -1;
2628 return llresult;
2629}
2630
2634
2638
2642
2646
2650
2654
2658
2662
2666
2670
2674
2678
2683
2687
2691
2695
2699
2703
2707
2711
2715
2716
2717/* method properties ------------------------------------------------------ */
2721
2725
2729
2733
2737
2738
2739/* data member reflection information ------------------------------------- */
2743
2747
2751
2755
2759
2760
2761
2762/* data member properties ------------------------------------------------- */
2766
2770
2774
2778
2782
2786
2787
2788/* misc helpers ----------------------------------------------------------- */
2791 int result = gSystem->Load(lib_name);
2792 return (void*)(result == 0 /* success */ || result == 1 /* already loaded */);
2793}
2794
2795#if defined(_MSC_VER)
2796long long cppyy_strtoll(const char* str) {
2797 return _strtoi64(str, NULL, 0);
2798}
2799
2800extern "C" {
2801unsigned long long cppyy_strtoull(const char* str) {
2802 return _strtoui64(str, NULL, 0);
2803}
2804}
2805#else
2806long long cppyy_strtoll(const char* str) {
2807 return strtoll(str, NULL, 0);
2808}
2809
2810extern "C" {
2811unsigned long long cppyy_strtoull(const char* str) {
2812 return strtoull(str, NULL, 0);
2813}
2814}
2815#endif
2816
2817void cppyy_free(void* ptr) {
2818 free(ptr);
2819}
2820
2821cppyy_object_t cppyy_charp2stdstring(const char* str, size_t sz) {
2822 return (cppyy_object_t)new std::string(str, sz);
2823}
2824
2825const char* cppyy_stdstring2charp(cppyy_object_t ptr, size_t* lsz) {
2826 *lsz = ((std::string*)ptr)->size();
2827 return ((std::string*)ptr)->data();
2828}
2829
2831 return (cppyy_object_t)new std::string(*(std::string*)ptr);
2832}
2833
2835 return (double)*(long double*)p;
2836}
2837
2838void cppyy_double2longdouble(double d, void* p) {
2839 *(long double*)p = d;
2840}
2841
2843 return (int)(*(std::vector<bool>*)ptr)[idx];
2844}
2845
2847 (*(std::vector<bool>*)ptr)[idx] = (bool)value;
2848}
2849
2850} // end C-linkage wrappers
#define d(i)
Definition RSha256.hxx:102
#define b(i)
Definition RSha256.hxx:100
#define f(i)
Definition RSha256.hxx:104
#define c(i)
Definition RSha256.hxx:101
static Roo_reg_AGKInteg1D instance
int Int_t
Definition RtypesCore.h:45
long double LongDouble_t
Definition RtypesCore.h:61
long long Long64_t
Definition RtypesCore.h:69
constexpr Bool_t kTRUE
Definition RtypesCore.h:93
@ kMAXSIGNALS
Definition Rtypes.h:59
ROOT::Detail::TRangeCast< T, true > TRangeDynCast
TRangeDynCast is an adapter class that allows the typed iteration through a TCollection.
@ kOther_t
Definition TDataType.h:32
@ kIsDestructor
@ kIsTemplateSpec
@ kIsConstructor
@ kClassIsAggregate
@ kClassHasExplicitDtor
@ kClassHasImplicitDtor
@ kIsPublic
Definition TDictionary.h:75
@ kIsConstant
Definition TDictionary.h:88
@ kIsConstMethod
Definition TDictionary.h:96
@ kIsEnum
Definition TDictionary.h:68
@ kIsPrivate
Definition TDictionary.h:77
@ kIsFundamental
Definition TDictionary.h:70
@ kIsAbstract
Definition TDictionary.h:71
@ kIsStatic
Definition TDictionary.h:80
@ kIsProtected
Definition TDictionary.h:76
@ kIsVirtual
Definition TDictionary.h:72
@ kIsNamespace
Definition TDictionary.h:95
@ kIsVirtualBase
Definition TDictionary.h:89
constexpr Int_t kFatal
Definition TError.h:50
Int_t gErrorIgnoreLevel
Error handling routines.
Definition TError.cxx:31
R__EXTERN TExceptionHandler * gExceptionHandler
Definition TException.h:79
R__EXTERN ExceptionContext_t * gException
Definition TException.h:69
R__EXTERN void Throw(int code)
If an exception context has been set (using the TRY and RETRY macros) jump back to where it was set.
winID h TVirtualViewer3D TVirtualGLPainter p
Option_t Option_t TPoint TPoint const char GetTextMagnitude GetFillStyle GetLineColor GetLineWidth GetMarkerStyle GetTextAlign GetTextColor GetTextSize void data
Option_t Option_t TPoint TPoint const char GetTextMagnitude GetFillStyle GetLineColor GetLineWidth GetMarkerStyle GetTextAlign GetTextColor GetTextSize void char Point_t Rectangle_t WindowAttributes_t Float_t Float_t Float_t Int_t Int_t UInt_t UInt_t Rectangle_t Int_t Int_t Window_t TString Int_t GCValues_t GetPrimarySelectionOwner GetDisplay GetScreen GetColormap GetNativeEvent const char const char dpyName wid window const char font_name cursor keysym reg const char only_if_exist regb h Point_t winding char text const char depth char const char Int_t count const char ColorStruct_t color const char Pixmap_t Pixmap_t PictureAttributes_t attr const char char ret_data h unsigned char height h offset
Option_t Option_t TPoint TPoint const char GetTextMagnitude GetFillStyle GetLineColor GetLineWidth GetMarkerStyle GetTextAlign GetTextColor GetTextSize void char Point_t Rectangle_t WindowAttributes_t Float_t r
Option_t Option_t TPoint TPoint const char GetTextMagnitude GetFillStyle GetLineColor GetLineWidth GetMarkerStyle GetTextAlign GetTextColor GetTextSize void char Point_t Rectangle_t WindowAttributes_t Float_t Float_t Float_t Int_t Int_t UInt_t UInt_t Rectangle_t result
Option_t Option_t TPoint TPoint const char GetTextMagnitude GetFillStyle GetLineColor GetLineWidth GetMarkerStyle GetTextAlign GetTextColor GetTextSize void char Point_t Rectangle_t WindowAttributes_t index
Option_t Option_t TPoint TPoint const char GetTextMagnitude GetFillStyle GetLineColor GetLineWidth GetMarkerStyle GetTextAlign GetTextColor GetTextSize void char Point_t Rectangle_t WindowAttributes_t Float_t Float_t Float_t Int_t Int_t UInt_t UInt_t Rectangle_t Int_t Int_t Window_t TString Int_t GCValues_t GetPrimarySelectionOwner GetDisplay GetScreen GetColormap GetNativeEvent const char const char dpyName wid window const char font_name cursor keysym reg const char only_if_exist regb h Point_t winding char text const char depth char const char Int_t count const char ColorStruct_t color const char Pixmap_t Pixmap_t PictureAttributes_t attr const char char ret_data h unsigned char height h length
Option_t Option_t TPoint TPoint const char GetTextMagnitude GetFillStyle GetLineColor GetLineWidth GetMarkerStyle GetTextAlign GetTextColor GetTextSize void value
Option_t Option_t TPoint TPoint const char GetTextMagnitude GetFillStyle GetLineColor GetLineWidth GetMarkerStyle GetTextAlign GetTextColor GetTextSize void char Point_t Rectangle_t WindowAttributes_t Float_t Float_t Float_t Int_t Int_t UInt_t UInt_t Rectangle_t Int_t Int_t Window_t TString Int_t GCValues_t GetPrimarySelectionOwner GetDisplay GetScreen GetColormap GetNativeEvent const char const char dpyName wid window const char font_name cursor keysym reg const char only_if_exist regb h Point_t winding char text const char depth char const char Int_t count const char ColorStruct_t color const char Pixmap_t Pixmap_t PictureAttributes_t attr const char char ret_data h unsigned char height h req_type
Option_t Option_t TPoint TPoint const char GetTextMagnitude GetFillStyle GetLineColor GetLineWidth GetMarkerStyle GetTextAlign GetTextColor GetTextSize void funcs
Option_t Option_t TPoint TPoint const char GetTextMagnitude GetFillStyle GetLineColor GetLineWidth GetMarkerStyle GetTextAlign GetTextColor GetTextSize void char Point_t Rectangle_t WindowAttributes_t Float_t Float_t Float_t Int_t Int_t UInt_t UInt_t Rectangle_t Int_t Int_t Window_t TString Int_t GCValues_t GetPrimarySelectionOwner GetDisplay GetScreen GetColormap GetNativeEvent const char const char dpyName wid window const char font_name cursor keysym reg const char only_if_exist regb h Point_t winding char text const char depth char const char Int_t count const char ColorStruct_t color const char Pixmap_t Pixmap_t PictureAttributes_t attr const char char ret_data h unsigned char height h Atom_t Int_t ULong_t ULong_t unsigned char prop_list Atom_t Atom_t Atom_t Time_t type
char name[80]
Definition TGX11.cxx:110
#define gInterpreter
#define gROOT
Definition TROOT.h:406
R__EXTERN TSystem * gSystem
Definition TSystem.h:572
static struct Signalmap_t gSignalMap[kMAXSIGNALS]
size_t cppyy_scope_t
Definition capi.h:12
cppyy_scope_t cppyy_type_t
Definition capi.h:13
intptr_t cppyy_method_t
Definition capi.h:15
size_t cppyy_index_t
Definition capi.h:17
void * cppyy_object_t
Definition capi.h:14
unsigned long cppyy_exctype_t
Definition capi.h:20
void * cppyy_funcaddr_t
Definition capi.h:18
const char * proto
Definition civetweb.c:17535
#define free
Definition civetweb.c:1539
#define malloc
Definition civetweb.c:1536
const_iterator end() const
Each class (see TClass) has a linked list of its base class(es).
Definition TBaseClass.h:33
Long_t Property() const override
Get property description word. For meaning of bits see EProperty.
TClassRef is used to implement a permanent reference to a TClass object.
Definition TClassRef.h:28
TClass * GetClass() const
Definition TClassRef.h:66
TClass instances represent classes, structs and namespaces in the ROOT type system.
Definition TClass.h:81
TList * GetListOfUsingDataMembers(Bool_t load=kTRUE)
Return list containing the TDataMembers of using declarations of a class.
Definition TClass.cxx:3855
void * New(ENewType defConstructor=kClassNew, Bool_t quiet=kFALSE) const
Return a pointer to a newly allocated object of this class.
Definition TClass.cxx:5047
TMethod * GetMethod(const char *method, const char *params, Bool_t objectIsConst=kFALSE)
Find the best method (if there is one) matching the parameters.
Definition TClass.cxx:4480
TMethod * GetMethodWithPrototype(const char *method, const char *proto, Bool_t objectIsConst=kFALSE, ROOT::EFunctionMatchMode mode=ROOT::kConversionMatch)
Find the method with a given prototype.
Definition TClass.cxx:4525
void Destructor(void *obj, Bool_t dtorOnly=kFALSE)
Explicitly call destructor for object.
Definition TClass.cxx:5469
TList * GetListOfFunctionTemplates(Bool_t load=kTRUE)
Return TListOfFunctionTemplates for a class.
Definition TClass.cxx:3867
TList * GetListOfEnums(Bool_t load=kTRUE)
Return a list containing the TEnums of a class.
Definition TClass.cxx:3755
TList * GetListOfMethods(Bool_t load=kTRUE)
Return list containing the TMethods of a class.
Definition TClass.cxx:3881
TList * GetListOfDataMembers(Bool_t load=kTRUE)
Return list containing the TDataMembers of a class.
Definition TClass.cxx:3839
@ kRealNew
Definition TClass.h:107
TList * GetListOfBases()
Return list containing the TBaseClass(es) of a class.
Definition TClass.cxx:3705
Bool_t IsLoaded() const
Return true if the shared library of this class is currently in the a process's memory.
Definition TClass.cxx:5981
ClassInfo_t * GetClassInfo() const
Definition TClass.h:433
Long_t ClassProperty() const
Return the C++ property of this class, eg.
Definition TClass.cxx:2465
Long_t Property() const override
Returns the properties of the TClass as a bit field stored as a Long_t value.
Definition TClass.cxx:6155
Bool_t HasDefaultConstructor(Bool_t testio=kFALSE) const
Return true if we have access to a constructor usable for I/O.
Definition TClass.cxx:7467
TMethod * GetMethodAllAny(const char *method)
Return pointer to method without looking at parameters.
Definition TClass.cxx:4453
ROOT::DelFunc_t GetDelete() const
Return the wrapper around delete ThiObject.
Definition TClass.cxx:7537
TClass * GetActualClass(const void *object) const
Return a pointer to the real class of the object.
Definition TClass.cxx:2676
static TClass * GetClass(const char *name, Bool_t load=kTRUE, Bool_t silent=kFALSE)
Static method returning pointer to TClass of the specified class name.
Definition TClass.cxx:3037
Collection abstract base class.
Definition TCollection.h:65
virtual Int_t GetSize() const
Return the capacity of the collection, i.e.
All ROOT classes may have RTTI (run time type identification) support added.
Definition TDataMember.h:31
Basic data type descriptor (datatype information is obtained from CINT).
Definition TDataType.h:44
Int_t GetType() const
Definition TDataType.h:68
const char * GetFullTypeName() const
Get full type description of typedef, e,g.: "class TDirectory*".
Long_t Property() const override
Get property description word. For meaning of bits see EProperty.
Int_t Size() const
Get size of basic typedef'ed type.
const void * DeclId_t
The TEnumConstant class implements the constants of the enum type.
The TEnum class implements the enum type.
Definition TEnum.h:33
Definition TEnv.h:86
const char * GetValue() const
Definition TEnv.h:110
const char * GetName() const override
Returns name of object.
Definition TEnv.h:109
Dictionary for function template This class describes one single function template.
Global functions class (global functions are obtained from CINT).
Definition TFunction.h:30
Long_t Property() const override
Get property description word. For meaning of bits see EProperty.
Long_t ExtraProperty() const
Get property description word. For meaning of bits see EProperty.
std::string GetReturnTypeNormalizedName() const
Get the normalized name of the return type.
Global variables class (global variables are obtained from CINT).
Definition TGlobal.h:28
THashList implements a hybrid collection class consisting of a hash table and a list to store TObject...
Definition THashList.h:34
A collection of TDataMember objects designed for fast access given a DeclId_t and for keep track of T...
A collection of TEnum objects designed for fast access given a DeclId_t and for keep track of TEnum t...
TObject * At(Int_t idx) const override
Returns the object at position idx. Returns 0 if idx is out of range.
Definition TList.cxx:355
Each ROOT method (see TMethod) has a linked list of its arguments.
Definition TMethodArg.h:36
const char * GetFullTypeName() const
Get full type description of method argument, e.g.: "class TDirectory*".
TypeInfo_t * GetTypeInfo() const
Get the TypeInfo of the method argument.
const char * GetDefault() const
Get default value of method argument.
std::string GetTypeNormalizedName() const
Get the normalized name of the return type.
const char * GetName() const override
Returns name of object.
Definition TNamed.h:47
virtual const char * GetName() const
Returns name of object.
Definition TObject.cxx:444
virtual TObject * FindObject(const char *name) const
Must be redefined in derived classes.
Definition TObject.cxx:408
static Bool_t Initialized()
Return kTRUE if the TROOT object has been initialized.
Definition TROOT.cxx:2909
virtual int Load(const char *module, const char *entry="", Bool_t system=kFALSE)
Load a shared library.
Definition TSystem.cxx:1857
virtual void Exit(int code, Bool_t mode=kTRUE)
Exit the application.
Definition TSystem.cxx:716
virtual void StackTrace()
Print a stack trace.
Definition TSystem.cxx:734
char * cppyy_method_mangled_name(cppyy_method_t method)
int cppyy_is_staticdata(cppyy_type_t type, cppyy_index_t datamember_index)
int cppyy_vectorbool_getitem(cppyy_object_t ptr, int idx)
int cppyy_has_virtual_destructor(cppyy_type_t type)
int cppyy_is_publicmethod(cppyy_method_t method)
void * cppyy_call_r(cppyy_method_t method, cppyy_object_t self, int nargs, void *args)
cppyy_object_t cppyy_constructor(cppyy_method_t method, cppyy_type_t klass, int nargs, void *args)
void * cppyy_load_dictionary(const char *lib_name)
static void cond_add(Cppyy::TCppScope_t scope, const std::string &ns_scope, std::set< std::string > &cppnames, const char *name, bool nofilter=false)
size_t cppyy_function_arg_typeoffset()
int cppyy_exists_method_template(cppyy_scope_t scope, const char *name)
int cppyy_get_num_templated_methods(cppyy_scope_t scope)
char * cppyy_call_s(cppyy_method_t method, cppyy_object_t self, int nargs, void *args, size_t *lsz)
char * cppyy_resolve_enum(const char *enum_type)
cppyy_object_t cppyy_charp2stdstring(const char *str, size_t sz)
static Name2ClassRefIndex_t g_name2classrefidx
int cppyy_is_constructor(cppyy_method_t method)
int cppyy_is_enum_data(cppyy_scope_t scope, cppyy_index_t idata)
#define FILL_COLL(type, filter)
char * cppyy_scoped_final_name(cppyy_type_t type)
int cppyy_num_bases(cppyy_type_t type)
const int SMALL_ARGS_N
static std::string outer_with_template(const std::string &name)
cppyy_method_t cppyy_get_method_template(cppyy_scope_t scope, const char *name, const char *proto)
static std::string outer_no_template(const std::string &name)
int cppyy_is_smartptr(cppyy_type_t type)
static std::string type_remap(const std::string &n1, const std::string &n2)
static std::map< Cppyy::TCppType_t, bool > sHasOperatorDelete
long long cppyy_strtoll(const char *str)
static std::set< std::string > gRootSOs
int cppyy_is_subtype(cppyy_type_t derived, cppyy_type_t base)
static TClassRef & type_from_handle(Cppyy::TCppScope_t scope)
double cppyy_call_nld(cppyy_method_t method, cppyy_object_t self, int nargs, void *args)
void cppyy_free(void *ptr)
int cppyy_smartptr_info(const char *name, cppyy_type_t *raw, cppyy_method_t *deref)
unsigned long long cppyy_strtoull(const char *str)
char * cppyy_method_arg_type(cppyy_method_t method, int arg_index)
cppyy_object_t cppyy_stdstring2stdstring(cppyy_object_t ptr)
char * cppyy_base_name(cppyy_type_t type, int base_index)
cppyy_scope_t * cppyy_get_using_namespaces(cppyy_scope_t scope)
static bool copy_args(Parameter *args, size_t nargs, void **vargs)
int cppyy_num_bases_longest_branch(cppyy_type_t type)
static TInterpreter::CallFuncIFacePtr_t GetCallFunc(Cppyy::TCppMethod_t method)
int cppyy_is_publicdata(cppyy_type_t type, cppyy_index_t datamember_index)
CPyCppyy::Parameter Parameter
intptr_t cppyy_datamember_offset(cppyy_scope_t scope, int datamember_index)
char * cppyy_datamember_type(cppyy_scope_t scope, int datamember_index)
static bool is_missclassified_stl(const std::string &name)
std::map< std::string, ClassRefs_t::size_type > Name2ClassRefIndex_t
void cppyy_destructor(cppyy_type_t klass, cppyy_object_t self)
static const ClassRefs_t::size_type STD_HANDLE
char cppyy_call_c(cppyy_method_t method, cppyy_object_t self, int nargs, void *args)
ptrdiff_t cppyy_base_offset(cppyy_type_t derived, cppyy_type_t base, cppyy_object_t address, int direction)
long double cppyy_call_ld(cppyy_method_t method, cppyy_object_t self, int nargs, void *args)
int cppyy_is_const_data(cppyy_scope_t scope, cppyy_index_t idata)
const char ** cppyy_get_all_cpp_names(cppyy_scope_t scope, size_t *count)
void cppyy_call_v(cppyy_method_t method, cppyy_object_t self, int nargs, void *args)
static std::set< std::string > gSmartPtrTypes
double cppyy_longdouble2double(void *p)
int cppyy_method_req_args(cppyy_method_t method)
int cppyy_is_staticmethod(cppyy_method_t method)
static GlobalVars_t g_globalvars
cppyy_index_t * cppyy_method_indices_from_name(cppyy_scope_t scope, const char *name)
static char * cppstring_to_cstring(const std::string &cppstr)
char * cppyy_method_signature(cppyy_method_t method, int show_formalargs)
int cppyy_is_abstract(cppyy_type_t type)
static void release_args(Parameter *args, size_t nargs)
int cppyy_call_i(cppyy_method_t method, cppyy_object_t self, int nargs, void *args)
static std::set< std::string > g_builtins
unsigned char cppyy_call_b(cppyy_method_t method, cppyy_object_t self, int nargs, void *args)
int cppyy_is_template(const char *template_name)
char * cppyy_method_result_type(cppyy_method_t method)
cppyy_type_t cppyy_actual_class(cppyy_type_t klass, cppyy_object_t obj)
int cppyy_is_templated_constructor(cppyy_scope_t scope, cppyy_index_t imeth)
char * cppyy_method_name(cppyy_method_t method)
int cppyy_is_protectedmethod(cppyy_method_t method)
char * cppyy_final_name(cppyy_type_t type)
char * cppyy_get_templated_method_name(cppyy_scope_t scope, cppyy_index_t imeth)
char * cppyy_method_full_name(cppyy_method_t method)
long cppyy_call_l(cppyy_method_t method, cppyy_object_t self, int nargs, void *args)
void cppyy_double2longdouble(double d, void *p)
void cppyy_deallocate_function_args(void *args)
int cppyy_method_is_template(cppyy_scope_t scope, cppyy_index_t idx)
static std::vector< CallWrapper * > gWrapperHolder
static bool gEnableFastPath
void cppyy_destruct(cppyy_type_t type, cppyy_object_t self)
int cppyy_is_enum(const char *type_name)
size_t cppyy_size_of_type(const char *type_name)
int cppyy_is_destructor(cppyy_method_t method)
cppyy_object_t cppyy_allocate(cppyy_type_t type)
char * cppyy_datamember_name(cppyy_scope_t scope, int datamember_index)
cppyy_object_t cppyy_construct(cppyy_type_t type)
static ClassRefs_t g_classrefs(1)
static bool WrapperCall(Cppyy::TCppMethod_t method, size_t nargs, void *args_, void *self, void *result)
static std::map< std::string, std::string > resolved_enum_types
int cppyy_is_namespace(cppyy_scope_t scope)
cppyy_object_t cppyy_call_o(cppyy_method_t method, cppyy_object_t self, int nargs, void *args, cppyy_type_t result_type)
long long cppyy_call_ll(cppyy_method_t method, cppyy_object_t self, int nargs, void *args)
cppyy_scope_t cppyy_get_scope(const char *scope_name)
void cppyy_vectorbool_setitem(cppyy_object_t ptr, int idx, int value)
static size_t CALL_NARGS(size_t nargs)
static CallWrapper * new_CallWrapper(TFunction *f)
void cppyy_add_smartptr_type(const char *type_name)
void * cppyy_allocate_function_args(int nargs)
float cppyy_call_f(cppyy_method_t method, cppyy_object_t self, int nargs, void *args)
short cppyy_call_h(cppyy_method_t method, cppyy_object_t self, int nargs, void *args)
int cppyy_is_protecteddata(cppyy_type_t type, cppyy_index_t datamember_index)
static std::set< std::string > gSTLNames
static const ClassRefs_t::size_type GLOBAL_HANDLE
int cppyy_get_dimension_size(cppyy_scope_t scope, cppyy_index_t idata, int dimension)
char * cppyy_method_signature_max(cppyy_method_t method, int show_formalargs, int maxargs)
double cppyy_call_d(cppyy_method_t method, cppyy_object_t self, int nargs, void *args)
int cppyy_num_methods(cppyy_scope_t scope)
char * cppyy_method_prototype(cppyy_scope_t scope, cppyy_method_t method, int show_formalargs)
std::vector< TGlobal * > GlobalVars_t
char * cppyy_resolve_name(const char *cppitem_name)
cppyy_method_t cppyy_get_method(cppyy_scope_t scope, cppyy_index_t idx)
std::vector< TClassRef > ClassRefs_t
size_t cppyy_function_arg_sizeof()
int cppyy_is_const_method(cppyy_method_t method)
static std::map< TDictionary::DeclId_t, CallWrapper * > gMethodTemplates
int cppyy_num_datamembers(cppyy_scope_t scope)
#define CPPYY_HANDLE_EXCEPTION
size_t cppyy_size_of_klass(cppyy_type_t klass)
static bool match_name(const std::string &tname, const std::string fname)
int cppyy_datamember_index(cppyy_scope_t scope, const char *name)
cppyy_index_t cppyy_get_global_operator(cppyy_scope_t scope, cppyy_scope_t lc, cppyy_scope_t rc, const char *op)
static TFunction * m2f(Cppyy::TCppMethod_t method)
void cppyy_deallocate(cppyy_type_t type, cppyy_object_t self)
const char * cppyy_stdstring2charp(cppyy_object_t ptr, size_t *lsz)
int cppyy_compile(const char *code)
static CallWrapper::DeclId_t m2d(Cppyy::TCppMethod_t method)
int cppyy_is_aggregate(cppyy_type_t type)
static TDataMember * GetDataMemberByIndex(TClassRef cr, int idata)
#define CPPYY_IMP_CALL(typecode, rtype)
int cppyy_method_num_args(cppyy_method_t method)
static std::set< std::string > gInitialNames
char * cppyy_method_arg_default(cppyy_method_t method, int arg_index)
static T CallT(Cppyy::TCppMethod_t method, Cppyy::TCppObject_t self, size_t nargs, void *args)
cppyy_funcaddr_t cppyy_function_address(cppyy_method_t method)
int cppyy_has_complex_hierarchy(cppyy_type_t type)
Cppyy::TCppIndex_t GetLongestInheritancePath(TClass *klass)
Retrieve number of base classes in the longest branch of the inheritance tree of the input class.
char * cppyy_method_arg_name(cppyy_method_t method, int arg_index)
const Int_t n
Definition legend1.C:16
#define I(x, y, z)
#define H(x, y, z)
size_t TCppIndex_t
Definition cpp_cppyy.h:24
RPY_EXPORTED TCppIndex_t GetNumTemplatedMethods(TCppScope_t scope, bool accept_namespace=false)
RPY_EXPORTED std::string GetMethodMangledName(TCppMethod_t)
RPY_EXPORTED TCppObject_t CallO(TCppMethod_t method, TCppObject_t self, size_t nargs, void *args, TCppType_t result_type)
RPY_EXPORTED int CallI(TCppMethod_t method, TCppObject_t self, size_t nargs, void *args)
RPY_EXPORTED TCppIndex_t CompareMethodArgType(TCppMethod_t, TCppIndex_t iarg, const std::string &req_type)
RPY_EXPORTED ptrdiff_t GetBaseOffset(TCppType_t derived, TCppType_t base, TCppObject_t address, int direction, bool rerror=false)
RPY_EXPORTED void DeallocateFunctionArgs(void *args)
RPY_EXPORTED bool IsEnumData(TCppScope_t scope, TCppIndex_t idata)
RPY_EXPORTED unsigned char CallB(TCppMethod_t method, TCppObject_t self, size_t nargs, void *args)
RPY_EXPORTED Long64_t CallLL(TCppMethod_t method, TCppObject_t self, size_t nargs, void *args)
RPY_EXPORTED bool IsAbstract(TCppType_t type)
RPY_EXPORTED size_t SizeOf(TCppType_t klass)
RPY_EXPORTED TCppObject_t CallConstructor(TCppMethod_t method, TCppType_t type, size_t nargs, void *args)
intptr_t TCppMethod_t
Definition cpp_cppyy.h:22
RPY_EXPORTED void * AllocateFunctionArgs(size_t nargs)
RPY_EXPORTED bool IsDefaultConstructable(TCppType_t type)
RPY_EXPORTED bool IsTemplate(const std::string &template_name)
RPY_EXPORTED TCppIndex_t GetMethodReqArgs(TCppMethod_t)
RPY_EXPORTED bool IsEnum(const std::string &type_name)
RPY_EXPORTED std::vector< TCppIndex_t > GetMethodIndicesFromName(TCppScope_t scope, const std::string &name)
RPY_EXPORTED bool ExistsMethodTemplate(TCppScope_t scope, const std::string &name)
RPY_EXPORTED TCppIndex_t GetNumDatamembers(TCppScope_t scope, bool accept_namespace=false)
RPY_EXPORTED std::string ToString(TCppType_t klass, TCppObject_t obj)
RPY_EXPORTED std::string GetMethodName(TCppMethod_t)
RPY_EXPORTED bool IsConstData(TCppScope_t scope, TCppIndex_t idata)
RPY_EXPORTED void AddSmartPtrType(const std::string &)
RPY_EXPORTED bool Compile(const std::string &code, bool silent=false)
RPY_EXPORTED void CallDestructor(TCppType_t type, TCppObject_t self)
RPY_EXPORTED TCppScope_t gGlobalScope
Definition cpp_cppyy.h:53
RPY_EXPORTED bool IsProtectedData(TCppScope_t scope, TCppIndex_t idata)
RPY_EXPORTED std::string GetMethodSignature(TCppMethod_t, bool show_formalargs, TCppIndex_t maxargs=(TCppIndex_t) -1)
RPY_EXPORTED int GetDimensionSize(TCppScope_t scope, TCppIndex_t idata, int dimension)
RPY_EXPORTED bool IsSubtype(TCppType_t derived, TCppType_t base)
RPY_EXPORTED TCppMethod_t GetMethodTemplate(TCppScope_t scope, const std::string &name, const std::string &proto)
void * TCppObject_t
Definition cpp_cppyy.h:21
RPY_EXPORTED bool IsConstructor(TCppMethod_t method)
RPY_EXPORTED TCppIndex_t GetNumMethods(TCppScope_t scope, bool accept_namespace=false)
RPY_EXPORTED TCppObject_t Construct(TCppType_t type, void *arena=nullptr)
RPY_EXPORTED bool GetSmartPtrInfo(const std::string &, TCppType_t *raw, TCppMethod_t *deref)
RPY_EXPORTED char CallC(TCppMethod_t method, TCppObject_t self, size_t nargs, void *args)
RPY_EXPORTED std::string GetMethodArgName(TCppMethod_t, TCppIndex_t iarg)
RPY_EXPORTED double CallD(TCppMethod_t method, TCppObject_t self, size_t nargs, void *args)
RPY_EXPORTED size_t GetFunctionArgTypeoffset()
RPY_EXPORTED TCppObject_t Allocate(TCppType_t type)
RPY_EXPORTED void Destruct(TCppType_t type, TCppObject_t instance)
RPY_EXPORTED std::string ResolveName(const std::string &cppitem_name)
TCppScope_t TCppType_t
Definition cpp_cppyy.h:19
RPY_EXPORTED void AddTypeReducer(const std::string &reducable, const std::string &reduced)
RPY_EXPORTED std::string ResolveEnum(const std::string &enum_type)
RPY_EXPORTED long long GetEnumDataValue(TCppEnum_t, TCppIndex_t idata)
RPY_EXPORTED bool IsAggregate(TCppType_t type)
RPY_EXPORTED TCppIndex_t GetMethodNumArgs(TCppMethod_t)
RPY_EXPORTED TCppType_t GetActualClass(TCppType_t klass, TCppObject_t obj)
RPY_EXPORTED std::string GetBaseName(TCppType_t type, TCppIndex_t ibase)
RPY_EXPORTED bool IsNamespace(TCppScope_t scope)
void * TCppEnum_t
Definition cpp_cppyy.h:20
RPY_EXPORTED float CallF(TCppMethod_t method, TCppObject_t self, size_t nargs, void *args)
RPY_EXPORTED std::string GetScopedFinalName(TCppType_t type)
RPY_EXPORTED void Deallocate(TCppType_t type, TCppObject_t instance)
RPY_EXPORTED bool IsPublicData(TCppScope_t scope, TCppIndex_t idata)
RPY_EXPORTED std::string GetMethodArgType(TCppMethod_t, TCppIndex_t iarg)
RPY_EXPORTED long CallL(TCppMethod_t method, TCppObject_t self, size_t nargs, void *args)
RPY_EXPORTED void * CallR(TCppMethod_t method, TCppObject_t self, size_t nargs, void *args)
RPY_EXPORTED std::string GetEnumDataName(TCppEnum_t, TCppIndex_t idata)
RPY_EXPORTED void GetAllCppNames(TCppScope_t scope, std::set< std::string > &cppnames)
RPY_EXPORTED bool IsComplete(const std::string &type_name)
RPY_EXPORTED bool IsBuiltin(const std::string &type_name)
RPY_EXPORTED bool IsStaticMethod(TCppMethod_t method)
RPY_EXPORTED TCppIndex_t GetDatamemberIndex(TCppScope_t scope, const std::string &name)
RPY_EXPORTED void CallV(TCppMethod_t method, TCppObject_t self, size_t nargs, void *args)
RPY_EXPORTED LongDouble_t CallLD(TCppMethod_t method, TCppObject_t self, size_t nargs, void *args)
RPY_EXPORTED bool IsStaticData(TCppScope_t scope, TCppIndex_t idata)
RPY_EXPORTED std::string GetDatamemberType(TCppScope_t scope, TCppIndex_t idata)
RPY_EXPORTED TCppMethod_t GetMethod(TCppScope_t scope, TCppIndex_t imeth)
RPY_EXPORTED bool IsDestructor(TCppMethod_t method)
RPY_EXPORTED bool IsSmartPtr(TCppType_t type)
RPY_EXPORTED std::string GetTemplatedMethodName(TCppScope_t scope, TCppIndex_t imeth)
RPY_EXPORTED size_t GetFunctionArgSizeof()
RPY_EXPORTED TCppScope_t GetScope(const std::string &scope_name)
RPY_EXPORTED bool HasVirtualDestructor(TCppType_t type)
RPY_EXPORTED bool IsConstMethod(TCppMethod_t)
RPY_EXPORTED bool HasComplexHierarchy(TCppType_t type)
RPY_EXPORTED std::vector< TCppScope_t > GetUsingNamespaces(TCppScope_t)
size_t TCppScope_t
Definition cpp_cppyy.h:18
RPY_EXPORTED bool IsTemplatedConstructor(TCppScope_t scope, TCppIndex_t imeth)
RPY_EXPORTED TCppIndex_t GetGlobalOperator(TCppType_t scope, const std::string &lc, const std::string &rc, const std::string &op)
RPY_EXPORTED TCppFuncAddr_t GetFunctionAddress(TCppMethod_t method, bool check_enabled=true)
RPY_EXPORTED TCppIndex_t GetNumEnumData(TCppEnum_t)
RPY_EXPORTED TCppIndex_t GetNumBases(TCppType_t type)
RPY_EXPORTED TCppIndex_t GetNumBasesLongestBranch(TCppType_t type)
Retrieve number of base classes in the longest branch of the inheritance tree.
RPY_EXPORTED std::string GetMethodPrototype(TCppScope_t scope, TCppMethod_t, bool show_formalargs)
RPY_EXPORTED std::string GetMethodResultType(TCppMethod_t)
RPY_EXPORTED std::string GetFinalName(TCppType_t type)
RPY_EXPORTED char * CallS(TCppMethod_t method, TCppObject_t self, size_t nargs, void *args, size_t *length)
RPY_EXPORTED std::string GetMethodArgDefault(TCppMethod_t, TCppIndex_t iarg)
RPY_EXPORTED bool IsMethodTemplate(TCppScope_t scope, TCppIndex_t imeth)
RPY_EXPORTED std::string GetDatamemberName(TCppScope_t scope, TCppIndex_t idata)
RPY_EXPORTED bool IsPublicMethod(TCppMethod_t method)
RPY_EXPORTED intptr_t GetDatamemberOffset(TCppScope_t scope, TCppIndex_t idata)
void * TCppFuncAddr_t
Definition cpp_cppyy.h:25
RPY_EXPORTED std::string GetMethodFullName(TCppMethod_t)
RPY_EXPORTED short CallH(TCppMethod_t method, TCppObject_t self, size_t nargs, void *args)
RPY_EXPORTED bool IsProtectedMethod(TCppMethod_t method)
RPY_EXPORTED TCppEnum_t GetEnum(TCppScope_t scope, const std::string &enum_name)
void(* DelFunc_t)(void *)
Definition Rtypes.h:116
std::string ResolveTypedef(const char *tname, bool resolveAll=false)
std::string CleanType(const char *typeDesc, int mode=0, const char **tail=nullptr)
Cleanup type description, redundant blanks removed and redundant tail ignored return *tail = pointer ...
std::string ShortType(const char *typeDesc, int mode)
Return the absolute type of typeDesc.
char * DemangleName(const char *mangled_name, int &errorCode)
Definition TClassEdit.h:208
#define RPY_EXTERN
union CPyCppyy::Parameter::Value fValue
const char * fSigName
TMarker m
Definition textangle.C:8