/* pybind11/cast.h: Partial template specializations to cast between C++ and Python types Copyright (c) 2016 Wenzel Jakob All rights reserved. Use of this source code is governed by a BSD-style license that can be found in the LICENSE file. */ #pragma once #include "pytypes.h" #include "typeid.h" #include "descr.h" #include #include #include NAMESPACE_BEGIN(pybind11) NAMESPACE_BEGIN(detail) /// Additional type information which does not fit into the PyTypeObject struct type_info { PyTypeObject *type; size_t type_size; void (*init_holder)(PyObject *, const void *); std::vector implicit_conversions; buffer_info *(*get_buffer)(PyObject *, void *) = nullptr; void *get_buffer_data = nullptr; }; PYBIND11_NOINLINE inline internals &get_internals() { static internals *internals_ptr = nullptr; if (internals_ptr) return *internals_ptr; handle builtins(PyEval_GetBuiltins()); const char *id = PYBIND11_INTERNALS_ID; capsule caps(builtins[id]); if (caps.check()) { internals_ptr = caps; } else { internals_ptr = new internals(); #if defined(WITH_THREAD) PyEval_InitThreads(); PyThreadState *tstate = PyThreadState_Get(); internals_ptr->tstate = PyThread_create_key(); PyThread_set_key_value(internals_ptr->tstate, tstate); internals_ptr->istate = tstate->interp; #endif builtins[id] = capsule(internals_ptr); internals_ptr->registered_exception_translators.push_front( [](std::exception_ptr p) -> void { try { if (p) std::rethrow_exception(p); } catch (const error_already_set &) { return; } catch (const index_error &e) { PyErr_SetString(PyExc_IndexError, e.what()); return; } catch (const value_error &e) { PyErr_SetString(PyExc_ValueError, e.what()); return; } catch (const stop_iteration &e) { PyErr_SetString(PyExc_StopIteration, e.what()); return; } catch (const std::bad_alloc &e) { PyErr_SetString(PyExc_MemoryError, e.what()); return; } catch (const std::domain_error &e) { PyErr_SetString(PyExc_ValueError, e.what()); return; } catch (const std::invalid_argument &e) { PyErr_SetString(PyExc_ValueError, e.what()); return; } catch (const std::length_error &e) { PyErr_SetString(PyExc_ValueError, e.what()); return; } catch (const std::out_of_range &e) { PyErr_SetString(PyExc_IndexError, e.what()); return; } catch (const std::range_error &e) { PyErr_SetString(PyExc_ValueError, e.what()); return; } catch (const std::exception &e) { PyErr_SetString(PyExc_RuntimeError, e.what()); return; } catch (...) { PyErr_SetString(PyExc_RuntimeError, "Caught an unknown exception!"); return; } } ); } return *internals_ptr; } PYBIND11_NOINLINE inline detail::type_info* get_type_info(PyTypeObject *type, bool throw_if_missing = true) { auto const &type_dict = get_internals().registered_types_py; do { auto it = type_dict.find(type); if (it != type_dict.end()) return (detail::type_info *) it->second; type = type->tp_base; if (!type) { if (throw_if_missing) pybind11_fail("pybind11::detail::get_type_info: unable to find type object!"); return nullptr; } } while (true); } PYBIND11_NOINLINE inline detail::type_info *get_type_info(const std::type_info &tp) { auto &types = get_internals().registered_types_cpp; auto it = types.find(std::type_index(tp)); if (it != types.end()) return (detail::type_info *) it->second; return nullptr; } PYBIND11_NOINLINE inline handle get_type_handle(const std::type_info &tp) { detail::type_info *type_info = get_type_info(tp); return handle(type_info ? ((PyObject *) type_info->type) : nullptr); } PYBIND11_NOINLINE inline std::string error_string() { PyObject *type, *value, *traceback; PyErr_Fetch(&type, &value, &traceback); std::string errorString; if (type) { errorString += (std::string) handle(type).str(); errorString += ": "; } if (value) errorString += (std::string) handle(value).str(); PyErr_Restore(type, value, traceback); return errorString; } PYBIND11_NOINLINE inline handle get_object_handle(const void *ptr) { auto instances = get_internals().registered_instances; auto it = instances.find(ptr); if (it == instances.end()) return handle(); return handle((PyObject *) it->second); } inline PyThreadState *get_thread_state_unchecked() { #if PY_VERSION_HEX < 0x03000000 return _PyThreadState_Current; #elif PY_VERSION_HEX < 0x03050000 return (PyThreadState*) _Py_atomic_load_relaxed(&_PyThreadState_Current); #elif PY_VERSION_HEX < 0x03050200 return (PyThreadState*) _PyThreadState_Current.value; #else return _PyThreadState_UncheckedGet(); #endif } class type_caster_generic { public: PYBIND11_NOINLINE type_caster_generic(const std::type_info &type_info) : typeinfo(get_type_info(type_info)) { } PYBIND11_NOINLINE bool load(handle src, bool convert) { if (!src || !typeinfo) return false; if (src.ptr() == Py_None) { value = nullptr; return true; } else if (PyType_IsSubtype(Py_TYPE(src.ptr()), typeinfo->type)) { value = ((instance *) src.ptr())->value; return true; } if (convert) { for (auto &converter : typeinfo->implicit_conversions) { temp = object(converter(src.ptr(), typeinfo->type), false); if (load(temp, false)) return true; } } return false; } PYBIND11_NOINLINE static handle cast(const void *_src, return_value_policy policy, handle parent, const std::type_info *type_info, const std::type_info *type_info_backup, void *(*copy_constructor)(const void *), void *(*move_constructor)(const void *), const void *existing_holder = nullptr) { void *src = const_cast(_src); if (src == nullptr) return handle(Py_None).inc_ref(); // avoid an issue with internal references matching their parent's address bool dont_cache = policy == return_value_policy::reference_internal && parent && ((instance *) parent.ptr())->value == (void *) src; auto& internals = get_internals(); auto it_instance = internals.registered_instances.find(src); if (it_instance != internals.registered_instances.end() && !dont_cache) return handle((PyObject *) it_instance->second).inc_ref(); auto it = internals.registered_types_cpp.find(std::type_index(*type_info)); if (it == internals.registered_types_cpp.end()) { type_info = type_info_backup; it = internals.registered_types_cpp.find(std::type_index(*type_info)); } if (it == internals.registered_types_cpp.end()) { std::string tname = type_info->name(); detail::clean_type_id(tname); std::string msg = "Unregistered type : " + tname; PyErr_SetString(PyExc_TypeError, msg.c_str()); return handle(); } auto tinfo = (const detail::type_info *) it->second; object inst(PyType_GenericAlloc(tinfo->type, 0), false); auto wrapper = (instance *) inst.ptr(); wrapper->value = src; wrapper->owned = true; wrapper->parent = nullptr; if (policy == return_value_policy::automatic) policy = return_value_policy::take_ownership; else if (policy == return_value_policy::automatic_reference) policy = return_value_policy::reference; if (policy == return_value_policy::copy) { wrapper->value = copy_constructor(wrapper->value); if (wrapper->value == nullptr) throw cast_error("return_value_policy = copy, but the object is non-copyable!"); } else if (policy == return_value_policy::move) { wrapper->value = move_constructor(wrapper->value); if (wrapper->value == nullptr) wrapper->value = copy_constructor(wrapper->value); if (wrapper->value == nullptr) throw cast_error("return_value_policy = move, but the object is neither movable nor copyable!"); } else if (policy == return_value_policy::reference) { wrapper->owned = false; } else if (policy == return_value_policy::reference_internal) { wrapper->owned = false; wrapper->parent = parent.inc_ref().ptr(); } tinfo->init_holder(inst.ptr(), existing_holder); if (!dont_cache) internals.registered_instances[wrapper->value] = inst.ptr(); return inst.release(); } protected: const type_info *typeinfo = nullptr; void *value = nullptr; object temp; }; /* Determine suitable casting operator */ template using cast_op_type = typename std::conditional::type>::value, typename std::add_pointer::type>::type, typename std::add_lvalue_reference::type>::type>::type; /// Generic type caster for objects stored on the heap template class type_caster_base : public type_caster_generic { public: static PYBIND11_DESCR name() { return type_descr(_()); } type_caster_base() : type_caster_generic(typeid(type)) { } static handle cast(const type &src, return_value_policy policy, handle parent) { if (policy == return_value_policy::automatic || policy == return_value_policy::automatic_reference) policy = return_value_policy::copy; return cast(&src, policy, parent); } static handle cast(type &&src, return_value_policy policy, handle parent) { if (policy == return_value_policy::automatic || policy == return_value_policy::automatic_reference) policy = return_value_policy::move; return cast(&src, policy, parent); } static handle cast(const type *src, return_value_policy policy, handle parent) { return type_caster_generic::cast( src, policy, parent, src ? &typeid(*src) : nullptr, &typeid(type), make_copy_constructor(src), make_move_constructor(src)); } template using cast_op_type = pybind11::detail::cast_op_type; operator type*() { return (type *) value; } operator type&() { if (!value) throw reference_cast_error(); return *((type *) value); } protected: typedef void *(*Constructor)(const void *stream); #if !defined(_MSC_VER) /* Only enabled when the types are {copy,move}-constructible *and* when the type does not have a private operator new implementaton. */ template static auto make_copy_constructor(const T *value) -> decltype(new T(*value), Constructor(nullptr)) { return [](const void *arg) -> void * { return new T(*((const T *) arg)); }; } template static auto make_move_constructor(const T *value) -> decltype(new T(std::move(*((T *) value))), Constructor(nullptr)) { return [](const void *arg) -> void * { return (void *) new T(std::move(*((T *) arg))); }; } #else /* Visual Studio 2015's SFINAE implementation doesn't yet handle the above robustly in all situations. Use a workaround that only tests for constructibility for now. */ template ::value>::type> static Constructor make_copy_constructor(const T *value) { return [](const void *arg) -> void * { return new T(*((const T *)arg)); }; } template ::value>::type> static Constructor make_move_constructor(const T *value) { return [](const void *arg) -> void * { return (void *) new T(std::move(*((T *)arg))); }; } #endif static Constructor make_copy_constructor(...) { return nullptr; } static Constructor make_move_constructor(...) { return nullptr; } }; template class type_caster : public type_caster_base { }; template class type_caster> : public type_caster_base { public: static handle cast(const std::reference_wrapper &src, return_value_policy policy, handle parent) { return type_caster_base::cast(&src.get(), policy, parent); } template using cast_op_type = std::reference_wrapper; operator std::reference_wrapper() { return std::ref(*((type *) this->value)); } }; #define PYBIND11_TYPE_CASTER(type, py_name) \ protected: \ type value; \ public: \ static PYBIND11_DESCR name() { return type_descr(py_name); } \ static handle cast(const type *src, return_value_policy policy, handle parent) { \ return cast(*src, policy, parent); \ } \ operator type*() { return &value; } \ operator type&() { return value; } \ template using cast_op_type = pybind11::detail::cast_op_type<_T> #define PYBIND11_DECLARE_HOLDER_TYPE(type, holder_type) \ namespace pybind11 { namespace detail { \ template class type_caster \ : public type_caster_holder { }; \ }} template struct type_caster< T, typename std::enable_if::value || std::is_floating_point::value>::type> { typedef typename std::conditional::type _py_type_0; typedef typename std::conditional::value, _py_type_0, typename std::make_unsigned<_py_type_0>::type>::type _py_type_1; typedef typename std::conditional::value, double, _py_type_1>::type py_type; public: bool load(handle src, bool) { py_type py_value; if (!src) { return false; } if (std::is_floating_point::value) { py_value = (py_type) PyFloat_AsDouble(src.ptr()); } else if (sizeof(T) <= sizeof(long)) { if (PyFloat_Check(src.ptr())) return false; if (std::is_signed::value) py_value = (py_type) PyLong_AsLong(src.ptr()); else py_value = (py_type) PyLong_AsUnsignedLong(src.ptr()); } else { if (PyFloat_Check(src.ptr())) return false; if (std::is_signed::value) py_value = (py_type) PYBIND11_LONG_AS_LONGLONG(src.ptr()); else py_value = (py_type) PYBIND11_LONG_AS_UNSIGNED_LONGLONG(src.ptr()); } if ((py_value == (py_type) -1 && PyErr_Occurred()) || (std::is_integral::value && sizeof(py_type) != sizeof(T) && (py_value < (py_type) std::numeric_limits::min() || py_value > (py_type) std::numeric_limits::max()))) { PyErr_Clear(); return false; } value = (T) py_value; return true; } static handle cast(T src, return_value_policy /* policy */, handle /* parent */) { if (std::is_floating_point::value) { return PyFloat_FromDouble((double) src); } else if (sizeof(T) <= sizeof(long)) { if (std::is_signed::value) return PyLong_FromLong((long) src); else return PyLong_FromUnsignedLong((unsigned long) src); } else { if (std::is_signed::value) return PyLong_FromLongLong((long long) src); else return PyLong_FromUnsignedLongLong((unsigned long long) src); } } PYBIND11_TYPE_CASTER(T, _::value>("int", "float")); }; template <> class type_caster { public: bool load(handle, bool) { return false; } static handle cast(void_type, return_value_policy /* policy */, handle /* parent */) { return handle(Py_None).inc_ref(); } PYBIND11_TYPE_CASTER(void_type, _("None")); }; template <> class type_caster : public type_caster { public: using type_caster::cast; bool load(handle h, bool) { if (!h) { return false; } else if (h.ptr() == Py_None) { value = nullptr; return true; } /* Check if this is a capsule */ capsule c(h, true); if (c.check()) { value = (void *) c; return true; } /* Check if this is a C++ type */ if (get_type_info((PyTypeObject *) h.get_type().ptr(), false)) { value = ((instance *) h.ptr())->value; return true; } /* Fail */ return false; } static handle cast(const void *ptr, return_value_policy /* policy */, handle /* parent */) { if (ptr) return capsule(ptr).release(); else return handle(Py_None).inc_ref(); } template using cast_op_type = void*&; operator void *&() { return value; } static PYBIND11_DESCR name() { return type_descr(_("capsule")); } private: void *value = nullptr; }; template <> class type_caster : public type_caster { }; template <> class type_caster { public: bool load(handle src, bool) { if (!src) return false; else if (src.ptr() == Py_True) { value = true; return true; } else if (src.ptr() == Py_False) { value = false; return true; } else return false; } static handle cast(bool src, return_value_policy /* policy */, handle /* parent */) { return handle(src ? Py_True : Py_False).inc_ref(); } PYBIND11_TYPE_CASTER(bool, _("bool")); }; template <> class type_caster { public: bool load(handle src, bool) { object temp; handle load_src = src; if (!src) { return false; } else if (PyUnicode_Check(load_src.ptr())) { temp = object(PyUnicode_AsUTF8String(load_src.ptr()), false); if (!temp) { PyErr_Clear(); return false; } // UnicodeEncodeError load_src = temp; } char *buffer; ssize_t length; int err = PYBIND11_BYTES_AS_STRING_AND_SIZE(load_src.ptr(), &buffer, &length); if (err == -1) { PyErr_Clear(); return false; } // TypeError value = std::string(buffer, (size_t) length); success = true; return true; } static handle cast(const std::string &src, return_value_policy /* policy */, handle /* parent */) { return PyUnicode_FromStringAndSize(src.c_str(), (ssize_t) src.length()); } PYBIND11_TYPE_CASTER(std::string, _(PYBIND11_STRING_NAME)); protected: bool success = false; }; template class type_caster> { public: static handle cast(std::unique_ptr &&src, return_value_policy policy, handle parent) { handle result = type_caster_base::cast(src.get(), policy, parent); if (result) src.release(); return result; } static PYBIND11_DESCR name() { return type_caster_base::name(); } }; template <> class type_caster { public: bool load(handle src, bool) { object temp; handle load_src = src; if (!src) { return false; } else if (!PyUnicode_Check(load_src.ptr())) { temp = object(PyUnicode_FromObject(load_src.ptr()), false); if (!temp) { PyErr_Clear(); return false; } load_src = temp; } wchar_t *buffer = nullptr; ssize_t length = -1; #if PY_MAJOR_VERSION >= 3 buffer = PyUnicode_AsWideCharString(load_src.ptr(), &length); #else temp = object( sizeof(wchar_t) == sizeof(short) ? PyUnicode_AsUTF16String(load_src.ptr()) : PyUnicode_AsUTF32String(load_src.ptr()), false); if (temp) { int err = PYBIND11_BYTES_AS_STRING_AND_SIZE(temp.ptr(), (char **) &buffer, &length); if (err == -1) { buffer = nullptr; } // TypeError length = length / (ssize_t) sizeof(wchar_t) - 1; ++buffer; // Skip BOM } #endif if (!buffer) { PyErr_Clear(); return false; } value = std::wstring(buffer, (size_t) length); success = true; return true; } static handle cast(const std::wstring &src, return_value_policy /* policy */, handle /* parent */) { return PyUnicode_FromWideChar(src.c_str(), (ssize_t) src.length()); } PYBIND11_TYPE_CASTER(std::wstring, _(PYBIND11_STRING_NAME)); protected: bool success = false; }; template <> class type_caster : public type_caster { public: bool load(handle src, bool convert) { if (src.ptr() == Py_None) return true; return type_caster::load(src, convert); } static handle cast(const char *src, return_value_policy /* policy */, handle /* parent */) { if (src == nullptr) return handle(Py_None).inc_ref(); return PyUnicode_FromString(src); } static handle cast(char src, return_value_policy /* policy */, handle /* parent */) { char str[2] = { src, '\0' }; return PyUnicode_DecodeLatin1(str, 1, nullptr); } operator char*() { return success ? (char *) value.c_str() : nullptr; } operator char&() { return value[0]; } static PYBIND11_DESCR name() { return type_descr(_(PYBIND11_STRING_NAME)); } }; template <> class type_caster : public type_caster { public: bool load(handle src, bool convert) { if (src.ptr() == Py_None) return true; return type_caster::load(src, convert); } static handle cast(const wchar_t *src, return_value_policy /* policy */, handle /* parent */) { if (src == nullptr) return handle(Py_None).inc_ref(); return PyUnicode_FromWideChar(src, (ssize_t) wcslen(src)); } static handle cast(wchar_t src, return_value_policy /* policy */, handle /* parent */) { wchar_t wstr[2] = { src, L'\0' }; return PyUnicode_FromWideChar(wstr, 1); } operator wchar_t*() { return success ? (wchar_t *) value.c_str() : nullptr; } operator wchar_t&() { return value[0]; } static PYBIND11_DESCR name() { return type_descr(_(PYBIND11_STRING_NAME)); } }; template class type_caster> { typedef std::pair type; public: bool load(handle src, bool convert) { if (!src) return false; else if (!PyTuple_Check(src.ptr()) || PyTuple_Size(src.ptr()) != 2) return false; return first.load(PyTuple_GET_ITEM(src.ptr(), 0), convert) && second.load(PyTuple_GET_ITEM(src.ptr(), 1), convert); } static handle cast(const type &src, return_value_policy policy, handle parent) { object o1 = object(type_caster::type>::cast(src.first, policy, parent), false); object o2 = object(type_caster::type>::cast(src.second, policy, parent), false); if (!o1 || !o2) return handle(); tuple result(2); PyTuple_SET_ITEM(result.ptr(), 0, o1.release().ptr()); PyTuple_SET_ITEM(result.ptr(), 1, o2.release().ptr()); return result.release(); } static PYBIND11_DESCR name() { return type_descr( _("Tuple[") + type_caster::type>::name() + _(", ") + type_caster::type>::name() + _("]")); } template using cast_op_type = type; operator type() { return type(first .operator typename type_caster::type>::template cast_op_type(), second.operator typename type_caster::type>::template cast_op_type()); } protected: type_caster::type> first; type_caster::type> second; }; template class type_caster> { typedef std::tuple type; typedef std::tuple::type...> itype; typedef std::tuple args_type; typedef std::tuple args_kwargs_type; public: enum { size = sizeof...(Tuple) }; static constexpr const bool has_kwargs = std::is_same::value; static constexpr const bool has_args = has_kwargs || std::is_same::value; bool load(handle src, bool convert) { if (!src || !PyTuple_Check(src.ptr()) || PyTuple_GET_SIZE(src.ptr()) != size) return false; return load(src, convert, typename make_index_sequence::type()); } template ::value && !std::is_same::value, int>::type = 0> bool load_args(handle args, handle, bool convert) { return load(args, convert, typename make_index_sequence::type()); } template ::value, int>::type = 0> bool load_args(handle args, handle, bool convert) { std::get<0>(value).load(args, convert); return true; } template ::value, int>::type = 0> bool load_args(handle args, handle kwargs, bool convert) { std::get<0>(value).load(args, convert); std::get<1>(value).load(kwargs, convert); return true; } static handle cast(const type &src, return_value_policy policy, handle parent) { return cast(src, policy, parent, typename make_index_sequence::type()); } static PYBIND11_DESCR element_names() { return detail::concat(type_caster::type>::name()...); } static PYBIND11_DESCR name() { return type_descr(_("Tuple[") + element_names() + _("]")); } template typename std::enable_if::value, ReturnValue>::type call(Func &&f) { return call(std::forward(f), typename make_index_sequence::type()); } template typename std::enable_if::value, void_type>::type call(Func &&f) { call(std::forward(f), typename make_index_sequence::type()); return void_type(); } template using cast_op_type = type; operator type() { return cast(typename make_index_sequence::type()); } protected: template ReturnValue call(Func &&f, index_sequence) { return f(std::get(value) .operator typename type_caster::type>::template cast_op_type()...); } template type cast(index_sequence) { return type(std::get(value) .operator typename type_caster::type>::template cast_op_type()...); } template bool load(handle src, bool convert, index_sequence) { std::array success {{ std::get(value).load(PyTuple_GET_ITEM(src.ptr(), Indices), convert)... }}; (void) convert; /* avoid a warning when the tuple is empty */ for (bool r : success) if (!r) return false; return true; } /* Implementation: Convert a C++ tuple into a Python tuple */ template static handle cast(const type &src, return_value_policy policy, handle parent, index_sequence) { std::array entries {{ object(type_caster::type>::cast(std::get(src), policy, parent), false)... }}; for (const auto &entry: entries) if (!entry) return handle(); tuple result(size); int counter = 0; for (auto & entry: entries) PyTuple_SET_ITEM(result.ptr(), counter++, entry.release().ptr()); return result.release(); } protected: std::tuple::type>...> value; }; /// Type caster for holder types like std::shared_ptr, etc. template class type_caster_holder : public type_caster_base { public: using type_caster_base::cast; using type_caster_base::typeinfo; using type_caster_base::value; using type_caster_base::temp; bool load(handle src, bool convert) { if (!src || !typeinfo) { return false; } else if (src.ptr() == Py_None) { value = nullptr; return true; } else if (PyType_IsSubtype(Py_TYPE(src.ptr()), typeinfo->type)) { auto inst = (instance *) src.ptr(); value = (void *) inst->value; holder = inst->holder; return true; } if (convert) { for (auto &converter : typeinfo->implicit_conversions) { temp = object(converter(src.ptr(), typeinfo->type), false); if (load(temp, false)) return true; } } return false; } explicit operator type*() { return this->value; } explicit operator type&() { return *(this->value); } explicit operator holder_type*() { return &holder; } // Workaround for Intel compiler bug // see pybind11 issue 94 #if defined(__ICC) || defined(__INTEL_COMPILER) operator holder_type&() { return holder; } #else explicit operator holder_type&() { return holder; } #endif static handle cast(const holder_type &src, return_value_policy, handle) { return type_caster_generic::cast( src.get(), return_value_policy::take_ownership, handle(), src.get() ? &typeid(*src.get()) : nullptr, &typeid(type), nullptr, nullptr, &src); } protected: holder_type holder; }; template struct handle_type_name { static PYBIND11_DESCR name() { return _(); } }; template <> struct handle_type_name { static PYBIND11_DESCR name() { return _(PYBIND11_BYTES_NAME); } }; template <> struct handle_type_name { static PYBIND11_DESCR name() { return _("*args"); } }; template <> struct handle_type_name { static PYBIND11_DESCR name() { return _("**kwargs"); } }; template struct type_caster::value>::type> { public: template ::value, int>::type = 0> bool load(handle src, bool /* convert */) { value = type(src); return value.check(); } template ::value, int>::type = 0> bool load(handle src, bool /* convert */) { value = type(src, true); return value.check(); } static handle cast(const handle &src, return_value_policy /* policy */, handle /* parent */) { return src.inc_ref(); } PYBIND11_TYPE_CASTER(type, handle_type_name::name()); }; // Our conditions for enabling moving are quite restrictive: // At compile time: // - T needs to be a non-const, non-pointer, non-reference type // - type_caster::operator T&() must exist // - the type must be move constructible (obviously) // At run-time: // - if the type is non-copy-constructible, the object must be the sole owner of the type (i.e. it // must have ref_count() == 1)h // If any of the above are not satisfied, we fall back to copying. template struct move_is_plain_type : std::false_type {}; template struct move_is_plain_type::value && !std::is_pointer::value && !std::is_reference::value && !std::is_const::value >::type> : std::true_type {}; template struct move_always : std::false_type {}; template struct move_always::value && !std::is_copy_constructible::value && std::is_move_constructible::value && std::is_same>().operator T&()), T&>::value >::type> : std::true_type {}; template struct move_if_unreferenced : std::false_type {}; template struct move_if_unreferenced::value && !move_always::value && std::is_move_constructible::value && std::is_same>().operator T&()), T&>::value >::type> : std::true_type {}; template using move_never = std::integral_constant::value && !move_if_unreferenced::value>; NAMESPACE_END(detail) template T cast(const handle &handle) { typedef detail::type_caster::type> type_caster; type_caster conv; if (!conv.load(handle, true)) { #if defined(NDEBUG) throw cast_error("Unable to cast Python instance to C++ type (compile in debug mode for details)"); #else throw cast_error("Unable to cast Python instance of type " + (std::string) handle.get_type().str() + " to C++ type '" + type_id() + "''"); #endif } return conv.operator typename type_caster::template cast_op_type(); } template object cast(const T &value, return_value_policy policy = return_value_policy::automatic_reference, handle parent = handle()) { if (policy == return_value_policy::automatic) policy = std::is_pointer::value ? return_value_policy::take_ownership : return_value_policy::copy; else if (policy == return_value_policy::automatic_reference) policy = std::is_pointer::value ? return_value_policy::reference : return_value_policy::copy; return object(detail::type_caster::type>::cast(value, policy, parent), false); } template T handle::cast() const { return pybind11::cast(*this); } template <> inline void handle::cast() const { return; } template typename std::enable_if::value || detail::move_if_unreferenced::value, T>::type move(object &&obj) { if (obj.ref_count() > 1) #if defined(NDEBUG) throw cast_error("Unable to cast Python instance to C++ rvalue: instance has multiple references" " (compile in debug mode for details)"); #else throw cast_error("Unable to move from Python " + (std::string) obj.get_type().str() + " instance to C++ " + type_id() + " instance: instance has multiple references"); #endif typedef detail::type_caster type_caster; type_caster conv; if (!conv.load(obj, true)) #if defined(NDEBUG) throw cast_error("Unable to cast Python instance to C++ type (compile in debug mode for details)"); #else throw cast_error("Unable to cast Python instance of type " + (std::string) obj.get_type().str() + " to C++ type '" + type_id() + "''"); #endif // Move into a temporary and return that, because the reference may be a local value of `conv` T ret = std::move(conv.operator T&()); return ret; } // Calling cast() on an rvalue calls pybind::cast with the object rvalue, which does: // - If we have to move (because T has no copy constructor), do it. This will fail if the moved // object has multiple references, but trying to copy will fail to compile. // - If both movable and copyable, check ref count: if 1, move; otherwise copy // - Otherwise (not movable), copy. template typename std::enable_if::value, T>::type cast(object &&object) { return move(std::move(object)); } template typename std::enable_if::value, T>::type cast(object &&object) { if (object.ref_count() > 1) return cast(object); else return move(std::move(object)); } template typename std::enable_if::value, T>::type cast(object &&object) { return cast(object); } template T object::cast() const & { return pybind11::cast(*this); } template T object::cast() && { return pybind11::cast(std::move(*this)); } template <> inline void object::cast() const & { return; } template <> inline void object::cast() && { return; } template tuple make_tuple(Args&&... args_) { const size_t size = sizeof...(Args); std::array args { { object(detail::type_caster::type>::cast( std::forward(args_), policy, nullptr), false)... } }; for (auto &arg_value : args) { if (!arg_value) { #if defined(NDEBUG) throw cast_error("make_tuple(): unable to convert arguments to Python object (compile in debug mode for details)"); #else throw cast_error("make_tuple(): unable to convert arguments of types '" + (std::string) type_id>() + "' to Python object"); #endif } } tuple result(size); int counter = 0; for (auto &arg_value : args) PyTuple_SET_ITEM(result.ptr(), counter++, arg_value.release().ptr()); return result; } template object handle::operator()(Args&&... args) const { tuple args_tuple = pybind11::make_tuple(std::forward(args)...); object result(PyObject_CallObject(m_ptr, args_tuple.ptr()), false); if (!result) throw error_already_set(); return result; } template object handle::call(Args &&... args) const { return operator()(std::forward(args)...); } inline object handle::operator()(detail::args_proxy args) const { object result(PyObject_CallObject(m_ptr, args.ptr()), false); if (!result) throw error_already_set(); return result; } inline object handle::operator()(detail::args_proxy args, detail::kwargs_proxy kwargs) const { object result(PyObject_Call(m_ptr, args.ptr(), kwargs.ptr()), false); if (!result) throw error_already_set(); return result; } #define PYBIND11_MAKE_OPAQUE(Type) \ namespace pybind11 { namespace detail { \ template<> class type_caster : public type_caster_base { }; \ }} NAMESPACE_END(pybind11)