
This adds PythonTuple and PythonCallable classes to PythonDataObjects. Additionally, unit tests are provided that exercise this functionality, including invoking manipulating and checking for validity of tuples, and invoking and checking for validity of callables using a variety of different syntaxes. The goal here is to eventually replace the code in python-wrapper.swig that directly uses the Python C API to deal with callables and name resolution with this code that can be more easily tested and debugged. llvm-svn: 252787
462 lines
10 KiB
C++
462 lines
10 KiB
C++
//===-- PythonDataObjects.h--------------------------------------*- C++ -*-===//
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//
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// The LLVM Compiler Infrastructure
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//
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// This file is distributed under the University of Illinois Open Source
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// License. See LICENSE.TXT for details.
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//
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//===----------------------------------------------------------------------===//
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#ifndef LLDB_PLUGINS_SCRIPTINTERPRETER_PYTHON_PYTHONDATAOBJECTS_H
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#define LLDB_PLUGINS_SCRIPTINTERPRETER_PYTHON_PYTHONDATAOBJECTS_H
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// C Includes
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// C++ Includes
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// Other libraries and framework includes
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// Project includes
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#include "lldb/lldb-defines.h"
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#include "lldb/Core/ConstString.h"
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#include "lldb/Core/StructuredData.h"
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#include "lldb/Core/Flags.h"
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#include "lldb/Host/File.h"
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#include "lldb/Interpreter/OptionValue.h"
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namespace lldb_private {
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class PythonString;
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class PythonList;
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class PythonDictionary;
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class PythonInteger;
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class StructuredPythonObject : public StructuredData::Generic
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{
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public:
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StructuredPythonObject()
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: StructuredData::Generic()
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{
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}
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StructuredPythonObject(void *obj)
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: StructuredData::Generic(obj)
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{
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Py_XINCREF(GetValue());
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}
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~StructuredPythonObject() override
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{
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if (Py_IsInitialized())
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Py_XDECREF(GetValue());
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SetValue(nullptr);
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}
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bool
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IsValid() const override
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{
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return GetValue() && GetValue() != Py_None;
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}
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void Dump(Stream &s) const override;
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private:
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DISALLOW_COPY_AND_ASSIGN(StructuredPythonObject);
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};
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enum class PyObjectType
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{
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Unknown,
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None,
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Integer,
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Dictionary,
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List,
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String,
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Module,
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Callable,
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Tuple,
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File
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};
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enum class PyRefType
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{
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Borrowed, // We are not given ownership of the incoming PyObject.
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// We cannot safely hold it without calling Py_INCREF.
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Owned // We have ownership of the incoming PyObject. We should
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// not call Py_INCREF.
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};
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enum class PyInitialValue
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{
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Invalid,
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Empty
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};
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class PythonObject
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{
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public:
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PythonObject()
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: m_py_obj(nullptr)
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{
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}
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PythonObject(PyRefType type, PyObject *py_obj)
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: m_py_obj(nullptr)
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{
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Reset(type, py_obj);
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}
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PythonObject(const PythonObject &rhs)
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: m_py_obj(nullptr)
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{
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Reset(rhs);
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}
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virtual ~PythonObject()
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{
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Reset();
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}
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void
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Reset()
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{
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// Avoid calling the virtual method since it's not necessary
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// to actually validate the type of the PyObject if we're
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// just setting to null.
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if (Py_IsInitialized())
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Py_XDECREF(m_py_obj);
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m_py_obj = nullptr;
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}
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void
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Reset(const PythonObject &rhs)
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{
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// Avoid calling the virtual method if it's not necessary
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// to actually validate the type of the PyObject.
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if (!rhs.IsValid())
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Reset();
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else
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Reset(PyRefType::Borrowed, rhs.m_py_obj);
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}
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// PythonObject is implicitly convertible to PyObject *, which will call the
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// wrong overload. We want to explicitly disallow this, since a PyObject
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// *always* owns its reference. Therefore the overload which takes a
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// PyRefType doesn't make sense, and the copy constructor should be used.
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void
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Reset(PyRefType type, const PythonObject &ref) = delete;
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virtual void
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Reset(PyRefType type, PyObject *py_obj)
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{
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if (py_obj == m_py_obj)
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return;
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if (Py_IsInitialized())
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Py_XDECREF(m_py_obj);
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m_py_obj = py_obj;
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// If this is a borrowed reference, we need to convert it to
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// an owned reference by incrementing it. If it is an owned
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// reference (for example the caller allocated it with PyDict_New()
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// then we must *not* increment it.
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if (Py_IsInitialized() && type == PyRefType::Borrowed)
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Py_XINCREF(m_py_obj);
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}
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void
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Dump () const
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{
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if (m_py_obj)
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_PyObject_Dump (m_py_obj);
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else
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puts ("NULL");
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}
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void
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Dump (Stream &strm) const;
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PyObject*
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get() const
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{
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return m_py_obj;
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}
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PyObject*
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release()
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{
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PyObject *result = m_py_obj;
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m_py_obj = nullptr;
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return result;
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}
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PythonObject &
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operator=(const PythonObject &other)
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{
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Reset(PyRefType::Borrowed, other.get());
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return *this;
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}
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PyObjectType
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GetObjectType() const;
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PythonString
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Repr() const;
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PythonString
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Str() const;
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static PythonObject
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ResolveNameWithDictionary(llvm::StringRef name, PythonDictionary dict);
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PythonObject
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ResolveName(llvm::StringRef name) const;
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bool
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HasAttribute(llvm::StringRef attribute) const;
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PythonObject
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GetAttributeValue(llvm::StringRef attribute) const;
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bool
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IsValid() const;
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bool
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IsAllocated() const;
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bool
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IsNone() const;
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template<typename T>
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T AsType() const
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{
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if (!T::Check(m_py_obj))
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return T();
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return T(PyRefType::Borrowed, m_py_obj);
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}
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StructuredData::ObjectSP
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CreateStructuredObject() const;
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protected:
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PyObject* m_py_obj;
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};
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class PythonString : public PythonObject
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{
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public:
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PythonString();
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explicit PythonString(llvm::StringRef string);
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explicit PythonString(const char *string);
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PythonString(PyRefType type, PyObject *o);
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PythonString(const PythonString &object);
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~PythonString() override;
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static bool Check(PyObject *py_obj);
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// Bring in the no-argument base class version
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using PythonObject::Reset;
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void Reset(PyRefType type, PyObject *py_obj) override;
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llvm::StringRef
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GetString() const;
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size_t
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GetSize() const;
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void SetString(llvm::StringRef string);
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StructuredData::StringSP CreateStructuredString() const;
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};
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class PythonInteger : public PythonObject
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{
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public:
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PythonInteger();
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explicit PythonInteger(int64_t value);
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PythonInteger(PyRefType type, PyObject *o);
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PythonInteger(const PythonInteger &object);
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~PythonInteger() override;
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static bool Check(PyObject *py_obj);
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// Bring in the no-argument base class version
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using PythonObject::Reset;
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void Reset(PyRefType type, PyObject *py_obj) override;
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int64_t GetInteger() const;
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void
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SetInteger (int64_t value);
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StructuredData::IntegerSP CreateStructuredInteger() const;
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};
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class PythonList : public PythonObject
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{
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public:
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PythonList() {}
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explicit PythonList(PyInitialValue value);
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explicit PythonList(int list_size);
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PythonList(PyRefType type, PyObject *o);
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PythonList(const PythonList &list);
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~PythonList() override;
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static bool Check(PyObject *py_obj);
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// Bring in the no-argument base class version
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using PythonObject::Reset;
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void Reset(PyRefType type, PyObject *py_obj) override;
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uint32_t GetSize() const;
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PythonObject GetItemAtIndex(uint32_t index) const;
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void SetItemAtIndex(uint32_t index, const PythonObject &object);
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void AppendItem(const PythonObject &object);
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StructuredData::ArraySP CreateStructuredArray() const;
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};
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class PythonTuple : public PythonObject
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{
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public:
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PythonTuple() {}
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explicit PythonTuple(PyInitialValue value);
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explicit PythonTuple(int tuple_size);
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PythonTuple(PyRefType type, PyObject *o);
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PythonTuple(const PythonTuple &tuple);
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PythonTuple(std::initializer_list<PythonObject> objects);
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PythonTuple(std::initializer_list<PyObject*> objects);
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~PythonTuple() override;
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static bool Check(PyObject *py_obj);
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// Bring in the no-argument base class version
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using PythonObject::Reset;
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void Reset(PyRefType type, PyObject *py_obj) override;
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uint32_t GetSize() const;
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PythonObject GetItemAtIndex(uint32_t index) const;
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void SetItemAtIndex(uint32_t index, const PythonObject &object);
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StructuredData::ArraySP CreateStructuredArray() const;
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};
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class PythonDictionary : public PythonObject
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{
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public:
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PythonDictionary() {}
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explicit PythonDictionary(PyInitialValue value);
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PythonDictionary(PyRefType type, PyObject *o);
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PythonDictionary(const PythonDictionary &dict);
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~PythonDictionary() override;
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static bool Check(PyObject *py_obj);
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// Bring in the no-argument base class version
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using PythonObject::Reset;
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void Reset(PyRefType type, PyObject *py_obj) override;
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uint32_t GetSize() const;
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PythonList GetKeys() const;
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PythonObject GetItemForKey(const PythonObject &key) const;
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void SetItemForKey(const PythonObject &key, const PythonObject &value);
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StructuredData::DictionarySP CreateStructuredDictionary() const;
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};
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class PythonModule : public PythonObject
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{
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public:
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PythonModule();
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PythonModule(PyRefType type, PyObject *o);
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PythonModule(const PythonModule &dict);
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~PythonModule() override;
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static bool Check(PyObject *py_obj);
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static PythonModule
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BuiltinsModule();
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static PythonModule
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MainModule();
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static PythonModule
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AddModule(llvm::StringRef module);
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// Bring in the no-argument base class version
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using PythonObject::Reset;
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void Reset(PyRefType type, PyObject *py_obj) override;
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PythonDictionary GetDictionary() const;
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};
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class PythonCallable : public PythonObject
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{
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public:
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PythonCallable();
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PythonCallable(PyRefType type, PyObject *o);
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PythonCallable(const PythonCallable &dict);
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~PythonCallable() override;
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static bool
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Check(PyObject *py_obj);
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// Bring in the no-argument base class version
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using PythonObject::Reset;
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void
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Reset(PyRefType type, PyObject *py_obj) override;
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void
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GetNumArguments(size_t &num_args, bool &has_varargs, bool &has_kwargs) const;
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PythonObject
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operator ()(std::initializer_list<PyObject*> args);
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PythonObject
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operator ()(std::initializer_list<PythonObject> args);
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};
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class PythonFile : public PythonObject
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{
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public:
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PythonFile();
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PythonFile(File &file, const char *mode);
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PythonFile(const char *path, const char *mode);
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PythonFile(PyRefType type, PyObject *o);
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~PythonFile() override;
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static bool Check(PyObject *py_obj);
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using PythonObject::Reset;
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void Reset(PyRefType type, PyObject *py_obj) override;
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void Reset(File &file, const char *mode);
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bool GetUnderlyingFile(File &file) const;
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};
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} // namespace lldb_private
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#endif // LLDB_PLUGINS_SCRIPTINTERPRETER_PYTHON_PYTHONDATAOBJECTS_H
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