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/* System module */

/*
Various bits of information used by the interpreter are collected in
module 'sys'.
Function member:
- exit(sts): raise SystemExit
Data members:
- stdin, stdout, stderr: standard file objects
- modules: the table of modules (dictionary)
- path: module search path (list of strings)
- argv: script arguments (list of strings)
- ps1, ps2: optional primary and secondary prompts (strings)
*/

#include "Python.h"
#include "structseq.h"
#include "code.h"
#include "frameobject.h"
#include "eval.h"

#include "osdefs.h"

#ifdef MS_WINDOWS
#define WIN32_LEAN_AND_MEAN
#include "windows.h"
#endif /* MS_WINDOWS */

#ifdef MS_COREDLL
extern void *PyWin_DLLhModule;
/* A string loaded from the DLL at startup: */
extern const char *PyWin_DLLVersionString;
#endif

#ifdef __VMS
#include <unixlib.h>
#endif

#ifdef MS_WINDOWS
#include <windows.h>
#endif

#ifdef HAVE_LANGINFO_H
#include <locale.h>
#include <langinfo.h>
#endif

PyObject *
PySys_GetObject(char *name)
{
	PyThreadState *tstate = PyThreadState_GET();
	PyObject *sd = tstate->interp->sysdict;
	if (sd == NULL)
		return NULL;
	return PyDict_GetItemString(sd, name);
}

FILE *
PySys_GetFile(char *name, FILE *def)
{
	FILE *fp = NULL;
	PyObject *v = PySys_GetObject(name);
	if (v != NULL && PyFile_Check(v))
		fp = PyFile_AsFile(v);
	if (fp == NULL)
		fp = def;
	return fp;
}

int
PySys_SetObject(char *name, PyObject *v)
{
	PyThreadState *tstate = PyThreadState_GET();
	PyObject *sd = tstate->interp->sysdict;
	if (v == NULL) {
		if (PyDict_GetItemString(sd, name) == NULL)
			return 0;
		else
			return PyDict_DelItemString(sd, name);
	}
	else
		return PyDict_SetItemString(sd, name, v);
}

static PyObject *
sys_displayhook(PyObject *self, PyObject *o)
{
	PyObject *outf;
	PyInterpreterState *interp = PyThreadState_GET()->interp;
	PyObject *modules = interp->modules;
	PyObject *builtins = PyDict_GetItemString(modules, "__builtin__");

	if (builtins == NULL) {
		PyErr_SetString(PyExc_RuntimeError, "lost __builtin__");
		return NULL;
	}

	/* Print value except if None */
	/* After printing, also assign to '_' */
	/* Before, set '_' to None to avoid recursion */
	if (o == Py_None) {
		Py_INCREF(Py_None);
		return Py_None;
	}
	if (PyObject_SetAttrString(builtins, "_", Py_None) != 0)
		return NULL;
	if (Py_FlushLine() != 0)
		return NULL;
	outf = PySys_GetObject("stdout");
	if (outf == NULL) {
		PyErr_SetString(PyExc_RuntimeError, "lost sys.stdout");
		return NULL;
	}
	if (PyFile_WriteObject(o, outf, 0) != 0)
		return NULL;
	PyFile_SoftSpace(outf, 1);
	if (Py_FlushLine() != 0)
		return NULL;
	if (PyObject_SetAttrString(builtins, "_", o) != 0)
		return NULL;
	Py_INCREF(Py_None);
	return Py_None;
}

PyDoc_STRVAR(displayhook_doc,
"displayhook(object) -> None\n"
"\n"
"Print an object to sys.stdout and also save it in __builtin__.\n"
);

static PyObject *
sys_excepthook(PyObject* self, PyObject* args)
{
	PyObject *exc, *value, *tb;
	if (!PyArg_UnpackTuple(args, "excepthook", 3, 3, &exc, &value, &tb))
		return NULL;
	PyErr_Display(exc, value, tb);
	Py_INCREF(Py_None);
	return Py_None;
}

PyDoc_STRVAR(excepthook_doc,
"excepthook(exctype, value, traceback) -> None\n"
"\n"
"Handle an exception by displaying it with a traceback on sys.stderr.\n"
);

static PyObject *
sys_exc_info(PyObject *self, PyObject *noargs)
{
	PyThreadState *tstate;
	tstate = PyThreadState_GET();
	return Py_BuildValue(
		"(OOO)",
		tstate->exc_type != NULL ? tstate->exc_type : Py_None,
		tstate->exc_value != NULL ? tstate->exc_value : Py_None,
		tstate->exc_traceback != NULL ?
			tstate->exc_traceback : Py_None);
}

PyDoc_STRVAR(exc_info_doc,
"exc_info() -> (type, value, traceback)\n\
\n\
Return information about the most recent exception caught by an except\n\
clause in the current stack frame or in an older stack frame."
);

static PyObject *
sys_exc_clear(PyObject *self, PyObject *noargs)
{
	PyThreadState *tstate = PyThreadState_GET();
	PyObject *tmp_type, *tmp_value, *tmp_tb;
	tmp_type = tstate->exc_type;
	tmp_value = tstate->exc_value;
	tmp_tb = tstate->exc_traceback;
	tstate->exc_type = NULL;
	tstate->exc_value = NULL;
	tstate->exc_traceback = NULL;
	Py_XDECREF(tmp_type);
	Py_XDECREF(tmp_value);
	Py_XDECREF(tmp_tb);
	/* For b/w compatibility */
	PySys_SetObject("exc_type", Py_None);
	PySys_SetObject("exc_value", Py_None);
	PySys_SetObject("exc_traceback", Py_None);
	Py_INCREF(Py_None);
	return Py_None;
}

PyDoc_STRVAR(exc_clear_doc,
"exc_clear() -> None\n\
\n\
Clear global information on the current exception.  Subsequent calls to\n\
exc_info() will return (None,None,None) until another exception is raised\n\
in the current thread or the execution stack returns to a frame where\n\
another exception is being handled."
);

static PyObject *
sys_exit(PyObject *self, PyObject *args)
{
	PyObject *exit_code = 0;
	if (!PyArg_UnpackTuple(args, "exit", 0, 1, &exit_code))
		return NULL;
	/* Raise SystemExit so callers may catch it or clean up. */
	PyErr_SetObject(PyExc_SystemExit, exit_code);
	return NULL;
}

PyDoc_STRVAR(exit_doc,
"exit([status])\n\
\n\
Exit the interpreter by raising SystemExit(status).\n\
If the status is omitted or None, it defaults to zero (i.e., success).\n\
If the status is numeric, it will be used as the system exit status.\n\
If it is another kind of object, it will be printed and the system\n\
exit status will be one (i.e., failure)."
);

#ifdef Py_USING_UNICODE

static PyObject *
sys_getdefaultencoding(PyObject *self)
{
	return PyString_FromString(PyUnicode_GetDefaultEncoding());
}

PyDoc_STRVAR(getdefaultencoding_doc,
"getdefaultencoding() -> string\n\
\n\
Return the current default string encoding used by the Unicode \n\
implementation."
);

static PyObject *
sys_setdefaultencoding(PyObject *self, PyObject *args)
{
	char *encoding;
	if (!PyArg_ParseTuple(args, "s:setdefaultencoding", &encoding))
		return NULL;
	if (PyUnicode_SetDefaultEncoding(encoding))
	    	return NULL;
	Py_INCREF(Py_None);
	return Py_None;
}

PyDoc_STRVAR(setdefaultencoding_doc,
"setdefaultencoding(encoding)\n\
\n\
Set the current default string encoding used by the Unicode implementation."
);

static PyObject *
sys_getfilesystemencoding(PyObject *self)
{
	if (Py_FileSystemDefaultEncoding)
		return PyString_FromString(Py_FileSystemDefaultEncoding);
	Py_INCREF(Py_None);
	return Py_None;
}

PyDoc_STRVAR(getfilesystemencoding_doc,
"getfilesystemencoding() -> string\n\
\n\
Return the encoding used to convert Unicode filenames in\n\
operating system filenames."
);

#endif

/*
 * Cached interned string objects used for calling the profile and
 * trace functions.  Initialized by trace_init().
 */
static PyObject *whatstrings[7] = {NULL, NULL, NULL, NULL, NULL, NULL, NULL};

static int
trace_init(void)
{
	static char *whatnames[7] = {"call", "exception", "line", "return",
					"c_call", "c_exception", "c_return"};
	PyObject *name;
	int i;
	for (i = 0; i < 7; ++i) {
		if (whatstrings[i] == NULL) {
			name = PyString_InternFromString(whatnames[i]);
			if (name == NULL)
				return -1;
			whatstrings[i] = name;
                }
	}
	return 0;
}


static PyObject *
call_trampoline(PyThreadState *tstate, PyObject* callback,
		PyFrameObject *frame, int what, PyObject *arg)
{
	PyObject *args = PyTuple_New(3);
	PyObject *whatstr;
	PyObject *result;

	if (args == NULL)
		return NULL;
	Py_INCREF(frame);
	whatstr = whatstrings[what];
	Py_INCREF(whatstr);
	if (arg == NULL)
		arg = Py_None;
	Py_INCREF(arg);
	PyTuple_SET_ITEM(args, 0, (PyObject *)frame);
	PyTuple_SET_ITEM(args, 1, whatstr);
	PyTuple_SET_ITEM(args, 2, arg);

	/* call the Python-level function */
	PyFrame_FastToLocals(frame);
	result = PyEval_CallObject(callback, args);
	PyFrame_LocalsToFast(frame, 1);
	if (result == NULL)
		PyTraceBack_Here(frame);

	/* cleanup */
	Py_DECREF(args);
	return result;
}

static int
profile_trampoline(PyObject *self, PyFrameObject *frame,
		   int what, PyObject *arg)
{
	PyThreadState *tstate = frame->f_tstate;
	PyObject *result;

	if (arg == NULL)
		arg = Py_None;
	result = call_trampoline(tstate, self, frame, what, arg);
	if (result == NULL) {
		PyEval_SetProfile(NULL, NULL);
		return -1;
	}
	Py_DECREF(result);
	return 0;
}

static int
trace_trampoline(PyObject *self, PyFrameObject *frame,
		 int what, PyObject *arg)
{
	PyThreadState *tstate = frame->f_tstate;
	PyObject *callback;
	PyObject *result;

	if (what == PyTrace_CALL)
		callback = self;
	else
		callback = frame->f_trace;
	if (callback == NULL)
		return 0;
	result = call_trampoline(tstate, callback, frame, what, arg);
	if (result == NULL) {
		PyEval_SetTrace(NULL, NULL);
		Py_XDECREF(frame->f_trace);
		frame->f_trace = NULL;
		return -1;
	}
	if (result != Py_None) {
		PyObject *temp = frame->f_trace;
		frame->f_trace = NULL;
		Py_XDECREF(temp);
		frame->f_trace = result;
	}
	else {
		Py_DECREF(result);
	}
	return 0;
}

static PyObject *
sys_settrace(PyObject *self, PyObject *args)
{
	if (trace_init() == -1)
		return NULL;
	if (args == Py_None)
		PyEval_SetTrace(NULL, NULL);
	else
		PyEval_SetTrace(trace_trampoline, args);
	Py_INCREF(Py_None);
	return Py_None;
}

PyDoc_STRVAR(settrace_doc,
"settrace(function)\n\
\n\
Set the global debug tracing function.  It will be called on each\n\
function call.  See the debugger chapter in the library manual."
);

static PyObject *
sys_setprofile(PyObject *self, PyObject *args)
{
	if (trace_init() == -1)
		return NULL;
	if (args == Py_None)
		PyEval_SetProfile(NULL, NULL);
	else
		PyEval_SetProfile(profile_trampoline, args);
	Py_INCREF(Py_None);
	return Py_None;
}

PyDoc_STRVAR(setprofile_doc,
"setprofile(function)\n\
\n\
Set the profiling function.  It will be called on each function call\n\
and return.  See the profiler chapter in the library manual."
);

static PyObject *
sys_setcheckinterval(PyObject *self, PyObject *args)
{
	if (!PyArg_ParseTuple(args, "i:setcheckinterval", &_Py_CheckInterval))
		return NULL;
	Py_INCREF(Py_None);
	return Py_None;
}

PyDoc_STRVAR(setcheckinterval_doc,
"setcheckinterval(n)\n\
\n\
Tell the Python interpreter to check for asynchronous events every\n\
n instructions.  This also affects how often thread switches occur."
);

static PyObject *
sys_getcheckinterval(PyObject *self, PyObject *args)
{
	return PyInt_FromLong(_Py_CheckInterval);
}

PyDoc_STRVAR(getcheckinterval_doc,
"getcheckinterval() -> current check interval; see setcheckinterval()."
);

#ifdef WITH_TSC
static PyObject *
sys_settscdump(PyObject *self, PyObject *args)
{
	int bool;
	PyThreadState *tstate = PyThreadState_Get();

	if (!PyArg_ParseTuple(args, "i:settscdump", &bool))
		return NULL;
	if (bool)
		tstate->interp->tscdump = 1;
	else
		tstate->interp->tscdump = 0;
	Py_INCREF(Py_None);
	return Py_None;

}

PyDoc_STRVAR(settscdump_doc,
"settscdump(bool)\n\
\n\
If true, tell the Python interpreter to dump VM measurements to\n\
stderr.  If false, turn off dump.  The measurements are based on the\n\
processor's time-stamp counter."
);
#endif /* TSC */

static PyObject *
sys_setrecursionlimit(PyObject *self, PyObject *args)
{
	int new_limit;
	if (!PyArg_ParseTuple(args, "i:setrecursionlimit", &new_limit))
		return NULL;
	if (new_limit <= 0) {
		PyErr_SetString(PyExc_ValueError,
				"recursion limit must be positive");
		return NULL;
	}
	Py_SetRecursionLimit(new_limit);
	Py_INCREF(Py_None);
	return Py_None;
}

PyDoc_STRVAR(setrecursionlimit_doc,
"setrecursionlimit(n)\n\
\n\
Set the maximum depth of the Python interpreter stack to n.  This\n\
limit prevents infinite recursion from causing an overflow of the C\n\
stack and crashing Python.  The highest possible limit is platform-\n\
dependent."
);

static PyObject *
sys_getrecursionlimit(PyObject *self)
{
	return PyInt_FromLong(Py_GetRecursionLimit());
}

PyDoc_STRVAR(getrecursionlimit_doc,
"getrecursionlimit()\n\
\n\
Return the current value of the recursion limit, the maximum depth\n\
of the Python interpreter stack.  This limit prevents infinite\n\
recursion from causing an overflow of the C stack and crashing Python."
);

#ifdef MS_WINDOWS
PyDoc_STRVAR(getwindowsversion_doc,
"getwindowsversion()\n\
\n\
Return information about the running version of Windows.\n\
The result is a tuple of (major, minor, build, platform, text)\n\
All elements are numbers, except text which is a string.\n\
Platform may be 0 for win32s, 1 for Windows 9x/ME, 2 for Windows NT/2000/XP\n\
"
);

static PyObject *
sys_getwindowsversion(PyObject *self)
{
	OSVERSIONINFO ver;
	ver.dwOSVersionInfoSize = sizeof(ver);
	if (!GetVersionEx(&ver))
		return PyErr_SetFromWindowsErr(0);
	return Py_BuildValue("HHHHs",
	                     ver.dwMajorVersion,
	                     ver.dwMinorVersion,
	                     ver.dwBuildNumber,
	                     ver.dwPlatformId,
	                     ver.szCSDVersion);
}

#endif /* MS_WINDOWS */

#ifdef HAVE_DLOPEN
static PyObject *
sys_setdlopenflags(PyObject *self, PyObject *args)
{
	int new_val;
        PyThreadState *tstate = PyThreadState_GET();
	if (!PyArg_ParseTuple(args, "i:setdlopenflags", &new_val))
		return NULL;
        if (!tstate)
		return NULL;
        tstate->interp->dlopenflags = new_val;
	Py_INCREF(Py_None);
	return Py_None;
}

PyDoc_STRVAR(setdlopenflags_doc,
"setdlopenflags(n) -> None\n\
\n\
Set the flags that will be used for dlopen() calls. Among other\n\
things, this will enable a lazy resolving of symbols when importing\n\
a module, if called as sys.setdlopenflags(0)\n\
To share symbols across extension modules, call as\n\
sys.setdlopenflags(dl.RTLD_NOW|dl.RTLD_GLOBAL)"
);

static PyObject *
sys_getdlopenflags(PyObject *self, PyObject *args)
{
        PyThreadState *tstate = PyThreadState_GET();
        if (!tstate)
		return NULL;
        return PyInt_FromLong(tstate->interp->dlopenflags);
}

PyDoc_STRVAR(getdlopenflags_doc,
"getdlopenflags() -> int\n\
\n\
Return the current value of the flags that are used for dlopen()\n\
calls. The flag constants are defined in the dl module."
);
#endif

#ifdef USE_MALLOPT
/* Link with -lmalloc (or -lmpc) on an SGI */
#include <malloc.h>

static PyObject *
sys_mdebug(PyObject *self, PyObject *args)
{
	int flag;
	if (!PyArg_ParseTuple(args, "i:mdebug", &flag))
		return NULL;
	mallopt(M_DEBUG, flag);
	Py_INCREF(Py_None);
	return Py_None;
}
#endif /* USE_MALLOPT */

static PyObject *
sys_getrefcount(PyObject *self, PyObject *arg)
{
	return PyInt_FromSsize_t(arg->ob_refcnt);
}

#ifdef Py_REF_DEBUG
static PyObject *
sys_gettotalrefcount(PyObject *self)
{
	return PyInt_FromSsize_t(_Py_GetRefTotal());
}
#endif /* Py_REF_DEBUG */

PyDoc_STRVAR(getrefcount_doc,
"getrefcount(object) -> integer\n\
\n\
Return the reference count of object.  The count returned is generally\n\
one higher than you might expect, because it includes the (temporary)\n\
reference as an argument to getrefcount()."
);

#ifdef COUNT_ALLOCS
static PyObject *
sys_getcounts(PyObject *self)
{
	extern PyObject *get_counts(void);

	return get_counts();
}
#endif

PyDoc_STRVAR(getframe_doc,
"_getframe([depth]) -> frameobject\n\
\n\
Return a frame object from the call stack.  If optional integer depth is\n\
given, return the frame object that many calls below the top of the stack.\n\
If that is deeper than the call stack, ValueError is raised.  The default\n\
for depth is zero, returning the frame at the top of the call stack.\n\
\n\
This function should be used for internal and specialized\n\
purposes only."
);

static PyObject *
sys_getframe(PyObject *self, PyObject *args)
{
	PyFrameObject *f = PyThreadState_GET()->frame;
	int depth = -1;

	if (!PyArg_ParseTuple(args, "|i:_getframe", &depth))
		return NULL;

	while (depth > 0 && f != NULL) {
		f = f->f_back;
		--depth;
	}
	if (f == NULL) {
		PyErr_SetString(PyExc_ValueError,
				"call stack is not deep enough");
		return NULL;
	}
	Py_INCREF(f);
	return (PyObject*)f;
}

PyDoc_STRVAR(current_frames_doc,
"_current_frames() -> dictionary\n\
\n\
Return a dictionary mapping each current thread T's thread id to T's\n\
current stack frame.\n\
\n\
This function should be used for specialized purposes only."
);

static PyObject *
sys_current_frames(PyObject *self, PyObject *noargs)
{
	return _PyThread_CurrentFrames();
}

PyDoc_STRVAR(call_tracing_doc,
"call_tracing(func, args) -> object\n\
\n\
Call func(*args), while tracing is enabled.  The tracing state is\n\
saved, and restored afterwards.  This is intended to be called from\n\
a debugger from a checkpoint, to recursively debug some other code."
);

static PyObject *
sys_call_tracing(PyObject *self, PyObject *args)
{
	PyObject *func, *funcargs;
	if (!PyArg_UnpackTuple(args, "call_tracing", 2, 2, &func, &funcargs))
		return NULL;
	return _PyEval_CallTracing(func, funcargs);
}

PyDoc_STRVAR(callstats_doc,
"callstats() -> tuple of integers\n\
\n\
Return a tuple of function call statistics, if CALL_PROFILE was defined\n\
when Python was built.  Otherwise, return None.\n\
\n\
When enabled, this function returns detailed, implementation-specific\n\
details about the number of function calls executed. The return value is\n\
a 11-tuple where the entries in the tuple are counts of:\n\
0. all function calls\n\
1. calls to PyFunction_Type objects\n\
2. PyFunction calls that do not create an argument tuple\n\
3. PyFunction calls that do not create an argument tuple\n\
   and bypass PyEval_EvalCodeEx()\n\
4. PyMethod calls\n\
5. PyMethod calls on bound methods\n\
6. PyType calls\n\
7. PyCFunction calls\n\
8. generator calls\n\
9. All other calls\n\
10. Number of stack pops performed by call_function()"
);

#ifdef __cplusplus
extern "C" {
#endif

#ifdef Py_TRACE_REFS
/* Defined in objects.c because it uses static globals if that file */
extern PyObject *_Py_GetObjects(PyObject *, PyObject *);
#endif

#ifdef DYNAMIC_EXECUTION_PROFILE
/* Defined in ceval.c because it uses static globals if that file */
extern PyObject *_Py_GetDXProfile(PyObject *,  PyObject *);
#endif

#ifdef __cplusplus
}
#endif

static PyMethodDef sys_methods[] = {
	/* Might as well keep this in alphabetic order */
	{"callstats", (PyCFunction)PyEval_GetCallStats, METH_NOARGS,
	 callstats_doc},
	{"_current_frames", sys_current_frames, METH_NOARGS,
	 current_frames_doc},
	{"displayhook",	sys_displayhook, METH_O, displayhook_doc},
	{"exc_info",	sys_exc_info, METH_NOARGS, exc_info_doc},
	{"exc_clear",	sys_exc_clear, METH_NOARGS, exc_clear_doc},
	{"excepthook",	sys_excepthook, METH_VARARGS, excepthook_doc},
	{"exit",	sys_exit, METH_VARARGS, exit_doc},
#ifdef Py_USING_UNICODE
	{"getdefaultencoding", (PyCFunction)sys_getdefaultencoding,
	 METH_NOARGS, getdefaultencoding_doc},
#endif
#ifdef HAVE_DLOPEN
	{"getdlopenflags", (PyCFunction)sys_getdlopenflags, METH_NOARGS,
	 getdlopenflags_doc},
#endif
#ifdef COUNT_ALLOCS
	{"getcounts",	(PyCFunction)sys_getcounts, METH_NOARGS},
#endif
#ifdef DYNAMIC_EXECUTION_PROFILE
	{"getdxp",	_Py_GetDXProfile, METH_VARARGS},
#endif
#ifdef Py_USING_UNICODE
	{"getfilesystemencoding", (PyCFunction)sys_getfilesystemencoding,
	 METH_NOARGS, getfilesystemencoding_doc},
#endif
#ifdef Py_TRACE_REFS
	{"getobjects",	_Py_GetObjects, METH_VARARGS},
#endif
#ifdef Py_REF_DEBUG
	{"gettotalrefcount", (PyCFunction)sys_gettotalrefcount, METH_NOARGS},
#endif
	{"getrefcount",	(PyCFunction)sys_getrefcount, METH_O, getrefcount_doc},
	{"getrecursionlimit", (PyCFunction)sys_getrecursionlimit, METH_NOARGS,
	 getrecursionlimit_doc},
	{"_getframe", sys_getframe, METH_VARARGS, getframe_doc},
#ifdef MS_WINDOWS
	{"getwindowsversion", (PyCFunction)sys_getwindowsversion, METH_NOARGS,
	 getwindowsversion_doc},
#endif /* MS_WINDOWS */
#ifdef USE_MALLOPT
	{"mdebug",	sys_mdebug, METH_VARARGS},
#endif
#ifdef Py_USING_UNICODE
	{"setdefaultencoding", sys_setdefaultencoding, METH_VARARGS,
	 setdefaultencoding_doc},
#endif
	{"setcheckinterval",	sys_setcheckinterval, METH_VARARGS,
	 setcheckinterval_doc},
	{"getcheckinterval",	sys_getcheckinterval, METH_NOARGS,
	 getcheckinterval_doc},
#ifdef HAVE_DLOPEN
	{"setdlopenflags", sys_setdlopenflags, METH_VARARGS,
	 setdlopenflags_doc},
#endif
	{"setprofile",	sys_setprofile, METH_O, setprofile_doc},
	{"setrecursionlimit", sys_setrecursionlimit, METH_VARARGS,
	 setrecursionlimit_doc},
#ifdef WITH_TSC
	{"settscdump", sys_settscdump, METH_VARARGS, settscdump_doc},
#endif
	{"settrace",	sys_settrace, METH_O, settrace_doc},
	{"call_tracing", sys_call_tracing, METH_VARARGS, call_tracing_doc},
	{NULL,		NULL}		/* sentinel */
};

static PyObject *
list_builtin_module_names(void)
{
	PyObject *list = PyList_New(0);
	int i;
	if (list == NULL)
		return NULL;
	for (i = 0; PyImport_Inittab[i].name != NULL; i++) {
		PyObject *name = PyString_FromString(
			PyImport_Inittab[i].name);
		if (name == NULL)
			break;
		PyList_Append(list, name);
		Py_DECREF(name);
	}
	if (PyList_Sort(list) != 0) {
		Py_DECREF(list);
		list = NULL;
	}
	if (list) {
		PyObject *v = PyList_AsTuple(list);
		Py_DECREF(list);
		list = v;
	}
	return list;
}

static PyObject *warnoptions = NULL;

void
PySys_ResetWarnOptions(void)
{
	if (warnoptions == NULL || !PyList_Check(warnoptions))
		return;
	PyList_SetSlice(warnoptions, 0, PyList_GET_SIZE(warnoptions), NULL);
}

void
PySys_AddWarnOption(char *s)
{
	PyObject *str;

	if (warnoptions == NULL || !PyList_Check(warnoptions)) {
		Py_XDECREF(warnoptions);
		warnoptions = PyList_New(0);
		if (warnoptions == NULL)
			return;
	}
	str = PyString_FromString(s);
	if (str != NULL) {
		PyList_Append(warnoptions, str);
		Py_DECREF(str);
	}
}

/* XXX This doc string is too long to be a single string literal in VC++ 5.0.
   Two literals concatenated works just fine.  If you have a K&R compiler
   or other abomination that however *does* understand longer strings,
   get rid of the !!! comment in the middle and the quotes that surround it. */
PyDoc_VAR(sys_doc) =
PyDoc_STR(
"This module provides access to some objects used or maintained by the\n\
interpreter and to functions that interact strongly with the interpreter.\n\
\n\
Dynamic objects:\n\
\n\
argv -- command line arguments; argv[0] is the script pathname if known\n\
path -- module search path; path[0] is the script directory, else ''\n\
modules -- dictionary of loaded modules\n\
\n\
displayhook -- called to show results in an interactive session\n\
excepthook -- called to handle any uncaught exception other than SystemExit\n\
  To customize printing in an interactive session or to install a custom\n\
  top-level exception handler, assign other functions to replace these.\n\
\n\
exitfunc -- if sys.exitfunc exists, this routine is called when Python exits\n\
  Assigning to sys.exitfunc is deprecated; use the atexit module instead.\n\
\n\
stdin -- standard input file object; used by raw_input() and input()\n\
stdout -- standard output file object; used by the print statement\n\
stderr -- standard error object; used for error messages\n\
  By assigning other file objects (or objects that behave like files)\n\
  to these, it is possible to redirect all of the interpreter's I/O.\n\
\n\
last_type -- type of last uncaught exception\n\
last_value -- value of last uncaught exception\n\
last_traceback -- traceback of last uncaught exception\n\
  These three are only available in an interactive session after a\n\
  traceback has been printed.\n\
\n\
exc_type -- type of exception currently being handled\n\
exc_value -- value of exception currently being handled\n\
exc_traceback -- traceback of exception currently being handled\n\
  The function exc_info() should be used instead of these three,\n\
  because it is thread-safe.\n\
"
)
/* concatenating string here */
PyDoc_STR(
"\n\
Static objects:\n\
\n\
maxint -- the largest supported integer (the smallest is -maxint-1)\n\
maxunicode -- the largest supported character\n\
builtin_module_names -- tuple of module names built into this interpreter\n\
version -- the version of this interpreter as a string\n\
version_info -- version information as a tuple\n\
hexversion -- version information encoded as a single integer\n\
copyright -- copyright notice pertaining to this interpreter\n\
platform -- platform identifier\n\
executable -- pathname of this Python interpreter\n\
prefix -- prefix used to find the Python library\n\
exec_prefix -- prefix used to find the machine-specific Python library\n\
"
)
#ifdef MS_WINDOWS
/* concatenating string here */
PyDoc_STR(
"dllhandle -- [Windows only] integer handle of the Python DLL\n\
winver -- [Windows only] version number of the Python DLL\n\
"
)
#endif /* MS_WINDOWS */
PyDoc_STR(
"__stdin__ -- the original stdin; don't touch!\n\
__stdout__ -- the original stdout; don't touch!\n\
__stderr__ -- the original stderr; don't touch!\n\
__displayhook__ -- the original displayhook; don't touch!\n\
__excepthook__ -- the original excepthook; don't touch!\n\
\n\
Functions:\n\
\n\
displayhook() -- print an object to the screen, and save it in __builtin__._\n\
excepthook() -- print an exception and its traceback to sys.stderr\n\
exc_info() -- return thread-safe information about the current exception\n\
exc_clear() -- clear the exception state for the current thread\n\
exit() -- exit the interpreter by raising SystemExit\n\
getdlopenflags() -- returns flags to be used for dlopen() calls\n\
getrefcount() -- return the reference count for an object (plus one :-)\n\
getrecursionlimit() -- return the max recursion depth for the interpreter\n\
setcheckinterval() -- control how often the interpreter checks for events\n\
setdlopenflags() -- set the flags to be used for dlopen() calls\n\
setprofile() -- set the global profiling function\n\
setrecursionlimit() -- set the max recursion depth for the interpreter\n\
settrace() -- set the global debug tracing function\n\
"
)
/* end of sys_doc */ ;

static int
_check_and_flush (FILE *stream)
{
  int prev_fail = ferror (stream);
  return fflush (stream) || prev_fail ? EOF : 0;
}

/* Subversion branch and revision management */
static const char _patchlevel_revision[] = PY_PATCHLEVEL_REVISION;
static const char headurl[] = "$HeadURL$";
static int svn_initialized;
static char patchlevel_revision[50]; /* Just the number */
static char branch[50];
static char shortbranch[50];
static const char *svn_revision;

static void
svnversion_init(void)
{
	const char *python, *br_start, *br_end, *br_end2, *svnversion;
	Py_ssize_t len;
	int istag;

	if (svn_initialized)
		return;

	python = strstr(headurl, "/python/");
	if (!python)
		Py_FatalError("subversion keywords missing");

	br_start = python + 8;
	br_end = strchr(br_start, '/');
	assert(br_end);

	/* Works even for trunk,
	   as we are in trunk/Python/sysmodule.c */
	br_end2 = strchr(br_end+1, '/');

	istag = strncmp(br_start, "tags", 4) == 0;
	if (strncmp(br_start, "trunk", 5) == 0) {
		strcpy(branch, "trunk");
		strcpy(shortbranch, "trunk");

	}
	else if (istag || strncmp(br_start, "branches", 8) == 0) {
		len = br_end2 - br_start;
		strncpy(branch, br_start, len);
		branch[len] = '\0';

		len = br_end2 - (br_end + 1);
		strncpy(shortbranch, br_end + 1, len);
		shortbranch[len] = '\0';
	}
	else {
		Py_FatalError("bad HeadURL");
		return;
	}


	svnversion = _Py_svnversion();
	if (strcmp(svnversion, "exported") != 0)
		svn_revision = svnversion;
	else if (istag) {
		len = strlen(_patchlevel_revision);
		assert(len >= 13);
		assert(len < (sizeof(patchlevel_revision) + 13));
		strncpy(patchlevel_revision, _patchlevel_revision + 11,
			len - 13);
		patchlevel_revision[len - 13] = '\0';
		svn_revision = patchlevel_revision;
	}
	else
		svn_revision = "";

	svn_initialized = 1;
}

/* Return svnversion output if available.
   Else return Revision of patchlevel.h if on branch.
   Else return empty string */
const char*
Py_SubversionRevision()
{
	svnversion_init();
	return svn_revision;
}

const char*
Py_SubversionShortBranch()
{
	svnversion_init();
	return shortbranch;
}


PyDoc_STRVAR(flags__doc__,
"sys.flags\n\
\n\
Flags provided through command line arguments or environment vars.");

static PyTypeObject FlagsType;

static PyStructSequence_Field flags_fields[] = {
	{"debug",		"-d"},
	{"py3k_warning",	"-3"},
	{"division_warning",	"-Q"},
	{"division_new",	"-Qnew"},
	{"inspect",		"-i"},
	{"interactive",		"-i"},
	{"optimize",		"-O or -OO"},
	{"dont_write_bytecode",	"-B"},
	/* {"no_user_site",	"-s"}, */
	{"no_site",		"-S"},
	{"ignore_environment",	"-E"},
	{"tabcheck",		"-t or -tt"},
	{"verbose",		"-v"},
#ifdef RISCOS
	{"riscos_wimp",		"???"},
#endif
	/* {"unbuffered",		"-u"}, */
	{"unicode",		"-U"},
	/* {"skip_first",		"-x"}, */
	{0}
};

static PyStructSequence_Desc flags_desc = {
	"sys.flags",	/* name */
	flags__doc__,	/* doc */
	flags_fields,	/* fields */
#ifdef RISCOS
	14
#else
	13
#endif
};

static PyObject*
make_flags(void)
{
	int pos = 0;
	PyObject *seq;

	seq = PyStructSequence_New(&FlagsType);
	if (seq == NULL)
		return NULL;

#define SetFlag(flag) \
	PyStructSequence_SET_ITEM(seq, pos++, PyInt_FromLong(flag))

	SetFlag(Py_DebugFlag);
	SetFlag(Py_Py3kWarningFlag);
	SetFlag(Py_DivisionWarningFlag);
	SetFlag(_Py_QnewFlag);
	SetFlag(Py_InspectFlag);
	SetFlag(Py_InteractiveFlag);
	SetFlag(Py_OptimizeFlag);
	SetFlag(Py_DontWriteBytecodeFlag);
	/* SetFlag(Py_NoUserSiteDirectory); */
	SetFlag(Py_NoSiteFlag);
	SetFlag(Py_IgnoreEnvironmentFlag);
	SetFlag(Py_TabcheckFlag);
	SetFlag(Py_VerboseFlag);
#ifdef RISCOS
	SetFlag(Py_RISCOSWimpFlag);
#endif
	/* SetFlag(saw_unbuffered_flag); */
	SetFlag(Py_UnicodeFlag);
	/* SetFlag(skipfirstline); */
#undef SetFlag

	if (PyErr_Occurred()) {
		return NULL;
	}

	Py_INCREF(seq);
	return seq;
}

PyObject *
_PySys_Init(void)
{
	PyObject *m, *v, *sysdict;
	PyObject *sysin, *sysout, *syserr;
	char *s;
#ifdef MS_WINDOWS
	char buf[128];
#endif

	m = Py_InitModule3("sys", sys_methods, sys_doc);
	if (m == NULL)
		return NULL;
	sysdict = PyModule_GetDict(m);

	{
		/* XXX: does this work on Win/Win64? (see posix_fstat) */
		struct stat sb;
		if (fstat(fileno(stdin), &sb) == 0 &&
		    S_ISDIR(sb.st_mode)) {
			/* There's nothing more we can do. */
			/* Py_FatalError() will core dump, so just exit. */
			PySys_WriteStderr("Python error: <stdin> is a directory, cannot continue\n");
			exit(EXIT_FAILURE);
		}
	}

	/* Closing the standard FILE* if sys.std* goes aways causes problems
	 * for embedded Python usages. Closing them when somebody explicitly
	 * invokes .close() might be possible, but the FAQ promises they get
	 * never closed. However, we still need to get write errors when
	 * writing fails (e.g. because stdout is redirected), so we flush the
	 * streams and check for errors before the file objects are deleted.
	 * On OS X, fflush()ing stdin causes an error, so we exempt stdin
	 * from that procedure.
	 */
	sysin = PyFile_FromFile(stdin, "<stdin>", "r", NULL);
	sysout = PyFile_FromFile(stdout, "<stdout>", "w", _check_and_flush);
	syserr = PyFile_FromFile(stderr, "<stderr>", "w", _check_and_flush);
	if (PyErr_Occurred())
		return NULL;
#ifdef MS_WINDOWS
	if(isatty(_fileno(stdin)) && PyFile_Check(sysin)) {
		sprintf(buf, "cp%d", GetConsoleCP());
		if (!PyFile_SetEncoding(sysin, buf))
			return NULL;
	}
	if(isatty(_fileno(stdout)) && PyFile_Check(sysout)) {
		sprintf(buf, "cp%d", GetConsoleOutputCP());
		if (!PyFile_SetEncoding(sysout, buf))
			return NULL;
	}
	if(isatty(_fileno(stderr)) && PyFile_Check(syserr)) {
		sprintf(buf, "cp%d", GetConsoleOutputCP());
		if (!PyFile_SetEncoding(syserr, buf))
			return NULL;
	}
#endif

	PyDict_SetItemString(sysdict, "stdin", sysin);
	PyDict_SetItemString(sysdict, "stdout", sysout);
	PyDict_SetItemString(sysdict, "stderr", syserr);
	/* Make backup copies for cleanup */
	PyDict_SetItemString(sysdict, "__stdin__", sysin);
	PyDict_SetItemString(sysdict, "__stdout__", sysout);
	PyDict_SetItemString(sysdict, "__stderr__", syserr);
	PyDict_SetItemString(sysdict, "__displayhook__",
                             PyDict_GetItemString(sysdict, "displayhook"));
	PyDict_SetItemString(sysdict, "__excepthook__",
                             PyDict_GetItemString(sysdict, "excepthook"));
	Py_XDECREF(sysin);
	Py_XDECREF(sysout);
	Py_XDECREF(syserr);
	PyDict_SetItemString(sysdict, "version",
			     v = PyString_FromString(Py_GetVersion()));
	Py_XDECREF(v);
	PyDict_SetItemString(sysdict, "hexversion",
			     v = PyInt_FromLong(PY_VERSION_HEX));
	Py_XDECREF(v);
	svnversion_init();
	v = Py_BuildValue("(ssz)", "CPython", branch, svn_revision);
	PyDict_SetItemString(sysdict, "subversion", v);
	Py_XDECREF(v);
	PyDict_SetItemString(sysdict, "dont_write_bytecode",
			     v = PyBool_FromLong(Py_DontWriteBytecodeFlag));
	Py_XDECREF(v);
	/*
	 * These release level checks are mutually exclusive and cover
	 * the field, so don't get too fancy with the pre-processor!
	 */
#if PY_RELEASE_LEVEL == PY_RELEASE_LEVEL_ALPHA
	s = "alpha";
#elif PY_RELEASE_LEVEL == PY_RELEASE_LEVEL_BETA
	s = "beta";
#elif PY_RELEASE_LEVEL == PY_RELEASE_LEVEL_GAMMA
	s = "candidate";
#elif PY_RELEASE_LEVEL == PY_RELEASE_LEVEL_FINAL
	s = "final";
#endif

#define SET_SYS_FROM_STRING(key, value)			\
	v = value;					\
	if (v != NULL)					\
		PyDict_SetItemString(sysdict, key, v);	\
	Py_XDECREF(v)

	SET_SYS_FROM_STRING("version_info",
			    Py_BuildValue("iiisi", PY_MAJOR_VERSION,
					       PY_MINOR_VERSION,
					       PY_MICRO_VERSION, s,
					       PY_RELEASE_SERIAL));
	SET_SYS_FROM_STRING("api_version",
			    PyInt_FromLong(PYTHON_API_VERSION));
	SET_SYS_FROM_STRING("copyright",
			    PyString_FromString(Py_GetCopyright()));
	SET_SYS_FROM_STRING("platform",
			    PyString_FromString(Py_GetPlatform()));
	SET_SYS_FROM_STRING("executable",
			    PyString_FromString(Py_GetProgramFullPath()));
	SET_SYS_FROM_STRING("prefix",
			    PyString_FromString(Py_GetPrefix()));
	SET_SYS_FROM_STRING("exec_prefix",
		   	    PyString_FromString(Py_GetExecPrefix()));
	SET_SYS_FROM_STRING("maxint",
			    PyInt_FromLong(PyInt_GetMax()));
	SET_SYS_FROM_STRING("py3kwarning",
			    PyBool_FromLong(Py_Py3kWarningFlag));
	SET_SYS_FROM_STRING("float_info",
			    PyFloat_GetInfo());
#ifdef Py_USING_UNICODE
	SET_SYS_FROM_STRING("maxunicode",
			    PyInt_FromLong(PyUnicode_GetMax()));
#endif
	SET_SYS_FROM_STRING("builtin_module_names",
			    list_builtin_module_names());
	{
		/* Assumes that longs are at least 2 bytes long.
		   Should be safe! */
		unsigned long number = 1;
		char *value;

		s = (char *) &number;
		if (s[0] == 0)
			value = "big";
		else
			value = "little";
		SET_SYS_FROM_STRING("byteorder",
				    PyString_FromString(value));
	}
#ifdef MS_COREDLL
	SET_SYS_FROM_STRING("dllhandle",
			    PyLong_FromVoidPtr(PyWin_DLLhModule));
	SET_SYS_FROM_STRING("winver",
			    PyString_FromString(PyWin_DLLVersionString));
#endif
#undef SET_SYS_FROM_STRING
	if (warnoptions == NULL) {
		warnoptions = PyList_New(0);
	}
	else {
		Py_INCREF(warnoptions);
	}
	if (warnoptions != NULL) {
		PyDict_SetItemString(sysdict, "warnoptions", warnoptions);
	}

	PyStructSequence_InitType(&FlagsType, &flags_desc);
	PyDict_SetItemString(sysdict, "flags", make_flags());
	/* prevent user from creating new instances */
	FlagsType.tp_init = NULL;
	FlagsType.tp_new = NULL;

	if (PyErr_Occurred())
		return NULL;
	return m;
}

static PyObject *
makepathobject(char *path, int delim)
{
	int i, n;
	char *p;
	PyObject *v, *w;

	n = 1;
	p = path;
	while ((p = strchr(p, delim)) != NULL) {
		n++;
		p++;
	}
	v = PyList_New(n);
	if (v == NULL)
		return NULL;
	for (i = 0; ; i++) {
		p = strchr(path, delim);
		if (p == NULL)
			p = strchr(path, '\0'); /* End of string */
		w = PyString_FromStringAndSize(path, (Py_ssize_t) (p - path));
		if (w == NULL) {
			Py_DECREF(v);
			return NULL;
		}
		PyList_SetItem(v, i, w);
		if (*p == '\0')
			break;
		path = p+1;
	}
	return v;
}

void
PySys_SetPath(char *path)
{
	PyObject *v;
	if ((v = makepathobject(path, DELIM)) == NULL)
		Py_FatalError("can't create sys.path");
	if (PySys_SetObject("path", v) != 0)
		Py_FatalError("can't assign sys.path");
	Py_DECREF(v);
}

static PyObject *
makeargvobject(int argc, char **argv)
{
	PyObject *av;
	if (argc <= 0 || argv == NULL) {
		/* Ensure at least one (empty) argument is seen */
		static char *empty_argv[1] = {""};
		argv = empty_argv;
		argc = 1;
	}
	av = PyList_New(argc);
	if (av != NULL) {
		int i;
		for (i = 0; i < argc; i++) {
#ifdef __VMS
			PyObject *v;

			/* argv[0] is the script pathname if known */
			if (i == 0) {
				char* fn = decc$translate_vms(argv[0]);
				if ((fn == (char *)0) || fn == (char *)-1)
					v = PyString_FromString(argv[0]);
				else
					v = PyString_FromString(
						decc$translate_vms(argv[0]));
			} else
				v = PyString_FromString(argv[i]);
#else
			PyObject *v = PyString_FromString(argv[i]);
#endif
			if (v == NULL) {
				Py_DECREF(av);
				av = NULL;
				break;
			}
			PyList_SetItem(av, i, v);
		}
	}
	return av;
}

void
PySys_SetArgv(int argc, char **argv)
{
#if defined(HAVE_REALPATH)
	char fullpath[MAXPATHLEN];
#elif defined(MS_WINDOWS)
	char fullpath[MAX_PATH];
#endif
	PyObject *av = makeargvobject(argc, argv);
	PyObject *path = PySys_GetObject("path");
	if (av == NULL)
		Py_FatalError("no mem for sys.argv");
	if (PySys_SetObject("argv", av) != 0)
		Py_FatalError("can't assign sys.argv");
	if (path != NULL) {
		char *argv0 = argv[0];
		char *p = NULL;
		Py_ssize_t n = 0;
		PyObject *a;
#ifdef HAVE_READLINK
		char link[MAXPATHLEN+1];
		char argv0copy[2*MAXPATHLEN+1];
		int nr = 0;
		if (argc > 0 && argv0 != NULL && strcmp(argv0, "-c") != 0)
			nr = readlink(argv0, link, MAXPATHLEN);
		if (nr > 0) {
			/* It's a symlink */
			link[nr] = '\0';
			if (link[0] == SEP)
				argv0 = link; /* Link to absolute path */
			else if (strchr(link, SEP) == NULL)
				; /* Link without path */
			else {
				/* Must join(dirname(argv0), link) */
				char *q = strrchr(argv0, SEP);
				if (q == NULL)
					argv0 = link; /* argv0 without path */
				else {
					/* Must make a copy */
					strcpy(argv0copy, argv0);
					q = strrchr(argv0copy, SEP);
					strcpy(q+1, link);
					argv0 = argv0copy;
				}
			}
		}
#endif /* HAVE_READLINK */
#if SEP == '\\' /* Special case for MS filename syntax */
		if (argc > 0 && argv0 != NULL && strcmp(argv0, "-c") != 0) {
			char *q;
#ifdef MS_WINDOWS
			char *ptemp;
			if (GetFullPathName(argv0,
					   sizeof(fullpath),
					   fullpath,
					   &ptemp)) {
				argv0 = fullpath;
			}
#endif
			p = strrchr(argv0, SEP);
			/* Test for alternate separator */
			q = strrchr(p ? p : argv0, '/');
			if (q != NULL)
				p = q;
			if (p != NULL) {
				n = p + 1 - argv0;
				if (n > 1 && p[-1] != ':')
					n--; /* Drop trailing separator */
			}
		}
#else /* All other filename syntaxes */
		if (argc > 0 && argv0 != NULL && strcmp(argv0, "-c") != 0) {
#if defined(HAVE_REALPATH)
			if (realpath(argv0, fullpath)) {
				argv0 = fullpath;
			}
#endif
			p = strrchr(argv0, SEP);
		}
		if (p != NULL) {
#ifndef RISCOS
			n = p + 1 - argv0;
#else /* don't include trailing separator */
			n = p - argv0;
#endif /* RISCOS */
#if SEP == '/' /* Special case for Unix filename syntax */
			if (n > 1)
				n--; /* Drop trailing separator */
#endif /* Unix */
		}
#endif /* All others */
		a = PyString_FromStringAndSize(argv0, n);
		if (a == NULL)
			Py_FatalError("no mem for sys.path insertion");
		if (PyList_Insert(path, 0, a) < 0)
			Py_FatalError("sys.path.insert(0) failed");
		Py_DECREF(a);
	}
	Py_DECREF(av);
}


/* APIs to write to sys.stdout or sys.stderr using a printf-like interface.
   Adapted from code submitted by Just van Rossum.

   PySys_WriteStdout(format, ...)
   PySys_WriteStderr(format, ...)

      The first function writes to sys.stdout; the second to sys.stderr.  When
      there is a problem, they write to the real (C level) stdout or stderr;
      no exceptions are raised.

      Both take a printf-style format string as their first argument followed
      by a variable length argument list determined by the format string.

      *** WARNING ***

      The format should limit the total size of the formatted output string to
      1000 bytes.  In particular, this means that no unrestricted "%s" formats
      should occur; these should be limited using "%.<N>s where <N> is a
      decimal number calculated so that <N> plus the maximum size of other
      formatted text does not exceed 1000 bytes.  Also watch out for "%f",
      which can print hundreds of digits for very large numbers.

 */

static void
mywrite(char *name, FILE *fp, const char *format, va_list va)
{
	PyObject *file;
	PyObject *error_type, *error_value, *error_traceback;

	PyErr_Fetch(&error_type, &error_value, &error_traceback);
	file = PySys_GetObject(name);
	if (file == NULL || PyFile_AsFile(file) == fp)
		vfprintf(fp, format, va);
	else {
		char buffer[1001];
		const int written = PyOS_vsnprintf(buffer, sizeof(buffer),
						   format, va);
		if (PyFile_WriteString(buffer, file) != 0) {
			PyErr_Clear();
			fputs(buffer, fp);
		}
		if (written < 0 || (size_t)written >= sizeof(buffer)) {
			const char *truncated = "... truncated";
			if (PyFile_WriteString(truncated, file) != 0) {
				PyErr_Clear();
				fputs(truncated, fp);
			}
		}
	}
	PyErr_Restore(error_type, error_value, error_traceback);
}

void
PySys_WriteStdout(const char *format, ...)
{
	va_list va;

	va_start(va, format);
	mywrite("stdout", stdout, format, va);
	va_end(va);
}

void
PySys_WriteStderr(const char *format, ...)
{
	va_list va;

	va_start(va, format);
	mywrite("stderr", stderr, format, va);
	va_end(va);
}
pan> There is no facility to schedule calls to a particular thread, but that should be easy to change, should that ever be required. In that case, the static variables here should go into the python threadstate. #endif */ #ifdef WITH_THREAD /* The WITH_THREAD implementation is thread-safe. It allows scheduling to be made from any thread, and even from an executing callback. */ #define NPENDINGCALLS 32 static struct { int (*func)(void *); void *arg; } pendingcalls[NPENDINGCALLS]; static int pendingfirst = 0; static int pendinglast = 0; int Py_AddPendingCall(int (*func)(void *), void *arg) { int i, j, result=0; PyThread_type_lock lock = pending_lock; /* try a few times for the lock. Since this mechanism is used * for signal handling (on the main thread), there is a (slim) * chance that a signal is delivered on the same thread while we * hold the lock during the Py_MakePendingCalls() function. * This avoids a deadlock in that case. * Note that signals can be delivered on any thread. In particular, * on Windows, a SIGINT is delivered on a system-created worker * thread. * We also check for lock being NULL, in the unlikely case that * this function is called before any bytecode evaluation takes place. */ if (lock != NULL) { for (i = 0; i<100; i++) { if (PyThread_acquire_lock(lock, NOWAIT_LOCK)) break; } if (i == 100) return -1; } i = pendinglast; j = (i + 1) % NPENDINGCALLS; if (j == pendingfirst) { result = -1; /* Queue full */ } else { pendingcalls[i].func = func; pendingcalls[i].arg = arg; pendinglast = j; } /* signal main loop */ SIGNAL_PENDING_CALLS(); if (lock != NULL) PyThread_release_lock(lock); return result; } int Py_MakePendingCalls(void) { static int busy = 0; int i; int r = 0; if (!pending_lock) { /* initial allocation of the lock */ pending_lock = PyThread_allocate_lock(); if (pending_lock == NULL) return -1; } /* only service pending calls on main thread */ if (main_thread && PyThread_get_thread_ident() != main_thread) return 0; /* don't perform recursive pending calls */ if (busy) return 0; busy = 1; /* perform a bounded number of calls, in case of recursion */ for (i=0; i<NPENDINGCALLS; i++) { int j; int (*func)(void *); void *arg = NULL; /* pop one item off the queue while holding the lock */ PyThread_acquire_lock(pending_lock, WAIT_LOCK); j = pendingfirst; if (j == pendinglast) { func = NULL; /* Queue empty */ } else { func = pendingcalls[j].func; arg = pendingcalls[j].arg; pendingfirst = (j + 1) % NPENDINGCALLS; } if (pendingfirst != pendinglast) SIGNAL_PENDING_CALLS(); else UNSIGNAL_PENDING_CALLS(); PyThread_release_lock(pending_lock); /* having released the lock, perform the callback */ if (func == NULL) break; r = func(arg); if (r) break; } busy = 0; return r; } #else /* if ! defined WITH_THREAD */ /* WARNING! ASYNCHRONOUSLY EXECUTING CODE! This code is used for signal handling in python that isn't built with WITH_THREAD. Don't use this implementation when Py_AddPendingCalls() can happen on a different thread! There are two possible race conditions: (1) nested asynchronous calls to Py_AddPendingCall() (2) AddPendingCall() calls made while pending calls are being processed. (1) is very unlikely because typically signal delivery is blocked during signal handling. So it should be impossible. (2) is a real possibility. The current code is safe against (2), but not against (1). The safety against (2) is derived from the fact that only one thread is present, interrupted by signals, and that the critical section is protected with the "busy" variable. On Windows, which delivers SIGINT on a system thread, this does not hold and therefore Windows really shouldn't use this version. The two threads could theoretically wiggle around the "busy" variable. */ #define NPENDINGCALLS 32 static struct { int (*func)(void *); void *arg; } pendingcalls[NPENDINGCALLS]; static volatile int pendingfirst = 0; static volatile int pendinglast = 0; static _Py_atomic_int pendingcalls_to_do = {0}; int Py_AddPendingCall(int (*func)(void *), void *arg) { static volatile int busy = 0; int i, j; /* XXX Begin critical section */ if (busy) return -1; busy = 1; i = pendinglast; j = (i + 1) % NPENDINGCALLS; if (j == pendingfirst) { busy = 0; return -1; /* Queue full */ } pendingcalls[i].func = func; pendingcalls[i].arg = arg; pendinglast = j; SIGNAL_PENDING_CALLS(); busy = 0; /* XXX End critical section */ return 0; } int Py_MakePendingCalls(void) { static int busy = 0; if (busy) return 0; busy = 1; UNSIGNAL_PENDING_CALLS(); for (;;) { int i; int (*func)(void *); void *arg; i = pendingfirst; if (i == pendinglast) break; /* Queue empty */ func = pendingcalls[i].func; arg = pendingcalls[i].arg; pendingfirst = (i + 1) % NPENDINGCALLS; if (func(arg) < 0) { busy = 0; SIGNAL_PENDING_CALLS(); /* We're not done yet */ return -1; } } busy = 0; return 0; } #endif /* WITH_THREAD */ /* The interpreter's recursion limit */ #ifndef Py_DEFAULT_RECURSION_LIMIT #define Py_DEFAULT_RECURSION_LIMIT 1000 #endif static int recursion_limit = Py_DEFAULT_RECURSION_LIMIT; int _Py_CheckRecursionLimit = Py_DEFAULT_RECURSION_LIMIT; int Py_GetRecursionLimit(void) { return recursion_limit; } void Py_SetRecursionLimit(int new_limit) { recursion_limit = new_limit; _Py_CheckRecursionLimit = recursion_limit; } /* the macro Py_EnterRecursiveCall() only calls _Py_CheckRecursiveCall() if the recursion_depth reaches _Py_CheckRecursionLimit. If USE_STACKCHECK, the macro decrements _Py_CheckRecursionLimit to guarantee that _Py_CheckRecursiveCall() is regularly called. Without USE_STACKCHECK, there is no need for this. */ int _Py_CheckRecursiveCall(char *where) { PyThreadState *tstate = PyThreadState_GET(); #ifdef USE_STACKCHECK if (PyOS_CheckStack()) { --tstate->recursion_depth; PyErr_SetString(PyExc_MemoryError, "Stack overflow"); return -1; } #endif _Py_CheckRecursionLimit = recursion_limit; if (tstate->recursion_critical) /* Somebody asked that we don't check for recursion. */ return 0; if (tstate->overflowed) { if (tstate->recursion_depth > recursion_limit + 50) { /* Overflowing while handling an overflow. Give up. */ Py_FatalError("Cannot recover from stack overflow."); } return 0; } if (tstate->recursion_depth > recursion_limit) { --tstate->recursion_depth; tstate->overflowed = 1; PyErr_Format(PyExc_RuntimeError, "maximum recursion depth exceeded%s", where); return -1; } return 0; } /* Status code for main loop (reason for stack unwind) */ enum why_code { WHY_NOT = 0x0001, /* No error */ WHY_EXCEPTION = 0x0002, /* Exception occurred */ WHY_RETURN = 0x0008, /* 'return' statement */ WHY_BREAK = 0x0010, /* 'break' statement */ WHY_CONTINUE = 0x0020, /* 'continue' statement */ WHY_YIELD = 0x0040, /* 'yield' operator */ WHY_SILENCED = 0x0080 /* Exception silenced by 'with' */ }; static void save_exc_state(PyThreadState *, PyFrameObject *); static void swap_exc_state(PyThreadState *, PyFrameObject *); static void restore_and_clear_exc_state(PyThreadState *, PyFrameObject *); static int do_raise(PyObject *, PyObject *); static int unpack_iterable(PyObject *, int, int, PyObject **); /* Records whether tracing is on for any thread. Counts the number of threads for which tstate->c_tracefunc is non-NULL, so if the value is 0, we know we don't have to check this thread's c_tracefunc. This speeds up the if statement in PyEval_EvalFrameEx() after fast_next_opcode*/ static int _Py_TracingPossible = 0; PyObject * PyEval_EvalCode(PyObject *co, PyObject *globals, PyObject *locals) { return PyEval_EvalCodeEx(co, globals, locals, (PyObject **)NULL, 0, (PyObject **)NULL, 0, (PyObject **)NULL, 0, NULL, NULL); } /* Interpreter main loop */ PyObject * PyEval_EvalFrame(PyFrameObject *f) { /* This is for backward compatibility with extension modules that used this API; core interpreter code should call PyEval_EvalFrameEx() */ return PyEval_EvalFrameEx(f, 0); } PyObject * PyEval_EvalFrameEx(PyFrameObject *f, int throwflag) { #ifdef DXPAIRS int lastopcode = 0; #endif PyObject **stack_pointer; /* Next free slot in value stack */ unsigned char *next_instr; int opcode; /* Current opcode */ int oparg; /* Current opcode argument, if any */ enum why_code why; /* Reason for block stack unwind */ PyObject **fastlocals, **freevars; PyObject *retval = NULL; /* Return value */ PyThreadState *tstate = PyThreadState_GET(); PyCodeObject *co; /* when tracing we set things up so that not (instr_lb <= current_bytecode_offset < instr_ub) is true when the line being executed has changed. The initial values are such as to make this false the first time it is tested. */ int instr_ub = -1, instr_lb = 0, instr_prev = -1; unsigned char *first_instr; PyObject *names; PyObject *consts; #ifdef LLTRACE _Py_IDENTIFIER(__ltrace__); #endif /* Computed GOTOs, or the-optimization-commonly-but-improperly-known-as-"threaded code" using gcc's labels-as-values extension (http://gcc.gnu.org/onlinedocs/gcc/Labels-as-Values.html). The traditional bytecode evaluation loop uses a "switch" statement, which decent compilers will optimize as a single indirect branch instruction combined with a lookup table of jump addresses. However, since the indirect jump instruction is shared by all opcodes, the CPU will have a hard time making the right prediction for where to jump next (actually, it will be always wrong except in the uncommon case of a sequence of several identical opcodes). "Threaded code" in contrast, uses an explicit jump table and an explicit indirect jump instruction at the end of each opcode. Since the jump instruction is at a different address for each opcode, the CPU will make a separate prediction for each of these instructions, which is equivalent to predicting the second opcode of each opcode pair. These predictions have a much better chance to turn out valid, especially in small bytecode loops. A mispredicted branch on a modern CPU flushes the whole pipeline and can cost several CPU cycles (depending on the pipeline depth), and potentially many more instructions (depending on the pipeline width). A correctly predicted branch, however, is nearly free. At the time of this writing, the "threaded code" version is up to 15-20% faster than the normal "switch" version, depending on the compiler and the CPU architecture. We disable the optimization if DYNAMIC_EXECUTION_PROFILE is defined, because it would render the measurements invalid. NOTE: care must be taken that the compiler doesn't try to "optimize" the indirect jumps by sharing them between all opcodes. Such optimizations can be disabled on gcc by using the -fno-gcse flag (or possibly -fno-crossjumping). */ #ifdef DYNAMIC_EXECUTION_PROFILE #undef USE_COMPUTED_GOTOS #define USE_COMPUTED_GOTOS 0 #endif #ifdef HAVE_COMPUTED_GOTOS #ifndef USE_COMPUTED_GOTOS #define USE_COMPUTED_GOTOS 1 #endif #else #if defined(USE_COMPUTED_GOTOS) && USE_COMPUTED_GOTOS #error "Computed gotos are not supported on this compiler." #endif #undef USE_COMPUTED_GOTOS #define USE_COMPUTED_GOTOS 0 #endif #if USE_COMPUTED_GOTOS /* Import the static jump table */ #include "opcode_targets.h" /* This macro is used when several opcodes defer to the same implementation (e.g. SETUP_LOOP, SETUP_FINALLY) */ #define TARGET_WITH_IMPL(op, impl) \ TARGET_##op: \ opcode = op; \ if (HAS_ARG(op)) \ oparg = NEXTARG(); \ case op: \ goto impl; \ #define TARGET(op) \ TARGET_##op: \ opcode = op; \ if (HAS_ARG(op)) \ oparg = NEXTARG(); \ case op: #define DISPATCH() \ { \ if (!_Py_atomic_load_relaxed(&eval_breaker)) { \ FAST_DISPATCH(); \ } \ continue; \ } #ifdef LLTRACE #define FAST_DISPATCH() \ { \ if (!lltrace && !_Py_TracingPossible) { \ f->f_lasti = INSTR_OFFSET(); \ goto *opcode_targets[*next_instr++]; \ } \ goto fast_next_opcode; \ } #else #define FAST_DISPATCH() \ { \ if (!_Py_TracingPossible) { \ f->f_lasti = INSTR_OFFSET(); \ goto *opcode_targets[*next_instr++]; \ } \ goto fast_next_opcode; \ } #endif #else #define TARGET(op) \ case op: #define TARGET_WITH_IMPL(op, impl) \ /* silence compiler warnings about `impl` unused */ \ if (0) goto impl; \ case op: #define DISPATCH() continue #define FAST_DISPATCH() goto fast_next_opcode #endif /* Tuple access macros */ #ifndef Py_DEBUG #define GETITEM(v, i) PyTuple_GET_ITEM((PyTupleObject *)(v), (i)) #else #define GETITEM(v, i) PyTuple_GetItem((v), (i)) #endif #ifdef WITH_TSC /* Use Pentium timestamp counter to mark certain events: inst0 -- beginning of switch statement for opcode dispatch inst1 -- end of switch statement (may be skipped) loop0 -- the top of the mainloop loop1 -- place where control returns again to top of mainloop (may be skipped) intr1 -- beginning of long interruption intr2 -- end of long interruption Many opcodes call out to helper C functions. In some cases, the time in those functions should be counted towards the time for the opcode, but not in all cases. For example, a CALL_FUNCTION opcode calls another Python function; there's no point in charge all the bytecode executed by the called function to the caller. It's hard to make a useful judgement statically. In the presence of operator overloading, it's impossible to tell if a call will execute new Python code or not. It's a case-by-case judgement. I'll use intr1 for the following cases: IMPORT_STAR IMPORT_FROM CALL_FUNCTION (and friends) */ uint64 inst0, inst1, loop0, loop1, intr0 = 0, intr1 = 0; int ticked = 0; READ_TIMESTAMP(inst0); READ_TIMESTAMP(inst1); READ_TIMESTAMP(loop0); READ_TIMESTAMP(loop1); /* shut up the compiler */ opcode = 0; #endif /* Code access macros */ #define INSTR_OFFSET() ((int)(next_instr - first_instr)) #define NEXTOP() (*next_instr++) #define NEXTARG() (next_instr += 2, (next_instr[-1]<<8) + next_instr[-2]) #define PEEKARG() ((next_instr[2]<<8) + next_instr[1]) #define JUMPTO(x) (next_instr = first_instr + (x)) #define JUMPBY(x) (next_instr += (x)) /* OpCode prediction macros Some opcodes tend to come in pairs thus making it possible to predict the second code when the first is run. For example, COMPARE_OP is often followed by JUMP_IF_FALSE or JUMP_IF_TRUE. And, those opcodes are often followed by a POP_TOP. Verifying the prediction costs a single high-speed test of a register variable against a constant. If the pairing was good, then the processor's own internal branch predication has a high likelihood of success, resulting in a nearly zero-overhead transition to the next opcode. A successful prediction saves a trip through the eval-loop including its two unpredictable branches, the HAS_ARG test and the switch-case. Combined with the processor's internal branch prediction, a successful PREDICT has the effect of making the two opcodes run as if they were a single new opcode with the bodies combined. If collecting opcode statistics, your choices are to either keep the predictions turned-on and interpret the results as if some opcodes had been combined or turn-off predictions so that the opcode frequency counter updates for both opcodes. Opcode prediction is disabled with threaded code, since the latter allows the CPU to record separate branch prediction information for each opcode. */ #if defined(DYNAMIC_EXECUTION_PROFILE) || USE_COMPUTED_GOTOS #define PREDICT(op) if (0) goto PRED_##op #define PREDICTED(op) PRED_##op: #define PREDICTED_WITH_ARG(op) PRED_##op: #else #define PREDICT(op) if (*next_instr == op) goto PRED_##op #define PREDICTED(op) PRED_##op: next_instr++ #define PREDICTED_WITH_ARG(op) PRED_##op: oparg = PEEKARG(); next_instr += 3 #endif /* Stack manipulation macros */ /* The stack can grow at most MAXINT deep, as co_nlocals and co_stacksize are ints. */ #define STACK_LEVEL() ((int)(stack_pointer - f->f_valuestack)) #define EMPTY() (STACK_LEVEL() == 0) #define TOP() (stack_pointer[-1]) #define SECOND() (stack_pointer[-2]) #define THIRD() (stack_pointer[-3]) #define FOURTH() (stack_pointer[-4]) #define PEEK(n) (stack_pointer[-(n)]) #define SET_TOP(v) (stack_pointer[-1] = (v)) #define SET_SECOND(v) (stack_pointer[-2] = (v)) #define SET_THIRD(v) (stack_pointer[-3] = (v)) #define SET_FOURTH(v) (stack_pointer[-4] = (v)) #define SET_VALUE(n, v) (stack_pointer[-(n)] = (v)) #define BASIC_STACKADJ(n) (stack_pointer += n) #define BASIC_PUSH(v) (*stack_pointer++ = (v)) #define BASIC_POP() (*--stack_pointer) #ifdef LLTRACE #define PUSH(v) { (void)(BASIC_PUSH(v), \ lltrace && prtrace(TOP(), "push")); \ assert(STACK_LEVEL() <= co->co_stacksize); } #define POP() ((void)(lltrace && prtrace(TOP(), "pop")), \ BASIC_POP()) #define STACKADJ(n) { (void)(BASIC_STACKADJ(n), \ lltrace && prtrace(TOP(), "stackadj")); \ assert(STACK_LEVEL() <= co->co_stacksize); } #define EXT_POP(STACK_POINTER) ((void)(lltrace && \ prtrace((STACK_POINTER)[-1], "ext_pop")), \ *--(STACK_POINTER)) #else #define PUSH(v) BASIC_PUSH(v) #define POP() BASIC_POP() #define STACKADJ(n) BASIC_STACKADJ(n) #define EXT_POP(STACK_POINTER) (*--(STACK_POINTER)) #endif /* Local variable macros */ #define GETLOCAL(i) (fastlocals[i]) /* The SETLOCAL() macro must not DECREF the local variable in-place and then store the new value; it must copy the old value to a temporary value, then store the new value, and then DECREF the temporary value. This is because it is possible that during the DECREF the frame is accessed by other code (e.g. a __del__ method or gc.collect()) and the variable would be pointing to already-freed memory. */ #define SETLOCAL(i, value) do { PyObject *tmp = GETLOCAL(i); \ GETLOCAL(i) = value; \ Py_XDECREF(tmp); } while (0) #define UNWIND_BLOCK(b) \ while (STACK_LEVEL() > (b)->b_level) { \ PyObject *v = POP(); \ Py_XDECREF(v); \ } #define UNWIND_EXCEPT_HANDLER(b) \ { \ PyObject *type, *value, *traceback; \ assert(STACK_LEVEL() >= (b)->b_level + 3); \ while (STACK_LEVEL() > (b)->b_level + 3) { \ value = POP(); \ Py_XDECREF(value); \ } \ type = tstate->exc_type; \ value = tstate->exc_value; \ traceback = tstate->exc_traceback; \ tstate->exc_type = POP(); \ tstate->exc_value = POP(); \ tstate->exc_traceback = POP(); \ Py_XDECREF(type); \ Py_XDECREF(value); \ Py_XDECREF(traceback); \ } /* Start of code */ /* push frame */ if (Py_EnterRecursiveCall("")) return NULL; tstate->frame = f; if (tstate->use_tracing) { if (tstate->c_tracefunc != NULL) { /* tstate->c_tracefunc, if defined, is a function that will be called on *every* entry to a code block. Its return value, if not None, is a function that will be called at the start of each executed line of code. (Actually, the function must return itself in order to continue tracing.) The trace functions are called with three arguments: a pointer to the current frame, a string indicating why the function is called, and an argument which depends on the situation. The global trace function is also called whenever an exception is detected. */ if (call_trace_protected(tstate->c_tracefunc, tstate->c_traceobj, tstate, f, PyTrace_CALL, Py_None)) { /* Trace function raised an error */ goto exit_eval_frame; } } if (tstate->c_profilefunc != NULL) { /* Similar for c_profilefunc, except it needn't return itself and isn't called for "line" events */ if (call_trace_protected(tstate->c_profilefunc, tstate->c_profileobj, tstate, f, PyTrace_CALL, Py_None)) { /* Profile function raised an error */ goto exit_eval_frame; } } } co = f->f_code; names = co->co_names; consts = co->co_consts; fastlocals = f->f_localsplus; freevars = f->f_localsplus + co->co_nlocals; first_instr = (unsigned char*) PyBytes_AS_STRING(co->co_code); /* An explanation is in order for the next line. f->f_lasti now refers to the index of the last instruction executed. You might think this was obvious from the name, but this wasn't always true before 2.3! PyFrame_New now sets f->f_lasti to -1 (i.e. the index *before* the first instruction) and YIELD_VALUE doesn't fiddle with f_lasti any more. So this does work. Promise. YIELD_FROM sets f_lasti to itself, in order to repeated yield multiple values. When the PREDICT() macros are enabled, some opcode pairs follow in direct succession without updating f->f_lasti. A successful prediction effectively links the two codes together as if they were a single new opcode; accordingly,f->f_lasti will point to the first code in the pair (for instance, GET_ITER followed by FOR_ITER is effectively a single opcode and f->f_lasti will point at to the beginning of the combined pair.) */ next_instr = first_instr + f->f_lasti + 1; stack_pointer = f->f_stacktop; assert(stack_pointer != NULL); f->f_stacktop = NULL; /* remains NULL unless yield suspends frame */ f->f_executing = 1; if (co->co_flags & CO_GENERATOR && !throwflag) { if (f->f_exc_type != NULL && f->f_exc_type != Py_None) { /* We were in an except handler when we left, restore the exception state which was put aside (see YIELD_VALUE). */ swap_exc_state(tstate, f); } else save_exc_state(tstate, f); } #ifdef LLTRACE lltrace = _PyDict_GetItemId(f->f_globals, &PyId___ltrace__) != NULL; #endif why = WHY_NOT; if (throwflag) /* support for generator.throw() */ goto error; #ifdef Py_DEBUG /* PyEval_EvalFrameEx() must not be called with an exception set, because it may clear it (directly or indirectly) and so the caller looses its exception */ assert(!PyErr_Occurred()); #endif for (;;) { #ifdef WITH_TSC if (inst1 == 0) { /* Almost surely, the opcode executed a break or a continue, preventing inst1 from being set on the way out of the loop. */ READ_TIMESTAMP(inst1); loop1 = inst1; } dump_tsc(opcode, ticked, inst0, inst1, loop0, loop1, intr0, intr1); ticked = 0; inst1 = 0; intr0 = 0; intr1 = 0; READ_TIMESTAMP(loop0); #endif assert(stack_pointer >= f->f_valuestack); /* else underflow */ assert(STACK_LEVEL() <= co->co_stacksize); /* else overflow */ assert(!PyErr_Occurred()); /* Do periodic things. Doing this every time through the loop would add too much overhead, so we do it only every Nth instruction. We also do it if ``pendingcalls_to_do'' is set, i.e. when an asynchronous event needs attention (e.g. a signal handler or async I/O handler); see Py_AddPendingCall() and Py_MakePendingCalls() above. */ if (_Py_atomic_load_relaxed(&eval_breaker)) { if (*next_instr == SETUP_FINALLY) { /* Make the last opcode before a try: finally: block uninterruptible. */ goto fast_next_opcode; } #ifdef WITH_TSC ticked = 1; #endif if (_Py_atomic_load_relaxed(&pendingcalls_to_do)) { if (Py_MakePendingCalls() < 0) goto error; } #ifdef WITH_THREAD if (_Py_atomic_load_relaxed(&gil_drop_request)) { /* Give another thread a chance */ if (PyThreadState_Swap(NULL) != tstate) Py_FatalError("ceval: tstate mix-up"); drop_gil(tstate); /* Other threads may run now */ take_gil(tstate); /* Check if we should make a quick exit. */ if (_Py_Finalizing && _Py_Finalizing != tstate) { drop_gil(tstate); PyThread_exit_thread(); } if (PyThreadState_Swap(tstate) != NULL) Py_FatalError("ceval: orphan tstate"); } #endif /* Check for asynchronous exceptions. */ if (tstate->async_exc != NULL) { PyObject *exc = tstate->async_exc; tstate->async_exc = NULL; UNSIGNAL_ASYNC_EXC(); PyErr_SetNone(exc); Py_DECREF(exc); goto error; } } fast_next_opcode: f->f_lasti = INSTR_OFFSET(); /* line-by-line tracing support */ if (_Py_TracingPossible && tstate->c_tracefunc != NULL && !tstate->tracing) { int err; /* see maybe_call_line_trace for expository comments */ f->f_stacktop = stack_pointer; err = maybe_call_line_trace(tstate->c_tracefunc, tstate->c_traceobj, tstate, f, &instr_lb, &instr_ub, &instr_prev); /* Reload possibly changed frame fields */ JUMPTO(f->f_lasti); if (f->f_stacktop != NULL) { stack_pointer = f->f_stacktop; f->f_stacktop = NULL; } if (err) /* trace function raised an exception */ goto error; } /* Extract opcode and argument */ opcode = NEXTOP(); oparg = 0; /* allows oparg to be stored in a register because it doesn't have to be remembered across a full loop */ if (HAS_ARG(opcode)) oparg = NEXTARG(); dispatch_opcode: #ifdef DYNAMIC_EXECUTION_PROFILE #ifdef DXPAIRS dxpairs[lastopcode][opcode]++; lastopcode = opcode; #endif dxp[opcode]++; #endif #ifdef LLTRACE /* Instruction tracing */ if (lltrace) { if (HAS_ARG(opcode)) { printf("%d: %d, %d\n", f->f_lasti, opcode, oparg); } else { printf("%d: %d\n", f->f_lasti, opcode); } } #endif /* Main switch on opcode */ READ_TIMESTAMP(inst0); switch (opcode) { /* BEWARE! It is essential that any operation that fails sets either x to NULL, err to nonzero, or why to anything but WHY_NOT, and that no operation that succeeds does this! */ TARGET(NOP) FAST_DISPATCH(); TARGET(LOAD_FAST) { PyObject *value = GETLOCAL(oparg); if (value == NULL) { format_exc_check_arg(PyExc_UnboundLocalError, UNBOUNDLOCAL_ERROR_MSG, PyTuple_GetItem(co->co_varnames, oparg)); goto error; } Py_INCREF(value); PUSH(value); FAST_DISPATCH(); } TARGET(LOAD_CONST) { PyObject *value = GETITEM(consts, oparg); Py_INCREF(value); PUSH(value); FAST_DISPATCH(); } PREDICTED_WITH_ARG(STORE_FAST); TARGET(STORE_FAST) { PyObject *value = POP(); SETLOCAL(oparg, value); FAST_DISPATCH(); } TARGET(POP_TOP) { PyObject *value = POP(); Py_DECREF(value); FAST_DISPATCH(); } TARGET(ROT_TWO) { PyObject *top = TOP(); PyObject *second = SECOND(); SET_TOP(second); SET_SECOND(top); FAST_DISPATCH(); } TARGET(ROT_THREE) { PyObject *top = TOP(); PyObject *second = SECOND(); PyObject *third = THIRD(); SET_TOP(second); SET_SECOND(third); SET_THIRD(top); FAST_DISPATCH(); } TARGET(DUP_TOP) { PyObject *top = TOP(); Py_INCREF(top); PUSH(top); FAST_DISPATCH(); } TARGET(DUP_TOP_TWO) { PyObject *top = TOP(); PyObject *second = SECOND(); Py_INCREF(top); Py_INCREF(second); STACKADJ(2); SET_TOP(top); SET_SECOND(second); FAST_DISPATCH(); } TARGET(UNARY_POSITIVE) { PyObject *value = TOP(); PyObject *res = PyNumber_Positive(value); Py_DECREF(value); SET_TOP(res); if (res == NULL) goto error; DISPATCH(); } TARGET(UNARY_NEGATIVE) { PyObject *value = TOP(); PyObject *res = PyNumber_Negative(value); Py_DECREF(value); SET_TOP(res); if (res == NULL) goto error; DISPATCH(); } TARGET(UNARY_NOT) { PyObject *value = TOP(); int err = PyObject_IsTrue(value); Py_DECREF(value); if (err == 0) { Py_INCREF(Py_True); SET_TOP(Py_True); DISPATCH(); } else if (err > 0) { Py_INCREF(Py_False); SET_TOP(Py_False); err = 0; DISPATCH(); } STACKADJ(-1); goto error; } TARGET(UNARY_INVERT) { PyObject *value = TOP(); PyObject *res = PyNumber_Invert(value); Py_DECREF(value); SET_TOP(res); if (res == NULL) goto error; DISPATCH(); } TARGET(BINARY_POWER) { PyObject *exp = POP(); PyObject *base = TOP(); PyObject *res = PyNumber_Power(base, exp, Py_None); Py_DECREF(base); Py_DECREF(exp); SET_TOP(res); if (res == NULL) goto error; DISPATCH(); } TARGET(BINARY_MULTIPLY) { PyObject *right = POP(); PyObject *left = TOP(); PyObject *res = PyNumber_Multiply(left, right); Py_DECREF(left); Py_DECREF(right); SET_TOP(res); if (res == NULL) goto error; DISPATCH(); } TARGET(BINARY_MATRIX_MULTIPLY) { PyObject *right = POP(); PyObject *left = TOP(); PyObject *res = PyNumber_MatrixMultiply(left, right); Py_DECREF(left); Py_DECREF(right); SET_TOP(res); if (res == NULL) goto error; DISPATCH(); } TARGET(BINARY_TRUE_DIVIDE) { PyObject *divisor = POP(); PyObject *dividend = TOP(); PyObject *quotient = PyNumber_TrueDivide(dividend, divisor); Py_DECREF(dividend); Py_DECREF(divisor); SET_TOP(quotient); if (quotient == NULL) goto error; DISPATCH(); } TARGET(BINARY_FLOOR_DIVIDE) { PyObject *divisor = POP(); PyObject *dividend = TOP(); PyObject *quotient = PyNumber_FloorDivide(dividend, divisor); Py_DECREF(dividend); Py_DECREF(divisor); SET_TOP(quotient); if (quotient == NULL) goto error; DISPATCH(); } TARGET(BINARY_MODULO) { PyObject *divisor = POP(); PyObject *dividend = TOP(); PyObject *res = PyUnicode_CheckExact(dividend) ? PyUnicode_Format(dividend, divisor) : PyNumber_Remainder(dividend, divisor); Py_DECREF(divisor); Py_DECREF(dividend); SET_TOP(res); if (res == NULL) goto error; DISPATCH(); } TARGET(BINARY_ADD) { PyObject *right = POP(); PyObject *left = TOP(); PyObject *sum; if (PyUnicode_CheckExact(left) && PyUnicode_CheckExact(right)) { sum = unicode_concatenate(left, right, f, next_instr); /* unicode_concatenate consumed the ref to v */ } else { sum = PyNumber_Add(left, right); Py_DECREF(left); } Py_DECREF(right); SET_TOP(sum); if (sum == NULL) goto error; DISPATCH(); } TARGET(BINARY_SUBTRACT) { PyObject *right = POP(); PyObject *left = TOP(); PyObject *diff = PyNumber_Subtract(left, right); Py_DECREF(right); Py_DECREF(left); SET_TOP(diff); if (diff == NULL) goto error; DISPATCH(); } TARGET(BINARY_SUBSCR) { PyObject *sub = POP(); PyObject *container = TOP(); PyObject *res = PyObject_GetItem(container, sub); Py_DECREF(container); Py_DECREF(sub); SET_TOP(res); if (res == NULL) goto error; DISPATCH(); } TARGET(BINARY_LSHIFT) { PyObject *right = POP(); PyObject *left = TOP(); PyObject *res = PyNumber_Lshift(left, right); Py_DECREF(left); Py_DECREF(right); SET_TOP(res); if (res == NULL) goto error; DISPATCH(); } TARGET(BINARY_RSHIFT) { PyObject *right = POP(); PyObject *left = TOP(); PyObject *res = PyNumber_Rshift(left, right); Py_DECREF(left); Py_DECREF(right); SET_TOP(res); if (res == NULL) goto error; DISPATCH(); } TARGET(BINARY_AND) { PyObject *right = POP(); PyObject *left = TOP(); PyObject *res = PyNumber_And(left, right); Py_DECREF(left); Py_DECREF(right); SET_TOP(res); if (res == NULL) goto error; DISPATCH(); } TARGET(BINARY_XOR) { PyObject *right = POP(); PyObject *left = TOP(); PyObject *res = PyNumber_Xor(left, right); Py_DECREF(left); Py_DECREF(right); SET_TOP(res); if (res == NULL) goto error; DISPATCH(); } TARGET(BINARY_OR) { PyObject *right = POP(); PyObject *left = TOP(); PyObject *res = PyNumber_Or(left, right); Py_DECREF(left); Py_DECREF(right); SET_TOP(res); if (res == NULL) goto error; DISPATCH(); } TARGET(LIST_APPEND) { PyObject *v = POP(); PyObject *list = PEEK(oparg); int err; err = PyList_Append(list, v); Py_DECREF(v); if (err != 0) goto error; PREDICT(JUMP_ABSOLUTE); DISPATCH(); } TARGET(SET_ADD) { PyObject *v = POP(); PyObject *set = stack_pointer[-oparg]; int err; err = PySet_Add(set, v); Py_DECREF(v); if (err != 0) goto error; PREDICT(JUMP_ABSOLUTE); DISPATCH(); } TARGET(INPLACE_POWER) { PyObject *exp = POP(); PyObject *base = TOP(); PyObject *res = PyNumber_InPlacePower(base, exp, Py_None); Py_DECREF(base); Py_DECREF(exp); SET_TOP(res); if (res == NULL) goto error; DISPATCH(); } TARGET(INPLACE_MULTIPLY) { PyObject *right = POP(); PyObject *left = TOP(); PyObject *res = PyNumber_InPlaceMultiply(left, right); Py_DECREF(left); Py_DECREF(right); SET_TOP(res); if (res == NULL) goto error; DISPATCH(); } TARGET(INPLACE_MATRIX_MULTIPLY) { PyObject *right = POP(); PyObject *left = TOP(); PyObject *res = PyNumber_InPlaceMatrixMultiply(left, right); Py_DECREF(left); Py_DECREF(right); SET_TOP(res); if (res == NULL) goto error; DISPATCH(); } TARGET(INPLACE_TRUE_DIVIDE) { PyObject *divisor = POP(); PyObject *dividend = TOP(); PyObject *quotient = PyNumber_InPlaceTrueDivide(dividend, divisor); Py_DECREF(dividend); Py_DECREF(divisor); SET_TOP(quotient); if (quotient == NULL) goto error; DISPATCH(); } TARGET(INPLACE_FLOOR_DIVIDE) { PyObject *divisor = POP(); PyObject *dividend = TOP(); PyObject *quotient = PyNumber_InPlaceFloorDivide(dividend, divisor); Py_DECREF(dividend); Py_DECREF(divisor); SET_TOP(quotient); if (quotient == NULL) goto error; DISPATCH(); } TARGET(INPLACE_MODULO) { PyObject *right = POP(); PyObject *left = TOP(); PyObject *mod = PyNumber_InPlaceRemainder(left, right); Py_DECREF(left); Py_DECREF(right); SET_TOP(mod); if (mod == NULL) goto error; DISPATCH(); } TARGET(INPLACE_ADD) { PyObject *right = POP(); PyObject *left = TOP(); PyObject *sum; if (PyUnicode_CheckExact(left) && PyUnicode_CheckExact(right)) { sum = unicode_concatenate(left, right, f, next_instr); /* unicode_concatenate consumed the ref to v */ } else { sum = PyNumber_InPlaceAdd(left, right); Py_DECREF(left); } Py_DECREF(right); SET_TOP(sum); if (sum == NULL) goto error; DISPATCH(); } TARGET(INPLACE_SUBTRACT) { PyObject *right = POP(); PyObject *left = TOP(); PyObject *diff = PyNumber_InPlaceSubtract(left, right); Py_DECREF(left); Py_DECREF(right); SET_TOP(diff); if (diff == NULL) goto error; DISPATCH(); } TARGET(INPLACE_LSHIFT) { PyObject *right = POP(); PyObject *left = TOP(); PyObject *res = PyNumber_InPlaceLshift(left, right); Py_DECREF(left); Py_DECREF(right); SET_TOP(res); if (res == NULL) goto error; DISPATCH(); } TARGET(INPLACE_RSHIFT) { PyObject *right = POP(); PyObject *left = TOP(); PyObject *res = PyNumber_InPlaceRshift(left, right); Py_DECREF(left); Py_DECREF(right); SET_TOP(res); if (res == NULL) goto error; DISPATCH(); } TARGET(INPLACE_AND) { PyObject *right = POP(); PyObject *left = TOP(); PyObject *res = PyNumber_InPlaceAnd(left, right); Py_DECREF(left); Py_DECREF(right); SET_TOP(res); if (res == NULL) goto error; DISPATCH(); } TARGET(INPLACE_XOR) { PyObject *right = POP(); PyObject *left = TOP(); PyObject *res = PyNumber_InPlaceXor(left, right); Py_DECREF(left); Py_DECREF(right); SET_TOP(res); if (res == NULL) goto error; DISPATCH(); } TARGET(INPLACE_OR) { PyObject *right = POP(); PyObject *left = TOP(); PyObject *res = PyNumber_InPlaceOr(left, right); Py_DECREF(left); Py_DECREF(right); SET_TOP(res); if (res == NULL) goto error; DISPATCH(); } TARGET(STORE_SUBSCR) { PyObject *sub = TOP(); PyObject *container = SECOND(); PyObject *v = THIRD(); int err; STACKADJ(-3); /* v[w] = u */ err = PyObject_SetItem(container, sub, v); Py_DECREF(v); Py_DECREF(container); Py_DECREF(sub); if (err != 0) goto error; DISPATCH(); } TARGET(DELETE_SUBSCR) { PyObject *sub = TOP(); PyObject *container = SECOND(); int err; STACKADJ(-2); /* del v[w] */ err = PyObject_DelItem(container, sub); Py_DECREF(container); Py_DECREF(sub); if (err != 0) goto error; DISPATCH(); } TARGET(PRINT_EXPR) { _Py_IDENTIFIER(displayhook); PyObject *value = POP(); PyObject *hook = _PySys_GetObjectId(&PyId_displayhook); PyObject *res; if (hook == NULL) { PyErr_SetString(PyExc_RuntimeError, "lost sys.displayhook"); Py_DECREF(value); goto error; } res = PyObject_CallFunctionObjArgs(hook, value, NULL); Py_DECREF(value); if (res == NULL) goto error; Py_DECREF(res); DISPATCH(); } #ifdef CASE_TOO_BIG default: switch (opcode) { #endif TARGET(RAISE_VARARGS) { PyObject *cause = NULL, *exc = NULL; switch (oparg) { case 2: cause = POP(); /* cause */ case 1: exc = POP(); /* exc */ case 0: /* Fallthrough */ if (do_raise(exc, cause)) { why = WHY_EXCEPTION; goto fast_block_end; } break; default: PyErr_SetString(PyExc_SystemError, "bad RAISE_VARARGS oparg"); break; } goto error; } TARGET(RETURN_VALUE) { retval = POP(); why = WHY_RETURN; goto fast_block_end; } TARGET(YIELD_FROM) { PyObject *v = POP(); PyObject *reciever = TOP(); int err; if (PyGen_CheckExact(reciever)) { retval = _PyGen_Send((PyGenObject *)reciever, v); } else { _Py_IDENTIFIER(send); if (v == Py_None) retval = Py_TYPE(reciever)->tp_iternext(reciever); else retval = _PyObject_CallMethodIdObjArgs(reciever, &PyId_send, v, NULL); } Py_DECREF(v); if (retval == NULL) { PyObject *val; if (tstate->c_tracefunc != NULL && PyErr_ExceptionMatches(PyExc_StopIteration)) call_exc_trace(tstate->c_tracefunc, tstate->c_traceobj, tstate, f); err = _PyGen_FetchStopIterationValue(&val); if (err < 0) goto error; Py_DECREF(reciever); SET_TOP(val); DISPATCH(); } /* x remains on stack, retval is value to be yielded */ f->f_stacktop = stack_pointer; why = WHY_YIELD; /* and repeat... */ f->f_lasti--; goto fast_yield; } TARGET(YIELD_VALUE) { retval = POP(); f->f_stacktop = stack_pointer; why = WHY_YIELD; goto fast_yield; } TARGET(POP_EXCEPT) { PyTryBlock *b = PyFrame_BlockPop(f); if (b->b_type != EXCEPT_HANDLER) { PyErr_SetString(PyExc_SystemError, "popped block is not an except handler"); goto error; } UNWIND_EXCEPT_HANDLER(b); DISPATCH(); } TARGET(POP_BLOCK) { PyTryBlock *b = PyFrame_BlockPop(f); UNWIND_BLOCK(b); DISPATCH(); } PREDICTED(END_FINALLY); TARGET(END_FINALLY) { PyObject *status = POP(); if (PyLong_Check(status)) { why = (enum why_code) PyLong_AS_LONG(status); assert(why != WHY_YIELD && why != WHY_EXCEPTION); if (why == WHY_RETURN || why == WHY_CONTINUE) retval = POP(); if (why == WHY_SILENCED) { /* An exception was silenced by 'with', we must manually unwind the EXCEPT_HANDLER block which was created when the exception was caught, otherwise the stack will be in an inconsistent state. */ PyTryBlock *b = PyFrame_BlockPop(f); assert(b->b_type == EXCEPT_HANDLER); UNWIND_EXCEPT_HANDLER(b); why = WHY_NOT; Py_DECREF(status); DISPATCH(); } Py_DECREF(status); goto fast_block_end; } else if (PyExceptionClass_Check(status)) { PyObject *exc = POP(); PyObject *tb = POP(); PyErr_Restore(status, exc, tb); why = WHY_EXCEPTION; goto fast_block_end; } else if (status != Py_None) { PyErr_SetString(PyExc_SystemError, "'finally' pops bad exception"); Py_DECREF(status); goto error; } Py_DECREF(status); DISPATCH(); } TARGET(LOAD_BUILD_CLASS) { _Py_IDENTIFIER(__build_class__); PyObject *bc; if (PyDict_CheckExact(f->f_builtins)) { bc = _PyDict_GetItemId(f->f_builtins, &PyId___build_class__); if (bc == NULL) { PyErr_SetString(PyExc_NameError, "__build_class__ not found"); goto error; } Py_INCREF(bc); } else { PyObject *build_class_str = _PyUnicode_FromId(&PyId___build_class__); if (build_class_str == NULL) break; bc = PyObject_GetItem(f->f_builtins, build_class_str); if (bc == NULL) { if (PyErr_ExceptionMatches(PyExc_KeyError)) PyErr_SetString(PyExc_NameError, "__build_class__ not found"); goto error; } } PUSH(bc); DISPATCH(); } TARGET(STORE_NAME) { PyObject *name = GETITEM(names, oparg); PyObject *v = POP(); PyObject *ns = f->f_locals; int err; if (ns == NULL) { PyErr_Format(PyExc_SystemError, "no locals found when storing %R", name); Py_DECREF(v); goto error; } if (PyDict_CheckExact(ns)) err = PyDict_SetItem(ns, name, v); else err = PyObject_SetItem(ns, name, v); Py_DECREF(v); if (err != 0) goto error; DISPATCH(); } TARGET(DELETE_NAME) { PyObject *name = GETITEM(names, oparg); PyObject *ns = f->f_locals; int err; if (ns == NULL) { PyErr_Format(PyExc_SystemError, "no locals when deleting %R", name); goto error; } err = PyObject_DelItem(ns, name); if (err != 0) { format_exc_check_arg(PyExc_NameError, NAME_ERROR_MSG, name); goto error; } DISPATCH(); } PREDICTED_WITH_ARG(UNPACK_SEQUENCE); TARGET(UNPACK_SEQUENCE) { PyObject *seq = POP(), *item, **items; if (PyTuple_CheckExact(seq) && PyTuple_GET_SIZE(seq) == oparg) { items = ((PyTupleObject *)seq)->ob_item; while (oparg--) { item = items[oparg]; Py_INCREF(item); PUSH(item); } } else if (PyList_CheckExact(seq) && PyList_GET_SIZE(seq) == oparg) { items = ((PyListObject *)seq)->ob_item; while (oparg--) { item = items[oparg]; Py_INCREF(item); PUSH(item); } } else if (unpack_iterable(seq, oparg, -1, stack_pointer + oparg)) { STACKADJ(oparg); } else { /* unpack_iterable() raised an exception */ Py_DECREF(seq); goto error; } Py_DECREF(seq); DISPATCH(); } TARGET(UNPACK_EX) { int totalargs = 1 + (oparg & 0xFF) + (oparg >> 8); PyObject *seq = POP(); if (unpack_iterable(seq, oparg & 0xFF, oparg >> 8, stack_pointer + totalargs)) { stack_pointer += totalargs; } else { Py_DECREF(seq); goto error; } Py_DECREF(seq); DISPATCH(); } TARGET(STORE_ATTR) { PyObject *name = GETITEM(names, oparg); PyObject *owner = TOP(); PyObject *v = SECOND(); int err; STACKADJ(-2); err = PyObject_SetAttr(owner, name, v); Py_DECREF(v); Py_DECREF(owner); if (err != 0) goto error; DISPATCH(); } TARGET(DELETE_ATTR) { PyObject *name = GETITEM(names, oparg); PyObject *owner = POP(); int err; err = PyObject_SetAttr(owner, name, (PyObject *)NULL); Py_DECREF(owner); if (err != 0) goto error; DISPATCH(); } TARGET(STORE_GLOBAL) { PyObject *name = GETITEM(names, oparg); PyObject *v = POP(); int err; err = PyDict_SetItem(f->f_globals, name, v); Py_DECREF(v); if (err != 0) goto error; DISPATCH(); } TARGET(DELETE_GLOBAL) { PyObject *name = GETITEM(names, oparg); int err; err = PyDict_DelItem(f->f_globals, name); if (err != 0) { format_exc_check_arg( PyExc_NameError, NAME_ERROR_MSG, name); goto error; } DISPATCH(); } TARGET(LOAD_NAME) { PyObject *name = GETITEM(names, oparg); PyObject *locals = f->f_locals; PyObject *v; if (locals == NULL) { PyErr_Format(PyExc_SystemError, "no locals when loading %R", name); goto error; } if (PyDict_CheckExact(locals)) { v = PyDict_GetItem(locals, name); Py_XINCREF(v); } else { v = PyObject_GetItem(locals, name); if (v == NULL && _PyErr_OCCURRED()) { if (!PyErr_ExceptionMatches(PyExc_KeyError)) goto error; PyErr_Clear(); } } if (v == NULL) { v = PyDict_GetItem(f->f_globals, name); Py_XINCREF(v); if (v == NULL) { if (PyDict_CheckExact(f->f_builtins)) { v = PyDict_GetItem(f->f_builtins, name); if (v == NULL) { format_exc_check_arg( PyExc_NameError, NAME_ERROR_MSG, name); goto error; } Py_INCREF(v); } else { v = PyObject_GetItem(f->f_builtins, name); if (v == NULL) { if (PyErr_ExceptionMatches(PyExc_KeyError)) format_exc_check_arg( PyExc_NameError, NAME_ERROR_MSG, name); goto error; } } } } PUSH(v); DISPATCH(); } TARGET(LOAD_GLOBAL) { PyObject *name = GETITEM(names, oparg); PyObject *v; if (PyDict_CheckExact(f->f_globals) && PyDict_CheckExact(f->f_builtins)) { v = _PyDict_LoadGlobal((PyDictObject *)f->f_globals, (PyDictObject *)f->f_builtins, name); if (v == NULL) { if (!_PyErr_OCCURRED()) format_exc_check_arg(PyExc_NameError, NAME_ERROR_MSG, name); goto error; } Py_INCREF(v); } else { /* Slow-path if globals or builtins is not a dict */ v = PyObject_GetItem(f->f_globals, name); if (v == NULL) { v = PyObject_GetItem(f->f_builtins, name); if (v == NULL) { if (PyErr_ExceptionMatches(PyExc_KeyError)) format_exc_check_arg( PyExc_NameError, NAME_ERROR_MSG, name); goto error; } } } PUSH(v); DISPATCH(); } TARGET(DELETE_FAST) { PyObject *v = GETLOCAL(oparg); if (v != NULL) { SETLOCAL(oparg, NULL); DISPATCH(); } format_exc_check_arg( PyExc_UnboundLocalError, UNBOUNDLOCAL_ERROR_MSG, PyTuple_GetItem(co->co_varnames, oparg) ); goto error; } TARGET(DELETE_DEREF) { PyObject *cell = freevars[oparg]; if (PyCell_GET(cell) != NULL) { PyCell_Set(cell, NULL); DISPATCH(); } format_exc_unbound(co, oparg); goto error; } TARGET(LOAD_CLOSURE) { PyObject *cell = freevars[oparg]; Py_INCREF(cell); PUSH(cell); DISPATCH(); } TARGET(LOAD_CLASSDEREF) { PyObject *name, *value, *locals = f->f_locals; Py_ssize_t idx; assert(locals); assert(oparg >= PyTuple_GET_SIZE(co->co_cellvars)); idx = oparg - PyTuple_GET_SIZE(co->co_cellvars); assert(idx >= 0 && idx < PyTuple_GET_SIZE(co->co_freevars)); name = PyTuple_GET_ITEM(co->co_freevars, idx); if (PyDict_CheckExact(locals)) { value = PyDict_GetItem(locals, name); Py_XINCREF(value); } else { value = PyObject_GetItem(locals, name); if (value == NULL && PyErr_Occurred()) { if (!PyErr_ExceptionMatches(PyExc_KeyError)) goto error; PyErr_Clear(); } } if (!value) { PyObject *cell = freevars[oparg]; value = PyCell_GET(cell); if (value == NULL) { format_exc_unbound(co, oparg); goto error; } Py_INCREF(value); } PUSH(value); DISPATCH(); } TARGET(LOAD_DEREF) { PyObject *cell = freevars[oparg]; PyObject *value = PyCell_GET(cell); if (value == NULL) { format_exc_unbound(co, oparg); goto error; } Py_INCREF(value); PUSH(value); DISPATCH(); } TARGET(STORE_DEREF) { PyObject *v = POP(); PyObject *cell = freevars[oparg]; PyCell_Set(cell, v); Py_DECREF(v); DISPATCH(); } TARGET(BUILD_TUPLE) { PyObject *tup = PyTuple_New(oparg); if (tup == NULL) goto error; while (--oparg >= 0) { PyObject *item = POP(); PyTuple_SET_ITEM(tup, oparg, item); } PUSH(tup); DISPATCH(); } TARGET(BUILD_LIST) { PyObject *list = PyList_New(oparg); if (list == NULL) goto error; while (--oparg >= 0) { PyObject *item = POP(); PyList_SET_ITEM(list, oparg, item); } PUSH(list); DISPATCH(); } TARGET(BUILD_SET) { PyObject *set = PySet_New(NULL); int err = 0; if (set == NULL) goto error; while (--oparg >= 0) { PyObject *item = POP(); if (err == 0) err = PySet_Add(set, item); Py_DECREF(item); } if (err != 0) { Py_DECREF(set); goto error; } PUSH(set); DISPATCH(); } TARGET(BUILD_MAP) { PyObject *map = _PyDict_NewPresized((Py_ssize_t)oparg); if (map == NULL) goto error; PUSH(map); DISPATCH(); } TARGET(STORE_MAP) { PyObject *key = TOP(); PyObject *value = SECOND(); PyObject *map = THIRD(); int err; STACKADJ(-2); assert(PyDict_CheckExact(map)); err = PyDict_SetItem(map, key, value); Py_DECREF(value); Py_DECREF(key); if (err != 0) goto error; DISPATCH(); } TARGET(MAP_ADD) { PyObject *key = TOP(); PyObject *value = SECOND(); PyObject *map; int err; STACKADJ(-2); map = stack_pointer[-oparg]; /* dict */ assert(PyDict_CheckExact(map)); err = PyDict_SetItem(map, key, value); /* v[w] = u */ Py_DECREF(value); Py_DECREF(key); if (err != 0) goto error; PREDICT(JUMP_ABSOLUTE); DISPATCH(); } TARGET(LOAD_ATTR) { PyObject *name = GETITEM(names, oparg); PyObject *owner = TOP(); PyObject *res = PyObject_GetAttr(owner, name); Py_DECREF(owner); SET_TOP(res); if (res == NULL) goto error; DISPATCH(); } TARGET(COMPARE_OP) { PyObject *right = POP(); PyObject *left = TOP(); PyObject *res = cmp_outcome(oparg, left, right); Py_DECREF(left); Py_DECREF(right); SET_TOP(res); if (res == NULL) goto error; PREDICT(POP_JUMP_IF_FALSE); PREDICT(POP_JUMP_IF_TRUE); DISPATCH(); } TARGET(IMPORT_NAME) { _Py_IDENTIFIER(__import__); PyObject *name = GETITEM(names, oparg); PyObject *func = _PyDict_GetItemId(f->f_builtins, &PyId___import__); PyObject *from, *level, *args, *res; if (func == NULL) { PyErr_SetString(PyExc_ImportError, "__import__ not found"); goto error; } Py_INCREF(func); from = POP(); level = TOP(); if (PyLong_AsLong(level) != -1 || PyErr_Occurred()) args = PyTuple_Pack(5, name, f->f_globals, f->f_locals == NULL ? Py_None : f->f_locals, from, level); else args = PyTuple_Pack(4, name, f->f_globals, f->f_locals == NULL ? Py_None : f->f_locals, from); Py_DECREF(level); Py_DECREF(from); if (args == NULL) { Py_DECREF(func); STACKADJ(-1); goto error; } READ_TIMESTAMP(intr0); res = PyEval_CallObject(func, args); READ_TIMESTAMP(intr1); Py_DECREF(args); Py_DECREF(func); SET_TOP(res); if (res == NULL) goto error; DISPATCH(); } TARGET(IMPORT_STAR) { PyObject *from = POP(), *locals; int err; if (PyFrame_FastToLocalsWithError(f) < 0) goto error; locals = f->f_locals; if (locals == NULL) { PyErr_SetString(PyExc_SystemError, "no locals found during 'import *'"); goto error; } READ_TIMESTAMP(intr0); err = import_all_from(locals, from); READ_TIMESTAMP(intr1); PyFrame_LocalsToFast(f, 0); Py_DECREF(from); if (err != 0) goto error; DISPATCH(); } TARGET(IMPORT_FROM) { PyObject *name = GETITEM(names, oparg); PyObject *from = TOP(); PyObject *res; READ_TIMESTAMP(intr0); res = import_from(from, name); READ_TIMESTAMP(intr1); PUSH(res); if (res == NULL) goto error; DISPATCH(); } TARGET(JUMP_FORWARD) { JUMPBY(oparg); FAST_DISPATCH(); } PREDICTED_WITH_ARG(POP_JUMP_IF_FALSE); TARGET(POP_JUMP_IF_FALSE) { PyObject *cond = POP(); int err; if (cond == Py_True) { Py_DECREF(cond); FAST_DISPATCH(); } if (cond == Py_False) { Py_DECREF(cond); JUMPTO(oparg); FAST_DISPATCH(); } err = PyObject_IsTrue(cond); Py_DECREF(cond); if (err > 0) err = 0; else if (err == 0) JUMPTO(oparg); else goto error; DISPATCH(); } PREDICTED_WITH_ARG(POP_JUMP_IF_TRUE); TARGET(POP_JUMP_IF_TRUE) { PyObject *cond = POP(); int err; if (cond == Py_False) { Py_DECREF(cond); FAST_DISPATCH(); } if (cond == Py_True) { Py_DECREF(cond); JUMPTO(oparg); FAST_DISPATCH(); } err = PyObject_IsTrue(cond); Py_DECREF(cond); if (err > 0) { err = 0; JUMPTO(oparg); } else if (err == 0) ; else goto error; DISPATCH(); } TARGET(JUMP_IF_FALSE_OR_POP) { PyObject *cond = TOP(); int err; if (cond == Py_True) { STACKADJ(-1); Py_DECREF(cond); FAST_DISPATCH(); } if (cond == Py_False) { JUMPTO(oparg); FAST_DISPATCH(); } err = PyObject_IsTrue(cond); if (err > 0) { STACKADJ(-1); Py_DECREF(cond); err = 0; } else if (err == 0) JUMPTO(oparg); else goto error; DISPATCH(); } TARGET(JUMP_IF_TRUE_OR_POP) { PyObject *cond = TOP(); int err; if (cond == Py_False) { STACKADJ(-1); Py_DECREF(cond); FAST_DISPATCH(); } if (cond == Py_True) { JUMPTO(oparg); FAST_DISPATCH(); } err = PyObject_IsTrue(cond); if (err > 0) { err = 0; JUMPTO(oparg); } else if (err == 0) { STACKADJ(-1); Py_DECREF(cond); } else goto error; DISPATCH(); } PREDICTED_WITH_ARG(JUMP_ABSOLUTE); TARGET(JUMP_ABSOLUTE) { JUMPTO(oparg); #if FAST_LOOPS /* Enabling this path speeds-up all while and for-loops by bypassing the per-loop checks for signals. By default, this should be turned-off because it prevents detection of a control-break in tight loops like "while 1: pass". Compile with this option turned-on when you need the speed-up and do not need break checking inside tight loops (ones that contain only instructions ending with FAST_DISPATCH). */ FAST_DISPATCH(); #else DISPATCH(); #endif } TARGET(GET_ITER) { /* before: [obj]; after [getiter(obj)] */ PyObject *iterable = TOP(); PyObject *iter = PyObject_GetIter(iterable); Py_DECREF(iterable); SET_TOP(iter); if (iter == NULL) goto error; PREDICT(FOR_ITER); DISPATCH(); } PREDICTED_WITH_ARG(FOR_ITER); TARGET(FOR_ITER) { /* before: [iter]; after: [iter, iter()] *or* [] */ PyObject *iter = TOP(); PyObject *next = (*iter->ob_type->tp_iternext)(iter); if (next != NULL) { PUSH(next); PREDICT(STORE_FAST); PREDICT(UNPACK_SEQUENCE); DISPATCH(); } if (PyErr_Occurred()) { if (!PyErr_ExceptionMatches(PyExc_StopIteration)) goto error; else if (tstate->c_tracefunc != NULL) call_exc_trace(tstate->c_tracefunc, tstate->c_traceobj, tstate, f); PyErr_Clear(); } /* iterator ended normally */ STACKADJ(-1); Py_DECREF(iter); JUMPBY(oparg); DISPATCH(); } TARGET(BREAK_LOOP) { why = WHY_BREAK; goto fast_block_end; } TARGET(CONTINUE_LOOP) { retval = PyLong_FromLong(oparg); if (retval == NULL) goto error; why = WHY_CONTINUE; goto fast_block_end; } TARGET_WITH_IMPL(SETUP_LOOP, _setup_finally) TARGET_WITH_IMPL(SETUP_EXCEPT, _setup_finally) TARGET(SETUP_FINALLY) _setup_finally: { /* NOTE: If you add any new block-setup opcodes that are not try/except/finally handlers, you may need to update the PyGen_NeedsFinalizing() function. */ PyFrame_BlockSetup(f, opcode, INSTR_OFFSET() + oparg, STACK_LEVEL()); DISPATCH(); } TARGET(SETUP_WITH) { _Py_IDENTIFIER(__exit__); _Py_IDENTIFIER(__enter__); PyObject *mgr = TOP(); PyObject *exit = special_lookup(mgr, &PyId___exit__), *enter; PyObject *res; if (exit == NULL) goto error; SET_TOP(exit); enter = special_lookup(mgr, &PyId___enter__); Py_DECREF(mgr); if (enter == NULL) goto error; res = PyObject_CallFunctionObjArgs(enter, NULL); Py_DECREF(enter); if (res == NULL) goto error; /* Setup the finally block before pushing the result of __enter__ on the stack. */ PyFrame_BlockSetup(f, SETUP_FINALLY, INSTR_OFFSET() + oparg, STACK_LEVEL()); PUSH(res); DISPATCH(); } TARGET(WITH_CLEANUP) { /* At the top of the stack are 1-6 values indicating how/why we entered the finally clause: - TOP = None - (TOP, SECOND) = (WHY_{RETURN,CONTINUE}), retval - TOP = WHY_*; no retval below it - (TOP, SECOND, THIRD) = exc_info() (FOURTH, FITH, SIXTH) = previous exception for EXCEPT_HANDLER Below them is EXIT, the context.__exit__ bound method. In the last case, we must call EXIT(TOP, SECOND, THIRD) otherwise we must call EXIT(None, None, None) In the first three cases, we remove EXIT from the stack, leaving the rest in the same order. In the fourth case, we shift the bottom 3 values of the stack down, and replace the empty spot with NULL. In addition, if the stack represents an exception, *and* the function call returns a 'true' value, we push WHY_SILENCED onto the stack. END_FINALLY will then not re-raise the exception. (But non-local gotos should still be resumed.) */ PyObject *exit_func; PyObject *exc = TOP(), *val = Py_None, *tb = Py_None, *res; int err; if (exc == Py_None) { (void)POP(); exit_func = TOP(); SET_TOP(exc); } else if (PyLong_Check(exc)) { STACKADJ(-1); switch (PyLong_AsLong(exc)) { case WHY_RETURN: case WHY_CONTINUE: /* Retval in TOP. */ exit_func = SECOND(); SET_SECOND(TOP()); SET_TOP(exc); break; default: exit_func = TOP(); SET_TOP(exc); break; } exc = Py_None; } else { PyObject *tp2, *exc2, *tb2; PyTryBlock *block; val = SECOND(); tb = THIRD(); tp2 = FOURTH(); exc2 = PEEK(5); tb2 = PEEK(6); exit_func = PEEK(7); SET_VALUE(7, tb2); SET_VALUE(6, exc2); SET_VALUE(5, tp2); /* UNWIND_EXCEPT_HANDLER will pop this off. */ SET_FOURTH(NULL); /* We just shifted the stack down, so we have to tell the except handler block that the values are lower than it expects. */ block = &f->f_blockstack[f->f_iblock - 1]; assert(block->b_type == EXCEPT_HANDLER); block->b_level--; } /* XXX Not the fastest way to call it... */ res = PyObject_CallFunctionObjArgs(exit_func, exc, val, tb, NULL); Py_DECREF(exit_func); if (res == NULL) goto error; if (exc != Py_None) err = PyObject_IsTrue(res); else err = 0; Py_DECREF(res); if (err < 0) goto error; else if (err > 0) { err = 0; /* There was an exception and a True return */ PUSH(PyLong_FromLong((long) WHY_SILENCED)); } PREDICT(END_FINALLY); DISPATCH(); } TARGET(CALL_FUNCTION) { PyObject **sp, *res; PCALL(PCALL_ALL); sp = stack_pointer; #ifdef WITH_TSC res = call_function(&sp, oparg, &intr0, &intr1); #else res = call_function(&sp, oparg); #endif stack_pointer = sp; PUSH(res); if (res == NULL) goto error; DISPATCH(); } TARGET_WITH_IMPL(CALL_FUNCTION_VAR, _call_function_var_kw) TARGET_WITH_IMPL(CALL_FUNCTION_KW, _call_function_var_kw) TARGET(CALL_FUNCTION_VAR_KW) _call_function_var_kw: { int na = oparg & 0xff; int nk = (oparg>>8) & 0xff; int flags = (opcode - CALL_FUNCTION) & 3; int n = na + 2 * nk; PyObject **pfunc, *func, **sp, *res; PCALL(PCALL_ALL); if (flags & CALL_FLAG_VAR) n++; if (flags & CALL_FLAG_KW) n++; pfunc = stack_pointer - n - 1; func = *pfunc; if (PyMethod_Check(func) && PyMethod_GET_SELF(func) != NULL) { PyObject *self = PyMethod_GET_SELF(func); Py_INCREF(self); func = PyMethod_GET_FUNCTION(func); Py_INCREF(func); Py_DECREF(*pfunc); *pfunc = self; na++; /* n++; */ } else Py_INCREF(func); sp = stack_pointer; READ_TIMESTAMP(intr0); res = ext_do_call(func, &sp, flags, na, nk); READ_TIMESTAMP(intr1); stack_pointer = sp; Py_DECREF(func); while (stack_pointer > pfunc) { PyObject *o = POP(); Py_DECREF(o); } PUSH(res); if (res == NULL) goto error; DISPATCH(); } TARGET_WITH_IMPL(MAKE_CLOSURE, _make_function) TARGET(MAKE_FUNCTION) _make_function: { int posdefaults = oparg & 0xff; int kwdefaults = (oparg>>8) & 0xff; int num_annotations = (oparg >> 16) & 0x7fff; PyObject *qualname = POP(); /* qualname */ PyObject *code = POP(); /* code object */ PyObject *func = PyFunction_NewWithQualName(code, f->f_globals, qualname); Py_DECREF(code); Py_DECREF(qualname); if (func == NULL) goto error; if (opcode == MAKE_CLOSURE) { PyObject *closure = POP(); if (PyFunction_SetClosure(func, closure) != 0) { /* Can't happen unless bytecode is corrupt. */ Py_DECREF(func); Py_DECREF(closure); goto error; } Py_DECREF(closure); } if (num_annotations > 0) { Py_ssize_t name_ix; PyObject *names = POP(); /* names of args with annotations */ PyObject *anns = PyDict_New(); if (anns == NULL) { Py_DECREF(func); goto error; } name_ix = PyTuple_Size(names); assert(num_annotations == name_ix+1); while (name_ix > 0) { PyObject *name, *value; int err; --name_ix; name = PyTuple_GET_ITEM(names, name_ix); value = POP(); err = PyDict_SetItem(anns, name, value); Py_DECREF(value); if (err != 0) { Py_DECREF(anns); Py_DECREF(func); goto error; } } if (PyFunction_SetAnnotations(func, anns) != 0) { /* Can't happen unless PyFunction_SetAnnotations changes. */ Py_DECREF(anns); Py_DECREF(func); goto error; } Py_DECREF(anns); Py_DECREF(names); } /* XXX Maybe this should be a separate opcode? */ if (kwdefaults > 0) { PyObject *defs = PyDict_New(); if (defs == NULL) { Py_DECREF(func); goto error; } while (--kwdefaults >= 0) { PyObject *v = POP(); /* default value */ PyObject *key = POP(); /* kw only arg name */ int err = PyDict_SetItem(defs, key, v); Py_DECREF(v); Py_DECREF(key); if (err != 0) { Py_DECREF(defs); Py_DECREF(func); goto error; } } if (PyFunction_SetKwDefaults(func, defs) != 0) { /* Can't happen unless PyFunction_SetKwDefaults changes. */ Py_DECREF(func); Py_DECREF(defs); goto error; } Py_DECREF(defs); } if (posdefaults > 0) { PyObject *defs = PyTuple_New(posdefaults); if (defs == NULL) { Py_DECREF(func); goto error; } while (--posdefaults >= 0) PyTuple_SET_ITEM(defs, posdefaults, POP()); if (PyFunction_SetDefaults(func, defs) != 0) { /* Can't happen unless PyFunction_SetDefaults changes. */ Py_DECREF(defs); Py_DECREF(func); goto error; } Py_DECREF(defs); } PUSH(func); DISPATCH(); } TARGET(BUILD_SLICE) { PyObject *start, *stop, *step, *slice; if (oparg == 3) step = POP(); else step = NULL; stop = POP(); start = TOP(); slice = PySlice_New(start, stop, step); Py_DECREF(start); Py_DECREF(stop); Py_XDECREF(step); SET_TOP(slice); if (slice == NULL) goto error; DISPATCH(); } TARGET(EXTENDED_ARG) { opcode = NEXTOP(); oparg = oparg<<16 | NEXTARG(); goto dispatch_opcode; } #if USE_COMPUTED_GOTOS _unknown_opcode: #endif default: fprintf(stderr, "XXX lineno: %d, opcode: %d\n", PyFrame_GetLineNumber(f), opcode); PyErr_SetString(PyExc_SystemError, "unknown opcode"); goto error; #ifdef CASE_TOO_BIG } #endif } /* switch */ /* This should never be reached. Every opcode should end with DISPATCH() or goto error. */ assert(0); error: READ_TIMESTAMP(inst1); assert(why == WHY_NOT); why = WHY_EXCEPTION; /* Double-check exception status. */ #ifdef NDEBUG if (!PyErr_Occurred()) PyErr_SetString(PyExc_SystemError, "error return without exception set"); #else assert(PyErr_Occurred()); #endif /* Log traceback info. */ PyTraceBack_Here(f); if (tstate->c_tracefunc != NULL) call_exc_trace(tstate->c_tracefunc, tstate->c_traceobj, tstate, f); fast_block_end: assert(why != WHY_NOT); /* Unwind stacks if a (pseudo) exception occurred */ while (why != WHY_NOT && f->f_iblock > 0) { /* Peek at the current block. */ PyTryBlock *b = &f->f_blockstack[f->f_iblock - 1]; assert(why != WHY_YIELD); if (b->b_type == SETUP_LOOP && why == WHY_CONTINUE) { why = WHY_NOT; JUMPTO(PyLong_AS_LONG(retval)); Py_DECREF(retval); break; } /* Now we have to pop the block. */ f->f_iblock--; if (b->b_type == EXCEPT_HANDLER) { UNWIND_EXCEPT_HANDLER(b); continue; } UNWIND_BLOCK(b); if (b->b_type == SETUP_LOOP && why == WHY_BREAK) { why = WHY_NOT; JUMPTO(b->b_handler); break; } if (why == WHY_EXCEPTION && (b->b_type == SETUP_EXCEPT || b->b_type == SETUP_FINALLY)) { PyObject *exc, *val, *tb; int handler = b->b_handler; /* Beware, this invalidates all b->b_* fields */ PyFrame_BlockSetup(f, EXCEPT_HANDLER, -1, STACK_LEVEL()); PUSH(tstate->exc_traceback); PUSH(tstate->exc_value); if (tstate->exc_type != NULL) { PUSH(tstate->exc_type); } else { Py_INCREF(Py_None); PUSH(Py_None); } PyErr_Fetch(&exc, &val, &tb); /* Make the raw exception data available to the handler, so a program can emulate the Python main loop. */ PyErr_NormalizeException( &exc, &val, &tb); if (tb != NULL) PyException_SetTraceback(val, tb); else PyException_SetTraceback(val, Py_None); Py_INCREF(exc); tstate->exc_type = exc; Py_INCREF(val); tstate->exc_value = val; tstate->exc_traceback = tb; if (tb == NULL) tb = Py_None; Py_INCREF(tb); PUSH(tb); PUSH(val); PUSH(exc); why = WHY_NOT; JUMPTO(handler); break; } if (b->b_type == SETUP_FINALLY) { if (why & (WHY_RETURN | WHY_CONTINUE)) PUSH(retval); PUSH(PyLong_FromLong((long)why)); why = WHY_NOT; JUMPTO(b->b_handler); break; } } /* unwind stack */ /* End the loop if we still have an error (or return) */ if (why != WHY_NOT) break; READ_TIMESTAMP(loop1); assert(!PyErr_Occurred()); } /* main loop */ assert(why != WHY_YIELD); /* Pop remaining stack entries. */ while (!EMPTY()) { PyObject *o = POP(); Py_XDECREF(o); } if (why != WHY_RETURN) retval = NULL; assert((retval != NULL && !PyErr_Occurred()) || (retval == NULL && PyErr_Occurred())); fast_yield: if (co->co_flags & CO_GENERATOR && (why == WHY_YIELD || why == WHY_RETURN)) { /* The purpose of this block is to put aside the generator's exception state and restore that of the calling frame. If the current exception state is from the caller, we clear the exception values on the generator frame, so they are not swapped back in latter. The origin of the current exception state is determined by checking for except handler blocks, which we must be in iff a new exception state came into existence in this frame. (An uncaught exception would have why == WHY_EXCEPTION, and we wouldn't be here). */ int i; for (i = 0; i < f->f_iblock; i++) if (f->f_blockstack[i].b_type == EXCEPT_HANDLER) break; if (i == f->f_iblock) /* We did not create this exception. */ restore_and_clear_exc_state(tstate, f); else swap_exc_state(tstate, f); } if (tstate->use_tracing) { if (tstate->c_tracefunc) { if (why == WHY_RETURN || why == WHY_YIELD) { if (call_trace(tstate->c_tracefunc, tstate->c_traceobj, tstate, f, PyTrace_RETURN, retval)) { Py_CLEAR(retval); why = WHY_EXCEPTION; } } else if (why == WHY_EXCEPTION) { call_trace_protected(tstate->c_tracefunc, tstate->c_traceobj, tstate, f, PyTrace_RETURN, NULL); } } if (tstate->c_profilefunc) { if (why == WHY_EXCEPTION) call_trace_protected(tstate->c_profilefunc, tstate->c_profileobj, tstate, f, PyTrace_RETURN, NULL); else if (call_trace(tstate->c_profilefunc, tstate->c_profileobj, tstate, f, PyTrace_RETURN, retval)) { Py_CLEAR(retval); /* why = WHY_EXCEPTION; */ } } } /* pop frame */ exit_eval_frame: Py_LeaveRecursiveCall(); f->f_executing = 0; tstate->frame = f->f_back; return retval; } static void format_missing(const char *kind, PyCodeObject *co, PyObject *names) { int err; Py_ssize_t len = PyList_GET_SIZE(names); PyObject *name_str, *comma, *tail, *tmp; assert(PyList_CheckExact(names)); assert(len >= 1); /* Deal with the joys of natural language. */ switch (len) { case 1: name_str = PyList_GET_ITEM(names, 0); Py_INCREF(name_str); break; case 2: name_str = PyUnicode_FromFormat("%U and %U", PyList_GET_ITEM(names, len - 2), PyList_GET_ITEM(names, len - 1)); break; default: tail = PyUnicode_FromFormat(", %U, and %U", PyList_GET_ITEM(names, len - 2), PyList_GET_ITEM(names, len - 1)); if (tail == NULL) return; /* Chop off the last two objects in the list. This shouldn't actually fail, but we can't be too careful. */ err = PyList_SetSlice(names, len - 2, len, NULL); if (err == -1) { Py_DECREF(tail); return; } /* Stitch everything up into a nice comma-separated list. */ comma = PyUnicode_FromString(", "); if (comma == NULL) { Py_DECREF(tail); return; } tmp = PyUnicode_Join(comma, names); Py_DECREF(comma); if (tmp == NULL) { Py_DECREF(tail); return; } name_str = PyUnicode_Concat(tmp, tail); Py_DECREF(tmp); Py_DECREF(tail); break; } if (name_str == NULL) return; PyErr_Format(PyExc_TypeError, "%U() missing %i required %s argument%s: %U", co->co_name, len, kind, len == 1 ? "" : "s", name_str); Py_DECREF(name_str); } static void missing_arguments(PyCodeObject *co, int missing, int defcount, PyObject **fastlocals) { int i, j = 0; int start, end; int positional = defcount != -1; const char *kind = positional ? "positional" : "keyword-only"; PyObject *missing_names; /* Compute the names of the arguments that are missing. */ missing_names = PyList_New(missing); if (missing_names == NULL) return; if (positional) { start = 0; end = co->co_argcount - defcount; } else { start = co->co_argcount; end = start + co->co_kwonlyargcount; } for (i = start; i < end; i++) { if (GETLOCAL(i) == NULL) { PyObject *raw = PyTuple_GET_ITEM(co->co_varnames, i); PyObject *name = PyObject_Repr(raw); if (name == NULL) { Py_DECREF(missing_names); return; } PyList_SET_ITEM(missing_names, j++, name); } } assert(j == missing); format_missing(kind, co, missing_names); Py_DECREF(missing_names); } static void too_many_positional(PyCodeObject *co, int given, int defcount, PyObject **fastlocals) { int plural; int kwonly_given = 0; int i; PyObject *sig, *kwonly_sig; assert((co->co_flags & CO_VARARGS) == 0); /* Count missing keyword-only args. */ for (i = co->co_argcount; i < co->co_argcount + co->co_kwonlyargcount; i++) if (GETLOCAL(i) != NULL) kwonly_given++; if (defcount) { int atleast = co->co_argcount - defcount; plural = 1; sig = PyUnicode_FromFormat("from %d to %d", atleast, co->co_argcount); } else { plural = co->co_argcount != 1; sig = PyUnicode_FromFormat("%d", co->co_argcount); } if (sig == NULL) return; if (kwonly_given) { const char *format = " positional argument%s (and %d keyword-only argument%s)"; kwonly_sig = PyUnicode_FromFormat(format, given != 1 ? "s" : "", kwonly_given, kwonly_given != 1 ? "s" : ""); if (kwonly_sig == NULL) { Py_DECREF(sig); return; } } else { /* This will not fail. */ kwonly_sig = PyUnicode_FromString(""); assert(kwonly_sig != NULL); } PyErr_Format(PyExc_TypeError, "%U() takes %U positional argument%s but %d%U %s given", co->co_name, sig, plural ? "s" : "", given, kwonly_sig, given == 1 && !kwonly_given ? "was" : "were"); Py_DECREF(sig); Py_DECREF(kwonly_sig); } /* This is gonna seem *real weird*, but if you put some other code between PyEval_EvalFrame() and PyEval_EvalCodeEx() you will need to adjust the test in the if statements in Misc/gdbinit (pystack and pystackv). */ static PyObject * _PyEval_EvalCodeWithName(PyObject *_co, PyObject *globals, PyObject *locals, PyObject **args, int argcount, PyObject **kws, int kwcount, PyObject **defs, int defcount, PyObject *kwdefs, PyObject *closure, PyObject *name, PyObject *qualname) { PyCodeObject* co = (PyCodeObject*)_co; PyFrameObject *f; PyObject *retval = NULL; PyObject **fastlocals, **freevars; PyThreadState *tstate = PyThreadState_GET(); PyObject *x, *u; int total_args = co->co_argcount + co->co_kwonlyargcount; int i; int n = argcount; PyObject *kwdict = NULL; if (globals == NULL) { PyErr_SetString(PyExc_SystemError, "PyEval_EvalCodeEx: NULL globals"); return NULL; } assert(tstate != NULL); assert(globals != NULL); f = PyFrame_New(tstate, co, globals, locals); if (f == NULL) return NULL; fastlocals = f->f_localsplus; freevars = f->f_localsplus + co->co_nlocals; /* Parse arguments. */ if (co->co_flags & CO_VARKEYWORDS) { kwdict = PyDict_New(); if (kwdict == NULL) goto fail; i = total_args; if (co->co_flags & CO_VARARGS) i++; SETLOCAL(i, kwdict); } if (argcount > co->co_argcount) n = co->co_argcount; for (i = 0; i < n; i++) { x = args[i]; Py_INCREF(x); SETLOCAL(i, x); } if (co->co_flags & CO_VARARGS) { u = PyTuple_New(argcount - n); if (u == NULL) goto fail; SETLOCAL(total_args, u); for (i = n; i < argcount; i++) { x = args[i]; Py_INCREF(x); PyTuple_SET_ITEM(u, i-n, x); } } for (i = 0; i < kwcount; i++) { PyObject **co_varnames; PyObject *keyword = kws[2*i]; PyObject *value = kws[2*i + 1]; int j; if (keyword == NULL || !PyUnicode_Check(keyword)) { PyErr_Format(PyExc_TypeError, "%U() keywords must be strings", co->co_name); goto fail; } /* Speed hack: do raw pointer compares. As names are normally interned this should almost always hit. */ co_varnames = ((PyTupleObject *)(co->co_varnames))->ob_item; for (j = 0; j < total_args; j++) { PyObject *nm = co_varnames[j]; if (nm == keyword) goto kw_found; } /* Slow fallback, just in case */ for (j = 0; j < total_args; j++) { PyObject *nm = co_varnames[j]; int cmp = PyObject_RichCompareBool( keyword, nm, Py_EQ); if (cmp > 0) goto kw_found; else if (cmp < 0) goto fail; } if (j >= total_args && kwdict == NULL) { PyErr_Format(PyExc_TypeError, "%U() got an unexpected " "keyword argument '%S'", co->co_name, keyword); goto fail; } if (PyDict_SetItem(kwdict, keyword, value) == -1) { goto fail; } continue; kw_found: if (GETLOCAL(j) != NULL) { PyErr_Format(PyExc_TypeError, "%U() got multiple " "values for argument '%S'", co->co_name, keyword); goto fail; } Py_INCREF(value); SETLOCAL(j, value); } if (argcount > co->co_argcount && !(co->co_flags & CO_VARARGS)) { too_many_positional(co, argcount, defcount, fastlocals); goto fail; } if (argcount < co->co_argcount) { int m = co->co_argcount - defcount; int missing = 0; for (i = argcount; i < m; i++) if (GETLOCAL(i) == NULL) missing++; if (missing) { missing_arguments(co, missing, defcount, fastlocals); goto fail; } if (n > m) i = n - m; else i = 0; for (; i < defcount; i++) { if (GETLOCAL(m+i) == NULL) { PyObject *def = defs[i]; Py_INCREF(def); SETLOCAL(m+i, def); } } } if (co->co_kwonlyargcount > 0) { int missing = 0; for (i = co->co_argcount; i < total_args; i++) { PyObject *name; if (GETLOCAL(i) != NULL) continue; name = PyTuple_GET_ITEM(co->co_varnames, i); if (kwdefs != NULL) { PyObject *def = PyDict_GetItem(kwdefs, name); if (def) { Py_INCREF(def); SETLOCAL(i, def); continue; } } missing++; } if (missing) { missing_arguments(co, missing, -1, fastlocals); goto fail; } } /* Allocate and initialize storage for cell vars, and copy free vars into frame. */ for (i = 0; i < PyTuple_GET_SIZE(co->co_cellvars); ++i) { PyObject *c; int arg; /* Possibly account for the cell variable being an argument. */ if (co->co_cell2arg != NULL && (arg = co->co_cell2arg[i]) != CO_CELL_NOT_AN_ARG) { c = PyCell_New(GETLOCAL(arg)); /* Clear the local copy. */ SETLOCAL(arg, NULL); } else { c = PyCell_New(NULL); } if (c == NULL) goto fail; SETLOCAL(co->co_nlocals + i, c); } for (i = 0; i < PyTuple_GET_SIZE(co->co_freevars); ++i) { PyObject *o = PyTuple_GET_ITEM(closure, i); Py_INCREF(o); freevars[PyTuple_GET_SIZE(co->co_cellvars) + i] = o; } if (co->co_flags & CO_GENERATOR) { /* Don't need to keep the reference to f_back, it will be set * when the generator is resumed. */ Py_CLEAR(f->f_back); PCALL(PCALL_GENERATOR); /* Create a new generator that owns the ready to run frame * and return that as the value. */ return PyGen_NewWithQualName(f, name, qualname); } retval = PyEval_EvalFrameEx(f,0); fail: /* Jump here from prelude on failure */ /* decref'ing the frame can cause __del__ methods to get invoked, which can call back into Python. While we're done with the current Python frame (f), the associated C stack is still in use, so recursion_depth must be boosted for the duration. */ assert(tstate != NULL); ++tstate->recursion_depth; Py_DECREF(f); --tstate->recursion_depth; return retval; } PyObject * PyEval_EvalCodeEx(PyObject *_co, PyObject *globals, PyObject *locals, PyObject **args, int argcount, PyObject **kws, int kwcount, PyObject **defs, int defcount, PyObject *kwdefs, PyObject *closure) { return _PyEval_EvalCodeWithName(_co, globals, locals, args, argcount, kws, kwcount, defs, defcount, kwdefs, closure, NULL, NULL); } static PyObject * special_lookup(PyObject *o, _Py_Identifier *id) { PyObject *res; res = _PyObject_LookupSpecial(o, id); if (res == NULL && !PyErr_Occurred()) { PyErr_SetObject(PyExc_AttributeError, id->object); return NULL; } return res; } /* These 3 functions deal with the exception state of generators. */ static void save_exc_state(PyThreadState *tstate, PyFrameObject *f) { PyObject *type, *value, *traceback; Py_XINCREF(tstate->exc_type); Py_XINCREF(tstate->exc_value); Py_XINCREF(tstate->exc_traceback); type = f->f_exc_type; value = f->f_exc_value; traceback = f->f_exc_traceback; f->f_exc_type = tstate->exc_type; f->f_exc_value = tstate->exc_value; f->f_exc_traceback = tstate->exc_traceback; Py_XDECREF(type); Py_XDECREF(value); Py_XDECREF(traceback); } static void swap_exc_state(PyThreadState *tstate, PyFrameObject *f) { PyObject *tmp; tmp = tstate->exc_type; tstate->exc_type = f->f_exc_type; f->f_exc_type = tmp; tmp = tstate->exc_value; tstate->exc_value = f->f_exc_value; f->f_exc_value = tmp; tmp = tstate->exc_traceback; tstate->exc_traceback = f->f_exc_traceback; f->f_exc_traceback = tmp; } static void restore_and_clear_exc_state(PyThreadState *tstate, PyFrameObject *f) { PyObject *type, *value, *tb; type = tstate->exc_type; value = tstate->exc_value; tb = tstate->exc_traceback; tstate->exc_type = f->f_exc_type; tstate->exc_value = f->f_exc_value; tstate->exc_traceback = f->f_exc_traceback; f->f_exc_type = NULL; f->f_exc_value = NULL; f->f_exc_traceback = NULL; Py_XDECREF(type); Py_XDECREF(value); Py_XDECREF(tb); } /* Logic for the raise statement (too complicated for inlining). This *consumes* a reference count to each of its arguments. */ static int do_raise(PyObject *exc, PyObject *cause) { PyObject *type = NULL, *value = NULL; if (exc == NULL) { /* Reraise */ PyThreadState *tstate = PyThreadState_GET(); PyObject *tb; type = tstate->exc_type; value = tstate->exc_value; tb = tstate->exc_traceback; if (type == Py_None) { PyErr_SetString(PyExc_RuntimeError, "No active exception to reraise"); return 0; } Py_XINCREF(type); Py_XINCREF(value); Py_XINCREF(tb); PyErr_Restore(type, value, tb); return 1; } /* We support the following forms of raise: raise raise <instance> raise <type> */ if (PyExceptionClass_Check(exc)) { type = exc; value = PyObject_CallObject(exc, NULL); if (value == NULL) goto raise_error; if (!PyExceptionInstance_Check(value)) { PyErr_Format(PyExc_TypeError, "calling %R should have returned an instance of " "BaseException, not %R", type, Py_TYPE(value)); goto raise_error; } } else if (PyExceptionInstance_Check(exc)) { value = exc; type = PyExceptionInstance_Class(exc); Py_INCREF(type); } else { /* Not something you can raise. You get an exception anyway, just not what you specified :-) */ Py_DECREF(exc); PyErr_SetString(PyExc_TypeError, "exceptions must derive from BaseException"); goto raise_error; } if (cause) { PyObject *fixed_cause; if (PyExceptionClass_Check(cause)) { fixed_cause = PyObject_CallObject(cause, NULL); if (fixed_cause == NULL) goto raise_error; Py_DECREF(cause); } else if (PyExceptionInstance_Check(cause)) { fixed_cause = cause; } else if (cause == Py_None) { Py_DECREF(cause); fixed_cause = NULL; } else { PyErr_SetString(PyExc_TypeError, "exception causes must derive from " "BaseException"); goto raise_error; } PyException_SetCause(value, fixed_cause); } PyErr_SetObject(type, value); /* PyErr_SetObject incref's its arguments */ Py_XDECREF(value); Py_XDECREF(type); return 0; raise_error: Py_XDECREF(value); Py_XDECREF(type); Py_XDECREF(cause); return 0; } /* Iterate v argcnt times and store the results on the stack (via decreasing sp). Return 1 for success, 0 if error. If argcntafter == -1, do a simple unpack. If it is >= 0, do an unpack with a variable target. */ static int unpack_iterable(PyObject *v, int argcnt, int argcntafter, PyObject **sp) { int i = 0, j = 0; Py_ssize_t ll = 0; PyObject *it; /* iter(v) */ PyObject *w; PyObject *l = NULL; /* variable list */ assert(v != NULL); it = PyObject_GetIter(v); if (it == NULL) goto Error; for (; i < argcnt; i++) { w = PyIter_Next(it); if (w == NULL) { /* Iterator done, via error or exhaustion. */ if (!PyErr_Occurred()) { PyErr_Format(PyExc_ValueError, "need more than %d value%s to unpack", i, i == 1 ? "" : "s"); } goto Error; } *--sp = w; } if (argcntafter == -1) { /* We better have exhausted the iterator now. */ w = PyIter_Next(it); if (w == NULL) { if (PyErr_Occurred()) goto Error; Py_DECREF(it); return 1; } Py_DECREF(w); PyErr_Format(PyExc_ValueError, "too many values to unpack " "(expected %d)", argcnt); goto Error; } l = PySequence_List(it); if (l == NULL) goto Error; *--sp = l; i++; ll = PyList_GET_SIZE(l); if (ll < argcntafter) { PyErr_Format(PyExc_ValueError, "need more than %zd values to unpack", argcnt + ll); goto Error; } /* Pop the "after-variable" args off the list. */ for (j = argcntafter; j > 0; j--, i++) { *--sp = PyList_GET_ITEM(l, ll - j); } /* Resize the list. */ Py_SIZE(l) = ll - argcntafter; Py_DECREF(it); return 1; Error: for (; i > 0; i--, sp++) Py_DECREF(*sp); Py_XDECREF(it); return 0; } #ifdef LLTRACE static int prtrace(PyObject *v, char *str) { printf("%s ", str); if (PyObject_Print(v, stdout, 0) != 0) PyErr_Clear(); /* Don't know what else to do */ printf("\n"); return 1; } #endif static void call_exc_trace(Py_tracefunc func, PyObject *self, PyThreadState *tstate, PyFrameObject *f) { PyObject *type, *value, *traceback, *orig_traceback, *arg; int err; PyErr_Fetch(&type, &value, &orig_traceback); if (value == NULL) { value = Py_None; Py_INCREF(value); } PyErr_NormalizeException(&type, &value, &orig_traceback); traceback = (orig_traceback != NULL) ? orig_traceback : Py_None; arg = PyTuple_Pack(3, type, value, traceback); if (arg == NULL) { PyErr_Restore(type, value, orig_traceback); return; } err = call_trace(func, self, tstate, f, PyTrace_EXCEPTION, arg); Py_DECREF(arg); if (err == 0) PyErr_Restore(type, value, orig_traceback); else { Py_XDECREF(type); Py_XDECREF(value); Py_XDECREF(orig_traceback); } } static int call_trace_protected(Py_tracefunc func, PyObject *obj, PyThreadState *tstate, PyFrameObject *frame, int what, PyObject *arg) { PyObject *type, *value, *traceback; int err; PyErr_Fetch(&type, &value, &traceback); err = call_trace(func, obj, tstate, frame, what, arg); if (err == 0) { PyErr_Restore(type, value, traceback); return 0; } else { Py_XDECREF(type); Py_XDECREF(value); Py_XDECREF(traceback); return -1; } } static int call_trace(Py_tracefunc func, PyObject *obj, PyThreadState *tstate, PyFrameObject *frame, int what, PyObject *arg) { int result; if (tstate->tracing) return 0; tstate->tracing++; tstate->use_tracing = 0; result = func(obj, frame, what, arg); tstate->use_tracing = ((tstate->c_tracefunc != NULL) || (tstate->c_profilefunc != NULL)); tstate->tracing--; return result; } PyObject * _PyEval_CallTracing(PyObject *func, PyObject *args) { PyThreadState *tstate = PyThreadState_GET(); int save_tracing = tstate->tracing; int save_use_tracing = tstate->use_tracing; PyObject *result; tstate->tracing = 0; tstate->use_tracing = ((tstate->c_tracefunc != NULL) || (tstate->c_profilefunc != NULL)); result = PyObject_Call(func, args, NULL); tstate->tracing = save_tracing; tstate->use_tracing = save_use_tracing; return result; } /* See Objects/lnotab_notes.txt for a description of how tracing works. */ static int maybe_call_line_trace(Py_tracefunc func, PyObject *obj, PyThreadState *tstate, PyFrameObject *frame, int *instr_lb, int *instr_ub, int *instr_prev) { int result = 0; int line = frame->f_lineno; /* If the last instruction executed isn't in the current instruction window, reset the window. */ if (frame->f_lasti < *instr_lb || frame->f_lasti >= *instr_ub) { PyAddrPair bounds; line = _PyCode_CheckLineNumber(frame->f_code, frame->f_lasti, &bounds); *instr_lb = bounds.ap_lower; *instr_ub = bounds.ap_upper; } /* If the last instruction falls at the start of a line or if it represents a jump backwards, update the frame's line number and call the trace function. */ if (frame->f_lasti == *instr_lb || frame->f_lasti < *instr_prev) { frame->f_lineno = line; result = call_trace(func, obj, tstate, frame, PyTrace_LINE, Py_None); } *instr_prev = frame->f_lasti; return result; } void PyEval_SetProfile(Py_tracefunc func, PyObject *arg) { PyThreadState *tstate = PyThreadState_GET(); PyObject *temp = tstate->c_profileobj; Py_XINCREF(arg); tstate->c_profilefunc = NULL; tstate->c_profileobj = NULL; /* Must make sure that tracing is not ignored if 'temp' is freed */ tstate->use_tracing = tstate->c_tracefunc != NULL; Py_XDECREF(temp); tstate->c_profilefunc = func; tstate->c_profileobj = arg; /* Flag that tracing or profiling is turned on */ tstate->use_tracing = (func != NULL) || (tstate->c_tracefunc != NULL); } void PyEval_SetTrace(Py_tracefunc func, PyObject *arg) { PyThreadState *tstate = PyThreadState_GET(); PyObject *temp = tstate->c_traceobj; _Py_TracingPossible += (func != NULL) - (tstate->c_tracefunc != NULL); Py_XINCREF(arg); tstate->c_tracefunc = NULL; tstate->c_traceobj = NULL; /* Must make sure that profiling is not ignored if 'temp' is freed */ tstate->use_tracing = tstate->c_profilefunc != NULL; Py_XDECREF(temp); tstate->c_tracefunc = func; tstate->c_traceobj = arg; /* Flag that tracing or profiling is turned on */ tstate->use_tracing = ((func != NULL) || (tstate->c_profilefunc != NULL)); } PyObject * PyEval_GetBuiltins(void) { PyFrameObject *current_frame = PyEval_GetFrame(); if (current_frame == NULL) return PyThreadState_GET()->interp->builtins; else return current_frame->f_builtins; } PyObject * PyEval_GetLocals(void) { PyFrameObject *current_frame = PyEval_GetFrame(); if (current_frame == NULL) { PyErr_SetString(PyExc_SystemError, "frame does not exist"); return NULL; } if (PyFrame_FastToLocalsWithError(current_frame) < 0) return NULL; assert(current_frame->f_locals != NULL); return current_frame->f_locals; } PyObject * PyEval_GetGlobals(void) { PyFrameObject *current_frame = PyEval_GetFrame(); if (current_frame == NULL) return NULL; assert(current_frame->f_globals != NULL); return current_frame->f_globals; } PyFrameObject * PyEval_GetFrame(void) { PyThreadState *tstate = PyThreadState_GET(); return _PyThreadState_GetFrame(tstate); } int PyEval_MergeCompilerFlags(PyCompilerFlags *cf) { PyFrameObject *current_frame = PyEval_GetFrame(); int result = cf->cf_flags != 0; if (current_frame != NULL) { const int codeflags = current_frame->f_code->co_flags; const int compilerflags = codeflags & PyCF_MASK; if (compilerflags) { result = 1; cf->cf_flags |= compilerflags; } #if 0 /* future keyword */ if (codeflags & CO_GENERATOR_ALLOWED) { result = 1; cf->cf_flags |= CO_GENERATOR_ALLOWED; } #endif } return result; } /* External interface to call any callable object. The arg must be a tuple or NULL. The kw must be a dict or NULL. */ PyObject * PyEval_CallObjectWithKeywords(PyObject *func, PyObject *arg, PyObject *kw) { PyObject *result; #ifdef Py_DEBUG /* PyEval_CallObjectWithKeywords() must not be called with an exception set, because it may clear it (directly or indirectly) and so the caller looses its exception */ assert(!PyErr_Occurred()); #endif if (arg == NULL) { arg = PyTuple_New(0); if (arg == NULL) return NULL; } else if (!PyTuple_Check(arg)) { PyErr_SetString(PyExc_TypeError, "argument list must be a tuple"); return NULL; } else Py_INCREF(arg); if (kw != NULL && !PyDict_Check(kw)) { PyErr_SetString(PyExc_TypeError, "keyword list must be a dictionary"); Py_DECREF(arg); return NULL; } result = PyObject_Call(func, arg, kw); Py_DECREF(arg); assert((result != NULL && !PyErr_Occurred()) || (result == NULL && PyErr_Occurred())); return result; } const char * PyEval_GetFuncName(PyObject *func) { if (PyMethod_Check(func)) return PyEval_GetFuncName(PyMethod_GET_FUNCTION(func)); else if (PyFunction_Check(func)) return _PyUnicode_AsString(((PyFunctionObject*)func)->func_name); else if (PyCFunction_Check(func)) return ((PyCFunctionObject*)func)->m_ml->ml_name; else return func->ob_type->tp_name; } const char * PyEval_GetFuncDesc(PyObject *func) { if (PyMethod_Check(func)) return "()"; else if (PyFunction_Check(func)) return "()"; else if (PyCFunction_Check(func)) return "()"; else return " object"; } static void err_args(PyObject *func, int flags, int nargs) { if (flags & METH_NOARGS) PyErr_Format(PyExc_TypeError, "%.200s() takes no arguments (%d given)", ((PyCFunctionObject *)func)->m_ml->ml_name, nargs); else PyErr_Format(PyExc_TypeError, "%.200s() takes exactly one argument (%d given)", ((PyCFunctionObject *)func)->m_ml->ml_name, nargs); } #define C_TRACE(x, call) \ if (tstate->use_tracing && tstate->c_profilefunc) { \ if (call_trace(tstate->c_profilefunc, tstate->c_profileobj, \ tstate, tstate->frame, \ PyTrace_C_CALL, func)) { \ x = NULL; \ } \ else { \ x = call; \ if (tstate->c_profilefunc != NULL) { \ if (x == NULL) { \ call_trace_protected(tstate->c_profilefunc, \ tstate->c_profileobj, \ tstate, tstate->frame, \ PyTrace_C_EXCEPTION, func); \ /* XXX should pass (type, value, tb) */ \ } else { \ if (call_trace(tstate->c_profilefunc, \ tstate->c_profileobj, \ tstate, tstate->frame, \ PyTrace_C_RETURN, func)) { \ Py_DECREF(x); \ x = NULL; \ } \ } \ } \ } \ } else { \ x = call; \ } static PyObject * call_function(PyObject ***pp_stack, int oparg #ifdef WITH_TSC , uint64* pintr0, uint64* pintr1 #endif ) { int na = oparg & 0xff; int nk = (oparg>>8) & 0xff; int n = na + 2 * nk; PyObject **pfunc = (*pp_stack) - n - 1; PyObject *func = *pfunc; PyObject *x, *w; /* Always dispatch PyCFunction first, because these are presumed to be the most frequent callable object. */ if (PyCFunction_Check(func) && nk == 0) { int flags = PyCFunction_GET_FLAGS(func); PyThreadState *tstate = PyThreadState_GET(); PCALL(PCALL_CFUNCTION); if (flags & (METH_NOARGS | METH_O)) { PyCFunction meth = PyCFunction_GET_FUNCTION(func); PyObject *self = PyCFunction_GET_SELF(func); if (flags & METH_NOARGS && na == 0) { C_TRACE(x, (*meth)(self,NULL)); } else if (flags & METH_O && na == 1) { PyObject *arg = EXT_POP(*pp_stack); C_TRACE(x, (*meth)(self,arg)); Py_DECREF(arg); } else { err_args(func, flags, na); x = NULL; } } else { PyObject *callargs; callargs = load_args(pp_stack, na); if (callargs != NULL) { READ_TIMESTAMP(*pintr0); C_TRACE(x, PyCFunction_Call(func,callargs,NULL)); READ_TIMESTAMP(*pintr1); Py_XDECREF(callargs); } else { x = NULL; } } } else { if (PyMethod_Check(func) && PyMethod_GET_SELF(func) != NULL) { /* optimize access to bound methods */ PyObject *self = PyMethod_GET_SELF(func); PCALL(PCALL_METHOD); PCALL(PCALL_BOUND_METHOD); Py_INCREF(self); func = PyMethod_GET_FUNCTION(func); Py_INCREF(func); Py_DECREF(*pfunc); *pfunc = self; na++; n++; } else Py_INCREF(func); READ_TIMESTAMP(*pintr0); if (PyFunction_Check(func)) x = fast_function(func, pp_stack, n, na, nk); else x = do_call(func, pp_stack, na, nk); READ_TIMESTAMP(*pintr1); Py_DECREF(func); } assert((x != NULL && !PyErr_Occurred()) || (x == NULL && PyErr_Occurred())); /* Clear the stack of the function object. Also removes the arguments in case they weren't consumed already (fast_function() and err_args() leave them on the stack). */ while ((*pp_stack) > pfunc) { w = EXT_POP(*pp_stack); Py_DECREF(w); PCALL(PCALL_POP); } assert((x != NULL && !PyErr_Occurred()) || (x == NULL && PyErr_Occurred())); return x; } /* The fast_function() function optimize calls for which no argument tuple is necessary; the objects are passed directly from the stack. For the simplest case -- a function that takes only positional arguments and is called with only positional arguments -- it inlines the most primitive frame setup code from PyEval_EvalCodeEx(), which vastly reduces the checks that must be done before evaluating the frame. */ static PyObject * fast_function(PyObject *func, PyObject ***pp_stack, int n, int na, int nk) { PyCodeObject *co = (PyCodeObject *)PyFunction_GET_CODE(func); PyObject *globals = PyFunction_GET_GLOBALS(func); PyObject *argdefs = PyFunction_GET_DEFAULTS(func); PyObject *kwdefs = PyFunction_GET_KW_DEFAULTS(func); PyObject *name = ((PyFunctionObject *)func) -> func_name; PyObject *qualname = ((PyFunctionObject *)func) -> func_qualname; PyObject **d = NULL; int nd = 0; PCALL(PCALL_FUNCTION); PCALL(PCALL_FAST_FUNCTION); if (argdefs == NULL && co->co_argcount == n && co->co_kwonlyargcount == 0 && nk==0 && co->co_flags == (CO_OPTIMIZED | CO_NEWLOCALS | CO_NOFREE)) { PyFrameObject *f; PyObject *retval = NULL; PyThreadState *tstate = PyThreadState_GET(); PyObject **fastlocals, **stack; int i; PCALL(PCALL_FASTER_FUNCTION); assert(globals != NULL); /* XXX Perhaps we should create a specialized PyFrame_New() that doesn't take locals, but does take builtins without sanity checking them. */ assert(tstate != NULL); f = PyFrame_New(tstate, co, globals, NULL); if (f == NULL) return NULL; fastlocals = f->f_localsplus; stack = (*pp_stack) - n; for (i = 0; i < n; i++) { Py_INCREF(*stack); fastlocals[i] = *stack++; } retval = PyEval_EvalFrameEx(f,0); ++tstate->recursion_depth; Py_DECREF(f); --tstate->recursion_depth; return retval; } if (argdefs != NULL) { d = &PyTuple_GET_ITEM(argdefs, 0); nd = Py_SIZE(argdefs); } return _PyEval_EvalCodeWithName((PyObject*)co, globals, (PyObject *)NULL, (*pp_stack)-n, na, (*pp_stack)-2*nk, nk, d, nd, kwdefs, PyFunction_GET_CLOSURE(func), name, qualname); } static PyObject * update_keyword_args(PyObject *orig_kwdict, int nk, PyObject ***pp_stack, PyObject *func) { PyObject *kwdict = NULL; if (orig_kwdict == NULL) kwdict = PyDict_New(); else { kwdict = PyDict_Copy(orig_kwdict); Py_DECREF(orig_kwdict); } if (kwdict == NULL) return NULL; while (--nk >= 0) { int err; PyObject *value = EXT_POP(*pp_stack); PyObject *key = EXT_POP(*pp_stack); if (PyDict_GetItem(kwdict, key) != NULL) { PyErr_Format(PyExc_TypeError, "%.200s%s got multiple values " "for keyword argument '%U'", PyEval_GetFuncName(func), PyEval_GetFuncDesc(func), key); Py_DECREF(key); Py_DECREF(value); Py_DECREF(kwdict); return NULL; } err = PyDict_SetItem(kwdict, key, value); Py_DECREF(key); Py_DECREF(value); if (err) { Py_DECREF(kwdict); return NULL; } } return kwdict; } static PyObject * update_star_args(int nstack, int nstar, PyObject *stararg, PyObject ***pp_stack) { PyObject *callargs, *w; callargs = PyTuple_New(nstack + nstar); if (callargs == NULL) { return NULL; } if (nstar) { int i; for (i = 0; i < nstar; i++) { PyObject *a = PyTuple_GET_ITEM(stararg, i); Py_INCREF(a); PyTuple_SET_ITEM(callargs, nstack + i, a); } } while (--nstack >= 0) { w = EXT_POP(*pp_stack); PyTuple_SET_ITEM(callargs, nstack, w); } return callargs; } static PyObject * load_args(PyObject ***pp_stack, int na) { PyObject *args = PyTuple_New(na); PyObject *w; if (args == NULL) return NULL; while (--na >= 0) { w = EXT_POP(*pp_stack); PyTuple_SET_ITEM(args, na, w); } return args; } static PyObject * do_call(PyObject *func, PyObject ***pp_stack, int na, int nk) { PyObject *callargs = NULL; PyObject *kwdict = NULL; PyObject *result = NULL; if (nk > 0) { kwdict = update_keyword_args(NULL, nk, pp_stack, func); if (kwdict == NULL) goto call_fail; } callargs = load_args(pp_stack, na); if (callargs == NULL) goto call_fail; #ifdef CALL_PROFILE /* At this point, we have to look at the type of func to update the call stats properly. Do it here so as to avoid exposing the call stats machinery outside ceval.c */ if (PyFunction_Check(func)) PCALL(PCALL_FUNCTION); else if (PyMethod_Check(func)) PCALL(PCALL_METHOD); else if (PyType_Check(func)) PCALL(PCALL_TYPE); else if (PyCFunction_Check(func)) PCALL(PCALL_CFUNCTION); else PCALL(PCALL_OTHER); #endif if (PyCFunction_Check(func)) { PyThreadState *tstate = PyThreadState_GET(); C_TRACE(result, PyCFunction_Call(func, callargs, kwdict)); } else result = PyObject_Call(func, callargs, kwdict); call_fail: Py_XDECREF(callargs); Py_XDECREF(kwdict); return result; } static PyObject * ext_do_call(PyObject *func, PyObject ***pp_stack, int flags, int na, int nk) { int nstar = 0; PyObject *callargs = NULL; PyObject *stararg = NULL; PyObject *kwdict = NULL; PyObject *result = NULL; if (flags & CALL_FLAG_KW) { kwdict = EXT_POP(*pp_stack); if (!PyDict_Check(kwdict)) { PyObject *d; d = PyDict_New(); if (d == NULL) goto ext_call_fail; if (PyDict_Update(d, kwdict) != 0) { Py_DECREF(d); /* PyDict_Update raises attribute * error (percolated from an attempt * to get 'keys' attribute) instead of * a type error if its second argument * is not a mapping. */ if (PyErr_ExceptionMatches(PyExc_AttributeError)) { PyErr_Format(PyExc_TypeError, "%.200s%.200s argument after ** " "must be a mapping, not %.200s", PyEval_GetFuncName(func), PyEval_GetFuncDesc(func), kwdict->ob_type->tp_name); } goto ext_call_fail; } Py_DECREF(kwdict); kwdict = d; } } if (flags & CALL_FLAG_VAR) { stararg = EXT_POP(*pp_stack); if (!PyTuple_Check(stararg)) { PyObject *t = NULL; t = PySequence_Tuple(stararg); if (t == NULL) { if (PyErr_ExceptionMatches(PyExc_TypeError)) { PyErr_Format(PyExc_TypeError, "%.200s%.200s argument after * " "must be a sequence, not %.200s", PyEval_GetFuncName(func), PyEval_GetFuncDesc(func), stararg->ob_type->tp_name); } goto ext_call_fail; } Py_DECREF(stararg); stararg = t; } nstar = PyTuple_GET_SIZE(stararg); } if (nk > 0) { kwdict = update_keyword_args(kwdict, nk, pp_stack, func); if (kwdict == NULL) goto ext_call_fail; } callargs = update_star_args(na, nstar, stararg, pp_stack); if (callargs == NULL) goto ext_call_fail; #ifdef CALL_PROFILE /* At this point, we have to look at the type of func to update the call stats properly. Do it here so as to avoid exposing the call stats machinery outside ceval.c */ if (PyFunction_Check(func)) PCALL(PCALL_FUNCTION); else if (PyMethod_Check(func)) PCALL(PCALL_METHOD); else if (PyType_Check(func)) PCALL(PCALL_TYPE); else if (PyCFunction_Check(func)) PCALL(PCALL_CFUNCTION); else PCALL(PCALL_OTHER); #endif if (PyCFunction_Check(func)) { PyThreadState *tstate = PyThreadState_GET(); C_TRACE(result, PyCFunction_Call(func, callargs, kwdict)); } else result = PyObject_Call(func, callargs, kwdict); ext_call_fail: Py_XDECREF(callargs); Py_XDECREF(kwdict); Py_XDECREF(stararg); assert((result != NULL && !PyErr_Occurred()) || (result == NULL && PyErr_Occurred())); return result; } /* Extract a slice index from a PyInt or PyLong or an object with the nb_index slot defined, and store in *pi. Silently reduce values larger than PY_SSIZE_T_MAX to PY_SSIZE_T_MAX, and silently boost values less than -PY_SSIZE_T_MAX-1 to -PY_SSIZE_T_MAX-1. Return 0 on error, 1 on success. */ /* Note: If v is NULL, return success without storing into *pi. This is because_PyEval_SliceIndex() is called by apply_slice(), which can be called by the SLICE opcode with v and/or w equal to NULL. */ int _PyEval_SliceIndex(PyObject *v, Py_ssize_t *pi) { if (v != NULL) { Py_ssize_t x; if (PyIndex_Check(v)) { x = PyNumber_AsSsize_t(v, NULL); if (x == -1 && PyErr_Occurred()) return 0; } else { PyErr_SetString(PyExc_TypeError, "slice indices must be integers or " "None or have an __index__ method"); return 0; } *pi = x; } return 1; } #define CANNOT_CATCH_MSG "catching classes that do not inherit from "\ "BaseException is not allowed" static PyObject * cmp_outcome(int op, PyObject *v, PyObject *w) { int res = 0; switch (op) { case PyCmp_IS: res = (v == w); break; case PyCmp_IS_NOT: res = (v != w); break; case PyCmp_IN: res = PySequence_Contains(w, v); if (res < 0) return NULL; break; case PyCmp_NOT_IN: res = PySequence_Contains(w, v); if (res < 0) return NULL; res = !res; break; case PyCmp_EXC_MATCH: if (PyTuple_Check(w)) { Py_ssize_t i, length; length = PyTuple_Size(w); for (i = 0; i < length; i += 1) { PyObject *exc = PyTuple_GET_ITEM(w, i); if (!PyExceptionClass_Check(exc)) { PyErr_SetString(PyExc_TypeError, CANNOT_CATCH_MSG); return NULL; } } } else { if (!PyExceptionClass_Check(w)) { PyErr_SetString(PyExc_TypeError, CANNOT_CATCH_MSG); return NULL; } } res = PyErr_GivenExceptionMatches(v, w); break; default: return PyObject_RichCompare(v, w, op); } v = res ? Py_True : Py_False; Py_INCREF(v); return v; } static PyObject * import_from(PyObject *v, PyObject *name) { PyObject *x; _Py_IDENTIFIER(__name__); PyObject *fullmodname, *pkgname; x = PyObject_GetAttr(v, name); if (x != NULL || !PyErr_ExceptionMatches(PyExc_AttributeError)) return x; /* Issue #17636: in case this failed because of a circular relative import, try to fallback on reading the module directly from sys.modules. */ PyErr_Clear(); pkgname = _PyObject_GetAttrId(v, &PyId___name__); if (pkgname == NULL) return NULL; fullmodname = PyUnicode_FromFormat("%U.%U", pkgname, name); Py_DECREF(pkgname); if (fullmodname == NULL) return NULL; x = PyDict_GetItem(PyImport_GetModuleDict(), fullmodname); if (x == NULL) PyErr_Format(PyExc_ImportError, "cannot import name %R", name); else Py_INCREF(x); Py_DECREF(fullmodname); return x; } static int import_all_from(PyObject *locals, PyObject *v) { _Py_IDENTIFIER(__all__); _Py_IDENTIFIER(__dict__); PyObject *all = _PyObject_GetAttrId(v, &PyId___all__); PyObject *dict, *name, *value; int skip_leading_underscores = 0; int pos, err; if (all == NULL) { if (!PyErr_ExceptionMatches(PyExc_AttributeError)) return -1; /* Unexpected error */ PyErr_Clear(); dict = _PyObject_GetAttrId(v, &PyId___dict__); if (dict == NULL) { if (!PyErr_ExceptionMatches(PyExc_AttributeError)) return -1; PyErr_SetString(PyExc_ImportError, "from-import-* object has no __dict__ and no __all__"); return -1; } all = PyMapping_Keys(dict); Py_DECREF(dict); if (all == NULL) return -1; skip_leading_underscores = 1; } for (pos = 0, err = 0; ; pos++) { name = PySequence_GetItem(all, pos); if (name == NULL) { if (!PyErr_ExceptionMatches(PyExc_IndexError)) err = -1; else PyErr_Clear(); break; } if (skip_leading_underscores && PyUnicode_Check(name) && PyUnicode_READY(name) != -1 && PyUnicode_READ_CHAR(name, 0) == '_') { Py_DECREF(name); continue; } value = PyObject_GetAttr(v, name); if (value == NULL) err = -1; else if (PyDict_CheckExact(locals)) err = PyDict_SetItem(locals, name, value); else err = PyObject_SetItem(locals, name, value); Py_DECREF(name); Py_XDECREF(value); if (err != 0) break; } Py_DECREF(all); return err; } static void format_exc_check_arg(PyObject *exc, const char *format_str, PyObject *obj) { const char *obj_str; if (!obj) return; obj_str = _PyUnicode_AsString(obj); if (!obj_str) return; PyErr_Format(exc, format_str, obj_str); } static void format_exc_unbound(PyCodeObject *co, int oparg) { PyObject *name; /* Don't stomp existing exception */ if (PyErr_Occurred()) return; if (oparg < PyTuple_GET_SIZE(co->co_cellvars)) { name = PyTuple_GET_ITEM(co->co_cellvars, oparg); format_exc_check_arg( PyExc_UnboundLocalError, UNBOUNDLOCAL_ERROR_MSG, name); } else { name = PyTuple_GET_ITEM(co->co_freevars, oparg - PyTuple_GET_SIZE(co->co_cellvars)); format_exc_check_arg(PyExc_NameError, UNBOUNDFREE_ERROR_MSG, name); } } static PyObject * unicode_concatenate(PyObject *v, PyObject *w, PyFrameObject *f, unsigned char *next_instr) { PyObject *res; if (Py_REFCNT(v) == 2) { /* In the common case, there are 2 references to the value * stored in 'variable' when the += is performed: one on the * value stack (in 'v') and one still stored in the * 'variable'. We try to delete the variable now to reduce * the refcnt to 1. */ switch (*next_instr) { case STORE_FAST: { int oparg = PEEKARG(); PyObject **fastlocals = f->f_localsplus; if (GETLOCAL(oparg) == v) SETLOCAL(oparg, NULL); break; } case STORE_DEREF: { PyObject **freevars = (f->f_localsplus + f->f_code->co_nlocals); PyObject *c = freevars[PEEKARG()]; if (PyCell_GET(c) == v) PyCell_Set(c, NULL); break; } case STORE_NAME: { PyObject *names = f->f_code->co_names; PyObject *name = GETITEM(names, PEEKARG()); PyObject *locals = f->f_locals; if (PyDict_CheckExact(locals) && PyDict_GetItem(locals, name) == v) { if (PyDict_DelItem(locals, name) != 0) { PyErr_Clear(); } } break; } } } res = v; PyUnicode_Append(&res, w); return res; } #ifdef DYNAMIC_EXECUTION_PROFILE static PyObject * getarray(long a[256]) { int i; PyObject *l = PyList_New(256); if (l == NULL) return NULL; for (i = 0; i < 256; i++) { PyObject *x = PyLong_FromLong(a[i]); if (x == NULL) { Py_DECREF(l); return NULL; } PyList_SetItem(l, i, x); } for (i = 0; i < 256; i++) a[i] = 0; return l; } PyObject * _Py_GetDXProfile(PyObject *self, PyObject *args) { #ifndef DXPAIRS return getarray(dxp); #else int i; PyObject *l = PyList_New(257); if (l == NULL) return NULL; for (i = 0; i < 257; i++) { PyObject *x = getarray(dxpairs[i]); if (x == NULL) { Py_DECREF(l); return NULL; } PyList_SetItem(l, i, x); } return l; #endif } #endif