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/* Thread and interpreter state structures and their interfaces */

#include "Python.h"
#include "internal/pystate.h"

#define GET_TSTATE() \
    ((PyThreadState*)_Py_atomic_load_relaxed(&_PyThreadState_Current))
#define SET_TSTATE(value) \
    _Py_atomic_store_relaxed(&_PyThreadState_Current, (uintptr_t)(value))
#define GET_INTERP_STATE() \
    (GET_TSTATE()->interp)


/* --------------------------------------------------------------------------
CAUTION

Always use PyMem_RawMalloc() and PyMem_RawFree() directly in this file.  A
number of these functions are advertised as safe to call when the GIL isn't
held, and in a debug build Python redirects (e.g.) PyMem_NEW (etc) to Python's
debugging obmalloc functions.  Those aren't thread-safe (they rely on the GIL
to avoid the expense of doing their own locking).
-------------------------------------------------------------------------- */

#ifdef HAVE_DLOPEN
#ifdef HAVE_DLFCN_H
#include <dlfcn.h>
#endif
#if !HAVE_DECL_RTLD_LAZY
#define RTLD_LAZY 1
#endif
#endif

#ifdef __cplusplus
extern "C" {
#endif

void
_PyRuntimeState_Init(_PyRuntimeState *runtime)
{
    memset(runtime, 0, sizeof(*runtime));

    _PyObject_Initialize(&runtime->obj);
    _PyMem_Initialize(&runtime->mem);
    _PyGC_Initialize(&runtime->gc);
    _PyEval_Initialize(&runtime->ceval);

    runtime->gilstate.check_enabled = 1;
    runtime->gilstate.autoTLSkey = -1;

    runtime->interpreters.mutex = PyThread_allocate_lock();
    if (runtime->interpreters.mutex == NULL)
        Py_FatalError("Can't initialize threads for interpreter");
    runtime->interpreters.next_id = -1;
}

void
_PyRuntimeState_Fini(_PyRuntimeState *runtime)
{
    if (runtime->interpreters.mutex != NULL) {
        PyThread_free_lock(runtime->interpreters.mutex);
        runtime->interpreters.mutex = NULL;
    }
}

#define HEAD_LOCK() PyThread_acquire_lock(_PyRuntime.interpreters.mutex, \
                                          WAIT_LOCK)
#define HEAD_UNLOCK() PyThread_release_lock(_PyRuntime.interpreters.mutex)

static void _PyGILState_NoteThreadState(PyThreadState* tstate);

void
_PyInterpreterState_Enable(_PyRuntimeState *runtime)
{
    runtime->interpreters.next_id = 0;
    /* Since we only call _PyRuntimeState_Init() once per process
       (see _PyRuntime_Initialize()), we make sure the mutex is
       initialized here. */
    if (runtime->interpreters.mutex == NULL) {
        runtime->interpreters.mutex = PyThread_allocate_lock();
        if (runtime->interpreters.mutex == NULL)
            Py_FatalError("Can't initialize threads for interpreter");
    }
}

PyInterpreterState *
PyInterpreterState_New(void)
{
    PyInterpreterState *interp = (PyInterpreterState *)
                                 PyMem_RawMalloc(sizeof(PyInterpreterState));

    if (interp != NULL) {
        interp->modules = NULL;
        interp->modules_by_index = NULL;
        interp->sysdict = NULL;
        interp->builtins = NULL;
        interp->builtins_copy = NULL;
        interp->tstate_head = NULL;
        interp->check_interval = 100;
        interp->num_threads = 0;
        interp->pythread_stacksize = 0;
        interp->codec_search_path = NULL;
        interp->codec_search_cache = NULL;
        interp->codec_error_registry = NULL;
        interp->codecs_initialized = 0;
        interp->fscodec_initialized = 0;
        interp->importlib = NULL;
        interp->import_func = NULL;
        interp->eval_frame = _PyEval_EvalFrameDefault;
        interp->co_extra_user_count = 0;
#ifdef HAVE_DLOPEN
#if HAVE_DECL_RTLD_NOW
        interp->dlopenflags = RTLD_NOW;
#else
        interp->dlopenflags = RTLD_LAZY;
#endif
#endif
#ifdef HAVE_FORK
        interp->before_forkers = NULL;
        interp->after_forkers_parent = NULL;
        interp->after_forkers_child = NULL;
#endif

        HEAD_LOCK();
        interp->next = _PyRuntime.interpreters.head;
        if (_PyRuntime.interpreters.main == NULL) {
            _PyRuntime.interpreters.main = interp;
        }
        _PyRuntime.interpreters.head = interp;
        if (_PyRuntime.interpreters.next_id < 0) {
            /* overflow or Py_Initialize() not called! */
            PyErr_SetString(PyExc_RuntimeError,
                            "failed to get an interpreter ID");
            interp = NULL;
        } else {
            interp->id = _PyRuntime.interpreters.next_id;
            _PyRuntime.interpreters.next_id += 1;
        }
        HEAD_UNLOCK();
    }

    return interp;
}


void
PyInterpreterState_Clear(PyInterpreterState *interp)
{
    PyThreadState *p;
    HEAD_LOCK();
    for (p = interp->tstate_head; p != NULL; p = p->next)
        PyThreadState_Clear(p);
    HEAD_UNLOCK();
    Py_CLEAR(interp->codec_search_path);
    Py_CLEAR(interp->codec_search_cache);
    Py_CLEAR(interp->codec_error_registry);
    Py_CLEAR(interp->modules);
    Py_CLEAR(interp->modules_by_index);
    Py_CLEAR(interp->sysdict);
    Py_CLEAR(interp->builtins);
    Py_CLEAR(interp->builtins_copy);
    Py_CLEAR(interp->importlib);
    Py_CLEAR(interp->import_func);
#ifdef HAVE_FORK
    Py_CLEAR(interp->before_forkers);
    Py_CLEAR(interp->after_forkers_parent);
    Py_CLEAR(interp->after_forkers_child);
#endif
}


static void
zapthreads(PyInterpreterState *interp)
{
    PyThreadState *p;
    /* No need to lock the mutex here because this should only happen
       when the threads are all really dead (XXX famous last words). */
    while ((p = interp->tstate_head) != NULL) {
        PyThreadState_Delete(p);
    }
}


void
PyInterpreterState_Delete(PyInterpreterState *interp)
{
    PyInterpreterState **p;
    zapthreads(interp);
    HEAD_LOCK();
    for (p = &_PyRuntime.interpreters.head; ; p = &(*p)->next) {
        if (*p == NULL)
            Py_FatalError(
                "PyInterpreterState_Delete: invalid interp");
        if (*p == interp)
            break;
    }
    if (interp->tstate_head != NULL)
        Py_FatalError("PyInterpreterState_Delete: remaining threads");
    *p = interp->next;
    if (_PyRuntime.interpreters.main == interp) {
        _PyRuntime.interpreters.main = NULL;
        if (_PyRuntime.interpreters.head != NULL)
            Py_FatalError("PyInterpreterState_Delete: remaining subinterpreters");
    }
    HEAD_UNLOCK();
    PyMem_RawFree(interp);
}


int64_t
PyInterpreterState_GetID(PyInterpreterState *interp)
{
    if (interp == NULL) {
        PyErr_SetString(PyExc_RuntimeError, "no interpreter provided");
        return -1;
    }
    return interp->id;
}


/* Default implementation for _PyThreadState_GetFrame */
static struct _frame *
threadstate_getframe(PyThreadState *self)
{
    return self->frame;
}

static PyThreadState *
new_threadstate(PyInterpreterState *interp, int init)
{
    PyThreadState *tstate = (PyThreadState *)PyMem_RawMalloc(sizeof(PyThreadState));

    if (_PyThreadState_GetFrame == NULL)
        _PyThreadState_GetFrame = threadstate_getframe;

    if (tstate != NULL) {
        tstate->interp = interp;

        tstate->frame = NULL;
        tstate->recursion_depth = 0;
        tstate->overflowed = 0;
        tstate->recursion_critical = 0;
        tstate->tracing = 0;
        tstate->use_tracing = 0;
        tstate->gilstate_counter = 0;
        tstate->async_exc = NULL;
        tstate->thread_id = PyThread_get_thread_ident();

        tstate->dict = NULL;

        tstate->curexc_type = NULL;
        tstate->curexc_value = NULL;
        tstate->curexc_traceback = NULL;

        tstate->exc_type = NULL;
        tstate->exc_value = NULL;
        tstate->exc_traceback = NULL;

        tstate->c_profilefunc = NULL;
        tstate->c_tracefunc = NULL;
        tstate->c_profileobj = NULL;
        tstate->c_traceobj = NULL;

        tstate->trash_delete_nesting = 0;
        tstate->trash_delete_later = NULL;
        tstate->on_delete = NULL;
        tstate->on_delete_data = NULL;

        tstate->coroutine_wrapper = NULL;
        tstate->in_coroutine_wrapper = 0;

        tstate->async_gen_firstiter = NULL;
        tstate->async_gen_finalizer = NULL;

        if (init)
            _PyThreadState_Init(tstate);

        HEAD_LOCK();
        tstate->prev = NULL;
        tstate->next = interp->tstate_head;
        if (tstate->next)
            tstate->next->prev = tstate;
        interp->tstate_head = tstate;
        HEAD_UNLOCK();
    }

    return tstate;
}

PyThreadState *
PyThreadState_New(PyInterpreterState *interp)
{
    return new_threadstate(interp, 1);
}

PyThreadState *
_PyThreadState_Prealloc(PyInterpreterState *interp)
{
    return new_threadstate(interp, 0);
}

void
_PyThreadState_Init(PyThreadState *tstate)
{
    _PyGILState_NoteThreadState(tstate);
}

PyObject*
PyState_FindModule(struct PyModuleDef* module)
{
    Py_ssize_t index = module->m_base.m_index;
    PyInterpreterState *state = GET_INTERP_STATE();
    PyObject *res;
    if (module->m_slots) {
        return NULL;
    }
    if (index == 0)
        return NULL;
    if (state->modules_by_index == NULL)
        return NULL;
    if (index >= PyList_GET_SIZE(state->modules_by_index))
        return NULL;
    res = PyList_GET_ITEM(state->modules_by_index, index);
    return res==Py_None ? NULL : res;
}

int
_PyState_AddModule(PyObject* module, struct PyModuleDef* def)
{
    PyInterpreterState *state;
    if (!def) {
        assert(PyErr_Occurred());
        return -1;
    }
    if (def->m_slots) {
        PyErr_SetString(PyExc_SystemError,
                        "PyState_AddModule called on module with slots");
        return -1;
    }
    state = GET_INTERP_STATE();
    if (!state->modules_by_index) {
        state->modules_by_index = PyList_New(0);
        if (!state->modules_by_index)
            return -1;
    }
    while(PyList_GET_SIZE(state->modules_by_index) <= def->m_base.m_index)
        if (PyList_Append(state->modules_by_index, Py_None) < 0)
            return -1;
    Py_INCREF(module);
    return PyList_SetItem(state->modules_by_index,
                          def->m_base.m_index, module);
}

int
PyState_AddModule(PyObject* module, struct PyModuleDef* def)
{
    Py_ssize_t index;
    PyInterpreterState *state = GET_INTERP_STATE();
    if (!def) {
        Py_FatalError("PyState_AddModule: Module Definition is NULL");
        return -1;
    }
    index = def->m_base.m_index;
    if (state->modules_by_index) {
        if(PyList_GET_SIZE(state->modules_by_index) >= index) {
            if(module == PyList_GET_ITEM(state->modules_by_index, index)) {
                Py_FatalError("PyState_AddModule: Module already added!");
                return -1;
            }
        }
    }
    return _PyState_AddModule(module, def);
}

int
PyState_RemoveModule(struct PyModuleDef* def)
{
    PyInterpreterState *state;
    Py_ssize_t index = def->m_base.m_index;
    if (def->m_slots) {
        PyErr_SetString(PyExc_SystemError,
                        "PyState_RemoveModule called on module with slots");
        return -1;
    }
    state = GET_INTERP_STATE();
    if (index == 0) {
        Py_FatalError("PyState_RemoveModule: Module index invalid.");
        return -1;
    }
    if (state->modules_by_index == NULL) {
        Py_FatalError("PyState_RemoveModule: Interpreters module-list not acessible.");
        return -1;
    }
    if (index > PyList_GET_SIZE(state->modules_by_index)) {
        Py_FatalError("PyState_RemoveModule: Module index out of bounds.");
        return -1;
    }
    return PyList_SetItem(state->modules_by_index, index, Py_None);
}

/* used by import.c:PyImport_Cleanup */
void
_PyState_ClearModules(void)
{
    PyInterpreterState *state = GET_INTERP_STATE();
    if (state->modules_by_index) {
        Py_ssize_t i;
        for (i = 0; i < PyList_GET_SIZE(state->modules_by_index); i++) {
            PyObject *m = PyList_GET_ITEM(state->modules_by_index, i);
            if (PyModule_Check(m)) {
                /* cleanup the saved copy of module dicts */
                PyModuleDef *md = PyModule_GetDef(m);
                if (md)
                    Py_CLEAR(md->m_base.m_copy);
            }
        }
        /* Setting modules_by_index to NULL could be dangerous, so we
           clear the list instead. */
        if (PyList_SetSlice(state->modules_by_index,
                            0, PyList_GET_SIZE(state->modules_by_index),
                            NULL))
            PyErr_WriteUnraisable(state->modules_by_index);
    }
}

void
PyThreadState_Clear(PyThreadState *tstate)
{
    if (Py_VerboseFlag && tstate->frame != NULL)
        fprintf(stderr,
          "PyThreadState_Clear: warning: thread still has a frame\n");

    Py_CLEAR(tstate->frame);

    Py_CLEAR(tstate->dict);
    Py_CLEAR(tstate->async_exc);

    Py_CLEAR(tstate->curexc_type);
    Py_CLEAR(tstate->curexc_value);
    Py_CLEAR(tstate->curexc_traceback);

    Py_CLEAR(tstate->exc_type);
    Py_CLEAR(tstate->exc_value);
    Py_CLEAR(tstate->exc_traceback);

    tstate->c_profilefunc = NULL;
    tstate->c_tracefunc = NULL;
    Py_CLEAR(tstate->c_profileobj);
    Py_CLEAR(tstate->c_traceobj);

    Py_CLEAR(tstate->coroutine_wrapper);
    Py_CLEAR(tstate->async_gen_firstiter);
    Py_CLEAR(tstate->async_gen_finalizer);
}


/* Common code for PyThreadState_Delete() and PyThreadState_DeleteCurrent() */
static void
tstate_delete_common(PyThreadState *tstate)
{
    PyInterpreterState *interp;
    if (tstate == NULL)
        Py_FatalError("PyThreadState_Delete: NULL tstate");
    interp = tstate->interp;
    if (interp == NULL)
        Py_FatalError("PyThreadState_Delete: NULL interp");
    HEAD_LOCK();
    if (tstate->prev)
        tstate->prev->next = tstate->next;
    else
        interp->tstate_head = tstate->next;
    if (tstate->next)
        tstate->next->prev = tstate->prev;
    HEAD_UNLOCK();
    if (tstate->on_delete != NULL) {
        tstate->on_delete(tstate->on_delete_data);
    }
    PyMem_RawFree(tstate);
}


void
PyThreadState_Delete(PyThreadState *tstate)
{
    if (tstate == GET_TSTATE())
        Py_FatalError("PyThreadState_Delete: tstate is still current");
    if (_PyRuntime.gilstate.autoInterpreterState &&
        PyThread_get_key_value(_PyRuntime.gilstate.autoTLSkey) == tstate)
    {
        PyThread_delete_key_value(_PyRuntime.gilstate.autoTLSkey);
    }
    tstate_delete_common(tstate);
}


void
PyThreadState_DeleteCurrent()
{
    PyThreadState *tstate = GET_TSTATE();
    if (tstate == NULL)
        Py_FatalError(
            "PyThreadState_DeleteCurrent: no current tstate");
    tstate_delete_common(tstate);
    if (_PyRuntime.gilstate.autoInterpreterState &&
        PyThread_get_key_value(_PyRuntime.gilstate.autoTLSkey) == tstate)
    {
        PyThread_delete_key_value(_PyRuntime.gilstate.autoTLSkey);
    }
    SET_TSTATE(NULL);
    PyEval_ReleaseLock();
}


/*
 * Delete all thread states except the one passed as argument.
 * Note that, if there is a current thread state, it *must* be the one
 * passed as argument.  Also, this won't touch any other interpreters
 * than the current one, since we don't know which thread state should
 * be kept in those other interpreteres.
 */
void
_PyThreadState_DeleteExcept(PyThreadState *tstate)
{
    PyInterpreterState *interp = tstate->interp;
    PyThreadState *p, *next, *garbage;
    HEAD_LOCK();
    /* Remove all thread states, except tstate, from the linked list of
       thread states.  This will allow calling PyThreadState_Clear()
       without holding the lock. */
    garbage = interp->tstate_head;
    if (garbage == tstate)
        garbage = tstate->next;
    if (tstate->prev)
        tstate->prev->next = tstate->next;
    if (tstate->next)
        tstate->next->prev = tstate->prev;
    tstate->prev = tstate->next = NULL;
    interp->tstate_head = tstate;
    HEAD_UNLOCK();
    /* Clear and deallocate all stale thread states.  Even if this
       executes Python code, we should be safe since it executes
       in the current thread, not one of the stale threads. */
    for (p = garbage; p; p = next) {
        next = p->next;
        PyThreadState_Clear(p);
        PyMem_RawFree(p);
    }
}


PyThreadState *
_PyThreadState_UncheckedGet(void)
{
    return GET_TSTATE();
}


PyThreadState *
PyThreadState_Get(void)
{
    PyThreadState *tstate = GET_TSTATE();
    if (tstate == NULL)
        Py_FatalError("PyThreadState_Get: no current thread");

    return tstate;
}


PyThreadState *
PyThreadState_Swap(PyThreadState *newts)
{
    PyThreadState *oldts = GET_TSTATE();

    SET_TSTATE(newts);
    /* It should not be possible for more than one thread state
       to be used for a thread.  Check this the best we can in debug
       builds.
    */
#if defined(Py_DEBUG)
    if (newts) {
        /* This can be called from PyEval_RestoreThread(). Similar
           to it, we need to ensure errno doesn't change.
        */
        int err = errno;
        PyThreadState *check = PyGILState_GetThisThreadState();
        if (check && check->interp == newts->interp && check != newts)
            Py_FatalError("Invalid thread state for this thread");
        errno = err;
    }
#endif
    return oldts;
}

/* An extension mechanism to store arbitrary additional per-thread state.
   PyThreadState_GetDict() returns a dictionary that can be used to hold such
   state; the caller should pick a unique key and store its state there.  If
   PyThreadState_GetDict() returns NULL, an exception has *not* been raised
   and the caller should assume no per-thread state is available. */

PyObject *
PyThreadState_GetDict(void)
{
    PyThreadState *tstate = GET_TSTATE();
    if (tstate == NULL)
        return NULL;

    if (tstate->dict == NULL) {
        PyObject *d;
        tstate->dict = d = PyDict_New();
        if (d == NULL)
            PyErr_Clear();
    }
    return tstate->dict;
}


/* Asynchronously raise an exception in a thread.
   Requested by Just van Rossum and Alex Martelli.
   To prevent naive misuse, you must write your own extension
   to call this, or use ctypes.  Must be called with the GIL held.
   Returns the number of tstates modified (normally 1, but 0 if `id` didn't
   match any known thread id).  Can be called with exc=NULL to clear an
   existing async exception.  This raises no exceptions. */

int
PyThreadState_SetAsyncExc(unsigned long id, PyObject *exc)
{
    PyInterpreterState *interp = GET_INTERP_STATE();
    PyThreadState *p;

    /* Although the GIL is held, a few C API functions can be called
     * without the GIL held, and in particular some that create and
     * destroy thread and interpreter states.  Those can mutate the
     * list of thread states we're traversing, so to prevent that we lock
     * head_mutex for the duration.
     */
    HEAD_LOCK();
    for (p = interp->tstate_head; p != NULL; p = p->next) {
        if (p->thread_id == id) {
            /* Tricky:  we need to decref the current value
             * (if any) in p->async_exc, but that can in turn
             * allow arbitrary Python code to run, including
             * perhaps calls to this function.  To prevent
             * deadlock, we need to release head_mutex before
             * the decref.
             */
            PyObject *old_exc = p->async_exc;
            Py_XINCREF(exc);
            p->async_exc = exc;
            HEAD_UNLOCK();
            Py_XDECREF(old_exc);
            _PyEval_SignalAsyncExc();
            return 1;
        }
    }
    HEAD_UNLOCK();
    return 0;
}


/* Routines for advanced debuggers, requested by David Beazley.
   Don't use unless you know what you are doing! */

PyInterpreterState *
PyInterpreterState_Head(void)
{
    return _PyRuntime.interpreters.head;
}

PyInterpreterState *
PyInterpreterState_Main(void)
{
    return _PyRuntime.interpreters.main;
}

PyInterpreterState *
PyInterpreterState_Next(PyInterpreterState *interp) {
    return interp->next;
}

PyThreadState *
PyInterpreterState_ThreadHead(PyInterpreterState *interp) {
    return interp->tstate_head;
}

PyThreadState *
PyThreadState_Next(PyThreadState *tstate) {
    return tstate->next;
}

/* The implementation of sys._current_frames().  This is intended to be
   called with the GIL held, as it will be when called via
   sys._current_frames().  It's possible it would work fine even without
   the GIL held, but haven't thought enough about that.
*/
PyObject *
_PyThread_CurrentFrames(void)
{
    PyObject *result;
    PyInterpreterState *i;

    result = PyDict_New();
    if (result == NULL)
        return NULL;

    /* for i in all interpreters:
     *     for t in all of i's thread states:
     *          if t's frame isn't NULL, map t's id to its frame
     * Because these lists can mutate even when the GIL is held, we
     * need to grab head_mutex for the duration.
     */
    HEAD_LOCK();
    for (i = _PyRuntime.interpreters.head; i != NULL; i = i->next) {
        PyThreadState *t;
        for (t = i->tstate_head; t != NULL; t = t->next) {
            PyObject *id;
            int stat;
            struct _frame *frame = t->frame;
            if (frame == NULL)
                continue;
            id = PyLong_FromUnsignedLong(t->thread_id);
            if (id == NULL)
                goto Fail;
            stat = PyDict_SetItem(result, id, (PyObject *)frame);
            Py_DECREF(id);
            if (stat < 0)
                goto Fail;
        }
    }
    HEAD_UNLOCK();
    return result;

 Fail:
    HEAD_UNLOCK();
    Py_DECREF(result);
    return NULL;
}

/* Python "auto thread state" API. */

/* Keep this as a static, as it is not reliable!  It can only
   ever be compared to the state for the *current* thread.
   * If not equal, then it doesn't matter that the actual
     value may change immediately after comparison, as it can't
     possibly change to the current thread's state.
   * If equal, then the current thread holds the lock, so the value can't
     change until we yield the lock.
*/
static int
PyThreadState_IsCurrent(PyThreadState *tstate)
{
    /* Must be the tstate for this thread */
    assert(PyGILState_GetThisThreadState()==tstate);
    return tstate == GET_TSTATE();
}

/* Internal initialization/finalization functions called by
   Py_Initialize/Py_FinalizeEx
*/
void
_PyGILState_Init(PyInterpreterState *i, PyThreadState *t)
{
    assert(i && t); /* must init with valid states */
    _PyRuntime.gilstate.autoTLSkey = PyThread_create_key();
    if (_PyRuntime.gilstate.autoTLSkey == -1)
        Py_FatalError("Could not allocate TLS entry");
    _PyRuntime.gilstate.autoInterpreterState = i;
    assert(PyThread_get_key_value(_PyRuntime.gilstate.autoTLSkey) == NULL);
    assert(t->gilstate_counter == 0);

    _PyGILState_NoteThreadState(t);
}

PyInterpreterState *
_PyGILState_GetInterpreterStateUnsafe(void)
{
    return _PyRuntime.gilstate.autoInterpreterState;
}

void
_PyGILState_Fini(void)
{
    PyThread_delete_key(_PyRuntime.gilstate.autoTLSkey);
    _PyRuntime.gilstate.autoTLSkey = -1;
    _PyRuntime.gilstate.autoInterpreterState = NULL;
}

/* Reset the TLS key - called by PyOS_AfterFork_Child().
 * This should not be necessary, but some - buggy - pthread implementations
 * don't reset TLS upon fork(), see issue #10517.
 */
void
_PyGILState_Reinit(void)
{
    _PyRuntime.interpreters.mutex = PyThread_allocate_lock();
    if (_PyRuntime.interpreters.mutex == NULL)
        Py_FatalError("Can't initialize threads for interpreter");
    PyThreadState *tstate = PyGILState_GetThisThreadState();
    PyThread_delete_key(_PyRuntime.gilstate.autoTLSkey);
    if ((_PyRuntime.gilstate.autoTLSkey = PyThread_create_key()) == -1)
        Py_FatalError("Could not allocate TLS entry");

    /* If the thread had an associated auto thread state, reassociate it with
     * the new key. */
    if (tstate && PyThread_set_key_value(_PyRuntime.gilstate.autoTLSkey,
                                         (void *)tstate) < 0)
        Py_FatalError("Couldn't create autoTLSkey mapping");
}

/* When a thread state is created for a thread by some mechanism other than
   PyGILState_Ensure, it's important that the GILState machinery knows about
   it so it doesn't try to create another thread state for the thread (this is
   a better fix for SF bug #1010677 than the first one attempted).
*/
static void
_PyGILState_NoteThreadState(PyThreadState* tstate)
{
    /* If autoTLSkey isn't initialized, this must be the very first
       threadstate created in Py_Initialize().  Don't do anything for now
       (we'll be back here when _PyGILState_Init is called). */
    if (!_PyRuntime.gilstate.autoInterpreterState)
        return;

    /* Stick the thread state for this thread in thread local storage.

       The only situation where you can legitimately have more than one
       thread state for an OS level thread is when there are multiple
       interpreters.

       You shouldn't really be using the PyGILState_ APIs anyway (see issues
       #10915 and #15751).

       The first thread state created for that given OS level thread will
       "win", which seems reasonable behaviour.
    */
    if (PyThread_get_key_value(_PyRuntime.gilstate.autoTLSkey) == NULL) {
        if ((PyThread_set_key_value(_PyRuntime.gilstate.autoTLSkey,
                                    (void *)tstate)
             ) < 0)
        {
            Py_FatalError("Couldn't create autoTLSkey mapping");
        }
    }

    /* PyGILState_Release must not try to delete this thread state. */
    tstate->gilstate_counter = 1;
}

/* The public functions */
PyThreadState *
PyGILState_GetThisThreadState(void)
{
    if (_PyRuntime.gilstate.autoInterpreterState == NULL)
        return NULL;
    return (PyThreadState *)PyThread_get_key_value(
                _PyRuntime.gilstate.autoTLSkey);
}

int
PyGILState_Check(void)
{
    PyThreadState *tstate;

    if (!_PyGILState_check_enabled)
        return 1;

    if (_PyRuntime.gilstate.autoTLSkey == -1)
        return 1;

    tstate = GET_TSTATE();
    if (tstate == NULL)
        return 0;

    return (tstate == PyGILState_GetThisThreadState());
}

PyGILState_STATE
PyGILState_Ensure(void)
{
    int current;
    PyThreadState *tcur;
    /* Note that we do not auto-init Python here - apart from
       potential races with 2 threads auto-initializing, pep-311
       spells out other issues.  Embedders are expected to have
       called Py_Initialize() and usually PyEval_InitThreads().
    */
    /* Py_Initialize() hasn't been called! */
    assert(_PyRuntime.gilstate.autoInterpreterState);
    tcur = (PyThreadState *)PyThread_get_key_value(
                _PyRuntime.gilstate.autoTLSkey);
    if (tcur == NULL) {
        /* At startup, Python has no concrete GIL. If PyGILState_Ensure() is
           called from a new thread for the first time, we need the create the
           GIL. */
        PyEval_InitThreads();

        /* Create a new thread state for this thread */
        tcur = PyThreadState_New(_PyRuntime.gilstate.autoInterpreterState);
        if (tcur == NULL)
            Py_FatalError("Couldn't create thread-state for new thread");
        /* This is our thread state!  We'll need to delete it in the
           matching call to PyGILState_Release(). */
        tcur->gilstate_counter = 0;
        current = 0; /* new thread state is never current */
    }
    else
        current = PyThreadState_IsCurrent(tcur);
    if (current == 0)
        PyEval_RestoreThread(tcur);
    /* Update our counter in the thread-state - no need for locks:
       - tcur will remain valid as we hold the GIL.
       - the counter is safe as we are the only thread "allowed"
         to modify this value
    */
    ++tcur->gilstate_counter;
    return current ? PyGILState_LOCKED : PyGILState_UNLOCKED;
}

void
PyGILState_Release(PyGILState_STATE oldstate)
{
    PyThreadState *tcur = (PyThreadState *)PyThread_get_key_value(
                                _PyRuntime.gilstate.autoTLSkey);
    if (tcur == NULL)
        Py_FatalError("auto-releasing thread-state, "
                      "but no thread-state for this thread");
    /* We must hold the GIL and have our thread state current */
    /* XXX - remove the check - the assert should be fine,
       but while this is very new (April 2003), the extra check
       by release-only users can't hurt.
    */
    if (! PyThreadState_IsCurrent(tcur))
        Py_FatalError("This thread state must be current when releasing");
    assert(PyThreadState_IsCurrent(tcur));
    --tcur->gilstate_counter;
    assert(tcur->gilstate_counter >= 0); /* illegal counter value */

    /* If we're going to destroy this thread-state, we must
     * clear it while the GIL is held, as destructors may run.
     */
    if (tcur->gilstate_counter == 0) {
        /* can't have been locked when we created it */
        assert(oldstate == PyGILState_UNLOCKED);
        PyThreadState_Clear(tcur);
        /* Delete the thread-state.  Note this releases the GIL too!
         * It's vital that the GIL be held here, to avoid shutdown
         * races; see bugs 225673 and 1061968 (that nasty bug has a
         * habit of coming back).
         */
        PyThreadState_DeleteCurrent();
    }
    /* Release the lock if necessary */
    else if (oldstate == PyGILState_UNLOCKED)
        PyEval_SaveThread();
}


#ifdef __cplusplus
}
#endif
return 0; } r = PyObject_IsTrue(tmp); Py_DECREF(tmp); if (r < 0) PyErr_Clear(); return r > 0; } static void flush_std_files(void) { PyObject *fout = PySys_GetObject("stdout"); PyObject *ferr = PySys_GetObject("stderr"); PyObject *tmp; if (fout != NULL && fout != Py_None && !file_is_closed(fout)) { tmp = PyObject_CallMethod(fout, "flush", ""); if (tmp == NULL) PyErr_WriteUnraisable(fout); else Py_DECREF(tmp); } if (ferr != NULL && ferr != Py_None && !file_is_closed(ferr)) { tmp = PyObject_CallMethod(ferr, "flush", ""); if (tmp == NULL) PyErr_Clear(); else Py_DECREF(tmp); } } /* Undo the effect of Py_Initialize(). Beware: if multiple interpreter and/or thread states exist, these are not wiped out; only the current thread and interpreter state are deleted. But since everything else is deleted, those other interpreter and thread states should no longer be used. (XXX We should do better, e.g. wipe out all interpreters and threads.) Locking: as above. */ void Py_Finalize(void) { PyInterpreterState *interp; PyThreadState *tstate; if (!initialized) return; wait_for_thread_shutdown(); /* The interpreter is still entirely intact at this point, and the * exit funcs may be relying on that. In particular, if some thread * or exit func is still waiting to do an import, the import machinery * expects Py_IsInitialized() to return true. So don't say the * interpreter is uninitialized until after the exit funcs have run. * Note that Threading.py uses an exit func to do a join on all the * threads created thru it, so this also protects pending imports in * the threads created via Threading. */ call_py_exitfuncs(); /* Get current thread state and interpreter pointer */ tstate = PyThreadState_GET(); interp = tstate->interp; /* Remaining threads (e.g. daemon threads) will automatically exit after taking the GIL (in PyEval_RestoreThread()). */ _Py_Finalizing = tstate; initialized = 0; /* Flush stdout+stderr */ flush_std_files(); /* Disable signal handling */ PyOS_FiniInterrupts(); /* Clear type lookup cache */ PyType_ClearCache(); /* Collect garbage. This may call finalizers; it's nice to call these * before all modules are destroyed. * XXX If a __del__ or weakref callback is triggered here, and tries to * XXX import a module, bad things can happen, because Python no * XXX longer believes it's initialized. * XXX Fatal Python error: Interpreter not initialized (version mismatch?) * XXX is easy to provoke that way. I've also seen, e.g., * XXX Exception exceptions.ImportError: 'No module named sha' * XXX in <function callback at 0x008F5718> ignored * XXX but I'm unclear on exactly how that one happens. In any case, * XXX I haven't seen a real-life report of either of these. */ PyGC_Collect(); #ifdef COUNT_ALLOCS /* With COUNT_ALLOCS, it helps to run GC multiple times: each collection might release some types from the type list, so they become garbage. */ while (PyGC_Collect() > 0) /* nothing */; #endif /* We run this while most interpreter state is still alive, so that debug information can be printed out */ _PyGC_Fini(); /* Destroy all modules */ PyImport_Cleanup(); /* Flush stdout+stderr (again, in case more was printed) */ flush_std_files(); /* Collect final garbage. This disposes of cycles created by * new-style class definitions, for example. * XXX This is disabled because it caused too many problems. If * XXX a __del__ or weakref callback triggers here, Python code has * XXX a hard time running, because even the sys module has been * XXX cleared out (sys.stdout is gone, sys.excepthook is gone, etc). * XXX One symptom is a sequence of information-free messages * XXX coming from threads (if a __del__ or callback is invoked, * XXX other threads can execute too, and any exception they encounter * XXX triggers a comedy of errors as subsystem after subsystem * XXX fails to find what it *expects* to find in sys to help report * XXX the exception and consequent unexpected failures). I've also * XXX seen segfaults then, after adding print statements to the * XXX Python code getting called. */ #if 0 PyGC_Collect(); #endif /* Destroy the database used by _PyImport_{Fixup,Find}Extension */ _PyImport_Fini(); /* Debugging stuff */ #ifdef COUNT_ALLOCS dump_counts(stdout); #endif PRINT_TOTAL_REFS(); #ifdef Py_TRACE_REFS /* Display all objects still alive -- this can invoke arbitrary * __repr__ overrides, so requires a mostly-intact interpreter. * Alas, a lot of stuff may still be alive now that will be cleaned * up later. */ if (Py_GETENV("PYTHONDUMPREFS")) _Py_PrintReferences(stderr); #endif /* Py_TRACE_REFS */ /* Clear interpreter state */ PyInterpreterState_Clear(interp); /* Now we decref the exception classes. After this point nothing can raise an exception. That's okay, because each Fini() method below has been checked to make sure no exceptions are ever raised. */ _PyExc_Fini(); /* Cleanup auto-thread-state */ #ifdef WITH_THREAD _PyGILState_Fini(); #endif /* WITH_THREAD */ /* Delete current thread */ PyThreadState_Swap(NULL); PyInterpreterState_Delete(interp); /* Sundry finalizers */ PyMethod_Fini(); PyFrame_Fini(); PyCFunction_Fini(); PyTuple_Fini(); PyList_Fini(); PySet_Fini(); PyBytes_Fini(); PyByteArray_Fini(); PyLong_Fini(); PyFloat_Fini(); PyDict_Fini(); /* Cleanup Unicode implementation */ _PyUnicode_Fini(); /* reset file system default encoding */ if (!Py_HasFileSystemDefaultEncoding && Py_FileSystemDefaultEncoding) { free((char*)Py_FileSystemDefaultEncoding); Py_FileSystemDefaultEncoding = NULL; } /* XXX Still allocated: - various static ad-hoc pointers to interned strings - int and float free list blocks - whatever various modules and libraries allocate */ PyGrammar_RemoveAccelerators(&_PyParser_Grammar); #ifdef Py_TRACE_REFS /* Display addresses (& refcnts) of all objects still alive. * An address can be used to find the repr of the object, printed * above by _Py_PrintReferences. */ if (Py_GETENV("PYTHONDUMPREFS")) _Py_PrintReferenceAddresses(stderr); #endif /* Py_TRACE_REFS */ #ifdef PYMALLOC_DEBUG if (Py_GETENV("PYTHONMALLOCSTATS")) _PyObject_DebugMallocStats(); #endif call_ll_exitfuncs(); } /* Create and initialize a new interpreter and thread, and return the new thread. This requires that Py_Initialize() has been called first. Unsuccessful initialization yields a NULL pointer. Note that *no* exception information is available even in this case -- the exception information is held in the thread, and there is no thread. Locking: as above. */ PyThreadState * Py_NewInterpreter(void) { PyInterpreterState *interp; PyThreadState *tstate, *save_tstate; PyObject *bimod, *sysmod; if (!initialized) Py_FatalError("Py_NewInterpreter: call Py_Initialize first"); interp = PyInterpreterState_New(); if (interp == NULL) return NULL; tstate = PyThreadState_New(interp); if (tstate == NULL) { PyInterpreterState_Delete(interp); return NULL; } save_tstate = PyThreadState_Swap(tstate); /* XXX The following is lax in error checking */ interp->modules = PyDict_New(); interp->modules_reloading = PyDict_New(); bimod = _PyImport_FindBuiltin("builtins"); if (bimod != NULL) { interp->builtins = PyModule_GetDict(bimod); if (interp->builtins == NULL) goto handle_error; Py_INCREF(interp->builtins); } /* initialize builtin exceptions */ _PyExc_Init(); sysmod = _PyImport_FindBuiltin("sys"); if (bimod != NULL && sysmod != NULL) { PyObject *pstderr; interp->sysdict = PyModule_GetDict(sysmod); if (interp->sysdict == NULL) goto handle_error; Py_INCREF(interp->sysdict); PySys_SetPath(Py_GetPath()); PyDict_SetItemString(interp->sysdict, "modules", interp->modules); /* Set up a preliminary stderr printer until we have enough infrastructure for the io module in place. */ pstderr = PyFile_NewStdPrinter(fileno(stderr)); if (pstderr == NULL) Py_FatalError("Py_Initialize: can't set preliminary stderr"); PySys_SetObject("stderr", pstderr); PySys_SetObject("__stderr__", pstderr); Py_DECREF(pstderr); _PyImportHooks_Init(); if (initfsencoding(interp) < 0) goto handle_error; if (initstdio() < 0) Py_FatalError( "Py_Initialize: can't initialize sys standard streams"); initmain(); if (!Py_NoSiteFlag) initsite(); } if (!PyErr_Occurred()) return tstate; handle_error: /* Oops, it didn't work. Undo it all. */ PyErr_PrintEx(0); PyThreadState_Clear(tstate); PyThreadState_Swap(save_tstate); PyThreadState_Delete(tstate); PyInterpreterState_Delete(interp); return NULL; } /* Delete an interpreter and its last thread. This requires that the given thread state is current, that the thread has no remaining frames, and that it is its interpreter's only remaining thread. It is a fatal error to violate these constraints. (Py_Finalize() doesn't have these constraints -- it zaps everything, regardless.) Locking: as above. */ void Py_EndInterpreter(PyThreadState *tstate) { PyInterpreterState *interp = tstate->interp; if (tstate != PyThreadState_GET()) Py_FatalError("Py_EndInterpreter: thread is not current"); if (tstate->frame != NULL) Py_FatalError("Py_EndInterpreter: thread still has a frame"); if (tstate != interp->tstate_head || tstate->next != NULL) Py_FatalError("Py_EndInterpreter: not the last thread"); PyImport_Cleanup(); PyInterpreterState_Clear(interp); PyThreadState_Swap(NULL); PyInterpreterState_Delete(interp); } #ifdef MS_WINDOWS static wchar_t *progname = L"python"; #else static wchar_t *progname = L"python3"; #endif void Py_SetProgramName(wchar_t *pn) { if (pn && *pn) progname = pn; } wchar_t * Py_GetProgramName(void) { return progname; } static wchar_t *default_home = NULL; static wchar_t env_home[PATH_MAX+1]; void Py_SetPythonHome(wchar_t *home) { default_home = home; } wchar_t * Py_GetPythonHome(void) { wchar_t *home = default_home; if (home == NULL && !Py_IgnoreEnvironmentFlag) { char* chome = Py_GETENV("PYTHONHOME"); if (chome) { size_t r = mbstowcs(env_home, chome, PATH_MAX+1); if (r != (size_t)-1 && r <= PATH_MAX) home = env_home; } } return home; } /* Create __main__ module */ static void initmain(void) { PyObject *m, *d; m = PyImport_AddModule("__main__"); if (m == NULL) Py_FatalError("can't create __main__ module"); d = PyModule_GetDict(m); if (PyDict_GetItemString(d, "__builtins__") == NULL) { PyObject *bimod = PyImport_ImportModule("builtins"); if (bimod == NULL || PyDict_SetItemString(d, "__builtins__", bimod) != 0) Py_FatalError("can't add __builtins__ to __main__"); Py_DECREF(bimod); } } static int initfsencoding(PyInterpreterState *interp) { PyObject *codec; #if defined(HAVE_LANGINFO_H) && defined(CODESET) char *codeset = NULL; if (Py_FileSystemDefaultEncoding == NULL) { /* On Unix, set the file system encoding according to the user's preference, if the CODESET names a well-known Python codec, and Py_FileSystemDefaultEncoding isn't initialized by other means. */ codeset = get_codeset(); if (codeset == NULL) Py_FatalError("Py_Initialize: Unable to get the locale encoding"); Py_FileSystemDefaultEncoding = codeset; Py_HasFileSystemDefaultEncoding = 0; interp->fscodec_initialized = 1; return 0; } #endif /* the encoding is mbcs, utf-8 or ascii */ codec = _PyCodec_Lookup(Py_FileSystemDefaultEncoding); if (!codec) { /* Such error can only occurs in critical situations: no more * memory, import a module of the standard library failed, * etc. */ return -1; } Py_DECREF(codec); interp->fscodec_initialized = 1; return 0; } /* Import the site module (not into __main__ though) */ static void initsite(void) { PyObject *m; m = PyImport_ImportModule("site"); if (m == NULL) { PyErr_Print(); Py_Finalize(); exit(1); } else { Py_DECREF(m); } } static PyObject* create_stdio(PyObject* io, int fd, int write_mode, char* name, char* encoding, char* errors) { PyObject *buf = NULL, *stream = NULL, *text = NULL, *raw = NULL, *res; const char* mode; const char* newline; PyObject *line_buffering; int buffering, isatty; /* stdin is always opened in buffered mode, first because it shouldn't make a difference in common use cases, second because TextIOWrapper depends on the presence of a read1() method which only exists on buffered streams. */ if (Py_UnbufferedStdioFlag && write_mode) buffering = 0; else buffering = -1; if (write_mode) mode = "wb"; else mode = "rb"; buf = PyObject_CallMethod(io, "open", "isiOOOi", fd, mode, buffering, Py_None, Py_None, Py_None, 0); if (buf == NULL) goto error; if (buffering) { raw = PyObject_GetAttrString(buf, "raw"); if (raw == NULL) goto error; } else { raw = buf; Py_INCREF(raw); } text = PyUnicode_FromString(name); if (text == NULL || PyObject_SetAttrString(raw, "name", text) < 0) goto error; res = PyObject_CallMethod(raw, "isatty", ""); if (res == NULL) goto error; isatty = PyObject_IsTrue(res); Py_DECREF(res); if (isatty == -1) goto error; if (isatty || Py_UnbufferedStdioFlag) line_buffering = Py_True; else line_buffering = Py_False; Py_CLEAR(raw); Py_CLEAR(text); #ifdef MS_WINDOWS /* sys.stdin: enable universal newline mode, translate "\r\n" and "\r" newlines to "\n". sys.stdout and sys.stderr: translate "\n" to "\r\n". */ newline = NULL; #else /* sys.stdin: split lines at "\n". sys.stdout and sys.stderr: don't translate newlines (use "\n"). */ newline = "\n"; #endif stream = PyObject_CallMethod(io, "TextIOWrapper", "OsssO", buf, encoding, errors, newline, line_buffering); Py_CLEAR(buf); if (stream == NULL) goto error; if (write_mode) mode = "w"; else mode = "r"; text = PyUnicode_FromString(mode); if (!text || PyObject_SetAttrString(stream, "mode", text) < 0) goto error; Py_CLEAR(text); return stream; error: Py_XDECREF(buf); Py_XDECREF(stream); Py_XDECREF(text); Py_XDECREF(raw); return NULL; } static int is_valid_fd(int fd) { int dummy_fd; if (fd < 0 || !_PyVerify_fd(fd)) return 0; dummy_fd = dup(fd); if (dummy_fd < 0) return 0; close(dummy_fd); return 1; } /* Initialize sys.stdin, stdout, stderr and builtins.open */ static int initstdio(void) { PyObject *iomod = NULL, *wrapper; PyObject *bimod = NULL; PyObject *m; PyObject *std = NULL; int status = 0, fd; PyObject * encoding_attr; char *encoding = NULL, *errors; /* Hack to avoid a nasty recursion issue when Python is invoked in verbose mode: pre-import the Latin-1 and UTF-8 codecs */ if ((m = PyImport_ImportModule("encodings.utf_8")) == NULL) { goto error; } Py_DECREF(m); if (!(m = PyImport_ImportModule("encodings.latin_1"))) { goto error; } Py_DECREF(m); if (!(bimod = PyImport_ImportModule("builtins"))) { goto error; } if (!(iomod = PyImport_ImportModule("io"))) { goto error; } if (!(wrapper = PyObject_GetAttrString(iomod, "OpenWrapper"))) { goto error; } /* Set builtins.open */ if (PyObject_SetAttrString(bimod, "open", wrapper) == -1) { Py_DECREF(wrapper); goto error; } Py_DECREF(wrapper); encoding = Py_GETENV("PYTHONIOENCODING"); errors = NULL; if (encoding) { encoding = strdup(encoding); errors = strchr(encoding, ':'); if (errors) { *errors = '\0'; errors++; } } /* Set sys.stdin */ fd = fileno(stdin); /* Under some conditions stdin, stdout and stderr may not be connected * and fileno() may point to an invalid file descriptor. For example * GUI apps don't have valid standard streams by default. */ if (!is_valid_fd(fd)) { std = Py_None; Py_INCREF(std); } else { std = create_stdio(iomod, fd, 0, "<stdin>", encoding, errors); if (std == NULL) goto error; } /* if (fd < 0) */ PySys_SetObject("__stdin__", std); PySys_SetObject("stdin", std); Py_DECREF(std); /* Set sys.stdout */ fd = fileno(stdout); if (!is_valid_fd(fd)) { std = Py_None; Py_INCREF(std); } else { std = create_stdio(iomod, fd, 1, "<stdout>", encoding, errors); if (std == NULL) goto error; } /* if (fd < 0) */ PySys_SetObject("__stdout__", std); PySys_SetObject("stdout", std); Py_DECREF(std); #if 1 /* Disable this if you have trouble debugging bootstrap stuff */ /* Set sys.stderr, replaces the preliminary stderr */ fd = fileno(stderr); if (!is_valid_fd(fd)) { std = Py_None; Py_INCREF(std); } else { std = create_stdio(iomod, fd, 1, "<stderr>", encoding, "backslashreplace"); if (std == NULL) goto error; } /* if (fd < 0) */ /* Same as hack above, pre-import stderr's codec to avoid recursion when import.c tries to write to stderr in verbose mode. */ encoding_attr = PyObject_GetAttrString(std, "encoding"); if (encoding_attr != NULL) { const char * encoding; encoding = _PyUnicode_AsString(encoding_attr); if (encoding != NULL) { PyObject *codec_info = _PyCodec_Lookup(encoding); Py_XDECREF(codec_info); } Py_DECREF(encoding_attr); } PyErr_Clear(); /* Not a fatal error if codec isn't available */ PySys_SetObject("__stderr__", std); PySys_SetObject("stderr", std); Py_DECREF(std); #endif if (0) { error: status = -1; } if (encoding) free(encoding); Py_XDECREF(bimod); Py_XDECREF(iomod); return status; } /* Parse input from a file and execute it */ int PyRun_AnyFileExFlags(FILE *fp, const char *filename, int closeit, PyCompilerFlags *flags) { if (filename == NULL) filename = "???"; if (Py_FdIsInteractive(fp, filename)) { int err = PyRun_InteractiveLoopFlags(fp, filename, flags); if (closeit) fclose(fp); return err; } else return PyRun_SimpleFileExFlags(fp, filename, closeit, flags); } int PyRun_InteractiveLoopFlags(FILE *fp, const char *filename, PyCompilerFlags *flags) { PyObject *v; int ret; PyCompilerFlags local_flags; if (flags == NULL) { flags = &local_flags; local_flags.cf_flags = 0; } v = PySys_GetObject("ps1"); if (v == NULL) { PySys_SetObject("ps1", v = PyUnicode_FromString(">>> ")); Py_XDECREF(v); } v = PySys_GetObject("ps2"); if (v == NULL) { PySys_SetObject("ps2", v = PyUnicode_FromString("... ")); Py_XDECREF(v); } for (;;) { ret = PyRun_InteractiveOneFlags(fp, filename, flags); PRINT_TOTAL_REFS(); if (ret == E_EOF) return 0; /* if (ret == E_NOMEM) return -1; */ } } /* compute parser flags based on compiler flags */ static int PARSER_FLAGS(PyCompilerFlags *flags) { int parser_flags = 0; if (!flags) return 0; if (flags->cf_flags & PyCF_DONT_IMPLY_DEDENT) parser_flags |= PyPARSE_DONT_IMPLY_DEDENT; if (flags->cf_flags & PyCF_IGNORE_COOKIE) parser_flags |= PyPARSE_IGNORE_COOKIE; if (flags->cf_flags & CO_FUTURE_BARRY_AS_BDFL) parser_flags |= PyPARSE_BARRY_AS_BDFL; return parser_flags; } #if 0 /* Keep an example of flags with future keyword support. */ #define PARSER_FLAGS(flags) \ ((flags) ? ((((flags)->cf_flags & PyCF_DONT_IMPLY_DEDENT) ? \ PyPARSE_DONT_IMPLY_DEDENT : 0) \ | ((flags)->cf_flags & CO_FUTURE_WITH_STATEMENT ? \ PyPARSE_WITH_IS_KEYWORD : 0)) : 0) #endif int PyRun_InteractiveOneFlags(FILE *fp, const char *filename, PyCompilerFlags *flags) { PyObject *m, *d, *v, *w, *oenc = NULL; mod_ty mod; PyArena *arena; char *ps1 = "", *ps2 = "", *enc = NULL; int errcode = 0; if (fp == stdin) { /* Fetch encoding from sys.stdin */ v = PySys_GetObject("stdin"); if (v == NULL || v == Py_None) return -1; oenc = PyObject_GetAttrString(v, "encoding"); if (!oenc) return -1; enc = _PyUnicode_AsString(oenc); if (enc == NULL) return -1; } v = PySys_GetObject("ps1"); if (v != NULL) { v = PyObject_Str(v); if (v == NULL) PyErr_Clear(); else if (PyUnicode_Check(v)) { ps1 = _PyUnicode_AsString(v); if (ps1 == NULL) { PyErr_Clear(); ps1 = ""; } } } w = PySys_GetObject("ps2"); if (w != NULL) { w = PyObject_Str(w); if (w == NULL) PyErr_Clear(); else if (PyUnicode_Check(w)) { ps2 = _PyUnicode_AsString(w); if (ps2 == NULL) { PyErr_Clear(); ps2 = ""; } } } arena = PyArena_New(); if (arena == NULL) { Py_XDECREF(v); Py_XDECREF(w); Py_XDECREF(oenc); return -1; } mod = PyParser_ASTFromFile(fp, filename, enc, Py_single_input, ps1, ps2, flags, &errcode, arena); Py_XDECREF(v); Py_XDECREF(w); Py_XDECREF(oenc); if (mod == NULL) { PyArena_Free(arena); if (errcode == E_EOF) { PyErr_Clear(); return E_EOF; } PyErr_Print(); return -1; } m = PyImport_AddModule("__main__"); if (m == NULL) { PyArena_Free(arena); return -1; } d = PyModule_GetDict(m); v = run_mod(mod, filename, d, d, flags, arena); PyArena_Free(arena); flush_io(); if (v == NULL) { PyErr_Print(); return -1; } Py_DECREF(v); return 0; } /* Check whether a file maybe a pyc file: Look at the extension, the file type, and, if we may close it, at the first few bytes. */ static int maybe_pyc_file(FILE *fp, const char* filename, const char* ext, int closeit) { if (strcmp(ext, ".pyc") == 0 || strcmp(ext, ".pyo") == 0) return 1; /* Only look into the file if we are allowed to close it, since it then should also be seekable. */ if (closeit) { /* Read only two bytes of the magic. If the file was opened in text mode, the bytes 3 and 4 of the magic (\r\n) might not be read as they are on disk. */ unsigned int halfmagic = PyImport_GetMagicNumber() & 0xFFFF; unsigned char buf[2]; /* Mess: In case of -x, the stream is NOT at its start now, and ungetc() was used to push back the first newline, which makes the current stream position formally undefined, and a x-platform nightmare. Unfortunately, we have no direct way to know whether -x was specified. So we use a terrible hack: if the current stream position is not 0, we assume -x was specified, and give up. Bug 132850 on SourceForge spells out the hopelessness of trying anything else (fseek and ftell don't work predictably x-platform for text-mode files). */ int ispyc = 0; if (ftell(fp) == 0) { if (fread(buf, 1, 2, fp) == 2 && ((unsigned int)buf[1]<<8 | buf[0]) == halfmagic) ispyc = 1; rewind(fp); } return ispyc; } return 0; } int PyRun_SimpleFileExFlags(FILE *fp, const char *filename, int closeit, PyCompilerFlags *flags) { PyObject *m, *d, *v; const char *ext; int set_file_name = 0, ret = -1; size_t len; m = PyImport_AddModule("__main__"); if (m == NULL) return -1; Py_INCREF(m); d = PyModule_GetDict(m); if (PyDict_GetItemString(d, "__file__") == NULL) { PyObject *f; f = PyUnicode_DecodeFSDefault(filename); if (f == NULL) goto done; if (PyDict_SetItemString(d, "__file__", f) < 0) { Py_DECREF(f); goto done; } if (PyDict_SetItemString(d, "__cached__", Py_None) < 0) { Py_DECREF(f); goto done; } set_file_name = 1; Py_DECREF(f); } len = strlen(filename); ext = filename + len - (len > 4 ? 4 : 0); if (maybe_pyc_file(fp, filename, ext, closeit)) { /* Try to run a pyc file. First, re-open in binary */ if (closeit) fclose(fp); if ((fp = fopen(filename, "rb")) == NULL) { fprintf(stderr, "python: Can't reopen .pyc file\n"); goto done; } /* Turn on optimization if a .pyo file is given */ if (strcmp(ext, ".pyo") == 0) Py_OptimizeFlag = 1; v = run_pyc_file(fp, filename, d, d, flags); } else { v = PyRun_FileExFlags(fp, filename, Py_file_input, d, d, closeit, flags); } flush_io(); if (v == NULL) { PyErr_Print(); goto done; } Py_DECREF(v); ret = 0; done: if (set_file_name && PyDict_DelItemString(d, "__file__")) PyErr_Clear(); Py_DECREF(m); return ret; } int PyRun_SimpleStringFlags(const char *command, PyCompilerFlags *flags) { PyObject *m, *d, *v; m = PyImport_AddModule("__main__"); if (m == NULL) return -1; d = PyModule_GetDict(m); v = PyRun_StringFlags(command, Py_file_input, d, d, flags); if (v == NULL) { PyErr_Print(); return -1; } Py_DECREF(v); return 0; } static int parse_syntax_error(PyObject *err, PyObject **message, const char **filename, int *lineno, int *offset, const char **text) { long hold; PyObject *v; /* old style errors */ if (PyTuple_Check(err)) return PyArg_ParseTuple(err, "O(ziiz)", message, filename, lineno, offset, text); *message = NULL; /* new style errors. `err' is an instance */ *message = PyObject_GetAttrString(err, "msg"); if (!*message) goto finally; v = PyObject_GetAttrString(err, "filename"); if (!v) goto finally; if (v == Py_None) { Py_DECREF(v); *filename = NULL; } else { *filename = _PyUnicode_AsString(v); Py_DECREF(v); if (!*filename) goto finally; } v = PyObject_GetAttrString(err, "lineno"); if (!v) goto finally; hold = PyLong_AsLong(v); Py_DECREF(v); if (hold < 0 && PyErr_Occurred()) goto finally; *lineno = (int)hold; v = PyObject_GetAttrString(err, "offset"); if (!v) goto finally; if (v == Py_None) { *offset = -1; Py_DECREF(v); } else { hold = PyLong_AsLong(v); Py_DECREF(v); if (hold < 0 && PyErr_Occurred()) goto finally; *offset = (int)hold; } v = PyObject_GetAttrString(err, "text"); if (!v) goto finally; if (v == Py_None) { Py_DECREF(v); *text = NULL; } else { *text = _PyUnicode_AsString(v); Py_DECREF(v); if (!*text) goto finally; } return 1; finally: Py_XDECREF(*message); return 0; } void PyErr_Print(void) { PyErr_PrintEx(1); } static void print_error_text(PyObject *f, int offset, const char *text) { char *nl; if (offset >= 0) { if (offset > 0 && offset == strlen(text) && text[offset - 1] == '\n') offset--; for (;;) { nl = strchr(text, '\n'); if (nl == NULL || nl-text >= offset) break; offset -= (int)(nl+1-text); text = nl+1; } while (*text == ' ' || *text == '\t') { text++; offset--; } } PyFile_WriteString(" ", f); PyFile_WriteString(text, f); if (*text == '\0' || text[strlen(text)-1] != '\n') PyFile_WriteString("\n", f); if (offset == -1) return; PyFile_WriteString(" ", f); while (--offset > 0) PyFile_WriteString(" ", f); PyFile_WriteString("^\n", f); } static void handle_system_exit(void) { PyObject *exception, *value, *tb; int exitcode = 0; if (Py_InspectFlag) /* Don't exit if -i flag was given. This flag is set to 0 * when entering interactive mode for inspecting. */ return; PyErr_Fetch(&exception, &value, &tb); fflush(stdout); if (value == NULL || value == Py_None) goto done; if (PyExceptionInstance_Check(value)) { /* The error code should be in the `code' attribute. */ PyObject *code = PyObject_GetAttrString(value, "code"); if (code) { Py_DECREF(value); value = code; if (value == Py_None) goto done; } /* If we failed to dig out the 'code' attribute, just let the else clause below print the error. */ } if (PyLong_Check(value)) exitcode = (int)PyLong_AsLong(value); else { PyObject *sys_stderr = PySys_GetObject("stderr"); if (sys_stderr != NULL && sys_stderr != Py_None) { PyFile_WriteObject(value, sys_stderr, Py_PRINT_RAW); } else { PyObject_Print(value, stderr, Py_PRINT_RAW); fflush(stderr); } PySys_WriteStderr("\n"); exitcode = 1; } done: /* Restore and clear the exception info, in order to properly decref * the exception, value, and traceback. If we just exit instead, * these leak, which confuses PYTHONDUMPREFS output, and may prevent * some finalizers from running. */ PyErr_Restore(exception, value, tb); PyErr_Clear(); Py_Exit(exitcode); /* NOTREACHED */ } void PyErr_PrintEx(int set_sys_last_vars) { PyObject *exception, *v, *tb, *hook; if (PyErr_ExceptionMatches(PyExc_SystemExit)) { handle_system_exit(); } PyErr_Fetch(&exception, &v, &tb); if (exception == NULL) return; PyErr_NormalizeException(&exception, &v, &tb); if (tb == NULL) { tb = Py_None; Py_INCREF(tb); } PyException_SetTraceback(v, tb); if (exception == NULL) return; /* Now we know v != NULL too */ if (set_sys_last_vars) { PySys_SetObject("last_type", exception); PySys_SetObject("last_value", v); PySys_SetObject("last_traceback", tb); } hook = PySys_GetObject("excepthook"); if (hook) { PyObject *args = PyTuple_Pack(3, exception, v, tb); PyObject *result = PyEval_CallObject(hook, args); if (result == NULL) { PyObject *exception2, *v2, *tb2; if (PyErr_ExceptionMatches(PyExc_SystemExit)) { handle_system_exit(); } PyErr_Fetch(&exception2, &v2, &tb2); PyErr_NormalizeException(&exception2, &v2, &tb2); /* It should not be possible for exception2 or v2 to be NULL. However PyErr_Display() can't tolerate NULLs, so just be safe. */ if (exception2 == NULL) { exception2 = Py_None; Py_INCREF(exception2); } if (v2 == NULL) { v2 = Py_None; Py_INCREF(v2); } fflush(stdout); PySys_WriteStderr("Error in sys.excepthook:\n"); PyErr_Display(exception2, v2, tb2); PySys_WriteStderr("\nOriginal exception was:\n"); PyErr_Display(exception, v, tb); Py_DECREF(exception2); Py_DECREF(v2); Py_XDECREF(tb2); } Py_XDECREF(result); Py_XDECREF(args); } else { PySys_WriteStderr("sys.excepthook is missing\n"); PyErr_Display(exception, v, tb); } Py_XDECREF(exception); Py_XDECREF(v); Py_XDECREF(tb); } static void print_exception(PyObject *f, PyObject *value) { int err = 0; PyObject *type, *tb; if (!PyExceptionInstance_Check(value)) { PyFile_WriteString("TypeError: print_exception(): Exception expected for value, ", f); PyFile_WriteString(Py_TYPE(value)->tp_name, f); PyFile_WriteString(" found\n", f); return; } Py_INCREF(value); fflush(stdout); type = (PyObject *) Py_TYPE(value); tb = PyException_GetTraceback(value); if (tb && tb != Py_None) err = PyTraceBack_Print(tb, f); if (err == 0 && PyObject_HasAttrString(value, "print_file_and_line")) { PyObject *message; const char *filename, *text; int lineno, offset; if (!parse_syntax_error(value, &message, &filename, &lineno, &offset, &text)) PyErr_Clear(); else { char buf[10]; PyFile_WriteString(" File \"", f); if (filename == NULL) PyFile_WriteString("<string>", f); else PyFile_WriteString(filename, f); PyFile_WriteString("\", line ", f); PyOS_snprintf(buf, sizeof(buf), "%d", lineno); PyFile_WriteString(buf, f); PyFile_WriteString("\n", f); if (text != NULL) print_error_text(f, offset, text); Py_DECREF(value); value = message; /* Can't be bothered to check all those PyFile_WriteString() calls */ if (PyErr_Occurred()) err = -1; } } if (err) { /* Don't do anything else */ } else { PyObject* moduleName; char* className; assert(PyExceptionClass_Check(type)); className = PyExceptionClass_Name(type); if (className != NULL) { char *dot = strrchr(className, '.'); if (dot != NULL) className = dot+1; } moduleName = PyObject_GetAttrString(type, "__module__"); if (moduleName == NULL || !PyUnicode_Check(moduleName)) { Py_DECREF(moduleName); err = PyFile_WriteString("<unknown>", f); } else { char* modstr = _PyUnicode_AsString(moduleName); if (modstr && strcmp(modstr, "builtins")) { err = PyFile_WriteString(modstr, f); err += PyFile_WriteString(".", f); } Py_DECREF(moduleName); } if (err == 0) { if (className == NULL) err = PyFile_WriteString("<unknown>", f); else err = PyFile_WriteString(className, f); } } if (err == 0 && (value != Py_None)) { PyObject *s = PyObject_Str(value); /* only print colon if the str() of the object is not the empty string */ if (s == NULL) err = -1; else if (!PyUnicode_Check(s) || PyUnicode_GetSize(s) != 0) err = PyFile_WriteString(": ", f); if (err == 0) err = PyFile_WriteObject(s, f, Py_PRINT_RAW); Py_XDECREF(s); } /* try to write a newline in any case */ err += PyFile_WriteString("\n", f); Py_XDECREF(tb); Py_DECREF(value); /* If an error happened here, don't show it. XXX This is wrong, but too many callers rely on this behavior. */ if (err != 0) PyErr_Clear(); } static const char *cause_message = "\nThe above exception was the direct cause " "of the following exception:\n\n"; static const char *context_message = "\nDuring handling of the above exception, " "another exception occurred:\n\n"; static void print_exception_recursive(PyObject *f, PyObject *value, PyObject *seen) { int err = 0, res; PyObject *cause, *context; if (seen != NULL) { /* Exception chaining */ if (PySet_Add(seen, value) == -1) PyErr_Clear(); else if (PyExceptionInstance_Check(value)) { cause = PyException_GetCause(value); context = PyException_GetContext(value); if (cause) { res = PySet_Contains(seen, cause); if (res == -1) PyErr_Clear(); if (res == 0) { print_exception_recursive( f, cause, seen); err |= PyFile_WriteString( cause_message, f); } } else if (context) { res = PySet_Contains(seen, context); if (res == -1) PyErr_Clear(); if (res == 0) { print_exception_recursive( f, context, seen); err |= PyFile_WriteString( context_message, f); } } Py_XDECREF(context); Py_XDECREF(cause); } } print_exception(f, value); if (err != 0) PyErr_Clear(); } void PyErr_Display(PyObject *exception, PyObject *value, PyObject *tb) { PyObject *seen; PyObject *f = PySys_GetObject("stderr"); if (f == Py_None) { /* pass */ } else if (f == NULL) { _PyObject_Dump(value); fprintf(stderr, "lost sys.stderr\n"); } else { /* We choose to ignore seen being possibly NULL, and report at least the main exception (it could be a MemoryError). */ seen = PySet_New(NULL); if (seen == NULL) PyErr_Clear(); print_exception_recursive(f, value, seen); Py_XDECREF(seen); } } PyObject * PyRun_StringFlags(const char *str, int start, PyObject *globals, PyObject *locals, PyCompilerFlags *flags) { PyObject *ret = NULL; mod_ty mod; PyArena *arena = PyArena_New(); if (arena == NULL) return NULL; mod = PyParser_ASTFromString(str, "<string>", start, flags, arena); if (mod != NULL) ret = run_mod(mod, "<string>", globals, locals, flags, arena); PyArena_Free(arena); return ret; } PyObject * PyRun_FileExFlags(FILE *fp, const char *filename, int start, PyObject *globals, PyObject *locals, int closeit, PyCompilerFlags *flags) { PyObject *ret; mod_ty mod; PyArena *arena = PyArena_New(); if (arena == NULL) return NULL; mod = PyParser_ASTFromFile(fp, filename, NULL, start, 0, 0, flags, NULL, arena); if (closeit) fclose(fp); if (mod == NULL) { PyArena_Free(arena); return NULL; } ret = run_mod(mod, filename, globals, locals, flags, arena); PyArena_Free(arena); return ret; } static void flush_io(void) { PyObject *f, *r; PyObject *type, *value, *traceback; /* Save the current exception */ PyErr_Fetch(&type, &value, &traceback); f = PySys_GetObject("stderr"); if (f != NULL) { r = PyObject_CallMethod(f, "flush", ""); if (r) Py_DECREF(r); else PyErr_Clear(); } f = PySys_GetObject("stdout"); if (f != NULL) { r = PyObject_CallMethod(f, "flush", ""); if (r) Py_DECREF(r); else PyErr_Clear(); } PyErr_Restore(type, value, traceback); } static PyObject * run_mod(mod_ty mod, const char *filename, PyObject *globals, PyObject *locals, PyCompilerFlags *flags, PyArena *arena) { PyCodeObject *co; PyObject *v; co = PyAST_Compile(mod, filename, flags, arena); if (co == NULL) return NULL; v = PyEval_EvalCode((PyObject*)co, globals, locals); Py_DECREF(co); return v; } static PyObject * run_pyc_file(FILE *fp, const char *filename, PyObject *globals, PyObject *locals, PyCompilerFlags *flags) { PyCodeObject *co; PyObject *v; long magic; long PyImport_GetMagicNumber(void); magic = PyMarshal_ReadLongFromFile(fp); if (magic != PyImport_GetMagicNumber()) { PyErr_SetString(PyExc_RuntimeError, "Bad magic number in .pyc file"); return NULL; } (void) PyMarshal_ReadLongFromFile(fp); v = PyMarshal_ReadLastObjectFromFile(fp); fclose(fp); if (v == NULL || !PyCode_Check(v)) { Py_XDECREF(v); PyErr_SetString(PyExc_RuntimeError, "Bad code object in .pyc file"); return NULL; } co = (PyCodeObject *)v; v = PyEval_EvalCode((PyObject*)co, globals, locals); if (v && flags) flags->cf_flags |= (co->co_flags & PyCF_MASK); Py_DECREF(co); return v; } PyObject * Py_CompileStringExFlags(const char *str, const char *filename, int start, PyCompilerFlags *flags, int optimize) { PyCodeObject *co; mod_ty mod; PyArena *arena = PyArena_New(); if (arena == NULL) return NULL; mod = PyParser_ASTFromString(str, filename, start, flags, arena); if (mod == NULL) { PyArena_Free(arena); return NULL; } if (flags && (flags->cf_flags & PyCF_ONLY_AST)) { PyObject *result = PyAST_mod2obj(mod); PyArena_Free(arena); return result; } co = PyAST_CompileEx(mod, filename, flags, optimize, arena); PyArena_Free(arena); return (PyObject *)co; } /* For use in Py_LIMITED_API */ #undef Py_CompileString PyObject * PyCompileString(const char *str, const char *filename, int start) { return Py_CompileStringFlags(str, filename, start, NULL); } struct symtable * Py_SymtableString(const char *str, const char *filename, int start) { struct symtable *st; mod_ty mod; PyCompilerFlags flags; PyArena *arena = PyArena_New(); if (arena == NULL) return NULL; flags.cf_flags = 0; mod = PyParser_ASTFromString(str, filename, start, &flags, arena); if (mod == NULL) { PyArena_Free(arena); return NULL; } st = PySymtable_Build(mod, filename, 0); PyArena_Free(arena); return st; } /* Preferred access to parser is through AST. */ mod_ty PyParser_ASTFromString(const char *s, const char *filename, int start, PyCompilerFlags *flags, PyArena *arena) { mod_ty mod; PyCompilerFlags localflags; perrdetail err; int iflags = PARSER_FLAGS(flags); node *n = PyParser_ParseStringFlagsFilenameEx(s, filename, &_PyParser_Grammar, start, &err, &iflags); if (flags == NULL) { localflags.cf_flags = 0; flags = &localflags; } if (n) { flags->cf_flags |= iflags & PyCF_MASK; mod = PyAST_FromNode(n, flags, filename, arena); PyNode_Free(n); return mod; } else { err_input(&err); return NULL; } } mod_ty PyParser_ASTFromFile(FILE *fp, const char *filename, const char* enc, int start, char *ps1, char *ps2, PyCompilerFlags *flags, int *errcode, PyArena *arena) { mod_ty mod; PyCompilerFlags localflags; perrdetail err; int iflags = PARSER_FLAGS(flags); node *n = PyParser_ParseFileFlagsEx(fp, filename, enc, &_PyParser_Grammar, start, ps1, ps2, &err, &iflags); if (flags == NULL) { localflags.cf_flags = 0; flags = &localflags; } if (n) { flags->cf_flags |= iflags & PyCF_MASK; mod = PyAST_FromNode(n, flags, filename, arena); PyNode_Free(n); return mod; } else { err_input(&err); if (errcode) *errcode = err.error; return NULL; } } /* Simplified interface to parsefile -- return node or set exception */ node * PyParser_SimpleParseFileFlags(FILE *fp, const char *filename, int start, int flags) { perrdetail err; node *n = PyParser_ParseFileFlags(fp, filename, NULL, &_PyParser_Grammar, start, NULL, NULL, &err, flags); if (n == NULL) err_input(&err); return n; } /* Simplified interface to parsestring -- return node or set exception */ node * PyParser_SimpleParseStringFlags(const char *str, int start, int flags) { perrdetail err; node *n = PyParser_ParseStringFlags(str, &_PyParser_Grammar, start, &err, flags); if (n == NULL) err_input(&err); return n; } node * PyParser_SimpleParseStringFlagsFilename(const char *str, const char *filename, int start, int flags) { perrdetail err; node *n = PyParser_ParseStringFlagsFilename(str, filename, &_PyParser_Grammar, start, &err, flags); if (n == NULL) err_input(&err); return n; } node * PyParser_SimpleParseStringFilename(const char *str, const char *filename, int start) { return PyParser_SimpleParseStringFlagsFilename(str, filename, start, 0); } /* May want to move a more generalized form of this to parsetok.c or even parser modules. */ void PyParser_SetError(perrdetail *err) { err_input(err); } /* Set the error appropriate to the given input error code (see errcode.h) */ static void err_input(perrdetail *err) { PyObject *v, *w, *errtype, *errtext; PyObject *msg_obj = NULL; PyObject *filename; char *msg = NULL; errtype = PyExc_SyntaxError; switch (err->error) { case E_ERROR: return; case E_SYNTAX: errtype = PyExc_IndentationError; if (err->expected == INDENT) msg = "expected an indented block"; else if (err->token == INDENT) msg = "unexpected indent"; else if (err->token == DEDENT) msg = "unexpected unindent"; else { errtype = PyExc_SyntaxError; msg = "invalid syntax"; } break; case E_TOKEN: msg = "invalid token"; break; case E_EOFS: msg = "EOF while scanning triple-quoted string literal"; break; case E_EOLS: msg = "EOL while scanning string literal"; break; case E_INTR: if (!PyErr_Occurred()) PyErr_SetNone(PyExc_KeyboardInterrupt); goto cleanup; case E_NOMEM: PyErr_NoMemory(); goto cleanup; case E_EOF: msg = "unexpected EOF while parsing"; break; case E_TABSPACE: errtype = PyExc_TabError; msg = "inconsistent use of tabs and spaces in indentation"; break; case E_OVERFLOW: msg = "expression too long"; break; case E_DEDENT: errtype = PyExc_IndentationError; msg = "unindent does not match any outer indentation level"; break; case E_TOODEEP: errtype = PyExc_IndentationError; msg = "too many levels of indentation"; break; case E_DECODE: { PyObject *type, *value, *tb; PyErr_Fetch(&type, &value, &tb); msg = "unknown decode error"; if (value != NULL) msg_obj = PyObject_Str(value); Py_XDECREF(type); Py_XDECREF(value); Py_XDECREF(tb); break; } case E_LINECONT: msg = "unexpected character after line continuation character"; break; case E_IDENTIFIER: msg = "invalid character in identifier"; break; default: fprintf(stderr, "error=%d\n", err->error); msg = "unknown parsing error"; break; } /* err->text may not be UTF-8 in case of decoding errors. Explicitly convert to an object. */ if (!err->text) { errtext = Py_None; Py_INCREF(Py_None); } else { errtext = PyUnicode_DecodeUTF8(err->text, strlen(err->text), "replace"); } if (err->filename != NULL) filename = PyUnicode_DecodeFSDefault(err->filename); else { Py_INCREF(Py_None); filename = Py_None; } if (filename != NULL) v = Py_BuildValue("(NiiN)", filename, err->lineno, err->offset, errtext); else v = NULL; if (v != NULL) { if (msg_obj) w = Py_BuildValue("(OO)", msg_obj, v); else w = Py_BuildValue("(sO)", msg, v); } else w = NULL; Py_XDECREF(v); PyErr_SetObject(errtype, w); Py_XDECREF(w); cleanup: Py_XDECREF(msg_obj); if (err->text != NULL) { PyObject_FREE(err->text); err->text = NULL; } } /* Print fatal error message and abort */ void Py_FatalError(const char *msg) { fprintf(stderr, "Fatal Python error: %s\n", msg); fflush(stderr); /* it helps in Windows debug build */ if (PyErr_Occurred()) { PyErr_PrintEx(0); } #ifdef MS_WINDOWS { size_t len = strlen(msg); WCHAR* buffer; size_t i; /* Convert the message to wchar_t. This uses a simple one-to-one conversion, assuming that the this error message actually uses ASCII only. If this ceases to be true, we will have to convert. */ buffer = alloca( (len+1) * (sizeof *buffer)); for( i=0; i<=len; ++i) buffer[i] = msg[i]; OutputDebugStringW(L"Fatal Python error: "); OutputDebugStringW(buffer); OutputDebugStringW(L"\n"); } #ifdef _DEBUG DebugBreak(); #endif #endif /* MS_WINDOWS */ abort(); } /* Clean up and exit */ #ifdef WITH_THREAD #include "pythread.h" #endif static void (*pyexitfunc)(void) = NULL; /* For the atexit module. */ void _Py_PyAtExit(void (*func)(void)) { pyexitfunc = func; } static void call_py_exitfuncs(void) { if (pyexitfunc == NULL) return; (*pyexitfunc)(); PyErr_Clear(); } /* Wait until threading._shutdown completes, provided the threading module was imported in the first place. The shutdown routine will wait until all non-daemon "threading" threads have completed. */ static void wait_for_thread_shutdown(void) { #ifdef WITH_THREAD PyObject *result; PyThreadState *tstate = PyThreadState_GET(); PyObject *threading = PyMapping_GetItemString(tstate->interp->modules, "threading"); if (threading == NULL) { /* threading not imported */ PyErr_Clear(); return; } result = PyObject_CallMethod(threading, "_shutdown", ""); if (result == NULL) { PyErr_WriteUnraisable(threading); } else { Py_DECREF(result); } Py_DECREF(threading); #endif } #define NEXITFUNCS 32 static void (*exitfuncs[NEXITFUNCS])(void); static int nexitfuncs = 0; int Py_AtExit(void (*func)(void)) { if (nexitfuncs >= NEXITFUNCS) return -1; exitfuncs[nexitfuncs++] = func; return 0; } static void call_ll_exitfuncs(void) { while (nexitfuncs > 0) (*exitfuncs[--nexitfuncs])(); fflush(stdout); fflush(stderr); } void Py_Exit(int sts) { Py_Finalize(); exit(sts); } static void initsigs(void) { #ifdef SIGPIPE PyOS_setsig(SIGPIPE, SIG_IGN); #endif #ifdef SIGXFZ PyOS_setsig(SIGXFZ, SIG_IGN); #endif #ifdef SIGXFSZ PyOS_setsig(SIGXFSZ, SIG_IGN); #endif PyOS_InitInterrupts(); /* May imply initsignal() */ } /* Restore signals that the interpreter has called SIG_IGN on to SIG_DFL. * * All of the code in this function must only use async-signal-safe functions, * listed at `man 7 signal` or * http://www.opengroup.org/onlinepubs/009695399/functions/xsh_chap02_04.html. */ void _Py_RestoreSignals(void) { #ifdef SIGPIPE PyOS_setsig(SIGPIPE, SIG_DFL); #endif #ifdef SIGXFZ PyOS_setsig(SIGXFZ, SIG_DFL); #endif #ifdef SIGXFSZ PyOS_setsig(SIGXFSZ, SIG_DFL); #endif } /* * The file descriptor fd is considered ``interactive'' if either * a) isatty(fd) is TRUE, or * b) the -i flag was given, and the filename associated with * the descriptor is NULL or "<stdin>" or "???". */ int Py_FdIsInteractive(FILE *fp, const char *filename) { if (isatty((int)fileno(fp))) return 1; if (!Py_InteractiveFlag) return 0; return (filename == NULL) || (strcmp(filename, "<stdin>") == 0) || (strcmp(filename, "???") == 0); } #if defined(USE_STACKCHECK) #if defined(WIN32) && defined(_MSC_VER) /* Stack checking for Microsoft C */ #include <malloc.h> #include <excpt.h> /* * Return non-zero when we run out of memory on the stack; zero otherwise. */ int PyOS_CheckStack(void) { __try { /* alloca throws a stack overflow exception if there's not enough space left on the stack */ alloca(PYOS_STACK_MARGIN * sizeof(void*)); return 0; } __except (GetExceptionCode() == STATUS_STACK_OVERFLOW ? EXCEPTION_EXECUTE_HANDLER : EXCEPTION_CONTINUE_SEARCH) { int errcode = _resetstkoflw(); if (errcode == 0) { Py_FatalError("Could not reset the stack!"); } } return 1; } #endif /* WIN32 && _MSC_VER */ /* Alternate implementations can be added here... */ #endif /* USE_STACKCHECK */ /* Wrappers around sigaction() or signal(). */ PyOS_sighandler_t PyOS_getsig(int sig) { #ifdef HAVE_SIGACTION struct sigaction context; if (sigaction(sig, NULL, &context) == -1) return SIG_ERR; return context.sa_handler; #else PyOS_sighandler_t handler; /* Special signal handling for the secure CRT in Visual Studio 2005 */ #if defined(_MSC_VER) && _MSC_VER >= 1400 switch (sig) { /* Only these signals are valid */ case SIGINT: case SIGILL: case SIGFPE: case SIGSEGV: case SIGTERM: case SIGBREAK: case SIGABRT: break; /* Don't call signal() with other values or it will assert */ default: return SIG_ERR; } #endif /* _MSC_VER && _MSC_VER >= 1400 */ handler = signal(sig, SIG_IGN); if (handler != SIG_ERR) signal(sig, handler); return handler; #endif } /* * All of the code in this function must only use async-signal-safe functions, * listed at `man 7 signal` or * http://www.opengroup.org/onlinepubs/009695399/functions/xsh_chap02_04.html. */ PyOS_sighandler_t PyOS_setsig(int sig, PyOS_sighandler_t handler) { #ifdef HAVE_SIGACTION /* Some code in Modules/signalmodule.c depends on sigaction() being * used here if HAVE_SIGACTION is defined. Fix that if this code * changes to invalidate that assumption. */ struct sigaction context, ocontext; context.sa_handler = handler; sigemptyset(&context.sa_mask); context.sa_flags = 0; if (sigaction(sig, &context, &ocontext) == -1) return SIG_ERR; return ocontext.sa_handler; #else PyOS_sighandler_t oldhandler; oldhandler = signal(sig, handler); #ifdef HAVE_SIGINTERRUPT siginterrupt(sig, 1); #endif return oldhandler; #endif } /* Deprecated C API functions still provided for binary compatiblity */ #undef PyParser_SimpleParseFile PyAPI_FUNC(node *) PyParser_SimpleParseFile(FILE *fp, const char *filename, int start) { return PyParser_SimpleParseFileFlags(fp, filename, start, 0); } #undef PyParser_SimpleParseString PyAPI_FUNC(node *) PyParser_SimpleParseString(const char *str, int start) { return PyParser_SimpleParseStringFlags(str, start, 0); } #undef PyRun_AnyFile PyAPI_FUNC(int) PyRun_AnyFile(FILE *fp, const char *name) { return PyRun_AnyFileExFlags(fp, name, 0, NULL); } #undef PyRun_AnyFileEx PyAPI_FUNC(int) PyRun_AnyFileEx(FILE *fp, const char *name, int closeit) { return PyRun_AnyFileExFlags(fp, name, closeit, NULL); } #undef PyRun_AnyFileFlags PyAPI_FUNC(int) PyRun_AnyFileFlags(FILE *fp, const char *name, PyCompilerFlags *flags) { return PyRun_AnyFileExFlags(fp, name, 0, flags); } #undef PyRun_File PyAPI_FUNC(PyObject *) PyRun_File(FILE *fp, const char *p, int s, PyObject *g, PyObject *l) { return PyRun_FileExFlags(fp, p, s, g, l, 0, NULL); } #undef PyRun_FileEx PyAPI_FUNC(PyObject *) PyRun_FileEx(FILE *fp, const char *p, int s, PyObject *g, PyObject *l, int c) { return PyRun_FileExFlags(fp, p, s, g, l, c, NULL); } #undef PyRun_FileFlags PyAPI_FUNC(PyObject *) PyRun_FileFlags(FILE *fp, const char *p, int s, PyObject *g, PyObject *l, PyCompilerFlags *flags) { return PyRun_FileExFlags(fp, p, s, g, l, 0, flags); } #undef PyRun_SimpleFile PyAPI_FUNC(int) PyRun_SimpleFile(FILE *f, const char *p) { return PyRun_SimpleFileExFlags(f, p, 0, NULL); } #undef PyRun_SimpleFileEx PyAPI_FUNC(int) PyRun_SimpleFileEx(FILE *f, const char *p, int c) { return PyRun_SimpleFileExFlags(f, p, c, NULL); } #undef PyRun_String PyAPI_FUNC(PyObject *) PyRun_String(const char *str, int s, PyObject *g, PyObject *l) { return PyRun_StringFlags(str, s, g, l, NULL); } #undef PyRun_SimpleString PyAPI_FUNC(int) PyRun_SimpleString(const char *s) { return PyRun_SimpleStringFlags(s, NULL); } #undef Py_CompileString PyAPI_FUNC(PyObject *) Py_CompileString(const char *str, const char *p, int s) { return Py_CompileStringExFlags(str, p, s, NULL, -1); } #undef Py_CompileStringFlags PyAPI_FUNC(PyObject *) Py_CompileStringFlags(const char *str, const char *p, int s, PyCompilerFlags *flags) { return Py_CompileStringExFlags(str, p, s, flags, -1); } #undef PyRun_InteractiveOne PyAPI_FUNC(int) PyRun_InteractiveOne(FILE *f, const char *p) { return PyRun_InteractiveOneFlags(f, p, NULL); } #undef PyRun_InteractiveLoop PyAPI_FUNC(int) PyRun_InteractiveLoop(FILE *f, const char *p) { return PyRun_InteractiveLoopFlags(f, p, NULL); } #ifdef __cplusplus } #endif