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

#include "Python.h"

/* --------------------------------------------------------------------------
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
#ifndef RTLD_LAZY
#define RTLD_LAZY 1
#endif
#endif

#ifdef __cplusplus
extern "C" {
#endif

#ifdef WITH_THREAD
#include "pythread.h"
static PyThread_type_lock head_mutex = NULL; /* Protects interp->tstate_head */
#define HEAD_INIT() (void)(head_mutex || (head_mutex = PyThread_allocate_lock()))
#define HEAD_LOCK() PyThread_acquire_lock(head_mutex, WAIT_LOCK)
#define HEAD_UNLOCK() PyThread_release_lock(head_mutex)

/* The single PyInterpreterState used by this process'
   GILState implementation
*/
static PyInterpreterState *autoInterpreterState = NULL;
static int autoTLSkey = 0;
#else
#define HEAD_INIT() /* Nothing */
#define HEAD_LOCK() /* Nothing */
#define HEAD_UNLOCK() /* Nothing */
#endif

static PyInterpreterState *interp_head = NULL;

/* Assuming the current thread holds the GIL, this is the
   PyThreadState for the current thread. */
_Py_atomic_address _PyThreadState_Current = {NULL};
PyThreadFrameGetter _PyThreadState_GetFrame = NULL;

#ifdef WITH_THREAD
static void _PyGILState_NoteThreadState(PyThreadState* tstate);
#endif


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

    if (interp != NULL) {
        HEAD_INIT();
#ifdef WITH_THREAD
        if (head_mutex == NULL)
            Py_FatalError("Can't initialize threads for interpreter");
#endif
        interp->modules = NULL;
        interp->modules_by_index = NULL;
        interp->sysdict = NULL;
        interp->builtins = NULL;
        interp->builtins_copy = NULL;
        interp->tstate_head = NULL;
        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;
#ifdef HAVE_DLOPEN
#ifdef RTLD_NOW
        interp->dlopenflags = RTLD_NOW;
#else
        interp->dlopenflags = RTLD_LAZY;
#endif
#endif
#ifdef WITH_TSC
        interp->tscdump = 0;
#endif

        HEAD_LOCK();
        interp->next = interp_head;
        interp_head = interp;
        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);
}


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 = &interp_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;
    HEAD_UNLOCK();
    PyMem_RawFree(interp);
#ifdef WITH_THREAD
    if (interp_head == NULL && head_mutex != NULL) {
        PyThread_free_lock(head_mutex);
        head_mutex = NULL;
    }
#endif
}


/* 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;
#ifdef WITH_THREAD
        tstate->thread_id = PyThread_get_thread_ident();
#else
        tstate->thread_id = 0;
#endif

        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;

        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)
{
#ifdef WITH_THREAD
    _PyGILState_NoteThreadState(tstate);
#endif
}

PyObject*
PyState_FindModule(struct PyModuleDef* module)
{
    Py_ssize_t index = module->m_base.m_index;
    PyInterpreterState *state = PyThreadState_GET()->interp;
    PyObject *res;
    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 = PyThreadState_GET()->interp;
    if (!def)
        return -1;
    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 = PyThreadState_GET()->interp;
    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)
{
    Py_ssize_t index = def->m_base.m_index;
    PyInterpreterState *state = PyThreadState_GET()->interp;
    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 = PyThreadState_GET()->interp;
    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);
}


/* 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 == _Py_atomic_load_relaxed(&_PyThreadState_Current))
        Py_FatalError("PyThreadState_Delete: tstate is still current");
#ifdef WITH_THREAD
    if (autoInterpreterState && PyThread_get_key_value(autoTLSkey) == tstate)
        PyThread_delete_key_value(autoTLSkey);
#endif /* WITH_THREAD */
    tstate_delete_common(tstate);
}


#ifdef WITH_THREAD
void
PyThreadState_DeleteCurrent()
{
    PyThreadState *tstate = (PyThreadState*)_Py_atomic_load_relaxed(
        &_PyThreadState_Current);
    if (tstate == NULL)
        Py_FatalError(
            "PyThreadState_DeleteCurrent: no current tstate");
    _Py_atomic_store_relaxed(&_PyThreadState_Current, NULL);
    if (autoInterpreterState && PyThread_get_key_value(autoTLSkey) == tstate)
        PyThread_delete_key_value(autoTLSkey);
    tstate_delete_common(tstate);
    PyEval_ReleaseLock();
}
#endif /* WITH_THREAD */


/*
 * 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_Get(void)
{
    PyThreadState *tstate = (PyThreadState*)_Py_atomic_load_relaxed(
        &_PyThreadState_Current);
    if (tstate == NULL)
        Py_FatalError("PyThreadState_Get: no current thread");

    return tstate;
}


PyThreadState *
PyThreadState_Swap(PyThreadState *newts)
{
    PyThreadState *oldts = (PyThreadState*)_Py_atomic_load_relaxed(
        &_PyThreadState_Current);

    _Py_atomic_store_relaxed(&_PyThreadState_Current, 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) && defined(WITH_THREAD)
    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 = (PyThreadState*)_Py_atomic_load_relaxed(
        &_PyThreadState_Current);
    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(long id, PyObject *exc) {
    PyThreadState *tstate = PyThreadState_GET();
    PyInterpreterState *interp = tstate->interp;
    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 interp_head;
}

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 = interp_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_FromLong(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. */
#ifdef WITH_THREAD

/* 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 == _Py_atomic_load_relaxed(&_PyThreadState_Current);
}

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

    _PyGILState_NoteThreadState(t);
}

void
_PyGILState_Fini(void)
{
    PyThread_delete_key(autoTLSkey);
    autoInterpreterState = NULL;
}

/* Reset the TLS key - called by PyOS_AfterFork().
 * This should not be necessary, but some - buggy - pthread implementations
 * don't reset TLS upon fork(), see issue #10517.
 */
void
_PyGILState_Reinit(void)
{
    PyThreadState *tstate = PyGILState_GetThisThreadState();
    PyThread_delete_key(autoTLSkey);
    if ((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(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 (!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(autoTLSkey) == NULL) {
        if (PyThread_set_key_value(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 (autoInterpreterState == NULL)
        return NULL;
    return (PyThreadState *)PyThread_get_key_value(autoTLSkey);
}

int
PyGILState_Check(void)
{
    /* can't use PyThreadState_Get() since it will assert that it has the GIL */
    PyThreadState *tstate = (PyThreadState*)_Py_atomic_load_relaxed(
        &_PyThreadState_Current);
    return tstate && (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().
    */
    assert(autoInterpreterState); /* Py_Initialize() hasn't been called! */
    tcur = (PyThreadState *)PyThread_get_key_value(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(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(
                                                            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();
}

#endif /* WITH_THREAD */

#ifdef __cplusplus
}
#endif


class="hl opt">, "iso8859-1"}, {"iso885915", "iso8859-15"}, {"iso88592", "iso8859-2"}, {"iso88595", "iso8859-5"}, {"iso88596", "iso8859-6"}, {"iso88597", "iso8859-7"}, {"iso88598", "iso8859-8"}, {"iso88599", "iso8859-9"}, #ifdef hpux {"ja", "shiftjis"}, #else {"ja", "euc-jp"}, #endif {"ja_jp", "euc-jp"}, {"ja_jp.euc", "euc-jp"}, {"ja_jp.eucjp", "euc-jp"}, {"ja_jp.jis", "iso2022-jp"}, {"ja_jp.mscode", "shiftjis"}, {"ja_jp.sjis", "shiftjis"}, {"ja_jp.ujis", "euc-jp"}, {"japan", "euc-jp"}, #ifdef hpux {"japanese", "shiftjis"}, #else {"japanese", "euc-jp"}, #endif {"japanese-sjis", "shiftjis"}, {"japanese-ujis", "euc-jp"}, {"japanese.euc", "euc-jp"}, {"japanese.sjis", "shiftjis"}, {"jis0201", "jis0201"}, {"jis0208", "jis0208"}, {"jis0212", "jis0212"}, {"jp_jp", "shiftjis"}, {"ko", "euc-kr"}, {"ko_kr", "euc-kr"}, {"ko_kr.euc", "euc-kr"}, {"ko_kw.euckw", "euc-kr"}, {"koi8-r", "koi8-r"}, {"koi8-u", "koi8-u"}, {"korean", "euc-kr"}, {"ksc5601", "ksc5601"}, {"maccenteuro", "macCentEuro"}, {"maccroatian", "macCroatian"}, {"maccyrillic", "macCyrillic"}, {"macdingbats", "macDingbats"}, {"macgreek", "macGreek"}, {"maciceland", "macIceland"}, {"macjapan", "macJapan"}, {"macroman", "macRoman"}, {"macromania", "macRomania"}, {"macthai", "macThai"}, {"macturkish", "macTurkish"}, {"macukraine", "macUkraine"}, {"roman8", "iso8859-1"}, {"ru", "iso8859-5"}, {"ru_ru", "iso8859-5"}, {"ru_su", "iso8859-5"}, {"shiftjis", "shiftjis"}, {"sjis", "shiftjis"}, {"symbol", "symbol"}, {"tis-620", "tis-620"}, {"tis620", "tis-620"}, {"turkish8", "cp857"}, {"utf8", "utf-8"}, {"zh", "cp936"}, {"zh_cn.gb2312", "euc-cn"}, {"zh_cn.gbk", "euc-cn"}, {"zh_cz.gb2312", "euc-cn"}, {"zh_tw", "euc-tw"}, {"zh_tw.big5", "big5"}, }; #ifndef TCL_NO_STACK_CHECK static int GetStackSize(size_t *stackSizePtr); #endif /* TCL_NO_STACK_CHECK */ #ifdef HAVE_COREFOUNDATION static int MacOSXGetLibraryPath(Tcl_Interp *interp, int maxPathLen, char *tclLibPath); #endif /* HAVE_COREFOUNDATION */ #if defined(__APPLE__) && (defined(TCL_LOAD_FROM_MEMORY) || ( \ defined(MAC_OS_X_VERSION_MIN_REQUIRED) && ( \ (defined(TCL_THREADS) && MAC_OS_X_VERSION_MIN_REQUIRED < 1030) || \ (defined(__LP64__) && MAC_OS_X_VERSION_MIN_REQUIRED < 1050) || \ (defined(HAVE_COREFOUNDATION) && MAC_OS_X_VERSION_MIN_REQUIRED < 1050)\ ))) /* * Need to check Darwin release at runtime in tclUnixFCmd.c and tclLoadDyld.c: * initialize release global at startup from uname(). */ #define GET_DARWIN_RELEASE 1 MODULE_SCOPE long tclMacOSXDarwinRelease; long tclMacOSXDarwinRelease = 0; #endif /* *--------------------------------------------------------------------------- * * TclpInitPlatform -- * * Initialize all the platform-dependant things like signals and * floating-point error handling. * * Called at process initialization time. * * Results: * None. * * Side effects: * None. * *--------------------------------------------------------------------------- */ void TclpInitPlatform(void) { #ifdef DJGPP tclPlatform = TCL_PLATFORM_WINDOWS; #else tclPlatform = TCL_PLATFORM_UNIX; #endif /* * Make sure, that the standard FDs exist. [Bug 772288] */ if (TclOSseek(0, (Tcl_SeekOffset) 0, SEEK_CUR) == -1 && errno == EBADF) { open("/dev/null", O_RDONLY); } if (TclOSseek(1, (Tcl_SeekOffset) 0, SEEK_CUR) == -1 && errno == EBADF) { open("/dev/null", O_WRONLY); } if (TclOSseek(2, (Tcl_SeekOffset) 0, SEEK_CUR) == -1 && errno == EBADF) { open("/dev/null", O_WRONLY); } /* * The code below causes SIGPIPE (broken pipe) errors to be ignored. This * is needed so that Tcl processes don't die if they create child * processes (e.g. using "exec" or "open") that terminate prematurely. * The signal handler is only set up when the first interpreter is * created; after this the application can override the handler with a * different one of its own, if it wants. */ #ifdef SIGPIPE (void) signal(SIGPIPE, SIG_IGN); #endif /* SIGPIPE */ #if defined(__FreeBSD__) && defined(__GNUC__) /* * Adjust the rounding mode to be more conventional. Note that FreeBSD * only provides the __fpsetreg() used by the following two for the GNU * Compiler. When using, say, Intel's icc they break. (Partially based on * patch in BSD ports system from root@celsius.bychok.com) */ fpsetround(FP_RN); (void) fpsetmask(0L); #endif #if defined(__bsdi__) && (_BSDI_VERSION > 199501) /* * Find local symbols. Don't report an error if we fail. */ (void) dlopen(NULL, RTLD_NOW); /* INTL: Native. */ #endif /* * Initialize the C library's locale subsystem. This is required for input * methods to work properly on X11. We only do this for LC_CTYPE because * that's the necessary one, and we don't want to affect LC_TIME here. * The side effect of setting the default locale should be to load any * locale specific modules that are needed by X. [BUG: 5422 3345 4236 2522 * 2521]. */ setlocale(LC_CTYPE, ""); /* * In case the initial locale is not "C", ensure that the numeric * processing is done in "C" locale regardless. This is needed because Tcl * relies on routines like strtod, but should not have locale dependent * behavior. */ setlocale(LC_NUMERIC, "C"); #ifdef GET_DARWIN_RELEASE { struct utsname name; if (!uname(&name)) { tclMacOSXDarwinRelease = strtol(name.release, NULL, 10); } } #endif } /* *--------------------------------------------------------------------------- * * TclpInitLibraryPath -- * * This is the fallback routine that sets the library path if the * application has not set one by the first time it is needed. * * Results: * None. * * Side effects: * Sets the library path to an initial value. * *------------------------------------------------------------------------- */ void TclpInitLibraryPath( char **valuePtr, int *lengthPtr, Tcl_Encoding *encodingPtr) { #define LIBRARY_SIZE 32 Tcl_Obj *pathPtr, *objPtr; CONST char *str; Tcl_DString buffer; pathPtr = Tcl_NewObj(); /* * Look for the library relative to the TCL_LIBRARY env variable. If the * last dirname in the TCL_LIBRARY path does not match the last dirname in * the installLib variable, use the last dir name of installLib in * addition to the orginal TCL_LIBRARY path. */ str = getenv("TCL_LIBRARY"); /* INTL: Native. */ Tcl_ExternalToUtfDString(NULL, str, -1, &buffer); str = Tcl_DStringValue(&buffer); if ((str != NULL) && (str[0] != '\0')) { Tcl_DString ds; int pathc; CONST char **pathv; char installLib[LIBRARY_SIZE]; Tcl_DStringInit(&ds); /* * Initialize the substrings used when locating an executable. The * installLib variable computes the path as though the executable is * installed. */ sprintf(installLib, "lib/tcl%s", TCL_VERSION); /* * If TCL_LIBRARY is set, search there. */ objPtr = Tcl_NewStringObj(str, -1); Tcl_ListObjAppendElement(NULL, pathPtr, objPtr); Tcl_SplitPath(str, &pathc, &pathv); if ((pathc > 0) && (strcasecmp(installLib + 4, pathv[pathc-1]) != 0)) { /* * If TCL_LIBRARY is set but refers to a different tcl * installation than the current version, try fiddling with the * specified directory to make it refer to this installation by * removing the old "tclX.Y" and substituting the current version * string. */ pathv[pathc - 1] = installLib + 4; str = Tcl_JoinPath(pathc, pathv, &ds); objPtr = Tcl_NewStringObj(str, Tcl_DStringLength(&ds)); Tcl_ListObjAppendElement(NULL, pathPtr, objPtr); Tcl_DStringFree(&ds); } ckfree((char *) pathv); } /* * Finally, look for the library relative to the compiled-in path. This is * needed when users install Tcl with an exec-prefix that is different * from the prefix. */ { #ifdef HAVE_COREFOUNDATION char tclLibPath[MAXPATHLEN + 1]; if (MacOSXGetLibraryPath(NULL, MAXPATHLEN, tclLibPath) == TCL_OK) { str = tclLibPath; } else #endif /* HAVE_COREFOUNDATION */ { /* * TODO: Pull this value from the TIP 59 table. */ str = defaultLibraryDir; } if (str[0] != '\0') { objPtr = Tcl_NewStringObj(str, -1); Tcl_ListObjAppendElement(NULL, pathPtr, objPtr); } } Tcl_DStringFree(&buffer); *encodingPtr = Tcl_GetEncoding(NULL, NULL); str = Tcl_GetStringFromObj(pathPtr, lengthPtr); *valuePtr = ckalloc((unsigned int) (*lengthPtr)+1); memcpy(*valuePtr, str, (size_t)(*lengthPtr)+1); Tcl_DecrRefCount(pathPtr); } /* *--------------------------------------------------------------------------- * * TclpSetInitialEncodings -- * * Based on the locale, determine the encoding of the operating system * and the default encoding for newly opened files. * * Called at process initialization time, and part way through startup, * we verify that the initial encodings were correctly setup. Depending * on Tcl's environment, there may not have been enough information first * time through (above). * * Results: * None. * * Side effects: * The Tcl library path is converted from native encoding to UTF-8, on * the first call, and the encodings may be changed on first or second * call. * *--------------------------------------------------------------------------- */ void TclpSetInitialEncodings(void) { Tcl_DString encodingName; Tcl_SetSystemEncoding(NULL, Tcl_GetEncodingNameFromEnvironment(&encodingName)); Tcl_DStringFree(&encodingName); } void TclpSetInterfaces(void) { /* do nothing */ } static CONST char * SearchKnownEncodings( CONST char *encoding) { int left = 0; int right = sizeof(localeTable)/sizeof(LocaleTable); while (left <= right) { int test = (left + right)/2; int code = strcmp(localeTable[test].lang, encoding); if (code == 0) { return localeTable[test].encoding; } if (code < 0) { left = test+1; } else { right = test-1; } } return NULL; } CONST char * Tcl_GetEncodingNameFromEnvironment( Tcl_DString *bufPtr) { CONST char *encoding; CONST char *knownEncoding; Tcl_DStringInit(bufPtr); /* * Determine the current encoding from the LC_* or LANG environment * variables. We previously used setlocale() to determine the locale, but * this does not work on some systems (e.g. Linux/i386 RH 5.0). */ #ifdef HAVE_LANGINFO if ( #ifdef WEAK_IMPORT_NL_LANGINFO nl_langinfo != NULL && #endif setlocale(LC_CTYPE, "") != NULL) { Tcl_DString ds; /* * Use a DString so we can modify case. */ Tcl_DStringInit(&ds); encoding = Tcl_DStringAppend(&ds, nl_langinfo(CODESET), -1); Tcl_UtfToLower(Tcl_DStringValue(&ds)); knownEncoding = SearchKnownEncodings(encoding); if (knownEncoding != NULL) { Tcl_DStringAppend(bufPtr, knownEncoding, -1); } else if (NULL != Tcl_GetEncoding(NULL, encoding)) { Tcl_DStringAppend(bufPtr, encoding, -1); } Tcl_DStringFree(&ds); if (Tcl_DStringLength(bufPtr)) { return Tcl_DStringValue(bufPtr); } } #endif /* HAVE_LANGINFO */ /* * Classic fallback check. This tries a homebrew algorithm to determine * what encoding should be used based on env vars. */ encoding = getenv("LC_ALL"); if (encoding == NULL || encoding[0] == '\0') { encoding = getenv("LC_CTYPE"); } if (encoding == NULL || encoding[0] == '\0') { encoding = getenv("LANG"); } if (encoding == NULL || encoding[0] == '\0') { encoding = NULL; } if (encoding != NULL) { CONST char *p; Tcl_DString ds; Tcl_DStringInit(&ds); p = encoding; encoding = Tcl_DStringAppend(&ds, p, -1); Tcl_UtfToLower(Tcl_DStringValue(&ds)); knownEncoding = SearchKnownEncodings(encoding); if (knownEncoding != NULL) { Tcl_DStringAppend(bufPtr, knownEncoding, -1); } else if (NULL != Tcl_GetEncoding(NULL, encoding)) { Tcl_DStringAppend(bufPtr, encoding, -1); } if (Tcl_DStringLength(bufPtr)) { Tcl_DStringFree(&ds); return Tcl_DStringValue(bufPtr); } /* * We didn't recognize the full value as an encoding name. If there is * an encoding subfield, we can try to guess from that. */ for (p = encoding; *p != '\0'; p++) { if (*p == '.') { p++; break; } } if (*p != '\0') { knownEncoding = SearchKnownEncodings(p); if (knownEncoding != NULL) { Tcl_DStringAppend(bufPtr, knownEncoding, -1); } else if (NULL != Tcl_GetEncoding(NULL, p)) { Tcl_DStringAppend(bufPtr, p, -1); } } Tcl_DStringFree(&ds); if (Tcl_DStringLength(bufPtr)) { return Tcl_DStringValue(bufPtr); } } return Tcl_DStringAppend(bufPtr, TCL_DEFAULT_ENCODING, -1); } /* *--------------------------------------------------------------------------- * * TclpSetVariables -- * * Performs platform-specific interpreter initialization related to the * tcl_library and tcl_platform variables, and other platform-specific * things. * * Results: * None. * * Side effects: * Sets "tclDefaultLibrary", "tcl_pkgPath", and "tcl_platform" Tcl * variables. * *---------------------------------------------------------------------- */ void TclpSetVariables( Tcl_Interp *interp) { #ifndef NO_UNAME struct utsname name; #endif int unameOK; Tcl_DString ds; #ifdef HAVE_COREFOUNDATION char tclLibPath[MAXPATHLEN + 1]; #if MAC_OS_X_VERSION_MAX_ALLOWED > 1020 /* * Set msgcat fallback locale to current CFLocale identifier. */ CFLocaleRef localeRef; if (CFLocaleCopyCurrent != NULL && CFLocaleGetIdentifier != NULL && (localeRef = CFLocaleCopyCurrent())) { CFStringRef locale = CFLocaleGetIdentifier(localeRef); if (locale) { char loc[256]; if (CFStringGetCString(locale, loc, 256, kCFStringEncodingUTF8)) { if (!Tcl_CreateNamespace(interp, "::tcl::mac", NULL, NULL)) { Tcl_ResetResult(interp); } Tcl_SetVar(interp, "::tcl::mac::locale", loc, TCL_GLOBAL_ONLY); } } CFRelease(localeRef); } #endif /* MAC_OS_X_VERSION_MAX_ALLOWED > 1020 */ if (MacOSXGetLibraryPath(interp, MAXPATHLEN, tclLibPath) == TCL_OK) { CONST char *str; CFBundleRef bundleRef; Tcl_SetVar(interp, "tclDefaultLibrary", tclLibPath, TCL_GLOBAL_ONLY); Tcl_SetVar(interp, "tcl_pkgPath", tclLibPath, TCL_GLOBAL_ONLY); Tcl_SetVar(interp, "tcl_pkgPath", " ", TCL_GLOBAL_ONLY | TCL_APPEND_VALUE); str = TclGetEnv("DYLD_FRAMEWORK_PATH", &ds); if ((str != NULL) && (str[0] != '\0')) { char *p = Tcl_DStringValue(&ds); /* * Convert DYLD_FRAMEWORK_PATH from colon to space separated. */ do { if (*p == ':') { *p = ' '; } } while (*p++); Tcl_SetVar(interp, "tcl_pkgPath", Tcl_DStringValue(&ds), TCL_GLOBAL_ONLY | TCL_APPEND_VALUE); Tcl_SetVar(interp, "tcl_pkgPath", " ", TCL_GLOBAL_ONLY | TCL_APPEND_VALUE); Tcl_DStringFree(&ds); } bundleRef = CFBundleGetMainBundle(); if (bundleRef) { CFURLRef frameworksURL; Tcl_StatBuf statBuf; frameworksURL = CFBundleCopyPrivateFrameworksURL(bundleRef); if (frameworksURL) { if (CFURLGetFileSystemRepresentation(frameworksURL, TRUE, (unsigned char*) tclLibPath, MAXPATHLEN) && ! TclOSstat(tclLibPath, &statBuf) && S_ISDIR(statBuf.st_mode)) { Tcl_SetVar(interp, "tcl_pkgPath", tclLibPath, TCL_GLOBAL_ONLY | TCL_APPEND_VALUE); Tcl_SetVar(interp, "tcl_pkgPath", " ", TCL_GLOBAL_ONLY | TCL_APPEND_VALUE); } CFRelease(frameworksURL); } frameworksURL = CFBundleCopySharedFrameworksURL(bundleRef); if (frameworksURL) { if (CFURLGetFileSystemRepresentation(frameworksURL, TRUE, (unsigned char*) tclLibPath, MAXPATHLEN) && ! TclOSstat(tclLibPath, &statBuf) && S_ISDIR(statBuf.st_mode)) { Tcl_SetVar(interp, "tcl_pkgPath", tclLibPath, TCL_GLOBAL_ONLY | TCL_APPEND_VALUE); Tcl_SetVar(interp, "tcl_pkgPath", " ", TCL_GLOBAL_ONLY | TCL_APPEND_VALUE); } CFRelease(frameworksURL); } } Tcl_SetVar(interp, "tcl_pkgPath", pkgPath, TCL_GLOBAL_ONLY | TCL_APPEND_VALUE); } else #endif /* HAVE_COREFOUNDATION */ { Tcl_SetVar(interp, "tcl_pkgPath", pkgPath, TCL_GLOBAL_ONLY); } #ifdef DJGPP Tcl_SetVar2(interp, "tcl_platform", "platform", "dos", TCL_GLOBAL_ONLY); #else Tcl_SetVar2(interp, "tcl_platform", "platform", "unix", TCL_GLOBAL_ONLY); #endif unameOK = 0; #ifndef NO_UNAME if (uname(&name) >= 0) { CONST char *native; unameOK = 1; native = Tcl_ExternalToUtfDString(NULL, name.sysname, -1, &ds); Tcl_SetVar2(interp, "tcl_platform", "os", native, TCL_GLOBAL_ONLY); Tcl_DStringFree(&ds); /* * The following code is a special hack to handle differences in the * way version information is returned by uname. On most systems the * full version number is available in name.release. However, under * AIX the major version number is in name.version and the minor * version number is in name.release. */ if ((strchr(name.release, '.') != NULL) || !isdigit(UCHAR(name.version[0]))) { /* INTL: digit */ Tcl_SetVar2(interp, "tcl_platform", "osVersion", name.release, TCL_GLOBAL_ONLY); } else { #ifdef DJGPP /* * For some obscure reason DJGPP puts major version into * name.release and minor into name.version. As of DJGPP 2.04 this * is documented in djgpp libc.info file. */ Tcl_SetVar2(interp, "tcl_platform", "osVersion", name.release, TCL_GLOBAL_ONLY); Tcl_SetVar2(interp, "tcl_platform", "osVersion", ".", TCL_GLOBAL_ONLY|TCL_APPEND_VALUE); Tcl_SetVar2(interp, "tcl_platform", "osVersion", name.version, TCL_GLOBAL_ONLY|TCL_APPEND_VALUE); #else Tcl_SetVar2(interp, "tcl_platform", "osVersion", name.version, TCL_GLOBAL_ONLY); Tcl_SetVar2(interp, "tcl_platform", "osVersion", ".", TCL_GLOBAL_ONLY|TCL_APPEND_VALUE); Tcl_SetVar2(interp, "tcl_platform", "osVersion", name.release, TCL_GLOBAL_ONLY|TCL_APPEND_VALUE); #endif /* DJGPP */ } Tcl_SetVar2(interp, "tcl_platform", "machine", name.machine, TCL_GLOBAL_ONLY); } #endif /* !NO_UNAME */ if (!unameOK) { Tcl_SetVar2(interp, "tcl_platform", "os", "", TCL_GLOBAL_ONLY); Tcl_SetVar2(interp, "tcl_platform", "osVersion", "", TCL_GLOBAL_ONLY); Tcl_SetVar2(interp, "tcl_platform", "machine", "", TCL_GLOBAL_ONLY); } /* * Copy the username of the real user (according to getuid()) into * tcl_platform(user). */ { struct passwd *pwEnt = TclpGetPwUid(getuid()); const char *user; if (pwEnt == NULL) { user = ""; Tcl_DStringInit(&ds); /* ensure cleanliness */ } else { user = Tcl_ExternalToUtfDString(NULL, pwEnt->pw_name, -1, &ds); } Tcl_SetVar2(interp, "tcl_platform", "user", user, TCL_GLOBAL_ONLY); Tcl_DStringFree(&ds); } } /* *---------------------------------------------------------------------- * * TclpFindVariable -- * * Locate the entry in environ for a given name. On Unix this routine is * case sensetive, on Windows this matches mixed case. * * Results: * The return value is the index in environ of an entry with the name * "name", or -1 if there is no such entry. The integer at *lengthPtr is * filled in with the length of name (if a matching entry is found) or * the length of the environ array (if no matching entry is found). * * Side effects: * None. * *---------------------------------------------------------------------- */ int TclpFindVariable( CONST char *name, /* Name of desired environment variable * (native). */ int *lengthPtr) /* Used to return length of name (for * successful searches) or number of non-NULL * entries in environ (for unsuccessful * searches). */ { int i, result = -1; register CONST char *env, *p1, *p2; Tcl_DString envString; Tcl_DStringInit(&envString); for (i = 0, env = environ[i]; env != NULL; i++, env = environ[i]) { p1 = Tcl_ExternalToUtfDString(NULL, env, -1, &envString); p2 = name; for (; *p2 == *p1; p1++, p2++) { /* NULL loop body. */ } if ((*p1 == '=') && (*p2 == '\0')) { *lengthPtr = p2 - name; result = i; goto done; } Tcl_DStringFree(&envString); } *lengthPtr = i; done: Tcl_DStringFree(&envString); return result; } #ifndef TCL_NO_STACK_CHECK /* *---------------------------------------------------------------------- * * TclpGetCStackParams -- * * Determine the stack params for the current thread: in which * direction does the stack grow, and what is the stack lower (resp. * upper) bound for safe invocation of a new command? This is used to * cache the values needed for an efficient computation of * TclpCheckStackSpace() when the interp is known. * * Results: * Returns 1 if the stack grows down, in which case a stack lower bound * is stored at stackBoundPtr. If the stack grows up, 0 is returned and * an upper bound is stored at stackBoundPtr. If a bound cannot be * determined NULL is stored at stackBoundPtr. * *---------------------------------------------------------------------- */ int TclpGetCStackParams( int **stackBoundPtr) { int result = TCL_OK; size_t stackSize = 0; /* The size of the current stack. */ ThreadSpecificData *tsdPtr = TCL_TSD_INIT(&dataKey); /* Most variables are actually in a * thread-specific data block to minimise the * impact on the stack. */ #ifdef TCL_CROSS_COMPILE if (stackGrowsDown == -1) { /* * Not initialised! */ stackGrowsDown = StackGrowsDown(&result); } #endif /* * The first time through in a thread: record the "outermost" stack * frame and inquire with the OS about the stack size. */ if (tsdPtr->outerVarPtr == NULL) { tsdPtr->outerVarPtr = &result; result = GetStackSize(&stackSize); if (result != TCL_OK) { /* Can't check, assume it always succeeds */ #ifdef TCL_CROSS_COMPILE stackGrowsDown = 1; #endif tsdPtr->stackBound = NULL; goto done; } } if (stackSize || (tsdPtr->stackBound && ((stackGrowsDown && (&result < tsdPtr->stackBound)) || (!stackGrowsDown && (&result > tsdPtr->stackBound))))) { /* * Either the thread's first pass or stack failure: set the params */ if (!stackSize) { /* * Stack failure: if we didn't already blow up, we are within the * safety area. Recheck with the OS in case the stack was grown. */ result = GetStackSize(&stackSize); if (result != TCL_OK) { /* Can't check, assume it always succeeds */ #ifdef TCL_CROSS_COMPILE stackGrowsDown = 1; #endif tsdPtr->stackBound = NULL; goto done; } } if (stackGrowsDown) { tsdPtr->stackBound = (int *) ((char *)tsdPtr->outerVarPtr - stackSize); if (tsdPtr->stackBound > tsdPtr->outerVarPtr) { /* Overflow, that should never happen, just set it to NULL. * See [Bug #3166410] */ tsdPtr->stackBound = NULL; } } else { tsdPtr->stackBound = (int *) ((char *)tsdPtr->outerVarPtr + stackSize); if (tsdPtr->stackBound < tsdPtr->outerVarPtr) { /* Overflow, that should never happen, just set it to NULL. * See [Bug #3166410] */ tsdPtr->stackBound = NULL; } } } done: *stackBoundPtr = tsdPtr->stackBound; return stackGrowsDown; } #ifdef TCL_CROSS_COMPILE int StackGrowsDown( int *parent) { int here; return (&here < parent); } #endif /* *---------------------------------------------------------------------- * * GetStackSize -- * * Discover what the stack size for the current thread/process actually * is. Expects to only ever be called once per thread and then only at a * point when there is a reasonable amount of space left on the current * stack; TclpCheckStackSpace is called sufficiently frequently that that * is true. * * Results: * TCL_OK if the stack space was discovered, TCL_BREAK if the stack space * was undiscoverable in a way that stack checks should fail, and * TCL_CONTINUE if the stack space was undiscoverable in a way that stack * checks should succeed. * * Side effects: * None * *---------------------------------------------------------------------- */ static int GetStackSize( size_t *stackSizePtr) { size_t rawStackSize; struct rlimit rLimit; /* The result from getrlimit(). */ #ifdef TCL_THREADS rawStackSize = TclpThreadGetStackSize(); if (rawStackSize == (size_t) -1) { /* * Some kind of confirmed error in TclpThreadGetStackSize?! Fall back * to whatever getrlimit can determine. */ STACK_DEBUG(("stack checks: TclpThreadGetStackSize failed in \n")); } if (rawStackSize > 0) { goto finalSanityCheck; } /* * If we have zero or an error, try the system limits instead. After all, * the pthread documentation states that threads should always be bound by * the system stack size limit in any case. */ #endif /* TCL_THREADS */ if (getrlimit(RLIMIT_STACK, &rLimit) != 0) { /* * getrlimit() failed, just fail the whole thing. */ STACK_DEBUG(("skipping stack checks with failure: getrlimit failed\n")); return TCL_BREAK; } if (rLimit.rlim_cur == RLIM_INFINITY) { /* * Limit is "infinite"; there is no stack limit. */ STACK_DEBUG(("skipping stack checks with success: infinite limit\n")); return TCL_CONTINUE; } rawStackSize = rLimit.rlim_cur; /* * Final sanity check on the determined stack size. If we fail this, * assume there are bogus values about and that we can't actually figure * out what the stack size really is. */ #ifdef TCL_THREADS /* Stop warning... */ finalSanityCheck: #endif if (rawStackSize <= 0) { STACK_DEBUG(("skipping stack checks with success\n")); return TCL_CONTINUE; } /* * Calculate a stack size with a safety margin. */ *stackSizePtr = (rawStackSize / TCL_MAGIC_STACK_DIVISOR) - (getpagesize() * TCL_RESERVED_STACK_PAGES); return TCL_OK; } #endif /* TCL_NO_STACK_CHECK */ /* *---------------------------------------------------------------------- * * MacOSXGetLibraryPath -- * * If we have a bundle structure for the Tcl installation, then check * there first to see if we can find the libraries there. * * Results: * TCL_OK if we have found the tcl library; TCL_ERROR otherwise. * * Side effects: * Same as for Tcl_MacOSXOpenVersionedBundleResources. * *---------------------------------------------------------------------- */ #ifdef HAVE_COREFOUNDATION static int MacOSXGetLibraryPath( Tcl_Interp *interp, int maxPathLen, char *tclLibPath) { int foundInFramework = TCL_ERROR; #ifdef TCL_FRAMEWORK foundInFramework = Tcl_MacOSXOpenVersionedBundleResources(interp, "com.tcltk.tcllibrary", TCL_FRAMEWORK_VERSION, 0, maxPathLen, tclLibPath); #endif return foundInFramework; } #endif /* HAVE_COREFOUNDATION */ /* * Local Variables: * mode: c * c-basic-offset: 4 * fill-column: 78 * End: */