Source code for pyspark.taskcontext
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from __future__ import print_function
from pyspark.java_gateway import local_connect_and_auth
from pyspark.serializers import write_int, UTF8Deserializer
[docs]class TaskContext(object):
"""
Contextual information about a task which can be read or mutated during
execution. To access the TaskContext for a running task, use:
:meth:`TaskContext.get`.
"""
_taskContext = None
_attemptNumber = None
_partitionId = None
_stageId = None
_taskAttemptId = None
_localProperties = None
_resources = None
def __new__(cls):
"""Even if users construct TaskContext instead of using get, give them the singleton."""
taskContext = cls._taskContext
if taskContext is not None:
return taskContext
cls._taskContext = taskContext = object.__new__(cls)
return taskContext
@classmethod
def _getOrCreate(cls):
"""Internal function to get or create global TaskContext."""
if cls._taskContext is None:
cls._taskContext = TaskContext()
return cls._taskContext
[docs] @classmethod
def get(cls):
"""
Return the currently active TaskContext. This can be called inside of
user functions to access contextual information about running tasks.
.. note:: Must be called on the worker, not the driver. Returns None if not initialized.
"""
return cls._taskContext
[docs] def stageId(self):
"""The ID of the stage that this task belong to."""
return self._stageId
[docs] def partitionId(self):
"""
The ID of the RDD partition that is computed by this task.
"""
return self._partitionId
[docs] def attemptNumber(self):
""""
How many times this task has been attempted. The first task attempt will be assigned
attemptNumber = 0, and subsequent attempts will have increasing attempt numbers.
"""
return self._attemptNumber
[docs] def taskAttemptId(self):
"""
An ID that is unique to this task attempt (within the same SparkContext, no two task
attempts will share the same attempt ID). This is roughly equivalent to Hadoop's
TaskAttemptID.
"""
return self._taskAttemptId
[docs] def getLocalProperty(self, key):
"""
Get a local property set upstream in the driver, or None if it is missing.
"""
return self._localProperties.get(key, None)
[docs] def resources(self):
"""
Resources allocated to the task. The key is the resource name and the value is information
about the resource.
"""
return self._resources
BARRIER_FUNCTION = 1
def _load_from_socket(port, auth_secret):
"""
Load data from a given socket, this is a blocking method thus only return when the socket
connection has been closed.
"""
(sockfile, sock) = local_connect_and_auth(port, auth_secret)
# The barrier() call may block forever, so no timeout
sock.settimeout(None)
# Make a barrier() function call.
write_int(BARRIER_FUNCTION, sockfile)
sockfile.flush()
# Collect result.
res = UTF8Deserializer().loads(sockfile)
# Release resources.
sockfile.close()
sock.close()
return res
[docs]class BarrierTaskContext(TaskContext):
"""
.. note:: Experimental
A :class:`TaskContext` with extra contextual info and tooling for tasks in a barrier stage.
Use :func:`BarrierTaskContext.get` to obtain the barrier context for a running barrier task.
.. versionadded:: 2.4.0
"""
_port = None
_secret = None
@classmethod
def _getOrCreate(cls):
"""
Internal function to get or create global BarrierTaskContext. We need to make sure
BarrierTaskContext is returned from here because it is needed in python worker reuse
scenario, see SPARK-25921 for more details.
"""
if not isinstance(cls._taskContext, BarrierTaskContext):
cls._taskContext = object.__new__(cls)
return cls._taskContext
[docs] @classmethod
def get(cls):
"""
.. note:: Experimental
Return the currently active :class:`BarrierTaskContext`.
This can be called inside of user functions to access contextual information about
running tasks.
.. note:: Must be called on the worker, not the driver. Returns None if not initialized.
"""
return cls._taskContext
@classmethod
def _initialize(cls, port, secret):
"""
Initialize BarrierTaskContext, other methods within BarrierTaskContext can only be called
after BarrierTaskContext is initialized.
"""
cls._port = port
cls._secret = secret
[docs] def barrier(self):
"""
.. note:: Experimental
Sets a global barrier and waits until all tasks in this stage hit this barrier.
Similar to `MPI_Barrier` function in MPI, this function blocks until all tasks
in the same stage have reached this routine.
.. warning:: In a barrier stage, each task much have the same number of `barrier()`
calls, in all possible code branches.
Otherwise, you may get the job hanging or a SparkException after timeout.
.. versionadded:: 2.4.0
"""
if self._port is None or self._secret is None:
raise Exception("Not supported to call barrier() before initialize " +
"BarrierTaskContext.")
else:
_load_from_socket(self._port, self._secret)
[docs] def getTaskInfos(self):
"""
.. note:: Experimental
Returns :class:`BarrierTaskInfo` for all tasks in this barrier stage,
ordered by partition ID.
.. versionadded:: 2.4.0
"""
if self._port is None or self._secret is None:
raise Exception("Not supported to call getTaskInfos() before initialize " +
"BarrierTaskContext.")
else:
addresses = self._localProperties.get("addresses", "")
return [BarrierTaskInfo(h.strip()) for h in addresses.split(",")]
[docs]class BarrierTaskInfo(object):
"""
.. note:: Experimental
Carries all task infos of a barrier task.
:var address: The IPv4 address (host:port) of the executor that the barrier task is running on
.. versionadded:: 2.4.0
"""
def __init__(self, address):
self.address = address