我了解两个函数可以使用multiprocessing或threading模块并行运行,例如Make 2 functions run at the same time和Python multiprocessing for parallel processes。
但上述示例仅使用打印功能。 是否可以在python中运行并行返回列表的函数,如果是,如何?
我尝试过使用线程:
from threading import Thread
def func1(x):
return [i*i for i in x]
def func2(x):
return [i*i*i for i in x]
nums = [1,2,3,4,5]
p1 = Thread(target = func1(nums)).start()
p2 = Thread(target = func2(nums)).start()
print p1
print p2
但我收到了以下错误:
Exception in thread Thread-1:
Traceback (most recent call last):
File "/usr/lib/python2.7/threading.py", line 808, in __bootstrap_inner
self.run()
File "/usr/lib/python2.7/threading.py", line 761, in run
self.__target(*self.__args, **self.__kwargs)
TypeError: 'list' object is not callable
None
None
Exception in thread Thread-2:
Traceback (most recent call last):
File "/usr/lib/python2.7/threading.py", line 808, in __bootstrap_inner
self.run()
File "/usr/lib/python2.7/threading.py", line 761, in run
self.__target(*self.__args, **self.__kwargs)
TypeError: 'list' object is not callable
我尝试输入args参数作为元组而不是变量:
import threading
from threading import Thread
def func1(x):
return [i*i for i in x]
def func2(x):
return [i*i*i for i in x]
nums = [1,2,3,4,5]
p1 = Thread(target = func1, args=(nums,)).start()
p2 = Thread(target = func2, args=(nums,)).start()
print p1, p2
但它只返回None None,所需的输出应为:
[OUT]:
[1, 4, 9, 16, 25] [1, 8, 27, 64, 125]
答案 0 :(得分:5)
线程的目标函数不能返回值。或者,我应该说,return值被忽略,因此,不会传回产生线程。但是你可以做以下几件事:
1)使用Queue.Queue与产卵线程沟通。请注意原始函数的包装器:
from threading import Thread
from Queue import Queue
def func1(x):
return [i*i for i in x]
def func2(x):
return [i*i*i for i in x]
nums = [1,2,3,4,5]
def wrapper(func, arg, queue):
queue.put(func(arg))
q1, q2 = Queue(), Queue()
Thread(target=wrapper, args=(func1, nums, q1)).start()
Thread(target=wrapper, args=(func2, nums, q2)).start()
print q1.get(), q2.get()
2)使用global访问线程中的结果列表以及产生过程:
from threading import Thread
list1=list()
list2=list()
def func1(x):
global list1
list1 = [i*i for i in x]
def func2(x):
global list2
list2 = [i*i*i for i in x]
nums = [1,2,3,4,5]
Thread(target = func1, args=(nums,)).start()
Thread(target = func2, args=(nums,)).start()
print list1, list2
答案 1 :(得分:0)
目标应仅接收函数名称。应使用参数“args”传递参数。我无法粘贴代码,因为我正在通过手机接听...; - )