The documentation for threading.Thread(target=...) states that

target is the callable object to be invoked by the run() method. Defaults to None, meaning nothing is called.

I usually use it like this:

import threading

def worker():
    a = 3
    print("bonjour {a}".format(a=a))

threading.Thread(target=worker).start()

Is there a way to chain the function elements in target so that a new one does not need to be defined? Something like (pseudocode obviously)

threading.Thread(target=(a=3;print("bonjour {a}".format(a=a))).start()

I have a bunch of very short calls to make in the Thread call and would like to avoid multiplication of function definitions.

  • 1
    What do you have against defining a function? – martineau Feb 6 '16 at 18:31
  • Nothing, and this is how I do it today. In one case, though, I have 10 different two liners (so I cannot use a lambda, per @ForceBru answer) and the code would be more compact and organized without them floating around. – WoJ Feb 6 '16 at 18:34
  • Your code is more testable (you have tests, right?) if you define a function to use as the target of the thread. – chepner Feb 6 '16 at 18:43
up vote 5 down vote accepted

You can use a lambda function in Python 3.x

import threading

threading.Thread(target=lambda a: print("Hello, {}".format(a)), args=(["world"]))

You should probably take a look at this SO question to see why you can't use print in Python 2.x in lambda expressions.


Actually, you can fit many function calls into your lambda:

from __future__ import print_function # I'm on Python 2.7
from threading import Thread

Thread(target=(lambda: print('test') == print('hello'))).start()

That will print both test and hello.

  • Perfect, thanks. I am removing my previous comment about the problem with many functions within a lambda which your update addresses perfectly. – WoJ Feb 6 '16 at 19:27
  • Actually, or would not be a good idea, because if the first function returned something that has a boolean value of true, the second function will not be evaluated, and hence will not be called. – zondo Feb 6 '16 at 21:46
  • @zondo, right, removing that. – ForceBru Feb 7 '16 at 14:44

I don't really like using exec, but in Python3.x it is a function, so you could do

threading.Thread(target=exec, args=('a=3; print("bonjour {a}".format(a=a))',)

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