6

I was recently learning how to use random.shuffle in Python and I was surprised to see that the function shuffles the variable in place without returning anything. How is this acheived in the function? Looking at the random library's source code yielded no answer.

How can I write my own function that changes the variable in place without reassignment?

  • A function can change the state of its arguments, but it can't replace the arguments with new objects. Imagine an argument you pass to a function is a post-it on a rope. The function can write new things on the post-it, but it can't untie the rope and tie it to a banana. – user2357112 supports Monica Mar 26 '14 at 23:58
  • than how does random.shuffle do this? – pianist1119 Mar 27 '14 at 0:07
  • A list's contents are part of its state. random.shuffle doesn't replace the list with a new list; it changes the list's state. – user2357112 supports Monica Mar 27 '14 at 0:11
5

I is works because of lists are mutable. You cant reassign any variable because it will be new variable. You cant modify immutable typed variable. You can modify mutable variable.

So:

>>> def addone(x):
...     x += 1
>>> a = 2
>>> addone(a)
>>> a
2
>>> def addone(x):
...     x.append(1)
... 
>>> l=[2]
>>> addone(l)
>>> l
[2, 1]
>>> def addone(x):
...     x = x + [1]
... 
>>> li=[2]
>>> addone(li)
>>> li
[2]
  • 1
    This is the information I was looking for, now I know what to look into (mutable types) kudos – pianist1119 Mar 27 '14 at 0:55
1

Well, just look at the implementation of random.shuffle. Find it in a file called random.py, it's a pure python implementation and quite simple - just using a loop of assignments (with tuple unpacking).

def shuffle(self, x, random=None, int=int):
    """x, random=random.random -> shuffle list x in place; return None.

    Optional arg random is a 0-argument function returning a random
    float in [0.0, 1.0); by default, the standard random.random.

    Do not supply the 'int' argument.
    """

    if random is None:
        random = self.random
    for i in reversed(xrange(1, len(x))):
        # pick an element in x[:i+1] with which to exchange x[i]
        j = int(random() * (i+1))
        x[i], x[j] = x[j], x[i]
  • yes, but how does this change the value without the return statement? – pianist1119 Mar 27 '14 at 0:08
  • it is re-assigning x without returning it – pianist1119 Mar 27 '14 at 0:08
  • It doesn't need to return it. The object x is mutable, so it is modified in place. – wim Mar 27 '14 at 0:24

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