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Java has Arrays.fill(A,1). For a pre-existing List A, is there a shortcut for filling the list with 1? I am writing a function that takes an array and changes the array in some ways. Since arrays are pointers, my function will not return an array. The caller will see the changes after my function returns. The first step in my function is to fill the array with 1s. Doing

def my_work(A):
   A =[1]*len(A) 
   # more work on A

does not seem to change A when my_work is done.

So is my only option

for i in range(len(A)):
  A[i]=1

or is there a shortcut? Mine looks like a workaround.

share|improve this question
    
I didn't know I needed to clarify but it seems I do. my_work needs to change A in place. Therefore, I cannot return A. The caller will simply call my_work(A) and after my work returns, A is supposed to have been changed. The caller will not do A = my_work(A). That would not be in-place. –  learner Jan 27 '13 at 21:52

2 Answers 2

up vote 4 down vote accepted

If you really want to change A in place, the A[:] syntax should work:

>>> A = [1,2,3]
>>> def my_work(A):
...     A[:] = [1]*len(A) 
...     
>>> A
[1, 2, 3]
>>> my_work(A)
>>> A
[1, 1, 1]

And here is the relevant section of the tutorial ("assignment to slices").

share|improve this answer
    
Up vote for you! –  kasavbere Jan 27 '13 at 22:02
    
Since I had just posted my answer, I deleted mine as your is better. –  kasavbere Jan 27 '13 at 22:12

A is not changing because your not returning it our of my_work. Once my_work is complete the A you have in there is not referenced.

def my_work(A):
    A =[1]*len(A) 
    return A  #This line is needed

A = my_work(A)

Another way to do this is something like this.

def reset_list(L, x):
     return [x for i in xrange(len(L))]

A = reset_list(A,1)
share|improve this answer
    
how is this different than my answer? –  karthikr Jan 27 '13 at 20:31
    
It's not I was going to ask you the same thing, we crossed. –  Matt Alcock Jan 27 '13 at 20:31
    
I guess I highlight to user1612593 why A is not modififed –  Matt Alcock Jan 27 '13 at 20:32
    
As I say in my post, filling A with 1s is the first step, the function has to do additional work on A. So I can't return immediately as in your case. Also imagine that the person using my_work does not want to do A = my_work(A). Since A is an object, my_work should simply change it. –  learner Jan 27 '13 at 21:45

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