Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Instead of appending a value by list.append() to the list , Why can;t I assign a value to it like this?

In [24]: def a():
   ....:     a1=[5]
   ....:     print a1[0]
   ....:     

In [25]: a()
5

In [28]: def a():
   ....:     a1=[5]
   ....:     a1[1]=12
   ....:     print a1[1]
   ....:     

In [29]: a()
---------------------------------------------------------------------------
IndexError                                Traceback (most recent call last)
/home/dubizzle/webapps/django/dubizzle/<ipython-input-29-72f2e37b262f> in <module>()
----> 1 a()

/home/dubizzle/webapps/django/dubizzle/<ipython-input-28-681d86164e67> in a()
      1 def a():
      2     a1=[5]
----> 3     a1[1]=12
      4     print a1[1]
      5 

IndexError: list assignment index out of range
share|improve this question
2  
You can assign to existing items in the list, but you cannot use assignment to add new items in Python. –  Frédéric Hamidi Jul 18 '12 at 12:42
    
Any solid reason for it ??or its just a rule..? –  NIlesh Sharma Jul 18 '12 at 12:43
    
@NIleshSharma: There are plenty of good reasons to disallow assignment to non-existent cells. The most obvious is avoiding a significant class of bugs. –  Marcelo Cantos Jul 18 '12 at 12:49
2  
@NIleshSharma : think about the case -- a=[1]; a[4]=5. What should be done with elements 1,2 and 3? Python's not in the business of guessing what a reasonable default value would be for those elements. It also (frequently) avoids special casing things (assigning to the next element in the list is a special case here) as it leads to cleaner code. –  mgilson Jul 18 '12 at 12:49
4  
@NIleshSharma It is just a design decision. Python's designers could have opted to allow inserting an element into a non-existing position. If there is any gap, it could be filled with None for instance. But, IMO it makes more sense the way they actually chose. –  betabandido Jul 18 '12 at 12:53

6 Answers 6

up vote 4 down vote accepted

a=[5] creates a list with size 1. The following is valid:

a[0] = 1

but you cannot alter the size of the list by just assigning a value to a given, non-existing position.

You can extend the list, though, by using append or +=:

a.append(2)
a += [2]

You can also pre-allocate a list with a given size:

a = [0] * 4

That would give you a list with four elements (all zeros). After that you could change any element in the range 0-3.

As a reference, here you have some documentation on lists from python.org.

share|improve this answer

You should pre fill it with None or something for adding with an index

myList = [None] * 10
myList[1] = 'a'

Since, list initially is a touple and you can't add anything without append.

share|improve this answer
a1[x] = y

This cannot happen because if the list only contains 1 item and you try to assign a1[3] what is it going to assign in the other two [1][2] items in the list?

use the built-in methods for the types to modify them. .append() .insert()

share|improve this answer

list.append() adds an element in the list, and a[1] = 'x' assigns some value to list item with index 1. The problem with your code is you are trying to access a memory block which does not exist. try this instead.

def a():
    a1=[5, 0] 
    a1[1]=12 
    print a1[1]

or

def a()
    a1 = list('abc')
    a1[1]=12 
    print a1[1]
share|improve this answer

The error message is self-explanatory.

To force creating new items you could use slicing:

a1 = [5]
a1[1:2] = [12]

If you don't care about the order of elements you could use a dictionary:

d = {}
d[1] = 12
share|improve this answer

If you really wanted to you could create your own class that redimensions when you ask for a non-existent index (and fills the rest with None)

class mylist():
    def __init__(self,l):
        self.l = l
    def extend(self,index):
        diff = index + 1 - len(self.l)
        if diff > 0:
            self.l.extend([ None for x in range(diff) ] )
    def __getitem__(self,index):
        # self.extend(index) ## depending on your taste
        return self.l[index]
    def __setitem__(self,index,value):
        self.extend(index) 
        self.l[index] = value
    def __repr__(self):
        return self.l.__repr__()

a = mylist([0,1,2,3])
print 'List: %s' % a
# print a[5]  ### this will throw an 'list index out of range' unless you comment out the bit in __getitem__
a[5] = 5
print 'List: %s' % a
print a[5]

Which outputs:

List: [0, 1, 2, 3]
List: [0, 1, 2, 3, None, 5]
5

Check it out on http://pythonfiddle.com/auto-dimension-list

This is incomplete as you need to also bridge all other methods of list, not sure how to do that (probably some getattr ?) if some expert could chime in that would be great!

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.