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I have a long string of characters which I want to split into a list of the individual characters. I want to include the whitespaces as members of the list too. How do I do this?

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You don't need to do this, since a string is already a sequence of characters. Please provide some example of what you think you're doing. –  S.Lott Nov 18 '10 at 15:45
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One difference between between a string and a list of characters is that a list is mutable. Is that why you want the sequence of character converted to that format? In many if not most other respects they are very similar and the same operations can be performed on either (so it might make sense to just leave them alone). –  martineau Nov 18 '10 at 16:00
    
@martineau: But mutating a "string as list" isn't really very beneficial, since creating new strings is generally so efficient. It would be helpful to see some actual context around this question rather than guessing. I think it indicates a design problem, but without facts, it's hard to tell what the purpose is. –  S.Lott Nov 18 '10 at 18:31
    
@S.Lott: What you say is uite true, I was just wondering out loud in the hopes that the OP would respond by agreeing or not and directly or indirectly provide some of the needed additional information -- doing what is requested is trivial, the motivation is the more interesting aspect. –  martineau Nov 18 '10 at 19:05

3 Answers 3

you can do:

list('foo')

spaces will be treated as list members (though not grouped together, but you didn't specify you needed that)

>>> list('foo')
['f', 'o', 'o']
>>> list('f oo')
['f', ' ', 'o', 'o']
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Thank you for your time and your answers. I think the above answer might help me out. –  Rameses Nov 18 '10 at 17:47
    
What I am trying to do is read a string which includes white spaces, from another .txt files. This file contains just "X" or " " (spaces). –  Rameses Nov 18 '10 at 17:48
    
I am going to use this to construct a two dimensional map. Since two dimensional arrays are apparently not supported by Python, I have to use nested lists. –  Rameses Nov 18 '10 at 17:50
    
One way to simulate a 2D array in Python is to use a dict, with a tuple (x,y) as the key. It's fairly efficient and often easier to manage than nested lists. –  Russell Borogove Nov 18 '10 at 18:45
    
@user512316, depending on what you want to do with this, you might want to look into using Numpy. –  Justin Peel Nov 18 '10 at 19:16

Here some comparision on string and list of strings, and another way to make list out of string explicitely for fun, in real life use list():

b='foo of zoo'
a= [c for c in b]
a[0] = 'b'
print 'Item assignment to list and join:',''.join(a)

try:
    b[0] = 'b'
except TypeError:
    print 'Not mutable string, need to slice:'
    b= 'b'+b[1:]

print b
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This isn't an answer to the original question but to your 'how do I use the dict option' (to simulate a 2D array) in comments above:

WIDTH = 5
HEIGHT = 5

# a dict to be used as a 2D array:
grid = {}

# initialize the grid to spaces
for x in range(WIDTH):
    for y in range(HEIGHT):
        grid[ (x,y) ] = ' '

# drop a few Xs
grid[ (1,1) ] = 'X'
grid[ (3,2) ] = 'X' 
grid[ (0,4) ] = 'X'

# iterate over the grid in raster order
for x in range(WIDTH):
    for y in range(HEIGHT):
        if grid[ (x,y) ] == 'X':
            print "X found at %d,%d"%(x,y)

# iterate over the grid in arbitrary order, but once per cell
count = 0
for coord,contents in grid.iteritems():
    if contents == 'X':
        count += 1

print "found %d Xs"%(count)

Tuples, being immutable, make perfectly good dictionary keys. Cells in the grid don't exist until you assign to them, so it's very efficient for sparse arrays if that's your thing.

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