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I'm trying to create my own function that converts a list of characters into a string. I'm not allowed to use 'join'. I need to use a loop to do this. I think I have the basis of it right, but I'm not really sure how to implement it into the function properly. I'm new to programming.

Here's the code I'm using:

def to_string(my_list):

    # This line will eventually be removed - used for development purposes only.
    print("In function to_string()")

    # Display letters in a single line 
    for i in range(len(my_list)):
        print(my_list[i], end='') 

        # Separate current letter from the next letter 
        if i<(len(my_list))-1: 
            print(", ", end='')

    # Returns the result
    return ('List is:', my_list)

That returns the result I want (if the list is ['a', 'b', 'c'] it returns a, b, c). But there's a 'test file' we're meant to use to run the function which contains this code:

print("\nto_string Test")
string = list_function.to_string(str_list1)
print(string)
print(list_function.to_string(empty))

And it gives this result:

to_string Test
In function to_string()
r, i, n, g, i, n, g('List is:', ['r', 'i', 'n', 'g', 'i', 'n', 'g'])
In function to_string()
('List is:', [])

Which seems to indicate that I messed up entirely, something to do with the 'print' function I think. Can anyone please tell me where I'm going wrong?

share|improve this question
1  
You're not supposed to print the string form of the list, you need to return it. – Jayanth Koushik May 19 '14 at 9:45

Your function prints your string to stdout, then returns the list itself unchanged.

Build a string and return that instead of printing:

def to_string(my_list):
    result = ''
    last = len(my_list) - 1
    for pos, elem in enumerate(my_list):
        result += str(elem)
        if pos != last:
            result += ', '
    return result

This loops over all elements, keeping a position counter with the enumerate() function; this way it's easy to detect if we are adding the last element to the result.

share|improve this answer
    
This is overly complicated. – Scorpion_God May 19 '14 at 10:08
    
@Scorpion_God: any manual string concatenation is overly complicated. – Martijn Pieters May 19 '14 at 10:09
    
True, but there's no need to keep track of the position. – Scorpion_God May 19 '14 at 10:11
    
@Scorpion_God: I mirrored the OP's version, gave him a better tool than using a range(len(my_list)) loop. We could have used slicing too, but this is fine for a coding exercise. Remember, this is a beginning student learning to code. – Martijn Pieters May 19 '14 at 10:13
    
If this is a beginning student why did you use tuple unpacking and enumerate()? – Scorpion_God May 19 '14 at 10:33

If you want to emulate the .join() method of strings than you may want to add a delimiter option to your function.

def to_string(my_list, delimiter):
    string = str(my_list.pop(0))
    while my_list:
        string += delimiter + str(my_list.pop(0))
    return string

.pop(n) will delete the nth element from the list and return it.


If you want to return the original list as well:

def to_string(my_list, delimiter):
    string = ''
    if my_list:
        string = my_list[0]
        for elem in my_list[1:]:
            string += delimiter + str(elem)
    return my_list, string

The syntax my_list[n] will get the nth element from the list. Note that the elements are numbered from 0, not from 1. The syntax my_list[n:] will return the elements of the list starting from n. Example:

>>> my_list = ['this', 'is', 'a', 'list']
>>> my_list[1:]
['is', 'a', 'list']
share|improve this answer
    
What if the original list should have been kept intact? – Martijn Pieters May 19 '14 at 10:09
1  
Now, why not use slicing for that second version? for elem in my_list[1:]? A for loop over range() just to produce an index is still not idiomatic Python. – Martijn Pieters May 19 '14 at 10:31
    
@MartijnPieters Because then the function would fail with a one-element list and list slicing would have to be explained. – Scorpion_God May 19 '14 at 10:39
    
No, it won't fail for a one-element list. ['foo'][1:] is an empty list, the for loop will simply not run. You already have to explain list.pop(). – Martijn Pieters May 19 '14 at 10:40
    
@MartijnPieters Thanks, I did not realise that that was the behaviour of list slicing. – Scorpion_God May 19 '14 at 10:52

Loop over the list elements and add them to your string. (Just a simpler version of the proposed solutions)

def to_string(my_list):
  result_string = ''
  for element in my_list:
    result_string += element
  return result_string

To test:

a_list = ['r', 'i', 'n', 'g', 'i', 'n', 'g']
print to_string(a_list) # prints ringing 

b_list = []
print to_string(b_list) # returns empty
share|improve this answer

You could also use reduce function:

aList=['w','o','r','d']
aString=reduce(lambda x,y:x+y,aList)
share|improve this answer

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