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The function assumes that in both cases the input is acceptable (ie.) when doing str to int assume that the str contains an actual int and vise versa always works anyway

The function must also not use the easy to use built in python functions such as int() or str(). Can only use basic coding along with def headers such as (for i in rang() and conditionals and what not.) Pls Help. :)

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2  
What have you tried so far? –  Scott Hunter Apr 17 '12 at 23:52
    
what have you tried so far?? –  dm03514 Apr 17 '12 at 23:52
    
It's good that you tagged this as homework, but you still need to show what you've tried or ask a specific question about what you can't figure out. –  agf Apr 17 '12 at 23:53
    
range() is a builtin function, so you can't use it? or is there a bunch of exceptions? –  gnibbler Apr 17 '12 at 23:55
    
@gnibbler: range() (or at least xrange()) is something that, in my opinion, because it does belong to the basic coding. Without it you wouldn't probably have the ability to do basic for loop known from other languages (such as for(var i=0; i<10; i++) for example). Or you would need to list all the values of i like for i in [0,1,2,3,4] instead of for i in xrange(5). –  Tadeck Apr 18 '12 at 0:34
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4 Answers

def str2int(s):
    i = 0
    chr2digit = {`j`:j for j in (0,1,2,3,4,5,6,7,8,9)}
    for c in s:
        i = i*10 + chr2digit[c]
    return i


def int2str(i):  # rather easy in Python2
    return `i`

def int2str(i):  # works in Python2 and Python3
    return "%s"%i
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This makes my kitten cry. –  ch3ka Apr 18 '12 at 0:10
    
@ch3ka How is this worse than ten ifs? –  agf Apr 18 '12 at 0:11
    
@ch3ka, using a dictionary like this (as a mapping) is pretty normal when dealing with arbitrary mappings. Not allowed to use ord() so it's a good fit here. Normally I wouldn't inline the dict, but this is just play code, so what's the problem? –  gnibbler Apr 18 '12 at 0:21
    
@agf it is not, both should burn in hell. –  ch3ka Apr 18 '12 at 0:42
    
@ch3ka: given the ridiculous restrictions, I don't think any nice solution exists. There's only one (obvious) way to do a thing in Python, and when you arbitrarily disallow the obvious way you're left with alternatives like this. –  Li-aung Yip Apr 18 '12 at 1:10
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It may be ugly, but it works. See this function:

>>> def strint(val):
    digits = '0123456789'
    try:
        # Trying to treat it as a string-to-int conversion
        result = 0
        for l in val:
            result = result * 10 + digits.index(l)
    except (TypeError,):
        # There was a type error - we have int instead of string
        result = ''
        while val:
            digit = val % 10
            result = digits[digit] + result
            val = val // 10
        else:
            if not val and not result:
                result = '0'
    return result

>>> strint('123')
123
>>> strint(123)
'123'
>>> strint('0')
0
>>> strint(0)
'0'
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wow. this is ugly. but.. works, apparently. –  ch3ka Apr 18 '12 at 0:14
    
I didn't think you are allowed to use digits.index –  gnibbler Apr 18 '12 at 0:15
1  
@gnibbler: If digits.index is indeed not allowed, I would probably use something like [i for i in xrange(len(digits)) if digits[i] == l][0]. And I believe xrange / range is allowed, because without it you wouldn't have such a basic solution like for loop known from other languages. If len is also not allowed, I would use just 10 instead of len(digits), because the number of decimal digits is rather constant ;) –  Tadeck Apr 18 '12 at 0:24
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This is only for the int replacement and doesn't handle everything, but it is homework so I'll let you do the rest. It could be made a little simpler if you use ord.

def myint(s):
   x = 0
   for ch in s:
      if ch == '0': x = x * 10 + 0
      if ch == '1': x = x * 10 + 1
      if ch == '2': x = x * 10 + 2
      if ch == '3': x = x * 10 + 3
      if ch == '4': x = x * 10 + 4
      if ch == '5': x = x * 10 + 5
      if ch == '6': x = x * 10 + 6
      if ch == '7': x = x * 10 + 7
      if ch == '8': x = x * 10 + 8
      if ch == '9': x = x * 10 + 9
   return x
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even the ugly function above is less ugly than this. –  ch3ka Apr 18 '12 at 0:16
    
@ch3ka, above is not a very useful concept when the ordering of the answers keeps changing :) –  gnibbler Apr 18 '12 at 0:23
    
A disadvantage of the chain of if's is that you are doing 10 comparisons for each digit –  gnibbler Apr 18 '12 at 0:24
    
@gnibbler you are of course right, this is my first day here. I meant Tadecks solution. –  ch3ka Apr 18 '12 at 0:44
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Here's one approach you may consider:

x = "1"
print type(x)
<type 'str'>
import string
if x in string.digits:
    # Now you know that x is a number
    print x

You can do the same with string.ascii_letters too. Not a complete answer, but should point you in the right direction.

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Unless x is 10, which is not in string.digits. –  robert Apr 18 '12 at 0:06
    
Both x[0] and x[1] would be however. –  01100110 Apr 18 '12 at 0:11
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