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I have to replace the north, south, etc with N S in address fields.

If I have

list = {'NORTH':'N','SOUTH':'S','EAST':'E','WEST':'W'}
address = "123 north anywhere street"

Can I for iterate over my dictionary values to replace my address field?

for dir in list[]:
   address.upper().replace(key,value)

I know i'm not even close!! But any input would be appreciated if you can use dictionary values like this.

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3  
this is pretty tricky if matches can overlap. See this question – georg Jan 4 '13 at 11:45
    
A BIG part of the problem is that the string replace() method returns a copy of string with occurrences replaced -- it doesn't do it in-place. – martineau Jan 4 '13 at 13:26
address = "123 north anywhere street"

for word, initial in {"NORTH":"N", "SOUTH":"S" }.items():
    address = address.replace(word.lower(), initial)
print address

nice and concise and readable too.

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One option I don't think anyone has yet suggested is to build a regular expression containing all of the keys and then simply do one replace on the string:

>>> import re
>>> l = {'NORTH':'N','SOUTH':'S','EAST':'E','WEST':'W'}
>>> pattern = '|'.join(sorted(re.escape(k) for k in l))
>>> address = "123 north anywhere street"
>>> re.sub(pattern, lambda m: l.get(m.group(0).upper()), address, flags=re.IGNORECASE)
'123 N anywhere street'
>>> 

This has the advantage that the regular expression can ignore the case of the input string without modifying it.

If you want to operate only on complete words then you can do that too with a simple modification of the pattern:

>>> pattern = r'\b({})\b'.format('|'.join(sorted(re.escape(k) for k in l)))
>>> address2 = "123 north anywhere southstreet"
>>> re.sub(pattern, lambda m: l.get(m.group(0).upper()), address2, flags=re.IGNORECASE)
'123 N anywhere southstreet'
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you are close, actually:

dictionary = {"NORTH":"N", "SOUTH":"S" } 
for key in dictionary.iterkeys():
    address.upper().replace(key, dictionary[key])
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You are probably looking for iteritems():

d = {'NORTH':'N','SOUTH':'S','EAST':'E','WEST':'W'}
address = "123 north anywhere street"

for k,v in d.iteritems():
    address = address.upper().replace(k, v)

address is now '123 N ANYWHERE STREET'


Well, if you want to preserve case, whitespace and nested words (e.g. Southstreet should not converted to Sstreet), consider using this simple list comprehension:

import re

l = {'NORTH':'N','SOUTH':'S','EAST':'E','WEST':'W'}

address = "North 123 East Anywhere Southstreet    West"

new_address = ''.join(l[p.upper()] if p.upper() in l else p for p in re.split(r'(\W+)', address))

new_address is now

N 123 E Anywhere Southstreet    W
share|improve this answer
    
But this would end up changing the entire case of the address – Abhijit Jan 4 '13 at 11:46
    
Depends on whether the question is iterate over an dictionary or do all the work for me. – sloth Jan 4 '13 at 11:53
    
@Abhijit Nonetheless, I added and example of how to preserve case, whitespace and nested matches. – sloth Jan 4 '13 at 12:31
    
@Dominic - great suggestion about unintentionally skewing addresses such as Southstreet Rd. In rethinking this, is there a way to ignore the replace if I have an address such as South St.? Is there a RE that would ignore the replace in this case? – user1947457 Jan 7 '13 at 2:02

Try,

import re
l = {'NORTH':'N','SOUTH':'S','EAST':'E','WEST':'W'}

address = "123 north anywhere street"

for k, v in l.iteritems():
    t = re.compile(re.escape(k), re.IGNORECASE)
    address = t.sub(v, address)
print(address)
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