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I know others have asked about this error, but I'm not sure why I keep getting this error for this code. I'm writing a code to open and read a textfile, then replace each letter in it with a new letter. The letters and their replacements are specified in my dictionary "replacements."

This is my code right now:

def decode(text):
    replacements={'a':'L','b':'A','c':'O','d':'Z','e':'M','f':'V','g':'R','h':'B','i':'U','j':'S','k':'Q','l':'K','m':'Y','n':'J','o':'W','p':'H','q':'E','r':'X','s':'T','t':'P','u':'F','v':'I','w':'G','x':'C','y':'D','z':'N'}
    infile=open(text).read()
    outfile=open("output.txt",'w')
    for letter in infile:
        for old,new in replacements:
            newtext=infile.replace(old,new)
            outfile.write(newtext)
    infile.close()

When I run the code, the error message comes up for the line "for old,new in replacements" and tells me it needs more than 1 value to unpack. I'm very new to programming .. can someone please explain why I'm getting this error?

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1  
What is replacements in your real code? It looks like a half dictionary / half set. Could you edit the question so it's exactly as in your code? –  Simeon Visser Dec 6 '13 at 11:21
    
sorry i was trying to save time and not type it all out. i changed it –  user3074142 Dec 6 '13 at 11:25

2 Answers 2

 for old,new in replacements:

Will iter the keys in a dict.

 for old,new in replacements.iteritems():

Will iterate the key and value in the dict

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@Patrick no, that shouldn't make a difference. The new error lies somewhere else. –  aIKid Dec 6 '13 at 11:23
    
@user3074142 I guess the new error is that you assume infile is the file object but you have already made it into str by .read(). –  Ray Dec 6 '13 at 11:44
    
@user3074142 Strange enough! What is the error you have for the moment? The modified code work well on my machine. –  Ray Dec 6 '13 at 12:22
    
Maybe the OP is using python3 and thus he should use items() instead of iteritems(). However without the full traceback of the error this is just a guess. By the way: items() would also work in python2 and hence is a more general solution, although in python2 it is less efficient. Since the question doesn't specify a version I'd use the most general solution and mention iteritems() as a more efficient solution for python2. –  Bakuriu Dec 6 '13 at 12:37

I think Jakob's answer solved the problem but I would like to rearrange the code a little bit.

def decode(text):
    replacements={'a':'L','b':'A','c':'O','d':'Z','e':'M','f':'V','g':'R','h':'B','i':'U','j':'S','k':'Q','l':'K','m':'Y','n':'J','o':'W','p':'H','q':'E','r':'X','s':'T','t':'P','u':'F','v':'I','w':'G','x':'C','y':'D','z':'N'}
    with open(text, 'r') as infile:
        instr = infile.read()
        for old,new in replacements.iteritems():
            instr = instr.replace(old, new)    
        with open("output.txt", 'w') as outfile:
            outfile.write(instr)
  1. Doing replacement doesn't require looping through all the letters. It will find convert all matches.

  2. It is easier to use with open, since it will take care of close automatically.

Hope these suggestions help you learn Python.

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