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Here's what I've got so far:

def encodeFive(zip):

    zero =  "||:::"

    one =   ":::||"

    two =   "::|:|"

    three = "::||:"

    four =  ":|::|"

    five =  ":|:|:"

    six =   ":||::"

    seven = "|:::|"

    eight = "|::|:"

    nine =  "|:|::"

    codeList = [zero,one,two,three,four,five,six,seven,eight,nine]

    allCodes = zero+one+two+three+four+five+six+seven+eight+nine

    code = ""
    digits = str(zip)
    for i in digits:

        code = code + i    

    return code

With this I'll get the original zip code in a string, but none of the numbers are encoded into the barcode. I've figured out how to encode one number, but it wont work the same way with five numbers.

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1  
Have you considered simply using one of the available barcode fonts instead? –  Lasse V. Karlsen May 9 '10 at 18:59
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7 Answers

codeList = ["||:::", ":::||", "::|:|", "::||:", ":|::|",
    ":|:|:", ":||::", "|:::|", "|::|:", "|:|::" ]
barcode = "".join(codeList[int(digit)] for digit in str(zipcode))
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An additional note: zip is a built in python method, it's preferable to use another variable name. –  KillianDS May 9 '10 at 19:30
    
Fixed. I use zip() so rarely (list comprehensions or generators usually fit better), I forget it exists sometimes. –  Mike DeSimone May 9 '10 at 21:12
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Perhaps use a dictionary:

barcode = {'0':"||:::",
           '1':":::||",
           '2':"::|:|",
           '3':"::||:",
           '4':":|::|",
           '5':":|:|:",
           '6':":||::",
           '7':"|:::|",
           '8':"|::|:",
           '9':"|:|::",
           }

def encodeFive(zipcode):
    return ''.join(barcode[n] for n in str(zipcode))

print(encodeFive(72353))
# |:::|::|:|::||::|:|:::||:

PS. It is better not to name a variable zip, since doing so overrides the builtin function zip. And similarly, it is better to avoid naming a variable code, since code is a module in the standard library.

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You're just adding i (the character in digits) to the string where I think you want to be adding codeList[int(i)].

The code would probably be much simpler by just using a dict for lookups.

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that should be codeList[int(i)], as i is a string in this current example. –  Autoplectic May 9 '10 at 19:14
    
You're right! I didn't think of using int(i). Thanks so much! –  Maggie May 9 '10 at 22:35
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I find it easier to use split() to create lists of strings:

codes = "||::: :::|| ::|:| ::||: :|::| :|:|: :||:: |:::| |::|: |:|::".split()

def zipencode(numstr): 
    return ''.join(codes[int(x)] for x in str(numstr))

print zipencode("32345") 
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This is made in python.

number = ["||:::",
    ":::||",
    "::|:|",
    "::||:",
    ":|::|",
    ":|:|:",
    ":||::",
    "|:::|",
    "|::|:",
    "|:|::"
    ]
def encode(num):
    return ''.join(map(lambda x: number[int(x)], str(num)))

print encode(32345)
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way to make python code look less readable than Perl ;) –  Assaf Lavie May 9 '10 at 19:43
    
While your code is correct, a dictionary (with "0", "1"… as keys) seems more preferable. –  tzot May 9 '10 at 20:48
    
@ΤΖΩΤΖΙΟΥ at the beggining i did a dict, but in order to make the example clearer i decided to use an "array". –  msemelman May 10 '10 at 13:30
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I don't know what language you are usingm so I made an example in C#:

int zip = 72353;

string[] codeList = {
  "||:::", ":::||", "::|:|", "::||:", ":|::|",
  ":|:|:", ":||::", "|:::|", "|::|:", "|:|::"
};
string code = String.Empty;
while (zip > 0) {
  code = codeList[zip % 10] + code;
  zip /= 10;
}
return code;

Note: Instead of converting the zip code to a string, and the convert each character back to a number, I calculated the digits numerically.

Just for fun, here's a one-liner:

return String.Concat(zip.ToString().Select(c => "||::::::||::|:|::||::|::|:|:|::||::|:::||::|:|:|::".Substring(((c-'0') % 10) * 5, 5)).ToArray());
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@ΤΖΩΤΖΙΟΥ: The tag wasn't there when I answered the question. –  Guffa May 9 '10 at 21:08
    
Ah, ok. I didn't check the revision history to see what was corrected, but in any case, I deleted my comment. –  tzot May 9 '10 at 21:23
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It appears you're trying to generate a "postnet" barcode. Note that the five-digit ZIP postnet barcodes were obsoleted by ZIP+4 postnet barcodes, which were obsoleted by ZIP+4+2 delivery point postnet barcodes, all of which are supposed to include a checksum digit and leading and ending framing bars. In any case, all of those forms are being obsoleted by the new "intelligent mail" 4-state barcodes, which require a lot of computational code to generate and no longer rely on straight digit-to-bars mappings. Search USPS.COM for more details.

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