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I would like to change the below Python function to cover all situations in which my business_code will need padding. The string.zfill Python function handles this exception, padding to the left until a given width is reached but I have never used it before. You help is appreciated.

 #function for formating business codes
def formatBusinessCodes(code):
    """ Function that formats business codes.  Pass in a business code which will convert to a string with 6 digits """
    busCode=str(code)
    if len(busCode)==1:
        busCode='00000'+busCode
    elif len(busCode)==2:
        busCode='0000'+busCode
    else:
        if len(busCode)==3:
            busCode='000'+busCode
    return busCode

#pad extra zeros 
df2['business_code']=df2['business_code'].apply(lambda x: formatBusinessCodes(x))
businessframe['business_code']=businessframe['business_code'].apply(lambda x: formatBusinessCodes(x))
financialframe['business_code']=financialframe['business_code'].apply(lambda x: formatBusinessCodes(x))

The code above handles a business_code of length 6 but I'm finding that the business_codes vary in length < and > 6. I'm validating data state by state. Each state varies in their business_code lengths (IL - 6 len, OH - 8 len). All codes must be padded evenly. So a code for IL that is 10 should produce 000010, etc. I need to handle all exceptions. Using a command line parsing parameter (argparse), and string.zfill. Thank you.

share|improve this question
    
What's your problem with string.zfill exactly? –  Cairnarvon Feb 25 '13 at 23:17
    
My problem is I'm getting a TypeError: zfill() takes exactly 1 argument (0 given). Im passing in a parsing paramter, asking the user the length of the business code (parser.add_argument('-b',help='Specify length of the business code', businessformat=args.d). I'm unsure how to bring in the argument using string.zfill (def formatBusinessCodes(code):, str.zfill(code)) –  Tone Feb 26 '13 at 15:10

2 Answers 2

up vote 0 down vote accepted
parser.add_argument('-b',help='Specify length of the district code')   
businessformat=args.d 
businessformat=businessformat.strip() 

df2['business_code']=df2['business_code'].apply(lambda x: str(x)) 

def formatBusinessCodes(code): 
bus=code bus.zfill(4) 
return bus 

formatBusinessCodes(businessformat)  
share|improve this answer

You could use str.format:

def formatBusinessCodes(code):
    """ Function that formats business codes.  Pass in a business code which will convert to a string with 6 digits """
    return '{:06d}'.format(code)

In [23]: formatBusinessCodes(1)
Out[25]: '000001'

In [26]: formatBusinessCodes(10)
Out[26]: '000010'

In [27]: formatBusinessCodes(123)
Out[27]: '000123'

The format {:06d} can be understood as follows:

  • {...} means replace the following with an argument from format, (e.g. code).
  • : begins the format specification
  • 0 enables zero-padding
  • 6 is the width of the string. Note that numbers larger than 6 digits will NOT be truncated, however.
  • d means the argument (e.g. code) should be of integer type.

Note in Python2.6 the format string needs an extra 0:

def formatBusinessCodes(code):
    """ Function that formats business codes.  Pass in a business code which will convert to a string with 6 digits """
    return '{0:06d}'.format(code)
share|improve this answer
    
No need for negative marks. –  Tone Feb 27 '13 at 13:39

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