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I want to make sure 'rep' isn't made 0 at the beginning of each recursion. At the current point it is defaulted to starting at 0, but I want it to save the value of rep+=1.

Is there an easy fix?

def printPattern(n,k,rep =0):
    'prints a pattern of stars'
    if n == k:
        print ('{}{}'.format(' '*rep,'*'*n))
    elif n%2 == 0:
        rep+=1
        print ('{}{}'.format(' '*rep,'*'*n))
        printPattern(n+1,k)
    else:
        rep+=1
        print ('{}*'.format(' '*rep))
        printPattern(n+1,k)
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3  
Pass your rep to recursive function call.. – Rohit Jain Oct 16 '12 at 16:32
up vote 1 down vote accepted

You can start by actually passing rep in your recursive call

printPattern(n+1,k, rep)

def printPattern(n,k,rep =0):
    'prints a pattern of stars'
    if n == k:
        print ('{}{}'.format(' '*rep,'*'*n))
    elif n%2 == 0:
        rep+=1
        print ('{}{}'.format(' '*rep,'*'*n))
        printPattern(n+1,k, rep)
    else:
        rep+=1
        print ('{}*'.format(' '*rep))
        printPattern(n+1,k, rep)
share|improve this answer
    rep+=1
    print ('{}{}'.format(' '*rep,'*'*n))
    printPattern(n+1,k, rep)

If you pass new value of rep as 3rd parameter, then default value 0 will not be used.

So, when you call this function the first time, you can actually skip using the 3rd parameter, then the default value will be used. But the next time, every recursive call to this function will take rep as 3rd parameter, passed as the current value of rep

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