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I am trying to get a simple function which takes n and prints;

    If n > 0:
            print((n*'*')+(n*'!'), end=' ')

and trying to get the same solution but recursively. I am a beginner to recursion, and often I get the "higher level of thinking" but am having trouble understanding the code that must follow.

My base case is that when n is 0 it prints nothing. When n is more than 1 it will print n copies of * + n copies of !

    def repeat(n):
        if n <= 0:
            pass
        else:
            repeat(n-1)
            print((n*'*')+(n*'!'), end=' ')

right now it prints n, and then n-1 successively until 0. I have tried breaking it up into 2 print statements and using more than one recursion .. but it becomes a messy pattern.

I am also not allowed to use loops. This one is driving me insane, I have come up with several solutions to it besides the easy one line statement, but none that use recursion. Any direction would help greatly. Thank you.

share|improve this question
    
Hint: you have an if n <= 0 clause, but you don't use it. BTW, lose the "n*'*'". – Brian Cain Oct 26 '12 at 21:09
    
Another hint: docs.python.org/reference/simple_stmts.html#index-23 – Brian Cain Oct 26 '12 at 21:11
up vote 3 down vote accepted

It's simlper if you build and return a string and print it outside of the function, like this:

def printPattern(n):
    if n <= 0:
        return ''
    return '*' + printPattern(n-1) + '!'

Or as a one-liner:

def printPattern(n):
    return '*' + printPattern(n-1) + '!' if n > 0 else ''

Either way, this works:

print printPattern(5)
> *****!!!!!
share|improve this answer
    
I think, OP doesn't want this. He said, when n is more than 1, then print n copies of * + n copies of !. – Rohit Jain Oct 26 '12 at 21:26
    
So, for n = 5 :- 5 * and 5 !, then n = 4 : - 4 * and 4!, and so on, till n = 0. – Rohit Jain Oct 26 '12 at 21:27
    
Or did I misunderstood the question? :( – Rohit Jain Oct 26 '12 at 21:28
    
@RohitJain I believe my answer is correct, "n copies of *" plus "n copies of !" means just that, say for n==3: ***!!! – Óscar López Oct 26 '12 at 21:31
    
Thank you Oscar! That was it, I was using that technique but not in an iteration before! This was it. Thank you! – jwl4 Oct 26 '12 at 21:35

Assume you have a solution for n - 1. Prepend * and append !.

def repeat(n):
    if n > 0:
        print("*", end=" ")
        repeat(n - 1)
        print("!", end=" ")
share|improve this answer

The following does what you appear to want.

def repeat(n):
  def stars(n):
    return '*'+stars(n-1)+'!' if n > 0 else ''
  print stars(n)

Eg, repeat(5) prints *****!!!!! and repeat(8) prints ********!!!!!!!!.

share|improve this answer

I don't actually know what you're asking... If there's more efficient or better way of doing this? This would be quite obvious:

def repeat(n):
    if n >= 0:
        print((n*'*')+(n*'!'), end=' ')
        return repeat(n-1)
share|improve this answer

I would use two strings here, and return a concatenated string of those two strings when n<=0 and use return instead of printing inside function:

def repeat(n,strs1="",strs2=""):     #default value of strings is ""

    if n <= 0:
        return strs1+strs2   #if n<=0 the concatenate the two strings and return them
    else:
        strs1+="*"          #add * to strs1
        strs2+="!"          #add ! to strs2 
        return repeat(n-1,strs1,strs2)  #pass n-1 ,as well as the two strings to recursive call

print(repeat(5))
print(repeat(3))

output:

*****!!!!!
***!!!
share|improve this answer

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