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def increment(n):
    """Return n+1
    increment(int) -> int
    """
    return n+1

def double(n):
    """Return 2*n
    double(int) -> int
    """
    return 2*n

How would I go about writing a single assignment statement that uses both of these functions to assigns 2*(n+1) to the variable m.

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6  
What have you tried? This is a fairly straightforward exercise and you won't learn anything if you're just handed the answer. – Greg Hewgill Aug 10 '14 at 23:55
2  
explain it better. Besides it looks trivial – Andres Aug 10 '14 at 23:56
    
m = call_those_functions. Hint: 2*n -> double(n), n+1 -> increment(n). Then just put them together in the right way.. I recommend playing around with (calling) these functions in IDLE (or similar REPL). – user2864740 Aug 11 '14 at 0:04
    
@Greg Hewgill: you have a point, but I disagree. Sometimes, the best way to learn is to see the code. – SebasSBM Aug 11 '14 at 0:05
    
@SebasSBM: Please see blogs.msdn.com/b/oldnewthing/archive/2009/08/04/9856634.aspx – Greg Hewgill Aug 11 '14 at 0:06

We have two functions, let's look at what they do:

double(n) -> 2 * n
increment(n) -> n + 1

So, in the REPL or "Interactive Mode" (or in IDLE):

n = 2
double(n)
> 4
increment(n)
> 3
n
> 2              # note that n was not reassigned

Now, looking at the equation m = 2*(n+1), we can see that it can be rewritten like so:

let n1 = n + 1
     m = 2 * n1

And applying the definitions from above:

n1 = increment(n)
m = double(n1)
# and, by substitution of n1
m = double(increment(n))

Trying it out interactively:

n = 4
m = double(increment(n))
> 10
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What about this?

def combo(n):
    return double(increment(n))
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