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I'm working on a simple python script that takes a number, converts it to binary, and returns the sum of the binary digits. Here is what I have so far.

#!/usr/bin/python

def sum2(n):
    a = str(bin(n))
    b = a.replace('0b', '')
    return sum([map(int, x) for x in b])

n = int(raw_input("Input number>"))
print sum2(n)

In plain English I take n and convert it to binary, and then convert it to a string. I chop off the 0b (from bin()) and convert the binary characters into a list of ints and then attempt to sum() them.

When trying to figure out how to add the digits together I googled around and found that I should be able to sum() a list of ints. When I attempt to do this, I end up with this traceback.

Traceback (most recent call last):
  File "D:\scripts\sum2n1.py", line 9, in <module>
    print sum2(x)
  File "D:\scripts\sum2n1.py", line 6, in sum2
    return sum([map(int, x) for x in b])
TypeError: unsupported operand type(s) for +: 'int' and 'list'

So I find out sum() needs an "iterable" to do it's job. I google around and find there's an iter() function I can call, but it doesn't seem to work.

There's also __iter__() which doesn't work either.

Can anyone tell me what I'm doing wrong? I'm still quite a bit of a beginner. Thanks in advance.

(And no, it's not my homework.)

share|improve this question
1  
Even though it's not really what you're trying to do, you can sum a list of lists (to produce a list) like this: sum([[1, 2], [3, 4]], []) – recursive Jul 18 '12 at 4:29
3  
Cute trick for this particular case, although obviously less general: bin(n).count('1') – DSM Jul 18 '12 at 4:36
    
that is a good trick for this case... then he doesnt need to even get rid of the 0b – Joran Beasley Jul 18 '12 at 4:44
up vote 5 down vote accepted

You are combining list comprehensions with the map function, in an apparent attempt to do the same thing twice. You want either:

sum(int(x) for x in b)

or

sum(map(int, b))
share|improve this answer
    
This is exactly what I was doing wrong. Although (as evidenced by the rest of the comment thread) there are far far better ways of performing the task I set out to. Thanks a bunch. – iradel.1618 Jul 18 '12 at 5:28

Why not simply

def sum2(n):
    return sum(x=='1' for x in bin(n))

or even more simply

def sum2(n):
    return bin(n).count('1')
share|improve this answer
    
+1 bin(n).count('1') really nicely done :) – avasal Jul 18 '12 at 4:47

This works:

def sum2(n):
    idx = 3 if n < 0 else 2 # adjust index for slice based on neg/pos number
    a = bin(n)[idx:]        # doesn't assign the '0b' (or '-0b' for negatives)

    return sum(int(i) for i in a)  # convert chars into ints and sum

Note, using slice notation to eliminate the leading '0b' or '-0b' is preferable to using replace().

You can use list comprehension, or a generator expression for this.

Update:

In a helpful comment @DSM pointed out that negative numbers have '-0b' in front of the binary string, I updated the code to deal with this by adjusting the slice based on the sign of the number.

share|improve this answer
1  
+1 since you beat me by a second with the same outcome for the function :) – Joran Beasley Jul 18 '12 at 4:28
2  
for i in list(a) is redundant, you can for i in a instead. (Think of list(a) as [x for x in a].) – Dietrich Epp Jul 18 '12 at 4:29
    
@DietrichEpp Right your are, not sure what I was thinking, sheesh .. thanks for catching that! – Levon Jul 18 '12 at 4:32
    
@JoranBeasley I got lucky :) – Levon Jul 18 '12 at 4:35
    
Two minor points: you don't need str, and this will choke on negative numbers, because they'll start with "-0b". – DSM Jul 18 '12 at 4:43

try doing this instead on your return

return sum(map(int,b))

that should work

share|improve this answer

By doing [map(int, x) for x in b], you are doing the same thing twice. map(int, b) would make each digit an int. Or [int(x) for x in b] would do the same. But you are doing both. Pick one or the other. Try:

sum([int(x) for x in b])
share|improve this answer

Don't wrap the map call in the list comprehension.

Instead of

return sum([map(int, x) for x in b])

Do this:

return sum(map(int, b))
share|improve this answer

One using reduce :

ans = reduce(lambda x,y:int(x)+int(y), L)
share|improve this answer

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