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What is your solution to the FizzBuzz problem?

Write a program that prints the numbers from 1 to 100. But for multiples of three print "Fizz" instead of the number and for the multiples of five print "Buzz". For numbers which are multiples of both three and five print "FizzBuzz".

Here is what I have right now:

#!/usr/bin/python
for i in range(101):
    if i % 3 == 0:
        i = 'fizz'
        print i
    elif i % 5 == 0:
        i = 'buzz'
        print i
    elif i % 3 == 0 and i % 5 == 0:
        i = 'fizz buzz'
        print i
    else:
        print i
share|improve this question

marked as duplicate by Moron, Randolpho, wheaties, Philipp, Chris B. Jul 15 '10 at 15:04

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

1  
Please mark your homework with the [homework] tag. Please post the code you have so far. This is not www.do_my_homework_for_me.com. – S.Lott Jul 15 '10 at 13:51
    
Please send me teh codes? – owenmarshall Jul 15 '10 at 13:52
2  
    
well its not a homework exactly. I wrote the following script and it doesn't do the job as expected #!/usr/bin/python for i in range(101): if i % 3 == 0: i = 'fizz' print i elif i % 5 == 0: i = 'buzz' print i elif i % 3 == 0 and i % 5 == 0: i = 'fizz buzz' print i else: print i – Dananjaya Jul 15 '10 at 13:53
    
What happens when you run that? – owenmarshall Jul 15 '10 at 13:55

The following is probably more efficient:

print "1"
print "2"
print "Fizz"
print "4"
print "Buzz"
...
print "98"
print "Fizz"
print "Buzz"
share|improve this answer
1  
We could write a program that generates this for a one-time computational cost. Definitely worth it in an amortized sense if we run it multiple times! – Donald Miner Jul 15 '10 at 14:13
    
Unless efficiency means the size of the program rather than runtime. – clay Jul 15 '10 at 14:45
3  
Oh come on guys, this is highly nonoptimal. print "1\n\2\nFizz\n\4..." really blows this solution away. – Tim Pietzcker Jul 15 '10 at 14:45
    
Tim: You've already got several bugs... – clay Jul 15 '10 at 15:04
    
Oh dear. Went a bit overboard with the backslashes there :) – Tim Pietzcker Jul 15 '10 at 15:06
#!/usr/bin/python 
for i in range(101): 
 if i % 15 == 0:
  print 'FizzBuzz'
 elif i % 3 == 0: 
  print 'Fizz'
 elif i % 5 == 0: 
  print 'Buzz' 
 else:
  print i

Please, send the credits to my univerzity, I need them.

share|improve this answer
    
Your code is missing a ':' after the 0 in the first if clause. – clay Jul 15 '10 at 16:24

Well it's working now, i swapped two lines (the 'if i % 3 == 0 & i % 5 == 0' line and one 'elif' line.)

Working script is:

#!/usr/bin/python

for i in range(1,101):
 if i % 3 and i % 5 == 0:
  i = 'fizz'
  print i
 elif i % 5 == 0:
  i = 'buzz'
  print i
 elif i % 3 == 0:
  i = 'fizz buzz'
  print i
 else:
  print i
share|improve this answer
    
Note that range(101) gives you 0-100, not 1-100. – Justin Ardini Jul 15 '10 at 13:59
    
A previous answer (that has since disappeared) used range(1,101). That would work. – 31eee384 Jul 15 '10 at 14:03
    
range(1,101) fixed. – Dananjaya Jul 15 '10 at 14:13
#!/usr/bin/python

for i in range(1,101):
  out = ''
  if i % 3 == 0: out = 'Fizz '
  if i % 5 == 0: out = out + 'Buzz'
  print (out or i)

This avoids a third check for multiples of 15

share|improve this answer
for i in xrange(1,101):
    if not i % 15:
        print 'FizzBuzz'
    elif not i % 5:
        print 'Buzz'
    elif not i % 3:
        print 'Fizz'
    else:
        print i

It's silly to assign a new value to i if all you're doing is printing it.

If you want to be clever:

for i in xrange(1, 101):
   print 'FuzzBuzz' if not i % 15 else \
         'Buzz' if not i % 5 else \
         'Fuzz' if not i % 3 else \
         i

After calling timeit.timeit with 100,000 repetitions, on each method from 1-100, and 1-1000, there doesn't seem to be a whole lot of difference in the two methods:

Clever to 100:  9.38496558538
Clever to 1000:  79.0384339106
Straight to 100:  9.45068505041
Straight to 1000:  78.4853689489
share|improve this answer
for i in range(1, 101):
  s = ''
  if not i % 3:
    s += 'Fizz'
  if not i % 5:
    s += 'Buzz
  print(s or i)
share|improve this answer

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