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the obvious solution is something like:

if (x % 15 == 0) println("fizzbuzz");
else if (x % 3 == 0) println ("fizz");
else if (x % 5 == 0) println ("buzz");

then you could say that the trick is to concatenate fizz and buzz:

if (x % 3 == 0) print("fizz");
if (x % 5 == 0) print("buzz");
if (x % 15 == 0) println();

or

print("%s%s%s", x % 3 == 0 ? "fizz" : "", x % 5 == 0 ? "buzz" : "", x % 15 == 0 ? "\r\n" : "");

so the problem is the line break, and in all of the above cases we are performing 3 checks.

assuming that there needs to be a line break after either "fizz", or "buzz", how can it be done using only 2 checks?

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2  
What's a "check"? One has to work surprisingly hard to keep the minimum number needed from being zero. –  David Eisenstat Jul 6 '13 at 12:36
1  
What is fizzbuzz? –  Adrian Ratnapala Jul 6 '13 at 12:37
    
"fizzbuzz" is a popular interview question, there's plenty of information on the web about it. It typically tests that an applicant is able to read a specification, validate the specification (it is usually worded so that it's slightly ambiguous as to whether you need to output both fizz and buzz when both hit, used to ensure the applicant knows to ask for clarification), and that the applicant is able to write working code. You'd be surprised how many that turns in their CV's for job positions fails the fizzbuzz (or similar) tests. –  Lasse V. Karlsen Jul 6 '13 at 12:38
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4 Answers

up vote 15 down vote accepted

How about no checks?

string[] output = { "fizzbuzz", "", "", "fizz", "", "buzz", "fizz", "", "", "fizz", "buzz", "", "fizz", "", "" };
print("%s", output[x % 15]);

Note that this of course only removes if statements from this code. The underlying code will most likely contain a jump instruction or two.

If you want to make it a bit clearer what is happening you can create two arrays:

string[] fizz = { "fizz", "", "" };
string[] buzz = { "buzz", "", "", "", "" };
print("%s%s", fizz[x % 3], buzz[x % 5]);

Note that both of these implementations will not handle negative numbers, here's a version that does:

string[] fizz = { "fizz", "", "" };
string[] buzz = { "buzz", "", "", "", "" };
print("%s%s", fizz[((x % 3) + 3) % 3], buzz[((x % 5) + 5) % 5]);

Note that I have neatly skipped over the newline you added in your code. If you want that, I'm sure you can figure out how to modify the above code in the same manner to add it :)

More importantly: Note that this does in fact not pass the "official" fizzbuzz test, it only answers your question.

The fizzbuzz test is this:

  • Write out all numbers from 1 to 100, except that numbers that are multiplies of 3 you should instead of the number write out "fizz", and that for numbers that are multiplies of 5 you should instead of the number write out "buzz". If a number is a multiple of both 3 and 5 at the same time, write out "fizzbuzz" instead of the number.

Since your question did not in any way handle the "instead of the number" part, my answer did not either.

So, if we skip the fact that a loop usually entails a "check", can we write the entire fizzbuzz test without if-statements?

With a bit of magic, yes we can, here's the loop in C# code, you can verify this using LINQPad or Ideone:

void Main()
{
    string[] fizzbuzz = new[]
    {
        "fizzbuzz", "{0}", "{0}", "fizz", "{0}", "buzz", "fizz",
        "{0}", "{0}", "fizz", "buzz", "{0}", "fizz", "{0}", "{0}"
    };
    for (int index = 1; index <= 100; index++)
    {
        Debug.WriteLine(string.Format(fizzbuzz[index % 15], index));
    }
}

Here I'm relying on the fact that the format string sent to string.Format does in fact not have to contain any references to the arguments.

Edit: As stated in the comments, I had used ?? to get the "{0}" in the string.Format parameter and leaving the entries in the array at null, but ?? is indeed an if-statement in disguise, so edited it out.

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?? not being an "if" doesn't pass the smell test for me. –  David Eisenstat Jul 6 '13 at 14:01
    
You're of course right, let me fix that. –  Lasse V. Karlsen Jul 6 '13 at 14:02
    
It could be done simpler if you just turn logic operation result in index (or just use C or C++). This way you need 3 arrays of len 2. –  Luka Rahne Jul 6 '13 at 20:21
    
@LukaRahne Please post such a solution, I'm unsure what you mean here. –  Lasse V. Karlsen Jul 6 '13 at 20:23
    
You could also avoid the redundancy in the array by using switch / case. Or just upvote my answer, which is just a one-liner and scales better to larger numbers... :) –  Stefan Haustein Jul 6 '13 at 20:25
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Bit of codegolfing, but it works

for x in range(1,101):print"Fizz"[x%3*4:]+"Buzz"[x%5*4:]or x

Source: http://maxburstein.com/blog/python-shortcuts-for-the-python-beginner/

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"Only two checks" probably aims at the fact that if a number can be divided by 3 and by 5, this implies that the number can be divided by 15.

Sample code exploiting that (with only one check):

var words = ["fizzbuzz", "buzz", "fizz"];
var index = Math.min(x % 3, 1) + Math.min(x % 5, 1) * 2;
if (index < words.length) println(words[index]);

Note that Lasse's "How about no checks" answer still prints the empty string, which seems to be different from the original code and one of the main problems stated in the question.

If it's ok to include the newline in the text instead of using println(), this will do the work without checks:

print(["fizzbuzz\n", "buzz\n", "fizz\n", ""]
         [Math.min(x % 3, 1) + Math.min(x % 5, 1) * 2]);

P.S.

Since you asked for exactly two checks:

print(["fizzbuzz\n", "buzz\n", "fizz\n", ""]
         [(x % 3 == 0 ? 0 : 1) + (x % 5 == 0 ? 0 : 2)]);

P.P.S.:

jsfiddle for the full FizzBuzz (including printing numbers): http://jsfiddle.net/QxDfh/

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I took the liberty of fleshing out your code in LINQPad to include the full FizzBuzz test (ie. the numbers as well), here: dropbox.com/s/jzao6645983e7bo/SO17502946b.linq –  Lasse V. Karlsen Jul 6 '13 at 20:37
1  
Thanks. I have added a jsfiddle for that, too. –  Stefan Haustein Jul 6 '13 at 20:46
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Here is one solution without any conditional expression written in c. (except shortcircut evaluation)

#include <stdio.h>
int fizzbuzz(int i)
{
    const char* f[]={"%i\n","fizz\n","buzz\n","fizbuzz\n"};
    return i&&fizzbuzz(i-1)&&printf(f[!(i%3)|!(i%5)*2],i)||1;
}
int main()
{
    return fizzbuzz(100); 
}
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