183
\$\begingroup\$

Introduction

In our recent effort to collect catalogues of shortest solutions for standard programming exercises, here is PPCG's first ever vanilla FizzBuzz challenge. If you wish to see other catalogue challenges, there is "Hello World!" and "Is this number a prime?".

Challenge

Write a program that prints the decimal numbers from 1 to 100 inclusive. 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”.

Output

The output will be a list of numbers (and Fizzes, Buzzes and FizzBuzzes) separated by a newline (either \n or \r\n). A trailing newline is acceptable, but a leading newline is not. Apart from your choice of newline, the output should look exactly like this:

1
2
Fizz
4
Buzz
Fizz
7
8
Fizz
Buzz
11
Fizz
13
14
FizzBuzz
16
17
Fizz
19
Buzz
Fizz
22
23
Fizz
Buzz
26
Fizz
28
29
FizzBuzz
31
32
Fizz
34
Buzz
Fizz
37
38
Fizz
Buzz
41
Fizz
43
44
FizzBuzz
46
47
Fizz
49
Buzz
Fizz
52
53
Fizz
Buzz
56
Fizz
58
59
FizzBuzz
61
62
Fizz
64
Buzz
Fizz
67
68
Fizz
Buzz
71
Fizz
73
74
FizzBuzz
76
77
Fizz
79
Buzz
Fizz
82
83
Fizz
Buzz
86
Fizz
88
89
FizzBuzz
91
92
Fizz
94
Buzz
Fizz
97
98
Fizz
Buzz

The only exception to this rule is constant output of your language's interpreter that cannot be suppressed, such as a greeting, ANSI color codes or indentation.

Further Rules

  • This is not about finding the language with the shortest approach for playing FizzBuzz, this is about finding the shortest approach in every language. Therefore, no answer will be marked as accepted.

  • Submissions are scored in bytes in an appropriate preexisting encoding, usually (but not necessarily) UTF-8. Some languages, like Folders, are a bit tricky to score--if in doubt, please ask on Meta.

  • Nothing can be printed to STDERR.

  • Feel free to use a language (or language version) even if it's newer than this challenge. If anyone wants to abuse this by creating a language where the empty program generates FizzBuzz output, then congrats for paving the way for a very boring answer.

    Note that there must be an interpreter so the submission can be tested. It is allowed (and even encouraged) to write this interpreter yourself for a previously unimplemented language.

  • If your language of choice is a trivial variant of another (potentially more popular) language which already has an answer (think BASIC or SQL dialects, Unix shells or trivial Brainfuck derivatives like Alphuck and ???), consider adding a note to the existing answer that the same or a very similar solution is also the shortest in the other language.

  • Because the output is fixed, you may hardcode the output (but this may not be the shortest option).

  • You may use preexisting solutions, as long as you credit the original author of the program.

  • Standard loopholes are otherwise disallowed.

As a side note, please don't downvote boring (but valid) answers in languages where there is not much to golf; these are still useful to this question as it tries to compile a catalogue as complete as possible. However, do primarily upvote answers in languages where the authors actually had to put effort into golfing the code.

Catalogue

var QUESTION_ID=58615;var ANSWER_FILTER="!t)IWYnsLAZle2tQ3KqrVveCRJfxcRLe";var COMMENT_FILTER="!)Q2B_A2kjfAiU78X(md6BoYk";var OVERRIDE_USER=30525;var answers=[],answers_hash,answer_ids,answer_page=1,more_answers=true,comment_page;function answersUrl(index){return"https://api.stackexchange.com/2.2/questions/"+QUESTION_ID+"/answers?page="+index+"&pagesize=100&order=desc&sort=creation&site=codegolf&filter="+ANSWER_FILTER}function commentUrl(index,answers){return"https://api.stackexchange.com/2.2/answers/"+answers.join(';')+"/comments?page="+index+"&pagesize=100&order=desc&sort=creation&site=codegolf&filter="+COMMENT_FILTER}function getAnswers(){jQuery.ajax({url:answersUrl(answer_page++),method:"get",dataType:"jsonp",crossDomain:true,success:function(data){answers.push.apply(answers,data.items);answers_hash=[];answer_ids=[];data.items.forEach(function(a){a.comments=[];var id=+a.share_link.match(/\d+/);answer_ids.push(id);answers_hash[id]=a});if(!data.has_more)more_answers=false;comment_page=1;getComments()}})}function getComments(){jQuery.ajax({url:commentUrl(comment_page++,answer_ids),method:"get",dataType:"jsonp",crossDomain:true,success:function(data){data.items.forEach(function(c){if(c.owner.user_id===OVERRIDE_USER)answers_hash[c.post_id].comments.push(c)});if(data.has_more)getComments();else if(more_answers)getAnswers();else process()}})}getAnswers();var SCORE_REG=/<h\d>\s*([^\n,<]*(?:<(?:[^\n>]*>[^\n<]*<\/[^\n>]*>)[^\n,<]*)*),.*?(\d+)(?=[^\n\d<>]*(?:<(?:s>[^\n<>]*<\/s>|[^\n<>]+>)[^\n\d<>]*)*<\/h\d>)/;var OVERRIDE_REG=/^Override\s*header:\s*/i;function getAuthorName(a){return a.owner.display_name}function process(){var valid=[];answers.forEach(function(a){var body=a.body;a.comments.forEach(function(c){if(OVERRIDE_REG.test(c.body))body='<h1>'+c.body.replace(OVERRIDE_REG,'')+'</h1>'});var match=body.match(SCORE_REG);if(match)valid.push({user:getAuthorName(a),size:+match[2],language:match[1],link:a.share_link,});else console.log(body)});valid.sort(function(a,b){var aB=a.size,bB=b.size;return aB-bB});var languages={};var place=1;var lastSize=null;var lastPlace=1;valid.forEach(function(a){if(a.size!=lastSize)lastPlace=place;lastSize=a.size;++place;var answer=jQuery("#answer-template").html();answer=answer.replace("{{PLACE}}",lastPlace+".").replace("{{NAME}}",a.user).replace("{{LANGUAGE}}",a.language).replace("{{SIZE}}",a.size).replace("{{LINK}}",a.link);answer=jQuery(answer);jQuery("#answers").append(answer);var lang=a.language;lang=jQuery('<a>'+lang+'</a>').text();languages[lang]=languages[lang]||{lang:a.language,lang_raw:lang.toLowerCase(),user:a.user,size:a.size,link:a.link}});var langs=[];for(var lang in languages)if(languages.hasOwnProperty(lang))langs.push(languages[lang]);langs.sort(function(a,b){if(a.lang_raw>b.lang_raw)return 1;if(a.lang_raw<b.lang_raw)return-1;return 0});for(var i=0;i<langs.length;++i){var language=jQuery("#language-template").html();var lang=langs[i];language=language.replace("{{LANGUAGE}}",lang.lang).replace("{{NAME}}",lang.user).replace("{{SIZE}}",lang.size).replace("{{LINK}}",lang.link);language=jQuery(language);jQuery("#languages").append(language)}}
body{text-align:left!important}#answer-list{padding:10px;width:290px;float:left}#language-list{padding:10px;width:290px;float:left}table thead{font-weight:700}table td{padding:5px}
<script src="https://ajax.googleapis.com/ajax/libs/jquery/2.1.1/jquery.min.js"></script> <link rel="stylesheet" type="text/css" href="//cdn.sstatic.net/codegolf/all.css?v=83c949450c8b"> <div id="language-list"> <h2>Shortest Solution by Language</h2> <table class="language-list"> <thead> <tr><td>Language</td><td>User</td><td>Score</td></tr> </thead> <tbody id="languages"> </tbody> </table> </div> <div id="answer-list"> <h2>Leaderboard</h2> <table class="answer-list"> <thead> <tr><td></td><td>Author</td><td>Language</td><td>Size</td></tr> </thead> <tbody id="answers"> </tbody> </table> </div> <table style="display: none"> <tbody id="answer-template"> <tr><td>{{PLACE}}</td><td>{{NAME}}</td><td>{{LANGUAGE}}</td><td>{{SIZE}}</td><td><a href="{{LINK}}">Link</a></td></tr> </tbody> </table> <table style="display: none"> <tbody id="language-template"> <tr><td>{{LANGUAGE}}</td><td>{{NAME}}</td><td>{{SIZE}}</td><td><a href="{{LINK}}">Link</a></td></tr> </tbody> </table>

\$\endgroup\$
12
  • 1
    \$\begingroup\$ Nothing can be printed to STDERR. Is this true only when running, or also when compiling (assuming that is a separate step?) \$\endgroup\$
    – AShelly
    Sep 24, 2015 at 20:47
  • 1
    \$\begingroup\$ @AShelly Only when running \$\endgroup\$
    – Beta Decay
    Sep 24, 2015 at 20:48
  • 1
    \$\begingroup\$ I’m not sure I like the fact that you hardcoded the 100 into the challenge. That way, a program that just generates the expected output is a valid entry, but is not interesting for this challenge. I think the challenge should expect the program to input the number of items to output. \$\endgroup\$
    – Timwi
    Sep 24, 2015 at 23:28
  • 9
    \$\begingroup\$ @Timwi While I agree that it would make it (only slightly) more interesting, I've very often seen FizzBuzz as strictly 1 to 100 (on Wikipedia and Rosetta Code, for example). If the goal is to have a "canonical" FB challenge, it makes sense. \$\endgroup\$
    – Geobits
    Sep 25, 2015 at 0:50
  • 70
    \$\begingroup\$ A "vanilla fizzbuzz" sounds delicious. \$\endgroup\$ Sep 25, 2015 at 15:12

382 Answers 382

1
9 10 11
12
13
1
\$\begingroup\$

Phooey, 53 bytes

[100+1>&<@@%3{"Fizz">&1<}&%5{"Buzz">&1<}&>{<$i>}"
"<]

Try it online!

Outgolfed the creator at his own language. 😏


[100            while cell is not 100
   +1             increment cell
   >&<            set fizzed flag - empty stack is zero
   @@             push two copies to the stack
   %3             set cell to cell mod 3
   {              if cell is not zero
     "Fizz"         print fizz
     >&1<           set fizzed flag
   }              endif
   &              pop original value from stack
   %5{"Buzz">&1<} repeat for buzz
   &              pop again
   >{             if fizzed flag is zero 
     <$i>           print number
   }              endif 
   "\n"          print newline
   <              return to number cell
]               end

I may make fun of the interpreter, but it is a pretty nice language.

\$\endgroup\$
1
\$\begingroup\$

Myddin, 157 bytes

use std
var p=std.put
const main={
for var i=1;i<101;i++
match(i%3,i%5)
|(0,0):p("FizzBuzz\n")
|(0,_):p("Fizz\n")
|(_,0):p("Buzz\n")
|(_,_):p("{}\n",i)
;;;;}
\$\endgroup\$
1
\$\begingroup\$

ThumbGolf, 49 bytes

Machine code (little endian pairs):

2100 3101 0008 dec0 d003 b908 a303 de03
004a de6a b922 a305 de03 e003 6946 7a7a
b100 de21 de3a 2964 d1eb 4770 7542 7a7a
00

Commented assembly:

        // Include the ThumbGolf wrapper macros
        .include "thumbgolf.inc"
        .globl main
        .thumb_func
main:
        // Start the counter with zero and increment first.
        // It aligns better than incrementing at the bottom.
        movs    r1, #0
.Lloop:
        adds    r1, #1
.Lthree:
        // r0 = r1 % 3
        movs    r0, r1
        umodi   r0, 3   // udf #0300; .short 0xd003
        // if r0 == 0
        cbnz    r0, .Lten
        // if so print "Fizz"
        adr     r3, .Lfizz
        puts    r3      // udf #0003
.Lten:
        // do the same for Buzz
        // r2 = (r1 * 2) % 10, a.k.a. r1 % 5
        // we do this because umod.10 is a special narrow instruction :)
        lsls    r2, r1, #1
        umod.10 r2      // udf #0152
        cbnz    r2, .Lnum
        adr     r3, .Lbuzz
        puts    r3      // udf #0003
        // jump to the newline
        b       .Lnoprint

        // Normally, "Fizz" and "Buzz" are 5 byte strings due to the null
        // terminator, which SUCKS. This is because Thumb instructions MUST
        // be 2 byte aligned, and pool loads that are not 4 byte aligned are
        // annoying wide instructions.
        //
        // However, I have a trick up my sleeve.
        //
        // CBZ is encoded as so:
        //    |15 14 13 12|11|10| 9| 8| 7  6  5  4  3 |2  1  0|
        //    | 1  0  1  1| 0| 0| i| 1|      imm5     |  Rn   |
        // Let's focus on bits 0-7, which, since ARM is little endian, appear
        // first.
        //
        // imm5 is the offset in opcodes relative to 4 bytes after the current
        // instruction (a.k.a. where the PC is for dumb reasons). Technically,
        // there is a 6th bit in bit 9, but that is only for larger offsets.
        //
        // .Lnoprint is exactly 4 bytes after the instruction, so the offset
        // is zero:
        //   0 0 0 0 0 r r r
        // Now, for the register argument, if we set it to r0...
        //   0 0 0 0 0 0 0 0
        // Behold. A free null terminator.
        //
        // This is great, as it not only lets us cheat a byte in Fizz, but also,
        // it makes everything align perfectly so we don't need any wide adr
        // instructions. We can just put Buzz at the bottom of the file and it
        // will be 4 byte aligned as well.
.Lfizz:
        .ascii  "Fizz"  // null terminated by cbz encoding
.Lnum:
        // was r1 % 3 not zero (meaning did we not print Fizz?)
        cbz     r0, .Lnoprint
        // if so, print r1 as an integer
        puti    r1      // udf #0041
.Lnoprint:
        // putspc is a narrow instruction that prints one of 8 special characters,
        // one of which includes \n.
        putspc  '\n'    // udf #0072
        // loop while r1 != 100
        // replace with a register for variable length
        cmp     r1, #100
        bne     .Lloop
        // return
        bx      lr
.Lbuzz:
        .asciz  "Buzz"

My second submission in my brand new WIP ThumbGolf language, an ISA extension to Thumb-2.

It shows off both the new I/O instructions and the modulo instructions (with the special narrow encoding for 10).

That little hack by null terminating with cbz saves a lot, and it was really fun to figure out.

As mentioned in my cat program, this can be run on ARM Linux or QEMU by linking the ThumbGolf runtime. I don't have an online interpreter yet (and I doubt I could afford hosting one lul)

\$\endgroup\$
3
  • \$\begingroup\$ Actually, you should have based it on x86 machine code... So is ThumbGolf a RISC or a CISC? \$\endgroup\$
    – user99151
    Feb 5, 2021 at 8:05
  • \$\begingroup\$ ThumbGolf is what I envision to be a "RISC golfing language". I am sticking to this limitation, even if it isn't gonna win any contests. \$\endgroup\$
    – EasyasPi
    Feb 5, 2021 at 11:19
  • \$\begingroup\$ As I personally find golfing languages that let you answer a complex challenge in one byte ruin the whole point of golfing. 🤷‍♂️ \$\endgroup\$
    – EasyasPi
    Feb 5, 2021 at 11:26
1
\$\begingroup\$

JavaScript: 76 bytes

for(i=1;i<101;i++)console.log(i%3<1?'fizz'+(i%5<1?'buzz':''):i%5<1?'buzz':i)

Not the best solution we have, but not the worst either... The "nested" ternary operator adds either buzz or nothing to the fizz part depending on the results of the divisibility test.

\$\endgroup\$
1
\$\begingroup\$

///, 235 bytes

/(/\/\///%/111()/\\\\(p/1\/(x/%%%1(t/xxxxxxxxxx(>p^=)=^!)=$)vvt&@
^^!)=^=)=^^$v)v^|^^v)v1^v)av^^v)av^v)v^>(^/\(/>(>t/%&/&%(1&/1(%11@/@%11(1@/1(&p&(@p@(&/Fizz(@/Buzz(|p001(|(/0x/1\0(0p_1(0_/_(1p2(22/4(42/6(44/8(2p3(4p5(6p7(8p9(_(/=\=(==

Try it online!

There is already a /// answer, but it is pretty boring. I thought I would try to make a more algorithmic one, even though it is a little longer ;)

Ungolfed: Try it online!

\$\endgroup\$
1
\$\begingroup\$

CSASM v2.1.2.1, 325 bytes

func main:
push 1
pop $a
.lbl a
clf.o
push $a
push 15
rem
push 0
comp
push $f.o
brtrue e
push $a
push 3
rem
push 0
comp
push $f.o
brtrue b
push $a
push 5
rem
push 0
comp
push $f.o
brtrue d
push $a
print.n
br c
.lbl b
push "Fizz"
print.n
br c
.lbl d
push "Buzz"
print.n
br c
.lbl e
push "FizzBuzz"
print.n
.lbl c
clf.o
inc $a
push $a
push 101
comp
push $f.o
brfalse a
ret
end

Commented and Ungolfed:

func main:
    ; Initilize the counter in the accumulator
    push 1
    pop $a

    .lbl loop
        ; Reset the Comparison flag
        clf.o

        ; $a % 15 == 0
        push $a
        push 15
        rem
        push 0
        comp

        ; Jump to label "printFizzBuzz" if the Comparison flag is true
        push $f.o
        brtrue printFizzBuzz

        ; $a % 3 == 0
        push $a
        push 3
        rem
        push 0
        comp

        ; Jump to label "printFizz" if the Comparison flag is true
        push $f.o
        brtrue printFizz

        ; $a % 5 == 0
        push $a
        push 5
        rem
        push 0
        comp

        ; Jump to label "printBuzz" if the Comparison flag is true
        push $f.o
        brtrue printBuzz

        ; None of the above were true.  Just print the number itself
        push $a
        print.n
        br checkCounter

    .lbl printFizz
        ; Print "Fizz"
        push "Fizz"
        print.n
        br checkCounter

    .lbl printBuzz
        ; Print "Buzz"
        push "Buzz"
        print.n
        br checkCounter

    .lbl printFizzBuzz
        ; Print "FizzBuzz"
        push "FizzBuzz"
        print.n

    .lbl checkCounter
        ; Clear the Comparison flag
        clf.o

        inc $a

        ; $a == 101
        push $a
        push 101
        comp
        push $f.o

        ; Keep looping until the above is false
        brfalse loop
    ret
end
```
\$\endgroup\$
1
\$\begingroup\$

Pxem, Filename: 96 81 bytes + Content: 0 bytes = 96 81 bytes.

Thanks, Neil, for providing a workaround for -15 bytes!

  • Filename (some are escaped): \020.z.t.m\005.%\001.yXXbuzz.a.m\003.%\001.yXXfizz.a.c.c.z.m\017.-.nXX@.a.c@.z.pXX.a.s\n.o.m\001.+.ct.a
  • Content: empty.

Try it online! (with pxem.posixism)

With comments

XX.z
.a\020.zXX.z # push 16; while :; do
  .a.tXX.z # heap = pop!
  .a.m\005.%\001.yXXbuzz.aXX.z # while 1>heap%5; do push "buzz"; break; done
  .a.m\003.%\001.yXXfizz.aXX.z # while 1>heap%3; do push "fizz"; break; done
  .a.c.c.z.m\017.-.nXX@.aXX.z # if empty?; then print(heap-15); push "@"; fi
    # this is how while empty?; do something; done works:
    # ".c.c.z bla bla bla .a"
    # NOTE: Fail on pxemi dot 7z and RPxem
    # They need some patches before installing
    # Implementation needs to be document-compliant
    # PS. RPxem v0.0.7 fixed dotC 
  .a.c@.z.pXX.aXX.z # if top!="@"; then print pop all!; fi
  .a.sXX.z # pop!
  .a\n.oXX.z # print "\n"
  .a.m\001.+XX.z # push heap; add one to it
.a.ct.aXX.z # break if equal to 116
.a

Note

  • In Pxem, unlike other stack-based languages, subtraction and division does NOT rely on positions of two items; .- does push(abs(pop-pop)), .$ and .% stand for x=pop; y=pop; push(int(x>y?x/y:y/x)) and x=pop; y=pop; push(int(x>y?x%y:y%x)) respectively. Thus, when you try to do something like 13/17 or 13%17, you need to check which are greater first.
  • To avoid the specification, the program loops from 16 to 115.

Old version

1

\$\endgroup\$
2
  • 1
    \$\begingroup\$ To work around that division, could you not loop from 16 to 116, but subtract 15 before printing? \$\endgroup\$
    – Neil
    Mar 20, 2021 at 21:57
  • \$\begingroup\$ @Neil thank you! \$\endgroup\$
    – user100411
    Mar 21, 2021 at 0:14
1
\$\begingroup\$

Stax, 21 bytes

åS╬╕▌≡º$)ö;▀├Xè¶XΔ£≈♀

Run and debug it

Not sure why recursive's solution from the tutorial hasn't been posted here yet. Probably the most minimal fizzbuzz possible in stax.

\$\endgroup\$
1
\$\begingroup\$

Excel, 82 79 Bytes

=LET(x,ROW(1:100),a,IF(MOD(x,3),"","Fizz")&IF(MOD(x,5),"","Buzz"),IF(a="",x,a))

This wasn't valid when the question was asked.

Spreadsheet

\$\endgroup\$
1
\$\begingroup\$

M4, 115 bytes

Also TIL that ifelse can have more than four arguments.

define(f,`ifelse($1,101,,`ifelse(eval($1%15),0,fizzbuzz,eval($1%5),0,buzz,eval($1%3),0,fizz,$1)
f(incr($1))')')f(1)

Try it online!


M4, 143 bytes, SUSv2-compatible.

define(f,`ifelse(`$1',101,,`g(`$1',ifelse(eval($1%3),0,fizz)`'ifelse(eval($1%5),0,buzz))
f(incr($1))')')define(g,`ifelse(len($2),0,$1,$2)')f(1)

Try it online!

I am not familiar with M4, but I tried some bests. What quotations can be removed?

With comments

dnl def f(n): return "" if n==101 else g(n,("fizz" if n%3==0 else "")+("buzz" if n%5==0 else "")+"\n"+f(n+1))
define(f,`ifelse(`$1',101,`',`g(`$1',ifelse(eval($1%3),0,fizz)`'ifelse(eval($1%5),0,buzz))
f(incr($1))')')dnl
dnl def g(n,s): return n if len(s)==0 else n
define(g,`ifelse(len($2),0,$1,$2)')dnl
f(1)
\$\endgroup\$
1
\$\begingroup\$

Pinecone, 90 bytes

i:1|i<101|i:i+1@(i%3+i%5=0?print:"FizzBuzz"|i%3=0?print:"Fizz"|i%5=0?print:"Buzz"|print:i)
\$\endgroup\$
1
\$\begingroup\$

BRASCA, 58 bytes

1Hr,[0a:3%0=[a0`zziF`[o]]x:5%0=[a0`zzuB`[o]]A$=[x:n0]xxlo]

Try it online!

\$\endgroup\$
1
\$\begingroup\$

Knight, 50 48 43 bytes

;=n 0W>101=n+1nO|+*"Fizz"!%n 3*"Buzz"!%n 5n

Try it online!

-2 bytes: use string multiplication instead of IF

-5 bytes: I completely overlooked |, I assumed it had C semantics.

Ungolfed:

# start with n at 0
; = n 0
# increment n and loop while less than 101
: WHILE > 101 (= n + 1 n)
    # outlined from the output for clarity
    # concatenate:
    ; = fizzbuzz +
        # Fizz if n % 3 == 0
        : * "Fizz" ! (% n 3)
        # Buzz if n % 5 == 0
        : * "Buzz" ! (% n 5)
    # If fizzbuzz is not empty, output it, otherwise output n
    : OUTPUT | fizzbuzz n
\$\endgroup\$
1
\$\begingroup\$

C++20, 202 bytes

this is uncompetitive, but this was so fun I couldn't help but post it here.

#include <bits/stdc++.h>
using namespace std;auto f=[](int i){return i%15?(i%5?(i%3?to_string(i):"Fizz"):"Buzz"):"FizzBuzz";};int main(){for(auto i:views::iota(1,100)|views::transform(f))cout<<i<<endl;}
\$\endgroup\$
2
  • 1
    \$\begingroup\$ you have an extra space in 1, 100 \$\endgroup\$
    – hyper-neutrino
    Jul 14, 2021 at 3:19
  • \$\begingroup\$ @hyper-neutrino oh darn thanks \$\endgroup\$ Jul 14, 2021 at 3:23
1
\$\begingroup\$

Python 3, 59 bytes

for i in range(100):print(i%3//2*'Fizz'+i%5//4*'Buzz'or-~i)
\$\endgroup\$
1
\$\begingroup\$

PostScript, 73 bytes

Using binary encoding:

000000 31 88 01 88 64 7b 2f 69 92 3e 92 33 28 46 69 7a
000010 7a 42 75 7a 7a 29 69 88 0f 28 42 75 7a 7a 29 69
000020 20 35 28 46 69 7a 7a 29 69 88 03 33 7b 92 6a 30
000030 92 3d 7b 2f 69 92 3e 92 33 7d 7b 92 75 7d 92 55
000040 7d 92 83 69 20 3d 7d 92 48

Try it online! (thanks to tail spark rabbit ear, ignore TIO's character count).

This is a straight-forward encoding of the following 101 byte program (in binary encoding, 136 n is a signed 8-bit integer and 146 n is command n from the system name encoding list in appendix F of the PostScript language reference).

1 1 100{/i exch def(FizzBuzz)i 15(Buzz)i 5(Fizz)i 3 3{mod 0 eq{/i exch def}{pop}ifelse}repeat i =}for

Try it online!

The non-binary encoded version can be reduced to 98 bytes if we don't mind leaving /i on the stack.

/i 1 1 100{def(FizzBuzz)i 15(Buzz)i 5(Fizz)i 3 3{mod 0 eq{/i exch def}{pop}ifelse}repeat i =/i}for

Try it online!

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2
  • 1
    \$\begingroup\$ I made you a TIO thing of the binary. \$\endgroup\$
    – user100411
    Aug 8, 2021 at 9:16
  • 1
    \$\begingroup\$ @tailsparkrabbitear: Thanks for that. I hadn't even considered that the TIO bash would include Ghostscript. Perhaps put a note on the Postscript Code Golf tips page. \$\endgroup\$ Aug 8, 2021 at 12:22
1
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jq, 98 82 bytes

range(1;101)|if.%15<1then"FizzBuzz"elif.%3<1then"Fizz"elif.%5<1then"Buzz"else. end

Try it online!

Yet to golf it!

Removed superfluous spaces thanks to @DLosc.

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2
  • 1
    \$\begingroup\$ Some simple golfs get you down to 82 bytes \$\endgroup\$
    – DLosc
    Sep 4, 2021 at 4:00
  • \$\begingroup\$ Thanks @DLosc, I didn't realize you could remove the spaces! \$\endgroup\$
    – AviFS
    Sep 4, 2021 at 4:31
1
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Rockstar, 138 135 133 bytes

F takes I&S
let M be N/I
turn up M
if N-I*M
S's""

return S

N's0
while N-100
let N be+1
say F taking 3,"Fizz"+F taking 5,"Buzz" or N

Try it here (Code will need to be pasted in)

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1
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Pure Bash, 70 bytes 69 bytes 68 bytes 63 + 1 = 64 bytes

The following program must be saved as x, which is for 1 byte of penalty.

''
((++x%3))||Fizz
((x%5))||$_\Buzz
echo ${_:-$x}
((x>99))||. x

Try it online!

\$\endgroup\$
1
  • \$\begingroup\$ OBTW I am outputting garbages to stderr, which may be against the rules. \$\endgroup\$
    – user100411
    Nov 11, 2021 at 22:30
1
\$\begingroup\$

RickRoll-Lang, 185 bytes

takemetourheart
give a up [*range(1,101)[::-1]]
togetherforeverandnevertopart
give i up a.pop()
give s up "Fizz"*(i%3<1)+"Buzz"*(i%5<1)
ijustwannatelluhowimfeeling [str(i),s][s>""]+"\n"

Explanation:

RickRoll-Lang keywords do not need spaces between them

takemetourheart                                   -- main() function declaration
give a up [*range(1,101)[::-1]]                   -- set a to reverse of int range [1, 101)
togetherforeverandnevertopart                     -- infinite loop
give i up a.pop()                                 -- pop last element of a and store in i
give s up "Fizz"*(i%3<1)+"Buzz"*(i%5<1)           -- string multiplcation to form fizzbuzz depending on modulus remainders
ijustwannatelluhowimfeeling [str(i),s][s>""]+"\n" -- print i if s is empty else s and a newline
                                                  -- implicit "say goodbye" (end block) at the end
                                                  -- another say goodbye

Try it online!

\$\endgroup\$
1
\$\begingroup\$

jq, 78 bytes

range(1;101)|. as $n|[(select(.%3==0)|"Fizz"),(select(.%5==0)|"Buzz")]|add//$n
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1
\$\begingroup\$

Kotlin, 117 bytes

{for(i in 1..100){println("${if(i%3<1)"fizz" else ""}${if(i%5<1)"buzz" else ""}${if(!(i%3<1||i%5<1))"$i" else ""}")}}

Try it online!

as usual as it gets

edit: i hope the extra \n at the end is not a problem

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1
\$\begingroup\$

SQLite, 183 bytes

WITH F AS(SELECT 1 AS N UNION ALL SELECT N+1 FROM F WHERE N<100)SELECT CASE WHEN N%15=0 THEN'FizzBuzz'WHEN N%5=0 THEN'Buzz'WHEN N%3=0 THEN'Fizz'ELSE CAST(N AS VARCHAR)END AS F FROM F;

Try it online!

Ungolfed code:
WITH F AS(
  SELECT 
    1 AS N 
  UNION ALL 
  SELECT 
    N + 1 
  FROM 
    F 
  WHERE 
    N < 100
) 
SELECT 
  CASE WHEN N % 15 = 0 THEN 'FizzBuzz' WHEN N % 5 = 0 THEN 'Buzz' WHEN N % 3 = 0 THEN 'Fizz' ELSE CAST(N AS VARCHAR) END AS F 
FROM 
  F;
\$\endgroup\$
1
\$\begingroup\$

Boo, 114 bytes

for i in range(1,101):
 if i%15==0:print'FizzBuzz'
 elif i%5==0:print'Buzz'
 elif i%3==0:print'Fizz'
 else:print i

Try it online!

\$\endgroup\$
1
\$\begingroup\$

Squirrel, 131 bytes

for(local i=0;i++<100;)if(i%15==0)print("FizzBuzz\n")else if(i%5==0)print("Buzz\n")else if(i%3==0)print("Fizz\n")else print(i+"\n")

Try it online!

This is the original code that I created:

function fizzBuzz(n) {
  for (local i = 1; i <= n; i += 1) {
    if (i % 15 == 0)
      print ("FizzBuzz\n")
    else if (i % 5 == 0)
      print ("Buzz\n")
    else if (i % 3 == 0)
      print ("Fizz\n")
    else {
      print (i + "\n")
    }
  }
}

fizzBuzz(100);
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0
\$\begingroup\$

Scala, 103 94 bytes

for{i<-1 to 100;s=(if(i%3==0)"Fizz"else"")+(if(i%5==0)"Buzz"else"")}println(if(s=="")i else s)

thx @Ben (shortened by 9 bytes)

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1
  • \$\begingroup\$ You can save 9 bytes by using a for comprehension: for{i<-1 to 100;s=(if(i%3==0)"Fizz"else"")+(if(i%5==0)"Buzz"else"")}println(if(s=="")i else s) \$\endgroup\$
    – Ben
    Oct 2, 2015 at 20:57
0
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Python 2, 72 bytes

for x in range(100):print('Fizz'*(x%3>1)+'Buzz'*(x%5>3)or str(x+1))+'\n'

Not as clever as feersum's solution, but it avoids casting exec magic.

EDIT: with just two more parentheses, it works in Python 3 AND Python 2:

for x in range(100):print(('Fizz'*(x%3>1)+'Buzz'*(x%5>3)or str(x+1))+'\n')
\$\endgroup\$
1
  • \$\begingroup\$ even simpler, supress +'\n' and some parenbthesis : for x in range(100):print('Fizz'*(x%3>1)+'Buzz'*(x%5>3)or x+1) so 63 bytes Pthon 3 \$\endgroup\$
    – Malo
    Sep 2, 2021 at 19:53
0
\$\begingroup\$

APL, 56 50 bytes

⊣{1+⍵⊣⎕←∊2↑((0=3 5|⍵)/'Fizz' 'Buzz'),''(⍕⍵)}⍣100⊢1

Note: The very first should suppress output in GNU APL. Replace it with to get correct results in Dyalog, etc, or with portable assignment to some variable X← adding one byte.

A+, 51 bytes

(x←100)do↓⊃2↑((0=3 5|1+x)/4⊂'FizzBuzz'),⌽2↑<1↓⍕1+x;
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2
  • \$\begingroup\$ These seem quite different, so why not put them in different answers? \$\endgroup\$ Nov 9, 2015 at 7:47
  • \$\begingroup\$ While I wouldn't call A+ a “trivial variant,” it's a direct derivative of APL and I think any solution in one would translate to similar byte count in another. Also, I just updated it making the answers work exactly the same way. \$\endgroup\$
    – user46915
    Nov 9, 2015 at 9:22
0
\$\begingroup\$

ShapeScript, 57 bytes

0'1+0?3%1<"Fizz"*1?5%1<"Buzz"*+"#0?"1?_1<*!@"
"@'554***!#

Try it online!

How it works

0          Push 0 (accumulator).
'          Push a string that, when evaluated, does the following:
  1+         Increment the accumulator.
  0?         Push a copy.
  3%1<       Check if the remainder of its division by 3 is zero.
  "Fizz"*    Push "Fizz" for True, "" for False.
  1?         Push another copy of the accumulator.
  5%1<       Check if the remainder of its division by 5 is zero.
  "Buzz"*    Push "Buzz" for True, "" for False.
  +          Concatenate the potential fizzes and buzzes.
  "          Push a string that, when evaluated, does the following:
    #          Discard the topmost stack item.
    0?         Push a copy of the item below it (accumulator).
  "
  1?         Push a copy of the concatenation.
  _1<        Check if its length is zero.
  *!         Execute "#0?" once for True, zero times for False.
  @          Swap the generated output with the accumulator.
  "          Push "\n".
  "
  @          Swap it with the accumulator.
'
554**      Push 5 * 5 * 4 = 100.
*!         Execute the '...' string 100 times.
#          Discard the accumulator.
\$\endgroup\$
0
\$\begingroup\$

Javascript ES6, 77 chars

"\n".repeat(100).replace(/(?=\n)/g,(m,i)=>(++i%3?m:"Fizz")+(i%5?m:"Buzz")||i)

Test:

"\n".repeat(100).replace(/(?=\n)/g,(m,i)=>(++i%3?m:"Fizz")+(i%5?m:"Buzz")||i) == document.querySelector("pre").textContent
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4
  • \$\begingroup\$ Here's my ES6 attempt, with parts stolen from yours (89 chars): "0".repeat(99).split(0).map((m,i)=>{return(++i%3?m:"Fizz")+(i%5?m:"Buzz")||i}).join("\n") \$\endgroup\$ Jan 7, 2016 at 6:48
  • \$\begingroup\$ @starbeamrainbowlabs, why do you use {return ...} instead of expression? \$\endgroup\$
    – Qwertiy
    Jan 7, 2016 at 10:21
  • \$\begingroup\$ Because I couldn't get the expression to work :( \$\endgroup\$ Jan 7, 2016 at 16:20
  • \$\begingroup\$ Save a byte by using template strings + literal newline at front. \$\endgroup\$ Jan 29, 2016 at 0:34
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