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(Edit: What is Code Golf: Code Golf are challenges to solve a specific problem with the shortest amount of code by character count in whichever language you prefer. More info here on Meta StackOverflow. )

Code Golfers, here's a challenge on string operations.

Email Address Validation, but without regular expressions (or similar parsing library) of course. It's not so much about the email addresses but how short you can write the different string operations and constraints given below.

The rules are the following (yes, I know, this is not RFC compliant, but these are going to be the 5 rules for this challenge):

  • At least 1 character out of this group before the @:

    A-Z, a-z, 0-9, . (period), _ (underscore)
    
  • @ has to exist, exactly one time

    john@smith.com
        ^
    
  • Period (.) has to exist exactly one time after the @

    john@smith.com
              ^
    
  • At least 1 only [A-Z, a-z] character between @ and the following . (period)

    john@s.com
         ^
    
  • At least 2 only [A-Z, a-z] characters after the final . period

    john@smith.ab
               ^^
    

Please post the method/function only, which would take a string (proposed email address) and then return a Boolean result (true/false) depending on the email address being valid (true) or invalid (false).

Samples:
b@w.org    (valid/true)          @w.org     (invalid/false)    
b@c@d.org  (invalid/false)       test@org   (invalid/false)    
test@%.org (invalid/false)       s%p@m.org  (invalid/false)    
j_r@x.c.il (invalid/false)       j_r@x.mil  (valid/true)
r..t@x.tw  (valid/true)          foo@a%.com (invalid/false)

Good luck!

share|improve this question
5  
Too many [code-golf]s of late. If this continues I will relucatnatly join Pax and start voting to close. –  dmckee Sep 7 '09 at 21:19
13  
dmckee: What, is stackoverflow running out of question numbers? –  caf Sep 7 '09 at 23:36
3  
@caf: Like best [joke|comic|...] and similar questions these lie outside the remit of SO. That is not a problem as long as they are rare. Indeed, they serve as diversions and provide a sense of community. But if they grow too common they will give new-comers the wrong impression about the culture and purpose of the site; they will dive the appearance of a lot of drivel. Which is a shame, because I like code golf, enjoy playing with some of the problems that come up, and am quite proud of some on my entries. –  dmckee Sep 8 '09 at 0:32
4  
@dmckee - While I'm a fan of code golf, I'm inclined to agree that we're seeing a deluge of golf questions recently. –  Chris Lutz Sep 8 '09 at 0:42
3  
[code-golf] questions are being discussed on meta.stackexchange.com/questions/20912/so-weekly-code-golf –  Brad Gilbert Sep 8 '09 at 21:53

15 Answers 15

C89 (166 characters)

#define B(c)isalnum(c)|c==46|c==95
#define C(x)if(!v|*i++-x)return!1;
#define D(x)for(v=0;x(*i);++i)++v;
v;e(char*i){D(B)C(64)D(isalpha)C(46)D(isalpha)return!*i&v>1;}

Not re-entrant, but can be run multiple times. Test bed:

#include<stdio.h>
#include<assert.h>
main(){
    assert(e("b@w.org"));
    assert(e("r..t@x.tw"));
    assert(e("j_r@x.mil"));
    assert(!e("b@c@d.org"));
    assert(!e("test@%.org"));
    assert(!e("j_r@x.c.il"));
    assert(!e("@w.org"));
    assert(!e("test@org"));
    assert(!e("s%p@m.org"));
    assert(!e("foo@a%.com"));
    puts("success!");
}
share|improve this answer
    
Very nice. –  jeffamaphone Sep 7 '09 at 18:15
    
@jeffamaphone, Thank you. =] –  strager Sep 7 '09 at 18:18
1  
Really this should be C89+ASCII, I'm pretty sure it'd fail on a C89 implementation that used EBCDIC ;) –  caf Sep 7 '09 at 23:41
2  
@strager: isalpha() is considerably shorter than c<91&c>64|c<123&c>96 and works without an #include. In fact, then you would just need #define A isalpha. Hmm... Come to think of it, it would be the same length to just use isalpha wherever you have A now, and leave the #define A out all together. –  P Daddy Sep 8 '09 at 3:40
1  
<ctype.h> declares isalpha. That doesn't mean it's required. Without the prototype, the compiler will assume it returns an int, which it does, and will not check the number or types of arguments, but that's okay. –  P Daddy Sep 9 '09 at 17:05

J

:[[/%^(:[[+-/^,&i|:[$[' ']^j+0__:k<3:]]
share|improve this answer
    
REALLY ;) still, +1 for a good comeback. –  Alex Sep 7 '09 at 22:00
    
That's about the fifth J program I've seen that started with :[[ and ended with :]] - what gives? –  Chris Lutz Sep 8 '09 at 0:43
36  
It's extra sad at the beginning, but by the end it gets really happy. –  P Daddy Sep 8 '09 at 3:11

C89, 175 characters.

#define G &&*((a+=t+1)-1)==
#define H (t=strspn(a,A
t;e(char*a){char A[66]="_.0123456789Aa";short*s=A+12;for(;++s<A+64;)*s=s[-1]+257;return H))G 64&&H+12))G 46&&H+12))>1 G 0;}

I am using the standard library function strspn(), so I feel this answer isn't as "clean" as strager's answer which does without any library functions. (I also stole his idea of declaring a global variable without a type!)

One of the tricks here is that by putting . and _ at the start of the string A, it's possible to include or exclude them easily in a strspn() test: when you want to allow them, use strspn(something, A); when you don't, use strspn(something, A+12). Another is assuming that sizeof (short) == 2 * sizeof (char), and building up the array of valid characters 2 at a time from the "seed" pair Aa. The rest was just looking for a way to force subexpressions to look similar enough that they could be pulled out into #defined macros.

To make this code more "portable" (heh :-P) you can change the array-building code from

char A[66]="_.0123456789Aa";short*s=A+12;for(;++s<A+64;)*s=s[-1]+257;

to

char*A="_.0123456789ABCDEFGHIJKLMNOPQRSTUVWXYZabcdefghijklmnopqrstuvwxyz";

for a cost of 5 additional characters.

share|improve this answer
3  
I think the #include<string.h> should be included. Otherwise, it's not portable. (Your short thing isn't portable either but at least you provide a cheap alternative.) –  strager Sep 7 '09 at 21:26
    
+1 for trying a different angle :) –  Alex Sep 7 '09 at 22:01
2  
size_t strspn(); is less characters than the #include and will do the job (and also doesn't require a newline). –  caf Sep 7 '09 at 23:46
    
@caf - On many platforms (and by "many" I mean "mine"), size_t is only defined in <stddef.h> but if you said to hell with portability you could maybe get away with letting it be implicitly declared as returning int since it's the same size on many (once again, "my") platforms. –  Chris Lutz Sep 8 '09 at 0:52
    
@strager: Point taken, but I think that since most of us are assuming ASCII anyway, portability is already out the window. Surely if it compiles (and it does on at least MSVC++9 and Linux gcc 4.1.2), it's OK? –  j_random_hacker Sep 8 '09 at 4:52

Python (181 characters including newlines)

def v(E):
 import string as t;a=t.ascii_letters;e=a+"1234567890_.";t=e,e,"@",e,".",a,a,a,a,a,"",a
 for c in E:
  if c in t[0]:t=t[2:]
  elif not c in t[1]:return 0>1
 return""==t[0]

Basically just a state machine using obfuscatingly short variable names.

share|improve this answer
    
You can drop ~10 characters by making t into a flat list, and incrementing by two. t[s][1] becomes t[s+1] Also, the last return is one space too far. –  ACoolie Sep 7 '09 at 19:09
    
@ACoolie: Thanks! It actually appears to put my^H^H*our* solution in the lead so far. –  Sean Sep 7 '09 at 19:16
    
Nevermind, it's only in the lead if I cheat on the count. Oh well. –  Sean Sep 7 '09 at 19:23
    
I golfed it a little further, by reording the list, changing it to a tuple, eliminating spaces, eliminating the list index, etc. –  recursive Sep 7 '09 at 20:02
1  
It's possible to save two more spaces by changing the indentation inside the loop to tabs. –  recursive Sep 7 '09 at 20:03

C (166 characters)

#define F(t,u)for(r=s;t=(*s-64?*s-46?isalpha(*s)?3:isdigit(*s)|*s==95?4:0:2:1);++s);if(s-r-1 u)return 0;
V(char*s){char*r;F(2<,<0)F(1=)F(3=,<0)F(2=)F(3=,<1)return 1;}

The single newline is required, and I've counted it as one character.

share|improve this answer
    
Nice! Calling a macro with fewer arguments than declared is interesting -- I find it compiles (with warnings) on MSVC++ but not on gcc 4.1.2. Any idea what is "officially" allowed in the language spec? –  j_random_hacker Sep 8 '09 at 5:04
1  
@j_random_hacker: I'm not sure what the spec says, but gcc doesn't like this code at all. Putting commas in those problematic macro calls (F(1=,) and F(2=,)) fixes the "macro 'F' requires 2 arguments, but only 1 given" error, but my version (3.4.6) still blows up with "syntax error before '=' token" and "syntax error before ')' token". –  P Daddy Sep 8 '09 at 7:36

Python, 149 chars (after putting the whole for loop into one semicolon-separated line, which I haven't done here for "readability" purposes):

def v(s,t=0,o=1):
 for c in s:
   k=c=="@"
   p=c=="."
   A=c.isalnum()|p|(c=="_")
   L=c.isalpha()
   o&=[A,k|A,L,L|p,L,L,L][t]
   t+=[1,k,1,p,1,1,0][t]
 return(t>5)&o

Test cases, borrowed from strager's answer:

assert v("b@w.org")
assert v("r..t@x.tw")
assert v("j_r@x.mil")
assert not v("b@c@d.org")
assert not v("test@%.org")
assert not v("j_r@x.c.il")
assert not v("@w.org")
assert not v("test@org")
assert not v("s%p@m.org")
assert not v("foo@a%.com")
print "Yeah!"

Explanation: When iterating over the string, two variables keep getting updated.

t keeps the current state:

  • t = 0: We're at the beginning.
  • t = 1: We where at the beginning and have found at least one legal character (letter, number, underscore, period)
  • t = 2: We have found the "@"
  • t = 3: We have found at least on legal character (i.e. letter) after the "@"
  • t = 4: We have found the period in the domain name
  • t = 5: We have found one legal character (letter) after the period
  • t = 6: We have found at least two legal characters after the period

o as in "okay" starts as 1, i.e. true, and is set to 0 as soon as a character is found that is illegal in the current state. Legal characters are:

  • In state 0: letter, number, underscore, period (change state to 1 in any case)
  • In state 1: letter, number, underscore, period, at-sign (change state to 2 if "@" is found)
  • In state 2: letter (change state to 3)
  • In state 3: letter, period (change state to 4 if period found)
  • In states 4 thru 6: letter (increment state when in 4 or 5)

When we have gone all the way through the string, we return whether t==6 (t>5 is one char less) and o is 1.

share|improve this answer
    
Quite a bit shorter than the other Python solution here! +1. –  j_random_hacker Sep 20 '09 at 14:50

Whatever version of C++ MSVC2008 supports.

Here's my humble submission. Now I know why they told me never to do the things I did in here:

#define N return 0
#define I(x) &&*x!='.'&&*x!='_'
bool p(char*a) {
 if(!isalnum(a[0])I(a))N;
 char*p=a,*b=0,*c=0;
 for(int d=0,e=0;*p;p++){
  if(*p=='@'){d++;b=p;}
  else if(*p=='.'){if(d){e++;c=p;}}
  else if(!isalnum(*p)I(p))N;
  if (d>1||e>1)N;
 }
 if(b>c||b+1>=c||c+2>=p)N;
 return 1;
}
share|improve this answer
    
Assumes a is properly NULL-terminated. <shrug/> –  jeffamaphone Sep 7 '09 at 18:07
4  
It's nice to provide a character count in your answers, as well as the language used. –  strager Sep 7 '09 at 18:14

Not the greatest solution no doubt, and pretty darn verbose, but it is valid.

Fixed (All test cases pass now)

    static bool ValidateEmail(string email)
{
    var numbers = "1234567890";
    var uppercase = "ABCDEFGHIJKLMNOPQRSTUVWXYZ";
    var lowercase = uppercase.ToLower();
    var arUppercase = uppercase.ToCharArray();
    var arLowercase = lowercase.ToCharArray();
    var arNumbers = numbers.ToCharArray();
    var atPieces = email.Split(new string[] { "@"}, StringSplitOptions.RemoveEmptyEntries);
    if (atPieces.Length != 2)
        return false;
    foreach (var c in atPieces[0])
    {
        if (!(arNumbers.Contains(c) || arLowercase.Contains(c) || arUppercase.Contains(c) || c == '.' || c == '_'))
            return false;
    }
    if(!atPieces[1].Contains("."))
        return false;
    var dotPieces = atPieces[1].Split('.');
    if (dotPieces.Length != 2)
        return false;
    foreach (var c in dotPieces[0])
    {
        if (!(arLowercase.Contains(c) || arUppercase.Contains(c)))
            return false;
    }
    var found = 0;
    foreach (var c in dotPieces[1])
    {
        if ((arLowercase.Contains(c) || arUppercase.Contains(c)))
            found++;
        else
            return false;
    }
    return found >= 2;
}
share|improve this answer
    
Maybe try to also post a compressed solution (single character variable names, least amount of white space etc.) so you can compete on the character count. Keep the longer one as well though, it's nice to see how you did it! +1 –  Alex Sep 7 '09 at 18:41
    
Just noticed it fails 2 of the test cases! I'll be back with an update in a sec. :) –  Nathan Taylor Sep 7 '09 at 18:47
2  
What language is this? Also, you understand that the purpose of code golf is the smallest possible program? :) –  recursive Sep 8 '09 at 0:35
    
That would be C#. I didn't realize it was shortest solution, but I just did it out of a desire to see if I could. I added "code-golf" to my preferred tags after seeing this post. :) –  Nathan Taylor Sep 8 '09 at 7:10

C89 character set agnostic (262 characters)

#include <stdio.h>

/* the 'const ' qualifiers should be removed when */
/* counting characters: I don't like warnings :) */
/* also the 'int ' should not be counted. */

/* it needs only 2 spaces (after the returns), should be only 2 lines */
/* that's a total of 262 characters (1 newline, 2 spaces) */

/* code golf starts here */

#include<string.h>
int v(const char*e){
const char*s="0123456789._abcdefghijklmnopqrstuvwxyzABCDEFGHIJKLMNOPQRSTUVWXYZ";
if(e=strpbrk(e,s))
  if(e=strchr(e+1,'@'))
    if(!strchr(e+1,'@'))
      if(e=strpbrk(e+1,s+12))
        if(e=strchr(e+1,'.'))
          if(!strchr(e+1,'.'))
            if(strlen(e+1)>1)
              return 1;
return 0;
}

/* code golf ends here */

int main(void) {
  const char *t;
  t = "b@w.org"; printf("%s ==> %d\n", t, v(t));
  t = "r..t@x.tw"; printf("%s ==> %d\n", t, v(t));
  t = "j_r@x.mil"; printf("%s ==> %d\n", t, v(t));
  t = "b@c@d.org"; printf("%s ==> %d\n", t, v(t));
  t = "test@%.org"; printf("%s ==> %d\n", t, v(t));
  t = "j_r@x.c.il"; printf("%s ==> %d\n", t, v(t));
  t = "@w.org"; printf("%s ==> %d\n", t, v(t));
  t = "test@org"; printf("%s ==> %d\n", t, v(t));
  t = "s%p@m.org"; printf("%s ==> %d\n", t, v(t));
  t = "foo@a%.com"; printf("%s ==> %d\n", t, v(t));

  return 0;
}

Version 2

Still C89 character set agnostic, bugs hopefully corrected (303 chars; 284 without the #include)

#include<string.h>
#define Y strchr
#define X{while(Y
v(char*e){char*s="0123456789_.abcdefghijklmnopqrstuvwxyzABCDEFGHIJKLMNOPQRSTUVWXYZ";
if(*e!='@')X(s,*e))e++;if(*e++=='@'&&!Y(e,'@')&&Y(e+1,'.'))X(s+12,*e))e++;if(*e++=='.'
&&!Y(e,'.')&&strlen(e)>1){while(*e&&Y(s+12,*e++));if(!*e)return 1;}}}return 0;}

That #define X is absolutely disgusting!

Test as for my first (buggy) version.

share|improve this answer
1  
Instead of the if chain, why not a, &&/|| chain? That should remove quite a number of characters. –  strager Sep 7 '09 at 20:02
    
Seems we came up with the same idea of using suffixes of a single string as arguments to str...() functions... And actually I noticed a bug in my code after seeing yours! –  j_random_hacker Sep 7 '09 at 21:11

VBA/VB6 - 484 chars

Explicit off
usage: VE("b@w.org")

Function V(S, C)
V = True
For I = 1 To Len(S)
 If InStr(C, Mid(S, I, 1)) = 0 Then
  V = False: Exit For
 End If
Next
End Function

Function VE(E)
VE = False
C1 = "abcdefghijklmnopqrstuvwxyzABCDEFGHILKLMNOPQRSTUVWXYZ"
C2 = "0123456789._"
P = Split(E, "@")
If UBound(P) <> 1 Then GoTo X
If Len(P(0)) < 1 Or Not V(P(0), C1 & C2) Then GoTo X
E = P(1): P = Split(E, ".")
If UBound(P) <> 1 Then GoTo X
If Len(P(0)) < 1 Or Not V(P(0), C1) Or Len(P(1)) < 2 Or Not V(P(1), C1) Then GoTo X
VE = True
X:
End Function
share|improve this answer

Java: 257 chars (not including the 3 end of lines for readability ;-)).

boolean q(char[]s){int a=0,b=0,c=0,d=0,e=0,f=0,g,y=-99;for(int i:s)
d=(g="@._0123456789QWERTYUIOPASDFGHJKLZXCVBNMqwertyuiopasdfghjklzxcvbnm".indexOf(i))<0?
y:g<1&&++e>0&(b<1|++a>1)?y:g==1&e>0&(c<1||f++>0)?y:++b>0&g>12?f>0?d+1:f<1&e>0&&++c>0?
d:d:d;return d>1;}

Passes all the tests (my older version was incorrect).

share|improve this answer

Erlang 266 chars:

-module(cg_email).

-export([test/0]).

%%% golf code begin %%%
-define(E,when X>=$a,X=<$z;X>=$A,X=<$Z).
-define(I(Y,Z),Y([X|L])?E->Z(L);Y(_)->false).
-define(L(Y,Z),Y([X|L])?E;X>=$0,X=<$9;X=:=$.;X=:=$_->Z(L);Y(_)->false).
?L(e,m).
m([$@|L])->a(L);?L(m,m).
?I(a,i).
i([$.|L])->l(L);?I(i,i).
?I(l,c).
?I(c,g).
g([])->true;?I(g,g).
%%% golf code end %%%

test() ->
  true  = e("b@w.org"),
  false = e("b@c@d.org"),
  false = e("test@%.org"),
  false = e("j_r@x.c.il"),
  true  = e("r..t@x.tw"),
  false = e("test@org"),
  false = e("s%p@m.org"),
  true  = e("j_r@x.mil"),
  false = e("foo@a%.com"),
  ok.
share|improve this answer

Ruby, 225 chars. This is my first Ruby program, so it's probably not very Ruby-like :-)

def v z;r=!a=b=c=d=e=f=0;z.chars{|x|case x when'@';r||=b<1||!e;e=!1 when'.'
e ?b+=1:(a+=1;f=e);r||=a>1||(c<1&&!e)when'0'..'9';b+=1;r|=!e when'A'..'Z','a'..'z'
e ?b+=1:f ?c+=1:d+=1;else r=1 if x!='_'||!e|!b+=1;end};!r&&d>1 end
share|improve this answer

'Using no regex': PHP 47 Chars.

<?=filter_var($argv[1],FILTER_VALIDATE_EMAIL);
share|improve this answer

Haskell (GHC 6.8.2), 165 161 144C Characters


Using pattern matching, elem, span and all:

a=['A'..'Z']++['a'..'z']
e=f.span(`elem`"._0123456789"++a)
f(_:_,'@':d)=g$span(`elem`a)d
f _=False
g(_:_,'.':t@(_:_:_))=all(`elem`a)t
g _=False

The above was tested with the following code:

main :: IO ()
main = print $ and [
  e "b@w.org",
  e "r..t@x.tw",
  e "j_r@x.mil",
  not $ e "b@c@d.org",
  not $ e "test@%.org",
  not $ e "j_r@x.c.il",
  not $ e "@w.org",
  not $ e "test@org",
  not $ e "s%p@m.org",
  not $ e "foo@a%.com"
  ]
share|improve this answer

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