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I know i can do like this...

if (Size == 4 | Size == 7 | Size == 10 | Size == 13 | Size == 16 | Size == 19)
{alert("Yes!")}

But any better coding ?

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1  
You should try the CodeReview SE site. –  Jeroen Jul 6 '12 at 9:46
3  
For starters im guessing you actually meant or statements in which case you need to use || not a single | –  Jon Taylor Jul 6 '12 at 9:46

10 Answers 10

up vote 10 down vote accepted
if(Size%3==1&&Size<20&&Size>3 )
{alert("yes");}
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4  
Obviously this is if the numbers he chose werent accidently (multiples of 3)+1 :) –  Jon Taylor Jul 6 '12 at 9:48
    
what about if Size morethan 19 ? like... 22, 25, 28.... ??? –  l2aelba Jul 6 '12 at 10:14
1  
Then this if condition will not run –  user1432124 Jul 6 '12 at 10:15
1  
but if you want to exceed the limit of size then instead of Size<20 write Size<23 or 26 or 29 ... –  user1432124 Jul 6 '12 at 10:16
1  
@l2aelba then it will run for all number that leave remainder 1 on division by 3 –  user1432124 Jul 6 '12 at 10:16

You can use jQuery.inArray :

if (jQuery.inArray(Size, [4, 7, 10, 13, 16, 19])>=0) {

Note that the goal can only be readability, not performances.

If you have only those 6 values and if they never change, the ugly if you made (with || instead of |) is a perfectly correct solution.

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switch (Size) {
    case 4:
    case 7:
    case 10:
    case 13:
    case 16:
    case 19:
        alert("Yes!");
}
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You can use modulo

if (((Size - 1) % 3) == 0) {
  alert ("yess!");
}
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if((Size - 1)%3 == 0)
     alert("Yes!");
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This is shortest ! thanks –  l2aelba Jul 6 '12 at 9:51
3  
@l2aelba - shortest isn't always the best. Just as important are readability and maintainability, performance, and actually doing what you want (this answer doesn't do the same as the code in the question if Size is smaller than 4 or bigger than 19). –  SDC Jul 6 '12 at 10:00

You could put those numbers in a array and than use

if(JQuery.inArray(Size, [4, 7, 10, 13, 16, 19])>=0)

http://api.jquery.com/jQuery.inArray/

But this make only the code look "nicer" it dont affect the performance of the scipt.

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Something like this (using jQuery):

var accepted = [4,7,10,13,16,19];

if ($.inArray(Size, accepted) != -1)
{
  ...
}
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In jquery

var arr = [4,7,10,13,16,19];
if($.inArray(Size , arr)>-1) {
  alert("Yes!")
}

Vanilla js

var arr = [4,7,10,13,16,19];
if(arr.indexOf(Size)>-1)
{
 alert('yes');
}
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if((Size - 1)%3 == 0 && Size>=4 && Size<=19) alert("Yes!");
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Why && Size>=4 && Size<=19 ??? –  l2aelba Jul 6 '12 at 10:07
1  
because the min in the if is 4 and the max is 19 –  David Fernandez Jul 6 '12 at 10:08
    
what about if Size morethan 19 ? like... 22, 25, 28.... –  l2aelba Jul 6 '12 at 10:13
1  
in this case use only the first element of the if –  David Fernandez Jul 6 '12 at 10:45

The set { 4, 7, 10, 13, ... } can also be described as { x | ∃ k ∈ ℕ⁺ : x = 3 k + 1 }, which can be rearranged to { x | ∃ k ∈ ℕ⁺ : k = (x - 1) / 3 }.

So all you have to check is if (Size - 1) / 3 is a positive integer. Or, put it another way, if Size - 1 is positive AND a multiple of 3:

(0 < Size - 1) && ((Size - 1) % 3 === 0)

But again each subexpression can be rearranged without changing its meaning, by adding 1 to both sides:

(1 < Size) && (Size % 3 === 1)

And because the first number that fits this expression is Size === 4, we can even substitute 1 < Size with 4 <= Size. This makes the code more clear and more efficient.

So in its final form the code could be written like this:

if (4 <= Size && Size % 3 === 1) {
    alert("Yes!");
}
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