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i have an array of numbers

var projects = [ 645,629,648 ];

and a number 645

i need to get the next(629) and prev(648) numbers?

can i do it with jquery?

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maybe help : stackoverflow.com/questions/1058185/… –  Haim Evgi Mar 23 '10 at 8:30
    
Have you mixed your numbers up? 648 isn't the previous number in that array. And what is worng with using a for loop, then taking the number on each side of the index when you find the desired number? –  slugster Mar 23 '10 at 8:30
    
@slugster - yes it is the previous number when the array is circular! –  Veger Mar 23 '10 at 8:47
    
He's most likely looking for a method to do this with a selector of some sort. –  Fabian Mar 23 '10 at 8:49
1  
@eyalb - then you should say that in your description. Don't expect us to be mind readers, and lots of us have learnt not to make assumptions about things - i have never encountered a situation where an array was circular. Be explicit and accurate :) –  slugster Mar 23 '10 at 10:06

4 Answers 4

up vote 24 down vote accepted

You can make it a bit shorter overall using jquery's $.inArray() method with a modulus:

var p = [ 645,629,648 ];
var start = 645;
var next = p[($.inArray(start, p) + 1) % p.length];
var prev = p[($.inArray(start, p) - 1 + p.length) % p.length];

Or, function based:

function nextProject(num) { 
  return p[($.inArray(num, p) + 1) % p.length]; 
}
function prevProject(num) { 
  return p[($.inArray(num, p) - 1 + p.length) % p.length];
}
share|improve this answer
    
What is the advantage of using $.inArray() compared to indexOf(), I cannot see any different behavior when looking at the provided documentation? (Just curious as I'd like to learn new things) –  Veger Mar 23 '10 at 15:25
1  
@Veger - I guess since some browsers didn't support indexOf at some point (I'm not sure which), it'll use it internally if present, otherwise it'll loop and find it. –  Nick Craver Mar 23 '10 at 15:40

if your array is a MySQL Recordset then try this

<?
    $pid=$_GET['pid'];
    $prev="";
    $next="";
    $cur=0;
    $i=0;

    while($rowcon=mysql_fetch_assoc($result))
    {       
        $arr[$i]=$rowcon['pid'];
        if($rowcon['pid']==$pid)
        {
            $cur=$i;
        }
        $i++;
    }   
    if($cur<$num_rows)
        $next=$arr[$cur+1];
    else
        $next="";
    if($cur>0)
        $prev=$arr[$cur-1];
    else
        $prev="";
    echo $prev."   ".$cur."   ".$next;
?>
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You only need to sort the array once afterwards you can just use the code starting from //start

If number is not present nothing is output

var projects = [ 645, 629, 648 ], number = 645, i = -1;
projects.sort(function(a, b) {
    return a > b ? 1 : -1;
});
//start
i = projects.indexOf(number);
if(i > 0)
    alert(projects[i-1]);
if(i < (projects.length - 1) && i >= 0)
    alert(projects[i+1]);
share|improve this answer

You can I do not know about jQuery, but it is fairly simple to create something on your own (assuming that you have always unique numbers in your array):

var projects = [ 645,629,648 ];

function next(number)
{
    var index = projects.indexOf(number);
    index++;
    if(index >= projects.length)
        index = 0;

    return projects[index];
}

Calling next() with a project number returns the next project number. Something very similar can be made for the prev() function.

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