Stack Overflow is a community of 4.7 million programmers, just like you, helping each other.

Join them; it only takes a minute:

Sign up
Join the Stack Overflow community to:
  1. Ask programming questions
  2. Answer and help your peers
  3. Get recognized for your expertise

i got the following jQuery stuff where i entered the array numbers and selector positions by feet - can i do this in one block with an for loop?

jQuery(document).ready(function(){

    jQuery('.hoverB0x:eq(0)').html('<a style="background:white;" class="imageLink" href="${createLink(uri: "/beirat/")}">Profil von' + names[0]+'</a>');
    jQuery('div.name:eq(0)').html(title[0]+' '+names[0]);
    jQuery('div.description:eq(0)').html(funktion[0]);
    jQuery('a.imageLink:eq(0)').prop('href', 'beirat/'+ident[0]);
    jQuery('a.contentLink:eq(0)').prop('href', 'beirat/'+ident[0]);
    jQuery('.profilBildInner:eq(0) img').attr('src', base+ident[0]+'.png');

Now about 10 blocks going to follow up with eq([arrayPos]) and names/ident[arrayPos]

share|improve this question
1  
"can i do this in one block with an for loop?" Yes. Use a for loop and replace :eq(1) with :eq(' + i + ') and [1] with [i] assuming i is your loop index. – Kevin B Dec 13 '12 at 18:53
up vote 2 down vote accepted

I dont see why not... just change the indexes to use the increment counter of a for loop. You dont show how you get the names, ident, or funktion arrays but presumable they are the same size and hold the proper count of things you expect in the document so use one of those to get your base increment range.

for (var i = 0; i < ident.length; i++){
    $('.hoverB0x:eq(' + i + ')').html('<a style="background:white;" class="imageLink" href="${createLink(uri: "/beirat/")}">Profil von' + names[i]+'</a>');
    $('div.name:eq(' + i + ')').html(title[i]+' '+names[i]);
    $('div.description:eq(' + i + ')').html(funktion[i]);
    $('a.imageLink:eq(' + i + ')').prop('href', 'beirat/'+ident[i]);
    $('a.contentLink:eq(' + i + ')').prop('href', 'beirat/'+ident[i]);
    $('.profilBildInner:eq(' + i + ') img').attr('src', base+ident[i]+'.png');

}

Further more if possible it would make much more sense to combine those arrays into a a single array of hahses like:

var values = [
  {ident: 'ident_value', funktion: 'function_value', name: 'name_value'}
];

Then you can do:

for (var i = 0; i < values.length; i++){
    $('.hoverB0x:eq(' + i + ')').html('<a style="background:white;" class="imageLink" href="${createLink(uri: "/beirat/")}">Profil von' + values[i].name+'</a>');
    $('div.name:eq(' + i + ')').html(title[i]+' '+values[i].name);
    $('div.description:eq(' + i + ')').html(values[i].funktion);
    $('a.imageLink:eq(' + i + ')').prop('href', 'beirat/'+values[i].ident);
    $('a.contentLink:eq(' + i + ')').prop('href', 'beirat/'+values[i].ident);
    $('.profilBildInner:eq(' + i + ') img').attr('src', base+values[i].ident+'.png');

}
share|improve this answer

Yes, definitely:

for (var i = 0; i < 3; i++){
    $('.hoverB0x:eq(' + i + ')').html('<a style="background:white;" class="imageLink" href="${createLink(uri: "/beirat/")}">Profil von' + names[i]+'</a>');
    $('div.name:eq(' + i + ')').html(title[i]+' '+names[i]);
    $('div.description:eq(' + i + ')').html(funktion[i]);
    $('a.imageLink:eq(' + i + ')').prop('href', 'beirat/'+ident[i]);
    $('a.contentLink:eq(' + i + ')').prop('href', 'beirat/'+ident[i]);
    $('.profilBildInner:eq(' + i + ') img').attr('src', base+ident[i]+'.png');

}
share|improve this answer

Use a for loop:

for (var i = 0; i < 3; i++) {
    jQuery('.hoverB0x:eq(' + i + ')').html('<a style="background:white;" class="imageLink" href="${createLink(uri: "/beirat/")}">Profil von' + names[i] + '</a>');
    jQuery('div.name:eq(' + i + ')').html(title[i] + ' ' + names[i]);
    jQuery('div.description:eq(' + i + ')').html(funktion[i]);
    jQuery('a.imageLink:eq(' + i + ')').prop('href', 'beirat/' + ident[i]);
    jQuery('a.contentLink:eq(' + i + ')').prop('href', 'beirat/' + ident[i]);
    jQuery('.profilBildInner:eq(' + i + ') img').attr('src', base + ident[i] + '.png');
}
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.