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I am making a form with 4 input fields , 2 date picker and 3 select fields. I want to add onkeyup event on every field present in form. When user fill more than 2 field, result start showing in div named result with the help of ajax. I mean when ever i change any field data will populate live in div with ajax.

$('#form input,select').keyup(function() {
    if ($('#from').val() !== '' && $('#to').val() !== '' && $('#depa').val() !== '' && $('#arr').val() !== '') {
           $.get('ajaxSearch.php', $("#form").serialize(), function(data) { $('#result').html(data); });
    } else {

    }
});

I tried but some field post with ajax but not all of them and if i change again it doesn't work again

share|improve this question
    
i just asked a question, why negative point, is it the format of code than everybody have a different style of writing code – Burhan Ahmed Mar 13 '14 at 7:32

Try this Change

$('#form input,select').keyup(function() {

to

 $('form').change(function() {

Make sure that you are using jquery 1.4 or higher

share|improve this answer
    
change dont work – Burhan Ahmed Mar 13 '14 at 7:20
    
Could you please try $('#form').change(function() { – BKM Mar 13 '14 at 7:22

Just Copy paste below code... It might solve your problem.

$('#form input,select').keyup(function() {
    var count=0;
    $("input").each(function(){
        if($(this).val()!="") {
            count++;
        }
        if(count>1) {
            $.get('ajaxSearch.php', $("#form").serialize(), function(data) { $('#result').html(data); });
        }
        else{
            $("#result").hide();
        }
    });
});
share|improve this answer
    
not working only post first two input fields values, but dont post others – Burhan Ahmed Mar 13 '14 at 8:12
    
actually i have many field, your code dont work when i change any of the fields value again, your code runs just one time – Burhan Ahmed Mar 14 '14 at 4:40

You can use 'on' with 'change'.

$("#form").on("change", ":input", function(){alert('changed some element');});
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