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

Hi I am using jquery for ajax .. I followed manuals and examples on net but I cannot see what I am doing wrong. Here is my code :

    function ShowSearchResults(search_value){
           var ajShowSearchResults = $.ajax({
                type: 'POST',
            url: '../ajquery.php',
            data: {opt : 'srch', val: search_value},
            dataType: "html"
        });

        ajShowSearchResults.done(function(data){
            alert(data);
        });

        ajShowSearchResults.fail(function(jqXHR, textStatus) {
            alert( "Request failed: " + textStatus);
        });
share|improve this question
2  
what do you expect it to do and what's going wrong? – Alp Mar 28 '12 at 12:03
1  
Getting any console messages? – 472084 Mar 28 '12 at 12:04
up vote 0 down vote accepted

I just tested your script on my localhost. I placed ajquery.php in the www directory and placed index.html which contains your script in the directory www/test because according to the ajax parameters you have specified ajquery.php must be one level up in the directory heirarchy.

The code in www/ajquery.php:

<?php print_r($_POST); ?>

The code in www/test/index.html:

<script type="text/javascript">
    function ShowSearchResults(search_value){
           var ajShowSearchResults = $.ajax({
                type: 'POST',
            url: '../ajquery.php',
            data: {opt : 'srch', val: search_value},
            dataType: "html"
        });

        ajShowSearchResults.done(function(data){
            alert(data);
        });

        ajShowSearchResults.fail(function(jqXHR, textStatus) {
            alert( "Request failed: " + textStatus);
        });
        return false; // My addition
    } // This Bracket You missed in the question

</script>
<form onsubmit='return ShowSearchResults($("#y").val())'>
<input type="text" name="y" id="y"/>
<input type="submit"/>
</form>

This is the output. Output

Now, You can see that all the POST data you sent is available at ajquery.php. That proves that there is no problem with your script except the last bracket which, I assume, you left out by mistake. But still, I can smell that there might be a problem in the following line on your side.

            url: '../ajquery.php',

ajquery.php might not be residing in the parent directory. If ajquery.php is in the same directory, you can replace ../ajquery.php with ajquery.php or best of all, with the absolute url to ajquery.php like http://yourdomain.com/ajquery.php.

Hope that solves your question.

Peace...

share|improve this answer
    
Thank you very much !! the problem was with directory of ajquery.php. Thank you for your time.. – Simon Mar 28 '12 at 17:48

You can put the success and error functions in the ajax call like so:

$.ajax(
{
    type:       'POST',
    url:        '../ajquery.php',
    data:       {opt : 'srch', val: search_value},
    dataType:   "html",
    success:    function(data) 
    {
        alert(data);
    },
    error:      function(jqXHR, textStatus)
    {
        alert( "Request failed: " + textStatus);
    }
});

I hope this works, because I didn't test it ;)

share|improve this answer

Wild guess:

    var ajShowSearchResults = $.ajax({
        type: 'POST',
        url: '../ajquery.php',
        data: {opt : 'srch', val: search_value},
        dataType: "html",
        success: searchSuccess,
        failure: searchFailure,
    });

    searchSuccess = function(data) {
        alert(data);
    };

    searchFailure = function(data) {
        alert( "Request failed: " + data);
    };
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.