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

Ok I have a search suggestion dropdown.

When I type something, a character, it will show all results that are %LIKE% the value I entered.

Using the function keyup().

    var search = $("#search"),
    result = $('ul.dropdown');
    search.keyup(function(){
        if (search.val() !== "") {
            load();
            $.post('search.php?do=search', {search : search.val()}, function(data){
                if (data == ""){
                    stop_load();
                } else {
                    result.html(data);  
                }
            });
                $.post('search.php?do=search&data', {data : search.val()}, function(msg){
                    stop_load();
                    $('#end_results').html(msg);
                }); /** actual search **/
        } else {
            $('#end_results').html('');
            result.html('');
        }
    });

And the PHP for this:

    } else { // the info
        $search = htmlentities(trim($_POST['search']));
        $search_query = "'%$search%'";
        $get_search = $db->prepare("SELECT * FROM `kit_info` WHERE `kit_name` LIKE $search_query LIMIT 10");
        $get_search->execute();
        while ($row = $get_search->fetch(PDO::FETCH_ASSOC)){
            $return .= '<li onClick=\'$("#search").val("'.$row['kit_name'].'");$("ul.dropdown").html("");search();\'>'.$row['kit_name'].'</li>';
        }
        echo $return;
    }

As you see, the PHP echoing a list, that will be in the dropdown suggestion.

Problem

When user searching for 5 minutes or so, every time typing a new character, etc, my host automatically blocks that IP for sending too many requests.

That's because the client has passed his requests limit, and will be blocked for another 24 hours.

A solution I've thought of:

Load all data from mysql, at first when page loads, and then do the actions.

Question

Is there any better & easier solution for this besides expanding the limits?

Is my solution great and would work? How would I do this?

Thanks a lot!

share|improve this question
    
You could add a timeout that will be refreshed every time the user types something. And only when he doesn't for two seconds you actually grab the suggestions. – Till Helge Apr 29 '13 at 13:42
up vote 1 down vote accepted

There are some quick and easy ways to do this. one of them is to use a timeout.

when i type in 20 characters within 2 seconds, there is no need to do 20 lookups.

Also you might not want to start searching at the first character, but lets say when the user has typed 3 characters.

$('#mysearchelement').keyup(function(){

    // stop any old timers to prevent double execution
    if($('#mysearchelement').data("searchtimer") !== undefined) 
    {
        clearTimeout($('#mysearchelement').data("searchtimer"));
    }

    // here we limit to minimum 3 characters before searching, you can omit this.
    if($(this).val().length > 2)
    {
        var timer = setTimeout(mySearchFunction, 500); // wait 500 ms before searching
        // store the timer in the search field so we know if there are any running
        $(this).data("searchtimer", timer);
    }

});    


function mySearchFunction()
{
    //here you do you actual calls to search.
}
share|improve this answer
    
the function should work the same as my current one right? with post, etc – user2326532 Apr 29 '13 at 14:11
    
This is only a wrapper to take care of timing. you should put your logic in mySearchFunction(). – nvanesch May 1 '13 at 6:50

Try this;

http://jqueryui.com/autocomplete/

Worked excellently for me in the exact same situation!

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.