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search.php

$text = $mysqli->$_POST['term'];
$query = "SELECT name FROM males WHERE name LIKE '%" . $text . "%' ORDER BY name ASC";
$result = $mysqli->query($query);
$json = '[';
$first = true;
while($row = $result->fetch_assoc())
{
    if (!$first) { $json .=  ','; } else { $first = false; }
    $json .= '{"value":"'.$row['name'].'"}';
}
$json .= ']';
echo $json;

index.php

1) HTML

<body>
Text: <input type="text" id="autocomplete" />
</body>

2) jQuery

    $( "#autocomplete" ).autocomplete({
        source: function(request, response) {
            $.ajax({ url: "http://localhost/testing/auto/search.php",
            data: { term: $("#autocomplete").val()},
            dataType: "json",
            type: "POST",
            success: function(data){
                response(data);
            }
        });
    },
    minLength: 2
    });

When I type 2 letters, it gives me all the names in my database even if these two letters do not match any of the names.

How does that happen and how do I fix it?

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2  
how does your json looks like? you should use json_encode function to produce json in php –  Dalen Jun 10 '11 at 6:57
    
still gives me all records after i added json_encode! –  Swell Jun 10 '11 at 7:11
    
No, $text = $mysqli->$_POST['term']; –  Swell Jun 10 '11 at 7:21
1  
What does $mysqli->$_POST['term'] do? I think you should have $text = $_POST['term'];. This should work –  RakeshS Jun 10 '11 at 7:34
    
@Rakesh , thank you its worked now without this "$mysqli->" –  Swell Jun 10 '11 at 7:37

6 Answers 6

up vote 1 down vote accepted

Looks like my comment worked as an answer, hence this answer.

What does $mysqli->$_POST['term'] do? I think you should have $text = $_POST['term'];. This should work.

share|improve this answer

Change the PHP to

$text = $_POST['term'];

$query = "SELECT name FROM males WHERE name LIKE '%" . $mysqli->real_escape_string($text) . "%' ORDER BY name ASC";
$result = $mysqli->query($query);

echo json_encode($result->fetch_all(MYSQLI_ASSOC));

You forgot to escape the input to prevent SQL injections. Additionally, use @mu's answer to fix your front-end code.

share|improve this answer
    
Nice, I didn't even notice the $text mistake until Swell pointed it out to me. –  mu is too short Jun 10 '11 at 7:49
    
@mu And I didn't spot the JS errors at first. Guess we focus on different things ;-) –  Znarkus Jun 10 '11 at 8:20
    
To be fair, the JS issues are more stylistic and about using the API as intended than "real" errors. –  mu is too short Jun 10 '11 at 8:24

Your source callback isn't doing what you think it is. The current contents of the autocompleter are in request.term, not in $("#autocomplete").val(). You're sending an empty value for term back to your PHP and then your SQL looks like:

SELECT name FROM males WHERE name LIKE '%%' ORDER BY name ASC

which of courses matches everything in your males table. Your source callback should look like this:

source: function(request, response) { 
    $.ajax({
        url: "http://localhost/testing/auto/search.php",
        data: { term: request.term },
        dataType: "json", 
        type: "POST", 
        success: function(data) { 
            response(data);  
        }
    });
}   

The jQuery-UI widget probably manipulates the DOM a fair bit so the #autocomplete input element may not have anything useful in it until the autocompleter has a final value for it.

For reference, here's what the fine manual has to say:

The third variation, the callback, provides the most flexibility, and can be used to connect any data source to Autocomplete. The callback gets two arguments:

  • A request object, with a single property called term, which refers to the value currently in the text input. For example, when the user entered "new yo" in a city field, the Autocomplete term will equal "new yo".
share|improve this answer
    
thank you for your answer , but still the same problem! –  Swell Jun 10 '11 at 7:33
    
What does $text look like in your PHP? –  mu is too short Jun 10 '11 at 7:34
1  
its worked also with data: { term: $("#autocomplete").val()},, the problem was $mysqli->$_POST['term']. –  Swell Jun 10 '11 at 7:39
    
@Swell: Really? I didn't even notice that. So Znarkus gets the checkmark then. Even so, you should use request.term as that's the specified way and it saves you from all the extra work that $().val() has to do behind the scenes, it is probably more future proof as well. –  mu is too short Jun 10 '11 at 7:47
    
thank you so much i would like to accept your answer but your answer not the right one regarding this issue, also i take your advice and i replaced $().val() with request.term , thank you again. –  Swell Jun 10 '11 at 7:52

First make sure that your search.php is working. Switch to $_GET['term'] and run the page directly until you get the data you wanted.

I would personally change the query from from LIKE '%text%' to LIKE 'text%'.

After that use Firebug to examine the parameters that are transferred to the search.php with an AJAX call. BTW, are you sure that your jquery code is correct?

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thank you for your concern but its working fine now. –  Swell Jun 10 '11 at 7:41

I think is your sql query. U were using

$query = "SELECT name FROM males WHERE name LIKE '%$text%' ORDER BY name ASC"

if your name list like

Aaron Alexander Maartha ...

If you type 'AA', the above query will result : Aaron, Maartha. Because the query will search matching given string between the whole strings. % text % means the query result will ignore the left and right result.

if you're looking for names field data you supposed to use query

$query = "SELECT name FROM males WHERE name LIKE '$text%' ORDER BY name ASC"

If you type 'AA, it will result : Aaron.

Note that jQuery only returns what you're asking to the database.

share|improve this answer
    
Your concatenation looks off –  Znarkus Jun 10 '11 at 8:11

Use $_REQUEST['term'] instead $_POST['term'].

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