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I have this PHP code:

function getusers($user) {
    $result = query("SELECT IdUser, username FROM login WHERE username='%s'",$user);

    if (count($result['result'])>0) {
        //authorized

        print json_encode($result);
    } else {
        errorJson('Actualization failed');
    }
}

But this only returns me the user that matches the name, What I want is that I return all users containing that name, for example: dani -> daniel, dani_56, dani563, elnenedani, ...

It is usually done by putting in PHP: %dani% but as I have put the %s to grab the variable $user, do not know how to put it, and I've tried that and it does not work

Any idea?

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I hope that query() function is doing some some proper placeholder prep, or at least escaping parameters, because otherwise you're vulnerable to SQL injection attacks. –  Marc B Jul 29 '13 at 14:48
    
Could you post the function query() so we can see what it is doing? –  The Boogie Man Jul 29 '13 at 14:56

4 Answers 4

You should use the LIKE syntax. Make sure to include % to indicate wildcards:

query('SELECT IdUser, username FROM login 
       WHERE username LIKE "%' . $user . '%"')
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thanks friend, but this fails: $result = query("SELECT IdUser, username FROM login WHERE username LIKE %'%s'%",$user); –  kinkiyero Jul 29 '13 at 15:22
    
This is a parsing issue. See above. –  Mundi Jul 29 '13 at 15:28
    
I understand why you changed the syntax, I do not remember but it's true that you can also write well, but still does not work for me and do not understand. Should work with mySql and working, this is for an iOS app that works with JSON maybe that has something to do –  kinkiyero Jul 29 '13 at 15:43

My query() function is

function query() {
global $link;
$debug = false;

//get the sql query
$args = func_get_args();
$sql = array_shift($args);

//secure the input
for ($i=0;$i<count($args);$i++) {
    $args[$i] = urldecode($args[$i]);
    $args[$i] = mysqli_real_escape_string($link, $args[$i]);
}

//build the final query
$sql = vsprintf($sql, $args);

if ($debug) print $sql;

//execute and fetch the results
$result = mysqli_query($link, $sql);
if (mysqli_errno($link)==0 && $result) {

    $rows = array();

    if ($result!==true)
    while ($d = mysqli_fetch_assoc($result)) {
        array_push($rows,$d);
    }

    //return json
    return array('result'=>$rows);

} else {

    //error
    return array('error'=>'Database error');
}

}

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It is not a great Question. If you have searched well in Stackoverflow you would have go it the answer.. As you asked the Question the answer is.. Instead of Equal use LIKE:

function getusers($user) {
$result = query("SELECT IdUser, username FROM login WHERE username LIKE %'%s'%",$user);

if (count($result['result'])>0) {
    //authorized

    print json_encode($result);
} else {
    errorJson('Actualization failed');
}
}

It seems the PHP code and DB is working well. Checkout the below links for the error:

iOS 5 JSON Parsing Results in Cocoa Error 3840

Cocoa error 3840 using JSON (iOS)

The Operation couldn't be completed. (Cocoa error: 3840.)

Cocoa Error 3840 - NSJSONSerialization

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1  
thanks friend, but this fails: $result = query("SELECT IdUser, username FROM login WHERE username LIKE %'%s'%",$user); –  kinkiyero Jul 29 '13 at 15:22
    
ru getting any error? –  TomPHP Jul 29 '13 at 15:53
    
I´m receive this: error -> The operation couldn´t be comleted. (Cocoa error 3840.) –  kinkiyero Jul 29 '13 at 16:03
    
it seems the error is not with the DB link or search.. check out the below links.. –  TomPHP Jul 29 '13 at 16:14

I do not get fixed. This code is for an ios app that uses AFNetworking, might please that helps you know what happens because I do not get it

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