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PHP: “Notice: Undefined variable” and “Notice: Undefined index”

I'm playing about with Ajax for the first time, using it alongside PHP, MYSQL.

So far I've got myself a text box I can type into it gives me suggested matches.

I'm now trying to set it up to so that I can search for a project name like "April Kelley" and it displays the project name, then anyone that is associated to that project. I've got the code mostly there but I keep getting an error message saying :

Notice: Undefined index: ClientName in C:\wamp\www\Creative Wolf Tests\CPanel_Inc.php on line 30

As far as I can tell my code should work because I've used the same format earlier in my code. My codes spilt into two files CPanel & Cpanel Inc, if someone could take a look and help me to rectify what is probabally a silly mistake that I'm overlooking I'd be greatful.

Cpanel contains

        function showHint(str) {
            if (str.length==0) { 

            if (window.XMLHttpRequest) {
                // code for IE7+, Firefox, Chrome, Opera, Safari
                xmlhttp=new XMLHttpRequest();
            } else {
                // code for IE6, IE5
                xmlhttp=new ActiveXObject("Microsoft.XMLHTTP");

            xmlhttp.onreadystatechange=function() {
                if (xmlhttp.readyState==4 && xmlhttp.status==200) {


        <p><b>Project Search:</b></p>
        Project Name: <input type="text" onKeyUp="showHint(this.value)" size="20" />
         <p><div id="results_box"></span></p> 

CPanel Inc contains

    $connect = mysqli_connect("localhost", "root", "", "creative wolf");
    if (mysqli_connect_errno()) {
        printf("Connect Failed: %s\n", mysqli_connect_error());
    } else { 

        // Get the search_value parameter from URL
        $content = "";

        // Search database for comparable values provided that search_value has some value
        if (strlen($search_value) > 0) {        

            // Sets up query return results
            $qry = "SELECT ProjectName FROM projects WHERE ProjectName LIKE '$search_value%'";
            $res = mysqli_query($connect, $qry) or die(mysqli_error($connect));

            if (mysqli_num_rows($res) < 1){
                printf("Could not retrieve records matching your search critera", mysqli_error($connect));
            } else {        
                while ($data = mysqli_fetch_array($res)) {
                    $content .= "Project Name: ".$data['ProjectName']."<br /> <hr/>";

                    // Set up query
                    $get_clients_qry = "SELECT ClientName FROM projects/clients WHERE ProjectName = 'April Kelley'";
                    $get_clients_res = mysqli_query($connect, $qry) or die(mysqli_error($connect));

                    while ($clientData = mysqli_fetch_array($get_clients_res)) {
                        $content .= $clientData['ClientName'];
                        echo $content."<br />";

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marked as duplicate by hakre, Madara Uchiha, Jocelyn, Michael Berkowski, deefour Dec 15 '12 at 4:31

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

Check your database column ClientName. Error is there. It may have been spelled differently. – itachi Oct 19 '12 at 14:32

2 Answers 2

up vote 1 down vote accepted

Check to see, if the column ClientName exists in the table projects/clients

Edit: as per your comment, the code should be,

 $get_clients_qry = "SELECT ClientName FROM projects/clients WHERE ProjectName = 'April Kelley'";
 //use $get_clients_qry instead of $qry
 $get_clients_res = mysqli_query($connect, $get_clients_qry) or die(mysqli_error($connect)); 

 while ($clientData = mysqli_fetch_array($get_clients_res)) {
  $content .= $clientData['ClientName'];
   echo $content."<br />";
share|improve this answer
projects/clients table is as follows ID | ProjectName | ClientName 1 | Home From Home | Emma Miles 2 | April Kelley | April Kelley 3 | April Kelley | Toby 4 | Test | April Kelley – lil_bugga Oct 19 '12 at 14:47
the numbers shown are the id's – lil_bugga Oct 19 '12 at 15:01
what are the column names? just ID and ProjectName? – Teena Thomas Oct 19 '12 at 15:01
ID, ProjectName, ClientName – lil_bugga Oct 19 '12 at 15:03
also, $get_clients_qry instead of $qry in the line ` $get_clients_res = mysqli_query($connect, $get_clients_qry) or die(mysqli_error($connect));` – Teena Thomas Oct 19 '12 at 15:13
$content .= (isset($clientData['ClientName']) ? $clientData['ClientName'] : '';
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Actually, you should use array_key_exists, it's more specific and does the job in a better manner. – Daniel Noel-Davies Oct 19 '12 at 14:33
put echo $content; at the end of the script – Alexey Sidorov Oct 19 '12 at 14:43
I adapted the code to read as follows '$content .= (isset($clientData['ClientName']) ? $clientData['ClientName'] : 'No Result');' but still returns No Result Does this mean my query is wrong because under the ProjectName column of the database there are 2 entries which should be returned and aren't? – lil_bugga Oct 19 '12 at 14:45
Did you mean this? $get_clients_qry = "SELECT ClientName FROM clients WHERE ProjectName = 'April Kelley'"; – Alexey Sidorov Oct 19 '12 at 14:47
I have a many-to-many set up so i have a clients table, a projects table and the projects/clients table so I can associate one project to many clients and one client to many projects without duplicates – lil_bugga Oct 19 '12 at 14:50

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