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

Heads up before reading. I'm totally new in html and so, so please be patient. I have the following html code and two javascript functions.

<HTML>  <HEAD> .....    </HEAD>
    <BODY>
        <CENTER>            
        <form id="keyForm">
            Όνομα/Επώνυμο:&nbsp;&nbsp; <input type="text" name="keyword"><br><br>
            <input type="button" onClick="resetFunction()" value="Επαναφορά"> &nbsp; &nbsp; &nbsp;
            <input type="button" onClick="my_search(this.form.keyword.value)" value="Αναζήτηση">
        </form>
        <p id="results"></p>
    </CENTER>
     <script>
        function resetFunction() {
            document.getElementById("results").innerHTML = "";
            document.getElementById("keyForm").reset();

        }
    </script>
    <script>
        function my_search(kw) {
            document.getElementById("results").innerHTML =  (

                <table border="1" style="width:500px">
                <tr>
                    <td>ID</td>
                    <td>Επίθετο</td>        
                    <td>Όνομα</td>
                    <td>Ημερομηνία πρόσληψης</td>
                    <td>Τμήμα</td>
                </tr>
            </table> );

        }
    </script>
</BODY>
</HTML>

I want the "results" to be be table that is described in function "my_search" extended by the actual results produced by the following php code.

<?php
header("content-type: text/html;charset=utf-8");

$link = mysqli_connect("127.0.0.1","root", "tralalalalala", "mycompany");
if (!$link) {
    printf("Connect failed: %s\n",
    mysqli_connect_error());
    exit();
}
//printf("Host information: %s<br>",
//mysqli_get_host_info($link));

$key = $_POST['keyword'];   //Keyword in initialized in html
//echo $key; echo "<br>";

$stmt = mysqli_prepare($link, "
    select e.emp_id, e.first_name, e.last_name, e.hire_date, d.dept_name
    from employee e, department d
    where e.dept_id = d.dept_id and (e.first_name like ? or e.last_name like ?)");
$likeKey = "%{$key}%";
mysqli_stmt_bind_param($stmt, "ss", $likeKey, $likeKey);
mysqli_stmt_execute($stmt);
mysqli_stmt_bind_result($stmt, $id, $f_name, $l_name, $hire_date, $d_name);

$stmt->store_result();
$rows = $stmt->num_rows; 
if ($rows)
    printf("Βρέθηκαν %d αποτελέσματα<br>", $rows);
else
    printf("Δε βρέθηκαν αποτελέσματα για τη λέξη-κλειδί \"%s\" <br>", $key);

for ($i = 0; $i<$rows; $i++){
    mysqli_stmt_fetch($stmt);
    printf("%d %s %s %s %s <br>", $id, $f_name, $l_name, $hire_date, $d_name);
}
mysqli_stmt_close($stmt);
mysqli_close($link);
?>  

In the end I wanna have something like this

results

It's Greek but I think you can handle it ;) Thank you for your replies :)

share|improve this question
    
consider a templating language. – Daniel A. White Jul 16 '14 at 12:14
    
What is the problem?? – Shaunak Shukla Jul 16 '14 at 12:17
    
The only reason I see to do it in JavaScript is because you get the data result via Ajax, but I don't see any Ajax call in your code, so just use PHP and HTML. – Darko Romanov Jul 16 '14 at 12:17
    
So, what is the problem ? What have you done so far, which part gives you trouble ? – d.raev Jul 16 '14 at 12:18
    
You have to do an Ajax call or Post method to accomplish this – Silver Bullet Jul 16 '14 at 12:19

You can append a string using +=

var str;

str += '<tr>';
str += '<td>Text</td>';
str += '<tr>';
share|improve this answer

-Do not use <center>, it is deprecated

Here is more information about deprecated attributes http://www.w3.org/TR/html4/index/attributes.html

-You have to use AJAX. Here is some information about AJAX jQuery http://api.jquery.com/jquery.ajax/ and http://jquery.com/

You can try this:

$(function(){

   $("form").submit(function(){


       $.ajax({
           url: "", //put the name of the php file
           type: "post",
           data: { keyword: $(".keyword").val() },
           success: function(response){
              //add the output from the php file to the div in the html file using 
              //append() or html()
            }

       });

   });

}
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.