Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have made a website in which the users can select a value from a dropdown menu and get some information from a database. I used ajax to send the request to the database (so the page doesn't get refreshed when I send the request). Here is the part of the jquery function:

      $.ajax({
      type:'POST',
      url:'activities_code.php',
      data: {datastr:datastr, datastr1:datastr1},
      success:function(response){

        $("#msg").html(response);                           
            }});}); // there are other functions before..

The results appear on the main container of the webpage. They are composed of a title and some text. I echo the title in such a way so it is a link. I also give to each element an id and a class so I can call it later. Here is the corresponding code:

    echo "<table id=\"container\">";
$num_results = 0;
while ($row=mysqli_fetch_array($result, MYSQLI_ASSOC)) {
     // Here the columns of title and information are printed
     echo "<tr><td>";
     echo "<a href='test.php' name=\"fd\" id=\"t".$t."\" target=\"_new\"  class='pickanchor' onClick=\"test()\">".$row['title']."</a>";
     echo "<br>";
     echo $row['PK'];
     echo "</td></tr>";

     echo "<tr><td>";
     echo $row['Information'];
     echo "</td></tr>"; 
 }

What I am trying to do now is: When I click on the title (which is a link), a new page to open in which a php script runs a query and show more information: Here is what I have:

     <?php
     include('connect.php');


    $query = "SELECT title,Information from activities where title='?????'";

$result = mysqli_query($dbcon, $query) or die('no available data');
echo "<table>";
$num_results = 0;
while ($row=mysqli_fetch_array($result, MYSQLI_ASSOC)) {
     // Here the columns of title and information are printed
     echo "<tr><td>";
     echo "<a href='test.php' id=\"t\".$t target=\"_new\">".$row['title']."    </a>";
     echo "</td></tr>";

     echo "<tr><td>";

     echo $row['Information'];

     echo "</td></tr>";
    // Here I sum up the number of the results
     $num_results=$num_results+1;        
 }
     ?>

I am trying to find a way to put in my query, in the where clause, the name of the title that I selected:

     $query = "SELECT title,Information from activities where title='?????'";

Any help would be much appreciated. Let me know if everything is clear or I didn't explain some point clearly. Thanks. D.

share|improve this question
    
Do an onclick function with $.post(url?title=$('.title').val()) –  JonathanRomer Oct 11 '12 at 18:49

1 Answer 1

up vote 1 down vote accepted

You can get the title using $_GET global variable and URL parameter. Try changing this line:

echo "<a href='test.php' name=\"fd\" id=\"t".$t."\" target=\"_new\"  class='pickanchor' onClick=\"test()\">".$row['title']."</a>";

to

echo "<a href='test.php?title={$row['title']}' name=\"fd\" id=\"t".$t."\" target=\"_new\"  class='pickanchor' onClick=\"test()\">".$row['title']."</a>";

then you can get the title with these code:

$title = $_GET['title'];

make sure you sanitize the value first. I hope this will help you.

link:

PHP $_GET

share|improve this answer
    
Thanks a lot! It works perfectly! I am new in php and I am not sure what you mean with sanitizing. Can you give me a hint? Thanks again. –  dkar Oct 12 '12 at 12:55

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.