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In my PHP file, I have an echo statement, that outputs some HTML, within which i want to do some assignment based on onclick event.

echo "<td style='padding:10px; text-align:left;'> <a target='_blank' href='stat.php'  onclick='".  $_SESSION['dakno'] = $r[$j]; ."' >".$r[$j]."</a></td>";

I have tried a lot of combinations, but still getting syntax error because of the onclick section.

echo "<td style='padding:10px; text-align:left;'> <a target='_blank' href='stat.php'  onclick='"<?php  $_SESSION['dakno'] = $r[$j]; ?> "' >".$r[$j]."</a></td>";

EDITS:

I am an output field in a table to be a hyperlink. On clicking the link, the value of the clicked item is passed to another PHP file using a SESSION variable.

$sno = 1;
while($r = mysqli_fetch_array($rs)){

                            echo "<tr>";
                            echo "<td style='padding:10px; text-align:left;'>".$sno."</td>"; $sno++;
                            for( $j=1; $j<6; $j++){
                                if($j == 1){
                                echo "<td style='padding:10px; text-align:left;'> <a target='_blank' href='stat.php'  onclick='".  $_SESSION['dakno'] = $r[$j]; ."' >".$r[$j]."</a></td>";


                                continue;
                                }
                                else
                                echo "<td style='padding:10px; text-align:left;'>".$r[$j]."</td>";

                            }
                            echo "</tr>";

                }   

Please, help me to remove the syntax error I am making.

share|improve this question
    
tried using esacpe characters as well.. \" But nothing seems to work :/ –  Akash Gupta Aug 24 '13 at 8:06
    
Why are you using semi-colons before concatenation operator? –  Muhammad Talha Akbar Aug 24 '13 at 8:06
2  
What's the point of this? You want this assignment in PHP to happen when the link is clicked? Then you're on a completely wrong path here. –  deceze Aug 24 '13 at 8:06
    
onclick is use to call function. you can't assign something there –  suresh.g Aug 24 '13 at 8:07
2  
@AkashGupta Then how do you expect to execute server-side code in a client-side event? –  Daedalus Aug 24 '13 at 8:18
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2 Answers

As specified in the question, I needed to pass the value to another PHP file when someone clicked the link. I did not want to use AJAX here as because I do not expect to update any content dynamically. After two hours of brainstorming, I solved my problem with an extremely basic solution.

$sno = 1;
while($r = mysqli_fetch_array($rs)){
echo "";
                            echo "<tr>";
                            echo "<td style='padding:10px; text-align:left;'>".$sno."</td>"; $sno++;
                            for( $j=1; $j<6; $j++){
                                if($j == 1){

                                echo "<td style='padding:10px; text-align:left;'><form action='stat.php' method='POST'> <input type='hidden' name='dakno' value='".$r[$j]."' > </input> <button class='dakbutton' type='submit'>".$r[$j]."</button></form></td>";


                                continue;
                                }
                                else
                                echo "<td style='padding:10px; text-align:left;'>".$r[$j]."</td>";

                            }
                            echo "</tr>";
                            echo "</form>";
                }   
share|improve this answer
add comment
echo "<td style='padding:10px; text-align:left;'> <a target='_blank' href='stat.php'  onclick='" .
$_SESSION['dakno'] = $r[$j] .
    "' >" .
    $r[$j].
    "</a></td>";

remove ; in $_SESSION['dakno'] = $r[$j];

share|improve this answer
1  
That's still pointless. –  deceze Aug 24 '13 at 8:20
    
on removing the ';', it simply runs likes normal PHP and doesn't execute on click event. Basically it executes every time without knowing if the event occurred or not. –  Akash Gupta Aug 24 '13 at 8:23
    
I just want to solve the syntax error problem. I suggest to use AJAX to pass value to other php file –  Larry.Z Aug 24 '13 at 8:29
1  
@Larry.Z Didn't downvote, but you should point it out in the comments. That's not what the answer field is for. It's for answering the question, fixing any errors present is an aside. –  Daedalus Aug 24 '13 at 8:31
    
@Daedalus, Thanks, I will think about it next time :) –  Larry.Z Aug 24 '13 at 8:35
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