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i wanted the code to insert the same value to different rows that are checked in the list(the list is queried from the database.) but it says
"Notice: Array to string conversion in \enrol.php on line 5",

here is my section.php

    <table border=1px>
    <th>SELECT</th>
    <th>ID NUMBER</th>
    <th>NAME</th>
    <th>COURSE</th>
    <th>YEAR</th>

    <?php session_start();
    include('connect.php');
    $group=$_REQUEST['idEdit'];
    echo $group;

    $sql="SELECT * FROM login WHERE section IS NULL or section = 0";
    $result=mysql_query($sql) or die(mysql_error() );


        while($arr=mysql_fetch_array($result))
        {
            echo '<tr><td><form action="enrol.php" method="post"><input type="checkbox" name="idnumber[]" value="'.$arr['idnumber'].'"></td>'.
                 '<td>'.$arr['idnumber'].",&nbsp</td>".
                 '<td>'.$arr['lastname'].",".$arr['firstname']."&nbsp</td>".
                 '<td>'.$arr['course']."&nbsp</td>".
                 '<td>'.$arr['year']."&nbsp</td></tr>";}

         $idnumber=$arr['idnumber'];
         ?> 

        <input type="hidden" value="<?php $group ?>" name="group">
        <input type="submit" value="Enrol Student" name="submit">
        </form>
    </table>

and here is my enrol.php

    <?php 
    if(isset($_REQUEST['submit'])){

    $ids = join (', ', $_POST['idnumber']);
    $sql="INSERT INTO login (section) values ('$_POST[group]') WHERE idnumber='$ids'";
    mysql_query($sql);

    $count=mysql_affected_rows();

    if($count==1){
                  echo '<script type="text/javascript">alert("Added Sucessfully")</script>';

    }else{
                echo '<script type="text/javascript">alert("Error!")</script>';

                }
     }
    ?>

how can i solve this problem? i have been trying to search for a solution but i cant seem to find any. please help.

share|improve this question
    
Try implode function instead of join. –  Balaji Kandasamy Apr 3 '13 at 10:50
    
you can not insert to one table using where clause...use update. –  Amir Apr 3 '13 at 11:04

5 Answers 5

up vote 0 down vote accepted

use implode instand of join

$ids = implode(', ', $_POST['idnumber']);
share|improve this answer
    
thanks @thumber nirimal, i tried your suggestion and it did not produce any error but still wasn't able to insert into the database –  roseanne Apr 3 '13 at 10:52
    
first ry to print query like this $sql="INSERT INTO login (section) values ('$_POST[group]') WHERE idnumber='$ids'"; echo $sql; .....and check there is any problem in query –  thumber nirmal Apr 3 '13 at 10:54
    
it printed out INSERT INTO login (section) values ('AnaPhy101') WHERE idnumber='50715, 17583' –  roseanne Apr 3 '13 at 11:00
    
basically, i want the same value to be inserted into those different idnumbers how can i do that? –  roseanne Apr 3 '13 at 11:04
    
try this query...... $sql="update login set section='".$_POST[group]."' WHERE idnumber IN ($ids)"; –  thumber nirmal Apr 3 '13 at 11:08

Use implode

 <?php 
        if(isset($_REQUEST['submit'])){

        $ids = implode(', ', $_POST['idnumber']);
        $sql="INSERT INTO login (section) values ('$_POST[group]') WHERE idnumber='$ids'";
        mysql_query($sql);

        $count=mysql_affected_rows();

        if($count==1){
                      echo '<script type="text/javascript">alert("Added Sucessfully")</script>';

        }else{
                    echo '<script type="text/javascript">alert("Error!")</script>';

                    }
         }
        ?>
share|improve this answer
    
thanks for the answer but it still didn't insert into the database –  roseanne Apr 3 '13 at 11:05

There is some quote issue when you are fetching post values. Try it.

$sql="INSERT INTO login (section) values ('".$_POST["group"]."') WHERE idnumber='".$ids."'";
share|improve this answer
    
i tried but still wasn't able to insert into the database –  roseanne Apr 3 '13 at 11:01
    
You were asking for line 5 error that was the solution for that. You need to debug it by your self. –  Neo Apr 3 '13 at 11:05
    
but the title of the question is "how to insert one value to different rows". i tried debugging it but i can't, that's why i posted a question –  roseanne Apr 3 '13 at 11:08
    
@roseanne,What is wrong with inserting record. Please post the error what you are getting from msyql or use. $query = mysql_query($sql) or die(mysql_error()); –  Neo Apr 3 '13 at 11:16
    
i placed $sql="update login set section='".$_POST['group']."' WHERE idnumber IN ($ids)"; echo $sql; $query = mysql_query($sql) or die(mysql_error()); it did not printed out any errors it only printed out update login set section='AnaPhy101' WHERE idnumber IN (50715) –  roseanne Apr 3 '13 at 11:27

I think,You are getting the value of the hidden field group null. First of all You echo group value in the hidden Field.

<input type="hidden" value="<?php echo $group; ?>" name="group">

I hope your problem will be Solved. You got my point?

share|improve this answer
    
even if i placed the echo, it still wasn't inserted into the database –  roseanne Apr 3 '13 at 10:58
    
you get the value of this hidden field? or not? print value of group and idnumber in that page. then say me.I think you didnot get the idnumber value.Plz check it. –  chintan Apr 3 '13 at 11:09
    
it did get the value it, because when i printed the sql in the enrol.php i got this INSERT INTO login (section) values ('AnaPhy101') WHERE idnumber='50715, 17583'. –  roseanne Apr 3 '13 at 11:11

i got the answer thanks to @thumber nirmal and all those who responded with this question. here is the working code for enrol.php

    <?php include('connect.php');
    if(isset($_REQUEST['submit'])){

    $ids = implode(', ', $_POST['idnumber']);
    $sql="update login set section='".$_POST['group']."' WHERE idnumber IN ($ids)"; 
    echo $sql; 
    $query = mysql_query($sql) or die(mysql_error());
    mysql_query($sql);

    $count=mysql_affected_rows();

    if($count==1){
                  echo '<script type="text/javascript">alert("Added Sucessfully")</script>';

    }else{
                echo '<script type="text/javascript">alert("Error!")</script>';

                }
     }
    ?>
share|improve this answer

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