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I'm stuck on something small, hope you can help me..

I need all phone numbers (thats a column in table 'leerlingen') in one here, with comma's separated, so I can insert that here in another script and it shows all phone numbers, like this:

0612345637,061231823,061231723  

Code:

$result = mysql_query("SELECT * FROM leerlingen
WHERE klas_id='$aan_klas'");

while($row = mysql_fetch_array($result))
  {

    $variabele = $row['leerling_nummer'] . ",";

  echo "$variabele";
  }

But, when I echo $variabele OUTSIDE the while loop, it only gives me ONE phone number. When I echo $variabele INSIDE the while loop, it shows me all the phone numbers, on the right way.. Any ideas?

Edit

my code isn't working at all I see, so here's what I want: It should get all phone numbers seperated with a comma, put in a variabele or array.

Edit

Thanks guys, it's workign! But... only when al mysql_ things ARE mysql_. When I change them to mysqli_, nothing happens...

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Don't use mysql_* statement, they're obsolete. Prefer using mysqli_* or PDO. –  Yellow Bird Dec 24 '12 at 10:34
    
mysql_* is been deprecate din further versions of php need to use pdo objects or mysqli_* for that –  rOcKiNg RhO Dec 24 '12 at 10:34
    
Everytime, $variabele will have the latest phone number only. Because, it gets overwritten. Simple take an array and then implode with comma. –  Bhavik Shah Dec 24 '12 at 10:39
    
You should check out GROUP_CONCAT in mySQL which might be very useful to solve your problem. Check out this demo how to do this: giombetti.com/2013/06/06/mysql-group_concat –  Marc Giombetti Jun 7 '13 at 10:05
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4 Answers

up vote 0 down vote accepted

The reason why you are seeing all phone numbers when you echo "$variabele"; inside the while loop, is because on each iteration (every time the while loop is re-entered, so to speak) you are echoing the last value of $variabele. And so, it looks as though everything was echo'd all at once, when in fact it is echo'd one at a time.

You can easily demonstrate this by altering the code to:

while($row = mysql_fetch_array($result))
{
    $variabele = $row['leerling_nummer'] . ",";
    echo "$variabele" . " | ";
}

Now, you will see the result is not (as I think you expected):

0612345637,061231823,061231723, |

... but:

0612345637, | 061231823, | 061231723, |

If what you believed was happening, was really happening, then the result would actually be this:

0612345637, | 0612345637, 061231823, | 0612345637, 061231823, 061231723, |

If you want to collect all phone numbers in one variable, you'd indeed be best off by using an array, as Mark Baker already proposed, or you would have to append each new phone number to the $variabele string, like so:

// initiate $variabele as an empty string
$variabele = "";
while($row = mysql_fetch_array($result))
{
    // append the new phone number to $variabele (note .= in stead of =)
    $variabele .= $row['leerling_nummer'] . ",";
}
echo $variabele;

The only problem with this, is that you'd have to remove the last comma then. There are a variety of ways to do this, or circumvent this, but Mark Baker's solution is much simpler actually.

Lastly, I want to make you aware of a nifty MySQL function that allows you to easily concatenate values of a column; this is the function GROUP_CONCAT(). This, however, is probably not useful in your current case, since you are fetching other columns as well. But for future reference, if you only need one column want to concatenate them with a comma, you could do:

SELECT GROUP_CONCAT( leerling_nummer ) AS leerling_nummers
FROM leerlingen
WHERE klas_id='$aan_klas'
GROUP BY klas_id

After querying the database and then doing $row = mysql_fetch_array($result); all numbers would then be in $row['leerling_nummers'], seperated by a comma, because GROUP_CONCAT() uses a comma as a default separator. In other words: you wouldn't need to loop over rows with PHP anymore; MySQL has already collected everything in one row for you.

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This is what arrays are designed for

$variabele = array();
while($row = mysql_fetch_array($result))
  {
    if($row['leerling_nummer'] != '')
        $variabele[] = $row['leerling_nummer'];
  }
  echo implode(', ', $variabele);
share|improve this answer
    
Thanks for your answer, but when I echo this it says 'array'.. –  Jellevdschoot Dec 24 '12 at 10:41
    
When you echo what it says array? are you simply echoing $variabele without the implode? –  Mark Baker Dec 24 '12 at 10:41
    
@Jellevdschoot implode will return a string. Store that string in some variable and then echo it. Something like $str = implode(',', $variabele); and then echo $str –  Bhavik Shah Dec 24 '12 at 10:43
    
No, I'm echo'ing echo implode(', ', $variabele); –  Jellevdschoot Dec 24 '12 at 10:44
    
@BhavikShah thanks for your reply, but when I echo $str it isn't showing anything.. –  Jellevdschoot Dec 24 '12 at 10:46
show 2 more comments

Use concatenation:

$result = mysql_query("SELECT * FROM leerlingen WHERE klas_id='$aan_klas'");

$variabele="";
while($row = mysql_fetch_array($result))
  {

    $variabele .= $row['leerling_nummer'] . ",";
  }
echo "VAR: $variabele";

Aside from that, please consider using msqli_ or PDO since mysql_ functions are deprecated!

share|improve this answer
    
You don't need double quotes in the last line. –  Sithu Dec 24 '12 at 11:07
    
yup it's true, normally you'll want to add something beside the variable and I forgot to remove them! –  Naryl Dec 24 '12 at 11:10
    
Be aware that this solution will have a trailing comma. Also, mysql_ functions are not yet deprecated, but will be as of PHP version 5.5.0 (which is still in alpha stage). It's still very wise to use either PDO or MySQLi indeed. –  fireeyedboy Dec 24 '12 at 11:18
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According to the comments, it seems not working with mysqli. Here is a mysqli solution:

<?php
$result = mysqli_query($link, "SELECT * FROM leerlingen WHERE klas_id='$aan_klas'");    
$variabele = "";
while($row = mysqli_fetch_array($result))
{
    if($row['leerling_nummer']){
        $variabele .= $row['leerling_nummer'] . ",";
    }
}
echo rtrim($variabele, ',');
?>

The mysqli_query() expects the first parameter to be a link resource which returns from mysqli_connect().

<?php
    $mysqlserver   = "localhost";
    $mysqlusername = "root";
    $mysqlpassword = "";
    $link = mysqli_connect(localhost, $mysqlusername, $mysqlpassword) or die ("Error connecting to mysql server: ".mysqli_error());
?>
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