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i try to learn how to export data to csv using this script, yes i can export all data but in csv i found one error(when run in localhost) :

<b>Notice</b>:  Undefined variable: csv_output in <b>C:\xampp\htdocs\import_export\index.php</b> on line <b>10</b><br />

not sure why, but i can run this code in live server without any issue.

Full code

error_reporting(E_ALL);

mysql_connect("localhost", "root", "") or die(mysql_error());
mysql_select_db("csv") or die(mysql_error());

$file  = "product_export"; // csv name.

//CSV Header
$csv_output .= "ID " . ", ";
$csv_output .= "Content " . ", ";

$csv_output .= "\n";

//CSV Content rows
$query = mysql_query("SELECT * FROM `users`");
while ($row = mysql_fetch_array($query)) {
    $csv_output .= $row["id"] . ", ";
    $csv_output .= $row["content"] . ", ";

    $csv_output .= "\n";
}

$filename = $file . "_" . date("d-m-Y_H-i");

header("Content-type: application/vnd.ms-excel");
header("Content-disposition: csv" . date("Y-m-d") . ".csv");
header("Content-disposition: filename=" . $filename . ".csv");

print $csv_output;

exit;

p/s : im using mysql_* for testing only.

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closed as too localized by tereško, Ocramius, j0k, Jocelyn, cryptic ツ Apr 13 '13 at 9:28

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You're appending to a non-existent variable in line 10 $csv_output .= "ID " . ", "; so PHP is kindly telling you that it doesn't exist –  Mark Baker Apr 12 '13 at 13:40

3 Answers 3

up vote 2 down vote accepted

PHP is just letting you know that you are using a variable that hasn't been defined yet. It's a notice, not a warning or error.

This line is prompting the notice:

$csv_output .= "ID " . ", "; 

It's the first use of this variable, you don't need concatenation at this point. Easy fix would be to change it to:

$csv_output = "ID " . ", ";

If you don't want PHP spitting out notices, you could change the first line of your script to:

error_reporting(E_ALL ^ E_NOTICE);
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after i replace .= with = now no output in my csv file.. can you explain why this happen ? –  rusly Apr 12 '13 at 13:48
    
Make sure you only replace that on the FIRST occurrence. The rest of your code should continue to use $csv_output .= "..." –  jszobody Apr 12 '13 at 13:49
    
oh thanks, now it;s working .. –  rusly Apr 12 '13 at 13:49

In the first line:

//CSV Header
$csv_output .= "ID " . ", ";

You're trying to Concatenate the id to the variable, but the variable was never defined.

The first time you use a variable don't use the dot in front of the 'equals sign' so try this:

In the first line:

//CSV Header
$csv_output = "ID " . ", ";
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Appending variables with .= required your to declare the variable in its proper form first, like: $variable = $value then you can append it, otherwise it will give you always undeclared variable error.

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