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I created a form using html which contains a text box and a password box.

I want when I click on the submit button to save the user and the date he entred to the page in a text file, then in the action page the txt file will be displayed and if there is a carriage return it will do the same in the action page.

this is the code I tried in the action page:


$mdpx = "BTS12";
$loginx = "BTS";

$login = $_POST['nom'];
$mdp = $_POST['psw'];
if(!empty($login) AND !empty($mdp))
    if($mdp  == $mdpx AND $login == $loginx)
        $fichier = "monfichier.txt";
        $fp = fopen($fichier, "a+");
        $text .= 'Nom: '.$login."\r\n".'La date: '.date("d M Y : H i s",strtotime("now"))."\r\n".'****************************'."\r\n";
        fputs($fp, $text);

        $fp = fopen($fichier,"r");
            $char = fgetc($fp);
            echo ($char == '\r\n') ? '<br/>' : $char;
        print 'Le nom d\'utilisateur ou bien le mot de passe est incorrect <br/> Cliquer <a href="index.php">ici</a> pour revounir a la page d\'acceuil';
    print 'Veuillez remplir tous les champs <br/> Cliquer <a href="index.php">ici</a> pour revounir a la page d\'acceuil';

but the problem is that the action page doesn't do the carriage return.

I tried also the method readfile() but it didn't worked !

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2 Answers 2

up vote 0 down vote accepted

Output the file in a <pre> element:

echo '<pre>';
echo '</pre>';
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It worked thanks, but why it giving me this message: Notice: Undefined variable: text in C:\Program Files\EasyPHP-12.1\www\ex\traitement.php on line 24 – Aimad MAJDOU Dec 6 '12 at 12:01
Because you wrote $text .= "Nom: ...";. .= means to append to the existing string, but you never initialized it before that. Change it to $text = "Nom: ...";. – Barmar Dec 6 '12 at 12:04
Okey thanks, I used another method and it worked too. while(!feof($fp)) { $char = fgets($fp); echo $char; echo '<br/>'; } – Aimad MAJDOU Dec 6 '12 at 12:43
Don't call it $char if it's actually a whole line, that will confuse readers of your code (like me). – Barmar Dec 6 '12 at 12:48

Try use

$char == '\r\n'

it will be work

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It didn't worked – Aimad MAJDOU Dec 6 '12 at 12:41

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