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I try the tutorial on net to build chat room.

First I create a database in MYSQL called chatroom and buld a datasheet called chat with three columns:chtime, nick, words.

Then I write four PHP files, login.php, main.php, display.php, speak.php but encounting problem about display and speak. My speak doesn't work and I just pop up a new window without any words.

I don't know where is the problem?

I have tried to fix it several days but in vain. Where is my error?

The following is my code:

Login.php http://codepad.org/WIfr3quz

Main.php http://codepad.org/b9pXuNl0

Display.php http://codepad.org/o7pf5G57

Speak.php http://codepad.org/wFDEMrNk

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1  
Parse error: syntax error, unexpected T_STRING on line 25 on Display.php according to the debug –  bretterer Jun 26 '12 at 19:30
    
But my speak.php does'nt work, and I don't know when the Display.php's error after checking the line. –  Liang-Yu Pan Jun 26 '12 at 19:32
    
Display your errors and tell us what it says. We cant help you debug on your local host without error reporting turned on. –  bretterer Jun 26 '12 at 19:34
    
The speak.php just pop up a new window without any word after I press the speak button, and I find that it doesn't do "INSERT ...." to the database and I don't know why it doesn't do that. –  Liang-Yu Pan Jun 26 '12 at 19:36
1  
See my answer below. You will never get into the if block because $words is not defined. Either do it like I suggest or define $words before the if block –  bretterer Jun 26 '12 at 19:43

2 Answers 2

up vote 1 down vote accepted

MAKE SURE YOU READ UP ON SQL INJECTION

Where is $words defined?

    if ($words){
    $link = mysqli_connect('localhost', 'xxx', 'xxx', 'ChatRoom');
        $time = date('Y-m-d-a:i:s');
        $str = "INSERT INTO chat(chtime,nick,words) values('$time','$nick','$words')" ;
        mysqli_query($str,$link);
        mysqli_close($link);
}

You should so something to define these. Not sure what else to tell you without seeing what kind of errors show up.. This is where i would start though.. make the block look something like

if(isset($_POST['words']))
    $link = mysqli_connect('localhost', 'xxx', 'xxx', 'ChatRoom');
        $time = date('Y-m-d-a:i:s');
            $nick = 'NickName';//However you would get the nick for the user
            $words = $link->real_escape_string($_POST['words']);
        $str = "INSERT INTO chat(chtime,nick,words) values('$time','$nick','$words')" ;
        mysqli_query($str,$link);
        mysqli_close($link);
}
?>
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I have tried $_POST['words'] before,but after that the column to be input will disappear. –  Liang-Yu Pan Jun 26 '12 at 19:45
    
Huh? I dont get what you mean by the column to be input will disappear? –  bretterer Jun 26 '12 at 19:46
    
After :postimage.org/image/lsgv1xnr1 –  Liang-Yu Pan Jun 26 '12 at 19:49
    
Before:postimage.org/image/x9x7te3r1 –  Liang-Yu Pan Jun 26 '12 at 19:49
    
My comment in the $nick var needs to be removed and put in some string there. Or fill in $nick with who is logged in to the chat, see updated code –  bretterer Jun 26 '12 at 19:52

Change the code in speak.php to:

<html> 
<head> 
<title>Speak</title> 
</head> 
<body> 
<?php 
    if ($words){
    $link = mysqli_connect('localhost', 'xxx', 'xxx', 'ChatRoom');
        $time = date('Y-m-d-a:i:s');
        $nick = $link->real_escape_string($_POST['nick']);
        $words = $link->real_escape_string($_POST['words']);
        $str = "INSERT INTO chat(chtime,nick,words) values('$time','$nick','$words')" ;
        mysqli_query($str,$link);
        mysqli_close($link);
}
?>
<form action = "Speak.php" method = "post" target = " _self"> 
<input type = "text" name = "nick"> 
<input type = "text" name = "words">
<input type = "submit" value = "Speak"> 
</form> 
</body> 
</html>

Using real_escape_string prevents SQL code injection.
The values sent by a POST form are stored in $_POST.

share|improve this answer
    
Will never get into this block because if($words) will always be false. It would need to be $_POST['words'] –  bretterer Jun 26 '12 at 19:41

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