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$sSql = "INSERT INTO comments
     ( post_id,name, email, website,content)
     VALUES (".$_POST[postid]",'".$_POST[name]"', '".$_POST[email]"', '"$_POST[website]"',  '"$_POST[content]"')";

I am getting the following error. Can anyone help to fix this? Parse error: syntax error, unexpected T_CONSTANT_ENCAPSED_STRING in your code

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closed as too localized by uınbɐɥs, cryptic ツ, Jean, thaJeztah, Dominik Honnef Apr 27 '13 at 22:26

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warning your code is extremely vulnerable to sql injection attacks. consider using a prepared statement, which would solve your problems. –  Daniel A. White Jul 9 '12 at 0:00
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6 Answers 6

Your strings aren't concatenated properly, you are missing some . before and after some $_POST[]

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You need to wrap with two periods. .$_POST[postid].

Also, make sure you escapting your $_POST parameters as it may be subject to SQL injection.

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$_POST should be used as an associative array. So the keys should in quotes : $_POST['key']

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It's because you forgot some dots - unexpected strings are starting in your query.

$sSql = "INSERT INTO comments
     ( post_id,name, email, website,content)
     VALUES (".$_POST['postid'].",'".$_POST['name']."', '".$_POST['email']."', '".$_POST['website']."',  '".$_POST['content']."')";

Please escape userinputs before putting it into database. And take care of the arraykeys: it works without setting them into '' because php takes them as constants, can't find a defined constant of this name, and assumes that this has to be a string. Unnecessary.

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Error was in string concatenation missing . and array missing qoutes

$sSql = "INSERT INTO comments
 ( post_id,name, email, website,content)
 VALUES (".$_POST['postid'].",'".$_POST['name']."', '".$_POST['email']."', '".$_POST['website']."',  '".$_POST['content']."')";

Use mysql_escape_string to avoid sql injection and best way to avoid sql injection.

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Please use this. You forget quotes and dotes.

$sSql = "INSERT INTO comments ( post_id,name, email, website,content) VALUES (".$_POST['postid'].",'".$_POST['name']."', '".$_POST['email']."', '".$_POST['website']."',  '".$_POST['content']."')";
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