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I've user profile update page and have some forms to update, here they are

NAME
SURNAME
password
phone

And I am trying to make this update without big script, I mean I don't want to define if for example NAME exists or not and so on. I want that if any marked form value exists it changed in mysql. How I know this is possible with mysqli_prepare statement. I've written sql like this

$stmt = "UPDATE table SET NAME=?,SURNAME=?,PASSWORD=?,PHONE=? WHERE email='" . $email . "'";

but something wrong, any ideas how to do it ? And also please advice why it is better way to use mysqli_prepare , why it is safe too ? PS. I do not write php script because I've not any problem with it

UPDATE

I've marked sql statement and above this script in php I am writting this =>

if (isset($_POST['name']){
    $name = $_POST['name'];
} else {
    $name = null;
}

and so on ...

but it doesn't execute , nothing error msg is shown up , because I think something wrong with sql statement

Just want if some of detail is filled it updated and if all fields are filled all updated, how to write with script?

I can not understand this question marks in sql statement , does it means that if for example NAME is not exists it is ignored ?

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What have you tried but did not work? What is the error message that you received? Please elaborate more –  Ahmad Jul 21 '12 at 9:34
    
mysqli_prepare helps to prevent [sql injection][1]. One more thing please share what error you are getting? [1]: en.wikipedia.org/wiki/SQL_injection –  Rohit Kumar Choudhary Jul 21 '12 at 9:35
    
I've updated question , please see it :) –  crypticous Jul 21 '12 at 9:41

1 Answer 1

up vote 1 down vote accepted

The question marks in your SQL string not part of the SQL syntax, they are placeholders for the actual parameters. If you want to do it like this, you should first make a SQL statement, and then set the parameters.

Something like

$con = new mysqli($hostname,$username,$password,$database);
$statement = $con->prepare( "UPDATE table SET NAME=?,SURNAME=?,".
                            "`PASSWORD`=?,PHONE=? ".
                            " WHERE email=?");
$statement->bind_param("sssss",$name,$surname,$pass,$phone,$email);

example derived of http://www.xphp.info/security/getting-started-with-mysqli/

Also note the comment of ThiefMaster: password is a reserved word in MySQL so you will need to put it in backticks (``)

Alternatively you directly insert the values into the mysql string, like you initially did with the email address. You need to escape the values in that case, by using mysql_real_escape_string()

Note that you are in both cases replacing ALL values with what was set, be it NULL or a string, or whatever.

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2  
I think PASSWORD must be enclosed in backticks, it's a reserved keyword. –  ThiefMaster Jul 21 '12 at 10:40
    
Ah, of course. Another problem with the original SQL then. –  Thom Wiggers Jul 21 '12 at 10:42
    
why backticks is needed please explain ? what it does ?, thanks :) –  crypticous Jul 21 '12 at 10:51
1  
PASSWORD is a word that has a special meaning in MySQL. That means that it influences what happens in the query, instead of just being a word. If you put it in backticks, you are explicitly telling MySQL: this is a word naming a column, try not to attach any other special meaning to it. –  Thom Wiggers Jul 21 '12 at 10:54

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