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In my mind, the following script should work:

$stmt = $db->prepare("UPDATE table SET status = ?, date_modified = ?");
$stmt->execute(array(1, 'NOW()'));

but when passing NOW() into the prepared statement, nothing happens. Replacing NOW() with an actual date (i.e. 2010-11-23) works just fine.

I am unable to find explanation online. Any ideas?

EDIT

Just to further clarify and rid of any confusion in the question, I want to actually pass a variable into the prepared statement HOWEVER, the variable will be set to one of five possible date/time functions for mysql.

e.g.

$var = 'NOW()';

$var = 'LAST_DAY(DATE_ADD(CURDATE(), INTERVAL 1 MONTH))';

$var = 'LAST_DAY(CURDATE())';

... and so on...

prepared statement turns into:

$stmt->execute(array(1, $var));

I know this will return the same NULL results, but I am worried if I simply change the sql statement to:

UPDATE table SET status = ?, date_modified = $var

I am opening myself to injection?

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2  
Prepared statements are used for separation of commands and data. And you cannot undo that separation and get data interpreted as SQL statements. –  mario Nov 23 '10 at 18:31

3 Answers 3

up vote 9 down vote accepted

You do not need to pass NOW() as a parameter as there is no need to do any processing on it, given it is a built in SQL Function, so just include it in the actual query like below.

$stmt = $db->prepare("UPDATE table SET status = ?, date_modified = NOW()");

Alternatively, you can just set the date_modified to a TIMESTAMP field and it will automatically update the date_modified field on a SQL Update.

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@Brad - thanks, i already have another timestamp field in the database and the actual call is much more than a NOW() but I'll modify accordingly –  JM4 Nov 23 '10 at 20:43
    
to clarify - i am passing a value $variable because the function can change entirely so im still thinking there "could" be a case for injection? –  JM4 Nov 23 '10 at 20:43
    
Then why did you post that code? You should post the actual code being used, if you are passing it a variable, then show the actual variable you are using (or at least examples of it as NOW() will never work like you have it), how you are using NOW() in the scenario you posted does not make any sense. –  Brad F Jacobs Nov 23 '10 at 21:05
    
@Brad F Jacobs - the logic is EXACTLY THE SAME regardless of what function I post when they all relate to time. One function would use NOW(), two other datetime fields would not. the varible is set to equal NOW() or another function so, yes, my code and question still stand as valid. –  JM4 Nov 23 '10 at 22:48
    
@JM4 In the updated version, where does $var come from exactly? Is it hardcoded or does it come from an unknown source (POST / COOKIE / GET) ? If it is hardcoded, you are not vulnerable to SQL Injection. If it comes form an unknown source, well your only other option would be to use some type of validation method to validate it or remove any characters that are not necessary, IE: '":\/ etc, that you would not expect to see for that query, via regex or similar. –  Brad F Jacobs Nov 23 '10 at 23:12

Prepared statements interpret everything you insert into them as a literal string. This is to prevent any type of unpredictable SQL injection.

What is actually happening is that NOW() is attempting to be inserted into the database just as it reads (literally, NOW()) instead of getting the actual date to insert. It is then probably showing blank in your database because you have a date column, which doesn't interpret NOW() as a date and therefore doesn't accept it.

If possible, you should try to execute the SQL without using any substitution methods as there is nothing dangerous to this approach.

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thanks, see my comment below brad's below. The variable I am 'actually' passing can change and MAY be susceptible to injection still? –  JM4 Nov 23 '10 at 20:44
    
If all of your $var values are set within you PHP script and not any external sources, then you don't have to worry about any kind of injection. –  Dave Kiss Nov 24 '10 at 2:28

My guess is that PDO is assuming 'NOW()' is a string and enclosing it in quotes when populating the query parameters. I would just pass the current date using the PHP function date('Y-m-d'), which will give you the same results.

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Actually, Brad's answer is better, now that I'm reading it. –  Brian H Nov 23 '10 at 18:12

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