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I have this piece of code in PHP and using a PostgreSQL as the database. I am getting all the parameters from the GET. Have checked them by printing it. The formed query executes on a Postgres terminal but fails from the PHP script.

Here is the piece of code.


$link = pg_connect("host=localhost dbname=postgres user=postgres password=password") or die('connection failed');

# Building the query
$newq=sprintf("update purchase_info set ....... comments=%s where id=%s",......,$comm,$id);

    print $newq; // This query runs on the postgres terminal
    $query=addslashes($newq); // to escape "" as one of my fields is comments

    if (!$result) {
        echo "An error occured.\n";

Other queries run in the same script. This SQL statement has about 14 field being updated.

What Is going wrong hear. Appreciate the help!

share|improve this question
Nothing fails "for no reason". – Brad Apr 19 '12 at 21:19

2 Answers 2

up vote 5 down vote accepted

You shouldn't be using addslashes to quote strings for PostgreSQL, you should use pg_escape_literal:

pg_escape_literal() escapes a literal for querying the PostgreSQL database. It returns an escaped literal in the PostgreSQL format. pg_escape_literal() adds quotes before and after data. Use of this function is recommended instead of pg_escape_string().

You should never use addslashes for quoting strings for a database:

It's highly recommended to use DBMS specific escape function (e.g. mysqli_real_escape_string() for MySQL or pg_escape_string() for PostgreSQL)

You should be doing this:

$newq = sprintf("update purchase_info set ... comments=%s where id=%d", ..., pg_escape_literal($comm), $id);

I'm assuming that id is actually a number as well.

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-I got it. A big thank you! – Hitesh Dharamdasani Apr 19 '12 at 21:25
@HiteshDharmadasani: I'd also recommend that you look into prepared statements, placeholders, and PDO so that you don't have to muck about with quoting things yourself. – mu is too short Apr 19 '12 at 21:32
pg_escape_literal() is not yet available in any released version of php (5.4.0 being the latest currently). That's going to be a problem for most people! – Daniel Vérité Apr 19 '12 at 22:59
@DanielVérité: Thanks, PHP isn't my usual environment. – mu is too short Apr 19 '12 at 23:04
@HiteshDharmadasani: Feel free to switch the accept to Daniel Vérité's if your PHP doesn't have pg_escape_literal. – mu is too short Apr 19 '12 at 23:05

Assuming you really want to inject parameters into the SQL query, the correct code would be:

$newq=sprintf("update purchase_info set ... comments='%s' where id='%s'",
   pg_escape_string($comm), pg_escape_string($id));
// DO NOT USE to addslashes, it is not correct
$result=pg_query($link, $newq);

Notice the single quotes surrounding the %s in the format string. Also if id is an integer, it's better do use %d (no quotes) instead of '%s'

share|improve this answer
All the security apart. will building my sql query like this $newq="update purchase_info set ... comments='".$comm."' where id='".$id."'"; work too? – Hitesh Dharamdasani Apr 19 '12 at 21:21
You almost certainly shouldn't be quoting the id, PostgreSQL wants numbers to be numbers. – mu is too short Apr 19 '12 at 21:22
Actually, PostgreSQL treats a literals in single quotes as being of type "unknown" until it is forced to resolve it. In the absence of other information it will resolve to text, but you can generally use single-quoted literals in assignments of any type. This is done so that custom data types, like global coordinates, can be treated as first-class objects with values assigned from literals without needing to explicitly cast the literals. – kgrittn Apr 19 '12 at 22:25
@kgrittn: Fair enough. I'd still call "quoting everything in sight" a bad cargo-cult habit from doing too much MySQL. – mu is too short Apr 19 '12 at 23:07
@kgrittn: While it certainly works to use a single-quoted literal for numbers it is generally not a good idea. If you have overloaded functions, like f(int) and f(text), PostgreSQL will assume the type text and pick the second function if you call f('1'), while it will pick the first (and fitting) one if you don't: f(1). – Erwin Brandstetter Apr 19 '12 at 23:59

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