3

I'm trying to build a prepared statement with wildcards however I'm running into an issue where the percentage wildcard characters seem to be returning what seem to be hashes for the wildcards and I'm not sure why. The code in question is:

$condition = $wpdb->prefix."posts.post_title LIKE %%%s%%";
$query['conditions'][] = $wpdb->prepare($condition, $name);

And the results are:

posts.post_title LIKE {d690dd63f5944b9bca120e110c22802f0ec841d8120d813dd4abc08cba4a59c0}BT{d690dd63f5944b9bca120e110c22802f0ec841d8120d813dd4abc08cba4a59c0}

Just wondered if anyone had any ideas on what could be causing this. Any help would be greatly appreciated.

Thanks

1

Don't worry about the hashes, they'll get replaced with % in $wpdb when you execute your query.

These hashes were introduced with WP v4.8.3 as a fix for SQL injection attack.

They're placeholders for the % character. It prevents someone from using something other than %s, %d, and %f. If there's a % other than those approved uses, it'll replace the % with a hash. That hash will get replaced back to % when $wpdb executes the query.

If you want to remove the hashes yourself, you can use remove_placeholder_escape(), like so:

$query['conditions'][] = $wpdb->remove_placeholder_escape($wpdb->prepare($condition, $name));

-1

The wildcard for LIKE must be within whatever variable is being denoted by %s. Otherwise it's getting the token for the parameter mixed up with the SQL wildcard. Even if that wasn't an issue, you need to do it like that anyway because otherwise the % won't be escaped within the string and you'll end up with a SQL syntax error.

In other words you need to add the wildcards to the $name value itself. This should do the job, I think:

$condition = $wpdb->prefix."posts.post_title LIKE %s";
$name = '%'.$name.'%';
$query['conditions'][] = $wpdb->prepare($condition, $name);
  • Thanks for the reply ADyson. I've just tried that but it seems to essentially yield the same result. The code is: $name_wildcard = '%'.$name.'%'; $condition = $wpdb->prefix.'posts.post_title LIKE %s'; $query['conditions'][] = $wpdb->prepare($condition, $name_wildcard); – R14523 Dec 18 '18 at 13:06
  • "essentially" the same result, or "exactly" the same result? What does the query end up looking like? Do you get an error? Please clarify precisely what's happening. – ADyson Dec 18 '18 at 13:47
  • Sorry, I meant exactly the same result. There are no errors. The wildcard builds the following: LIKE '{39943f34f8b739fabb71814709efc39a51b8b8de667200b457b05a95eeca0ae2}Durham{39943f34f8b739fabb71814709efc39a51b8b8de667200b457b05a95eeca0ae2}') – R14523 Dec 18 '18 at 14:44
  • Hm. I don't suppose there's any chance that $name already contains the % marks before it arrives in this bit of the code? – ADyson Dec 18 '18 at 14:56
  • P.S. Based on itsupportguides.com/knowledge-base/wordpress/… can you also try $name = '%'.$wpdb->esc_like($name).'%'; and see if that helps? – ADyson Dec 18 '18 at 15:02

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.