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Editorial Team
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Asked: 2026-06-06T18:49:20+00:00

Possible Duplicate: mysql_fetch_array() expects parameter 1 to be resource, boolean given in select This

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Possible Duplicate:
mysql_fetch_array() expects parameter 1 to be resource, boolean given in select

This currently works…

$resultInput = mysql_query("SHOW COLUMNS FROM " . $table. " WHERE Field NOT IN ('id', 'created', 'date_modified', 'content', 'type', 'bodytext', 'project_content', 'content_short') AND Field NOT LIKE '%_image%'");

However I would like to remove all the fields with the name content and add it to the LIKE function with something like %content%

$resultInput = mysql_query("SHOW COLUMNS FROM " . $table. " WHERE Field NOT IN ('id', 'created', 'date_modified', 'type', 'bodytext') AND Field NOT LIKE ('%_image%', %content%)");

But this doesn`t seem to work? and returns a”

Warning: mysql_num_rows() expects parameter 1 to be resource, boolean given in
C:\xampp\htdocs\framework.php on line 33

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1 Answer

  1. Editorial Team

    What you are attempting is actually a syntax error. LIKE conditions must be individually listed and separated by AND or OR. In your case however, you can do it with REGEXP by separating the conditions with |:

    SHOW COLUMNS 
FROM " . $table. " 
WHERE Field NOT IN ('id', 'created', 'date_modified', 'type', 'bodytext') 
AND Field NOT REGEXP '_image|content'

    Because the regular expression will match the patterns content or _image anywhere inside Field, there is no need for any additional equivalent characters to the % wildcards used in LIKE.

    We assume that $table has been compared against a list of valid table names to use in this query for security purposes.

    Finally, you received the fatal error mysql_num_rows() expects parameter 1 to be resource because you performed no error checking on the query result. 

    $result_input = mysql_query("SHOW COLUMNS.....");
if (!$result_input) {
  // Something's wrong
  echo mysql_error();
}
else {
  // ok, everything is working, proceed.
}
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