PHPNEWTOIT Posted January 25, 2010 Share Posted January 25, 2010 Hi This query was written by a query coder who does not know php but is excellent with queries but I cant seem to get it to run. I just get a blank page. <?php $hostname = "localhost"; $database = "sextoys"; $username = "sextoys"; $password = "sextoys"; mysql_connect($hostname, $username, $password) or die(mysql_error()); mysql_select_db($database) or die(mysql_error()); $query="SELECT t1.title AS lev1, t1.sectionID AS id1, t2.title as lev2, t2.sectionID AS id2, t3.title as lev3, t3.sectionID AS id3, t4.title as lev4, t4.sectionID AS id4 FROM jss_sections AS t1 LEFT JOIN jss_sections AS t2 ON t2.parent = t1.sectionID LEFT JOIN jss_sections AS t3 ON t3.parent = t2.sectionID LEFT JOIN jss_sections AS t4 ON t4.parent = t3.sectionID where t1.title='Main Section'"; $result=mysql_query($query); if (!$result) { echo 'Could not run query: ' . mysql_error(); exit; } while ($row = mysql_fetch_assoc($result)) { if ( $row['id1'] != $id1 ) { echo $row['lev1'] . "<br/>\n"; $id2 = -1; $id3 = -1; $id4 = -1; $id1 = $row['id1']; } if ( isset($row['id2'] && $row['id2'] != $id2 ) { echo $row['lev1'] . " >> " . $row['lev2'] . "<br/>\n"; $id3 = -1; $id4 = -1; $id2 = $row['id2']; } if ( isset($row['id3'] && $row['id3'] != $id3 ) { echo $row['lev1'] . " >> " . $row['lev2'] . " >> " . $row['lev3'] . "<br/>\n"; $id4 = -1; $id3 = $row['id3']; } if ( isset($row['id4'] && $row['id4'] != $id4 ) { echo $row['lev1'] . " >> " . $row['lev2'] . " >> " . $row['lev3'] . " >> " . $row['lev4'] . "<br/>\n"; $id4 = $row['id4']; } } mysql_close(); mysql_free_result($result); ?> I have tested the query on its own and it seems to work ok as well as the php code upto the second if statement as as soon as i include that nothing shows anymore. Can anyone see what I have done wrong. Thanks in advance Roy Quote Link to comment https://forums.phpfreaks.com/topic/189734-error-in-code/ Share on other sites More sharing options...
jl5501 Posted January 25, 2010 Share Posted January 25, 2010 if ( isset($row['id2'] && $row['id2'] != $id2 ) is missing an ) try if ( isset($row['id2'] && $row['id2'] != $id2 )) Quote Link to comment https://forums.phpfreaks.com/topic/189734-error-in-code/#findComment-1001307 Share on other sites More sharing options...
taquitosensei Posted January 25, 2010 Share Posted January 25, 2010 Usually a blank page means you have a fatal error in your script and displaying errors is turned off. You can put this at the top of your script while developing to help out with debugging and it would have given you the same information jl5501 gave. Plus any other errors on the page. ini_set('display_errors',1); error_reporting(E_ALL); Quote Link to comment https://forums.phpfreaks.com/topic/189734-error-in-code/#findComment-1001319 Share on other sites More sharing options...
PHPNEWTOIT Posted January 25, 2010 Author Share Posted January 25, 2010 Hi I have tried everything tonight to try and fix this all I know at the moment is that the issue is in the 2nd part of the script the 2nd if statement. $query="SELECT t1.title AS lev1, t1.sectionID AS id1, t2.title as lev2, t2.sectionID AS id2, t3.title as lev3, t3.sectionID AS id3, t4.title as lev4, t4.sectionID AS id4 FROM jss_sections AS t1 LEFT JOIN jss_sections AS t2 ON t2.parent = t1.sectionID LEFT JOIN jss_sections AS t3 ON t3.parent = t2.sectionID LEFT JOIN jss_sections AS t4 ON t4.parent = t3.sectionID where t1.title='Main Section'"; $id1 = -1; $result = mysql_query($query) or die(mysql_error()); while($row = mysql_fetch_array($result)){ if ( $row['id1'] != $id1 ) { echo $row['lev1'] . "<br/>\n"; $id2 = -1; $id3 = -1; $id4 = -1; $id1 = $row['id1']; } if (isset($row['id2'] && $row['id2'] != $id2 )) { echo $row['lev1'] . " >> " . $row['lev2'] . "<br/>\n"; $id3 = -1; $id4 = -1; $id2 = $row['id2']; } } mysql_close(); ?> If I stop the code at the 2nd if I get one result through which is correct for that level. The 2nd part of the script should bring out a further 80+ result but I just get a blank screen. I have tried DEBUG and get no errors, I have PHP error reporting on and it shows nothing wrong but all I get is this blank page. Any help please. Roy Quote Link to comment https://forums.phpfreaks.com/topic/189734-error-in-code/#findComment-1001513 Share on other sites More sharing options...
taquitosensei Posted January 25, 2010 Share Posted January 25, 2010 if you put this ini_set('display_errors',1); error_reporting(E_ALL); at the top of your script it should've give you something along these lines PHP Parse error: syntax error, unexpected T_BOOLEAN_AND, expecting ',' or ')' in test.php on line 19 Parse error: syntax error, unexpected T_BOOLEAN_AND, expecting ',' or ')' in test.php on line 19 which is this line if (isset($row['id2'] && $row['id2'] != $id2 )) which should be if (isset($row['id2']) && $row['id2'] != $id2 ) Quote Link to comment https://forums.phpfreaks.com/topic/189734-error-in-code/#findComment-1001518 Share on other sites More sharing options...
PHPNEWTOIT Posted January 25, 2010 Author Share Posted January 25, 2010 Hi Thanks for the code as soon as I changed the part you gave me it went through. However I have that code at the top of the page as you said and used the original code and it came up with no errors again just a blank page. Can you check if its in the correct place and anything else I can check to ensure it works as it will save me ages. Thanks again for you help Roy <?php ini_set('display_errors',1); error_reporting(E_ALL); $hostname = "localhost"; $database = "sextoys"; $username = "sextoys"; $password = "sextoys"; mysql_connect($hostname, $username, $password) or die(mysql_error()); mysql_select_db($database) or die(mysql_error()); $query="SELECT t1.title AS lev1, t1.sectionID AS id1, t2.title as lev2, t2.sectionID AS id2, t3.title as lev3, t3.sectionID AS id3, t4.title as lev4, t4.sectionID AS id4 FROM jss_sections AS t1 LEFT JOIN jss_sections AS t2 ON t2.parent = t1.sectionID LEFT JOIN jss_sections AS t3 ON t3.parent = t2.sectionID LEFT JOIN jss_sections AS t4 ON t4.parent = t3.sectionID where t1.title='Main Section'"; $id1 = -1; $result = mysql_query($query) or die(mysql_error()); while($row = mysql_fetch_array($result)){ if ( $row['id1'] != $id1 ) { echo $row['lev1'] . "<br/>\n"; $id2 = -1; $id3 = -1; $id4 = -1; $id1 = $row['id1']; } if (isset($row['id2'] && $row['id2'] != $id2 )) { echo $row['lev1'] . " >> " . $row['lev2'] . "<br/>\n"; $id3 = -1; $id4 = -1; $id2 = $row['id2']; } } mysql_close(); ?> Quote Link to comment https://forums.phpfreaks.com/topic/189734-error-in-code/#findComment-1001523 Share on other sites More sharing options...
Recommended Posts
Join the conversation
You can post now and register later. If you have an account, sign in now to post with your account.