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php/sql newbie. Trying to change a LIKE name search into an exact search. Fails to find any records even when use search values that I know are in the table.

Original code:

 $sch = "SELECT record_key, surname, given_names, birth_date, death_date, age
               FROM records
               WHERE surname LIKE '".addslashes($name)."%';
    $result = mysql_query($sch);

New code:

 $sch = "SELECT record_key, surname, given_names, birth_date, death_date, age
               FROM records
               WHERE surname = '".addslashes($name)."%';
    $result = mysql_query($sch);

I have tried everything I can think of, including:

 WHERE surname = 'addslashes($name)';

(I wasn't sure of the reason for the " each end or the %)

The only way I can get it to work is if I scrap the addslashes and just use: WHERE surname = '$name';

which I understand is vulnerable to injection.

share|improve this question
    
You can't use =along with the % wildcard. –  X.L.Ant Sep 20 '13 at 7:33
    
Don't use the mysql_* functions. They are deprecated as of PHP 5.5. And seriously read up on SQL injection, it might save you a lot of headaches in the future. –  ppeterka Sep 20 '13 at 7:36
    
Headaches and hacking :) –  X.L.Ant Sep 20 '13 at 7:37
    
try mysql_real_escape_string($name), but you should really move to mysqli_real_escape_string –  Aaron Gong Sep 20 '13 at 7:39

4 Answers 4

up vote 0 down vote accepted

Try:

 $sch = "SELECT record_key, surname, given_names, birth_date, death_date, age
               FROM records
               WHERE surname = '".addslashes($name)."'";
    $result = mysql_query($sch);

without the %.

% is a wildcard in LIKE patterns, but is a regular character in = ones.

share|improve this answer
    
Thanks a lot guys. It now seems to be working fine. I am sure that I previously deleted everything unnecessary including the %, but obviously not. –  user2605793 Sep 20 '13 at 7:49

The trailing % that you have in your LIKE clause is present in your exact search. The % only has meaning when using LIKE, so it is looking for an exact match of whatever you're passing, but with a % on the end.

LIKE 'criteria%' will find anything that BEGINS with criteria

= 'criteria%' will match that literal exactly, including the %.

share|improve this answer

You can use % with LIKE Clause, just change your code like below...

$sch = "SELECT record_key, surname, given_names, birth_date, death_date, age
               FROM records
               WHERE surname = '".addslashes($name)."';
    $result = mysql_query($sch);
share|improve this answer

Try to properly end query string with double quotes:

$sch = "SELECT record_key, surname, given_names, birth_date, death_date, age
 FROM records
 WHERE surname LIKE '".addslashes($name)."%'";
share|improve this answer

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