I have in database two information that matches with the names and the address. Instead of returning 2, this code is returning 21. Please see below; (Table)-employees id name address

$select = mysql_query("
SELECT * 
  FROM employees 
 WHERE name LIKE '%John%' 
    OR name LIKE '%Johanson%' 
   AND address='Streetford End'
   ");
$count = mysql_num_rows($select);
echo $count
  • Well, did you look at the data returned? – Oliver Charlesworth Aug 11 '16 at 12:01
  • 3
    You have a typo. You need parentheses – Drew Aug 11 '16 at 12:02
  • I think it should be address LIKE 'Streetford End' – Milan Gupta Aug 11 '16 at 12:02
  • 1
    @MilanGupta LIKE without % is same as address = "Streetford End" – Justinas Aug 11 '16 at 12:03
  • 1
    Is your code working in MySQL and not working as expected in PHP or are you just assuming it should work in reality the same way you think it should work? – apokryfos Aug 11 '16 at 12:13
up vote 0 down vote accepted

This might be helpful:

SELECT * FROM employees WHERE (name LIKE '%John%' OR name LIKE '%Johanson%')
  AND address='Streetford End'
  • @BeetleJuice, May i know what's the amendments you made in my answer ? – Kartik Shah Aug 11 '16 at 12:32
  • Also @K.Wayne, please let me know if my answer is helpful to you ? – Kartik Shah Aug 11 '16 at 12:33
  • Its correct, now its working.Thanks man. – K.Wayne Aug 11 '16 at 12:40
  • Cool man.. Welcome @K.Wayne – Kartik Shah Aug 11 '16 at 12:41
  • @KartikShah I put your code inside a code block. I didn't change any content :-) – BeetleJuice Aug 11 '16 at 14:16

Your Answer

 

By clicking "Post Your Answer", you acknowledge that you have read our updated terms of service, privacy policy and cookie policy, and that your continued use of the website is subject to these policies.

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