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I am trying to implement a search where the user can search for candidates above or below 18 years.

The html for the age component in the search:

  Age<select id ='eighteen' name="eighteen" size="1" >
  <option value="Below Eighteen">Below Eighteen</option>
  <option value="Above Eighteen">Above Eighteen</option>
  <option value="Any">Any</option>
   </select> 

The php code:

$age = trim($_POST['eighteen']);    

$query2 = mysql_query("SELECT * FROM p_candidate WHERE YEAR(CURDATE())-YEAR(`age`) >= 18");
$query = mysql_query("SELECT * FROM p_candidate WHERE YEAR(CURDATE())-YEAR(`age`) < 18");
if ($age =="Below Eighteen") {$dob = $query;}
if ($age == "Above Eighteen") {$dob = $query2;}



$Odata = mysql_query("SELECT * FROM p_candidate WHERE(`gender` LIKE '%".$Gender."%') AND (`age` LIKE '%".$dob."%')") or die(mysql_error());

When I run this code without filling the gender field in the search form, I do not get any results. How can I get this to work? Which part do I need to modify?

My db is in mysql and the DOB of candidates are stored in a column called age

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2 if statements ??? How can a person's age be below 18 or above 18 same time? try else if :) –  Hardik Thaker Jul 3 '13 at 18:29
1  
What if they're exactly 18? –  andrewsi Jul 3 '13 at 18:33
    
I have changed query2 to $query2 = mysql_query("SELECT * FROM p_candidate WHERE YEAR(CURDATE())-YEAR(age) >= 18"); –  user2510479 Jul 3 '13 at 18:38
    
@HardikThaker - tried elseif but that did not work –  user2510479 Jul 3 '13 at 18:39
    
$data = mysql_query("SELECT * FROM p_candidate WHERE (gender LIKE '%".$Gender."%') AND (age LIKE '%".$dob."%')") or die(mysql_error()); –  Hardik Thaker Jul 3 '13 at 18:42

3 Answers 3

To see if they're at least 18 years old, you can subtract 18 years from the current date and compare their birth date (which appears to be the age column) to that.

18 or older:

SELECT * FROM p_candidate WHERE age <= CURDATE() - INTERVAL 18 YEAR

Under 18:

SELECT * FROM p_candidate WHERE age > CURDATE() - INTERVAL 18 YEAR

I'd also avoid using LIKE when you don't have to. If you're checking for gender F or for gender M then just say WHERE gender = 'F' or WHERE gender = 'M'. You gain nothing by over-using LIKE, and you risk slowing down otherwise optimizable queries.

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thanks @EdGibbs but I still am not able to get the code to return values. –  user2510479 Jul 3 '13 at 18:57
1  
It may be your PHP code. In your example you're setting $dob to $query or $query2, but when you actually do the query (last line of your code) you're running a completely different query. If you set $dob to one of my queries (plus logic for the gender) and then run the $dob query it should work fine. Also note that you shouldn't be using the mysql_* family of functions because they can lead to SQL Injection - there have been many posts from coders whose sites have been hacked because they used the mysql_* approach, and it's a career-limiting thing to have your site hacked. –  Ed Gibbs Jul 3 '13 at 19:05
    
thanks @EdGibbs - I make it work finally :) I have posted the code snippets in the answers. Thank you so much for your input !!! –  user2510479 Jul 3 '13 at 20:08
1  
You're welcome, but note that your logic subtracting the years isn't quite right. Say a candidate has a birth date of 9/27/1995. Your logic will have them as 18 years old as of today, but they won't actually be 18 for another three months. If that's close enough then no problem. If not then try my solution, which works to the day. –  Ed Gibbs Jul 3 '13 at 20:36

Force the a default value for your select so the field will be always filled with something. Like this:

 Age<select id ='eighteen' name="eighteen" size="1" >
  <option value="Below Eighteen">Below Eighteen</option>
  <option value="Above Eighteen">Above Eighteen</option>
  <option value="Any" selected>Any</option>
  </select> 
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1  
that is a very valuable suggestion @GuiGreg –  user2510479 Jul 3 '13 at 19:34
up vote 0 down vote accepted

Here is what I finally used - it works now

if ($age == "Above Eighteen") {
$Odata = mysql_query("SELECT * FROM p_candidate WHERE(`gender` LIKE '%".$Gender."%') AND     (YEAR(CURDATE())-YEAR(`age`) >= 18)") or die(mysql_error());}

if ($age == "Below Eighteen") {
$Odata2 = mysql_query("SELECT * FROM p_candidate WHERE(`gender` LIKE '%".$Gender."%') AND     (YEAR(CURDATE())-YEAR(`age`) < 18)") or die(mysql_error());}
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