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i have multiple drop list box that contain data from the database so i want to select the second drop list based on the section of the first one
the first table have these three fields district_id(primary key),district_name, governorate_id(foreign key) second table has these three fields village_id(primary key), village_name, district_id(foreign key)

so i want the user to select the district box first then based on the select district name that have an id i want that the second box display all the village name that have a village.district_id = district.district_id. can anyone help me?? i was selecting each table independent from the other one but i need it to be based on the first one

chunk of the code

function districtQuery(){

$distData = mysql_query("SELECT * FROM districts");

  while($recorddist = mysql_fetch_array($distData)){

     echo'<option value="' . $recorddist['district_name'] .  '">' . $recorddist['district_name'] . '</option>';

  }


}
// function for select by village
function villageQuery(){

//$villageData = mysql_query("SELECT * FROM village");

  $villageData = mysql_query("SELECT village_name FROM village WHERE district_id = ('SELECT district_id FROM districts')") or die (mysql_error());

  while($recordvillage = mysql_fetch_array($villageData)){

     echo'<option value="' . $recordvillage['village_name'] .  '">' . $recordvillage['village_name'] . '</option>';

  }


}

ps i do not know how to use ajax and jquery

share|improve this question
    
Don't use the mysql_query specific syntax, It's deprecated. Use mysqli or PDO instead. –  Jonast92 Mar 28 '13 at 14:53
    
Please, don't use mysql_* functions in new code. They are no longer maintained and are officially deprecated. See the red box? Learn about prepared statements instead, and use PDO or MySQLi - this article will help you decide which. –  Kermit Mar 28 '13 at 14:53

1 Answer 1

There are a couple problems in your WHERE clause:

WHERE district_id = ('SELECT district_id FROM districts')

First, remove the single quote from the inner select:

WHERE district_id = (SELECT district_id FROM districts)

Next, note that this will fail if the subquery (SELECT district_id FROM districts) returns more than one row. I suspect you want something like this:

WHERE district_id IN (SELECT district_id from districts)

Finally, your query just gets a list of every village that has a defined district_id. The recommended way to do that is with an INNER JOIN:

SELECT village_name
FROM village
INNER JOIN districts ON village.district_id = districts.district_id

Addendum: full query based on feedback.

I can't help with the PHP/Ajax, but I know that it'll deliver the district ID for you if everything is hooked up properly. When you get it, just use this basic query:

SELECT village_name FROM village WHERE district_id = <your district id value>

Good, luck, and sorry I can't help with the Ajax part.

share|improve this answer
    
this query did not work for me but that is exactly what i want your query is the selected one but ps SELECT district_id FROM districts return a list of districts name –  user2214618 Mar 28 '13 at 15:15
    
Sorry, I'm not sure what you mean by "ps SELECT district_id FROM districts". Could you describe a little more what results you want to get? I'm sure I or any of the other folks here could help. –  Ed Gibbs Mar 28 '13 at 15:18
    
ok i have a district table that have 3 fields district name and district id (is the primary key/ foreign key in the village table) village table have village name and village id.... so i want to make the user select first the district list then in the village list i want to display only the villages that have the same district id in the district table. –  user2214618 Mar 28 '13 at 15:36
    
Got it. I've posted an update to my answer but unfortunately it only addresses the query. I don't know PHP/Ajax so I'm afraid I can't help there. –  Ed Gibbs Mar 28 '13 at 15:58

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