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I have a table that contains members names and a field with multiple ID numbers. I want to create a query that returns results where any values in the ID fields overlap with any values in the array.

For example: lastname: Smith firstname: John id: 101, 103

I have Array #1 with the values 101, 102, 103

I want the query to output all members who have the values 101 or 102 or 103 listed in their id field with multiple ids listed.

Array (  [0] => 101
         [1] => 102 
         [2] => 103 )

$sql="SELECT firstname, lastname, id
      FROM members WHERE id LIKE '%".$array_num_1."%'";

while ($rows=mysql_fetch_array($result)) {
       echo $rows['lastname'].', '.$rows['firstname'].'-'.$rows['id'];

I tried to simplify it. The IDs are actually stored in another table, and I have generated the array from this table.

$array_num_1 = array();
$sql_id="SELECT id FROM id_table WHERE id < 200";
      $array_num_1[] = $rows_id['id'];
share|improve this question
Storing a list of values and then trying to write a query against it is a terrible way of modeling a relationship. My advice is to use your database as a database. Create a child table for the relationship and then it's trivial to query. –  cletus Mar 21 '10 at 16:01
The IDs actually are stored in a separate table. See edit above. –  Michael Mar 21 '10 at 16:16
So, you must get rid of these id's in the members table –  Your Common Sense Mar 21 '10 at 16:21
Please post exact structure of both tables. –  Your Common Sense Mar 21 '10 at 16:43
Members Table: lastname, firstname, id ID table: id, id_name For example, a user makes a selection that they want to display all members and the id names who have IDs less than 200 associated with their name. –  Michael Mar 21 '10 at 16:48

4 Answers 4

up vote 2 down vote accepted

Normalize your database. Make these ids into separate table.

Edit: And then use answers below

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The IDs actually are stored in a separate table. See edit above. –  Michael Mar 21 '10 at 16:14

If you must do it this way:

$sql = "SELECT firstname, lastname, id FROM members WHER id IN (" . implode(', ', $array) . ")"

As @cletus says in his comment, though, the database is made for this sort of thing. Hard coding it in an array seems like the suboptimal way of doing things.

share|improve this answer
I have tried using the IN function, the problem with this is that there are multiple numbers listed in the ID field. So WHERE id equals "101, 103" does not work with IN (101, 102, 103) –  Michael Mar 21 '10 at 16:07
Time to fix your database structure, then. –  ceejayoz Mar 21 '10 at 16:11
The IDs actually are stored in a separate table. See edit above. –  Michael Mar 21 '10 at 16:15

You're probably looking for IN:

SELECT firstname, lastname, id FROM members WHERE id IN (1, 2, 3);

Of course, you could create (1, 2, 3) dynamically, e.g. using implode.

Whoops, I just realized that I got your db schema wrong. As others have advised, you should normalize it.

share|improve this answer
What does 'normalize' it mean? I am semi-new to this. –  Michael Mar 21 '10 at 16:08
@middus (OT) now where did I see that picture of yours lately? ;) –  Gordon Mar 21 '10 at 17:45
@Gordon It's always interesting to see what people here are up to. :) –  middus Mar 21 '10 at 18:23
SELECT firstname, lastname, 
FROM members m, id_table i ON 
WHERE < 200 
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