3

I have a code :

$id=implode(",",$selected);

$query = "SELECT u.id, p.brand, n.number FROM `user` u 
LEFT OUTER JOIN `phone` p ON u.id = p.id LEFT OUTER JOIN `number` n 
ON p.id = n.id WHERE u.id in ($id)";

Where $selected is an array array(1,2,3). But when i run it, it appears this notice :

Unknown column '1' in 'where clause'

How to handle this problem? Thank you

  • 5
    echo $query; What is it? – u_mulder May 12 '16 at 19:27
  • 2
    It's giving you u.id in (1,2,3). In SQL usually numbers are understood as column numbers, for values you need '1','2','3' and then Hemant's answer makes sense there. And then there's the security flaw McAdam commented about: you are not using parameterized queries. – SparK May 12 '16 at 19:47
1

Here you can do it like :

$id = implode("','",$selected);

This query will run :

$query = "SELECT u.id, p.brand, n.number FROM `user` u LEFT OUTER JOIN `phone` p ON u.id = p.id LEFT OUTER JOIN `number` n 
ON p.id = n.id WHERE u.id in ('$id')";
  • I understand that you're trying to demonstrate how the IN clause should be used, but this doesn't help the OP who is trying to do it using a parameterized query. – AdamMc331 May 12 '16 at 19:37
  • @McAdam331 It actually does help him, his problem is not using quotes around the values, so 1 (the first array value) is interpreted as a column name and not a value. With that said, he should probably consider using prepared statements or at a minimum sanitizing the input values. – Juan May 12 '16 at 19:50
  • @Juan That makes sense now that you've explained it to me, but the answer may not have been intuitive to a newbie (since it wasn't intuitive to me), so it could be edited to explain that. – AdamMc331 May 12 '16 at 19:52
  • I have fixed the query for the question. – Hemant Sharma May 12 '16 at 19:54
  • Hello, i tried your suggestion but it still give an error, so i add '' in ('$selected') part, thank you ;) – Kirari Akito May 13 '16 at 0:14

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