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$sql="SELECT * FROM 'image_upload' where uid='$uid' ";

I have written this query and it is showing me error :-

You have an error in your SQL syntax; check the manual that corresponds to your MySQL server version for the right syntax to use near ''image_upload' where uid=''' at line 1

Can you please rectify it..

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8 Answers

up vote 9 down vote accepted

This will work:

$sql = "SELECT * FROM `image_upload` where uid='$uid' ";
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yes, my uid is not char or varchar, it is bigint and when i put the query as suggested by you, it shows me uid 0 in my database –  user799100 Jun 16 '11 at 7:24
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are you sure that $uid store the number you want??? or may be the previous insertions into uid column have size less than the length of your number. –  Manish Das Jun 16 '11 at 7:54
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Use backticks for table names:

SELECT * FROM `image_upload` ...
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$sql="SELECT * FROM image_upload where uid='$uid' ";

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Can you remove the single quotes, and try again?

SELECT * FROM image_upload where uid='$uid'
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try this:

$sql="SELECT * FROM image_upload where uid='".$uid."'";
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Remove single quotes in image_upload Before Query echo $uid; then u ll know the answer

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downvoters tell the reason? –  K6t Jun 16 '11 at 8:05
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You should be using backticks (`) rather than single quotes ('). In fact, you shouldn't be using either in this case since it's not required:

$sql = "SELECT * FROM image_upload where uid='$uid'";

The backticks are only required if your table name has funny characters in it that would otherwise annoy the SQL parser (like a space for example).

And make sure that your uid column is a textual one (like char or varchar) - otherwise you should not be surrounding $uid with the single quotes.

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$sql="SELECT * FROM `image_upload` where uid='$uid' ";

You've been rectified ;)

You need to protect against SQL injections. Please see this thread.

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