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suppose the user input

mysite.com/profile?identity=1
mysite.com/profile?identity=dinodsja
mysite.com/profile?identity=1a

getting the value

$identity = $_GET['identity']; // identity can be user_id or user_name

and i have a simple select query:

SELECT * FROM lb_users WHERE (user_id = 'dinodsja' OR user_name = 'dinodsja') AND user_status = 1

and it works fine. but the problem is:

SELECT * FROM lb_users WHERE (user_id = '1a' OR user_name = '1a') AND user_status = 1

when I execute this query it also returns the result without satisfying the condition.

Table structure:

user_id     bigint(25)
user_name   varchar(50)     utf8_general_ci

enter image description here

**

-> Is this a MySQL Bug ? 
-> How can we avoid this ? 
-> What will be the query ?

**

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what is BIGING ? –  Satya Mar 30 '13 at 6:32
    
can you post table structure –  Suresh Kamrushi Mar 30 '13 at 6:34
    
@Satya it's BIGINT –  Jeremy Mar 30 '13 at 6:35
    
show both o/p s ? –  Bhavin Rana Mar 30 '13 at 6:35
    
You are comparing apples (numbers) to oranges (strings). –  a_horse_with_no_name Mar 30 '13 at 8:16
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6 Answers

up vote 22 down vote accepted
+50

I do remember having a similar problem long ago.

First some background: This is not a bug. It is actually a feature. Ok, it's one that might lead to such unexpected behaviour, but MySQL is thereby very tolerant w.r.t. user inputs, respective select queries:

mysql> SELECT 'a' = 'a ';
        -> 1
mysql> SELECT 'A' = 'a';
        -> 1

Therefore, with implicit type conversion, the result of, e.g, '1a' in INTEGER is 1, but also:

mysql> SELECT 0 = 'x6';
        -> 1
mysql> SELECT 1 = ' 1';
        -> 1
mysql> SELECT 1 = ' 1a';
        -> 1

This feature is also implemented in other not statically typed languages. PHP, for instance, calls this type juggling. See the PHP String conversion rules and this example from the documentation:

<?php
  $foo = "0";                     // $foo is string (ASCII 48)
  $foo += 2;                      // $foo is now an integer (2)
  $foo = $foo + 1.3;              // $foo is now a float (3.3)
  $foo = 5 + "10 Little Piggies"; // $foo is integer (15)
  $foo = 5 + "10 Small Pigs";     // $foo is integer (15)
?>

See JavaScript:

<script>
  document.write(parseInt("40 years") + "<br>");
</script>

=> 40

Nevertheless, the solution to your problem is pretty easy: Just cast the integer to a char and do the comparison then:

mysql> SELECT * FROM lb_users WHERE (CAST(user_id AS CHAR) = '1' OR user_name = '1')
        -> 1
mysql> SELECT * FROM lb_users WHERE (CAST(user_id AS CHAR) = '1a' OR user_name = '1a')
        -> 0
mysql> SELECT * FROM lb_users WHERE (CAST(user_id AS CHAR) = 'dinodsja' OR user_name = 'dinodsja')
        -> 1

I made a fiddle for everyone to try it out: http://sqlfiddle.com/#!2/c2835/14/0

Hope that helps,

-Hannes

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3  
I disagree. This is a bug, not a feature. –  a_horse_with_no_name Apr 4 '13 at 19:44
1  
And I disagree. This is a feature implemented in various languages. For instance in PHP this is called type juggling. For syntax highlighting I will edit my answer and add a code example. I do think it is very good that these languages are consistent among each other, as they are often used in the same context. –  Hannes M Apr 5 '13 at 5:55
6  
That might be true for PHP (or other weakly typed languages), but SQL is a strongly typed language (like Java) and this behaviour is not only completely unexpected it also violates the SQL standard which clearly states that an exception has to be thrown in such a case –  a_horse_with_no_name Apr 5 '13 at 7:12
1  
@a_horse_with_no_name MySQL developers have a habit of calling bugs features. I had reported a bug in the partition pruning logic. What i got as a reply was some explanation about the implementation which makes that happen instead of accepting it as a bug. To put it simply my argument was like - the answer should be 2+2=4 and their response was like: the code does 2-2 so 0 is correct. No explanation about why do - instead of + when that is what is expected out of such a query. See: bugs.mysql.com/bug.php?id=28928 –  Dojo Apr 6 '13 at 9:34
1  
Yeah, I guess you're right. As I am not a MySQL dev, I will not defend this. I just thought it's documented, so they don't consider it as a bug, therefore I - the user - has to cope with it. I think if you could cite the corresponding passage from the standard, this would be a perfect end to the discussion :-) But I do like the idea of documenting flaws as features. "Our software is brilliant! It has thousands of features and comes with an encyclopedia as documentation". "Dude, it's a calculator..." –  Hannes M Apr 7 '13 at 3:17
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The reason for that is because the data type of the column user_ID is integer.

MySQL silently drops any trailing NON-Number (and anything that follows within) in the value and that is why 1a is equal to 1 since a will be remove in the value.

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3  
ok. thank u. then hw can we avoid this . wat will be the query ? –  Dino Mar 30 '13 at 6:37
    
@DBK you can handle the checking value in the PHP. –  John Woo Mar 30 '13 at 6:39
    
its a user input for profile. user can provide user_id or user_name. so the input is valid. but no data. –  Dino Mar 30 '13 at 6:42
2  
I realized this (int column dropping non-number value) almost 1 year after I got into PHP. It's such a small thing but it did trouble me a lot when I came across a similar situation –  asprin Mar 30 '13 at 6:43
5  
I consider this a bug in MySQL. Every other DBMS correctly rejects a comparison between numbers and strings that are not numbers. And no other DBMS tries to be smart and removes parts of the comparison value to avoid an error message (at the risk of returning incorrect results) –  a_horse_with_no_name Mar 30 '13 at 8:22
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According to your previous message

its a user input for profile. user can provide user_id or user_name. so the input is valid. but no data. – DBK Mar 30 at 6:42

I'd recommend testing to see if its an integer and only search the user ID if it's an integer. It's really more of a workaround for mySQL not handling a STRING to INT comparison, but it should work.

declare @InputVar varchar(10)
set @InputVar = '1a'

SELECT *  
FROM lb_users
WHERE  
  (case when isnumeric(@InputVar) = 1 then 
    case when (user_id = @InputVar OR user_name = @InputVar) then 1 else 0 end
  else  
    case when user_name = @InputVar then 1 else 0 end
  end =1 )
And 
  user_status = 1
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When dealing with strings I would use 'LIKE' instead of '=' to avoid this silent type conversion madness. LIKE is made to work with strings so why not use it.

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SELECT * FROM lb_users WHERE (user_id = '1a' OR user_name = '1a') AND user_status = 1

you get 1 result if you change '1a' to 1a you get this:

#1064 - 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 '1a LIMIT 0, 30' at line 1

This is not a bug, take a look at http://dev.mysql.com/doc/refman/5.0/en/where-optimizations.html

hope this helps

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I think you cannot duplicate a primary key and an ID, I test that one and i come up with a running data..did you set the user_id with its attributes like:

user_id bigint(50) auto_increment primary key

this is not a mysql error.

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