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i want to recober all the users with "blo" in their full name, for example: "Pablo"

I pass the "blo" parameter with user PHP parameter:

$q=mysql_query("select * From user Where fullName Like '%'".$_REQUEST['user']."'%'",$link );

something is wrong in the php SQL sentence, because when i try the sentence with the argument "blo" on my SQL database, i see that the SQL sentence is correct, because it returns me correct result, this is the sentence with the argument "blo" on it: select * From user Where fullName Like "%blo%"

i'm sure that the PHP is receiven the "blo" parameter correctly, then, it have to be a sintax error of the SQL sentence on the PHP.... but i can't find it

EDIT : OK!! the last sentence is solved, but now i have this new sentence with the same problem, it have a error but i dont know where

$query = sprintf("SELECT u.* 
                    FROM USER u
                   WHERE u.fullName LIKE '%%%s%%' AND email NOT IN (select pp.fk_email2 from permission pp where pp.fk_email1='".mysql_escape($_REQUEST['mymail'])."') AND email NOT LIKE  '".mysql_escape($_REQUEST['mymail'])."' ",
                  mysql_real_escape_string($_REQUEST['user']));
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5 Answers 5

up vote 6 down vote accepted

SQL requires single quotes to indicate a string for comparison, and the wildcard character (%) must be included inside of those single quotes. Double quotes are used for column and table aliasing only, if at all.

$query = sprintf("SELECT u.* 
                    FROM USER u
                   WHERE u.fullName LIKE '%%%s%%'",
                  mysql_real_escape_string($_REQUEST['user']));

$q = mysql_query($query, $link);

Secondly, you're leaving yourself open to a SQL injection attack by not sanitizing the user request variable. Always use mysql_real_escape_string when dealing with strings being submitted to a MySQL database.

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You'll also need to escape the % because of sprintf, so %%%s%% –  Brian Dec 12 '10 at 20:29
    
@Brian: Corrected, thx. I wasn't sure, don't have PHP handy to test. –  OMG Ponies Dec 12 '10 at 20:30
    
Double quotes can normally be used to specify strings. They are interpreted as table names only is ANSI mode is enabled. –  NikiC Dec 12 '10 at 20:33
    
something is wrong in the code, it doesn't works... –  AndroidUser99 Dec 12 '10 at 20:45
1  
@AndroidUser99: "it doesn't work" doesn't tell us anything useful - do you get an error? If so, what is it? Fact is, what I posted is valid code so the problem would lie with you altering it somehow... –  OMG Ponies Dec 12 '10 at 20:48

You have the quotes messed up. use this:

$q=mysql_query('SELECT * 
                FROM user
                WHERE fullName LIKE "%' . $_REQUEST['user'] . '%"',$link );

BTW, this is bad practice. You are using un-escaped input in your query and are open to SQL injection.

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so, add an escaping function to your answer instead of empty blab on it. –  Your Common Sense Dec 12 '10 at 20:29
    
@Col-shrapnel I would if I had the PHP docs open. since I don't at the moment, and don't remember the function name by heart, I leave it as an exercise to the asker/other asnwers –  baruch Dec 12 '10 at 20:32
    
lame excuse, boy –  Your Common Sense Dec 12 '10 at 20:35
1  
@AndroidUser99: "it doesn't work" doesn't tell us anything useful - do you get an error? If so, what is it? –  OMG Ponies Dec 12 '10 at 20:41
1  
@AndroidUser99: Stop using JSON, and debug by printing the output to screen. When that works, then progress to looking at JSON... –  OMG Ponies Dec 12 '10 at 20:52

It looks like your quotes are off.. try something like...

$q=mysql_query("select * From user Where fullName Like '%".$_REQUEST['user']."%'",$link);

Also, you will want to make sure that the incoming param is sql-escaped to prevent sql injection. I don't know php, but it's probably something similar to...

$q=mysql_query("select * From user Where fullName Like '%".mysql_escape($_REQUEST['user'])."%'",$link);
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it doesn't work :S –  AndroidUser99 Dec 12 '10 at 20:36

I think it must be ... Where fullname like '%" . $_REQUEST['user']."%'"... with the % symbol inside the simple quotes.

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it doesn't works.... 4 answers, no one work –  AndroidUser99 Dec 12 '10 at 20:42

@AndroidUser99: Change the query to --

$q = mysql_query("select * from user Where fullName like '%" . $_REQUEST['user'] . "%'", $link);

Update

I think we may need more code since none of the answers seem to be 'working'. Is the database link even being instantiated in $link? If there are errors what are they?

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it doesn't work.... 3 answers and no one work.... :( –  AndroidUser99 Dec 12 '10 at 20:38
    
finally the first answer work mate! –  AndroidUser99 Dec 12 '10 at 21:38

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