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In this query

select wrd from tablename WHERE wrd LIKE '$partial%'

I'm trying to bind the variable '$partial%' with PDO. Not sure how this works with the % at the end.

Would it be

select wrd from tablename WHERE wrd LIKE ':partial%'

where :partial is bound to $partial="somet"

or would it be

select wrd from tablename WHERE wrd LIKE ':partial'

where :partial is bound to $partial="somet%"

or would it be something entirely different?

share|improve this question
3  
The last option should work – Cfreak Apr 27 '10 at 14:54
1  
...minus the quotes – bobince Apr 27 '10 at 15:02
up vote 20 down vote accepted

+1 karim's answer covers it. You could also say:

"SELECT wrd FROM tablename WHERE wrd LIKE CONCAT(:partial, '%')"

to do the string joining at the MySQL end, not that there's any particular reason to in this case.

Things get a bit more tricky if the partial wrd you are looking for can itself contain a percent or underscore character (since those have special meaning for the LIKE operator) or a backslash (which MySQL uses as another layer of escaping in the LIKE operator — incorrectly, according to the ANSI SQL standard).

Hopefully that doesn't affect you, but if you do need to get that case right, here's the messy solution:

$stmt= $db->prepare("SELECT wrd FROM tablename WHERE wrd LIKE :term ESCAPE '+'");
$escaped= str_replace(array('+', '%', '_'), array('++', '+%', '+_'), $var);
$stmt->bindParam(':term', $escaped);
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2  
+1 Now that I read this I realise it is you that has covered it, and not me. – karim79 Apr 28 '10 at 21:37
1  
To escape or not to escape ... It depends on the intent of the character. Was it's intent to be a wildcard or a literal? I wouldn't expect a prepared statement to decide this for me. It's job is to escape characters in the value that would terminate the LIKE clause and inject unwanted sql. – Stoutie Oct 15 '12 at 18:32
    
+1 for the 'messy' solution. The only time I wouldn't use it is if I wanted to give my users the ability to put wildcards in their own search string. – Jon Hulka Nov 26 '12 at 22:40
    
I would like to add a note why the str_replace does not cycle - Because str_replace() replaces left to right so first, the + gets escaped, then % and in the end the _ ... so no +++++++++ :-) – jave.web Mar 28 at 0:58
$var = "partial%";
$stmt = $dbh->prepare("select wrd from tablename WHERE wrd LIKE :partial");
$stmt->bindParam(":partial", $var);
$stmt->execute(); // or $stmt->execute(array(':partial' => $var)); without 
                  // first calling bindParam()
$rs = $stmt->fetchAll();

Using question mark parameters:

$stmt = $dbh->prepare('select wrd from tablename WHERE wrd LIKE ?');
$stmt->execute(array('partial%'));
$rs = $stmt->fetchAll();

http://www.php.net/manual/en/pdo.prepare.php

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This is how you should do it

bindValue(':partial', '%' . $_GET['partial'] . '%');

Thanks,

Qwerty

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$stmt = $this->conn->prepare("SELECT dr_name, dr_mobile, dr_country FROM tx_driver where dr_name LIKE CONCAT('%',?,'%') ");

$stmt->bind_param('s', $drName);

$stmt->execute();

$stmt->bind_result($dr_name, $dr_mobile, $dr_country);
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This does not provide an answer to the question. To critique or request clarification from an author, leave a comment below their post - you can always comment on your own posts, and once you have sufficient reputation you will be able to comment on any post. - From Review – GAMITG Feb 2 at 4:24

The below code it shows only the first keywords in the database!

"SELECT wrd FROM tablename WHERE wrd LIKE CONCAT(:partial, '%')"

Try this one if you want to search all the keywords from the database

"SELECT wrd FROM tablename WHERE wrd LIKE :partial";
$stmt->execute(array(':partial'=>'%'.$YourVarHere.'%'));
share|improve this answer

Who has written the answare (may be karim79):

$var ="partial%"
$stmt =$dbh->prepare("select wrd from tablename WHERE wrd LIKE :partial")
$stmt->bindParam(":partial",$var)
$stmt->execute(); //or$stmt->execute(array(':partial'=>$var)); without 
                  // first calling bindParam()
$rs =$stmt->fetchAll();

Using question mark parameters:

$stmt =$dbh->prepare('select wrd from tablename WHERE wrd LIKE ?');
$stmt->execute(array('partial%'));
$rs =$stmt->fetchAll();

Many thanks to him. I was searching for the code & saw many examples, but i couldn't resolve my issue. This time I have succeed to do it. I used the 'Using question mark parameters:' section of the code.

For others help, if you want to retrieve the value from a variable you may change the code to

$stmt->execute(array($variable.'%'));

instead of

$stmt->execute(array('partial%'));

Because the word 'partial' is specified in the answer and can't be changed. Thanks a lot.

share|improve this answer
    
This is mostly a thank you, not an answer. – ScottR Jun 10 '15 at 20:35

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