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Here's my current SQL statement:

SEARCH_ALBUMS_SQL = "SELECT * FROM albums WHERE title LIKE ? OR artist LIKE ?;";

It's returning exact matches to the album or artist names, but not anything else. I can't use a '%' in the statement or I get errors.

How do I add wildcards to a prepared statement?

(I'm using Java5 and MySQL)

Thanks!

share|improve this question
    
Here's a better version of the same question. – Alain O'Dea Dec 23 '15 at 22:28
up vote 16 down vote accepted

You put the % in the bound variable. So you do

   stmt.setString(1, "%" + likeSanitize(title) + "%");
   stmt.setString(2, "%" + likeSanitize(artist) + "%");

You should add ESCAPE '!' to allow you to escape special characters that matter to LIKE in you inputs.

Before using title or artist you should sanitize them (as shown above) by escaping special characters (!, %, _, and [) with a method like this:

public static String likeSanitize(String input) {
    return input
       .replace("!", "!!")
       .replace("%", "!%")
       .replace("_", "!_")
       .replace("[", "![");
} 
share|improve this answer
1  
So, what if the bound variable actually had a '%' character in it? – Eric Noob Nov 29 '08 at 18:41
    
@Eric - Then you don't need to add it. There's nothing magical about doing it in the setString rather than anywhere else. – Paul Tomblin Nov 29 '08 at 19:10
4  
If your bound variable has a literal '%' you should escape it as '\%'. See Java method java.lang.String.replace(). – Bill Karwin Nov 30 '08 at 17:42
    
@BillKarwin backslash isn't documented as an escape character for this purpose. If you include ESCAPE '!' and replace % with !%, _ with !_, and [ with ![ it should mostly mitigate the SQL injection risk here. – Alain O'Dea Dec 23 '15 at 22:14
1  
What about the other replacements? Are _ treated as something other than a literal _? – Paul Tomblin Dec 24 '15 at 18:57

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