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I am storing a SQL query in my strings.xml file and I want to use String.Format to build the final string in code. The SELECT statement uses a like, something like this:

SELECT Field1, Field2 FROM mytable WHERE Field1 LIKE '%something%'

In order to format that I replace 'something' with %1$s so it becomes:

SELECT Field1, Field2 FROM mytable WHERE Field1 LIKE \'%%1$s%\'

I escape the single quotes with the backslash. However I am not able to escape the % sign.

How can I include a like statement in my strings.xml file?

  • Don't forget to escape the %s properly. – Seva Alekseyev Feb 16 '11 at 2:45
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    SQL injection alert. Prepare yourself. – BalusC Feb 16 '11 at 2:45
  • They'd be injecting into their own database, no concern here ;) – Matthew Feb 16 '11 at 3:06
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    Well, even if it is Your own database, it is possible to accidentally write queries that do bad things. Or just write queries that do not compile. Preparing queries is a good habit to get into. – Rauni Lillemets Nov 28 '14 at 9:16
  • Although it's slower than String.format() you might consider using MessageFormat() instead. – ccpizza May 17 '18 at 9:53
937
1

To escape %, you will need to double it up: %%.

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14
0

To complement the previous stated solution, use:

str = str.replace("%", "%%");
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    This will replace % that are already doubled. Please read the other answer. – Toilal Jul 27 '16 at 6:37
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    @Toilal Why would anyone escape something that is already escaped? And if he would, why not actually do it? Maybe he intended to have two % signs, so the correct escaped form would be '%%%%' – David Balažic Oct 2 '18 at 11:58
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This is a stronger regex replace that won't replace %% that are already doubled in the input.

str = str.replaceAll("(?:[^%]|\\A)%(?:[^%]|\\z)", "%%");
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Here's an option if you need to escape multiple %'s in a string with some already escaped.

(?:[^%]|^)(?:(%%)+|)(%)(?:[^%])

To sanitise the message before passing it to String.format, you can use the following

Pattern p = Pattern.compile("(?:[^%]|^)(?:(%%)+|)(%)(?:[^%])");
Matcher m1 = p.matcher(log);

StringBuffer buf = new StringBuffer();
while (m1.find())
    m1.appendReplacement(buf, log.substring(m1.start(), m1.start(2)) + "%%" + log.substring(m1.end(2), m1.end()));

// Return the sanitised message
String escapedString = m1.appendTail(buf).toString();

This works with any number of formatting characters, so it will replace % with %%, %%% with %%%%, %%%%% with %%%%%% etc.

It will leave any already escaped characters alone (e.g. %%, %%%% etc.)

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    "I can't believe that this isn't a simple solved problem by now" << You answered 6 years after a simple solution was accepted. – AjahnCharles Nov 21 '18 at 14:22

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