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I want to write a function, to replace all the numbers in a string with literal \d. My code is:

val r = """\d""".r
val s = r.replaceAllIn("123abc", """\d""")
println(s)

I expect the result is \d\d\dabc, but get:

dddabc

Then I change my code (line 2) to:

val s = r.replaceAllIn("123abc", """\\d""")

The result is correct now: \d\d\dabc

But I don't understand why the method replaceAllIn converts the string, not use it directly?


There was a toList in my previous code, that now what I want. I have just update the question. Thanks to everyone.

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"Foo".toList returns a List[Char] and \d is not one Char it is two Chars \ and d. Why you want to do that? –  michael.kebe Feb 28 '11 at 13:24
    
Sorry, the code is not what I wanted. I'm updating the question now –  Freewind Feb 28 '11 at 14:12
    
By “numbers”, do you mean \pN or \p{Nd}?? –  tchrist Feb 28 '11 at 14:54
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2 Answers

up vote 1 down vote accepted

Just remove the toList.

val r = """\d""".r
val list = r.replaceAllIn("123abc", """\\d""")
println(list)

Strings are (implicitly, via WrappedString, convertible to) Seq[Char]. If you invoke toList, you will have a List[Char].

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Scala's Regex uses java.util.regex underneath (at least on the JVM). Now, if you look up replaceAll on Java docs, you'll see this:

Note that backslashes (\) and dollar signs ($) in the replacement string may cause the results to be different than if it were being treated as a literal replacement string. Dollar signs may be treated as references to captured subsequences as described above, and backslashes are used to escape literal characters in the replacement string.

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thank you –  Freewind Mar 3 '11 at 4:51
    
It drives me nuts having to dig through the source and look up JavaDoc to understand how to use this method. It's even worse for the overload which takes a Match=>String because you need to remember to escape characters in your string! issues.scala-lang.org/browse/SI-5437 –  schmmd Feb 6 '12 at 17:53
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