43

What is the correct way of defining a Kotlin string that includes the characters for declaring a template substitution, but not have this evaluated as a template?

For example: "${something}" just treated as an ordinary string.

I would like to use the Spring value annotation:

@Value("${some.property}) lateinit var foobar : String?
1

1 Answer 1

74

This works for me:

val s = "\${foo}"
println("s = ${s}") // prints s = ${foo}

The documented way also works fine:

val s = "${'$'}{foo}"
println("s = ${s}") // prints s = ${foo}
3
  • It seems that both "\${foo}" and $\{foo} work. Which one is better?
    – SOFe
    Commented Oct 19, 2018 at 10:21
  • 6
    For multiline strings: stackoverflow.com/questions/32993586/…
    – User
    Commented Mar 18, 2019 at 11:04
  • Both ways are documented. The only difference between your two solutions is, that the latter works in escaped strings (one double-quote, escape sequences supported) and also in raw strings (three double-quotes, escape sequences do not work). In escaped strings I'd always use the backslash-variant as it is cleaner and probably more performant.
    – Vampire
    Commented Jan 31, 2020 at 15:28

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service and acknowledge you have read our privacy policy.

Not the answer you're looking for? Browse other questions tagged or ask your own question.