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I have a function in scala that translates a value and produces a string.

strOut = translate(strIn)

Suppose the following JSON object:

{
  "id": "c730433b-082c-4984-3d56-855c243265f0",
  "standard": "stda",
  "timestamp": "tsx000",
  "stdparms" : {
    "stdparam1": "a",
    "stdparam2": "b"
  }
}

and the following mapping provided by the translation function:

"stda" -> "stdb"
"tsx000" -> "tsy000"
"a" -> "f"
"b" -> "g"

What is the best way to translate the whole JSON object using the translate function? My goal is to obtain the following result:

{
  "id": "c730433b-082c-4984-3d56-855c243265f0",
  "standard": "stdb",
  "timestamp": "tsy000",
  "stdparms" : {
    "stdparam1": "f",
    "stdparam2": "g"
  }
}

I must use the io.circe library due to project related matters.

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If you know beforehand which fields you want to translate, or what translations apply to that field, you can use Cursors to traverse the JSON tree. Or if the fields themselves are fixed (you always know what fields to expect) Optics may require less code.

When you get to the right leaf, you apply the translation.

However, when you don't know what could apply when/where it might be easier to find/replace using string methods.

Note that the JSON you provided as an example is not valid JSON by the way.

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  • Thanks for the information. I have corrected my JSON example. My case is that where the only field known beforehand is the id, which must be preserved. Aug 16 '17 at 15:31

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