起源
{
"first_name" : "foo",
"last_name" : "bar",
"parent" : {
"first_name" : "baz",
"last_name" : "bazz",
}
}
预期
{
"firstName" : "foo",
"lastName" : "bar",
"parent" : {
"firstName" : "baz",
"lastName" : "bazz",
}
}
如何转换json对象的所有键?
Tra*_*own 10
这是我写这个的方式.它并不像我想的那样简洁,但并不可怕:
import cats.free.Trampoline
import cats.std.list._
import cats.syntax.traverse._
import io.circe.{ Json, JsonObject }
/**
* Helper method that transforms a single layer.
*/
def transformObjectKeys(obj: JsonObject, f: String => String): JsonObject =
JsonObject.fromIterable(
obj.toList.map {
case (k, v) => f(k) -> v
}
)
def transformKeys(json: Json, f: String => String): Trampoline[Json] =
json.arrayOrObject(
Trampoline.done(json),
_.traverse(j => Trampoline.suspend(transformKeys(j, f))).map(Json.fromValues),
transformObjectKeys(_, f).traverse(obj => Trampoline.suspend(transformKeys(obj, f))).map(Json.fromJsonObject)
)
然后:
import io.circe.literal._
val doc = json"""
{
"first_name" : "foo",
"last_name" : "bar",
"parent" : {
"first_name" : "baz",
"last_name" : "bazz"
}
}
"""
def sc2cc(in: String) = "_([a-z\\d])".r.replaceAllIn(in, _.group(1).toUpperCase)
最后:
scala> import cats.std.function._
import cats.std.function._
scala> transformKeys(doc, sc2cc).run
res0: io.circe.Json =
{
"firstName" : "foo",
"lastName" : "bar",
"parent" : {
"firstName" : "baz",
"lastName" : "bazz"
}
}
我们可能应该有一些方法可以Json => F[Json]更方便地递归地应用这样的转换.