In ScalaTest, I have the following check:

"abc".r shouldBe "abc".r

But it is not equal. I don't understand.

abc was not equal to abc
ScalaTestFailureLocation: com.ing.cybrct.flink.clickstream.ConfigsTest$$anonfun$6 at (ConfigsTest.scala:97)
Expected :abc
Actual   :abc
  • 1
    "abc".r == "abc".r is also false in the REPL so it's not scalatest-specific – Joel Berkeley Aug 10 at 9:15
up vote 9 down vote accepted

While it's possible to decide whether two regular expressions accept the same language, it seems to be rather complicated and not all that terribly useful for everyday regex usage. Therefore, equality on compiled regex patterns is just referential equality:

val x = "abc".r
val y = "abc".r
x == y
// res0: Boolean = false
  • So there is no way in scalatest, that we can test whether two regex are value equal? – fluency03 Aug 13 at 10:32
  • can we do this: "abc".r.toString() shouldBe "abc".r.toString() – fluency03 Aug 13 at 10:32
  • however, "In Scala, at least on the JVM, == simply calls equals", which is actually not referential equality. – fluency03 Aug 13 at 10:33
  • 2
    @fluency03 Instead of calling toString(), you can just ask whether x.regex == y.regex, because .regex already contains the string representation from which the compiled pattern was generated. That would be a "cheap" intensional equality that to some degree approximates the "interesting" extensional equality. For regex, equals simply redirects to eq, which is referential equality. – Andrey Tyukin Aug 13 at 11:11

The method shouldBe in Scalatest 3.0.5 delegates the equality check to the areEqualComparingArraysStructurally method:

def shouldBe(right: Any): Assertion = {
  if (!areEqualComparingArraysStructurally(leftSideValue, right)) {
    val (leftee, rightee) = Suite.getObjectsForFailureMessage(leftSideValue, right)
    val localPrettifier = prettifier // Grabbing a local copy so we don't attempt to serialize AnyShouldWrapper (since first param to indicateFailure is a by-name)
    indicateFailure(FailureMessages.wasNotEqualTo(localPrettifier, leftee, rightee), None, pos)
  }
  else indicateSuccess(FailureMessages.wasEqualTo(prettifier, leftSideValue, right))
}

which in turn simply delegates the equality check (as you can expect) to the == operator:

private[scalatest] def areEqualComparingArraysStructurally(left: Any, right: Any): Boolean = {
  // Prior to 2.0 this only called .deep if both sides were arrays. Loosened it
  // when nearing 2.0.M6 to call .deep if either left or right side is an array.
  // TODO: this is the same algo as in scalactic.DefaultEquality. Put that one in
  // a singleton and use it in both places.
  left match {
    case leftArray: Array[_] =>
      right match {
        case rightArray: Array[_] => leftArray.deep == rightArray.deep
        case _ => leftArray.deep == right
      }
    case _ => {
      right match {
        case rightArray: Array[_] => left == rightArray.deep
        case _ => left == right
      }
    }
  }
}

In Scala, at least on the JVM, == simply calls equals, which, if not overridden, checks whether the compared variables point to the same object. case classes are peculiar in that the compiler overrides equals for you to compare the constructor arguments.

You can test it very easily with the following (but as you can imagine, the same applies to simply using == on your own):

package org.example

import org.scalatest.{FlatSpec, Matchers}

final class MyClass(val a: Int)

final case class MyCaseClass(a: Int)

final class TestSpec extends FlatSpec with Matchers {

  "equality on case classes" should "succeed" in {

    new MyCaseClass(1) shouldBe new MyCaseClass(1)

  }

  "equality on non-case classes" should "fail" in {

    new MyClass(1) shouldNot be(new MyClass(1))

  }

  "equality between Regex objects" should "fail" in {

    "abc".r shouldNot be("abc".r)

  }

}

What the r method does is instantiating a new Regex object, which is not a case class and does not override the equality definition, thus yielding the result you see.

  • 1
    That's what I meant to say but I can see my explanation was farraginous, I'll fix it, thanks. – stefanobaghino Aug 10 at 9:49
  • Maybe "literally the same chunk of memory" or something like that? "Literally the same" is still somehow ambiguous, because it defines the yet-to-be-defined notion of "equality" through equally undefined notion of "sameness". Moreover, the word "literally" could invoke the impression that it's more about the syntactic shape of the code that describes the object, rather than about its memory location. That's why I like the phrase "referential equality" - at least, it's a thing that's more or less universally understandable. I'm nitpicking, I know. ;) – Andrey Tyukin Aug 10 at 9:59
  • 1
    the compared variables point to the same object should do it, hopefully. – stefanobaghino Aug 10 at 10:12
  • So there is no way in scalatest, that we can test whether two regex are value equal? – fluency03 Aug 13 at 10:34

Yes, they are not equal. Both "abc".r are different references to two different memory locations. shouldbe is to check equality but not identity.

  • This is not really so. For example val (a,b)=(Some(1), Some(1)) are also two different references, yet a == b is true ... – Dima Aug 10 at 13:48
  • "abc".r == "abc".r ... it will return false. – Balaji Reddy Aug 10 at 14:09
  • Exactly. In both cases they are different memory locations, but the result is true in one case, but false in the other. – Dima Aug 10 at 14:16

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