7

I found the behavior of Clojure confusing regarding equality between maps and records. In this first example, we have two different types which are structurally equal. The equality = function returns true:

user> (defn make-one-map
         []
       {:a "a" :b "b"})
#'user/make-one-map
user> (def m1 (make-one-map))
#'user/m1
user> m1
{:a "a", :b "b"}
user> (def m2 {:a "a" :b "b"})
#'user/m2
user> m2
{:a "a", :b "b"}
user> (= m1 m2)
true
user> (type m1)
clojure.lang.PersistentArrayMap
user> (type m2)
clojure.lang.PersistentHashMap

In the second example we have a hashmap and a record which are structurally equivalent but the = function returns false:

user> (defrecord Titi [a b])
user.Titi
user> (def titi (Titi. 1 2))
#'user/titi
user> titi
#user.Titi{:a 1, :b 2}
user> (= titi {:a 1 :b 2})
false

Why are the differences? I'm using Clojure 1.3 and I found them really confusing.

2 Answers 2

17

From the docstring for defrecord:

In addition, defrecord will define type-and-value-based =, and will defined Java .hashCode and .equals consistent with the contract for java.util.Map.

So, when using =, type is taken into account. You could use .equals instead:

user> (.equals titi {:a 1 :b 2})
true
2
  • Why are the instances of PersistentArrayMap and PersistentHashMap equal with = then since the type function indicates they are not the same type? Feb 10, 2012 at 19:44
  • 7
    The "type-and-value-based =" promise is stated in defrecord's docstring and applies to records. Regular maps, on the other hand, are supposed to participate in a value-based = scheme, and they do, to the point that (= (hash-map :foo 1 :bar 2) (sorted-map :foo 1 :bar 2)) and (= (java.util.HashMap. {:foo 1 :bar 2}) {:foo 1 :bar 2}) are both true. Feb 11, 2012 at 0:11
8

a PersistentArrayMap and a PersistentHashMap are conceptually the same - as the ArrayMap grows, it will automatically get converted to a HashMap for performance reasons. User-level code should generally not try to distinguish between the two.

A defrecord datatype, on the other hand, is not the same as one of the other maps. It is a separate type that may implement entirely different interfaces and should not be automatically replaced by some other form of map. It is not conceptually equal to a normal map, so = returns false.

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