1

I start to read/work on clojure and for that I start to read in parallel 'Programming Clojure' and 'Practical Clojure' books. I saw there one example of how lazy sequence working and for me was very clear in order to understand how lazy-seq work but unfortunately it doesn't work or at least not how I expect.

here is the example:

(defn square[x]
  (do
   (println "[current.elem=" x "]")
   (* x x))
)

(def var-00 (map square '(1 2 3 5 6 4)))    

when I call:

var-00

, I expect that no message to print on console(REPL) but I got the follow result:

([current.elem= 1 ][current.elem= 2 ]1 [current.elem= 3 ]4 [current.elem= 5 ]9  [current.elem= 6 ]25 [current.elem= 4 ]36 16)

this mean that the function map was called even I expect to nothing happen since 'var-00' is just a reference to function 'map'; and more awkward from my point of view, if I call:

(nth var-00 2)

I got:

[current.elem= 1 ][current.elem= 2 ][current.elem= 3 ]9

, and if I call again:

(nth var-00 3) 

I got:

[current.elem= 1 ][current.elem= 2 ][current.elem= 3 ][current.elem= 5 ]25; 

previous elements(1,2,3) was computed again I my opinion those elements should be 'cached' by first call and now only element 5 should be computed. Did I do something wrong or I didn't fully understand how lazy sequence working in clojure ? As a mention I use IntellijIDEA and LaClojure plugin to run the program.

Thanks Sorin.

2

Just checked your coed in Clojure REPL, it works fine for me. Every element got printed only once (when it's evaluated the first time).

I even tried your example in Clojure online REPL:

Clojure online REPL screenshot

But there is one thing that you got wrong. REPL executes each command and then prints its results, so when you type var-00 REPL resolves the symbol and then, in order to print it, executes the whole lazy sequence:

Clojure online REPL screenshot

It have nothing to do with lazy sequences, it's just how REPL works:

Clojure online REPL screenshot

  • Thanks, seams my Intellij plugin for clojures doesn't work so properly. – srncristea Mar 23 '14 at 12:28
-3

Lazy Evaluation dosen't mean that things will be cached. It means that inside a calculation an element will only be evaluated, if it is needed for the result. If an element is needed twice for the result, it might be evalueated twice.

If you want to have automatic caching of elements there is the memoize function, which will return a transformed version of the input function with added caching of results. This is also a easy way to implement dynamic programming

  • 1
    Well, that's just wrong. Lazy seqs' elements really only get evaluated when they are needed but they are not evaluated each time they are accessed. Just try OP's example in your local Leiningen REPL and you'll see the output only once. – xsc Mar 23 '14 at 20:35

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

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