2

Why calling this function doesn't print anything?

(defn test-go-loop []
  (go (for [a (cycle [:a :b :c])]
        (do (println a) (<! (timeout 1000))))))
  • 1
    for is lazy everywhere, not just in a goroutine. This isn't go-specific at all. – Charles Duffy Dec 1 '17 at 17:54
  • 2
    ...that is to say, you'll have the exact same problem with (defn test-loop [] (for [a (cycle [:a :b :c])] (do (println a) (Thread/sleep 1000))) nil) – Charles Duffy Dec 1 '17 at 17:55
  • 1
    ...note that the nil is important -- if you returned the sequence it would get realized by the repl when trying to print it. – Charles Duffy Dec 1 '17 at 17:55
6

for is lazily evaluated, and nothing in your code is asking for the result of that for. Try doseq:

(defn test-go-loop []
  (go (doseq [a (cycle [:a :b :c])]
        (println a)
        (<! (timeout 1000)))))

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