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I am using Ocaml of version 4. When I define interactively some type, the interpreter prints out string representation of the type immediately after that:

# type foo = Yes | No;;         <-- This is what I entered
type foo = Yes | No             <-- This is what interpreter bounced

But after I type more definitions, sometimes I want to see the text representation of the type again.

In Haskell, I could type ":t foo".

How can I do this in Ocaml?

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That is a good question. As far as I know, there is no way to do it. –  Andrej Bauer Jan 12 '13 at 10:51
    
Unfortunate. Apparently the string emitted by the interpreter right after I enter the expression is kind of "compilation log" but after that the information is lost.. –  Alexey Alexandrov Jan 12 '13 at 11:47
1  
The information is definitely not lost because it is needed for further compilation. Have you asked on the Ocaml list and why not? –  Andrej Bauer Jan 12 '13 at 13:52
1  
From a more general point of view, you might want to try more advanced tools than just the toplevel. There are the Tuareg mode in emacs, Typerex, OcalIDE and many more. Some of them provide a functionality to jump to the place where the type foo is defined, which might be a way to answer your question. –  jrouquie Jan 12 '13 at 13:56
1  
if you've not already using it, I can highly recommend that you use utop as your top-level instead of standard one that comes with OCaml, –  Heidi Feb 7 '13 at 16:48

2 Answers 2

Yes, you can. Use the #typeof directive:

#typeof "list";;
type 'a list = [] | :: of 'a * 'a list 

You can put values and types inside double quotes:

let t = [`Hello, `World];;
#typeof "t";;
val t : ([> `Hello ] * [> `World ]) list   

P.S. And even better solution would be to use merlin.

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and I've forgotten to notice, that this works only in utop. –  ivg May 5 at 13:26

As far as I know, there is actually no way in Ocaml to retrieve type information under a string form

You'll have to build a pattern matching for each of your type

type foo = Yes | No;;

let getType = function
  |Yes -> "Yes"
  |No -> "No"    
  ;;

let a = Yes;;
print_string (getType a);;
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