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1 point by shiro 6169 days ago | link | parent

One idea I'm mulling for some time is that, when you compile a function you mark it with the macros you've used, and when one of the macros is redefined it triggers recompilation of the original function. You can delay the recompilation until the function is called next time, of course.

(Actually it's not only for macros, but it will work well for inlining built-in functions.)

Possible drawback is that the effect of macro redefinition isn't very obvious in such a system. You change a macro in running server, and it can trigger recompilation of large potion of the code...



1 point by em 6168 days ago | link

Interesting idea. However, for that to work, one would need to recompile (or mark as dirty) _anything_ that referenced the macro, which could be lists or even a single variable who's value is simply a symbol.

i.e. (mac foo () ''a) (= bar (foo))

And if a macro expansion used the value of bar, i.e. (mac baz () `(prn ',bar))

then anying using baz also would need to be recompiled.

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1 point by shiro 6168 days ago | link

I don't think so. Since Arc (and most Lisp dialects) are applicative order, (foo) is evaluated once when (= bar (foo)) is evaluated. Redefining foo won't affect the value of bar (and it doesn't matter whether foo is a macro or a function).

Of course, if (= bar (foo)) is a part of a function, then the function should be recompiled.

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1 point by elibarzilay 6168 days ago | link

A real solution for this will be really hard. For example, I'd expect this work:

  (mac foo () 1)
  (def bar () (let x (foo) (fn () x)))
  (= x (list (bar)))
  (mac foo () 2)
  ((car x))
    --> 2
(And the usual solution is to lower your expectations...)

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1 point by shiro 6168 days ago | link

Why? No matter whether foo is a macro or a function, a closed value of 'x' is fixed in the closure returnd by bar, so redefining foo shouldn't affect the closure bound to x. (But the next call of bar returns a closure that closes 2 as 'x'). Am I missing something?

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2 points by elibarzilay 6167 days ago | link

Like I said -- the usual solution, which you think about, is to lower your expectations. And I'm not joking when I say that: you really just decide to expect that `x' is not going to changed since it's "closed", so you're happy with the result. Some people set their expectations lower, and they expect a macro redefinition to not change anything about existing bindings, so they won't think about your hack as necessary.

And BTW, this is not just some cooked up academic non-problem. It's a practical issue. Consider this example:

  (mac foo () ...)
  (def bar ()
    ...do something...
    ...change foo...
    ...continue doing stuff...)
If that macro change will (with your suggestion) lead to recompiling `bar', but that will not affect the current active call. This is a very common problem with hacking live servers (as pg often talk about):

* You cannot change the main server handler loop unless you make it call itself via its name, so the recursive call will use the new definition.

* Even if you do, you should still be extremely careful since you might change the code when there's a live thread around which was compiled with the old macros, and might rely on the old macros. For example, `f1' and `f2' use `foo', `f1' is invoked in a thread, now `foo' gets redefined, after that's done `f1' continues to call `f2': old code is calling new one, things break.

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1 point by shiro 6167 days ago | link

I still believe you are talking different things. My "expectation" is derived from these axioms:

* Macro is a local source-code transformation that replaces macro call with the macro definition (with some hygienic magic, if you prefer).

* The language adopts applicative order.

If you want redefining foo to affect the value of the closed variable 'x', then either you have a non-trivial definition of macros (macro transformation requires transformation of code surrounding the macro call) or you are adopting different evaluation semantics (like x is bound by call-by-name).

Note that your problem occurs even foo is a procedure. It's not a macro problem. It's a problem of semantics of closed variables.

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