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I am new to lisp, and am learning as I go.

The standard common lisp break function 1. pops you into the debugger, and 2. if you choose to continue, returns nil.

It seems to me that a break function that popped you into the debugger but RETURNED ITS INPUT would be extremely useful. Then, you could just insert it transparently around a given s-expression to look at the state of the program at that point.

So I could do something like

CL-USER> (break-transparent (+ 1 2))

which would pop me into the debugger and let me look around and then would return

3

Is there such a thing in lisp, and, if not, is there a way to make such a thing? I am not good with macros yet.

Thanks,

EDIT: Doug Currie kindly answered this below with a simple macro. Here is my slightly modified version for anyone else with this question that displays the argument to break-transparent front and center in the debugger window.

(defmacro break-transparent (exp)
  `(let ((x ,exp)) (break "argument to break: ~:S" x) x))
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2 Answers

up vote 2 down vote accepted

You can write break-transparent as a macro that expands to:

(progn
  (break)
  (+ 1 2))

or if you really want to evaluate the expression before the break:

(let ((x (+ 1 2)))
  (break)
  x)

So,

(defmacro (break-transparent exp)
  `(let ((x ,exp)) (break) x))
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Perfect! Thanks. I changed it a little bit so that break would display its argument in the debugger window without having to go hunt for "x" in the backtrace. (defmacro break-transparent (exp) `(let ((x ,exp)) (break "argument to break: ~:S" x) x)) . (break-transparent (+ 1 2)) produces the output "argument to break: 3" in the debugger window and returns 3. –  vancan1ty Sep 21 '13 at 1:57
    
Introducing a new identifier x in a macro is bad. It might interfere with an existing x. Use gensym to create an identifier that's guaranteed to be unique instead. –  Rörd Sep 21 '13 at 13:26
2  
The new identifier x only interferes with code in the body of the let, not the exp; the body of the let is fully under our control, so there is no existing x to interfere with. Normally I would use gensym in any case, but it only complicates the answer. –  Doug Currie Sep 21 '13 at 15:00
    
@DougCurrie: True, it's hard to imagine a case where this would be a problem, but it's still possible, for example if the break-transparent is included in the argument forms to a code-walking macro that replaces all occurrences of x with something else. –  Rörd Sep 21 '13 at 15:05
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Since you've added the macro from the other answer to your question in a slightly modified version, here's a fixed version of that that doesn't add a new identifer that might interfere with an existing one:

(defmacro break-transparent (value)
  (let ((g (gensym)))
    `(let ((,g ,value))
      (break "argument to break: ~:S" ,g)
      ,g)))
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