Two things out of one mechanism. `_' as a type means "work it out from
the initializer", so (var n _ (strlen s)) stops needing size-t spelled
out; `type-of' hands a macro the type of an expression, so a macro can
dispatch on what it was handed rather than on what was declared. Both
read the same answers from two sides.
Algorithm W's core, intra-procedural, with the extensions C forces:
- an unknown type, since (include stdio.h) brings in names we never
parsed. Unification is consistency rather than equality, so
anything touching an unparsed declaration stops constraining
instead of rejecting a program that compiled yesterday;
- the usual arithmetic conversions, since `+' is not a function of
one type;
- checking mode for initializers, since #(0 0) has no type of its own
and takes one from its context. #(T : ...) is the way out of that.
What it wanted on the way:
- what type a *name* has, which neither the typedef nor the tag
database recorded. One table serves functions and variables, since
a function type already has a surface spelling;
- a scope chain, so a (var c int 9) inside a do ends with the block;
- form-type, keyed by cons cell, so one form has one type;
- macros expanded during the walk rather than before it, so type-of
is answered in the scope the macro was written in.
Closures take the same machinery: a receiver whose type comes from a
call, captures written (name expr) and typed from the expression, and
conversion from a bare function wherever a closure is expected.
type-match grew `_' on the pattern side, since (closure ((int)) int)
and (closure ((float)) int) were separate clauses for one case.
56 lines
1.7 KiB
Scheme
56 lines
1.7 KiB
Scheme
(import
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scheme
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(only fmt fmt)
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(chicken base)
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(chicken plist)
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(chicken string))
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(define (cat-syms s-1 s-2)
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(fmt #f s-1 s-2))
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(define (cat sym-1 sym-2)
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(string->symbol (cat-syms sym-1 sym-2)))
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;;; The reader keeps `;' comments as (comment "...") forms so they can
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;;; be re-emitted into the generated C. In a macro body a comment
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;;; should be a call which does nothing, hence this one
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(define (comment . _)
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(void))
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(define (register-macro name arglist body)
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(put! name 'sex-macro
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`(lambda ,arglist
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;; A macro body is ordinary Scheme, evaluated at compile
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;; time. It gets `cat' for building names, and read access to
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;; the type database
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(import scheme
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(scheme base)
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;; a type is a list, so a macro reading one wants
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;; `(third type)' rather than `(caddr type)'
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(only srfi-1 first second third fourth fifth last)
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(only sex-macros cat comment)
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(only types get-type-info get-tag-info get-fields
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get-underlying-type type-match type-pattern-matches?
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map-fields
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get-name-type get-return-type type-of))
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,@body)))
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(define (get-macro name)
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(eval (get name 'sex-macro)))
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(define (macro? form)
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(and (list? form)
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(symbol? (car form))
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(get (car form) 'sex-macro)))
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(define (apply-macro form)
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(assert (macro? form)
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(fmt #f (car form) " is not a macro"))
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(apply (get-macro (car form))
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(cdr form)))
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(define (defmacro form)
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(let ((arglist (car form))
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(body (cdr form)))
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(register-macro (car arglist) (cdr arglist) body)))
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