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At least some implementations of Common Lisp don't allow user-defined constants to be used as array dimensions in some type specifiers. For example, in SBCL, this code:

(defconstant +len+ 3)

(defun foo (x) 
  (declare (type (simple-array fixnum (+len+)) x))
  x)

generates this error:

; in: DEFUN FOO
;     (TYPE (SIMPLE-ARRAY FIXNUM (+LEN+)) X)
; 
; caught ERROR:
;   bad dimension in array type: +LEN+

Why? It seems surprising that user-defined constants can't be used in type specifiers, since it would be desirable to be able to coordinate multiple type specifiers using some kind of global definition. I understand that type specifiers need to be completely understandable at compile-time. But I would have thought that a compiler would be able to replace symbols defined with defconstant by their literal values. I would have thought that this was one of the purposes of defconstant. (I've been unsuccessful, so far, in getting deeper understanding of this issue from the Common Lisp Hyperspec, CLTL2, the SBCL manual, or what Google has turned up. I suspect the answer is there in some form ....)

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Are you saying (implying) that there are some LISP compilers that allow this, but others that do no? –  Floris Sep 30 '13 at 3:22
    
I don't want to make claims about compilers or uses of type specifications that I haven't tested. I don't know what might happen in different cases. However, I've found that in CCL, for example, in (map '(simple-array fixnum (4)) #'1+ (the (simple-array fixnum (4)) arr)), replacing the first 4 with a constant generates an error, but replacing the second 4 only generates a warning, and the correct result is returned. In SBCL, by contrast, both replacements cause errors. –  Mars Sep 30 '13 at 4:55
    
@Mars When you say "replacing the first 4 with a constant generates an error", it sounds like you mean you've replaced 4 with the name of a constant, which is quite different from replacing 4 with the value of a constant. defconstants aren't like C #defines which do textual substitution. –  Joshua Taylor Sep 30 '13 at 12:57
    
Yes, @JoshuaTaylor, right--I did mean substituting the string "+len+" for the string "4" in the source file or in what I typed in at the repl prompt. –  Mars Oct 1 '13 at 3:45

3 Answers 3

up vote 3 down vote accepted

I imagine that something like this would work:

(defconstant +len+ 3)

(deftype len-3-fixnum-array () `(array fixnum (,+len+)))

(defun foo (x)
  (declare (type len-3-fixnum-array x))
  (print x))

(foo (make-array 3 :element-type 'fixnum))
;; #(0 0 0)

(foo (make-array 4 :element-type 'fixnum))
;; The value #(0 0 0 0) is not of type (VECTOR FIXNUM 3).
;;    [Condition of type TYPE-ERROR]

However, you need to keep in mind that type annotations are only recommendations, compilers are allowed to ignore them altogether.


I.e. the problem isn't that you can't use constants in the declare form, it's that it acts as if it was quoted, so your constant there doesn't evaluate to 3, it just stays the symbol +len+.

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1  
+1 for pointing out the actual problem: the list (+len+) whose element is a symbol isn't a valid dimension specifier, but the list produced by (list +len+), whose element is the value of +len+, is. –  Joshua Taylor Sep 30 '13 at 12:54
    
Thanks--nice trick wvxvw. Thanks for that extra comment @JoshuaTaylor, highlighting the significance of the backquote/comma in wvxvw's answer. –  Mars Oct 1 '13 at 3:49
1  
@Mars declarations have this peculiar "inconvenient" property. You cannot "glue" them from pieces by using macros either (see here: stackoverflow.com/questions/18645299 ). But similar to the the code in the answer there, you could use a reader-macro (although that would be probably a little weird). –  user797257 Oct 1 '13 at 5:02
1  
@Mars: You can use the read time evaluation reader macro (#.) with your declaration, i.e. (defun foo (x) #.`(declare (type (simple-array fixnum (,+len+)) x)) (print x)). That should solve your problem because now the expansion will happen at read time instead of macro-expansion time. –  Rörd Oct 1 '13 at 6:42
1  
@Mars: BTW, you might want to wrap your defconstant in eval-when to make sure the constant will always be defined at read time, e.g. (eval-when (:compile-toplevel :load-toplevel :execute) (defconstant +len+ 3)). –  Rörd Oct 1 '13 at 17:32

If you look at the ANSI CL spec, the syntax for types is clearly defined. For simple-array:

simple-array [{element-type | *} [dimension-spec]]

dimension-spec::= rank | * | ({dimension | *}*) 

Where:

dimension---a valid array dimension.

element-type---a type specifier.

rank---a non-negative fixnum.

The valid array dimension is then explained as a fixnum.

There are no variables or constant identifiers in an simple-array type declaration. Type declarations have their own syntax and are not evaluated or similar. They are type expressions which can appear in code in special places (-> declarations).

You can use DEFTYPE to create new type names and use those, though.

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I hard read that part of the spec, but I wasn't sure whether a variable defined to a particular fixnum value using defconstant counted as a fixnum for the purposes of defining array dimensions. Your comment clarifies that for me. –  Mars Oct 1 '13 at 3:47

The other two answers tell you how to work around the limitation and where the limitation is specified in the standard.

I will try to tell you where this limitation is coming from.

The reason is that the Lisp declarations are intended not just as code documentation for the human reader, but also as a help for the compiler in optimizing the code. I.e., the array size, when declared, should permit the compiler to allocate a fixed size array, if necessary, and infer the storage requirements for array indexes. It is similar to the C limitation which forbids code like

int N = 10;
int v[N];

When you start looking at the declarations from the compiler's POV, the requirements will become quite natural.

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Thanks sds. That's what I was wondering. But having to put literals in array type specifiers is bug-prone, makes code harder to maintain, etc. So I figured there would be a good reason to allow C-ish macros, and defconstant seemed like the only language element that might do that. However, it turns out that C-style macros aren't needed; Regular Lisp macros are enough, as @wvxvw's answer showed. –  Mars Oct 1 '13 at 4:10

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