Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Is it possible to specify a default value for expand with !., the fit conjunction? Normally, it is possible to specify a default fill value for #, but what about #^:_1?

For example, something like

    empty =. <0 0$''
    r =. 0 1 0 1 expand!.empty 'foo';'bar' NB. Actually a domain error
++---+---++
||foo|bar||
++---+---++
    $ each r
+---+-+-+---+
|0 0|3|3|0 0|
+---+-+-+---+

All I've tried throws domain errors:

expand!.empty
#^:_1!.empty
#!.empty^:_1
(#!.empty)^:_1
share|improve this question
    
what kind of language is this –  dynamic Mar 11 '11 at 22:52
    
@yes123: This is J, which is evolved from and similar to APL. –  Don Roby Mar 11 '11 at 22:54
    
And yes, my bias for J5 over J6 shows in the boxes. –  MPelletier Mar 13 '11 at 1:29
add comment

3 Answers

up vote 2 down vote accepted

I am not aware of any way to use the fit conjunction to alter the fill for expand (#^:_1)

The technique I do know how to use is to write an equivalent to expand for which we specify the fill element.

The following code allows custom expansion such as you've described. It has been written to work with version 5, since you indicated you rely on that, but I have only tested it under version 6. As usual, this is likely susceptible to further refinement.

   xpand=: 1 :'((retention j. expansion)@:[ #!.u prep@:])'
   prep=: ,~ {.
   retention=: 0:, +/ # 1:
   expansion=: [:forwarddifference [:tallyzeros [:partition [:<\ pad
   forwarddifference=: 2&(-~/\)
   tallyzeros=: +/ @: -. &>
   partition=: #~ (1: = {:)&>
   pad=: 1&([,~ ,)

   NB. example of use
   empty =. <0 0$''
   ]r=. 0 1 1 0 empty xpand 'foo';'bar'
┌┬───┬───┬┐
││foo│bar││
└┴───┴───┴┘
   $ each r
┌───┬─┬─┬───┐
│0 0│3│3│0 0│
└───┴─┴─┴───┘

Since posting the original answer I obtained a more concise alternative:

   xpand =: 1 :' index @:[ { u,~] '
   index =:  retain + insert
   retain=:  I.@:] }~  [:i.+/
   insert=:  +/ * -.

Note that the u,~] portion is not compatible with version 5. Use ],u"_ instead for compatibility.

share|improve this answer
add comment

Yes:

0 1 0 1 expand f.!.empty 'foo';'bar' NB. with f. works fine
++---++---+
||foo||bar|
++---++---+

The trick is to use f. or #^:_1 anonymously, so that !. sees #^:_1 as its left argument, instead of expand. Fit isn't as smart as it could be.

share|improve this answer
    
Oh, nice one! I think I like it better than kaleidic's. –  MPelletier Mar 25 '11 at 14:09
    
Sorry, doesn't work in J 5. It's a good answer, but I'm carrying this J 5 code like some carcass and I'm stuck to it until it rots away or actually is migrated to J 6 (and there are sadly more subtleties to it than just changing x. to x). –  MPelletier Mar 25 '11 at 14:27
add comment

Another approach might be:

   inv=: ^:_1
   1 0 1 0 1 ((#inv #\) { 'z'&,@]) 'abc'
azbzc

Replace the nouns with whatever nouns you want to be working with...

Thus:

   fillExpand=:1 :'(#inv #\) { m&,@]'
   empty=:<i.0 0
   0 1 0 1 empty fillExpand ;:'foo bar'
++---++---+
||foo||bar|
++---++---+
   $&.>0 1 0 1 empty fillExpand ;:'foo bar'
+---+-+---+-+
|0 0|3|0 0|3|
+---+-+---+-+

That said, note that #\ is inefficient under version 5. In version 5, I would replace #\ with 1: + i.@#

That said, note that Dan Bron's suggestion #!.empty^:_1 works fine for me, and I thought should work fine in version 5.

share|improve this answer
add comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.