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I hope there's someone to help me with this, because I can't find any useful answer, and I'm new with Lisp.

What I'm trying to do is to test a value of one element and to print something if its 1, otherwise to print blank character. This works when all of the list arguments have the value 1:

(defun print-lst (list)
  (format t "~%~a ~a ~a~%"
          (if (= (nth 0 list) '1)
              '¦)
          (if (= (nth 1 list) '1)
              'P)
          (if (= (nth 2 list) '1)
              '¦)))

so the output is ¦ P ¦. But, if the second element in list is 0, it prints NIL on that place ¦ NIL ¦ and I want it to print a space instead ¦ ¦(not just to skip that character¦¦, it is important to there is a blank character in that position in output line if the tested value is not 1).

Is there any way to return a blank character if the condition (if (= (nth 1 list) '1) 'P) is not fulfilled or is there any other way to perform this? I hope I explained that nicely. Thank you.

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1  
You can use (first list), (second list) and (third list) instead of nth. There is no need to quote atoms like 1 which evaluate to themselves already. Also, perhaps, don't use numeric equality unless you really need it! (= (third list) 1) is true not only if (third list) contains 1, but also if it contains the floating point value 1.0. Moreover, if if (third list) contains a non number, it blows up with an error condition. Is that what you want? –  Kaz Apr 27 '12 at 20:14
    
@Kaz:I am aware of all that. This is something just for a school project, it wont happen that the list arguments contain floating point or non numerical values, only integers 1 or 0. –  InProgress Apr 28 '12 at 0:09
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4 Answers 4

up vote 4 down vote accepted

If takes three arguments: condition, then-form, else-form; the else-form is optional. Besides, I would use literal character syntax for literal characters.

(if (= (nth 0 list) 1)
    #\P
    #\Space)

Documentation:

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Thanks, that helped. I was aware of a fact that if statement takes 3 arguments, I just didn't know how to make that space character, but looks like it was pretty easy (I'm newbie with Lisp). –  InProgress Apr 27 '12 at 14:42
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If you want to make full use of the power of format, you can use a combination of format conditionals and format GOTO.

Like this:

[1]> (format nil "~@{~:[<nothing>~;~:*~A~]~^ ~}" 1 2 nil 4 nil 6)
"1 2 <nothing> 4 <nothing> 6"

In your case, this should work:

(format t "~&~@{~:[ ~;~:*~A~]~^ ~}"
        ...)

This works by doing the following:

  1. ~& inserts a newline unless we're already at the beginning of a line.
  2. ~@{...~} processes the arguments iteratively.
  3. ~:[...~;...~] chooses between the nil and non-nil case.
  4. ~:* unconsumes the argument that was consumed by ~:[...~].
  5. ~A outputs the item being processed.
  6. ~^ escapes from the loop on the last iteration (so as not to output an excessive space after the last item).
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This is cool. :) I use this function for the first time, and now I see it has plenty of options, it's very powerful. :) –  InProgress Apr 27 '12 at 18:26
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Counter question:
Do you really need output values that are identifiers ('something) or would also string literals work ("something")?

If the first is true: I suppose it is not possible to use space as an identifier.
If the second is true: use "|", "P" and " " as output values

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Doesn't matter. '" "also works. Thank you. –  InProgress Apr 27 '12 at 14:41
1  
@BojanZdravkovic: By the way, you do not need to quote literal forms, as they evaluate to themselves. –  Svante Apr 27 '12 at 15:40
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Format is a beast waiting to devour the unwary.

That said, it looks like you may want to use some of its higher level directives here. Check out the Formatted Output section of the Lisp Hyperspec, and the format chapter of PCL (specifically, look at the section that deals with conditional formatting).

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Useful links, I sure will check them out. Thank you. –  InProgress Apr 27 '12 at 14:53
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