4

Most of the times there is no need to write manually many variables with the same name and a different index, like

var0, var1, var2, var3, ..., var9

because one can use arrays, vectors or whatever the language offers.

Anyway, I just needed to write manually ten variables as shown above. What is the fastest way to do it with emacs?

I guess that the fastest way is to write some elisp code. I tried doing it with this code

(setq i 0)
    (while (< i 10) (print (format "var%d, " i)) (setq i (+ 1 i))

followed by (insert-last-message) defined here. It does not work (I get "(#o0, #x0, ?\C-@)").

What's wrong here? Is there any faster way?

6

The fastest way is to use the macro counter:

C-x( starts recording a macro
varF3,space inserts 0 as the initial value of the counter
M-1M-0 repeat the following 10 times
C-xe execute the macro

  • Cool! Is it possible to make the macro counter start from another number? – Nisba Aug 30 '18 at 15:24
  • 2
    If you start recording your macro with F3, you can give it a numeric argument with the number to start from. – DoMiNeLa10 Aug 30 '18 at 15:36
  • Don't forget to delete the extra comma at the end. :) – Omar Aug 30 '18 at 22:38
3

print will output to the echo area rather than putting stuff in your buffer. You're looking for insert and dotimes:

(dotimes (i 10) (insert (format "var%d, " i)))

(alternatively you can use keyboard macros for this)

2

I'd use a macro just as @choroba did (with F3 in place of C-x ( and F4 instead of C-x e, for brevity and to be able to easily specifying a non-zero starting number, as @DoMiNeLa10 mentioned), but if you want a possibly more ergonomic solution, there is abo-abo's tiny package. You'd type m0, 9|var%d into your buffer, and then execute tiny-expand and it would replace m0, 9|var%d with:

var0, var1, var2, var3, var4, var5, var6, var7, var8, var9

for you. (I used it just now to type that.)

Notice that the comma and space between 0 and 9 are used as a separator, that is, you don´t get an extra one at the end like you would with the most straightforward macro.

1

If you use lispy (https://github.com/abo-abo/lispy), you can do this:

  1. Enter (s-join ", " (loop for i below 10 collect (format "var%s" i))) into your elisp buffer. At the end of the sexp, type xr which will evaluate and replace the sexp with a string in quotes. Type C-b to get the cursor on the last quote, then type C-u " to unquote the string.

alternatively, if you type the code @rpluim suggested, and type xr, it will also replace it with about the same thing, you just have to delete a nil and the last comma.

I am not sure it is faster than a macro counter, but since I like lispy, it is a nice solution for me.

  • There is also the builtin string-join (which takes its arguments in the opposite order), if you don't have s installed. – Omar Aug 31 '18 at 21:10
  • @Omar string-join is built-in, but it requires (eval-when-compile (require 'subr-x)). Just like loop requires (eval-when-compile (require 'cl)) (though cl-loop from cl-lib.el is generally preferred to loop from cl.el; see (cl) Organization). – Basil Aug 31 '18 at 21:37

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