6

I know how to easily generate a list this way :

echo {a,b,c,d}_{0..3}

which will give:

a_0 a_1 a_2 a_3 b_0 b_1 b_2 b_3 c_0 c_1 c_2 c_3 d_0 d_1 d_2 d_3

But how to generate the same list, but with the second brace being expended with an higher priority, to obtain this? :

a_0 b_0 c_0 d_0 a_1 b_1 c_1 d_1 a_2 b_2 c_2 d_2 a_3 b_3 c_3 d_3

Any trick like sorting from the end, or from character n is OK, as long as it fits on one line. I am also using zsh, but something working with bash is fine.

7

That's not implemented, but you could use an ugly hack like

echo $(eval echo \{a,b,c,d\}_{0..3})

to achieve it by actively first evaluating the latter brace and in the second step the first brace.

Keep in mind though that the intermediate step must be small enough to be still parsable by the shell ;-)

0
2

I'd like to add another approach solving this issue with a different hack. It's based on turning the expression, evaluating it then, then turning the result back again:

eval echo $(echo '{a,b,c,d}_{0..3}' | rev | tr '{}' '}{') | rev

results in

a_0 b_0 c_0 d_0 a_1 b_1 c_1 d_1 a_2 b_2 c_2 d_2 a_3 b_3 c_3 d_3

But I'm not sure I can really propose to do this ;-)

2

Not strictly bash-in-house, but

printf "%s\n" {a,b,c,d}_{0..3} | sort -t_ -k2,2n
2

I also found an other solution (zsh only), needlessly complex and therefore interesting:

print {a,b,c,d}_${^=${$+0 1 2 3}}

What is doing zsh here? It starts with last nested brace and:

  • check if $$ exist, so use "0 1 2 3" (operator +)
  • split it into an array (operator =)
  • apply distribution of each element to the string, like brace expansion (operator ^)
  • finally apply expansion of the first brace (because of the lower priority of brace expansion compared to parameter expansion)

Note that I must expand {0..3} myself, as no flag/operator can trigger a preliminary expansion of this kind AFAIK (except eval as explained above).

0
eval echo \{a..d\}_{0..3}

is enough

The first expansion -- by the shell -- is to

{a..d}_0 {a..d}_1 {a..d}_2 {a..d}_3

the second expansion by eval is then

a_0 b_0 c_0 d_0 a_1 b_1 c_1 d_1 a_2 b_2 c_2 d_2 a_3 b_3 c_3 d_3

The result is sent to stdout.

4
  • 1
    It's generally useful to offer some explanation and/or background - eg. in this case what eval does and how it will solve the problem. – Peter Apr 17 '18 at 10:05
  • was an editing problem: had to double the backslashes. Now it should work. Thanks for the comment – Dieter Apr 18 '18 at 11:18
  • Well, so that is the same answer than Alfe – calandoa Apr 24 '18 at 16:23
  • Yes, it is quite the same. An echo is the difference, though. – Dieter Apr 26 '18 at 7:44

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