-1

I have a file with following format:

$ cat file    
# blah01
# blah02
# blah03
value01 value02
.
.
valueN1 valueN2
# blah04
# blah05
# blah06
value03 value04
.
.
valueN3 valueN4
# blah07
# blah08
# blah09
value05 value06
.
.
valueN7 valueN6

each "blah#" has some information about the data. How can I convert it to the following format?

$cat converted
# blah01 # blah04 # blah07
# blah02 # blah05 # blah08
# blah03 # blah06 # blah09
value01 value02 value03 value04 value05 value06
.
.
valueN1 valueN4 valueN3 valueN4 valueN5 valueN6

***Edited. honestly, I think the question was pretty clear, The first answer guess was also totally correct. Sometimes you are saying something is not clear because you don't like it. But I don't see any real difference between what I have here and what I asked before.

  • 2
    No, this is not clear please provide some more useful samples of input and specially output and let us know in comments then. – RavinderSingh13 Nov 18 '18 at 1:26
  • The information provided in this question is not enough to come up with an answer. – ssemilla Nov 18 '18 at 3:47
  • Are you by any chance trying to process FASTA format? – tripleee Nov 18 '18 at 13:56
2

As others have commented, the question is unclear. You should provide output for this input:

$ cat file
# blah0
# blah1
# blah2
value0 value1
.
.
value2 value3
# blah3
# blah4
# blah5
value4 value5
.
.
value6 value7
# blah6
# blah7
# blah8
value8 value9
.
.
valueA valueB

If I had to make a guess, I'd say the logic may be so:

$ awk '/^#/{t=0;ah[h+0]=ah[h+0]OFS$0;h++} /^[^#]/{h=0;at[t+0]=at[t+0]OFS$0;t++} END{for (i in ah) print (ah[i]);for (i in at) print(at[i]);}' file
# blah0 # blah3 # blah6
# blah1 # blah4 # blah7
# blah2 # blah5 # blah8
value0 value1 value4 value5 value8 value9
. . .
. . .
value2 value3 value6 value7 valueA valueB
|improve this answer|||||

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