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I have a text file which goes like this :

      125
      126
      127    {
      566
      567
      568
      569       # blah blah
      570    {  #blah blah
      700
      701    {

The numbers are left aligned and the pattern is always the same in the sense increasing and a curly braces at the end .I need to catch just the starting number .The braces are always found and limited to the sequence end .The start of the file is as shown starting with '125'.

In short I need :

      125
      566
      700

What I have come up with :

      grep -A1 '{' | grep -v '{' | grep -oE '(^[0-9]+?)'

but this omits '125' but I overcame by appending a newline at the head and inserting a { .

I hope to reduce this into a single regex.

Suggestions and better algorithms are welcome

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6 Answers 6

up vote 4 down vote accepted
awk 'BEGIN {p=1} p==1 {print $1;p=0} $0~/{/ {p=1}'

Output:
125
566
700

Given the file format above, you could use awk and a variable/flag to keep track on when you find an opening {

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$0~/.*\{.*/ is excessively verbose. An equivalent expression is: /{/ –  William Pursell Jul 10 '12 at 13:32
    
@WilliamPursell thanks, I wasn't sure if it was. –  Karl Nordström Jul 10 '12 at 13:44
sed -n '1p;/{/{
N
s/.*\n\([0-9]\+\).*/\1/p
}' input_file
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Also fails to remove a putative candidate after the number... –  Karl Nordström Jul 10 '12 at 13:00
    
@KarlNordström, thanks, done –  perreal Jul 10 '12 at 13:04

You may need to tweak the regex, but:

awk '!k; { k = !/^ *[0-9]* *{/ }'

This will print the first line and any line following a line that matches the regex ^ *[0-9]* *{ You could probably simplify things and do:

awk '!k;{k=$2!="{"}'

Which will print the first line and any line following a line in which the second field is a single open brace.

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Changing your regexp to what you suggested above would make this a really nice solution –  Karl Nordström Jul 10 '12 at 13:46
    
@Karl, but reducing the regex to match just '{' greatly increases the likelihood of false hits. –  William Pursell Jul 10 '12 at 13:50
    
true, the comment could in principle also contain a '{'. Thanks for the insight –  Karl Nordström Jul 10 '12 at 14:14

I would use awk and a flag to capture the existence of a curly brace and print the next line. Set the flag in the beginning and you'll get the first line.

Untested, but something like:

BEGIN {hasCurly = 1}
{ 
    if(hasCurly) 
        print $1;

    hasCurly = match($2,"^\{");
}
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Here is a pure bash solution:

start=1
while read n rest; do
    if (( start )); then
        printf '%d\n' $n
        start=0
    elif [[ $rest = \{* ]]; then
        start=1
    fi
done < input
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sed will win in code golf competition =) :

sed -n '1p;/{/{n;p}' file

To remove everything after the number use:

sed -n '1{s/\s*\([0-9]\+\).*/\1/;p};/{/{n;s/\s*\([0-9]\+\).*/\1/;p}' file
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1  
If you use the same regex, the awk solution beats sed: awk '!k;{k=!/{/}' –  William Pursell Jul 10 '12 at 12:57
    
This solution does not remove a putative comment after the number... –  Karl Nordström Jul 10 '12 at 13:00
    
@KarlNordström I added the remove command to sed. So now it is pretty long. –  rush Jul 10 '12 at 13:11

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