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I have a sed command which will successfully print lines matching two patterns:

 sed -n '/PAGE 2/,/\x0c/p' filename.txt

What I haven't figured out, is that I want it to print all the lines from the first token, up until the second token. The \x0c token is a record separator on a big flat file, and I need to keep THAT line intact.

In between the two tokens, the data is completely variable, and I do not have a reliable anchor to work with.

[CLARIFICATION] Right now it prints all the lines between /PAGE 2/ and /\x0c/ inclusive. I want it to print /PAGE 2/ up until the next /\x0c/ in the record.

[test data] The /x0c will be at the start of the first line, and the beginning of the last line of this record.

I need to delete the first line of the record, through the line just before the beginning of the next record.

^L20-SEP-2006 01:54:08 PM         Foobars College                          PAGE 2
TERM: 200610               Student Billing Statement                     SUMDATA
99999

Foo bar                                                              R0000000
999 Geese Rural Drive                                           DUE: 15-OCT-2012
Columbus, NE 90210

--------------------------------------------------------------------------------
       Balance equal to or greater than $5000.00    $200.00
       Billing inquiries may be directed to 444/555-1212 or by
       email to bursar@foobar.edu.  Financial Aid inquiries should
       be directed to 444/555-1212 or finaid@foobar.edu.
^L20-SEP-2006 01:54:08 PM         Foobars College                          PAGE 1

[expected result]

 ^L20-SEP-2006 01:54:08 PM         Foobars College                          PAGE 1

There will be multiple such records in the file. I can rely only on the /PAGE 2/ token, and the /x0c/ token.

[solution]:

Following Choruba's lead, I edited his command to:

sed '/PAGE [2-9]/,/\x0c/{/\x0c$/!d}'

The rule in the curly brackets was applying itself to any line containing a ^L and was selectively ignoring them.

share|improve this question
    
I don't understand your question. The rage you use should print all the lines between the starting and the ending line. –  user647772 Nov 1 '12 at 13:09
    
I don't want it to print the ending line. –  avgvstvs Nov 1 '12 at 13:11
    
If you want to delete lines (mentioned in your question), you should be using d command, not the p and -n –  doubleDown Nov 1 '12 at 13:25
    
My ultimate goal is to delete, but I need get the matching part right first, hence why I'm printing. I'm almost to where I need it, will fix when finished. –  avgvstvs Nov 1 '12 at 13:30
1  
Arrghh! Why are you asking us to solve one problem when you really have a different problem? Please post what you're REALLY trying to do, including sample input and expected output. –  Ed Morton Nov 1 '12 at 13:47

4 Answers 4

EDIT: New answer for the new question the OP asked (how to delete records:

Given a file with control-Ls delimiting records and a desire to print specific lines from specific records, just set your record separator to control-L and your field separator to "\n" and print whatever you like. For example, to get the output the OP says he wants from the input he posted would just be:

awk -v RS='^L' -F'\n' 'NR==3{print $1}' file

^L shown here represents a literal control-L, and it's the 3rd record because there's an empty record before te first control-L in the input file.

#

This is the answer to the original question the OP asked:

You want this:

awk '/PAGE 2/ {f=1} /\x0c/{f=0} f' file

but also try these to see the difference (for the future):

awk '/PAGE 2/ {f=1} f; /\x0c/{f=0}' file
awk 'f; /PAGE 2/ {f=1} /\x0c/{f=0}' file

And finally, FYI, The following idioms describe how to select a range of records given a specific pattern to match:

a) Print all records from some pattern:

awk '/pattern/{f=1}f' file

b) Print all records after some pattern:

awk 'f;/pattern/{f=1}' file

c) Print the Nth record after some pattern:

awk 'c&&!--c;/pattern/{c=N}' file

d) Print every record except the Nth record after some pattern:

awk 'c&&!--c{next}/pattern/{c=N}1' file

e) Print the N records after some pattern:

awk 'c&&c--;/pattern/{c=N}' file

f) Print every record except the N records after some pattern:

awk 'c&&c--{next}/pattern/{c=N}1' file

g) Print the N records from some pattern:

awk '/pattern/{c=N}c&&c--' file

I changed the variable name from "f" for "found" to "c" for "count" where appropriate as that's more expressive of what the variable actually IS.

share|improve this answer

Tell sed not to print the line containing the character:

sed -n '/PAGE 2/,/\x0c/{/\x0c/!p}' filename.txt
share|improve this answer
    
This solution is better, but it also neglects printing the first token's line. I do need to hit that line. –  avgvstvs Nov 1 '12 at 13:27
    
Added test data to make this more concise. –  avgvstvs Nov 1 '12 at 13:45
    
@avgvstvs, if this neglects printing the first token's line, does that mean the line matching the first token also matches the second taken? –  doubleDown Nov 1 '12 at 14:00
1  
Sorry, with the posted test data, it incorrectly deletes the first line (I suspect because the {/\x0c/!p} clause looks for ANY linefeed character at all, which the first line WILL contain. So the output strips the first and last line, and leaves everything else. The correct command is sed '/PAGE [2-9]/,/\x0c/{/\x0c$/!d}' –  avgvstvs Nov 1 '12 at 14:16

I think this would do it:

awk '/PAGE 2/{a=1}/\x0c/{a=0}{if(a)print}'
share|improve this answer

In this line, the second sed deletes (d) the last line ($).

sed -n '/^START$/,/^STOP$/p' in.txt | sed '$d'
share|improve this answer
    
Won't that delete the last line from all of the output rather than the last line from each block of output? You'd need | sed '/^STOP$/d' or similar. –  Ed Morton Nov 1 '12 at 13:45
    
That deletes the last line from the first sed, but not within the match space. I posted some test data. –  avgvstvs Nov 1 '12 at 13:49

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