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I am new at AWK programming and I was wondering how to filter the following text:

Goedel - Declarative language for AI, based on many-sorted logic.  Strongly
typed, polymorphic, declarative, with a module system.  Supports bignums
and sets.  "The Goedel Programming Language", P. M. Hill et al, MIT Press
1994, ISBN 0-262-08229-2.  Goedel 1.4 - partial implementation in SICStus
Prolog 2.1.
ftp://ftp.cs.bris.ac.uk/goedel
info: goedel@compsci.bristol.ac.uk

Just to print this:

Goedel

I have used the following sentence but it just does not work as I wished:

awk -F " - " "/ - /{ print $1 }"

It shows the following:

Goedel
1994, ISBN 0-262-08229-2.  Goedel 1.4

Could somebody tell me what I have to modify so I can get what I want?

Thanks in advance

share|improve this question
    
(Relevant background: "Print just some columns in awk" on Stack Overflow.) – ruakh Aug 12 '13 at 6:13
1  
Given what you've told us so far we could write a script that just does awk 'BEGIN{print "Goedel"}' and it'd satisfy your requirements. Tells us more and possibly supply more input/output. Do you just want the first word of the file, the first word before a -, the first word that starts with a capital letter, the second word from a quoted string, the first word that appears twice, the last word from the ftp line capitalized, the leading part of an email address capitalized, or something else? – Ed Morton Aug 12 '13 at 11:13
    
Your script prints anything before " - " just like you specified. If your specification doesn't match what you actually want, work on the specification, not the software. – tripleee Aug 12 '13 at 11:42
    
Another related question by the same user: How to filter columns in awk? In fact, this question is basically asking the same thing as the previous one. – Jonathan Leffler Aug 14 '13 at 19:19
    
Since your sample input data doesn't include Goedel, how does it appear in the output? – Jonathan Leffler Aug 14 '13 at 19:21
up vote 0 down vote accepted

awk 'BEGIN { RS = "" } { print $1 }' your_file.txt

which means: splits string into paragraphs by empty line, and then splits words by the default separator (space), and finally print the first word ($1) of every paragraph

share|improve this answer
    
@JonathanLeffler you're right, the cat is useless – Alec Aug 12 '13 at 4:40
    
Thanks @Alec but I have many parragraphs just as that one in the same txt file, how would that line parse just the first word of each parragraph of the file? Thanks in advance! – Mike Pérez Aug 12 '13 at 5:50
    
@MikePérez modified to meet your needs – Alec Aug 12 '13 at 5:56
    
Thanks @Alec, although I cannot filter as I wished. It helped parse the parragraphs similar to that but not all of them. – Mike Pérez Aug 14 '13 at 19:17

this one-liner could work for your requirement:

awk -F ' - ' 'NF>1{print $1;exit}'
share|improve this answer
awk -F ' - ' ' { if (FNR % 4 == 1) next; print $1; }'

If the format is exactly the same as below, then the code above should work:

1 Author - ...
2 Year ...
3 URL
4 Extra info ...
5 Author - ...
6..N etc.

If there is a blank line between entries, you can set RS to a null string and $1 will be the author as long as the value for -F (the FS variable in an awk script) is the same. This has the advantage that if you don't have "info: ..." or a URL, you can still distinguish between entries, assuming it is not "Author - ...{newline}Year ...{newline}{newline}info: ...{newline}{newline}Author - ..." (you can't have an empty line between parts of an entry if an empty line is what separates entries.) For example:

# A blank line is what separates each entry.
BEGIN { RS = ""; }

{ print $1; }

If you have an awk that supports it, you can make RS a multiple character string if necessary (e.g. RS = "\n--\n" for entries separated by "--" on a line by itself). If you need a regex or simply don't have an awk that supports multiple character record separators, you're forced to use something like the following:

BEGIN { found_sep = 1; }

{ if (found_sep) { print $1; found_sep = 0; } }

# Entry separator is "--\n"
/^--$/ { found_sep = 1; }

More sample input will be required for something more complicated.

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