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Hey guys quick question

my file looks like:

L   0   256 *   *   *   *   *
H   0   307 100.0   +   0   0
S   30  351 *   *   *   *   *
D   8   27  *   *   *   *   99.3    
C   11  1   *   *   *   *   *   

for my script I would like to start by awk print $0 for certain lines using $1

Such as

awk '{if ($1!="C") {print $0}  else if ($1!="D") {print $0}}'

But, there has to be a way to combine "C" and "D" into one IF statement... right?

For example if I want to search for == L,H,S ie... NOT C or D how would I right this?

Just curious :D

Thank you

Jonathan

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3 Answers 3

up vote 2 down vote accepted

Your present condition is not correct as both $1!="C" and $1!="D" can't be false at the same time. Hence, it will always print the whole file.

This will do as you described:

awk '{if ($1!="C" && $1!="D") {print $0}}'  file
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Thank you! works too! –  jon_shep Oct 29 '12 at 20:19
    
That explains why it would not work while the same statement with multiples truths worked. My background is biology not CS so I am learning as I go. –  jon_shep Oct 29 '12 at 20:22
    
I guess in biology, it's sometimes possible for impossible things to work. :) –  ghoti Oct 29 '12 at 21:58
awk '$1 ~ /[CD]/' file

awk '$1 ~ /[LHS]/' file

awk '$1 ~ /[^LHS]/' file

awk '$1 !~ /[LHS]/' file
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How come this syntax is so "streamline" or trimmed down? is this style of scripting called something else? If so I like to learn its rules. Thank you! –  jon_shep Oct 29 '12 at 20:18
1  
It's nothing fancy. Awk is made up of <condition> { <action> } segments where you perform the action if the condition is true. There's a default condition of "true" and a default action of "print $0" so all 5 of these expressions are equivalent: '1 == 1 { print $0 }', '{print $0}', '1 == 1', '{print}', '1' and each would simply print the current record. –  Ed Morton Oct 29 '12 at 20:31
    
I understand that ending a expression with / mean {print $0} and that ~ must be equal to == right? but why did you wrap your pattern [x] in / 's ? –  jon_shep Oct 29 '12 at 20:33
    
You misunderstand the meaning of "/" and "~". /../ are the delimiters for a constant regular expression. "~" is the regular expression operator and can be applied to constant REs, or variables containing REs or RE strings. All of those are conditions and so are completely unrelated to {print $0} which is an action. –  Ed Morton Oct 29 '12 at 20:44
1  
I recommend you get the book "Effective Awk Programming, Third Edition By Arnold Robbins" (oreilly.com/catalog/awkprog3) as it explains all of this. In the meantime, while you wait for it to arrive, the text for it is online at gnu.org/software/gawk/manual/gawk.html. –  Ed Morton Oct 29 '12 at 20:47

Using awk, you can provide rules for specific patterns with the syntax

awk 'pattern {action}' file

see the awk manual page for the definition of a pattern. In your case, you could use a regular expression as a pattern with the syntax

awk'/regular expression/ {action}' file

and a basic regular expression which would suit your needs could be

awk '/^[^CD]/ {print $0}' file

which you can actually shorten into

awk '/^[^CD]/' file

since {print $0} is the default action, as suggested in the comments.

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Great explanation, I will work on shortening my syntax. –  jon_shep Oct 29 '12 at 20:20
    
That will only work if there's no spaces before $1. Also, you don't need {print $0} as that's the default action. –  Ed Morton Oct 29 '12 at 20:27
    
Indeed, here /^[^CD]/ translates into : /…/ its a pattern, /^…/ the pattern is at the beginning of the line, /^[^CD]/ the first letter found should not be a C or a D. Therefore, as you say, this will not work in case any character is placed before the C or the D, and this will also filter out any line starting with a word having C or D as its first letter. –  Vincent Nivoliers Oct 29 '12 at 21:11
    
I know there's a lot of awk books and other documentation that ramble on about "pattern"s (some written by the guys who invented the tool!) but they're wrong - the awk body is made up of <condition> { <action> } segments, not <pattern> { <action> } segments, otherwise how do you explain "x > 2 { print }"? "x > 2" is clearly a condition, not a "pattern". In any case, /.../ is an RE, not a pattern and in that context it's short for $0 ~ /.../ which again is a condition, not a pattern either. –  Ed Morton Oct 29 '12 at 21:33
    
You are right. I may have used the term “pattern” improperly. According to the awk manual a “pattern” is what you call a <condition> in your comment. I'll edit my answer taking your remark into account. –  Vincent Nivoliers Oct 29 '12 at 21:38

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