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I need help to parse an input like this.

192.168.0.168: 1
192.168.0.158: 0
192.168.0.198: 0
192.168.0.148: 0
192.168.0.158: 1
192.168.0.168: 0

If there is 1 in second column of any ip, I want to delete the row which have 0 in second column and same ip in first column. So my output should be like this.

192.168.0.168: 1
192.168.0.198: 0
192.168.0.148: 0
192.168.0.158: 1

I guess It can be done by using awk, sed etc. but I have no idea how to do that. I hope I could explain my question correctly. Thanks...

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7 Answers 7

up vote 2 down vote accepted

One way:

awk '
    { 
        ips[ $1 ] = ( ips[ $1 ] == 1 ) ? 1 : $2 
    } 
    END { 
        for ( ip in ips ) { 
            print ip, ips[ ip ] 
        } 
    }
' infile

That yields (output could be unordered):

192.168.0.168: 1
192.168.0.198: 0
192.168.0.148: 0
192.168.0.158: 1
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Input:
192.168.0.168: 1
192.168.0.158: 0
192.168.0.198: 0
192.168.0.148: 0
192.168.0.158: 1
192.168.0.168: 0

# Python program

# Note: ip.txt should be in the same location as this python program.
# ip.txt has all ip's we need to parse.

# The idea: we'll get first all ip's with '1' in all_good_ip, 
# and separate ip's with '0' in false_ip
# then, we check if false_ip contain ip's not in all_good_ip, and include it.
# after we just print out our result.

#open file ip.txt in read mode.
with open('ip.txt', 'r') as fh:
    all_good_ip = {}
    false_ip = {}

    # read line by line from file ip.txt
    for line in fh:
        ip = line.split()
        # get all ip's that have '1'
        if eval(ip[1]):
            all_good_ip[ip[0]] = ip[1]
        # get all others that have '0'
        else:
            false_ip[ip[0]] = ip[1]

    # if exist such ip with '0' not in ip with '1', include it.     
    for item in false_ip.keys():
        if item not in all_good_ip.keys():
            all_good_ip[item] = false_ip[item]


# show the result.
for item in all_good_ip.keys():
    print "%s %s" % (item, all_good_ip[item])

HowTo run:
D:\Tests\>python good_ip.py

Output (sorted):
192.168.0.148: 0
192.168.0.158: 1
192.168.0.168: 1
192.168.0.198: 0
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This might work for you (GNU sed):

cat -n file | 
sort -k2,2 -k3,3nr | 
sed ':a;$!N;/^\s*\S*\s*\(\S*\)\s*1\s*\n.*\1/s/\n.*0\s*//;ta;P;D' | 
sort -n | 
sed 's/^\s*\S*\s*//'
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Perl solution:

perl -nae '$h{ $F[0] } += $F[1]
           }{
           print "$k ", $v ? 1 : 0, "\n" while ($k, $v) = each %h'
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A couple of sorts should do:

sort file -r | sort -u -k1,1

The former sort makes sure the lines are ordered so that lines with 1 on the second column will come first for every IP.

The latter sort will keep only the first entry for each IP: -u -> unique, -k1,1 -> first column only.

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To preserve line order you can use same trick that potong's answer uses. First number the lines and with cat -n, and post sort on first column: cat -n infile | sort -k2 -r | sort -u -k2,2 | sort -n | cut -f2-. –  Thor Aug 29 '12 at 10:05
awk '{a[$1]+=$2}END{for(i in a)print i,a[i]}' your_file
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Functional approach (haskell programming language):

-- function that having the two sublists with '0' and '1' ips,
-- filters and puts into   the '1' 
-- sublist all the '0' ips that are not included in '1'

fil [] result = result
fil (x: xs) result | (init x `elem` (map init result)) == False = fil xs (x:result)
            | otherwise = fil xs result


-- function that filters '0' and '1' sublists
getsublist alist character = filter (\x-> (last x) == character) alist



> let a = ["192.168.0.168: 1", "192.168.0.158: 0", "192.168.0.198: 0", "192.168.0.148: 0", "192.168.0.158: 1", "192.168.0.168: 0"]

> let b = getsublist a '0'

> let c = getsublist a '1'

> fil b c

Output:

["192.168.0.148: 0","192.168.0.198: 0","192.168.0.168: 1","192.168.0.158: 1"] 
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