15

is it possible to write a bash script that can read in each line from a file and generate permutations (without repetition) for each? Using awk / perl is fine.

File
----
ab
abc


Output
------
ab
ba
abc
acb
bac
bca
cab
cba
  • 1
    What exactly is the purpose of doing this? – user191776 Oct 2 '10 at 14:20
  • 8
    I like bashing things... :P – siliconpi Oct 4 '10 at 7:46
18

Pure bash (using local, faster, but can't beat the other answer using awk below, or the Python below):

perm() {
  local items="$1"
  local out="$2"
  local i
  [[ "$items" == "" ]] && echo "$out" && return
  for (( i=0; i<${#items}; i++ )) ; do
    perm "${items:0:i}${items:i+1}" "$out${items:i:1}"
  done
  }
while read line ; do perm $line ; done < File

Pure bash (using subshell, much slower):

perm() {
  items="$1"
  out="$2"
  [[ "$items" == "" ]] && echo "$out" && return
  for (( i=0; i<${#items}; i++ )) ; do
    ( perm "${items:0:i}${items:i+1}" "$out${items:i:1}" )
  done
  }
while read line ; do perm $line ; done < File

Since asker mentioned Perl is fine, I think Python 2.6+/3.X is fine, too:

python -c "from itertools import permutations as p ; print('\n'.join([''.join(item) for line in open('File') for item in p(line[:-1])]))"

For Python 2.5+/3.X:

#!/usr/bin/python2.5

# http://stackoverflow.com/questions/104420/how-to-generate-all-permutations-of-a-list-in-python/104436#104436
def all_perms(str):
    if len(str) <=1:
        yield str
    else:
        for perm in all_perms(str[1:]):
            for i in range(len(perm)+1):
                #nb str[0:1] works in both string and list contexts
                yield perm[:i] + str[0:1] + perm[i:]

print('\n'.join([''.join(item) for line in open('File') for item in all_perms(line[:-1])]))

On my computer using a bigger test file:

First Python code
  Python 2.6:     0.038s
  Python 3.1:     0.052s
Second Python code
  Python 2.5/2.6: 0.055s
  Python 3.1:     0.072s
awk:              0.332s
Bash (local):     2.058s
Bash (subshell): 22+s
  • nice bash, but too slow if length gets bigger – ghostdog74 Oct 2 '10 at 15:58
  • Also, you can do math in array slicing without $(()) and you can omit the dollar signs: `( perm "${items:0:i}${items:i+1}" "$out${items:i:1} )" – Paused until further notice. Oct 2 '10 at 16:02
  • 1
    on my computer, awk is always the fastest. – ghostdog74 Oct 2 '10 at 22:20
  • @user131527, what was the Python version you using? If it's 2.5, then that result is incorrect. My original python code doesn't work for 2.5 and 3.1, and it runs slower than awk, but it's incorrect. I have updated the code and they all are much faster than awk. – livibetter Oct 3 '10 at 5:32
  • Awesome - didnt think it was possible! – siliconpi Oct 5 '10 at 9:55
24

I know I am a little late to the game but why not brace expansion?

For example:

echo {a..z}{0..9}

Outputs:

a0 a1 a2 a3 a4 a5 a6 a7 a8 a9 b0 b1 b2 b3 b4 b5 b6 b7 b8 b9 c0 c1 c2 c3 c4 c5 c6 c7 c8 c9 d0 d1 d2 d3 d4 d5 d6 d7 d8 d9 e0 e1 e2 e3 e4 e5 e6 e7 e8 e9 f0 f1 f2 f3 f4 f5 f6 f7 f8 f9 g0 g1 g2 g3 g4 g5 g6 g7 g8 g9 h0 h1 h2 h3 h4 h5 h6 h7 h8 h9 i0 i1 i2 i3 i4 i5 i6 i7 i8 i9 j0 j1 j2 j3 j4 j5 j6 j7 j8 j9 k0 k1 k2 k3 k4 k5 k6 k7 k8 k9 l0 l1 l2 l3 l4 l5 l6 l7 l8 l9 m0 m1 m2 m3 m4 m5 m6 m7 m8 m9 n0 n1 n2 n3 n4 n5 n6 n7 n8 n9 o0 o1 o2 o3 o4 o5 o6 o7 o8 o9 p0 p1 p2 p3 p4 p5 p6 p7 p8 p9 q0 q1 q2 q3 q4 q5 q6 q7 q8 q9 r0 r1 r2 r3 r4 r5 r6 r7 r8 r9 s0 s1 s2 s3 s4 s5 s6 s7 s8 s9 t0 t1 t2 t3 t4 t5 t6 t7 t8 t9 u0 u1 u2 u3 u4 u5 u6 u7 u8 u9 v0 v1 v2 v3 v4 v5 v6 v7 v8 v9 w0 w1 w2 w3 w4 w5 w6 w7 w8 w9 x0 x1 x2 x3 x4 x5 x6 x7 x8 x9 y0 y1 y2 y3 y4 y5 y6 y7 y8 y9 z0 z1 z2 z3 z4 z5 z6 z7 z8 z9

Another useful example:

for X in {a..z}{a..z}{0..9}{0..9}{0..9}
    do echo $X;
done
  • 11
    This is cool, but it creates permutation with repetition (which, coincidentally, is what I came here looking for.) The question seems to be about plain permutations, which don't allow repetition. – SigmaX Feb 20 '15 at 21:03
  • 4
    @SigmaX, then you can pipe the endresult through sort | uniq, e.g. echo {a..z}{0..9} | tr ' ' '\n' | sort | uniq – Aviadisto Jul 11 '18 at 11:43
  • 3
    @Aviadisto That would remove duplicates (if I understand you), but I was concerned with the repetition of elements within each permutation (which is something else). Looking at this answer again, though, I realize that it computes a cross product of two sets, not a permutation. So it neither answers the original question nor what I came looking for! I hope I didn't use this code somewhere important, lol. – SigmaX Jul 12 '18 at 12:29
7

A faster version using awk

function permute(s, st,     i, j, n, tmp) {
    n = split(s, item,//)
    if (st > n) {  print s; return }
    for (i=st; i<=n; i++) {
        if (i != st) {
         tmp = item[st]; item[st] = item[i]; item[i] = tmp
         nextstr = item[1]
         for (j=2; j<=n; j++) nextstr = nextstr delim item[j]
        }else {
          nextstr = s
        }
       permute(nextstr, st+1)
       n = split(s, item, //)
   }
}
{ permute($0,1) }

usage:

$ awk -f permute.awk file
6

Using the crunch util, and bash:

while read a; do crunch 0 0 -p "$a"; done 2> /dev/null < File

Output:

ab
ba
abc
acb
bac
bca
cab
cba

Tutorial here https://pentestlab.blog/2012/07/12/creating-wordlists-with-crunch/

  • @agc yeah, you're right. I didn't do it because man pages are good with examples. Also easy to find googling it. Anyway, I added a simple one with a tutorial link. – jyz May 5 '17 at 22:59
  • @agc, it would be nigh impossible for any code in an answer to improve on the code in the question. If the OP is looking for a strategy for generating permutations, then a reference to something that does just that seems like a good start. – ghoti May 6 '17 at 5:20
  • @ghoti, Re "the code in the question": there isn't any code in the OP, just data: please clarify. – agc May 6 '17 at 5:27
  • @jyz, Added working code that answers Q. We should delete these comments. – agc May 6 '17 at 5:43
5

See the Perl Cookbook for permutation examples. They're word/number oriented but a simple split()/join() on your above example will suffice.

  • Downvoted why ? The OP specifically says Perl is an acceptable solution – Brian Agnew Feb 19 '13 at 9:11
3

Bash word-list/dictionary/permutation generator:

The following Bash code generates 3 character permutation over 0-9, a-z, A-Z. It gives you (10+26+26)^3 = 238,328 words in output.

It's not very scalable as you can see you need to increase the number of for loop to increase characters in combination. It would be much faster to write such thing in assembly or C using recursion to increase speed. The Bash code is only for demonstration.

P.S. You can populate $list variable with list=$(cat input.txt)

#!/bin/bash

list=`echo {0..9} {a..z} {A..Z}`

for c1 in $list
do
        for c2 in $list
        do  
                for c3 in $list
                do  
                         echo $c1$c2$c3
                done
        done
done

SAMPLE OUTPUT:

000
001
002
003
004
005
...
...
...
ZZU
ZZV
ZZW
ZZX
ZZY
ZZZ
[babil@quad[13:27:37][~]> wc -l t.out 
238328 t.out
1
$ ruby -ne '$_.chomp.chars.to_a.permutation{|x| puts x.join}' file # ver 1.9.1
0

Because you can never have enogh cryptic Bash-oneliners:

while read s;do p="$(echo "$s"|sed -e 's/./&,/g' -e 's/,$//')";eval "printf "%s\\\\n" "$(eval 'echo "$(printf "{'"$p"'}%.0s" {0..'"$((${#s}-1))"'})"')"|grep '\(.\)\1*.*\1' -v";echo;done <f

It's pretty fast - at least on my machine here:

$ time while read s;do p="$(echo "$s"|sed -e 's/./&,/g' -e 's/,$//')";eval "printf "%s\\\\n" "$(eval 'echo "$(printf "{'"$p"'}%.0s" {0..'"$((${#s}-1))"'})"')"|grep '\(.\)\1*.*\1' -v";echo;done <f >/dev/null 

real 0m0.021s
user 0m0.000s
sys  0m0.004s

But be aware that this one will eat a lot of memory when you go beyond 8 characters...

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