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I am having problems understanding what my regex in bash shell is doing exactly.

I have the string abcde 12345 67890testing. I want to extract 12345 from this string using sed.

However, using sed -re 's/([0-9]+).*/\1/' on the given string will give me abcde 12345.

Alternatively, using sed -re 's/([\d]+).*/\1/' would actually only extract abcd.

Am I wrong in assuming that the expression [0-9] and [\d] ONLY capture digits? I have no idea how abcd is being captured yet the string 67890 is not. Plus, I want to know why the space is being captured in my first query?

In addition, sed -re 's/^.*([0-9]+).*/\1/' gives me 0. In this instance, I completely do not understand what the regex is doing. I'd thought that the expression ^.*[0-9]+ would only capture the first instance of a string of only numbers? However, it's matching only the last 0.

All in all, I'd like to understand how I am wrong about all these. And how the problem should be solved WITHOUT using [\s] in the regex to isolate the first string of numbers.

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The issue is that your sed command is this: "On each line, find some digits followed by any number of characters, and replace that match with the digits." It's doing what's specified, which is to replace 12345 67890testing with 12345. Instead, you want to replace the initial match with nothing. Unfortunately, as far as I know there's no way to put a non-greedy .*? at the front of a sed expression, and inline Perl or Ruby might be a better option. –  chrylis Feb 9 at 12:14

3 Answers 3

sed -E 's/([0-9]+).*/\1/g'  <<< "$s" 

The above command means: find a sequence of number followed by something and replace it with only the numbers. So it matches 12345 67890testing and replaces it with only 12345.

The final string will be abcd 12345.

If you want to get only 12345 you should use grep.

egrep -o '[0-9]+ ' <<< "$s"

Or with sed you can use:

sed -E 's/[a-zA-Z ]*([0-9]+).*/\1/g'  <<< "$s"

This will drop the letters before the numbers

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For my last attempt, is using the greedy expression .* eating into the rest of the string until it leaves only 0? It seems impossible to use greedy expressions to remove the preceding abcde part of the problem then? –  user3289476 Feb 9 at 12:25
    
If you use .*([0-9]+).* it'll match only the last number because the + means 1 or more so it'll se the minimum. If you know exactly the length of the sequence of numbers you can use .*([0-9]{5}) .* There must be a space between the ) and the . –  daniele Feb 9 at 12:33

You can use:

sed 's/^\([0-9]*\).*$/\1/g' <<< "$s"
12345

OR else modifying your sed:

sed 's/\([0-9]\+\).*/\1/g' <<< "$s"
12345

You need to escape + & ( and ) in sed without extended regex flag (-r OR -E).

WIth -r it will be:

sed -r 's/([0-9]+).*/\1/g' <<< "$s"
12345

UPDATE: You don't really need any external utility for this as you can do this in BASH itself using its regex capabilities:

[[ "$s*" =~ ^([0-9]+) ]] && echo "${BASH_REMATCH[1]}"
12345
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Thank you for the reply. However, using sed -r 's/([0-9]+).*/\1/g' <<< "$s" will yield me abcd 12345 I am unsure as to how it's capturing abcd –  user3289476 Feb 9 at 11:56
    
sed -r 's/([0-9]+).*/\1/g' <<< "$s" gives me 12345 –  anubhava Feb 9 at 12:12
1  
Can you please explain the idea behind using a here string? As far as I understand, that just runs the sed expression on the contents of the Bash variable s, which does not seem helpful. –  chrylis Feb 9 at 12:16
    
Let me ask first why do you think it is not helpful? For one using here-string prevents sub-shell creation. –  anubhava Feb 9 at 12:18

since others already provided the solution with sed, grep, here is the awk code:

echo "abcde 12345 67890testing"|awk '{for (i=1;i<=NF;i++) if ($i~/^[0-9]+$/) print $i}'
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