How to find the last field using 'cut'

Without awk ?... But it's so simple with awk:

echo 'maps.google.com' | awk -F. '{print $NF}'

AWK is a way more powerful tool to have in your pocket. -F if for field separator NF is the number of fields (also stands for the index of the last)

You could try something like this:

echo 'maps.google.com' | rev | cut -d'.' -f 1 | rev

Explanation

• rev reverses "maps.google.com" to be moc.elgoog.spam
• cut uses dot (ie '.') as the delimiter, and chooses the first field, which is moc
• lastly, we reverse it again to get com

It is not possible using just cut. Here is a way using grep:

grep -o '[^,]*$'

Replace the comma for other delimiters.

Explanation:

• -o (--only-matching) only outputs the part of the input that matches the pattern (the default is to print the entire line if it contains a match).
• [^,] is a character class that matches any character other than a comma.
• * matches the preceding pattern zero or more time, so [^,]* matches zero or more non‑comma characters.
• $ matches the end of the string.
• Putting this together, the pattern matches zero or more non-comma characters at the end of the string.
• When there are multiple possible matches, grep prefers the one that starts earliest. So the entire last field will be matched.

Full example:

If we have a file called data.csv containing

one,two,three
foo,bar

then grep -o '[^,]*$' < data.csv will output

three
bar

Use a parameter expansion. This is much more efficient than any kind of external command, cut (or grep) included.

data=foo,bar,baz,qux
last=${data##*,}

See BashFAQ #100 for an introduction to native string manipulation in bash.