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I want to uppercase jsut the first character in my string with bash.

foo="bar";

//uppercase first character

echo $foo;

should print "Bar";

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5 Answers 5

up vote 14 down vote accepted
foo="$(tr '[:lower:]' '[:upper:]' <<< ${foo:0:1})${foo:1}"
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It can be done in pure bash with bash-3.2 as well:

# First, get the first character.
fl=${foo:0:1}

# Safety check: it must be a letter :).
if [[ ${fl} == [a-z] ]]; then
    # Now, obtain its octal value using printf (builtin).
    ord=$(printf '%o' "'${fl}")

    # Fun fact: [a-z] maps onto 0141..0172. [A-Z] is 0101..0132.
    # We can use decimal '- 40' to get the expected result!
    ord=$(( ord - 40 ))

    # Finally, map the new value back to a character.
    fl=$(printf '\'${ord})
fi

echo "${fl}${foo:1}"
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One way with sed:

echo "$(echo "$foo" | sed 's/.*/\u&/')"

Prints:

Bar
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2  
doesn't work on MacOS10 Lion sed, sigh, the \u expands to u instead of being an operator. –  vwvan Jun 7 at 1:36
    
@vwvan brew install coreutils gnu-sed and follow the instructions to use the commands without the prefix g. For what it's worth I've never wanted to run the OSX version of these commands since getting the GNU versions. –  Dean Aug 26 at 19:01
    
@vwvan: Yes, sorry, you will need GNU sed in this instance –  Steve Aug 26 at 22:40
    
@Dean: FWIW, I've never wanted to run OSX :-) –  Steve Aug 26 at 22:41
$ foo="bar";
$ foo=`echo ${foo:0:1} | tr  '[a-z]' '[A-Z]'`${foo:1}
$ echo $foo
Bar
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One way with bash:

echo "${foo^}"

prints:

Bar
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3  
Good solution. I think that might only work with Bash 4+? –  Michael Hoffman Sep 19 '12 at 1:44
    
I think you are correct :-) –  Steve Sep 19 '12 at 1:45
    
yeah, i'm on bash 3 –  chovy Sep 19 '12 at 1:45
2  
time to upgrade? –  Steve Sep 19 '12 at 1:50
2  
@jidma No, the problem is that you are using sh instead of bash. –  Michael Hoffman Sep 19 '12 at 3:38

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