In PHP, strings are concatenated together as follows:

$foo = "Hello";
$foo .= " World";

Here, $foo becomes "Hello World".

How is this accomplished in Bash?

  • 1
    foo="Hello" foo=$foo" World" echo $foo this rather worked for "#!/bin/sh" – parasrish Mar 27 at 5:39
  • 1
    What to do if you want HelloWorld without space? – Adi Jul 3 at 16:22

27 Answers 27

up vote 2966 down vote accepted
foo="Hello"
foo="$foo World"
echo $foo
> Hello World

In general to concatenate two variables you can just write them one after another:

a='hello'
b='world'
c="$a$b"
echo $c
> helloworld
  • 251
    Probably good to get in the habit of putting $foo inside the double quotes, for the times when it really does matter. – Cascabel Nov 15 '10 at 7:56
  • 88
    We're taught to always do that because when substitution takes place, spaces will be ignored by the shell, but double quotes will always protect those spaces. – Strawberry Nov 16 '10 at 4:37
  • 53
    Does there have to be a space in your first example? Is it possible to do something like foo="$fooworld"? I would assume not... – nonsensickle Jan 30 '14 at 21:25
  • 280
    @nonsensickle That would look for a variable named fooworld. Disambiguating that is done with braces, as in foo="${foo}world"... – twalberg Mar 7 '14 at 17:29
  • 4
    @JVE999 Yes, that works as well, although in my opinion it's not quite as good for code clarity... But that may just be my preference... There are a couple other ways it can be done as well - the point is making sure the variable name is separated from the non-variable-name parts so that it parses correctly. – twalberg Dec 10 '14 at 3:57

Bash also supports a += operator as shown in the following transcript:

$ A="X Y"
$ A+="Z"
$ echo "$A"
X YZ
  • 38
    This is much better than the accepted answer, thanks! Added "append" as a tag to make this question easier to find. – noamtm Jul 15 '12 at 8:28
  • 2
    Can I use this syntax with the export keyword? e.g. export A+="Z" or maybe the A variable only needs to be exported once? – levesque Mar 20 '14 at 17:13
  • 3
    @levesque: Both :-). Variables only need to be exported once, but export A+=Z works quite nicely as well. – thkala Mar 20 '14 at 17:16
  • 16
    Since this is a bashism, I think it's worth a mention that you should never use #!/bin/sh in a script using this construction. – Score_Under Apr 28 '15 at 16:40
  • 1
    It's specifically and only a plus-equals operator. That is, unlike Javascript, in Bash, echo $A+$B prints "X Y+Z" – phpguru Feb 13 '17 at 19:04
up vote 834 down vote
+50

Bash first

As this question stand specifically for Bash, my first part of the answer would present different ways of doing this properly:

+=: Append to variable

The syntax += may be used in different ways:

Append to string var+=...

(Because I am frugal, I will only use two variables foo and a and then re-use the same in the whole answer. ;-)

a=2
a+=4
echo $a
24

Using the Stack Overflow question syntax,

foo="Hello"
foo+=" World"
echo $foo
Hello World

works fine!

Append to an integer ((var+=...))

variable a is a string, but also an integer

echo $a
24
((a+=12))
echo $a
36

Append to an array var+=(...)

Our a is also an array of only one element.

echo ${a[@]}
36

a+=(18)

echo ${a[@]}
36 18
echo ${a[0]}
36
echo ${a[1]}
18

Note that between parentheses, there is a space separated array. If you want to store a string containing spaces in your array, you have to enclose them:

a+=(one word "hello world!" )
bash: !": event not found

Hmm.. this is not a bug, but a feature... To prevent bash to try to develop !", you could:

a+=(one word "hello world"! 'hello world!' $'hello world\041')

declare -p a
declare -a a='([0]="36" [1]="18" [2]="one" [3]="word" [4]="hello world!" [5]="h
ello world!" [6]="hello world!")'

printf: Re-construct variable using the builtin command

The printf builtin command gives a powerful way of drawing string format. As this is a Bash builtin, there is a option for sending formatted string to a variable instead of printing on stdout:

echo ${a[@]}
36 18 one word hello world! hello world! hello world!

There are seven strings in this array. So we could build a formatted string containing exactly seven positional arguments:

printf -v a "%s./.%s...'%s' '%s', '%s'=='%s'=='%s'" "${a[@]}"
echo $a
36./.18...'one' 'word', 'hello world!'=='hello world!'=='hello world!'

Or we could use one argument format string which will be repeated as many argument submitted...

Note that our a is still an array! Only first element is changed!

declare -p a
declare -a a='([0]="36./.18...'\''one'\'' '\''word'\'', '\''hello world!'\''=='\
''hello world!'\''=='\''hello world!'\''" [1]="18" [2]="one" [3]="word" [4]="hel
lo world!" [5]="hello world!" [6]="hello world!")'

Under bash, when you access a variable name without specifying index, you always address first element only!

So to retrieve our seven field array, we only need to re-set 1st element:

a=36
declare -p a
declare -a a='([0]="36" [1]="18" [2]="one" [3]="word" [4]="hello world!" [5]="he
llo world!" [6]="hello world!")'

One argument format string with many argument passed to:

printf -v a[0] '<%s>\n' "${a[@]}"
echo "$a"
<36>
<18>
<one>
<word>
<hello world!>
<hello world!>
<hello world!>

Using the Stack Overflow question syntax:

foo="Hello"
printf -v foo "%s World" $foo
echo $foo
Hello World

Nota: The use of double-quotes may be useful for manipulating strings that contain spaces, tabulations and/or newlines

printf -v foo "%s World" "$foo"

Shell now

Under POSIX shell, you could not use bashisms, so there is no builtin printf.

Basically

But you could simply do:

foo="Hello"
foo="$foo World"
echo $foo
Hello World

Formatted, using forked printf

If you want to use more sophisticated constructions you have to use a fork (new child process that make the job and return the result via stdout):

foo="Hello"
foo=$(printf "%s World" "$foo")
echo $foo
Hello World

Historically, you could use backticks for retrieving result of a fork:

foo="Hello"
foo=`printf "%s World" "$foo"`
echo $foo
Hello World

But this is not easy for nesting:

foo="Today is: "
foo=$(printf "%s %s" "$foo" "$(date)")
echo $foo
Today is: Sun Aug 4 11:58:23 CEST 2013

with backticks, you have to escape inner forks with backslashes:

foo="Today is: "
foo=`printf "%s %s" "$foo" "\`date\`"`
echo $foo
Today is: Sun Aug 4 11:59:10 CEST 2013
  • 4
    The += operator is also much faster than $a="$a$b" in my tests.. Which makes sense. – Matt Feb 21 '16 at 5:13
  • 7
    This answer is awesome, but I think it's missing the var=${var}.sh example from other answers, which is very useful. – geneorama Jul 20 '16 at 22:29
  • 1
    Is bash the only shell with += operator? I want to see if it is portable enough – dashesy Aug 15 '16 at 15:41
  • 1
    @dashesy no. i'ts surely not the only shell with += operator, but all this ways are bashisms, so not portable! Even you could encounter special bug in case of wrong bash version! – F. Hauri Aug 16 '16 at 6:15

You can do this too:

$ var="myscript"

$ echo $var

myscript


$ var=${var}.sh

$ echo $var

myscript.sh
  • 2
    While no special chars, nor spaces are used, double quotes, quotes and curly brackets are useless: var=myscript;var=$var.sh;echo $var would have same effects (This work under bash, dash, busybox and others). – F. Hauri May 22 '14 at 19:28
bla=hello
laber=kthx
echo "${bla}ohai${laber}bye"

Will output

helloohaikthxbye

This is useful when $blaohai leads to a variable not found error. Or if you have spaces or other special characters in your strings. "${foo}" properly escapes anything you put into it.

  • 3
    Doesn't work. I get "backupstorefolder: command not found" from bash where "backupstorefolder" is the name of a variable. – Zian Choy Aug 4 '13 at 4:41
  • 6
    This helps syntax highlighting quite a bit, and removes some human ambiguity. – Ray Foss Sep 15 '15 at 15:49
foo="Hello "
foo="$foo World"

     

  • 9
    This is the most useful answer for shell scripting. I have found myself the last 30 minutes because I had a space before and after the equal sign!! – Stefan Feb 21 '13 at 10:25
  • 6
    foo="${foo}World" – XXL Sep 14 '16 at 13:43

The way I'd solve the problem is just

$a$b

For example,

a="Hello"
b=" World"
c=$a$b
echo "$c"

which produces

Hello World

If you try to concatenate a string with another string, for example,

a="Hello"
c="$a World"

then echo "$c" will produce

Hello World

with an extra space.

$aWorld

doesn't work, as you may imagine, but

${a}World

produces

HelloWorld
  • 1
    ...hence ${a}\ World produces Hello World – XavierStuvw Feb 12 '17 at 17:59
$ a=hip
$ b=hop
$ ab=$a$b
$ echo $ab
hiphop
$ echo $a$b
hiphop

Yet another approach...

> H="Hello "
> U="$H""universe."
> echo $U
Hello universe.

...and yet yet another one.

> H="Hello "
> U=$H"universe."
> echo $U
Hello universe.
  • 1
    That's what I did, and I found it so much simple and straight-forward than the other answers. Is there a reason nobody on the most voted answers pointed this option out? – quimnuss Jan 6 '16 at 12:03
  • 1
    @quimnuss The fact the strings do not match those used in the OP question might be a good reason. – jlliagre Nov 4 '16 at 10:19
  • 1
    ...and yet yet yet another one: U=${H}universe..... – XavierStuvw Feb 12 '17 at 17:56

If you want to append something like an underscore, use escape (\)

FILEPATH=/opt/myfile

This does not work:

echo $FILEPATH_$DATEX

This works fine:

echo $FILEPATH\\_$DATEX
  • 11
    Or alternatively, ${FILEPATH}_$DATEX. Here {} are used to indicate the boundaries of the variable name. This is appropariate because the underscore is a legal character in variable names, so in your snippet bash actually tries to resolve FILEPATH_, not just $FILEPATH – Nik O'Lai Feb 15 '14 at 18:04
  • 1
    for me I had one variable i.e. $var1 and constant next to this, so echo $var1_costant_traling_part works for me – Indrajeet Gour Jun 28 '16 at 8:44
  • 2
    I guess one needs only one backlash for escaping: echo $a\_$b would do. As hinted in the comment of Nik O'Lai the underscore is a regular character. The handling of white spaces is much more sensitive for strings, echo and concatenation --- one can use \ and read this thread thoroughly as this issue comes back now and then. – XavierStuvw Feb 12 '17 at 17:53

Here is a concise summary of what most answers are talking about.

Let's say we have two variables:

a=hello
b=world

The table below explains the different contexts where we can combine the values of a and b to create a new variable, c.

Context                               | Expression            | Result (value of c)
--------------------------------------+-----------------------+---------------------
Two variables                         | c=$a$b                | helloworld
A variable and a literal              | c=${a}_world          | hello_world
A variable, a literal, with a space   | c=${a}" world"        | hello world
A more complex expression             | c="${a}_one|${b}_2"   | hello_one|world_2
Using += operator (Bash 3.1 or later) | c=$a; c+=$b           | helloworld
Append literal with +=                | c=$a; c+=" world"     | hello world

A few notes:

  • enclosing the RHS of an assignment in double quotes is generally a good practice, though it is quite optional in many cases
  • += is better from a performance standpoint if a big string is being constructed in small increments, especially in a loop
  • use {} around variable names to disambiguate their expansion (as in row 2 in the table above)

See also:

You can concatenate without the quotes. Here is an example:

$Variable1 Open
$Variable2 Systems
$Variable3 $Variable1$Variable2
$echo $Variable3

This last statement would print "OpenSystems" (without quotes).

This is an example of a Bash script:

v1=hello
v2=world
v3="$v1       $v2"
echo $v3            # Output: hello world
echo "$v3"          # Output: hello       world
  • 1
    The syntax of the first block is confusing. What do these $ signs mean? – XavierStuvw Feb 12 '17 at 17:47

The simplest way with quotation marks:

B=Bar
b=bar
var="$B""$b""a"
echo "Hello ""$var"
  • 1
    Too many quotation marks, IMHO. var=$B$b"a"; echo Hello\ $var would do, I believe – XavierStuvw Feb 12 '17 at 17:20
  • I suggest to use all of the quotation marks, cause if you put it everywhere you cannot miss, you dont have to think. – betontalpfa Aug 2 at 10:52

Even if the += operator is now permitted, it has been introduced in Bash 3.1 in 2004.

Any script using this operator on older Bash versions will fail with a "command not found" error if you are lucky, or a "syntax error near unexpected token".

For those who cares about backward compatibility, stick with the older standard Bash concatenation methods, like those mentioned in the chosen answer:

foo="Hello"
foo="$foo World"
echo $foo
> Hello World
  • 1
    Thanks for pointing this out, I was just searching for which version is require for this to work. – Rho Phi May 25 '15 at 21:11

I prefer to use curly brackets ${} for expanding variable in string:

foo="Hello"
foo="${foo} World"
echo $foo
> Hello World

Curly brackets will fit to Continuous string usage:

foo="Hello"
foo="${foo}World"
echo $foo
> HelloWorld

Otherwise using foo = "$fooWorld" will not work.

Safer way:

a="AAAAAAAAAAAA"
b="BBBBBBBBBBBB"
c="CCCCCCCCCCCC"
d="DD DD"
s="${a}${b}${c}${d}"
echo "$s"
AAAAAAAAAAAABBBBBBBBBBBBCCCCCCCCCCCCDD DD

Strings containing spaces can become part of command, use "$XXX" and "${XXX}" to avoid these errors.

Plus take a look at other answer about +=

  • The point of the strings with a space that are read as a command shows up at the point of definition. So d=DD DD would give DD: command not found --- note that is the last DD, rather d that is not found. If all operands are properly formatted and already contain the required spaces, you can simply concatenate with s=${a}${b}${c}${d}; echo $s, with less quote marks. Also you could use \ (escaped whitespace) to avoid these issues --- d=echo\ echo will not launch any echo invocation, whereas d=echo echo will. – XavierStuvw Feb 12 '17 at 17:37

There's one particular case where you should take care:

user=daniel
cat > output.file << EOF
"$user"san
EOF

Will output "daniel"san, and not danielsan, as you might have wanted. In this case you should do instead:

user=daniel
cat > output.file << EOF
${user}san
EOF

If what you are trying to do is to split a string into several lines, you can use a backslash:

$ a="hello\
> world"
$ echo $a
helloworld

With one space in between:

$ a="hello \
> world"
$ echo $a
hello world

This one also adds only one space in between:

$ a="hello \
>      world"
$ echo $a
hello world
  • I'm afraid this is not what was meant – installero Jan 25 '13 at 15:13
var1='hello'
var2='world'
var3=$var1" "$var2 
echo $var3
  • 2
    Also var3=$var1\ $var2 has the same effect – XavierStuvw Feb 12 '17 at 17:14

If it is as your example of adding " World" to the original string, then it can be:

#!/bin/bash

foo="Hello"
foo=$foo" World"
echo $foo

The output:

Hello World

Note that this won't work

foo=HELLO
bar=WORLD
foobar=PREFIX_$foo_$bar

as it seems to drop $foo and leaves you with:

PREFIX_WORLD

but this will work:

foobar=PREFIX_"$foo"_"$bar"

and leave you with the correct output:

PREFIX_HELLO_WORLD

  • 8
    this happens because the underscore is the valid character in variable names, so bash sees foo_ as a variable. When it is necessary to tell bash the exact var name boundaries, the curly braces can be used: PREFIX_${foo}_$bar – Nik O'Lai Feb 15 '14 at 18:00

There are voiced concerns about performance, but no data is offered. Let me suggest a simple test.

(NOTE: date on macOS does not offer nanoseconds, so this must be done on Linux.)

I have created append_test.sh on GitHub with the contents:

#!/bin/bash -e

output(){
    ptime=$ctime;
    ctime=$(date +%s.%N);
    delta=$(bc <<<"$ctime - $ptime");
    printf "%2s. %16s chars  time: %s  delta: %s\n" $n "$(bc <<<"10*(2^$n)")" $ctime $delta;
}

method1(){
    echo 'Method: a="$a$a"'
    for n in {1..32}; do a="$a$a"; output; done
}

method2(){
    echo 'Method: a+="$a"'
    for n in {1..32}; do a+="$a";  output; done
}

ctime=0; a="0123456789"; time method$1

Test 1:

$ ./append_test.sh 1
Method: a="$a$a"
 1.               20 chars  time: 1513640431.861671143  delta: 1513640431.861671143
 2.               40 chars  time: 1513640431.865036344  delta: .003365201
 3.               80 chars  time: 1513640431.868200952  delta: .003164608
 4.              160 chars  time: 1513640431.871273553  delta: .003072601
 5.              320 chars  time: 1513640431.874358253  delta: .003084700
 6.              640 chars  time: 1513640431.877454625  delta: .003096372
 7.             1280 chars  time: 1513640431.880551786  delta: .003097161
 8.             2560 chars  time: 1513640431.883652169  delta: .003100383
 9.             5120 chars  time: 1513640431.886777451  delta: .003125282
10.            10240 chars  time: 1513640431.890066444  delta: .003288993
11.            20480 chars  time: 1513640431.893488326  delta: .003421882
12.            40960 chars  time: 1513640431.897273327  delta: .003785001
13.            81920 chars  time: 1513640431.901740563  delta: .004467236
14.           163840 chars  time: 1513640431.907592388  delta: .005851825
15.           327680 chars  time: 1513640431.916233664  delta: .008641276
16.           655360 chars  time: 1513640431.930577599  delta: .014343935
17.          1310720 chars  time: 1513640431.954343112  delta: .023765513
18.          2621440 chars  time: 1513640431.999438581  delta: .045095469
19.          5242880 chars  time: 1513640432.086792464  delta: .087353883
20.         10485760 chars  time: 1513640432.278492932  delta: .191700468
21.         20971520 chars  time: 1513640432.672274631  delta: .393781699
22.         41943040 chars  time: 1513640433.456406517  delta: .784131886
23.         83886080 chars  time: 1513640435.012385162  delta: 1.555978645
24.        167772160 chars  time: 1513640438.103865613  delta: 3.091480451
25.        335544320 chars  time: 1513640444.267009677  delta: 6.163144064
./append_test.sh: fork: Cannot allocate memory

Test 2:

$ ./append_test.sh 2
Method: a+="$a"
 1.               20 chars  time: 1513640473.460480052  delta: 1513640473.460480052
 2.               40 chars  time: 1513640473.463738638  delta: .003258586
 3.               80 chars  time: 1513640473.466868613  delta: .003129975
 4.              160 chars  time: 1513640473.469948300  delta: .003079687
 5.              320 chars  time: 1513640473.473001255  delta: .003052955
 6.              640 chars  time: 1513640473.476086165  delta: .003084910
 7.             1280 chars  time: 1513640473.479196664  delta: .003110499
 8.             2560 chars  time: 1513640473.482355769  delta: .003159105
 9.             5120 chars  time: 1513640473.485495401  delta: .003139632
10.            10240 chars  time: 1513640473.488655040  delta: .003159639
11.            20480 chars  time: 1513640473.491946159  delta: .003291119
12.            40960 chars  time: 1513640473.495354094  delta: .003407935
13.            81920 chars  time: 1513640473.499138230  delta: .003784136
14.           163840 chars  time: 1513640473.503646917  delta: .004508687
15.           327680 chars  time: 1513640473.509647651  delta: .006000734
16.           655360 chars  time: 1513640473.518517787  delta: .008870136
17.          1310720 chars  time: 1513640473.533228130  delta: .014710343
18.          2621440 chars  time: 1513640473.560111613  delta: .026883483
19.          5242880 chars  time: 1513640473.606959569  delta: .046847956
20.         10485760 chars  time: 1513640473.699051712  delta: .092092143
21.         20971520 chars  time: 1513640473.898097661  delta: .199045949
22.         41943040 chars  time: 1513640474.299620758  delta: .401523097
23.         83886080 chars  time: 1513640475.092311556  delta: .792690798
24.        167772160 chars  time: 1513640476.660698221  delta: 1.568386665
25.        335544320 chars  time: 1513640479.776806227  delta: 3.116108006
./append_test.sh: fork: Cannot allocate memory

The errors indicate that my Bash got up to 335.54432 MB before it crashed. You could change the code from doubling the data to appending a constant to get a more granular graph and failure point. But I think this should give you enough information to decide whether you care. Personally, below 100 MB I don't. Your mileage may vary.

I do it this way when convenient: Use an inline command!

echo "The current time is `date`"
echo "Current User: `echo $USER`"
  • 1
    On 1st line, you could drop a fork by using: date "+The current time is %a %b %d %Y +%T", instead of echo ...$(date). Under recent bash, you could write: printf "The current time is %(%a %b %d %Y +%T)T\n" -1 . – F. Hauri Jul 23 '14 at 22:04

Here is the one through AWK:

$ foo="Hello"
$ foo=$(awk -v var=$foo 'BEGIN{print var" World"}')
$ echo $foo
Hello World
  • 1
    Nice, But I think I could obtain more precision by using Python ! – techno Aug 26 '14 at 9:34

I kind of like making a quick function.

#! /bin/sh -f
function combo() {
    echo $@
}

echo $(combo 'foo''bar')

Yet another way to skin a cat. This time with functions :D

  • Calling a function, that too in a subshell, is too much an overkill for a simple concat. – codeforester Aug 21 at 18:06

I don't know about PHP yet, but this works in Linux Bash. If you don't want to affect it to a variable, you could try this:

read pp;  *# Assumes I will affect Hello to pp*
pp=$( printf $pp ;printf ' World'; printf '!');
echo $pp;

>Hello World!

You could place another variable instead of 'Hello' or '!'. You could concatenate more strings as well.

  • 2
    Using a subshell to do a simple concatenation is way too expensive! – codeforester Mar 20 at 19:58

You can try the below way. When substitution takes place, double quotes will keep the spaces.

var1="Ram "    
var2="Lakshmana" 
echo $var1$var2
or 
echo var1+=$var2 "bash support += operation.

bcsmc2rtese001 [/tmp]$ var1="Ram "  
bcsmc2rtese001 [/tmp]$ var2="Lakshmana"  
bcsmc2rtese001 [/tmp]$ echo $var1$var2  
Ram Lakshmana  

bcsmc2rtese001 [/tmp]$ var1+=$var2  
bcsmc2rtese001 [/tmp]$ echo $var1  
Ram Lakshmana
  • 3
    This is just the same as in other answers. – Nick Volynkin Feb 29 '16 at 8:37

protected by Maxim Mar 20 at 22:58

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