384

I have this Json

{
    "users": [
        {
            "first": "Stevie",
            "last": "Wonder"
        },
        {
            "first": "Michael",
            "last": "Jackson"
        }
    ]
}

Using jq I'd like to display first and last name serially. Like so -

Stevie Wonder
Michael Jackson

This is how far I have gotten -

jq '.users[].first, .users[].last'

But it displays

"Stevie"
"Michael"
"Wonder"
"Jackson"

Notice the following:

  1. The double quotes that I do not want.
  2. The carriage return that I do not want.
  3. It's jumbled up. My query displays all the first names first, and then all the last names. However, I want first-last, first-last pair.
0

8 Answers 8

519

I recommend using String Interpolation:

jq '.users[] | "\(.first) \(.last)"'

We are piping down the result of .users[] to generate the string ".first .last" using string interpolation. \(foo) syntax is used for string interpolation in jq. So, for the above example, it becomes "Stevie Wonder" (".users[].first .users[].second" working elementwise) and "Michael Jackson".

jq reference: String interpolation

5
  • 15
    this is far better if your data are numbers
    – ozOli
    May 10, 2016 at 15:26
  • 15
    An explanation of the syntax would make this answer more useful. Jun 30, 2020 at 11:47
  • 2
    A good answer should never just have an explanation in a link. Anything can happen to the website that is linked, and then people are left copying code that they don't understand.
    – annedroiid
    Aug 17, 2020 at 15:04
  • 13
    Add -r switch if you don't want the output to be wrapped in quotes.
    – jenda
    Nov 14, 2020 at 17:15
  • 1
    to append name or id with value jq '.[] | "id=\(.id) name=\(.name)"')
    – Adiii
    Dec 23, 2020 at 5:39
322

You can use addition to concatenate strings.

Strings are added by being joined into a larger string.

jq '.users[] | .first + " " + .last'

The above works when both first and last are string. If you are extracting different datatypes(number and string), then we need to convert to equivalent types. Referring to solution on this question. For example.

jq '.users[] | .first + " " + (.number|tostring)'
4
  • 58
    To eliminate the JSON quotation marks, invoke jq with the -r option, e.g. jq -r '.users[] | .first + " " + .last'
    – peak
    Sep 7, 2015 at 4:41
  • 4
    +1, but for my use case, I'm trying to format two numbers onto the same row. This approach fails because it can't add " " to a number. Eric's answer gives a better result for this case.
    – Synesso
    Nov 26, 2015 at 21:55
  • 9
    @Synesso: (.numA|tostring) + " " + (.numB|tostring) should work. Or use string interpolation instead: "\(.numA) \(.numB)". Aug 3, 2017 at 14:45
  • When I did jq '.users[] | .first + " " + .last', it worked very well, but caused a newline between the value of .first and .last. I changed the " " to "@" and then did a sed 's/@/ /g' on the output to get "John Smith" as the output. Something like this: jq '.users[] | .first + "@" + .last' | sed 's/@/ /g'
    – Bloodysock
    Jul 2, 2019 at 17:07
68
jq '.users[]|.first,.last' | paste - -
0
33

In addition to what others have suggested, I think that two options are worth mentioning.

Print as CSV/TSV

$ cat file.json | jq -r '.users[] | [.first, .last] | @tsv'
Stevie  Wonder
Michael Jackson
cat file.json | jq -r '.users[] | [.first, .last] | @csv'
"Stevie","Wonder"
"Michael","Jackson"

The first expression, .users[], unnests the objects from the outer-most array as in the code given in the question. The next expression, [.first, .last], creates a new array of the values for each input object, and the final expression uses the built-in functions @tsv and @csv to print all input arrays as tab-separated and comma-seperated values, respectively.

Print as JSON values

Similarly, it is possible to construct JSON values again, which is interesting if you just want to keep a subset of the fields:

$ cat file.json | jq -c '.users[] | {first}'
{"first":"Stevie"}
{"first":"Michael"}
19

my approach will be (your json example is not well formed.. guess thats only a sample)

jq '.Front[] | [.Name,.Out,.In,.Groups] | join("|")'  front.json  > output.txt

returns something like this

"new.domain.com-80|8.8.8.8|192.168.2.2:80|192.168.3.29:80 192.168.3.30:80"
"new.domain.com -443|8.8.8.8|192.168.2.2:443|192.168.3.29:443 192.168.3.30:443"

and grep the output with regular expression.

16

While both of the above answers work well if key,value are strings, I had a situation to append a string and integer (jq errors using the above expressions)

Requirement: To construct a url out below json

pradeep@seleniumframework>curl http://192.168.99.103:8500/v1/catalog/service/apache-443 | jq .[0]
  % Total    % Received % Xferd  Average Speed   Time    Time     Time  Current
                                 Dload  Upload   Total   Spent    Left  Speed
100   251  100   251    0     0   155k      0 --:--:-- --:--:-- --:--:--  245k
{
  "Node": "myconsul",
  "Address": "192.168.99.103",
  "ServiceID": "4ce41e90ede4:compassionate_wozniak:443",
  "ServiceName": "apache-443",
  "ServiceTags": [],
  "ServiceAddress": "",
  "ServicePort": 1443,
  "ServiceEnableTagOverride": false,
  "CreateIndex": 45,
  "ModifyIndex": 45
}

Solution:

curl http://192.168.99.103:8500/v1/catalog/service/apache-443 |
jq '.[0] | "http://" + .Address + ":" + "\(.ServicePort)"'
2
  • note that escaping the closing parenthesis is not needed, and would err.
    – nymo
    Jun 30, 2017 at 2:08
  • 2
    @nymo: That's not escaping. \(...) is string interpolation. Here it turns numeric .ServicePort into string. Interpolation could be used in place of the + signs to make this solution shorter. Aug 3, 2017 at 14:41
16

This will produce an array of names

> jq '[ .users[] | (.first + " " + .last) ]' ~/test.json

[
  "Stevie Wonder",
  "Michael Jackson"
]
6

I got pretty close to what I wanted by doing something like this

cat my.json | jq '.my.prefix[] | .primary_key + ":", (.sub.prefix[] | "    - " + .sub_key)' | tr -d '"' 

The output of which is close enough to yaml for me to usually import it into other tools without much problem. (I am still looking for a way to basicallt export a subset of the input json)

1
  • 2
    This sort of works in my case, just drop the | tr -d '"' at the end, and add -r option to jq.
    – user842479
    Feb 15, 2019 at 13:34

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