54

Here is my config.json:

{
    "env": "dev",
    "dev": {
        "projects" : {
            "prj1": {
                "dependencies": {},
                "description": ""
            }
        }
    }
}

Here are my bash commands:

PRJNAME='prj1'

echo $PRJNAME

jq --arg v "$PRJNAME" '.dev.projects."$v"' config.json 
jq '.dev.projects.prj1' config.json

The output:

prj1
null
{
  "dependencies": {},
  "description": ""
}

So $PRJNAME is prj1, but the first invocation only outputs null.

Can someone help me?

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2
  • Have you tried removing the " around $v? Why aren't you using the shell to fill in the variable like jq ".dev.projects.$PRJNAME" config.json?
    – Rambo Ramon
    Jan 12, 2016 at 14:46
  • @RamboRamon, using the shell to fill in the variable is error-prone -- think about if it contains characters like quotes that need to be escaped. jq is guaranteed to generate syntactically valid output.
    – Charles Duffy
    Jan 12, 2016 at 17:45

4 Answers 4

Reset to default
72

The jq program .dev.projects."$v" in your example will literally try to find a key named "$v". Try the following instead:

jq --arg v "$PRJNAME" '.dev.projects[$v]' config.json
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4
  • What if i want to pass 2 or more params ? Can you show me the example ?
    – lisi4ok
    Jan 12, 2016 at 15:32
  • 16
    You can pass more than one argument by using the --arg instruction several times, as in: jq --arg foo 1 --arg bar 2 -n '[$foo, $bar]'
    – user3899165
    Jan 12, 2016 at 15:58
  • 1
    Is it possible to pass multiple components in the arg? eg PRJNAME='.dev.projects.prj1' jq --arg v "$PRJNAME" '[$v]' config.json . Certainly that code doesn't work - it converts the arg to a string surrounded by square brackets, so I'm guessing that it doesn't like the dot notation...
    – lane
    Jan 17, 2018 at 10:38
  • 2
    remove the '' from [$v]
    – datacruncher
    Mar 15, 2019 at 15:55
23

You can use --argjson too when you make your json.

--arg a v       # set variable $a to value <v>;
--argjson a v   # set variable $a to JSON value <v>;
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1
  • 10
    You need to use argjson when passing a number or boolean which you don't want wrapped in quotes.
    – Tom
    Sep 14, 2018 at 10:32
14

As asked in a comment above there's a way to pass multiple argumets. Maybe there's a more elegant way, but it works.

  • If you are sure always all keys needed you can use this:
jq --arg key1 $k1 --arg key2 $k2 --arg key3 $k3 --arg key4 $k4 '.[$key1] | .[$key2] | .[$key3] | .[$key4] '
  • If the key isn't always used you could do it like this:
jq --arg key $k ' if key != "" then .[$key] else . end'
  • If key sometimes refers to an array:
jq --arg key $k ' if type == "array" then .[$key |tonumber] else .[$key] end'

of course you can combine these!

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2
  • This works only for one var, when I try two vars it fails: OUTPUT=$(cat test.json | jq --arg env $ENV --arg app $APP '.[$env] .apps .[$app] .bar')
    – Broshi
    May 20, 2019 at 10:32
  • .[$key |tonumber] was the trick for me, thanks!
    – Ignacio Tomas Crespo
    May 28, 2021 at 11:18
2

you can do this:


    key="dev.projects.prj1"
    filter=".$key"
    cat config.json | jq $filter
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