148

Given this input:

[
  {
    "Id": "cb94e7a42732b598ad18a8f27454a886c1aa8bbba6167646d8f064cd86191e2b",
    "Names": [
      "condescending_jones",
      "loving_hoover"
    ]
  },
  {
    "Id": "186db739b7509eb0114a09e14bcd16bf637019860d23c4fc20e98cbe068b55aa",
    "Names": [
      "foo_data"
    ]
  },
  {
    "Id": "a4b7e6f5752d8dcb906a5901f7ab82e403b9dff4eaaeebea767a04bac4aada19",
    "Names": [
      "jovial_wozniak"
    ]
  },
  {
    "Id": "76b71c496556912012c20dc3cbd37a54a1f05bffad3d5e92466900a003fbb623",
    "Names": [
      "bar_data"
    ]
  }
]

I'm trying to construct a filter with jq that returns all objects with Ids that do not contain "data" in the inner Names array, with the output being newline-separated. For the above data, the output I'd like is

cb94e7a42732b598ad18a8f27454a886c1aa8bbba6167646d8f064cd86191e2b
a4b7e6f5752d8dcb906a5901f7ab82e403b9dff4eaaeebea767a04bac4aada19

I think I'm somewhat close with this:

(. - select(.Names[] contains("data"))) | .[] .Id

but the select filter is not correct and it doesn't compile (get error: syntax error, unexpected IDENT).

238

Very close! In your select expression, you have to use a pipe (|) before contains.

This filter produces the expected output.

. - map(select(.Names[] | contains ("data"))) | .[] .Id

The jq Cookbook has an example of the syntax.

Filter objects based on the contents of a key

E.g., I only want objects whose genre key contains "house".

$ json='[{"genre":"deep house"}, {"genre": "progressive house"}, {"genre": "dubstep"}]'
$ echo "$json" | jq -c '.[] | select(.genre | contains("house"))'
{"genre":"deep house"}
{"genre":"progressive house"}

Colin D asks how to preserve the JSON structure of the array, so that the final output is a single JSON array rather than a stream of JSON objects.

The simplest way is to wrap the whole expression in an array constructor:

$ echo "$json" | jq -c '[ .[] | select( .genre | contains("house")) ]'
[{"genre":"deep house"},{"genre":"progressive house"}]

You can also use the map function:

$ echo "$json" | jq -c 'map(select(.genre | contains("house")))'
[{"genre":"deep house"},{"genre":"progressive house"}]

map unpacks the input array, applies the filter to every element, and creates a new array. In other words, map(f) is equivalent to [.[]|f].

  • Thanks, works great! I did actually see that example, I just failed at adapting it to my scenario :-) – Abe Voelker Nov 2 '14 at 16:56
  • 1
    Is there anyway to "preserve the json structure of the array"? I like the genre example but it outputs two "json lines". I couldn't figure out the map part necessarily – Colin D Aug 25 '16 at 12:32
  • @ColinD, check my update for two solutions. – Iain Samuel McLean Elder Aug 25 '16 at 14:43
  • 2
    @ColinD I wasn't really happy with the reduce solution, so I replaced it with an explanation of the map function. Does that help? – Iain Samuel McLean Elder Sep 7 '16 at 10:31
  • @IainElder - What happens when the part of the search term (in this case house) is a variable? So say using --args term se. So contains("hou$term") – SnazzyBootMan May 3 '17 at 13:10
9

Here is another solution which uses any/2

map(select(any(.Names[]; contains("data"))|not)|.Id)[]

with the sample data and the -r option it produces

cb94e7a42732b598ad18a8f27454a886c1aa8bbba6167646d8f064cd86191e2b
a4b7e6f5752d8dcb906a5901f7ab82e403b9dff4eaaeebea767a04bac4aada19
  • Exactly what I was looking for - why does this work with a semi-colon .Names[] ; contains() and not with a pipe .Names[] | contains()? – Matt Mar 12 '18 at 18:33
  • 1
    Ah, it's the any(generator; condition) form. I found that without using any() I would end up with duplicates in my results if select() matched more than once on the same object. – Matt Mar 12 '18 at 18:40

Your Answer

By clicking "Post Your Answer", you acknowledge that you have read our updated terms of service, privacy policy and cookie policy, and that your continued use of the website is subject to these policies.

Not the answer you're looking for? Browse other questions tagged or ask your own question.