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Given a Julia object of composite type, how can one determine its fields?

I know one solution if you're working in the REPL: First you figure out the type of the object via a call to typeof, then enter help mode (?), and then look up the type. Is there a more programmatic way to achieve the same thing?

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  • 5
    a hack that I use: at the REPL, for object x, type x. (that's x followed by a dot .) and then hit TAB once or twice. that asks Julia to autocomplete the command. Julia will then show you the fields of x, assuming that it has any. Jan 17, 2017 at 1:39

2 Answers 2

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For v0.7+

Use fieldnames(x), where x is a DataType. For example, use fieldnames(Date), instead of fieldnames(today()), or else use fieldnames(typeof(today())).

This returns Vector{Symbol} listing the field names in order.

If a field name is myfield, then to retrieve the values in that field use either getfield(x, :myfield), or the shortcut syntax x.myfield.

Another useful and related function to play around with is dump(x).

Before v0.7

Use fieldnames(x), where x is either an instance of the composite type you are interested in, or else a DataType. That is, fieldnames(today()) and fieldnames(Date) are equally valid and have the same output.

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  • If I get the first field of a Struct: fieldnames(s)[1] that will be a Symbol. But I cannot use the result of this expression to get the value of that field like: s.fieldnames(s)[1] although s.:field works. getfield works as expected.
    – karatedog
    Jul 20, 2018 at 20:28
  • s.fieldnames(s)[1], roughly speaking, parses to: find the field literally named fieldnames in s, and then call it as if it is a function with (s) as argument, and then get the first element of the result, ie [1] (which is obviously not what you are trying to do). If you have the actual fieldname stored in some symbol a, then use getfield(s, a). It is true that s.:a also works, but this is not idiomatic Julia, so others will probably have a hard time reading your code. I've updated my answer to try and clear up any ambiguity. Jul 22, 2018 at 22:43
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    above link is broken
    – liang
    Dec 4, 2020 at 8:05
  • @liang updated link Dec 4, 2020 at 10:03
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    N.b. if you want the types of the fields, fieldtypes(T). And if you want both the field names and their types, NamedTuple{fieldnames(T)}(fieldtypes(T)), which for Rational would give (num = Integer, den = Integer). May 8, 2021 at 17:17
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suppose the object is obj,

you can get all the information of its fields with following code snippet:

T = typeof(obj)
for (name, typ) in zip(fieldnames(T), T.types)
    println("type of the fieldname $name is $typ")
end

Here, fieldnames(T) returns the vector of field names and T.types returns the corresponding vector of type of the fields.

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