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How can I access the abstract syntax tree for a generic function in Julia?

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2 Answers 2

up vote 4 down vote accepted

To recap: It looks like Simon was looking for the AST for a specific method associated with a generic function. We can get a LambdaStaticData object, which contains the AST, for a specific method as follows:

julia> f(x,y)=x+y

julia> f0 = methods(f, (Any, Any))[1]
((Any,Any),(),AST(:($(expr(:lambda, {x, y}, {{}, {{x, Any, 0}, {y, Any, 0}}, {}}, quote  # none, line 1:
        return +(x,y)
    end)))),())

julia> f0[3]
AST(:($(expr(:lambda, {x, y}, {{}, {{x, Any, 0}, {y, Any, 0}}, {}}, quote  # none, line 1:
        return +(x,y)
    end))))

julia> typeof(ans)
LambdaStaticData

Apparently this AST can either be an Expr object or a compressed AST object, represented as a sequence of bytes:

julia> typeof(f0[3].ast)
Array{Uint8,1}

The show() method for LambdaStaticData from base/show.jl illustrates how to decompress this, when encountered:

julia> ccall(:jl_uncompress_ast, Any, (Any, Any), f0[3], f0[3].ast)
:($(expr(:lambda, {x, y}, {{}, {{x, Any, 0}, {y, Any, 0}}, {}}, quote  # none, line 1:
        return +(x,y)
    end)))

julia> typeof(ans)
Expr
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Fantastic, thanks. –  Simon Byrne Feb 15 '13 at 17:12

I'm not sure that there is an AST associated with a generic function because of multiple dispatch. If you're writing a function definition fbody, you should be able to get the AST by doing dump(quote(fbody)).

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I've since figured out that you can find the specific method via methods(f,signature). However the AST in that is a Uint8 Array, rather than an Expr object. Any ideas on how I can convert it? –  Simon Byrne Jan 3 '13 at 9:48
    
dump(quote f end) –  Diego Javier Zea Jan 4 '13 at 1:19
    
@DiegoJavierZea do you know how to get the result from dump(quote f end) ? It returns Nothing but prints the AST I'm interested in. –  S4M Nov 24 '13 at 13:46
    
quote f end is the AST already. dump just pretty-prints it. –  John Myles White Nov 24 '13 at 16:57

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