10

I've got this piece of code:

import inspect
import ast

def func(foo):
    return foo.bar - foo.baz

s = inspect.getsource(func)
xx = ast.parse(s)

class VisitCalls(ast.NodeVisitor):
    def visit_Name(self, what):
        if what.id == 'foo':
            print ast.dump(what.ctx)

VisitCalls().visit(xx)

From function 'func' I'd like to extract:

['foo.bar', 'foo.baz']

or something like:

(('foo', 'bar'), ('foo', 'baz))

edited

Some background to explain why I think I need to do this

I want to convert the code of a trivial python function to a spreadsheet formula.

So I need to convert:

foo.bar - foo.baz

to:

=A1-B1

sample spreadsheet http://img441.imageshack.us/img441/1451/84516405.png

**edited again*

What I've got so far.

The program below outputs:

('A1', 5)
('B1', 3)
('C1', '= A1 - B1')

The code:

import ast, inspect
import codegen # by Armin Ronacher
from collections import OrderedDict

class SpreadSheetFormulaTransformer(ast.NodeTransformer):
    def __init__(self, sym):
        self.sym = sym
    def visit_Attribute(self, node):
        name = self.sym[id(eval(codegen.to_source(node)))]
        return ast.Name(id=name, ctx=ast.Load())

def create(**kwargs):
    class Foo(object): pass
    x = Foo()
    x.__dict__.update(kwargs)
    return x

def register(x,y):
    cell[y] = x
    sym[id(x)] = y

def func(foo):
    return foo.bar - foo.baz

foo = create(bar=5, baz=3)
cell = OrderedDict()
sym = {}

register(foo.bar, 'A1')
register(foo.baz, 'B1')

source = inspect.getsource(func)
tree = ast.parse(source)
guts = tree.body[0].body[0].value
SpreadSheetFormulaTransformer(sym).visit(guts)

code = '= ' + codegen.to_source(guts)
cell['C1'] = code

for x in cell.iteritems():
    print x

I found some resources here: Python internals: Working with Python ASTs I grabbed a working codegen module here.

  • 1
    What are you really trying to accomplish? Once you have the names, what do you need to do? – Ira Baxter Jul 9 '10 at 13:25
  • @Ira: I edited the question to give some background. – Eddy Pronk Jul 10 '10 at 12:03
  • So what you're really trying to accomplish is a translation of python code into excel formulas. So it isn't just the names you need; it is the entire structure of the presumably trivial expression. I must admit that I don't understand why it should be hard to access this data from a decent AST module. – Ira Baxter Jul 10 '10 at 14:57
  • and are foo objects under your control, if yes you can achieve all this by simply operator overloading – Anurag Uniyal Jul 11 '10 at 4:32
  • @Ira: I posted an answer with what I got so far. I'm using the ast module. An ast.NodeTransformer can replace parts of the tree. – Eddy Pronk Jul 11 '10 at 10:06
6
import ast, inspect
import codegen # by Armin Ronacher

def func(foo):
    return foo.bar - foo.baz

names = []

class CollectAttributes(ast.NodeVisitor):
    def visit_Attribute(self, node):
        names.append(codegen.to_source(node))

source = inspect.getsource(func)

tree = ast.parse(source)
guts = tree.body[0].body[0].value
CollectAttributes().visit(guts)
print names

output:

['foo.bar', 'foo.baz']
| improve this answer | |
1

I am not sure why you need to retirieve names, a very crude way to get all names and dots in function is

import inspect
import parser
import symbol
import token
import pprint

def func(foo):
    return foo.bar - foo.baz

s = inspect.getsource(func)
st = parser.suite(s)

def search(st):
    if not isinstance(st, list):
        return
    if st[0] in [token.NAME, token.DOT]:
        print st[1],
    else:
        for s in st[1:]:
            search(s)

search(parser.ast2list(st))

output:

def func foo return foo . bar foo . baz

May be you can improve upon that by reading syntax tree more elegantly, I am using parser instead of ast module because i am on python 2.5

| improve this answer | |
  • Thanks. I added some background info to the question. – Eddy Pronk Jul 10 '10 at 11:55
0

I haven't used the new ast module yet, but I've working code that uses the older compiler.ast to achieve something similar:

    def visitGetattr(self, node):
        full_name = [node.attrname]
        parent = node.expr
        while isinstance(parent, compiler.ast.Getattr):
            full_name.append(parent.attrname)
            parent = parent.expr
        if isinstance(parent, compiler.ast.Name):
            full_name.append(parent.name)
            full_name = ".".join(reversed(full_name))
            # do something with full_name
        for c in node.getChildNodes():
            self.visit(c)

Code slightly paraphrased, I may have introduced inadvertent bugs. I hope this gives you the general idea: you need to visit both Name and Getattr nodes and construct dotted names, and also deal with the fact that you'll see all the intermediate values too (e.g. 'foo' and 'foo.bar').

| improve this answer | |
  • Thanks. I'll try to do the same with ast. – Eddy Pronk Jul 10 '10 at 12:07

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