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In Python:

a = "l[0], l[1], l[2], l[3]"
# l[0] etc. have their own value

my_function(a) #doesn't work


#but this does work
my_function(l[0], l[1], l[2], l[3])

Can the string a be 'transformed' so that the function sees the variables? Thank you.

Later update: Thank you for answering my question. I am including the bigger problem and why I had to resort to the eval function (not desired according to your answers). The function:

class Line(object):
def __init__(self, pt1, pt2, *pt):
    pt1 = Point(pt1[0],pt1[1])
    pt2 = Point(pt2[0],pt2[1])
    self.vertices = [pt1, pt2]
    for i in pt:
        self.vertices.append(Point(i[0],i[1]))

def __getitem__(self, key):
    pt = self.vertices[key]
    p = Point(p[0],p[1])
    return p

#Here is the part with the issue:

def move(self, dx, dy):
    pts = len(self.vertices)
    l = self.vertices

    pt1 = Point(Point(l[0].x, l[0].y).move(dx, dy).x, Point(l[0].x, l[0].y).move(dx, dy).y)
    pt2 = Point(Point(l[1].x, l[1].y).move(dx, dy).x, Point(l[1].x, l[1].y).move(dx, dy).y)
    if pts == 2:
        mv = LineString(p1, p2)
    if pts > 2:
        bla = ''
        for i in [2,pts]:
            px = Point(l[i].x, l[i].y).move(dx, dy).x
            py = Point(l[i].x, l[i].y).move(dx, dy).y
            l[i] = Point(px,py)
            bla += 'l[' + str(i) + '], '
            arguments = bla[:-2]
            mv = LineString(pt1, pt2, *eval(arguments))
    return mv

According to your answers, there are better ways of solving this..

share|improve this question
    
It is unclear what you are asking. What is the value of the string and how is your function defined? –  Raufio Mar 3 '13 at 9:51
    
I edited your question to make it clearer - hoping I've understood you correctly. –  Tim Pietzcker Mar 3 '13 at 9:52
    
Also, what you appear to be doing is looking like a terrible idea - what is the goal you're trying to achieve? And, even more importantly, who controls the content of the string? –  Tim Pietzcker Mar 3 '13 at 9:54
2  
You shouldn't be doing this - there's got to be a bad design decision somewhere else if that's something you need to do. –  Thomas Orozco Mar 3 '13 at 9:54
    
@TimPietzcker Yes, you've understood correctly, thank you –  Tudor Mar 3 '13 at 17:22
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3 Answers

up vote 3 down vote accepted

To do this, you can combine the eval function to evaluate the string with the * operator to apply my_function on the resulting tuple:

my_function(*eval(a))

However, doing this without a very good reason is almost always an indication of bad design. eval makes your code vulnerable to run-time errors and code injection attacks, and removes important performance optimizations. If you describe your actual requirements, it is likely that someone can propose a better solution.

share|improve this answer
1  
You should alert @Tudor that "eval() is evil". –  Tim Pietzcker Mar 3 '13 at 9:55
    
@TimPietzcker yeah yeah I was just typing it up... –  user4815162342 Mar 3 '13 at 9:56
    
Downvoter, care to suggest how the answer could be improved? –  user4815162342 Mar 5 '13 at 12:38
    
@user4815162342 I precise I'm not the downvoter. Your answer deserves to be accepted because you precisely answer to the concern of the OP and he is satisfied by the clear up. I've even just upvoted your answer, you will be able to verify this by the timestamps –  eyquem Mar 5 '13 at 14:36
    
@user4815162342 And now your rep has just passed 9000 :) –  eyquem Mar 5 '13 at 14:40
show 1 more comment

You had an XY problem.
Your real X problem was to pass an arbitrary number of objects to a function.
After having defined a string containing the identifiers of these objects, the Y solution to extract back the objects from this string became your graal.
But I'm pretty sure that the following snippet answers to your real X problem:

    if pts > 2:
        blal = []
        for i in [2,pts]:
            px = Point(l[i].x, l[i].y).move(dx, dy).x
            py = Point(l[i].x, l[i].y).move(dx, dy).y
            blal.append(Point(px,py))
        mv = LineString(pt1, pt2, *blal)

It's a facility offered by Python to pass arbitrary number of arguments to a function, not present in all programming languages. Would be a pity to complicate one's life , not using it.

I think that new members should be informed, or even prevented, not to upvote and accept answers too rapidly.

EDIT

I think that you can replace the code block in your question with this one:

from itertools import chain

class Line(object):
    def __init__(self, pt1, pt2, *pt):
        self.vertices = map(lambda x: Point(*x),
                            chain((pt1,pt2), pt))

    def __getitem__(self, key):
        return Point(*self.vertices[key])

    def move(self, dx, dy):
        return LineString(*[ Point(Point(v.x, v.y).move(dx, dy).x,
                                   Point(v.x, v.y).move(dx, dy).y)
                             for v in self.vertices])   

You could even define Point() in such a way that it would accept a couple (tuple, list... , I dont't know what your pts are) instead of elements of pt
So, you could write Point(x) instead of Point(*x) and

self.vertices = map(Point, chain((pt1,pt2), pt))

instead of

self.vertices = map(lambda x: Point(*x),
                    chain((pt1,pt2), pt))

but would need to write Point((v.x,v.y)) instead of Point(v.x,v.y)

share|improve this answer
    
I did had a XY problem but I also wanted to find out the answer to my 'exact' question. mv in your answer is not correctly idented (- four spaces) –  Tudor Mar 5 '13 at 8:13
    
Godd point wanting to clear up all aspects. - I realize that a comment under your question gave the principle of my answer. However, I had thought about it before I've just seen this comment but I couldn't post the answer all yesterday. –  eyquem Mar 5 '13 at 11:17
    
Note that map(lambda x: Point(*x), chain((pt1,pt2), pt)) is somewhat more idiomatically written as [Point(*x) for x in chain((pt1, pt2), pt)]. –  user4815162342 Mar 5 '13 at 15:32
    
user4815162342 Yes, and the list comp. is more readable, for me. But I think that the expression with a lambda function executes faster. It should be verified, though, –  eyquem Mar 5 '13 at 19:17
add comment

Python methods take arbitrary argument lists. What this means is that your function can take any number of arguments.

Here is an example:

def foo(*args, **kwargs):
   print args

foo('a','b','c','d')

Now, suppose you wanted to pass a list with values in it as arguments:

mylist = ['a','b','c','d']
foo(mylist)

Now this will result in:

(['a', 'b', 'c', 'd'],)

A tuple with your list as the first argument. What we want is the same affect as foo('a','b','c','d'). To get that, we need to expand the list, like this:

foo(*mylist)

Now you'll get the same result:

('a', 'b', 'c', 'd')

Taking this and applying it to your problem:

def foo(*args, **kwargs):
   print "Total arguments: {}".format(len(args))

v = "a, b, c"
>>> foo(v)
Total arguments: 1
>>> foo(*v.split(','))
Total arguments: 3
share|improve this answer
    
Nice little answer, but 1) it doesn't answer the question 2) A TUPLE HAS NO "argument" BUT ELEMENTS 3) do we want affect or effect ? –  eyquem Mar 3 '13 at 17:39
    
The edit of your answer, with v = "a, b, c" puzzles me. It doesn't answer more to the question, which is in fact : how to extract several objects whose identifiers are present in a string. Doing foo("l[0], l[1], l[2], l[3]") doesn't passes objects l[0] , l[1] , l[2] but doing foo(*"l[0], l[1], l[2], l[3]".split(',')) doesn't passes more these objects. 1] It still passes the individual identifiers extracted from the string, still not the objects 2] but it even doesn't extract them precisely, for example ' l[1]' is extracted –  eyquem Mar 3 '13 at 18:33
    
@eyquem should we change the question to: "how to extract several objects whose identifiers are present in a string"? –  Tudor Mar 3 '13 at 18:40
    
By the way, reading the update of the question, it is clear that the OP hasn't a problem with the ability of the function to receive several arguments: the __init__ function is defined as def __init__(self, pt1, pt2, *pt):. This corroborates my feeling that you were off the question, and from the start since your answer began with "Python methods take arbitrary argument lists." –  eyquem Mar 3 '13 at 18:42
    
@Tudor You mean "the title" ? –  eyquem Mar 3 '13 at 18:43
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