The problem is that the variable cache is not in the scope of the function match. This is not a problem if you only want to read it as in your second example, but if you’re assigning to it, python interprets it as a local variable. If you’re using python 3 you can use the nonlocal keyword to solve this problem – for python 2 there’s no simple workaround, unfortunately.

def f():
    v = 0

    def x():
        return v    #works because v is read from the outer scope

    def y():
        if v == 0:  #fails because the variable v is assigned to below
            v = 1

    #for python3:
    def z():
        nonlocal v  #tell python to search for v in the surrounding scope(s)
        if v == 0:
            v = 1   #works because you declared the variable as nonlocal

The problem is somewhat the same with global variables – you need to use global every time you assign to a global variable, but not for reading it.

A short explanation of the reasons behind that:
The python interpreter compiles all functions into a special object of type function. During this compilation, it checks for all local variables the function creates (for garbage collection etc). These variable names are saved within the function object. As it is perfectly legal to “shadow” an outer scopes variable (create a variable with the same name), any variable that is assigned to and that is not explicitly declared as global (or nonlocal in python3) is assumed to be a local variable.

When the function is executed, the interpreter has to look up every variable reference it encounters. If the variable was found to be local during compilation, it is searched in the functions f_locals dictionary. If it has not been assigned to yet, this raises the exception you encountered. If the variable is not assigned to in the functions scope and thus is not part of its locals, it is looked up in the surrounding scopes – if it is not found there, this raises a similar exception.