mirror of
https://github.com/davidhalter/jedi.git
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277 lines
9.9 KiB
Python
277 lines
9.9 KiB
Python
"""
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For dynamic completion.
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Sorry to everyone who is reading this code. Especially the array parts are
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really cryptic and not understandable. It's just a hack, that turned out to be
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working quite good.
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"""
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import parsing
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import evaluate
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import helpers
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import settings
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import debug
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# This is something like the sys.path, but only for searching params. It means
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# that this is the order in which Jedi searches params.
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search_param_modules = ['.']
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search_param_cache = {}
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def search_param_memoize(func):
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"""
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Is only good for search params memoize, respectively the closure,
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because it just caches the input, not the func, like normal memoize does.
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"""
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def wrapper(*args, **kwargs):
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key = (args, frozenset(kwargs.items()))
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if key in search_param_cache:
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return search_param_cache[key]
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else:
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rv = func(*args, **kwargs)
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search_param_cache[key] = rv
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return rv
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return wrapper
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class ParamListener(object):
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"""
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This listener is used to get the params for a function.
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"""
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def __init__(self):
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self.param_possibilities = []
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def execute(self, params):
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self.param_possibilities.append(params)
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def search_params(param):
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"""
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This is a dynamic search for params. If you try to complete a type:
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>>> def func(foo):
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>>> # here is the completion
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>>> foo
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>>> func(1)
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>>> func("")
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It is not known what the type is, because it cannot be guessed with
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recursive madness. Therefore one has to analyse the statements that are
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calling the function, as well as analyzing the incoming params.
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"""
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if not settings.dynamic_params:
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return []
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def get_params_for_module(module):
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"""
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Returns the values of a param, or an empty array.
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"""
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@search_param_memoize
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def get_posibilities(module, func_name):
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try:
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possible_stmts = module.used_names[func_name]
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except KeyError:
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return []
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for stmt in possible_stmts:
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evaluate.follow_statement(stmt)
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return listener.param_possibilities
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result = []
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for params in get_posibilities(module, func_name):
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for p in params:
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if str(p) == param_name:
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result += evaluate.follow_statement(p.parent())
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#print listener.param_possibilities, param, result
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return result
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func = param.get_parent_until(parsing.Function)
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current_module = param.get_parent_until()
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func_name = str(func.name)
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if func_name == '__init__' and isinstance(func.parent(), parsing.Class):
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func_name = str(func.parent().name)
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# get the param name
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if param.assignment_details:
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arr = param.assignment_details[0][1]
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else:
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arr = param.get_assignment_calls()
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offset = 1 if arr[0][0] in ['*', '**'] else 0
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param_name = str(arr[0][offset].name)
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# add the listener
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listener = ParamListener()
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func.listeners.add(listener)
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result = get_params_for_module(current_module)
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# TODO check other modules
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# cleanup: remove the listener; important: should not stick.
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func.listeners.remove(listener)
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return result
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def check_array_additions(array):
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""" Just a mapper function for the internal _check_array_additions """
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if array._array.type not in ['list', 'tuple']:
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# TODO also check for dict updates
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return []
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is_list = array._array.type == 'list'
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current_module = array._array.parent_stmt().get_parent_until()
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res = _check_array_additions(array, current_module, is_list)
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return res
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@evaluate.memoize_default([])
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def _check_array_additions(compare_array, module, is_list):
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"""
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Checks if a `parsing.Array` has "add" statements:
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>>> a = [""]
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>>> a.append(1)
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"""
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if not settings.dynamic_array_additions:
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return []
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def scan_array(arr, search_name):
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""" Returns the function Calls that match func_name """
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result = []
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for sub in arr:
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for s in sub:
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if isinstance(s, parsing.Array):
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result += scan_array(s, search_name)
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elif isinstance(s, parsing.Call):
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n = s.name
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if isinstance(n, parsing.Name) and search_name in n.names:
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result.append(s)
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return result
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def check_calls(calls, add_name):
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result = []
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for c in calls:
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call_path = list(c.generate_call_path())
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separate_index = call_path.index(add_name)
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if not len(call_path) > separate_index + 1:
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# this means that there is no execution -> [].append
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continue
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backtrack_path = iter(call_path[:separate_index])
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position = c.parent_stmt().start_pos
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scope = c.parent_stmt().parent()
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# Special assignments should not be evaluated in this case. This
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# would cause big recursion problems, because in cases like the
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# code of jedi itself, += something is called and this call leads
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# to many other things including params, which are not defined.
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# This would lead again to dynamic param completion, and so on.
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# In the end the definition is needed, and that's not with `+=`.
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settings.evaluate_special_assignments = False
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found = evaluate.follow_call_path(backtrack_path, scope, position)
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settings.evaluate_special_assignments = True
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if not compare_array in found:
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# Check if the original scope is an execution. If it is, one
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# can search for the same statement, that is in the module
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# dict. Executions are somewhat special in jedi, since they
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# literally copy the contents of a function.
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if isinstance(comp_arr_parent, evaluate.Execution):
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found_bases = []
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for f in found:
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base = get_execution_parent(f, parsing.Function)
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found_bases.append(base)
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if comp_arr_parent.base.base_func in found_bases:
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stmt = comp_arr_parent. \
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get_statement_for_position(c.start_pos)
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if stmt is not None:
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if evaluate.follow_statement.push_stmt(stmt):
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# check recursion
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continue
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ass = stmt.get_assignment_calls()
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new_calls = scan_array(ass, add_name)
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#print [c.start_pos for c in new_calls], stmt.start_pos
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result += check_calls(new_calls, add_name)
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evaluate.follow_statement.pop_stmt()
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continue
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params = call_path[separate_index + 1]
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if not params.values:
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continue # no params: just ignore it
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if add_name in ['append', 'add']:
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result += evaluate.follow_call_list(params)
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elif add_name in ['insert']:
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try:
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second_param = params[1]
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except IndexError:
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continue
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else:
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result += evaluate.follow_call_list([second_param])
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elif add_name in ['extend', 'update']:
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iterators = evaluate.follow_call_list(params)
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result += evaluate.get_iterator_types(iterators)
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return result
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def get_execution_parent(element, *stop_classes):
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if isinstance(element, evaluate.Array):
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stmt = element._array.parent_stmt()
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else:
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# must be instance
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stmt = element.var_args.parent_stmt()
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return stmt.get_parent_until(*stop_classes)
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search_names = ['append', 'extend', 'insert'] if is_list else \
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['add', 'update']
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comp_arr_parent = get_execution_parent(compare_array, evaluate.Execution)
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possible_stmts = []
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result = []
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for n in search_names:
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try:
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possible_stmts += module.used_names[n]
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except KeyError:
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continue
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for stmt in possible_stmts:
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ass = stmt.get_assignment_calls()
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result += check_calls(scan_array(ass, n), n)
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return result
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def check_array_instances(instance):
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if not settings.dynamic_arrays_instances:
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return instance.var_args
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ai = ArrayInstance(instance)
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return helpers.generate_param_array([ai], instance.var_args.parent_stmt())
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class ArrayInstance(parsing.Base):
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"""
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Used for the usage of set() and list().
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This is definitely a hack, but a good one :-)
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It makes it possible to use set/list conversions.
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"""
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def __init__(self, instance):
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self.instance = instance
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self.var_args = instance.var_args
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def iter_content(self):
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"""
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The index is here just ignored, because of all the appends, etc.
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lists/sets are too complicated too handle that.
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"""
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items = []
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for array in evaluate.follow_call_list(self.var_args):
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if isinstance(array, evaluate.Instance) and len(array.var_args):
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temp = array.var_args[0][0]
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if isinstance(temp, ArrayInstance):
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# prevent recursions
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# TODO compare Modules
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if self.var_args.start_pos != temp.var_args.start_pos:
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items += temp.iter_content()
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else:
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debug.warning('ArrayInstance recursion', self.var_args)
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continue
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items += evaluate.get_iterator_types([array])
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module = self.var_args.parent_stmt().get_parent_until()
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is_list = str(self.instance.name) == 'list'
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items += _check_array_additions(self.instance, module, is_list)
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return items
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