我正在尝试编写一个非常简单的函数来递归搜索可能嵌套的(在极端情况下十层深度)Python字典并返回它从给定键中找到的第一个值。
我无法理解为什么我的代码不适用于嵌套字典。
def _finditem(obj, key):
if key in obj: return obj[key]
for k, v in obj.items():
if isinstance(v,dict):
_finditem(v, key)
print _finditem({"B":{"A":2}},"A")
返回None。
但_finditem({"B":1,"A":2},"A")确实有效,返回2。
我确定这是一个简单的错误,但我找不到它。我觉得在标准库或collections中已经有可能出现这种情况,但我也找不到。
答案 0 :(得分:46)
当你递归时,你需要return _finditem
def _finditem(obj, key):
if key in obj: return obj[key]
for k, v in obj.items():
if isinstance(v,dict):
return _finditem(v, key) #added return statement
要修复实际算法,您需要意识到_finditem如果找不到任何内容则返回None,因此您需要明确检查以防止提前返回:
def _finditem(obj, key):
if key in obj: return obj[key]
for k, v in obj.items():
if isinstance(v,dict):
item = _finditem(v, key)
if item is not None:
return item
当然,如果您的任何词典中包含None值,则会失败。在这种情况下,您可以为此函数设置一个标记object(),如果您没有找到任何内容,则返回该标记 - 然后您可以检查sentinel以了解您是否找到了某些内容或不。
答案 1 :(得分:18)
这是一个搜索包含嵌套字典和列表的字典的函数。它会创建结果值的列表。
def get_recursively(search_dict, field):
"""
Takes a dict with nested lists and dicts,
and searches all dicts for a key of the field
provided.
"""
fields_found = []
for key, value in search_dict.iteritems():
if key == field:
fields_found.append(value)
elif isinstance(value, dict):
results = get_recursively(value, field)
for result in results:
fields_found.append(result)
elif isinstance(value, list):
for item in value:
if isinstance(item, dict):
more_results = get_recursively(item, field)
for another_result in more_results:
fields_found.append(another_result)
return fields_found
答案 2 :(得分:4)
这是一种使用"堆栈"和"stack of iterators" pattern(Gareth Rees的学分):
def search(d, key, default=None):
"""Return a value corresponding to the specified key in the (possibly
nested) dictionary d. If there is no item with that key, return
default.
"""
stack = [iter(d.items())]
while stack:
for k, v in stack[-1]:
if isinstance(v, dict):
stack.append(iter(v.items()))
break
elif k == key:
return v
else:
stack.pop()
return default
print(search({"B": {"A": 2}}, "A"))会打印2。
答案 3 :(得分:0)
由于缺乏声誉,我无法在@mgilston提出的已接受解决方案中添加评论。如果要搜索的密钥在列表中,则该解决方案不起作用。
遍历列表元素并调用递归函数应该扩展功能以在嵌套列表中查找元素:
def _finditem(obj, key):
if key in obj: return obj[key]
for k, v in obj.items():
if isinstance(v,dict):
item = _finditem(v, key)
if item is not None:
return item
elif isinstance(v,list):
for list_item in v:
item = _finditem(list_item, key)
if item is not None:
return item
print(_finditem({"C": {"B": [{"A":2}]}}, "A"))
答案 4 :(得分:0)
我必须创建一个通用版本,该通用版本在包含多个嵌套词典和列表的词典中找到唯一指定的键(指定所需值路径的最小词典)。
对于以下示例,将创建要搜索的目标字典,并使用通配符“ ???”创建键。运行时,它返回值“ D”
def lfind(query_list:List, target_list:List, targ_str:str = "???"):
for tval in target_list:
#print("lfind: tval = {}, query_list[0] = {}".format(tval, query_list[0]))
if isinstance(tval, dict):
val = dfind(query_list[0], tval, targ_str)
if val:
return val
elif tval == query_list[0]:
return tval
def dfind(query_dict:Dict, target_dict:Dict, targ_str:str = "???"):
for key, qval in query_dict.items():
tval = target_dict[key]
#print("dfind: key = {}, qval = {}, tval = {}".format(key, qval, tval))
if isinstance(qval, dict):
val = dfind(qval, tval, targ_str)
if val:
return val
elif isinstance(qval, list):
return lfind(qval, tval, targ_str)
else:
if qval == targ_str:
return tval
if qval != tval:
break
def find(target_dict:Dict, query_dict:Dict):
result = dfind(query_dict, target_dict)
return result
target_dict = {"A":[
{"key1":"A", "key2":{"key3": "B"}},
{"key1":"C", "key2":{"key3": "D"}}]
}
query_dict = {"A":[{"key1":"C", "key2":{"key3": "???"}}]}
result = find(target_dict, query_dict)
print("result = {}".format(result))
答案 5 :(得分:0)
只需尝试使其更短:
def get_recursively(search_dict, field):
if isinstance(search_dict, dict):
if field in search_dict:
return search_dict[field]
for key in search_dict:
item = get_recursively(search_dict[key], field)
if item is not None:
return item
elif isinstance(search_dict, list):
for element in search_dict:
item = get_recursively(element, field)
if item is not None:
return item
return None