我想用我存储在SQLite数据库中的数字做一些数学运算。我的查询似乎有效。我的问题是让python将我从数据库中查询过的数字视为数字。
第一个定义从我的数据库中选择一个唯一的行。第二个定义通过我的数据库中的多个行循环,并将它们添加到我想要求和的数字列表中。
当我尝试对数字求和时会出现问题。有人能指出我正确的方向吗?
以下是我的一些代码:
def query_symbol(symbolId):
uniqueId = str(symbolId) + '@' + str(datetime.date.today())
conn = sqlite3.connect('sql/databse.db')
c = conn.cursor()
with conn:
c.execute("SELECT number FROM symbols WHERE uniqueId= ?", (uniqueId,))
return c.fetchall()
def calc(filename):
symbolIds = def_sec.load_symbolIds(filename)
print(len(symbolIds))
list = []
for symbolId in symbolIds:
data = query_symbol(symbolId)
#data = data.replace('()','')
list.append(data)
print(list)
total = sum(list)
print(total)
calc('index_symbolids')
我的错误消息如下所示:
65
[[(13506636000.0,)], [(20156784500.0,)], [(21361120000.0,)], [(4650564600.0,)], [(18572773200.0,)], [(13889340000.0,)], [(21911477100.0,)], [(19014765000.0,)], [(8592582800.0,)], [(12399850600.0,)], [(26021607500.0,)], [(17344514400.0,)], [(28396342200.0,)], [(10444843100.0,)], [(13894385900.0,)], [(26429184100.0,)], [(9193019800.0,)], [(18356516200.0,)], [(13693344800.0,)], [(39135783700.0,)], [(64988933000.0,)], [(52588381800.0,)], [(53514752300.0,)], [(8205312900.0,)], [(18563139800.0,)], [(34542681400.0,)], [(10626282600.0,)], [(14568874300.0,)], [(52083201800.0,)], [(21204153700.0,)], [(13380654000.0,)], [(24821311300.0,)], [(8232241800.0,)], [(148515191500.0,)], [(31669795700.0,)], [(97989223400.0,)], [(135145143799.0,)], [(178696200.0,)], [(9474728600.0,)], [(77661549000.0,)], [(33649778800.0,)], [(10061871500.0,)], [(23682872900.0,)], [(5196629500.0,)], [(54706667400.0,)], [(13934478600.0,)], [(5141383100.0,)], [(81343002200.0,)], [(16173162200.0,)], [(17649907400.0,)], [(32514907200.0,)], [(9783995600.0,)], [(75825589800.0,)], [(6205111500.0,)], [(53908007900.0,)], [(7615559400.0,)], [(17484345800.0,)], [(16072715900.0,)], [(53990182900.0,)], [(25798084100.0,)], [(28311485300.0,)], [(7296894200.0,)], [(19297000000.0,)], [(13271169800.0,)], [(22862203000.0,)]]
Traceback (most recent call last):
File "/Users/michael/atomProjects/calc.py", line 53, in <module>
index_calc('index_symbolids')
File "/Users/michael/atomProjects/calc.py", line 49, in calc
total = sum(list)
TypeError: unsupported operand type(s) for +: 'int' and 'list'
[Finished in 0.822s]
答案 0 :(得分:0)
当我尝试对数字求和时会出现问题。
不,你想要列出清单。
total = sum(map(lambda x: x[0][0], list)
此外,您应该避免将list用作变量,因为它会影响内置list。
答案 1 :(得分:0)
我看到了两个问题。我们来看看您打印出来的list:
[[(13506636000.0,)], [(20156784500.0,)], ... ]
它告诉我的是你有一个嵌套列表列表(例如[(13506636000.0,)])。这表示单行和单列,因为您返回c.fetchall()。在这种情况下,您确定最多返回1行数据,因此我们可以使用c.fetchone()来减少嵌套列表的数量。
接下来,看一下这一行:
data = query_symbol(symbolId)
由于c.fetchone()返回(13506636000.0,),这是1个元素的元组,您可以使用以下技巧来提取数字:
(data,) = query_symbol(symbolId)
把它放在一起:
def query_symbol(symbolId):
uniqueId = '{}@{}'.format(symbolId, datetime.date.today())
with sqlite3.connect('sql/database.db') as conn:
c = conn.execute(
"SELECT number FROM symbols WHERE uniqueId=?",
(uniqueId,))
return c.fetchone()
def calc(filename):
symbolIds = def_sec.load_symbolIds(filename)
print(len(symbolIds))
numbers = []
for symbolId in symbolIds:
(data, ) = query_symbol(symbolId) # instead of `data =`
numbers.append(data)
print(numbers)
total = sum(numbers)
print(total)
calc('index_symbolids')
此时,您应该得到所需的结果。
此更新解释了(data,) =的工作原理。假设您有一个包含3个元素的元组并希望分配给变量a,b,c:
(a, b, c) = (1, 2, 3) # a=1, b=2, c=3
在实践中,我们可以从等号的左侧删除括号:
a, b, c = (1, 2, 3) # a=1, b=2, c=3
对于1元素元组,符号为(1,),而不是(1)(只是1):
data = (1,) # data = (1,), which is the whole tuple
(data,) = (1,) # data = 1, which is what we want
data, = (1,) # data = 1, but the syntax looks kind of wrong
回到你的问题,函数query_symbol()返回一个1元素的元组,因此我们必须使用:
(data,) = query_symbol(symbolId)
data, = query_symbol(symbolId)
我个人喜欢第一种语法,因为第二种看起来像是错误的逗号。