(在没有导入的二次方程中找到x的值。)每当我运行程序时,Python停在discriminant = (b ** 2) - 4(a * c)并显示TypeError:'int'对象不可调用。怎么了?
#------SquareRootDefinition---------#
def Square_Root(n, x):
if n > 0:
y = (x + n/x) / 2
while x != y:
x = y
return Square_Root(n, x)
else:
if abs(10 ** -7) > abs(n - x ** 2):
return y
elif n == 0:
return 0
else:
return str(int(-n)) + "i"
#----------Quadratic Equation--------------#
a = input("Enter coefficient a: ")
while a == 0:
print "a must not be equal to 0."
a = input("Enter coefficient a: ")
b = input("Enter coefficient b: ")
c = input("Enter coefficient c: ")
def Quadratic(a, b, c):
discriminant = (b ** 2) - 4(a * c)
if discriminant < 0:
print "imaginary"
elif discriminant >= 0:
Sqrt_Disc = Square_Root(discriminant)
First_Root = (-b + Sqrt_Disc) / (2 * a)
Second_Root = (-b - Sqrt_Disc) / (2 * a)
return First_Root, Second_Root
X_1, X_2 = Quadratic(a, b, c)
答案 0 :(得分:8)
4(a * c)不是有效的Python。你的意思是4 * a * c。你可以使用并置并省略数学符号中的乘法符号,但不能用Python(或大多数其他编程语言)。
答案 1 :(得分:5)
您正尝试将4用作功能:
discriminant = (b ** 2) - 4(a * c)
您错过了*:
discriminant = (b ** 2) - 4 * (a * c)
此外,如果您的判别结果低于0,您将获得一个未绑定的本地例外:
>>> X_1, X_2 = Quadratic(2, 1, 1)
imaginary
Traceback (most recent call last):
File "<stdin>", line 1, in <module>
File "<stdin>", line 9, in Quadratic
UnboundLocalError: local variable 'First_Root' referenced before assignment
您需要在那里添加return,或者更好的是,引发异常:
def Quadratic(a, b, c):
discriminant = (b ** 2) - 4(a * c)
if discriminant < 0:
raise ValueError("imaginary")
elif discriminant >= 0:
Sqrt_Disc = Square_Root(discriminant)
First_Root = (-b + Sqrt_Disc) / (2 * a)
Second_Root = (-b - Sqrt_Disc) / (2 * a)
return First_Root, Second_Root
您的Square_Root()功能缺少x的默认值:
def Square_Root(n, x=1):
通过这些更改,您的功能确实有效:
>>> Quadratic(1, 3, -4)
(1, -4)
答案 2 :(得分:3)
您需要执行4 * (a * c)或4 * a * c,因为python认为您正在尝试调用函数4