我有几种有关联值的培训类型。
可能的培训类型:
如果选择培训类型1,如何确定用于计算的关联值对?例如,如果培训类型为1:
small = (220 - 60)*0.5
big = (220 - 60)*0.7
我想知道如何编写代码,以便以后的计算中使用的值根据所选的培训类型而有所不同。
到目前为止我所拥有的是:
training = str(input("Choose training type (1, 2, 3): "))
s1 = 0.5
s2 = 0.7
s3 = 0.8
b1 = 0.7
b2 = 0.8
b3 = 0.88
spulse = "Small pulse: "
bpulse = "Big pulse: "
if training == 1:
small = (220 - 60) * s1
big = (220 - 60) * b1
elif training == 2:
small = (220 - 60) * s2
big = (220 - 60) * b2
elif training == 3:
small = (220 - 60) * s3
big = (220 - 60) * b3
print(spulse + str(small) + bpulse + str(big))
发布于 2017-10-22 23:39:36
在Python3中,input()
函数返回一个字符串(与Python2不同),但是所有的if training == ...
语句都将返回的值与整数进行比较,因此它们总是失败的。若要修复此问题,请更改第一行,如下所示:
#training = str(input("Choose training type (1, 2, 3): ")) # NOT THIS.
training = int(input("Choose training type (1, 2, 3): ")) # Convert to integer.
s1 = 0.5
s2 = 0.7
s3 = 0.8
b1 = 0.7
b2 = 0.8
b3 = 0.88
spulse = "Small pulse: "
bpulse = " Big pulse: "
if training == 1:
small = (220 - 60) * s1
big = (220 - 60) * b1
elif training == 2:
small = (220 - 60) * s2
big = (220 - 60) * b2
elif training == 3:
small = (220 - 60) * s3
big = (220 - 60) * b3
print(spulse + str(small) + bpulse + str(big))
产出:
Small pulse: 80.0 Big pulse: 112.0
更新
最好使用Python字典来实现这一点。这样做--即所谓的“数据驱动”-will,也可以通过添加更多的培训类型和/或具有与每个类型相关的更多值,使调试和扩展变得更容易。我认为它也使代码更加清晰和可读性更强。
这说明了我的意思:
# Dictionary associating each training type to associated values.
training_types = {
"1": {"s": 0.5, "b": 0.7},
"2": {"s": 0.7, "b": 0.8},
"3": {"s": 0.8, "b": 0.88}
}
choice = None
while choice not in training_types:
choice = input("Choose training type (1, 2, or 3): ")
training_type = training_types[choice]
difference = 220 - 60
small = difference * training_type["s"]
big = difference * training_type["b"]
print("Small pulse: {} Big pulse: {}".format(small, big))
发布于 2017-10-22 23:18:10
如果您使用内置的输入函数,您可以这样做:
question=input('Choose type 1 or type 2: ')
if question=='1':
small=(220-60)*0.5
big=(220-60)*0.7
type1_total=small+big
print(type1_total)
结果:
192.0
发布于 2017-10-22 23:26:27
如果将input
转换为int
而不是str
,并且在决策语句之外初始化small
和big
,则代码将正常工作,如下所示:
training = int(input("Choose training type (1, 2, 3): "))
s1 = 0.5
s2 = 0.7
s3 = 0.8
b1 = 0.7
b2 = 0.8
b3 = 0.88
spulse = "Small pulse: "
bpulse = "Big pulse: "
small = 0
big = 0
if training == 1:
small = (220 - 60) * s1
big = (220 -60) * b1
elif training == 2:
small = (220 - 60) * s2
big = (220 -60) * b2
elif training == 3:
small = (220 - 60) * s3
big = (220 -60) * b3
然而,一种替代办法可以是:
value = 220 - 60
type_ = 0
types = {1 : [0.5, 0.7],
2 : [0.7, 0.8],
3 : [0.8, 0.88]}
while type_ not in types:
type_ = int(input("Pick a type: "))
if type_ not in types:
print("Invalid type.")
else:
big = value * types[type_][0]
small = value * types[type_][1]
print("Big = " + str(big))
print("Small = " + str(small))
这样,如果用户在提示符下输入1
作为type_
的值,则输出是:
Big = 80.0
Small = 112.0
但是,如果用户在提示符下输入2
作为type_
的值,则输出如下:
Big = 112.0
Small = 128.0
如果用户在提示符下输入3
作为type_
的值,则输出如下:
Big = 128.0
Small = 140.8
对于输入的任何其他值,输出为print("Invalid type.")
。
https://stackoverflow.com/questions/46880020
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