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问题:确定整数是否在其他两个整数之间?
回答 0
回答 1
回答 2
回答 3
回答 4
回答 5
回答 6
回答 7
回答 8
回答 9
回答 10

问题:确定整数是否在其他两个整数之间?

如何确定给定的整数是否在其他两个整数之间(例如,大于/等于10000和小于/等于30000)?

我正在使用2.3 IDLE,到目前为止,我一直没有尝试:

if number >= 10000 and number >= 30000:
    print ("you have to pay 5% taxes")
点击查看英文原文

How do I determine whether a given integer is between two other integers (e.g. greater than/equal to 10000 and less than/equal to 30000)?

I’m using 2.3 IDLE and what I’ve attempted so far is not working:

if number >= 10000 and number >= 30000:
    print ("you have to pay 5% taxes")

回答 0

if 10000 <= number <= 30000:
    pass
点击查看英文原文 
if 10000 <= number <= 30000:
    pass

回答 1

>>> r = range(1, 4)
>>> 1 in r
True
>>> 2 in r
True
>>> 3 in r
True
>>> 4 in r
False
>>> 5 in r
False
>>> 0 in r
False
点击查看英文原文 
>>> r = range(1, 4)
>>> 1 in r
True
>>> 2 in r
True
>>> 3 in r
True
>>> 4 in r
False
>>> 5 in r
False
>>> 0 in r
False

回答 2

您的操作员不正确。应该是if number >= 10000 and number <= 30000:。此外,Python的缩写是if 10000 <= number <= 30000:

点击查看英文原文

Your operator is incorrect. Should be if number >= 10000 and number <= 30000:. Additionally, Python has a shorthand for this sort of thing, if 10000 <= number <= 30000:.

回答 3

您的代码段,

if number >= 10000 and number >= 30000:
    print ("you have to pay 5% taxes")

实际检查数字是否同时大于10000和30000。

假设您要检查数字范围在10000-30000之间,可以使用Python间隔比较:

if 10000 <= number <= 30000:
    print ("you have to pay 5% taxes")

Python文档中进一步描述此Python功能。

点击查看英文原文

Your code snippet,

if number >= 10000 and number >= 30000:
    print ("you have to pay 5% taxes")

actually checks if number is larger than both 10000 and 30000.

Assuming you want to check that the number is in the range 10000 – 30000, you could use the Python interval comparison:

if 10000 <= number <= 30000:
    print ("you have to pay 5% taxes")

This Python feature is further described in the Python documentation.

回答 4

if number >= 10000 and number <= 30000:
    print ("you have to pay 5% taxes")
点击查看英文原文 
if number >= 10000 and number <= 30000:
    print ("you have to pay 5% taxes")

回答 5

比较的麻烦在于,当您将一个>=应该放置在<=

#                             v---------- should be <
if number >= 10000 and number >= 30000:
    print ("you have to pay 5% taxes")

Python使您可以用语言写下您的意思

if number in xrange(10000, 30001): # ok you have to remember 30000 + 1 here :)

在Python3中,您需要使用range代替xrange

编辑:人们似乎更关注微基准标记以及如何进行酷链接操作。我的答案是关于防御性(错误的攻击面更少)的编程。

由于评论中有声明,因此我在此处为Python3.5.2添加了微型基准测试

$ python3.5 -m timeit "5 in range(10000, 30000)"
1000000 loops, best of 3: 0.266 usec per loop
$ python3.5 -m timeit "10000 <= 5 < 30000"
10000000 loops, best of 3: 0.0327 usec per loop

如果您担心性能,可以一次计算范围

$ python3.5 -m timeit -s "R=range(10000, 30000)" "5 in R"
10000000 loops, best of 3: 0.0551 usec per loop
点击查看英文原文

The trouble with comparisons is that they can be difficult to debug when you put a >= where there should be a <=

#                             v---------- should be <
if number >= 10000 and number >= 30000:
    print ("you have to pay 5% taxes")

Python lets you just write what you mean in words

if number in xrange(10000, 30001): # ok you have to remember 30000 + 1 here :)

In Python3, you need to use range instead of xrange.

edit: People seem to be more concerned with microbench marks and how cool chaining operations. My answer is about defensive (less attack surface for bugs) programming.

As a result of a claim in the comments, I’ve added the micro benchmark here for Python3.5.2

$ python3.5 -m timeit "5 in range(10000, 30000)"
1000000 loops, best of 3: 0.266 usec per loop
$ python3.5 -m timeit "10000 <= 5 < 30000"
10000000 loops, best of 3: 0.0327 usec per loop

If you are worried about performance, you could compute the range once

$ python3.5 -m timeit -s "R=range(10000, 30000)" "5 in R"
10000000 loops, best of 3: 0.0551 usec per loop

回答 6

定义数字之间的范围:

r = range(1,10)

然后使用它:

if num in r:
    print("All right!")
点击查看英文原文

Define the range between the numbers:

r = range(1,10)

Then use it:

if num in r:
    print("All right!")

回答 7

两种比较三个整数并检查b是否在ac之间的方法

if a < b < c:
    pass

if a < b and b < c:
    pass

第一个看起来更易读,但是第二个运行得更快

让我们使用dis.dis进行比较:

    >>> dis.dis('a < b and b < c')
  1           0 LOAD_NAME                0 (a)
              2 LOAD_NAME                1 (b)
              4 COMPARE_OP               0 (<)
              6 JUMP_IF_FALSE_OR_POP    14
              8 LOAD_NAME                1 (b)
             10 LOAD_NAME                2 (c)
             12 COMPARE_OP               0 (<)
        >>   14 RETURN_VALUE
>>> dis.dis('a < b < c')
  1           0 LOAD_NAME                0 (a)
              2 LOAD_NAME                1 (b)
              4 DUP_TOP
              6 ROT_THREE
              8 COMPARE_OP               0 (<)
             10 JUMP_IF_FALSE_OR_POP    18
             12 LOAD_NAME                2 (c)
             14 COMPARE_OP               0 (<)
             16 RETURN_VALUE
        >>   18 ROT_TWO
             20 POP_TOP
             22 RETURN_VALUE
>>>

并使用timeit

~$ python3 -m timeit "1 < 2 and 2 < 3"
10000000 loops, best of 3: 0.0366 usec per loop

~$ python3 -m timeit "1 < 2 < 3"
10000000 loops, best of 3: 0.0396 usec per loop

此外,您可以按照之前的建议使用range,但是它要慢得多。

点击查看英文原文

There are two ways to compare three integers and check whether b is between a and c:

if a < b < c:
    pass

and

if a < b and b < c:
    pass

The first one looks like more readable, but the second one runs faster.

Let’s compare using dis.dis:

    >>> dis.dis('a < b and b < c')
  1           0 LOAD_NAME                0 (a)
              2 LOAD_NAME                1 (b)
              4 COMPARE_OP               0 (<)
              6 JUMP_IF_FALSE_OR_POP    14
              8 LOAD_NAME                1 (b)
             10 LOAD_NAME                2 (c)
             12 COMPARE_OP               0 (<)
        >>   14 RETURN_VALUE
>>> dis.dis('a < b < c')
  1           0 LOAD_NAME                0 (a)
              2 LOAD_NAME                1 (b)
              4 DUP_TOP
              6 ROT_THREE
              8 COMPARE_OP               0 (<)
             10 JUMP_IF_FALSE_OR_POP    18
             12 LOAD_NAME                2 (c)
             14 COMPARE_OP               0 (<)
             16 RETURN_VALUE
        >>   18 ROT_TWO
             20 POP_TOP
             22 RETURN_VALUE
>>>

and using timeit:

~$ python3 -m timeit "1 < 2 and 2 < 3"
10000000 loops, best of 3: 0.0366 usec per loop

~$ python3 -m timeit "1 < 2 < 3"
10000000 loops, best of 3: 0.0396 usec per loop

also, you may use range, as suggested before, however it is much more slower.

回答 8

假设有3个非负整数:ab,和c。从数学上讲,如果我们想确定是否c介于a和之间b,可以使用以下公式:

(c-a)*(b-c)> = 0

或在Python中:

> print((c - a) * (b - c) >= 0)
True
点击查看英文原文

Suppose there are 3 non-negative integers: a, b, and c. Mathematically speaking, if we want to determine if c is between a and b, inclusively, one can use this formula:

(c – a) * (b – c) >= 0

or in Python:

> print((c - a) * (b - c) >= 0)
True

回答 9

仅当数字介于10,000和30,000之间时,您才希望输出打印给定语句。

代码应该是;

if number >= 10000 and number <= 30000:
    print("you have to pay 5% taxes")
点击查看英文原文

You want the output to print the given statement if and only if the number falls between 10,000 and 30,000.

Code should be;

if number >= 10000 and number <= 30000:
    print("you have to pay 5% taxes")

回答 10

条件应该是

if number == 10000 and number <= 30000:
     print("5% tax payable")

使用的原因number == 10000是,如果number的值是50000,并且我们使用number >= 10000该条件,那么条件将过去,这不是您想要的。

点击查看英文原文

The condition should be,

if number == 10000 and number <= 30000:
     print("5% tax payable")

reason for using number == 10000 is that if number’s value is 50000 and if we use number >= 10000 the condition will pass, which is not what you want.

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