问题描述
我试图测试某个数字的十进制表示是否至少包含数字 9 两次,所以我决定做这样的事情:
i=98759102字符串=str(i)if '9' in string.replace(9, '', 1): print("y")否则:打印(n")
但是 Python 总是以TypeError: Can't convert 'int' object to str隐式"作为响应.
我在这里做错了什么?是否真的有更聪明的方法来检测某个数字在整数的十进制表示中包含的频率?
你的问题在这里:
string.replace(9, '', 1)
您需要使 9
成为字符串文字,而不是整数:
string.replace('9', '', 1)
为了更好地计算字符串中 9
的出现次数,请使用 str.count()
:
I am trying to test if the decimal representation of a certain number contains the digit 9 at least twice, so I decided to do something like that:
i=98759102
string=str(i)
if '9' in string.replace(9, '', 1): print("y")
else: print("n")
But Python always responds with "TypeError: Can't convert 'int' object to str implicitly".
What am I doing wrong here? Is there actually a smarter method to detect how often a certain digit is contained in the decimal representation of an integer?
Your problem is here:
string.replace(9, '', 1)
You need to make 9
a string literal, rather than an integer:
string.replace('9', '', 1)
As for a better way to count the occurrences of 9
in your string, use str.count()
:
>>> i = 98759102
>>> string = str(i)
>>>
>>> if string.count('9') > 2:
print('yes')
else:
print('no')
no
>>>
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