Python sys.stdin.read()接受输入条件打印提示两次
Python sys.stdin.read() accept input condition print prompt twice
我编写了一个函数,它接受一个字符(不点击 enter),并检查验证和 returns 按下的键。但问题是,如果值不匹配,我正在打印的提示打印了两次。这是我的代码。
def accept_input():
while True:
print "Type Y to continue, ctrl-c to exit"
ch = sys.stdin.read(1)
if ch != "Y":
pass
else:
return ch
当调用accept_input()时,当有不匹配的字符时打印提示两次,如果输入为空则打印一次。
python accept_input.py
Type Y to continue, ctrl-c to exit
a
Type Y to continue, ctrl-c to exit
Type Y to continue, ctrl-c to exit
b
Type Y to continue, ctrl-c to exit
Type Y to continue, ctrl-c to exit
c
Type Y to continue, ctrl-c to exit
Type Y to continue, ctrl-c to exit
Type Y to continue, ctrl-c to exit
Type Y to continue, ctrl-c to exit
Y
accepted
为什么输入任何不匹配的键都打印两次,为什么输入空白键只打印一次?
谢谢。
那是因为在 a 之后你也按下了 \n...所以 2 characters.You 可以改为清除缓冲区。
def accept_input():
import sys
while True:
print "Type Y to continue, ctrl-c to exit"
ch = sys.stdin.read(1)
sys.stdin.flush() #<===========
if ch != "Y":
pass
else:
return ch
我编写了一个函数,它接受一个字符(不点击 enter),并检查验证和 returns 按下的键。但问题是,如果值不匹配,我正在打印的提示打印了两次。这是我的代码。
def accept_input():
while True:
print "Type Y to continue, ctrl-c to exit"
ch = sys.stdin.read(1)
if ch != "Y":
pass
else:
return ch
当调用accept_input()时,当有不匹配的字符时打印提示两次,如果输入为空则打印一次。
python accept_input.py
Type Y to continue, ctrl-c to exit
a
Type Y to continue, ctrl-c to exit
Type Y to continue, ctrl-c to exit
b
Type Y to continue, ctrl-c to exit
Type Y to continue, ctrl-c to exit
c
Type Y to continue, ctrl-c to exit
Type Y to continue, ctrl-c to exit
Type Y to continue, ctrl-c to exit
Type Y to continue, ctrl-c to exit
Y
accepted
为什么输入任何不匹配的键都打印两次,为什么输入空白键只打印一次?
谢谢。
那是因为在 a 之后你也按下了 \n...所以 2 characters.You 可以改为清除缓冲区。
def accept_input():
import sys
while True:
print "Type Y to continue, ctrl-c to exit"
ch = sys.stdin.read(1)
sys.stdin.flush() #<===========
if ch != "Y":
pass
else:
return ch