问题
I have bash script like the following:
#!/bin/bash
echo "Please enter your username";
read username;
echo "Please enter your password";
read password;
I want that when the user types the password on the terminal, it should not be displayed (or something like *******) should be displayed). How do I achieve this?
回答1:
Just supply -s to your read call like so:
$ read -s PASSWORD
$ echo $PASSWORD
回答2:
Update
In case you want to get fancy by outputting an * for each character they type, you can do something like this (using andreas' read -s solution):
unset password;
while IFS= read -r -s -n1 pass; do
if [[ -z $pass ]]; then
echo
break
else
echo -n '*'
password+=$pass
fi
done
Without being fancy
echo "Please enter your username";
read username;
echo "Please enter your password";
stty -echo
read password;
stty echo
回答3:
for a solution that works without bash or certain features from read you can use stty to disable echo
stty_orig=$(stty -g)
stty -echo
read password
stty $stty_orig
回答4:
Here's a variation on @SiegeX's excellent *-printing solution for bash with support for backspace added; this allows the user to correct their entry with the backspace key (delete key on a Mac), as is typically supported by password prompts:
#!/usr/bin/env bash
password=''
while IFS= read -r -s -n1 char; do
[[ -z $char ]] && { printf '\n'; break; } # ENTER pressed; output \n and break.
if [[ $char == $'\x7f' ]]; then # backspace was pressed
# Remove last char from output variable.
[[ -n $password ]] && password=${password%?}
# Erase '*' to the left.
printf '\b \b'
else
# Add typed char to output variable.
password+=$char
# Print '*' in its stead.
printf '*'
fi
done
Note:
- As for why pressing backspace records character code
0x7f: "In modern systems, the backspace key is often mapped to the delete character (0x7f in ASCII or Unicode)" https://en.wikipedia.org/wiki/Backspace \b \bis needed to give the appearance of deleting the character to the left; just using\bmoves the cursor to the left, but leaves the character intact (nondestructive backspace). By printing a space and moving back again, the character appears to have been erased (thanks, The "backspace" escape character '\b' in C, unexpected behavior?).
In a POSIX-only shell (e.g., sh on Debian and Ubuntu, where sh is dash), use the stty -echo approach (which is suboptimal, because it prints nothing), because the read builtin will not support the -s and -n options.
回答5:
A bit different from (but mostly like) @lesmana's answer
stty -echo
read password
stty echo
simply: hide echo do your stuff show echo
回答6:
Here is a variation of @SiegeX's answer which works with traditional Bourne shell (which has no support for += assignments).
password=''
while IFS= read -r -s -n1 pass; do
if [ -z "$pass" ]; then
echo
break
else
printf '*'
password="$password$pass"
fi
done
回答7:
I always like to use Ansi escape characters:
echo -e "Enter your password: \x1B[8m"
echo -e "\x1B[0m"
8m makes text invisible and 0m resets text to "normal." The -e makes Ansi escapes possible.
The only caveat is that you can still copy and paste the text that is there, so you probably shouldn't use this if you really want security.
It just lets people not look at your passwords when you type them in. Just don't leave your computer on afterwards. :)
NOTE:
The above is platform independent as long as it supports Ansi escape sequences.
However, for another Unix solution, you could simply tell read to not echo the characters...
printf "password: "
let pass $(read -s)
printf "\nhey everyone, the password the user just entered is $pass\n"
回答8:
Get Username and password
Make it more clear to read but put it on a better position over the screen
#!/bin/bash
clear
echo
echo
echo
counter=0
unset username
prompt=" Enter Username:"
while IFS= read -p "$prompt" -r -s -n 1 char
do
if [[ $char == $'\0' ]]; then
break
elif [ $char == $'\x08' ] && [ $counter -gt 0 ]; then
prompt=$'\b \b'
username="${username%?}"
counter=$((counter-1))
elif [ $char == $'\x08' ] && [ $counter -lt 1 ]; then
prompt=''
continue
else
counter=$((counter+1))
prompt="$char"
username+="$char"
fi
done
echo
unset password
prompt=" Enter Password:"
while IFS= read -p "$prompt" -r -s -n 1 char
do
if [[ $char == $'\0' ]]; then
break
elif [ $char == $'\x08' ] && [ $counter -gt 0 ]; then
prompt=$'\b \b'
password="${password%?}"
counter=$((counter-1))
elif [ $char == $'\x08' ] && [ $counter -lt 1 ]; then
echo
prompt=" Enter Password:"
continue
else
counter=$((counter+1))
prompt='*'
password+="$char"
fi
done
来源:https://stackoverflow.com/questions/4316730/hiding-user-input-on-terminal-in-linux-script