Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

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?

Regards,

JP

share|improve this question
    
General note just to prevent confusion: this username/password has got nothing to do with the linux username/password - I am just looking for a way to hide the data that user types during "read password". –  JP19 Nov 30 '10 at 17:46
    
Thanks SiegeX and Andreas - both solutions work. –  JP19 Nov 30 '10 at 17:51
    
I added an update for if you want to get fancy by outputting * while they type in the password –  SiegeX Nov 30 '10 at 18:09
1  
1  
I don't think it will, bash_history only captures your command, what happens after running your command it doesn't capture. –  SiGanteng Dec 1 '10 at 1:11
show 1 more comment

5 Answers

up vote 32 down vote accepted

Just supply -s to your read call like so:

$ read -s PASSWORD
$ echo $PASSWORD
share|improve this answer
1  
I like this way better. I would vote you up If I didn't hit my daily limit –  SiegeX Nov 30 '10 at 17:53
    
Just a comment: read -s does nothing in Android (busybox). –  Luis A. Florit Jul 6 '13 at 21:59
    
To provide context: -s displays nothing while the input is typed. (-s is a non-POSIX extension, so not all shells support it, such as the ash shell that comes with BusyBox; use the ssty -echo approach in such shells) –  mklement0 Apr 8 at 13:30
add comment

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
share|improve this answer
    
It should be IFS=$'\n' so that you can actually finish typing the password. Otherwise nice; very clever. –  Sorpigal Nov 30 '10 at 18:21
1  
No need to set IFS=$'\n' because read's default delimiter is -d $'\n'. The if-statement to break on a nul string, which happens on a newline, is what allows them to finish the password. –  SiegeX Nov 30 '10 at 18:25
    
In testing on FreeBSD with bash 3.x I find this not to be the case. Testing on Linux with 3.1.17 yields your results. I haven't got a BSD box handy at the moment but I will try to confirm this tomorrow, just for my own curiosity's sake. –  Sorpigal Nov 30 '10 at 21:14
    
@Sorpigal: interesting, let me know what you find out. I'm all about portability –  SiegeX Nov 30 '10 at 23:39
1  
I've got it. My FreeBSD test was based on the code copied and pasted from your original mistaken edit of lesmana's post, which contains one important difference: you had been passing read a -d ''. When I retried it later on Linux I used the reposted version. If I try omitting -d '' of course it works identically on FreeBSD! I am actually quite relieved that there isn't some mysterious platform magic at work here. –  Sorpigal Dec 1 '10 at 17:14
show 4 more comments

you can use stty to disable echo

stty_orig=`stty -g`
stty -echo
read password
stty $stty_orig
share|improve this answer
    
sorry for the edit, accidentally updated your post and not mine. ewps! –  SiegeX Nov 30 '10 at 18:16
add comment

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
share|improve this answer
    
A traditional Bourne shell (or a POSIX-compliant one) would also not recognize [[ ... ]], nor would its read builtin have the -s and -n options. Your code will therefore not work in dash, for instance. (It will work on platforms where sh is actually bash, such as on OSX, where bash when invoked as sh merely modifies a few default options while still supporting most bashisms.) –  mklement0 Apr 8 at 12:48
1  
Thanks for feedback, switched to single [ but obviously not much I can do if your read lacks these options. –  tripleee Apr 8 at 14:05
add comment

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:0:${#password}-1}
      # Erase '*' to the left.
      printf '\b \b' 
  else
    # Add typed char to output variable.
    password+=$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 \b is needed to give the appearance of deleting the character to the left; just using \b moves 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.

share|improve this answer
add comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.