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I'm trying to make a countdown timer script that takes a number of seconds as $1, then counts down to zero, showing the current remaining seconds as it goes.

The catch is, I'm doing this on an embedded box that doesn't have seq or jot, which are the two tools I know can generate my list of numbers.

Here's the script as I have it working on a normal (non-embedded) system:

#!/bin/sh

for i in $(/usr/bin/jot ${1:-10} ${1:-10} 1); do
    printf "\r%s " "$i"
    sleep 1
done

echo ""

This works in FreeBSD. If I'm on a Linux box, I can replace the for line with:

for i in $(/usr/bin/seq ${1:-10} -1 1); do

for the same effect.

But what do I do if I have no jot OR seq?

share|improve this question
    
What shell are you using? Not bash, I assume? –  ghoti Jan 13 '13 at 4:33
    
I assume so too. I don't have a /bin/bash, and I know I can't use things like bash parameter expansion. It's a pretty limited system - it doesn't identify itself when I log in, and it has no uname. So sorry, let's just assume Bourne. –  Graham Jan 13 '13 at 4:38

3 Answers 3

up vote 0 down vote accepted

If your shell was bash, you could count down from a fixed number with something like this:

#!/bin/bash

for n in {10..1}; do
  printf "\r%s " $n
  sleep 1
done

But that won't work for you, because bash won't handle things like {${1:-10}..1}, and you've specified you want a command line option. Of course, you've also said you're not using bash, so we'll assume a simpler shell.

If you have awk, you can use that to count.

#!/bin/sh

for n in $(awk -v m="${1:-10}" 'BEGIN{for(;m;m--){print m}}'); do
  printf "\r%s " $n
  sleep 1
done
printf "\r \r"  # clean up

If you don't have awk, you should be able to do it in pure shell:

#!/bin/sh

n=${1:-10}

while [ $n -gt 0 ]; do
  printf "\r%s " $n
  sleep 1
  n=$((n-1))
done
printf "\r \r"  # clean up

I think the pure-shell version is probably simple enough that it should be preferred over the awk solution.

Of course, as Mark Reed pointed out in comments, if your system doesn't include a printf, then you'll need to perform some ugly echo magic that will depend on your OS or shell... and if your shell doesn't support $((..)), you can replace that line with n=$(expr $n - 1). If you want to add error handling in case a non-numeric $1 is provided, that wouldn't hurt.

share|improve this answer
    
Depending on the shell, might not have arithmetic expressions $((...)) –  glenn jackman Jan 13 '13 at 4:50
    
See the notes on my answer about ${1:-10} and printf. Also, note that $((...)) is a POSIXism; the embedded shell might not have it. If it does, that implies that it has integer arithmetic, which means you can also use while (( n > 0 )); do. Also, let n-=1 or (( n-=1 )) may be more efficient as they avoid the string conversion done by $((..)) –  Mark Reed Jan 13 '13 at 4:51
    
True and true. Since we don't know what the actual system is, we're all guessing as to what it supports. We don't know if this system includes expr. If it doesn't include seq then it could be BSD-based, or it could be Linux+BusyBox. Or it could be something else entirely, or just very old. Between the bunch of us, Graham probably has enough to answer his question. –  ghoti Jan 13 '13 at 4:54
    
Both the awk and the shell solutions work perfectly. Thanks! –  Graham Jan 13 '13 at 4:59

The problem with "vanilla" Bourne shell is that there's no such thing; the behavior depends on the particular implementation. Most modern /bin/shes have POSIX features, but differ in the details. I have a habit of falling back to really ancient Bourne features when I go into "sh-compatibility" mode, which was helpful 30 years ago but is usually overboard on modern systems, even embedded ones. :)

Anyway, here's a generic countdown loop that works even in very old shells, yet still works fine in modern bash/dash/ksh/zsh/etc. It does require the expr command, which is a pretty safe requirement.

i=10
while [ $i -gt 0 ]; do
  ...
  i=`expr $i - 1`
done

So if your embedded system has printf, here's your script, with the same "default to 10 if no argument specified" behavior:

#!/bin/sh
n=$1
i=${n-10}
while [ $i -gt 0 ]; do
  printf '\r%s ' "$i"
  sleep 1
done

(The first two lines can probably be replaced with just i=${1-10}, but some - again, ancient - shells didn't like applying special parameter expansions to numeric parameters.)

If the system doesn't have printf, then it becomes problematic; with only the shell's built-in echo (or no builtin and some randomly selected implementation of /bin/echo), there's no guaranteed way to do either of those things (echo a special character or prevent the newline). You might be able to use \r or \015 to get the carriage return. You might need -e to get the shell to recognize those (but that might just wind up echoing a literal -e). Putting a literal carriage return inside the script will probably work but makes maintaining the script a pain.

Similarly, -n might squash the newline, but might just echo a literal -n. The earliest way to squash newlines with echo used the special sequence \c where the newline would naturally go; this still works with some versions of /bin/echo (including the one on Mac OS X) or in conjunction with bash's builtin echo's -e option.

So what seems to be the simplest part of the script might be the part that makes you reach for awk.

share|improve this answer
    
This system does let me use ${1:-10}, or I wouldn't have included that in my question. Thanks for the warning though, I'll keep it in mind if I need to create ultra-portable scripts in the future. :) And I do have printf. –  Graham Jan 13 '13 at 4:58
    
Also, your echo line doesn't work for me. If I i=10; echo '\015'$i'\c', I get \01510\c. –  Graham Jan 13 '13 at 5:03
2  
@Graham - we don't know what system you have. It's rude to downvote everyone's answers just because they happen not to work on it, especially when I said right in the answer that the echo might not work. echo ... \c is how you do no-newlines on some systems (it even still works with /bin/echo on OS X). The octal carriage return was a swing in the dark, but it seemed more likely to work than '\r'. If you have a way to get a literal CR into the script, that might be best. –  Mark Reed Jan 13 '13 at 5:23
    
Hmm, you're right, you did suggest experimenting with echo. I didn't realize that \015 was a carriage return, and I still don't know what \c is. I really think you could have explained this a lot more clearly. I can't remove the downvote unless your answer changes. Perhaps you could put this stuff in your answer? It's bizarre that the only answer I got that worked for me, somebody else downvoted. –  Graham Jan 13 '13 at 7:55
    
@Graham - fair enough. Edited for clarification. –  Mark Reed Jan 13 '13 at 14:35

If you're using Bash, this is what you want:

for i in {1..10}

Or no bash? How about the stuff from this post? Bourne Shell For i in (seq)

try

for i in 1 10 15 20
do
   echo "do something with $i"
done

else if you have recent Solaris, there is bash 3 at least. for example this give range from 1 to 10 and 15 to 20

for i in {1..10} {15..20}
do
  echo "$i"
done

OR use tool like nawk

for i in `nawk 'BEGIN{ for(i=1;i<=10;i++) print i}'`
do
  echo $i
done

OR even the while loop

while [ "$s" -lt 10 ]; do s=`echo $s+1|bc`; echo $s; done
share|improve this answer
    
I don't have nawk or bc, but I guess any awk will do. Your other suggestions don't work for me at all, and I don't see how they apply to my question. –  Graham Jan 13 '13 at 5:00
    
@Graham They apply to your question because they are different ways to loop through a set of numbers. You didn't specify that you didn't have nawk or bc or bash; your question asks about counting in shell "without seq or jot". It's very rude to downvote people for not reading your mind; we are trying to be helpful despite your very vague requirements. –  Duotrigesimal Jan 13 '13 at 5:43
    
None of your solutions mention how to get a command line option ($1) into a countdown. The second solution suggests bash-style ranges, when I was clear that I don't have bash. Your nawk solution counts up (not down), but doesn't say how to get $1 into the script. It seems to me that you came up with a bunch of script segments that are semi-related to the part of my script that I'm not having a problem with, and you provided nothing that actually answers it. Sorry, but that warrants a downvote. –  Graham Jan 13 '13 at 7:52
    
@Graham I'm sorry, but are you saying that your question was about how to get a command line option into the countdown? Because it reads as a question about generating sequences of numbers using tools other than seq and jot. Your examples, don't bother with $1, and neither does the answer you accepted. So I don't really understand what you're getting at with your sudden interest in $1. And yes, the example I put counts up, because it's a quote from the post I linked you to, which is a very similar question to yours. You also hadn't mentioned not having bash until after my initial post. –  Duotrigesimal Jan 13 '13 at 9:53
    
My original question didn't mention bash at all - the subject says "shell", my example code uses /bin/sh, and there's no bash tag. So there's no reason to assume bash. Then when clarification was asked in comments, I provided it. The subject also says "countdown", which is a hint to the direction the numbers should go. The answer I accepted does use ${1:-10}, which is what I used in my example. –  Graham Jan 13 '13 at 22:56

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