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Using bash, I have a list of strings that I want to use to replace an int. Here's an example:

day1=Monday
day2=Tuesday
day3=Wednesday
day4=Thursday
day5=Friday
day6=Saturday
day7=Sunday

If I have an int, $dow, to represent the day of the week, how do I print the actual string? I tried this:

echo ${day`echo $dow`}

but get error of "bad substitution". How do I make this work? Note: I can change the $day variables to a list or something.

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4 Answers 4

up vote 1 down vote accepted

Yes, it would be easiest to do this as an array:

day=([1]=Monday [2]=Tuesday ...)
echo "${day[dow]}"
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perfect! I didn't know about the [1]=... [2]=... That's very cool! –  User1 Apr 16 '10 at 18:56
    
You can set the first index and the rest will follow: day=([1]=Monday Tuesday Wednesday...) –  Dennis Williamson Apr 16 '10 at 20:43
case $dow in
  [1234567]) eval echo '$day'$dow ;;
esac

I didn't want to get yelled at for an unsafe use of "eval" :-)

There's probably a more "modern" way of doing this.

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You could use variable indirection:

day_var=day$dow
echo ${!day_var}

But you should consider the use of arrays:

days=("Monday" "Tuesday" "Wednesday" "Thursday" "Friday" "Saturday" "Sunday")
echo ${days[$[$dow-1]]}
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I like it, but I can only select one answer. –  User1 Apr 16 '10 at 18:55
    
The use of square brackets the way you have them for the inner set is deprecated (and unnecessary in this case). The current usage is $(( ... )) but the array subscript will do the math for you: ${days[dow-1]} –  Dennis Williamson Apr 16 '10 at 20:41

In June 1970 (you remember?) the month started with Monday:

for d in {1..7}
do 
     date -d 1970-06-0$d +%A
done 
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t=7; date -d 'first sunday + '$t'day' +%A maybe more easy to remember. –  user unknown Apr 19 '10 at 3:46

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