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I'm making a backup script in which I need to find the last Saturday of each month.

I've tried different approaches to finding the day itself, which works splendidly themselves.

The problem is, when I try putting them into my script I always get the error code ./test.sh: line 13: [: 29: integer expression expected.

This is my code:

#!/bin/bash

LASTSAT=$(ncal | grep Sa | awk '{print$(NF-0)}')
SATURDAY="6"

DAY=$(date +"%u")
DATE=$(date +"%d")

echo "$DAY"
echo "$DATE"
echo "$LASTSAT"

if [ $DATE -eq $LASTSAT  ]
then
 echo "sista lördagen..."
fi

I got the tip to change the if statements to [ "$DATE" = "$LASTSAT" ] which erased the error itself, but the script will somehow not equal 27 to 27 (to take this month as an example).

I also tried another approach to finding the last Saturday which was LASTSAT=$(cal|awk '{if(NF==7){SAT=$7}};END{print SAT}'), but it returns the exact same error if I use -eq and doesn't equal 27 to 27 using " with =

I'm very confused and out of ideas and I have searched the internet and copied the exact lines others been using but it all ends up the same.

What am I doing wrong?

share|improve this question
    
Beware the dreaded XY Problem. Do you really want us to tell you how to get the date of the last Saturday of a month, or would it be acceptable to put some of the logic into a cron tab? –  ghoti Oct 22 '12 at 3:23
    
I could do with both to get an insight of how to do the same thing in multiple ways. Is crontab really that accurate though? My tutor showed me how to do it entirely in crontab which made it backup the last saturday, but when there were 5 saturdays in a month it would backup both the 4th and the 5th. Which doesn't really matter, but I wanted to be more specific and also get some experience in scripting. //Jompa –  Jompa Oct 22 '12 at 8:22
    
Like so many other things, cron will do only and precisely what you tell it to. It is accurate, though it's limited in what it can express. It doesn't have a way to calculate "last day", which is why the solution here requires scripting. –  ghoti Oct 22 '12 at 11:52

5 Answers 5

up vote 1 down vote accepted

During testing I changed the target day and some of the variable names, but the following script works, for the next-to-last Sunday of the month. The critical change, relative to your script, was adding the -h switch to ncal, to turn off highlighting of the current day. The highlighting characters apparently come through when awk prints the field, but aren't visible when you do the echos. Note, you can drop the grep after ncal via an awk match.

#!/bin/bash

DoDay=$(ncal -h |awk '/Su/ {print $(NF-1)}')
Datum=$(date +%d)
echo $Datum Datum
echo $DoDay DoDay

if [[ $Datum == $DoDay ]]
then
    echo "sista lördagen..."
else
    echo "doh"
fi
share|improve this answer
    
So it's the highlighting of the day that does it! That's really useful. Thanks for the simplified version of doing it as well! This solved the problem and gave me a simple answer to what caused it. Thank you //Jompa –  Jompa Oct 22 '12 at 8:17

Here's one way to print the last Saturday in each month using date:

for i in {1..12}; do
    for j in {1..7}; do
        date=$(date -d "$i/1 + 1 month - $j day" +"%w %F")
        # day of week (1..7); 1 is Monday
        if [ ${date:0:1} -eq 6 ]; then
            echo ${date:2}
        fi
    done
done

Results:

2012-01-28
2012-02-25
2012-03-31
2012-04-28
2012-05-26
2012-06-30
2012-07-28
2012-08-25
2012-09-29
2012-10-27
2012-11-24
2012-12-29

If you'd just like to find the last Saturday in the current month, try:

for j in {1..7}; do
    month=$(date +"%m")
    date=$(date -d "$month/1 + 1 month - $j day" +"%w %F")
    # day of week (1..7); 1 is Monday
    if [ ${date:0:1} -eq 6 ]; then
        echo ${date:2}
    fi
done

Result:

2012-10-27

Please note, that you can change the output format of these results in the above scripts simply by changing %F to any of the formats date has to offer. See man date.

share|improve this answer
    
Really neat little script! Everything I've found while looking for others who have done this has been using cal piped to awk. Thanks for showing me a way to do it entirely with date, it helps me realizing how things can be made differently. //Jompa –  Jompa Oct 22 '12 at 8:28
    
@Jompa: Thanks! I should say that processing cal with awk may not always work out well, because cal's output does have a tendency to produce some strange results, at least in my experience. I would strongly recommend using date instead. It's much much safer. –  Steve Oct 22 '12 at 11:25
    
+1 - very nice. –  ghoti Oct 22 '12 at 11:42
    
@ghoti: Thanks mate! –  Steve Oct 22 '12 at 12:00

You can easily get the last Saturday of the month using the date command, which spits out data in strftime() format. But date's syntax will depend on your operating system.

In FreeBSD or OSX, there's a -v option to "adjust" the date that gives you lots of control:

[ghoti@pc ~]$ date -v+1m -v1d -v6w '+%a %d %b %Y'
Sat 03 Nov 2012
[ghoti@pc ~]$ date -v+1m -v1d -v6w -v-1w '+%a %d %b %Y'
Sat 27 Oct 2012

The idea here is that we'll move 1 month forward (+1m), back up to the first of the month (1d), then move to the 6th day of the week which is Saturday (6w). For demonstration purposes, the first line shows the first saturday of next month, and the second line shows the date one week (-v-1w) earlier.

Alternately, if you wanted to put some math in your bash script, you could do something like this:

#!/usr/local/bin/bash

# Get day-of-the-week for the first-of-the-month:    
firstofmonth=$(date -j -v+1m -v1d '+%u')
     #                   ^
     #                   +  This is the relative month to current.

# Subtract this from 7 to find the date of the month
firstsaturday=$((7 - $firstofmonth))

# 7 days before that will be the last Saturday of the previous month
lastsaturday=$(date -j -v+1m -v${firstsaturday}d -v-7d '+%Y-%m-%d')

With the -v option, 1 is January, 2 is February, etc. Or it can be relative, as I've shown here, with +1 for next month, -1 for last month, etc.


In Linux, date uses a -d option that interprets a text description of the date. So:

#!/bin/bash

firstofmonth=$(date -d '+1 months' '+%Y%m01')
firstsaturday=$(date -d "$firstofmonth" '+%Y-%m')-$(( 7 - $(date -d "$firstofmonth" '+%u') ))
lastsaturday=$(date -d "$firstsaturday -7 days" '+%d')

Note that if you're using cron, you can simplify this. You know that the last Saturday will sit within the last 7 days of the month, so we can start by using cron to limit things to Saturday, then check for the last of the month within the script. This will run the script every Saturday, but it will do nothing except when it's supposed to. The cron tab would be, say,

#  ↙ "0 0"=midnight
0 0 * * 0 /path/to/script.sh
#        ↖ 0=Sunday

And script.sh would start with:

#!/bin/bash

if [[ $(date '+%d' -lt $(date -d "$(date -d '+1 month' '+%Y%m01') -7 days" '+%d') ]]; then
  exit
fi

You could also put this test within the crontab, though it would look a little uglier because you'd need to escape the percent signs:

0 0 * * 0 \
  test $(date '+\%d') -ge $(date -d "$(date -d '+1 month' '+\%Y\%m01') -7 days" '+\%d') \
    && /path/to/command
share|improve this answer
    
This fails if the first day of the month is Sunday. In that case, %u returns 7; 7 - 7 is 0, and Gnu date considers (for example) 2013-09-0 to be an invalid date (as indeed it is). I'm not sure how FreeBSD date handles -v0d, but it's unlikely to treat it as -v7d, which is what you need for the subtraction of seven days to work properly. –  rici Oct 22 '12 at 16:41
    
@rici - good point. In FreeBSD, -v0d is indeed an error. I'll think about this and update my answer. –  ghoti Oct 22 '12 at 18:01
    
you want $(( $(date ... +%u) % 7)) , as in my answer (which I had to fix after making exactly the same mistake) :) –  rici Oct 22 '12 at 19:29

How about this one:

last_saturday () 
{ 
    local Format;
    if [[ $1 =~ ^\+.* ]]; then
        Format=$1;
        shift;
    fi;
    local FirstOfNext="${1:-$(date +%B)} 1 $2 + 1 month";
    date $Format -d "$FirstOfNext - 1 day - 
                     $(($(date +%u -d "$FirstOfNext") % 7)) day"
}

eg:

$ last_saturday
Sat Oct 27 00:00:00 PET 2012
$ last_saturday November
Sat Nov 24 00:00:00 PET 2012
$ last_saturday June
Sat Jun 23 00:00:00 PET 2012
$ last_saturday June 2013
Sat Jun 29 00:00:00 PET 2013
$ last_saturday +%Y-%m-%d June 2013
2013-06-29
share|improve this answer

The script works fine on my System (Ubuntu - Bash $). I just modified the script to print "!sista lördagen..." if the day wasn't the last saturday and this was the output:
$sh abc.sh
7
21
27
!sista lordagen...

share|improve this answer
    
Well yeah, but it will also print that it isn't the last saturday when it really is, but that was, like I got explained to me above, just because it was printing the highlighted field from cal, which isn't an Integer, so it wouldn't match it with 27. //Jompa –  Jompa Oct 22 '12 at 8:33

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