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A question about bash ....

I wrote a little code to check whether a year is a leapyear. The relevant part looks like:

if [ $testnum4 -eq 0 -a $testnum100 -ne 0 ] || [ $testnum400 -eq 0 ]
then
  echo 0
fi

Well, this code actually works. My problem is that I'm still not quite sure what I was doing. Just to see what would happen, I have tried several variations on this: enclosing the entire test expression in square backets, using && where I have -a and -o where I have ||, etc. Nothing works except for the one expression that I wrote above. I stumbled on it, and I'm glad I did, but the next time I have to do something like this, I would like to know what I am doing.

So: Anyone have a quick explanation of how compound tests work in bash? or a pointer to a good resource on this topic?

Thanks.

Here's a code that failed:

let testnum4=$1%4
let testnum100=$1%100
let testnum400=$1%400

if [ $testnum4 -eq 0 && $testnum100 -ne 0 ] -o [ $testnum400 -eq 0 ]
then
  echo 0
fi
share|improve this question
    
Your code does not run. [ $testnum4 -eq 0 -a $testnum100 -ne 0 ] results in a syntax error in both bash and sh. –  CodeGnome May 7 '12 at 17:31
    
@CodeGnome: you do realise, that it expects some variables to be set? :) –  Karoly Horvath May 7 '12 at 17:35
    
@bob.sacamento: post the code that you thought was correct but didn't work... then we can help.. –  Karoly Horvath May 7 '12 at 17:40
    
Ummm, maybe I should have put the whole code in. I thought people whould only be interested in the part relevant to the question. But I have run the full code successfully on my linux desktop about 25 times now. Sorry for any confusion I've cause. Here's an example of something that didn't work: –  bob.sacamento May 7 '12 at 17:47
    
Whoops. I'm new here. Didn't realize what the return key would do. Will provide example in an answer. –  bob.sacamento May 7 '12 at 17:49

4 Answers 4

up vote 4 down vote accepted

Little note of interest: The square braces are actually a Unix command. See if there's a file called /bin/[ or /usr/bin/[ on your system. In fact, try this:

$ ls i-il /bin[ /bin/test
571541 -r-xr-xr-x  2 root  wheel  43120 Aug 17  2011 /bin/[
571541 -r-xr-xr-x  2 root  wheel  43120 Aug 17  2011 /bin/test

That first number is the i-node number. You see that /bin/[ and /bin/test are hard linked to each other. They're the same program.

I'll get back to the significance of this a bit later...


In BASH and other Bourne type shells, the if command merely runs the command, and if the command returns an exit code of 0, it executes the commands in the if clause. If the command does not return an exit code of 0, it skips the commands in the if clause and executes the commands in the else clause if it exists.

Thus, this is also valid:

if sleep 2
then
   echo "That was a good nap!"
fi

Your computer executes the sleep 2 command which (if the sleep command exists) will return a zero exit code and continue to echo That was a good nap!.

That's all the if command really does. It runs the given command and examines the exit code.


Now, back to the [...

You might want to look at the manpage for the test command. You can see that the test command seems to have many of the same type of tests as the [...] in the if statement. In fact, in the original Bourne shell (which BASH is derived from) these are the same command structure:

if test -f $my_file
then
    echo "File $my_file exists"
else
    echo "There is no file $my_file"
fi

if [ -f $my_file ]
then
    echo "File $my_file exists"
else
    echo "There is no file $my_file"
fi

In fact, in the original Bourne shell, you had to use the test command and not the square brackets.


So, back to your original question. The -a and -o are parameters for the test command (see the test manpage. For example, your if statement could have been written as this:

if test $testnum4 -eq 0 -a $testnum100 -ne 0 || test $testnum400 -eq 0
then
   echo 0
fi

However, the && and || are not test command parameters, so they can't be used inside the test command.

Note that [ is a built in command in BASH, so BASH does not execute /bin/[ as the original Bourne shell would have. However, it is still a command much like echo is a built in command in BASH although /bin/echo also still exists.

share|improve this answer
    
An encyclopedic answer! Thanks, David W. –  bob.sacamento May 7 '12 at 23:54

The correct way to do integer comparisons in Bash is to use double parentheses:

if (( (testnum4 == 0 && testnum100 != 0) || testnum400 == 0 ))
share|improve this answer

The Algorithm

The algorithm to check for leap years is (in pseudo code):

if (YEAR modulo 400):
    LEAP_YEAR = true
elseif (YEAR modulo 4) and not (YEAR modulo 100):
    LEAP_YEAR = true
else
    LEAP_YEAR = false
endif

I'd recommend against using over-clever solutions, and stick with something more readable. See the Bash Beginner's Guide for a working example of a leap year test using nested if statements. It uses the deprecated $[] arithmetic expression, so just replace the arithmetic expressions with $(( )) and you can see how it's supposed to work.

How the OPs Code Works

In the OPs updated code example, the values are separate variables built from a positional paramater. So, the modulo arithmetic is being performed on the variables before they are evaluated in the conditional statements. After that, the if statement says:

if (first_expression returns true) or (second_expression returns true):
    echo 0
endif

The single-square brackets are simply a shell builtin that performs the same as the test command, which evaluates an expression and returns an exit status where zero is truth. See help \[ or man test for more information.

Building a Better Mousetrap

While I and other posters have explained why the OPs code works, it seems that part of the OPs goal is to place the entire leap year test inside a single conditional. Here's a Bash shell function that will do this, and let you test the result by inspecting the exit status.

# function returns exit status of arithmetic expression
leap_year () { 
    (( $1 % 400 == 0 || ($1 % 4 == 0 && $1 % 100 != 0) ))
}

You can test the function at the prompt:

$ leap_year 2011; echo $?
1
$ leap_year 2012; echo $?
0
$ leap_year 2013; echo $?
1

For more information on the (( )) arithmetic expression, see the Conditional Constructs sections of the Bash Reference Manual.

share|improve this answer
    
Thanks very much CodeGnome. Much obliged. –  bob.sacamento May 7 '12 at 23:53
1  
I'd like to add that now you can do if leap_year 2012;then echo "do something" ; fi with the above solution. –  Samveen May 8 '12 at 4:47

In bash(actually most shells) if takes a command/set of commands and evaluates the then section if the last command returns true (zero exit code), otherwise it evaluates the elif/else sections (elif is treated in a manner similar to else).

Now about the [[. This is like the test command, but with greater test coverage. However it has the limitation that it can evaluate only one condition at a time, so it doesn't accept -o or -a. You might want to look at [ as a true alias of test. As for the || and && these are control operators that evaluate the next command if the previous command returns false (non-zero exit code) or true (zero exit code) respectively. The use of these 2 is to chain commands together (especially [[).

As for the above if, it executes 2 commands:

  • First: [ $testnum4 -eq 0 -a $testnum100 -ne 0 ]
  • Second: [ $testnum400 -eq 0 ]

If the first command succeeds, the if executes the then section. If the first command fails, then the second is executed. If the second succeeds, then the body is executed, else if does nothing.

As for a good bash resource, you might want to visit The Bash Wiki

share|improve this answer
    
OK, this is making more sense. Thanks. What if things get more complicated and I have to, for instance, nest some conditionals? Can that be handled with && and || ? Thanks again. –  bob.sacamento May 7 '12 at 17:57
    
The usage of || and && is somewhat tricky, and needs to be well thought out before creating the conditions. Look at the bash wiki for all the details. –  Samveen May 7 '12 at 18:28
    
Your second paragraph is confusing and incorrect. The double brackets are preferred in Bash over the single bracket form. –  Dennis Williamson May 7 '12 at 19:40
    
@DennisWilliamson: I didn't mention anything about preference of [ over [[, just that [ is a true alias of test while [[ is similar to test in spirit, but differs in the fact that it tests only one condition at a time and multiple conditions are tested by chaining them with && and ||. –  Samveen May 8 '12 at 4:18

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