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Write Script to read a positive integer number then it computes the following sequence: If the number is even, halve it If it is odd multiply it by 3 and add1

You should repeat this process until the value is 1, printing out each value and how many of these operations you performed.

#! bin\csh

echo "please enter any integer number :) "

set count=0

set number=$<

while($number != 1)

   if($number % 2) then

       @ number = number * 3 + 1 

   else

       @ number = number / 2

   endif

   echo " $number "

   @ count = count ++

end

echo I performed these operations $count times

When I run the script I get the following error: @: Expression Syntax.

share|improve this question
1  
Please use proper formatting, a useful title for the question. – badcat Dec 28 '09 at 20:56
1  
Sounds like homework or an interview question. – Shaun F Dec 28 '09 at 20:57
    
I dont recall csh, but isnt $count instead of @count ? – Tom Dec 28 '09 at 20:58
    
Please use correct formatting and tags. You tagged your question as "shellscript", but the syntax doesn't look like it. – M0E-lnx Dec 28 '09 at 20:59
    
no, not $ ! @ used to store expression in variable instead (set) – sara Dec 28 '09 at 21:01
up vote 2 down vote accepted

I believe its $variable to obtain its value

$
    Obtains the value of the variable. 

@ var = $a + $x * $z

source http://www.eng.hawaii.edu/Tutor/csh.html

So that would be

@count = $count +1 

And the line

#!bin\csh 

makes me shiver

share|improve this answer
    
Agreed, I would think it'd be something like #!/bin/csh – M0E-lnx Dec 28 '09 at 21:04
    
yes, thanks alot i forget it – sara Dec 28 '09 at 21:11

i get correct solution :)

#! /bin/csh

echo "please enter any integer number :) "

set count=0

set inc=1

set number=$<

while($number != 1)

   if($number % 2) then

       @ number = $number * 3 + 1 

   else

       @ number = $number / 2

   endif

   @ count = $count + $inc

   echo " $number "


end

echo I performed these operations $count times
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