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Can anyone tell me what I'm doing wrong here?

#!/bin/sh

if [ $# = 0 ]
then
    echo "Usage: $0 <filename>"
    exit 1
fi

sum=0
count=0

while [ $0 != 0 ]
do
        sum="$sum"+"$2"
        count="$count"+ 1

done
if [ "$count" != 0 ]
then
        avg="$sum"/"$count"
        printf "Sum= $sum \n Count= $count  \n Avg= $avg"
        exit 0
else
        printf "Sum= $sum \n Count= $count  \n Avg= undefined"
        exit 0
fi
exit 1

Here's the output when I try to test the code:

./average

sum: =: No such file or directory
sum: 0: No such file or directory
./average: 11: count: not found
[: 18: !=0: unexpected operator
./average: 25: Syntax error: Unterminated quoted string

Basically if I had a file that looked something like this:

FirstPerson 23 

SecondPerson 36

ThirdPerson 22

I want to be able to read that into my program and have it output:

Sum = FirstPerson+SecondPerson+ThirdPerson

Count = NumberofPeople

Average = Sum/Count
share|improve this question
    
The answer you accepted does not work because 'expr' does not do floating point division. Run expr 5 / 2 and you'll see the answer given is not '2.5' but rather '2'. If you really want to stick with Bash (not my recommendation, see stackoverflow.com/questions/1886157/…) then you'll need to call a program like 'bc' which does do floating point math. However, unless this is a learning exercise in bash, I don't see why you would not go with a 1-liner in awk? –  SiegeX Dec 11 '09 at 7:43
    
If you want a good Bash answer, then I suggest you accept this one: stackoverflow.com/questions/1886157/… –  SiegeX Dec 11 '09 at 7:44
    
Thanks for the useful information everyone. I didn't realize how easy it is to use AWK for this task. –  에이바 Dec 11 '09 at 14:52
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8 Answers 8

up vote 1 down vote accepted

the code below works, you can probably optimize it if you want (or use awk, perl, etc):

#!/bin/bash

if [ $# -ne 1 ]; then
        echo "Usage: \"$0\" <filename>"
        exit
fi

if [ ! -f $1 ]; then
        echo "$1 file not found."
        echo "Usage: $0 <filename>"
        exit
fi

sum=0
count=0
arq=$1

while read line
do
        num=`echo ${line#* }`
        sum=`expr $sum + $num`
        count=`expr $count + 1`
done < "$arq"

if [ "$count" != 0 ]
then
        avg=`expr $sum / $count`
        printf "Sum= \"$sum\" \n Count= \"$count\"  \n Avg= \"$avg\""
        exit 0
else
        printf "Sum= \"$sum\" \n Count= \"$count\"  \n Avg= undefined"
        exit 0
fi
share|improve this answer
1  
Although this is the accepted answer, it is NOT correct because 'expr' does not do floating point division. The calculated average in this code will only be correct if $count is an integer multiple of $sum. Try expr 5 / 2 and you'll see the answer is 2, and not the correct value of '2.5' –  SiegeX Dec 11 '09 at 7:39
    
siegex, i think you are hastily assuming that a the person asking the question wants a floating point answer... that may or may not be the case since he didn't specify it in his question. –  Peter Carrero Dec 11 '09 at 8:28
    
I would contend to you that an Average that has been truncated to an integer is not at Average at all, but rather a Modulus. –  SiegeX Dec 11 '09 at 21:34
    
@Peter: An arithmetic average has to be done in the reals, not integers (i.e., no integer division). Otherwise, as SiegeX points out, it is not an arithmetic average. –  Escualo Dec 12 '09 at 8:25
add comment
 awk '{sum+=$2}END{printf "Sum=%d\nCount=%d\nAve=%.2f\n",sum,NR,sum/NR}' ave.txt

First off, Bash cannot do integer division, you will either need to pipe the math to a tool like 'bc' or just use awk to do it all as it's quite powerful; after all, that entire script of yours was turned into a 1-liner.

Sample Input

$ cat ave.txt
FirstPerson 23
SecondPerson 36
ThirdPerson 22

Result

Sum=81
Count=3
Ave=27.00
share|improve this answer
    
You beat me by a second :) –  Escualo Dec 11 '09 at 6:44
    
... and wrote a much better script. I will remove mine, the unworthy AWK contender. –  Escualo Dec 11 '09 at 6:45
add comment

I don't know about your shell script, but I know you should be using the right tool for the job. That tool is AWK. It was designed specifically for this task and, if you are using UNIX (or Linux, or Mac OS X or whatever) you have it installed. This is the one-liner:

awk '{ sum+=$2; count+=1 } END {print "Sum =",sum; print "Count =",count; print "Average= ",sum/count}' test2.dat

Read the guide for AWK. The philosophy of UNIX is DO NOT REINVENT THE WHEEL. Use the right tools, buddy.

Good luck,

share|improve this answer
    
in my example I wrote a file called test2.dat with the data you provided. –  Escualo Dec 11 '09 at 6:43
    
Haha, so I did. Almost identical except for the fact that awk already provides you a count with 'NR'. –  SiegeX Dec 11 '09 at 6:46
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try this

count_ppl=0
sum=0
while read a b
do
   sum=$((sum+b))
   count_ppl=$((count_ppl+1))
done < file
echo "Sum=$sum"
echo "Count=$count_ppl"
avg=$(echo "scale=2;$sum/$count_ppl" | bc)
echo "Average=" $avg
share|improve this answer
    
Good bash solution, although it can be optimized a bit more by using ((sum+=b)) and ((count_ppl++)) instead of the two lines you have above. –  SiegeX Dec 11 '09 at 7:51
    
optimized? don't understand. any references or proof that says += or ++ ends up faster? if that's what you mean. –  ghostdog74 Dec 11 '09 at 8:07
    
Optimized in terms of typing and code readability IMHO. I wouldn't think there would much of a difference, it at all, between the two efficiency wise. –  SiegeX Dec 12 '09 at 0:38
    
then that doesn't matter. Its all personal preferences. Just a qns, does other shell support += assignment operator? –  ghostdog74 Dec 12 '09 at 1:50
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To begin with, you shouldn't have spaces on either side of an =

share|improve this answer
    
Wow. I guess you can tell that I don't normally write shell scripts...haha. Thanks man. –  에이바 Dec 11 '09 at 6:25
add comment

The error "Unterminated quoted string" is self explanatory

printf "Sum= \"$sum\" \n Count= \"$count\"  \n Avg= "\$avg\""

Should be

printf "Sum= \"$sum\" \n Count= \"$count\"  \n Avg= \"$avg\""
share|improve this answer
add comment

By looking at the script there does not seem to be much that you are doing correctly. I recommend looking at some Bash how to and follow simple steps to get it to do what you expect.

  1. no spaces after variable assignment, should be sum= and so on
  2. while [ ! -f $1 ] might actually do something but not what you expect
  3. read -p "Re-enter the filename and hit <Enter>: " definitely does not do what you expect
  4. and so on
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            c program for simple interest

 #include<stdio.h>
 int main(void)
  { 
    int p,r,t,s;
    printf("enter the principle value");
    scanf("%d",&p);
    printf("enter the rate or interest");
    scanf("%d",&r);
    printf("enter the time period ");
    scanf("%d",&t);
    s=p*t*r/100;
    printf("the simple interest is %d",&s);
  }     
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