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I have a problem with writing it in bash... I know how it works in C++, but I have trouble implementing it in bash. Here's what I got:

sum() 
{
    let minusOne=$1-1
    let result=sum $minusOne +$1

}
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Can you post the C++ version of sum? – kev Mar 15 '12 at 14:49
up vote 1 down vote accepted

You need an exit condition. In bash, $((...)) is arithmetic expansion, and $(...) is command substitution (see the man page).

sum() {
    if (( $1 == 1 )); then
        echo 1
        return
    fi
    local minusOne=$(( $1 - 1 ))
    echo $(( $1 + $(sum $minusOne) ))
}

A non-recursive way to write a sum function:

sum() {
  set -- $(seq 1 $1)
  local IFS=+
  echo "$*" | bc
}
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Thank you very much! One question though, how do I get this value to a variable? Like let var = $(( $1 + $(sum $minusEna) )?? It gives an error(operand expected)... – Kajzer Mar 15 '12 at 16:24
    
you'd say theSum=$(sum 5) – glenn jackman Mar 15 '12 at 17:01

Here is a function that will give you a sum of numbers provided as arguments. The following prints "10":

#!/bin/bash

sum() {
    local total=0
    for number in "$@"; do
        (( total += number ))
    done

    echo $total
}

sum 1 2 3 4
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