8

I want to compute an average with 3 decimal figures, rounded to nearest, using bc.

For example:

average of 3, 3 and 5 should yield 3.667

and

average of 3, 3 and 4 should yield 3.333

I tried:

echo "scale=3; $sum/$n+0.0005" | bc

but scale doesn't behave as I expect. What can I do to solve my problem?

  • 4
    You're adding 0.0005, so bc gladly answers with 4 digits after decimal point. – gniourf_gniourf Nov 11 '14 at 9:07
  • So what should i do ? – Yasin Kaya Nov 11 '14 at 9:08
  • 1
    So you're having an XYproblem. – gniourf_gniourf Nov 11 '14 at 9:11
  • 2
    I hope you read the link I put in my previous comment. You should definitely edit your question and specify: 1. Clearly state what you want to achieve: I want to compute an average with 3 decimal figures, rounded to nearest. 2. State what you tried, and say why it doesn't work. – gniourf_gniourf Nov 11 '14 at 9:16
  • 2
    There are a load of answers to your question here: askubuntu.com/questions/179898/… – Tom Fenech Nov 11 '14 at 9:21
5

Your trick to add 0.0005 is not a bad idea. Though, it doesn't quite work that way. scale is used internally when bc performs some operations (like divisions).

In your case, it would be better to perform the division first, maybe using a large scale or the -l switch to bc1 (if your version supports it), then add 0.0005 and then set scale=3 and perform an operation involving scale internally to have the truncation performed.

Something like:

`a=$sum/$n+0.0005; scale=3; a/1`

Of course, you'll want to proceed differently whether sum is positive or negative. Fortunately, bc has some conditional operators.

`a=$sum/$n; if(a>0) a+=0.0005 else if (a<0) a-=0.0005; scale=3; a/1`

You'll then want to format this answer using printf.

Wrapped in a function round (where you can optionally select the number of decimal figures):

round() {
    # $1 is expression to round (should be a valid bc expression)
    # $2 is number of decimal figures (optional). Defaults to three if none given
    local df=${2:-3}
    printf '%.*f\n' "$df" "$(bc -l <<< "a=$1; if(a>0) a+=5/10^($df+1) else if (a<0) a-=5/10^($df+1); scale=$df; a/1")"
}

Try it:

gniourf$ round "(3+3+4)/3"
3.333
gniourf$ round "(3+3+5)/3"
3.667
gniourf$ round "-(3+3+5)/3"
-3.667
gniourf$ round 0
0.000
gniourf$ round 1/3 10
0.3333333333
gniourf$ round 0.0005
0.001
gniourf$ round 0.00049
0.000

1 with the -l switch, scale is set to 20, which should be plenty enough.

  • 2
    Thank you! it works. But it seems i have to work a lot to write codes like this – Yasin Kaya Nov 11 '14 at 13:09
  • I worked on C++ and it was easy because syntax wasnt important – Yasin Kaya Nov 11 '14 at 13:09
  • As i understand syntax (space .. etc) very important in Bash – Yasin Kaya Nov 11 '14 at 13:11
  • Yeah, Bash's syntax is completely crazy. Good luck! – gniourf_gniourf Nov 11 '14 at 13:12
2

Next function round argument 'x' to 'd' digits:

define r(x, d) {
    auto r, s

    if(0 > x) {
        return -r(-x, d)
    }
    r = x + 0.5*10^-d
    s = scale
    scale = d
    r = r*10/10
    scale = s  
    return r
} 

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