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var dril1 = (count1[0]*m[1])+(count1[1]*m[2])+(count1[2]*m[3])+(count1[3]*m[4])+(count1[4]*m[5])+(count1[5]*m[6]);
var dril2 = (count2[0]*m[1])+(count2[1]*m[2])+(count2[2]*m[3])+(count2[3]*m[4])+(count2[4]*m[5])+(count2[5]*m[6]);
var dril3 = (count3[0]*m[1])+(count3[1]*m[2])+(count3[2]*m[3])+(count3[3]*m[4])+(count3[4]*m[5])+(count3[5]*m[6]);
var dril4 = (count4[0]*m[1])+(count4[1]*m[2])+(count4[2]*m[3])+(count4[3]*m[4])+(count4[4]*m[5])+(count4[5]*m[6]);
var dril5 = (count5[0]*m[1])+(count5[1]*m[2])+(count5[2]*m[3])+(count5[3]*m[4])+(count5[4]*m[5])+(count5[5]*m[6]);
var dril6 = (count6[0]*m[1])+(count6[1]*m[2])+(count6[2]*m[3])+(count6[3]*m[4])+(count6[4]*m[5])+(count6[5]*m[6]);

Is there other possible way to write this piece of code ?

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closed as off-topic by Quentin, ThinkingStiff, Peter O., bfavaretto, Qantas 94 Heavy Nov 20 '13 at 0:35

This question appears to be off-topic. The users who voted to close gave this specific reason:

  • "This question does not appear to be about programming within the scope defined in the help center." – Quentin, bfavaretto
If this question can be reworded to fit the rules in the help center, please edit the question.

1  
If those count-variables were in an array, then yes... –  Šime Vidas Oct 4 '12 at 16:21
    
"Is there other possible way to write this piece of code ?" Yes there is. I like when it is a yes/no type of question. –  epascarello Oct 4 '12 at 16:21
    
Btw, you don't need parens - multiplication comes before addition. –  Šime Vidas Oct 4 '12 at 16:22
    
Belongs on codereview.stackexchange.com –  Quentin Oct 4 '12 at 16:22

6 Answers 6

This:

var counts = [ count1, count2, count3, count4, count5, count6 ];

And then:

var drils = counts.map(function ( count ) {
    return count.reduce(function ( prev, curr, i ) {
        return prev + curr * m[ i + 1 ];
    }, 0 );
});

The .map() Array method will return a new array of results based on the counts array. The .reduce() Array method will reduce each count element into a single value.

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+1 for the .map() function. Could you explain a bit of your code? What do reduce() and map() do exactly? –  Paolo Stefan Oct 4 '12 at 16:32
    
@PaoloStefan I recommend MDN: map, reduce –  Šime Vidas Oct 4 '12 at 16:39
    
Is there any advantage to doing it this way? Other than feeling like a boss and confusing 95% of people who look at your code? ;) –  rrowland Oct 4 '12 at 16:44
    
@rrowland Well, believe it or not :P, the Array iteration methods have been introduced to the language for a reason. Compared to for-loops (which they replace), they are more high-level, more expressive (the intent of the code is easier recognizable), and they also create a new scope (which is desirable, if local variables have to be used within the iteration). I recommend that you read them up on MDN. –  Šime Vidas Oct 4 '12 at 16:49

For each dril you could do:

var dril1 = (count1[0]*m[1])+(count1[1]*m[2])+(count1[2]*m[3])+(count1[3]*m[4])+(count1[4]*m[5])+(count1[5]*m[6]);

var dril1 = 0;
var dril2 = 0;
for (var i=0, len=count1.length; i<len; i++) {
  dril1 += (count1[i]*m[i+1]);
  dril2 += (count2[i]*m[i+1]);
}

but if you had each count as a member of an array:

var dril = [];
for (var i=0, lenI=count.length; i<lenI; i++) {
  dril[i] = 0;
  for (var j=0, lenJ=count[i].length; j<lenJ; j++) {
    dril[i] += (count[i][j]*m[j+1]);
  }
}
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1  
else if(plastic>0){ var count1=["101","101","101","101","101","101"]; var count2=["101","101","101","101","101","101"]; var count3=["101","101","101","101","101","101"]; var count4=["101","101","101","101","101","101"]; var count5=["101","101","101","101","101","101"]; var count6=["2.17","9","12.5","25","33.33","50"]; –  itradoRD Oct 4 '12 at 16:33

You can refactor out the calculation:

function calc(count) {
  return count[0] * m[1] + count[1] * m[2] + count[2] * m[3] + count[3] * m[4] + count[4] * m[5] + count[5] * m[6];
}

var dril1 = calc(count1);
var dril2 = calc(count2);
var dril3 = calc(count3);
var dril4 = calc(count4);
var dril5 = calc(count5);
var dril6 = calc(count6);
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Don't you mean to be using count inside calc instead of count1? –  Ted Hopp Oct 4 '12 at 16:24
    
@TedHopp: Yes. I already fixed that. :) –  Guffa Oct 4 '12 at 16:25

At the least, you can do the sums in a loop:

var dril1 = 0, dril2 = 2, ...;
for (i = 0; i < 5; ++i) {
    dril1 += count1[i] * m[i + 1];
    dril2 += count2[i] * m[i + 1];
    . . .
}

It could be compacted much further if dril1, ..., dril6 and count1, ..., count6 were two arrays.

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Looks like you could maybe use a 2D array and then use a double for loop?

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count[1...6] and drill[1...6] should actually be its own array. You could then loop through the elements and make the calls that way.

var drill = []
for(var i = 0; i < count.length; i++){
    drill.push((count[i][0]*m[1]/* rest of the statement */));
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