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var kerf = 0.125; | |
var stock_length = 96; | |
function arraySum(arr) { | |
var sum = 0; | |
for (var i = 0, len = arr.length; i < len; sum += arr[i++]); | |
sum += (arr.length * kerf); | |
return sum; | |
} | |
/** | |
* Simple Sorted Best Fit linear bin packing algorithm to figure out cut lists | |
* and material needs. | |
*/ | |
function calculateCutList(cut_array) { | |
var stock_array = []; | |
// Sort cuts largest to smallest | |
cut_array.sort((a, b) => b - a); | |
cut_array.forEach(cut => { | |
// Track reference to best-fit stock array and the leftover space after this cut is fit | |
var bestStock = null; | |
var bestLeftover = stock_length; | |
stock_array.forEach(stock => { | |
// Calculate how much space is used and what is available | |
var used = arraySum(stock); | |
var avail = stock_length - used - kerf; | |
// If there is space available for the cut | |
if (cut <= avail) { | |
var leftover = avail - cut; | |
// If the leftover is less than the existing best stock | |
if (leftover < bestLeftover) { | |
// Capture ref to stock array and leftover space | |
bestStock = stock; | |
bestLeftover = leftover; | |
} | |
} | |
}); | |
// If no bestStock is found add a new stock with the cut | |
if (bestStock == null) { | |
stock_array.push([cut]); | |
} else { | |
// Otherwise add the cut to the best fitting stock | |
bestStock.push(cut); | |
} | |
}); | |
stock_array.sort((a, b) => arraySum(b) - arraySum(a)); | |
stock_array.forEach(stock => console.log(stock)); | |
} | |
console.log("2x6"); | |
calculateCutList([32.5,32.5,32.5,32.5,27,27,27,27,29,29,72,72,34.5,34.5]); | |
console.log("2x4"); | |
calculateCutList([25,25,25,25,25,34,34,34,34,57.375,57.375,72,41,33,33,19.625,19.625,10.5,10.5,17.5,17.5,29,29,5.1875,5.1875,5.1875,5.1875]); | |
console.log("1x4"); | |
calculateCutList([2.25,2.25,23.625,23.625,36,36,41,73.5,20.5]); |
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