虽然我理解数学(Math.jour/ceil/floor)在刺青中的功能,但我一直无法提出这一问题的工作功能。
我想做的是将任何一个数字 圆成一个3的倍数, 或者事实上我所选择的任何多个数。
如果给出了3的多重值,则返回编号的要求如下:
0 returns 0
6 returns 6
7 returns 6
8 returns 9
22 returns 21
23 returns 24
等. etc... 基本上, 返回的值将始终是给定参数的倍数, 在此情况下 3 。
谢谢
您可以使用这样的简单函数 :
function roundMultiple3(num) {
return(Math.round(num / 3) * 3);
}
这将除以 3, 将回合除以 3 至 最近的整数, 然后再乘以 3 以恢复整数值 。
或允许您指定多个参数的通用版本 :
function roundMultiple(num, multiple) {
return(Math.round(num / multiple) * multiple);
}
这样做应该很好:
function roundToNearest(number, multiple) {
return Math.round(number * multiple) / multiple;
}
将 Math.jour () 替换为 Math.floor () 。类似地, Math.ceil () 将折叠到最近的倍数。
这对我管用:
function roundTo(n, x) {
return Math.round(x/n) * n;
}
roundTo(3, 2); // 3
rountTo(4, 7); // 8
Number.prototype.roundup=function(factor){
var n=Math.ceil(this);
while(n%factor)++n;
return n;
}
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