How can I use a For-Loop to return a specific number series [duplicate]
var arr = [4, 5, 7, 8, 14, 45, 76];
function even(a) {
var ar = [];
for (var i = 0; i < a.length; i++) {
ar.push(a[2 * i + 1]);
}
return ar;
}
alert(even(arr));
http://jsbin.com/unocar/2/edit
I have tried this code in order to output even (index) elements of an array. It works, but it also outputs some empty elements. How do I fix this code to output only existing elements?
Solution 1:
Either use modulus:
for (var i = 0; i < a.length; i++) {
if(i % 2 === 0) { // index is even
ar.push(a[i]);
}
}
or skip every second element by incrementing i accordingly:
for(var i = 0; i < a.length; i += 2) { // take every second element
ar.push(a[i]);
}
Notice: Your code actually takes the elements with odd indexes from the array. If this is what you want you have to use i % 2 === 1 or start the loop with var i = 1 respectively.
Solution 2:
For IE9+ use Array.filter
var arr = [4,5,7,8,14,45,76];
var filtered = arr.filter(function(element, index, array) {
return (index % 2 === 0);
});
With a fallback for older IEs, all the other browsers are OK without this fallback
if (!Array.prototype.filter)
{
Array.prototype.filter = function(fun /*, thisp */)
{
"use strict";
if (this === void 0 || this === null)
throw new TypeError();
var t = Object(this);
var len = t.length >>> 0;
if (typeof fun !== "function")
throw new TypeError();
var res = [];
var thisp = arguments[1];
for (var i = 0; i < len; i++)
{
if (i in t)
{
var val = t[i]; // in case fun mutates this
if (fun.call(thisp, val, i, t))
res.push(val);
}
}
return res;
};
}
Solution 3:
This will work on 2018 :)
take the odd indexes and apply to filter
var arr = [4, 5, 7, 8, 14, 45, 76,5];
let filtered=arr.filter((a,i)=>i%2===1);
console.log(filtered);