21

I have an array like [A,B,C,D]. I want to access that array within a for loop like as

var arr = [A,B,C,D];

var len = arr.length;
for(var i = 0; i<len; i++){
    0 - A,B,C
    1 - B,C,D
    2 - C,D,A
    3 - D,A,B
}

I want to access that like in JavaScript, any ideas?

9 Answers 9

51
+100

Answering to the main question, someone can access an array in a circular manner using modular arithmetic. That can be achieved in JavaScript with the modulus operator (%) and a workaround.

Given an array arr of a length n and a value val stored in it that will be obtained through an access index i, the circular manner, and safer way, to access the array, disregarding the value and sign of i, would be:

let val = arr[(i % n + n) % n];

This little trick is necessary -- someone can not use the modulus result straightforwardly -- because JavaScript always evaluates a modulus operation as the remainder of the division between dividend (the first operand) and divisor (the second operand) disconsidering their signs but assigning to the remainder the sign of the dividend. That behavior does not always result in the desired "wrap around" effect of the modular arithmetic and could result in a wrong access of a negative position of the array.

References for more information:

  1. https://www.khanacademy.org/computing/computer-science/cryptography/modarithmetic/a/what-is-modular-arithmetic
  2. https://en.wikipedia.org/wiki/Modular_arithmetic
  3. https://en.wikipedia.org/wiki/Modulo_operation
  4. https://dev.to/maurobringolf/a-neat-trick-to-compute-modulo-of-negative-numbers-111e
5
  • OK. But this does not provide a wrap around slice of the source array. It also fails with negative numbers; e.g. [1,2,3] start = 1,` len = -3` => [2,1,3].
    – Garrett
    Feb 2, 2021 at 2:40
  • 3
    I don't get it. (Negative number as array length?) Could you rephrase what you are trying to point out? Feb 3, 2021 at 21:06
  • Why not just let val = arr[Math.abs(i % n)]; ?
    – Mkdgs
    Feb 5, 2021 at 10:43
  • 1
    Unfortunately that won't work for negative values of i. The result -- remainder of the division -- will be different from the result expected from modular arithmetic. For example in JS (-1 % 10 + 10) % 10 evaluates to 9, but Math.abs(-1 % 10) evaluates to 1. Feb 10, 2021 at 19:06
  • @wwgoncalves, you made my day. People in the comments below are giving funny answers, but yours is the simplest and most effective. Jun 17, 2023 at 4:20
15

Try this:

var arr = ["A","B","C","D"];
for (var i=0, len=arr.length; i<len; i++) {
    alert(arr.slice(0, 3).join(","));
    arr.push(arr.shift());
}

Without mutating the array, it would be

for (var i=0, len=arr.length; i<len; i++) {
    var str = arr[i];
    for (var j=1; j<3; j++)
        str += ","+arr[(i+j)%len]; // you could push to an array as well
    alert(str);
}
// or
for (var i=0, len=arr.length; i<len; i++)
    alert(arr.slice(i, i+3).concat(arr.slice(0, Math.max(i+3-len, 0)).join(","));
0
11

Simply using modulus operator you can access array in circular manner.

var arr = ['A', 'B', 'C', 'D'];

for (var i = 0, len = arr.length; i < len; i++) {
  for (var j = 0; j < 3; j++) {
    console.log(arr[(i + j) % len])
  }
  console.log('****')
}

0
3

how about this one-liner I made ?

var nextItem = (list.indexOf(currentItem) < list.length - 1)
                        ? list[list.indexOf(currentItem) + 1] : list[0];
2
for (var i = 0; i < arr.length; i++) {
    var subarr = [];
    for (var j = 0; j < 3; j++) {
        subarr.push(arr[(i+j) % arr.length]);
    }
    console.log(i + " - " + subarr.join(','));
}
0

One line solution for "in place" circular shift:

const arr = ["A","B","C","D"];
arr.forEach((x,i,t) => {console.log(i,t); t.push(t.shift());});
console.log("end of cycle", arr); // control: cycled back to the original

logs:

0 Array ["A", "B", "C", "D"]
1 Array ["B", "C", "D", "A"]
2 Array ["C", "D", "A", "B"]
3 Array ["D", "A", "B", "C"]
"end of cycle" Array ["A", "B", "C", "D"]

If you want only the first 3 items, use:

arr.forEach((x,i,t) => {console.log(i,t.slice(0, 3)); t.push(t.shift());});
3
0

Another solutions:

    var arr = ['A','B','C','D'];
    var nextVal = function (arr) {        
        return arr[( ( ( nextVal.counter < ( arr.length - 1 ) ) ? ++nextVal.counter : nextVal.counter=0  )   )];
    };

    for(var i=0;i<arr.length;i++){
        console.log(nextVal(arr)+','+nextVal(arr)+','+nextVal(arr));
    }

And based on Modulo :

var arr = ['A','B','C','D'];
var len = arr.length;

var nextVal = function (arr, dir = 1) { 
        if ( dir < 0 ) { nextVal.counter--;}
        let i = (nextVal.counter % len + len) % len;  
        if ( dir > 0 ) { nextVal.counter++; }
        return arr[i];
};

nextVal.counter=0;
for(var i=0;i<arr.length;i++){
    console.log(nextVal(arr)+','+nextVal(arr)+','+nextVal(arr));
}

// in reverse 
console.log('-------------------');
nextVal.counter=0;
for(var i=0; i<10; i++) {
    console.log(nextVal(arr, -1)+','+nextVal(arr, -1)+','+nextVal(arr, -1));
}

0

You could get the sliced part from index and the rest of slicing from start, if necessary.

This appraoch does not mutate the array.

const
    getCircular = (array, size) => array.map((_, i, a) => [
        ...a.slice(i, i + size),
        ...a.slice(0, i + size < a.length ? 0 : i + size - array.length)
    ]);


console.log(getCircular(['A', 'B', 'C', 'D'], 3).map(a => a.join('')));
console.log(getCircular(['A', 'B', 'C', 'D'], 5).map(a => a.join('')));
.as-console-wrapper { max-height: 100% !important; top: 0; }

0

We can simply achieve this by using Array.splice() method along with the Destructuring assignment

Live Demo :

// Input array.
let arr = ['A', 'B', 'C', 'D'];

// Finding the length of an array.
const len = arr.length;

// Iterattion based on array length. 
for(let i = 0; i < len; i++) {
    const splittedArr = arr.splice(0, 3);
    arr.push(splittedArr[0]);
    arr = [splittedArr[1], splittedArr[2], ...arr]
    console.log(splittedArr);
}

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