4

I have met a question to trim first 0s and last 0s of an array(all element is 0-9), for example,

  • for input [0, 1, 0, 2, 0], the output should be [1, 0, 2]

  • for input [1, 0, 2], the output should be [1, 0, 2]

  • for input [0, 1, 0, 2, 0, 0], the output should be [1, 0, 2]

The basic idea is to find the index of first non-zero number and the last index of non-zero index, and splice the original array.

And my way is to change the array to string and trim it, then change back to array again. trimArray=A=>A.join('').replace(/(^['0']*)|(['0']*$)/g, '').split('').map(a=>a-'0')

Is there any other ideas to do this?

  • 4
    People, before you try to answer this question, please read it more carefully. There have been several answers so far that did not read the question properly. – Oka Feb 23 '16 at 15:11
  • 1
    function() { return [1,0,2]; } – Blazemonger Feb 23 '16 at 15:13
9

We can do this just using array methods...

var a = [0, 1, 0, 2, 0, 0];
while(a[0] === 0) {
    a.shift();
}

while(a[a.length - 1] === 0) {
    a.pop();
}
console.log(a)

If you need to keep the original array intact:(https://jsfiddle.net/4q0un1kp/)

function trimZeros(arr)
{
    var result = [...arr];
    while(result[0] === 0) {
        result.shift();
    }

    while(result[result.length - 1] === 0) {
        result.pop();
    }
    return result;
}

var a =  [0, 1, 0, 2, 0, 0];
var b = trimZeros(a);

alert(a);
alert(b);
  • nice and clean +1 – thatOneGuy Feb 23 '16 at 15:15
  • Heads up, this both a) Mutates the array, and b) will trim '0's, as well as any falsy value. Consider using the strict equality comparison operator ===. – Oka Feb 23 '16 at 15:16
  • @Oka solid points.. but I feel they might be out of scope for the question. I will however update my answer with a method based approach too. – Michael Coxon Feb 23 '16 at 15:20
  • @Oka OP already stated that the only possible array values are the numbers 0 through 9. Other "falsey" values are not an issue. – Blazemonger Feb 23 '16 at 15:20
  • @Blazemonger It's still important to note your edge cases, considering use cases change. – Oka Feb 23 '16 at 15:21
1

Keeping it super simple, we can increment and decrement borderlines for where a slice should take place from and to.

This algorithm is O(n), and has the benefit of minimal function invocations.

function trimZeros (array) {
  var front, back, length = array.length;

  if (!length) return [];

  front = 0;
  back = length - 1;

  while (array[front] === 0) front++

  if (front === length) return [];

  while (array[back] === 0) back--;

  return array.slice(front, back + 1);
}

console.log(trimZeros([0, 1, 0, 2, 0, 0]))

Alternatively, you could compose this as a method which takes a functional test, creating a more generic version. This version has bounds checking (in case of trying to trim undefined).

if (!Array.prototype.trim) {
  Array.prototype.trim = function (test) {
    var start, end, length = this.length;

    if (!length) return [];

    start = 0;
    end = length - 1;

    while (start < length && test(this[start], start)) start++;

    if (start === end) return [];

    while (end >= 0 && test(this[end], end)) end--;

    return this.slice(start, end + 1);
  }
}

console.log([0, 0, 1, 0, 2, 0, 0, 0].trim(e => e === 0));

  • 1
    This is a lot cleaner and faster than the accepted answer. – Daniel Beck Feb 24 '16 at 19:36
0

I came up with this recursive solution to remove every zero in the beginning or end of an array

var array = [0,0,1,2,0,5,0,0,0,0];

// function to remove all zeros
function removeZeros(array){

  if(array[0] === 0 && array[array.length-1] === 0){
    return removeZeros(array.slice(1,array.length-1));
  }
  else if(array[0] === 0){
    array.shift();
    return removeZeros(array);
  }
  else if(array[array.length-1] === 0){
    array.pop();
    return removeZeros(array);
  }
  else{
    return array;
  }
}

console.log(removeZeros(array)); //[1, 2, 0, 5]

I hope it helps

0

You could do it with a for loop:

function trimArray(arr) {
  var lastIndex = arr.length - 1;
  var low = {
      found: false,
      index: 0
    },
    high = {
      found: false,
      index: arr.length
    };

  for (var i = 0; i < arr.length; i++) {
    if (!low.found && arr[i] !== 0) {
      low.index = i;
      low.found = true;
    }
    if (!high.found && arr[lastIndex - i] !== 0) {
      high.index = (lastIndex - i) + 1;
      high.found = true;
    }
    if (high.found && low.found) break;
  }

  if (high.found && low.found) {
    var highCut = -(arr.length - high.index)
    return arr.slice(low.index, highCut ? highCut : arr.length);
  } else {
    return [];
  }
}

var testCases = [
    [0],
    [0, 0],
    [0, 1],
    [0, 1, 0],
    [0, 1, 0, 1, 0],
    [0, 1, 0, 1],
    [1, 0, 1, 0],
    [1, 0, 1]
  ];

var result = testCases.map(trimArray);
results.innerHTML = JSON.stringify(result, null);
<pre id="results"></pre>

-2
var arr = [0, 0, 2, 3, 0, 0];

while (arr[0] === 0) {
    arr.shift();
}
while (arr[arr.length-1] === 0) {
    arr.pop();
}
  • This will trim only one zero from both ends. – JJJ Feb 23 '16 at 15:18
  • @Juhana as I know this is what author nids - "to trim first 0s and last 0s of an array" – IceJOKER Feb 23 '16 at 15:40
  • No, the "s" in "0s" means plural. "[all] first zeros" and "[all] last zeros". Look at the third example in the question. – JJJ Feb 23 '16 at 15:41
  • @Juhana you're right, didn't pay attention – IceJOKER Feb 23 '16 at 15:45

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