2

I am having trouble with below question. I basically have to write a code/function that returns true if a portion of str1 can be rearraged to str2.

Write function scramble(str1,str2) that returns true if a portion of str1 characters can be rearranged to match str2, otherwise returns false.

For example: str1 is 'rkqodlw' and str2 is 'world' the output should return true. str1 is 'cedewaraaossoqqyt' and str2 is 'codewars' should return true. str1 is 'katas' and str2 is 'steak' should return false.

Only lower case letters will be used (a-z). No punctuation or digits will be included. Performance needs to be considered.

Below is the current code I have:

function scramble(str1, str2) {
  var first; //longer string
  var second; //shorter string

  if(str1 || str2 === "undefined") {
    return false;
  }

  if(str1.length > str2.length) {
    first = str1;
    second = str2
  } else if(str2.length > str1.length) {
    first = str2;
    second = str1;
  }

  for (i=0; i<second.length; i++) {
    if (first.indexOf(second[i]) === -1) {
      return false;
    }
  }

  return true;

}

Could you please help me with this question?

  • 2
    I'm confused, wouldn't it just be as simple as checking if all the characters in str2 are in str1, and if so, return true ? – adeneo Nov 26 '16 at 20:59
  • 1
    Also, if(str1 || str2 === "undefined") { isn't doing what you probably think its doing – Patrick Evans Nov 26 '16 at 21:00
5

You could use a hash table with the count of the letters and check with count and decrement the count.

This proposal does not mutilate the arrays.

function scramble(str1, str2) {
    var count = Object.create(null);

    Array.prototype.forEach.call(str1, function(a) {
        count[a] = (count[a] || 0) + 1;
    });

    return Array.prototype.every.call(str2, function(a) {
        return count[a]--;
    });
}

console.log(scramble('rkqodlw', 'world'));              // true
console.log(scramble('cedewaraaossoqqyt', 'codewars')); // true
console.log(scramble('katas', 'steak'));                // false
console.log(scramble('', 'o'));                // false

| improve this answer | |
  • A bit harder to understand but better time complexity than the other solutions. – James Buck Nov 26 '16 at 21:14
  • Not sure, but you have to iterate and create a map, and it's not always faster than just looking up a value with a built-in like indexOf – adeneo Nov 26 '16 at 21:49
  • but why is splicing faster? – Nina Scholz Nov 26 '16 at 21:51
1

Here is the function with some tests:

function scramble(str1, str2) {
  var l = str2.length;
  for (var i = 0; i < l; i++) {
    if (str1.indexOf(str2[i]) > -1) {
      str1 = str1.replace(str2[i], '');
    } else {
      return false;
    }
  }
  return true;
}

function test(str1, str2) {
  console.log('testing "'+str1+'" w/ "'+str2+'": '+(scramble(str1, str2) ? 'true' : 'false'));
}

test('rkqodlw', 'world');
test('cedewaraaossoqqyt', 'codewars');
test('katas', 'steak');

The tests are returning:

testing "rkqodlw" w/ "world": true
testing "cedewaraaossoqqyt" w/ "codewars": true
testing "katas" w/ "steak": false

The function checks if every char of str2 is in str1 and removes it from str1 so that a char from str1 doesn't count twice.

| improve this answer | |
1

Split the strings into arrays, and check if every character in the second array is inside the first array.

You probably want to splice of characters as you go, to account for mulitiples of the same character

function scramble(str1, str2) {
    var [arr1, arr2] = [str1.split(''), str2.split('')];
    return arr2.every(x=>arr1.indexOf(x)===-1?false:arr1.splice(arr1.indexOf(x),1));
}

console.log( scramble('rkqwodlw', 'world') );     // true
console.log( scramble('mgoaon', 'moon') );        // true
console.log( scramble('oijhnnassduda', 'moon') ); // false, only one "o"
console.log( scramble('test', 'unicorn') );       // false

| improve this answer | |
0
function scramble(str1, str2) {
var [a,b,c] = [str1.split(''),str2.split(''),[]];
for (let i = 0; i < b.length; i++) {
    if (a.indexOf(b[i]) !== -1) {c.push(b[i]), a.splice(a.indexOf(b[i]), 1);}
}
return b.join('') === c.join('');}
| improve this answer | |
  • 2
    will be better if you could provide sample input and output, so we don't need to guess what this code is doing. – ardhitama Mar 25 at 13:23
  • 2
    Please don't post only code as an answer, but also include an explanation of what your code does and how it solves the problem of the question. Answers with an explanation are usually of higher quality and are more likely to attract upvotes – Krzysztof Janiszewski Mar 25 at 16:29
  • While this may answer the question, it was flagged for review. Answers with no explanation are often considered low-quality. Please provide some commentary in the answer for why this is the correct answer. – Dan Mar 26 at 3:38

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