4

here is for for loop method and the result i want is same like this for the below this code also

function reduce (dollars) {
  let arr = [];
  let change = [10000,5000,2000,1000,500,200,100,50,20,10,1];

  if(dollars === 0) return arr
  for(key of change){
    if(key <= dollars) return arr.concat(key).concat(reduce (dollars -= key));
  }
}

console.log(reduce(900))
console.log(reduce(9000))

how to use reduce and using the spread syntax in recursion way, i got some error and the concat function is called not function when i use reduce by recursively here is the code ,

function reduce(dollar) {
  let change = [10000,5000,2000,1000,500,200,100,50,20,10,1];
  if(dollar === 0) return c
  let c = change.reduce((ar, el) => {
    if(dollar >= el) {
      return ar.concat(el).concat(reduce(dollar-=el))
    }
  }, [])
}
let [ one, two, three] = [10020,9000,900];
console.log(reduce(one));
console.log(reduce(two));
console.log(reduce(three));

the output for the reduce(one) is [ 10000, 20 ]

2

Ensure that the reduce handler always returns the array, seeing the handler expects ar to be an array. If undefined is returned in the reduce handler, that will be passed through to the next reduce iteration as ar, which is the cause of the error you're getting.

Also, ensure c is defined before returning it, or revise the code as shown below to avoid the need for c completely:

function reduce(dollar) {

  let change = [10000,5000,2000,1000,500,200,100,50,20,10,1];
  
  /* if dollar === 0 then return [] */
  if (dollar === 0) return [];      
    
  /* Return reduced result (ie "c" in original code) */
  return change.reduce((ar, el) => {
        
    /*
    While el deducted from dollar yields positive value,
    */
    while (dollar - el >= 0) {
      
      /*
      then decrement dollar amout by current el and,
      */
      dollar -= el;  
      
      /*
      add el to current result
      */
      ar = ar.concat(el)
    }
    
    /*
    Return resulting ar array
    */
    return ar;
    
  }, [])
}

let [ one, two, three ] = [ 10020, 9000, 900 ];
console.log(reduce(one));
console.log(reduce(two));
console.log(reduce(three));

4
  • ok you just edited it, so for that case , we should make conditions in reduce ? and we cant use spread for that? – Zum Dummi Feb 5 '19 at 0:42
  • @ZumDummi just updated answer based on my understanding of your post - does that help? – Dacre Denny Feb 5 '19 at 0:43
  • for the output two and three not like i want, it should to be ` [ 5000, 2000, 2000 ]` for tow and` [ 500, 200, 200 ]` for three – Zum Dummi Feb 5 '19 at 0:49
  • @ZumDummi please consider accepting this answer if you have found it useful :-) – Dacre Denny Feb 5 '19 at 1:24

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