I have been working through the daily coding problems and came to this one.

Given an array of integers, return a new array such that each element at index i of the new array is the product of all the numbers in the original array except the one at i.

For example, if our input was [1, 2, 3, 4, 5], the expected output would be [120, 60, 40, 30, 24]. If our input was [3, 2, 1], the expected output would be [2, 3, 6]. Follow-up: what if you can't use division?

So the easy way to do this would be just to multiply all the elements in the array and then just divide by [i] but that gives the problem that if I = 0 you are going to get an exception error.

I'm aware of the aggregate function that does an operation on all members of an array but is there a way to modify aggregate so that it does it to all members but one, or is there some other function/method that gives this functionality?

  • 1
    If you take advantage of LINQ you can use Where to grab all values that aren't 0 – Jaxi Nov 8 at 15:29
  • 1
    Do you have some code you've tried that operates on all the members? – Steve Danner Nov 8 at 15:29
  • 1
    Or use Skip(1) method – S.Akbari Nov 8 at 15:29
  • The examples are only correct if we assume that array indexes start at 1. Is that the assumption that we should make, or are the examples wrong? – Peter B Nov 8 at 15:32
  • I think we can make that assumption. – Neil Meyer Nov 8 at 15:35

If source is small, you can skip index with a help of Where, e.g.

  int[] source = new int[] { 1, 2, 3, 4, 5 };

  int[] result = Enumerable
    .Range(0, source.Length)
    .Select(i => source
       .Where((value, index) => index != i) // all items except i-th
       .Aggregate((s, a) => s * a))         // should be multiplied 
    .ToArray();

  Console.Write(string.Join(", ", result));

Outcome:

  120, 60, 40, 30, 24

Edit: However, the solution has O(N**2) time complexity; in case the initial source array is large we can implement a more efficient O(N) code (and yes, we should mind zeroes):

  int[] source = ...

  int[] result;

  int zeroCount = source.Count(item => item == 0);

  if (zeroCount >= 2)      // All zeroes case
    result = new int[source.Length];   
  else if (zeroCount == 1) // All zeroes save one value case
    result = source
      .Select(v => v == 0
         ? source.Where(item => item != 0).Aggregate((s, a) => s * a)
         : 0)
      .ToArray(); 
  else {                   // No zeroes case
    // long, 1L: to prevent integer overflow, e.g. for {1000000, 1000000} input
    long total = source.Aggregate(1L, (s, a) => s * a);

    result = source
      .Select(v => (int)(total / v)) // yes, it's a division...
      .ToArray(); 
  }
  • 1
    Wonderful answer. thank you very much – Neil Meyer Nov 8 at 15:48

There are no built-in functions that aggregate on all except a single specified member (would you specify it by value or by index?)

However, a loop would be very straightforward, and Linq gives you the Where method where you can create whatever predicate you want and can then apply aggregations on the filtered result.

So to sum all numbers of an array instead of the third one, for example, you could do something like:

array.Where((x,i) => i != 2).Sum();  // use 2 since the index is 0-based

There's also not a built-in Linq method for Product, but I'm certain there's one out there, or again you could easily roll-your-own.

  • 1
    Also very good, thank you. – Neil Meyer Nov 8 at 15:47

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