6

I have an Array of numbers and I want to know which number is most frequent in this array. The array sometimes has 5-6 integers, sometimes it has 10-12, sometimes even more - also the integers in the array can be different. So I need a function which can work with different lengths and values of an array.

One example:

myArray = [0, 0, 0, 1, 1]

Another example:

myArray = [4, 4, 4, 3, 3, 3, 4, 6, 6, 5, 5, 2]

Now I am searching for a function which gives out 0 (in the first example) as Integer, as it is 3 times in this array and the other integer in the array (1) is only 2 times in the array. Or for the second example it would be 4.

It seems pretty simple, but I cannot find a solution for this. Found some examples in the web, where the solution is to work with dictionaries or where the solution is simple - but I cannot use it with Swift 3 it seems...

However, I did not find a solution which works for me. Someone has an idea how to get the most frequent integer in an array of integers?

  • For something more concise than for, take a look into map and other higher order functions. – Lucas Watson Jul 17 '16 at 0:25
18
let myArray = [4, 4, 4, 3, 3, 3, 4, 6, 6, 5, 5, 2]

// Create dictionary to map value to count   
var counts = [Int: Int]()

// Count the values with using forEach    
myArray.forEach { counts[$0] = (counts[$0] ?? 0) + 1 }

// Find the most frequent value and its count with max(by:)    
if let (value, count) = counts.max(by: {$0.1 < $1.1}) {
    print("\(value) occurs \(count) times")
}

Output:

4 occurs 4 times

Here it is as a function:

func mostFrequent(array: [Int]) -> (value: Int, count: Int)? {
    var counts = [Int: Int]()

    array.forEach { counts[$0] = (counts[$0] ?? 0) + 1 }

    if let (value, count) = counts.max(by: {$0.1 < $1.1}) {
        return (value, count)
    }

    // array was empty
    return nil
}

if let result = mostFrequent(array: [1, 3, 2, 1, 1, 4, 5]) {
    print("\(result.value) occurs \(result.count) times")    
}
1 occurs 3 times

Update for Swift 4:

Swift 4 introduces reduce(into:_:) and default values for array look ups which enable you to generate the frequencies in one efficient line. And we might as well make it generic and have it work for any type that is Hashable:

func mostFrequent<T: Hashable>(array: [T]) -> (value: T, count: Int)? {

    let counts = array.reduce(into: [:]) { $0[$1, default: 0] += 1 }

    if let (value, count) = counts.max(by: { $0.1 < $1.1 }) {
        return (value, count)
    }

    // array was empty
    return nil
}

if let result = mostFrequent(array: ["a", "b", "a", "c", "a", "b"]) {
    print("\(result.value) occurs \(result.count) times")
}
a occurs 3 times
  • Works, thank you my friend! I did find something like that which did not work, but this one works fantastic. – aignetti Jul 17 '16 at 0:32
  • @vacawama How would this work if myArray had CGPoints? I am getting the error Type 'CGPoint' does not conform to protocol 'Hashable' – Hilarious404 Jan 24 '17 at 12:26
  • @Hilarious404, I see you already asked a new question, which is a good idea since it is a new question. I was going to suggest how to make CGPoint Hashable which is what MartinR's post does. I would suggest you try that. – vacawama Jan 24 '17 at 13:48
  • @vacawama hey, nice algorithm, but how would you solve this if 2 diff numbers are repeadted equally or if there aren't any repeating nums: var equallyRepeatedArr = [0, 1, 1, 2 , 2, 4] or var noRepeatingArr = [0, 7, 18, 20] – Lance Samaria Mar 15 '17 at 12:52
19

You can also use the NSCountedSet, here's the code

let nums = [4, 4, 4, 3, 3, 3, 4, 6, 6, 5, 5, 2]
let countedSet = NSCountedSet(array: nums)
let mostFrequent = countedSet.max { countedSet.count(for: $0) < countedSet.count(for: $1) }

Thanks to @Ben Morrow for the smart suggestions in the comments below.

  • 2
    Thank you ! Did not know about CountedSet until now, great hint. :-) – aignetti Jul 17 '16 at 16:42
  • 1
    @appzYourLife Can you explain why both elements in the lesser-than comparison are $0.0? I would expect them to be $0 and $1. This is the example in the header file for max(by:): let hues = ["Heliotrope": 296, "Coral": 16, "Aquamarine": 156]; let greatestHue = hues.max { a, b in a.value < b.value }; print(greatestHue); // Prints "Optional(("Heliotrope", 296))" – Ben Morrow Aug 24 '16 at 6:05
  • @BenMorrow: My mistake, thank you for your hint. – Luca Angeletti Aug 24 '16 at 12:21
  • @BenMorrow: Yes you can also use $0 and $1. But since the param of max is a tuple of 2 elements you can use $0.0 and $0.1 too. I'm going to use the $0 and $1 syntax as you suggested since it is more clear, but the result doesn't change. – Luca Angeletti Aug 25 '16 at 0:31
  • 1
    @appzYourLife Cool 😎 I also thought of another optimization. You can call max(by:) on countedSet instead of nums. That way, it only has to run each unique element once, instead of running through all the elements in nums. That change will yield results 10 times faster: 0.001598 seconds vs 0.013010 seconds. Just learned the sweet benchmarking trick – Ben Morrow Aug 25 '16 at 0:48
7

The most frequent value is called the "mode". Here's a concise version:

let mode = myArray.reduce([Int: Int]()) { 
    var counts = $0    
    counts[$1] = ($0[$1] ?? 0) + 1
    return counts 
}.max { $0.1 < $1.1 }?.0

Whether that's considered "unreadable" or "elegant" depends on your feelings towards higher order functions. Nonetheless, here it is as a generic method in an extension on Array (so it'll work with any Hashable element type):

extension Array where Element: Hashable {
    var mode: Element? {
        return self.reduce([Element: Int]()) { 
            var counts = $0
            counts[$1] = ($0[$1] ?? 0) + 1 
            return counts 
        }.max { $0.1 < $1.1 }?.0
    }
}

Simply remove the .0 if you'd rather have a tuple that includes the count of the mode.

  • 2
    I believe higher order functions to be quite elegant; using ; to forcibly include as much as possible in single hideously long lines, however, not so much. I edited your answer to increase readability, reverse the edit if you feel it was out of line. (+1 for the solution, the previous applies only to the formatting :) – dfri Jul 17 '16 at 15:18
  • @andyvn22 How would this work if myArray had CGPoints? I am getting the error Type 'CGPoint' does not conform to protocol 'Hashable' – Hilarious404 Jan 24 '17 at 12:35
  • @Hilarious404 That's really a separate question--you need to extend CGPoint to add Hashable conformance. – andyvn22 Jan 24 '17 at 13:55
0

func mostR(num : [Int]) -> (number : Int , totalRepeated : Int)

{ var numberTofind : Int = 0

var total : Int = 0

var dic : [Int : Int] = [:]

for index in num 
{
    if let count = dic[index]
    {
        dic[index] = count + 1 
    }
    else 
    {
        dic[index] = 1
    }

}

var high = dic.values.max()

for (index , count) in dic 
{
   if dic[index] == high 
   {  
       numberTofind = index
       top.append(count)
       total = count
   }

}
return (numberTofind , total)

}

var array = [1,22,33,55,4,3,2,0,0,0,0]

var result = mostR(num : [1,22,3,2,43,2,11,0,0,0])

print("the number is (result.number) and its repeated by :(result.totalRepeated)" )

  • You should provide a short description of how to implement the solution. – Dov Benyomin Sohacheski Jun 17 '18 at 14:35
  • variable count increment value for the key found again in array if let count = myDictionary[number] means at first execution value at key 11 is zero / no value at fist time hence else part execute bcoz we use if else block and assing the value 1 at key 11 next time 11(key) found we check value of count which is 1 as we assined previously and first block execute & increment count by 1 var highest = myDictionary.values.max() gives collection of values and max gives max value among them ,in 2nd for loop check which key having values is equal to highest and append that one value to topNumber – kiran Jun 18 '18 at 16:35
  • this also work with if most repeated number is zero – kiran Jun 19 '18 at 14:03
0

I have tried the following code. It helps especially when the max count is applicable for 2 or more values.

var dictionary = arr.reduce(into: [:]) { counts, number in counts[number, default: 0] += 1}
var max = dictionary.values.max()!
dictionary = dictionary.filter{$0.1 == max}
mode = dictionary.keys.min()!

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