7

I have a map[string]int

I want to get the x top values from it and store them in another data structure, another map or a slice. From https://blog.golang.org/go-maps-in-action#TOC_7. I understood that:

When iterating over a map with a range loop, the iteration order is not specified and is not guaranteed to be the same from one iteration to the next.

so the result structure will be a slice then.

I had a look at several related topics but none fits my problem:

related topic 1

related topic 2

related topic 3

What would be the most efficient way to do this please?

Thanks,

Edit: My solution would be to turn my map into a slice and sort it, then extract the first x values.
But is there a better way ?

package main

import (
    "fmt"
    "sort"
)

func main() {

    // I want the x top values
    x := 3

    // Here is the map
    m := make(map[string]int)
    m["k1"] = 7
    m["k2"] = 31
    m["k3"] = 24
    m["k4"] = 13
    m["k5"] = 31
    m["k6"] = 12
    m["k7"] = 25
    m["k8"] = -8
    m["k9"] = -76
    m["k10"] = 22
    m["k11"] = 76

    // Turning the map into this structure
    type kv struct {
        Key   string
        Value int
    }

    var ss []kv
    for k, v := range m {
        ss = append(ss, kv{k, v})
    }

    // Then sorting the slice by value, higher first.
    sort.Slice(ss, func(i, j int) bool {
        return ss[i].Value > ss[j].Value
    })

    // Print the x top values
    for _, kv := range ss[:x] {
        fmt.Printf("%s, %d\n", kv.Key, kv.Value)
    }
}

Link to golang playground example

If I want to have a map at the end with the x top values, then with my solution I would have to turn the slice into a map again. Would this still be the most efficient way to do it?

8
  • 2
    Please post the golang code you have tried along with the dummy data you want to sort.
    – Himanshu
    Commented Sep 26, 2018 at 9:51
  • 1
    The actual problem is totally unrelated to a map. You have a stream of values (by iterating the map or whatever) and you have to find the largest n values. You should be able to come up with at least one solution. Remember: Nothing of map helps here.
    – Volker
    Commented Sep 26, 2018 at 10:16
  • You can test each methods you have found using the standard library see this. Post it here so we can validate, if you like. Under more general terms, if efficiency is a matter, you might want to search for alternative data structure other than maps.
    – user4466350
    Commented Sep 26, 2018 at 10:36
  • I updated my post to fit your comments. Commented Sep 26, 2018 at 13:09
  • @Volker I updated my post, would you consider deleting the OnHold tag please? Commented Sep 27, 2018 at 8:13

1 Answer 1

8

Creating a slice and sorting is a fine solution; however, you could also use a heap. The Big O performance should be equal for both implementations (n log n) so this is a viable alternative with the advantage that if you want to add new entries you can still efficiently access the top N items without repeatedly sorting the entire set.

To use a heap, you would implement the heap.Interface for the kv type with a Less function that compares Values as greater than (h[i].Value > h[j].Value), add all of the entries from the map, and then pop the number of items you want to use.

For example (Go Playground):

func main() {
  m := getMap()

  // Create a heap from the map and print the top N values.
  h := getHeap(m)
  for i := 1; i <= 3; i++ {
    fmt.Printf("%d) %#v\n", i, heap.Pop(h))
  }
  // 1) main.kv{Key:"k11", Value:76}
  // 2) main.kv{Key:"k2", Value:31}
  // 3) main.kv{Key:"k5", Value:31}
}

func getHeap(m map[string]int) *KVHeap {
  h := &KVHeap{}
  heap.Init(h)
  for k, v := range m {
    heap.Push(h, kv{k, v})
  }
  return h
}

// See https://golang.org/pkg/container/heap/
type KVHeap []kv

// Note that "Less" is greater-than here so we can pop *larger* items.
func (h KVHeap) Less(i, j int) bool { return h[i].Value > h[j].Value }
func (h KVHeap) Swap(i, j int)      { h[i], h[j] = h[j], h[i] }
func (h KVHeap) Len() int           { return len(h) }

func (h *KVHeap) Push(x interface{}) {
  *h = append(*h, x.(kv))
}

func (h *KVHeap) Pop() interface{} {
  old := *h
  n := len(old)
  x := old[n-1]
  *h = old[0 : n-1]
  return x
}
1
  • 2
    For the avoidance of doubt, using a greater than comparison in Less causes the sort order to be reversed. This is generally what you want if you want the "top x items" in the set. Commented Sep 28, 2018 at 18:12

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service and acknowledge you have read our privacy policy.

Not the answer you're looking for? Browse other questions tagged or ask your own question.