0

Here i have multiple nested class data and i want to get sum of SelectedProductServices.count

my data class started with OrderStructure which that have a list as SelectedProducts and each of them have SelectedProductServices which count is here. now how can i use fold or reduce to get sum of them?

for example:

order.products.map((p)=>p.services.fold(0,(a,b)=>a!+b))

should return 600

my code:

void main() {
     OrderStructure order = OrderStructure('test',<SelectedProducts>[
      SelectedProducts(
          1, <SelectedProductServices>[
        const SelectedProductServices(1, 100, 1),
        const SelectedProductServices(1, 500, 1),
      ]
      )
    ]);
  
    getSum();
}

void getSum(){
   return order.products.map((p)=>p.services.fold(0,(a,b)=>a!+b));
}

class OrderStructure {
  final String title;
  final List<SelectedProducts> products;

  const OrderStructure(this.title, this.products);
}

class SelectedProducts {
  final int id;
  final List<SelectedProductServices> services;

  SelectedProducts(this.id, this.services);
  @override
  bool operator ==(other) => other is SelectedProducts && other.id == id;

  @override
  int get hashCode => id.hashCode;
}

class SelectedProductServices {
  final int id;
  final int count;
  final int cost;

  const SelectedProductServices(this.id, this.count, this.cost);
}
0

2 Answers 2

2

Since you have nested list, you'd have to fold twice to get a single value:

int getSum(){
   int sum(int a, SelectedProductServices s) => a + s.count;
   return order.products.map((p) => p.services.fold(0, sum)).fold(0, (a,b) => a + b);
}
0
1

This should do it

int getSum(){
     return order.products.map((p) => p.services.fold(0, (int a, b) => a + b.count)).first;
}
2
  • 1
    This would only return the sum for the first product, since you have added first at the end. You'd need another fold for the total sum.
    – TmKVU
    Aug 20, 2021 at 11:53
  • You are rigth @TmKVU, thanks for pointing it out
    – t00n
    Aug 20, 2021 at 11:57

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

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