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swift-Algorithm

新增leetcode题解--swift版本哦 leetcode题解

stack,用swift实现的

queue,用swift实现

高效的FIFOQueue

先设计一个Queue的协议

protocol Queue{
  associatedtype Element
  mutating func enqueue(_ newElement: Element)
  mutating func dequeue() -> Element?
}

///一个高效的FIFO队列,其元素类型为Element
struct FIFOQueue<Element>:Queue{
  private var left: [Element] = []
  private var right: [Element] = []
  
  mutating func enquene(_ newElement: Element){
    right.append(newElement)
  }
  
  mutating func dequenue() -> Element?{
    if left.isEmpty{
      left = right.reversed()
      right.removeAll()
    }
    return left.popLast()
  }
}

为什么我们要用两个数组来实现这个队列呢?其主要原因是为了效率,可以思考一下这样设置的妙处哈!!!

接下啦我们为FIFOQueue添加Collection协议

extension FIFOQueue: Collection{
public var startIndex: Int{return 0}
public var endIndex: Int{return left.count + right .count}

//precondition的用法与assert类似,当条件不满足时,则终止程序,并打印出你设置的message或者默认的错误提示
public func index(after i: Int) -> Int {
    precondition(i < endIndex)
    return i + 1
}

public subscript(position: Int) -> Element{
    precondition((0..<endIndex).contains(position),"Index out of bounds")
    if position < left.endIndex{
        return left[left.count - position - 1]
    }else{
        return right[position - left.count]
    }
}

typealias Indices = CountableRange<Int>
var indices: CountableRange<Int>{
    return startIndex..<endIndex
 }
}

为了让我们用熟悉的[value1,value2,ect]语法创建一个队列,我们可以让FIFOQueue遵守ExpressibleByArrayLiteral协议

extension FIFOQueue: ExpressibleByArrayLiteral{
public init(arrayLiteral elements: Element...) {
    left = elements.reversed()
    right = []
  }
}

用swift完成一个简单的算法

题目:寻找到100以内同时满足是偶数并且还是其他数字的平方的数字

(1...<10).map{$0 * $0}.filter{ $0 % 2 == 0}
//[4,16,36,64]

用迭代器实现斐波那契数

还记得我们最常见的for in 循环吗? 他的实现就是基于迭代器

protocol Sequence {
   associatedtype Iteraator: IteratorProtocol
   func makeIterator() -> Iterator
   //...
 }
 
 protocol IteratorProtocol {
    associatedtype Element
    mutating func next() -> Element?
 }
 
 //那么for in 循环是怎么实现的呢?
 
 var iterator = someSequence.makeIterator()
 while let element = iterator.next() {
    doSomething(with: element)
  }

那么斐波那契序列怎么依靠迭代器实现呢?

 struct Fibs: ItreatorProtocol {
     var  state = (0,1)
     mutating func next() -> Int? {
        let upcomingNumber = state.0
        state = (state.1,state.0 + state.1)
        return upcomingNumber
     }
  }
  
  //这样就实现了斐波那契数列
  //那么要如何使用呢?
  
  var textFib = Fib()
  while let fib = textFib.next(), fib < 1000000000{
       print(fib)
   }
   
   这样就很顺利的打印了1000000000以内的斐波那契数,而且速度很快

swift4.2实现List

class ListNode{
    var val: Int
    var next: ListNode?

    init(_ val: Int) {
        self.val = val
        self.next = nil
    }
}

class List{
    var head: ListNode?
    var real: ListNode?

    //尾插法
    func appendToReal(_ val: Int){
         if real == nil {
             real = ListNode(val)
             head = real
         }else{
            real!.next = ListNode(val)
            real = real!.next
        }
    }

    //头插法
    func appendToHead(_ val: Int){
         if head == nil{
            head = ListNode(val)
            real = head
        }else{
            let temp = ListNode(val)
            temp.next = head
            head = temp
        }
    }

    func printList(){
        var temp = head
        while temp != nil {
            print(temp!.val)
            temp = temp!.next
        }
    }
    }

let textList = List()
   [1,2,3,4,5].map{
   textList.appendToHead($0)
   }
textList.printList()

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