• JAVA求集合中的组合


    好几个月没弄代码了,今天弄个求组合的DEMO

    思路是将集合的每个值对照一个索引,索引大小是集合的大小+2.索引默认为[000...000],当组合后选取的组合值demo为[0100..00]。然后根据遍历索引来到集合中取值。

    上代码:

    import java.util.ArrayList;
    import java.util.Iterator;
    import java.util.List;
    
    public class ComBit {
    
        public static void main(String[] args) {
            // Integer test
            int[] combination = new int[] { 1, 2, 3, 4 };
            List<Integer> combinationlist = new ArrayList<Integer>();
            for (Integer integer : combination) {
                combinationlist.add(integer);
            }
            ComBitIterator<Integer> i = new ComBitIterator<Integer>(combinationlist);
            while (i.hasNext()) {
                Object obj = i.next();
                System.out.println(obj.toString());
            }
            // String test
            String[] str = new String[] { "apple", "orange", "tomato", "potato" };
            List<String> combinationSlist = new ArrayList<String>();
            for (String s : str) {
                combinationSlist.add(s);
            }
            ComBitIterator<String> ii = new ComBitIterator<String>(combinationSlist);
            while (ii.hasNext()) {
                Object obj = ii.next();
                System.out.println(obj.toString());
            }
    
        }
    
    }
    
    class ComBitIterator<T> implements Iterator<T> {
    
        private int[] _bitArray = null;
    
        protected final int _length;
    
        protected final List<T> combination;
    
        protected List<T> _currentSet;
    
        public ComBitIterator(List<T> combination) {
            _currentSet = new ArrayList<T>();
            this._length = combination.size();
            this._bitArray = new int[_length + 2];
            this.combination = combination;
        }
    
        @Override
        public boolean hasNext() {
            return _bitArray[_length + 1] != 1;
        }
    
        @SuppressWarnings("unchecked")
        @Override
        public T next() {
            _currentSet.clear();
            for (int index = 1; index <= _length; index++) {
                if (_bitArray[index] == 1) {
                    T value = combination.get(index - 1);
                    _currentSet.add(value);
                }
            }
            int i = 1;
            while (_bitArray[i] == 1) {
                _bitArray[i] = 0;
                i++;
            }
            _bitArray[i] = 1;
            return (T) _currentSet;
        }
    
    }

    ------------------------------------------------分割线---------------------------------------------------------

    PS:代码源于要求求数字1-20中 任取N的组合后合值为36,于是思路想到两种,第一种是递归,第二种虽然也是递归,但是想弄个通用的,就有了以上的代码。另外群里有人写出了直接递归的代码,也附上:

    public static void main(String[] args) {
            combinateDataOfRange(1, 20, 36);
        }
    
        public static void combinateDataOfRange(int min, int max, int target) {
            combinateData(0, min, max, target, new Stack<Integer>());
        }
    
        public static void combinateData(int sum, int min, int max, int target,
                Stack<Integer> stack) {
            for (int i = stack.isEmpty() ? min : (Integer) stack.lastElement() + 1; i < max; ++i) {
                int tempSum = sum + i;
                stack.push(i);
                if (tempSum == target) {
                    System.out.println(stack + "=" + target);
                } else {
                    combinateData(tempSum, min, max, target, stack);
                }
                stack.pop();
            }
        }
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  • 原文地址:https://www.cnblogs.com/GYoungBean/p/4567023.html
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