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面试题(算法列举)

作者:互联网

面试题—算法相关

一、字符串反转
给定字符串 “hello,world”,实现将其反转。输出结果:dlrow,olleh

- (void)charReverse
{
    NSString * string = @"hello,world";
    
    NSLog(@"%@",string);
    
    NSMutableString * reverString = [NSMutableString stringWithString:string];
    
    for (NSInteger i = 0; i < (string.length + 1)/2; i++) {
        
        [reverString replaceCharactersInRange:NSMakeRange(i, 1) withString:[string substringWithRange:NSMakeRange(string.length - i - 1, 1)]];
        
        [reverString replaceCharactersInRange:NSMakeRange(string.length - i - 1, 1) withString:[string substringWithRange:NSMakeRange(i, 1)]];
    }
    
    NSLog(@"reverString:%@",reverString);
    
    //C
    char ch[100];
    
    memcpy(ch, [string cStringUsingEncoding:NSUTF8StringEncoding], [string length]);

   //设置两个指针,一个指向字符串开头,一个指向字符串末尾
    char * begin = ch;
    
    char * end = ch + strlen(ch) - 1;
   
//遍历字符数组,逐步交换两个指针所指向的内容,同时移动指针到对应的下个位置,直至begin>=end 
    while (begin < end) {
        
        char temp = *begin;
        
        *(begin++) = *end;
        
        *(end--) = temp;
    }
    
    NSLog(@"reverseChar[]:%s",ch);
}

二、链表反转
反转前:1->2->3->4->NULL
反转后:4->3->2->1->NULL

/**  定义一个链表  */
struct Node {
    
    NSInteger data;
    
    struct Node * next;
};

- (void)listReverse
{
    struct Node * p = [self constructList];
    
    [self printList:p];
    
    //反转后的链表头部
    struct Node * newH = NULL;
    //头插法
    while (p != NULL) {
        
        //记录下一个结点
        struct Node * temp = p->next;
        //当前结点的next指向新链表的头部
        p->next = newH;
        //更改新链表头部为当前结点
        newH = p;
        //移动p到下一个结点
        p = temp;
    }
    
    [self printList:newH];
}
/**
 打印链表

 @param head 给定链表
 */
- (void)printList:(struct Node *)head
{
    struct Node * temp = head;
    
    printf("list is : ");
    
    while (temp != NULL) {
        
        printf("%zd ",temp->data);
        
        temp = temp->next;
    }
    
    printf("\n");
}


/**  构造链表  */
- (struct Node *)constructList
{
    //头结点
    struct Node *head = NULL;
    //尾结点
    struct Node *cur = NULL;
    
    for (NSInteger i = 0; i < 10; i++) {
        
        struct Node *node = malloc(sizeof(struct Node));
        
        node->data = i;
        
        //头结点为空,新结点即为头结点
        if (head == NULL) {
            
            head = node;
            
        }else{
            //当前结点的next为尾结点
            cur->next = node;
        }
        
        //设置当前结点为新结点
        cur = node;
    }
    
    return head;
}

三、有序数组合并
将有序数组 {1,4,6,7,9} 和 {2,3,5,6,8,9,10,11,12} 合并为
{1,2,3,4,5,6,6,7,8,9,9,10,11,12}

 - (void)orderListMerge
{
    int aLen = 5,bLen = 9;
    
    int a[] = {1,4,6,7,9};
    
    int b[] = {2,3,5,6,8,9,10,11,12};
    
    [self printList:a length:aLen];
    
    [self printList:b length:bLen];
    
    int result[14];
    
    int p = 0,q = 0,i = 0;//p和q分别为a和b的下标,i为合并结果数组的下标
    
    //任一数组没有达到s边界则进行遍历
    while (p < aLen && q < bLen) {
        
        //如果a数组对应位置的值小于b数组对应位置的值,则存储a数组的值,并移动a数组的下标与合并结果数组的下标
        if (a[p] < b[q]) result[i++] = a[p++];
        
        //否则存储b数组的值,并移动b数组的下标与合并结果数组的下标
        else result[i++] = b[q++];
    }
    
    //如果a数组有剩余,将a数组剩余部分拼接到合并结果数组的后面
    while (++p < aLen) {
        
        result[i++] = a[p];
    }
    
    //如果b数组有剩余,将b数组剩余部分拼接到合并结果数组的后面
    while (q < bLen) {
        
        result[i++] = b[q++];
    }
    
    [self printList:result length:aLen + bLen];
}
 - (void)printList:(int [])list length:(int)length
{
    for (int i = 0; i < length; i++) {
        
        printf("%d ",list[i]);
    }
    
    printf("\n");
}

四、HASH算法

- (void)hashTest
{
    NSString * testString = @"hhaabccdeef";
    
    char testCh[100];
    
    memcpy(testCh, [testString cStringUsingEncoding:NSUTF8StringEncoding], [testString length]);
    
    int list[256];
    
    for (int i = 0; i < 256; i++) {
        
        list[i] = 0;
    }
    
    char *p = testCh;
    
    char result = '\0';
    
    while (*p != result) {
        
        list[*(p++)]++;
    }
    
    p = testCh;
    
    while (*p != result) {
        
        if (list[*p] == 1) {

            result = *p;
            
            break;
        }
        
        p++;
    }
    
    printf("result:%c",result);
}

五、查找两个子视图的共同父视图
思路:分别记录两个子视图的所有父视图并保存到数组中,然后倒序寻找,直至找到第一个不一样的父视图。

 - (void)findCommonSuperViews:(UIView *)view1 view2:(UIView *)view2
{
    NSArray * superViews1 = [self findSuperViews:view1];
    
    NSArray * superViews2 = [self findSuperViews:view2];
    
    NSMutableArray * resultArray = [NSMutableArray array];
    
    int i = 0;
    
    while (i < MIN(superViews1.count, superViews2.count)) {
        
        UIView *super1 = superViews1[superViews1.count - i - 1];
        
        UIView *super2 = superViews2[superViews2.count - i - 1];
        
        if (super1 == super2) {
            
            [resultArray addObject:super1];
            
            i++;
            
        }else{
            
            break;
        }
    }
    
    NSLog(@"resultArray:%@",resultArray);
    
}
 - (NSArray <UIView *>*)findSuperViews:(UIView *)view
{
    UIView * temp = view.superview;
    
    NSMutableArray * result = [NSMutableArray array];
    
    while (temp) {
        
        [result addObject:temp];
        
        temp = temp.superview;
    }
    
    return result;
}

六、求无序数组中的中位数
中位数:当数组个数n为奇数时,为(n + 1)/2,即是最中间那个数字;当n为偶数时,为(n/2 + (n/2 + 1))/2,即是中间两个数字的平均数。
首先要先去了解一些几种排序算法:iOS排序算法
思路:

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标签:面试题,struct,temp,++,结点,算法,result,数组,列举
来源: https://blog.51cto.com/u_15010671/2778149