1、 给出一个由小写字母组成的字符串,把所有连续出现的 2 个 a 替换成 bb ( 2 个 b ),但是对于超过两个连续的 a,那么这些字符都不作替换。例如:
bad -> bad (一个a,不替换)
baad -> bbbd (替换成bb)
baaad -> baaad (连续三个a,不替换)
apaapaaapaa -> apbbpaaapbb (这里连续的a出现了4次,只有第二段和最后一段被替换)
- (NSString *)replace:(NSString *)str { // CODE HERE NSMutableString *retString = [NSMutableString stringWithString:str]; // 准备替换的字符串 NSString *replaceString = @"bb"; // 正则表达式 (^a{2}[^a]) 以aa(第三个字母不是a)开头,([^a]a{2}[^a]) 字符串中间的aa(前后都不是a),([^a]a{2}$) 以aa结尾(倒数第三个字母不是a) NSRegularExpression *regular = [[NSRegularExpression alloc] initWithPattern:@"(^a{2}[^a])|([^a]a{2}[^a])|([^a]a{2}$)" options:NSMatchingReportProgress error:nil]; NSRange range; do { range = [regular rangeOfFirstMatchInString:retString options:NSMatchingReportProgress range:NSMakeRange(0, retString.length)]; if (range.length == 4) {// 替换中间的aa [retString replaceCharactersInRange:NSMakeRange(range.location + 1, 2) withString:replaceString]; } else if (range.length > 0) { if (range.location == 0) {// 替换开头的aa [retString replaceCharactersInRange:NSMakeRange(range.location, 2) withString:replaceString]; } else {// 替换结尾的aa [retString replaceCharactersInRange:NSMakeRange(retString.length - 2, 2) withString:replaceString]; } } } while (range.length > 0); return retString;}() -> TRUE (匹配)
[()] -> TRUE (匹配,括号可以嵌套)
()() -> TRUE (匹配,括号可以并列排列)
({}([])) -> TRUE (匹配,括号可以任意嵌套,大括号不必在外)
) -> FALSE (不匹配,缺少左括号)
(} -> FALSE (不匹配,左右括号不一样)
{)(} -> FALSE (不匹配,左右括号相反)
- (BOOL)isMatch:(NSString *)str { // CODE HERE // 采用进站出站的思想,遍历完字符串时如果array为空则匹配成功,否则失败 NSMutableArray *array = [NSMutableArray array]; for (int i = 0; i < str.length; i++) { int tag = [self createTagWithString:[str substringWithRange:NSMakeRange(i, 1)]]; if (tag != 0) { int lastTag = [[array lastObject] intValue]; if ((lastTag + tag) == 0) { [array removeLastObject]; } else { [array addObject:@(tag)]; } } } return array.count == 0;}- (int)createTagWithString:(NSString *)str { if ([str isEqualToString:@"("]) { return -1; } else if ([str isEqualToString:@")"]) { return 1; } else if ([str isEqualToString:@"["]) { return -2; } else if ([str isEqualToString:@"]"]) { return 2; } else if ([str isEqualToString:@"{"]) { return -3; } else if ([str isEqualToString:@"}"]) { return 3; } return 0;}3、写一个函数,找出一个数组中出现次数超过一半的数字,如果数字不存在,则返回-1。例如:
[0, 1, 2] --> -1 (每个数字只出现1次)
[0, 1, 2, 1] --> -1 (1出现了2次,刚好一半)
[0, 1, 2, 1, 1] --> 1 (1出现了3次,超过一半)
(注:数组不是按从小到达排序的,也许排序之后更容易找到这个数,但是有没有更好、更快的方法在不重新调整顺序的情况得到结果?)
- (int)mode:(NSArray *)array { // CODE HERE // 将集合中得数字转存到字典中,数字做key,对应出现的次数做value NSMutableDictionary *modeMap = [NSMutableDictionary dictionary]; [array enumerateObjectsUsingBlock:^(id obj, NSUInteger idx, BOOL *stop) { NSString *key = obj; id count = modeMap[key]; int i = [(NSNumber *)count intValue]; [modeMap setObject:@(i + 1) forKey:key]; }]; __block int retInt = -1; // 遍历字典,找出其中value大于集合一半的key并返回 [modeMap.allKeys enumerateObjectsUsingBlock:^(id obj, NSUInteger idx, BOOL *stop) { NSString *key = obj; int mode = [modeMap[key] intValue]; if (mode > array.count / 2) { retInt = key.intValue; *stop = YES; } }]; return retInt;}原文:http://www.cnblogs.com/darain0212/p/5254176.html