LeetCode【8】. String to Integer (atoi) --java实现

String to Integer (atoi)

Implement atoi to convert a string to an integer.

Hint: Carefully consider all possible input cases. If you want a challenge, please do not see below and ask yourself what are the possible input cases.

Notes: It is intended for this problem to be specified vaguely (ie, no given input specs). You are responsible to gather all the input requirements up front.

Update (2015-02-10):
The signature of the C++ function had been updated. If you still see your function signature accepts a const char * argument, please click the reload button  to reset your code definition.

本文简单点说就是把字符串里的数字转成整形,可是题目有几点要求: 

Requirements for atoi:

The function first discards as many whitespace characters as necessary until the first non-whitespace character is found. Then, starting from this character, takes an optional initial plus or minus sign followed by as many numerical digits as possible, and interprets them as a numerical value.

The string can contain additional characters after those that form the integral number, which are ignored and have no effect on the behavior of this function.

If the first sequence of non-whitespace characters in str is not a valid integral number, or if no such sequence exists because either str is empty or it contains only whitespace characters, no conversion is performed.

If no valid conversion could be performed, a zero value is returned. If the correct value is out of the range of representable values, INT_MAX (2147483647) or INT_MIN (-2147483648) is returned.

      翻译大概意思是:

1、先丢弃字符串前面的空白字符知道扫到第一个非空白字符;然后将一个合法的数值的字符串以及其前面的一个正负号一同装换为int。

2、该合法数值子字符串中或后,可能包括其它非数值的特殊字符,忽略这些子字符串;

3、若第一个非空子字符串非护法的整型数值。或根本就没有,甚至该字符串可能都是特殊字符或空字符,则不作转换0;

4、若没有有效地转换,则返回0,若有返回数值超出边界,则返回边界值。

一、思路:

       本题尽管属于比較简单的级别。可是在没考虑好所有可能的情况下。总是会出现遗漏一些细节的结果,导致提交后总是有新的意外情况出现。如:“     +-15651”、“    *    6644”这些首次出现的字符串不能构成数字的都是属于不合法的情况。直接返回0。思路例如以下:先扫描到第一个非空字符,再考虑两种情况,第一种是第一个非空字符是'+'或'-'号,若是则继续推断接下来的字符是否为数字。不是则不合法。第二种是第一个非空字符是数字。那可继续以扫描数字的方式进行转换。除了以上两种情况,其它都为不合法。

二、Java程序

public class Solution {
    public int myAtoi(String str) {
        int sl = str.length();
        int index=0;
        char tempc;            //获取字符
        boolean flag = false;  //负数标志
        int firstI=-1;
        long re=0;
        
        if(sl<=0)
            return 0;
        //1. 開始至第一个非空字符
        while(str.charAt(index)==' ')
        {
            index++;
            if(index>=sl) //超过字符串长度
                return 0;
         }
         
        //2. 扫到第一个非空字符,推断是否合法
        tempc = str.charAt(index);
        //2.1 若是+-或数值则进行,否则则返回0
        if(tempc=='-'||tempc=='+'||(tempc<='9'&&tempc>='0'))
        {   
            //2.2 若是数值则跳出推断
            if((tempc<='9'&&tempc>='0'))
            {                            
            }else                        //2.3 若是+-号,则推断接下来的是否为数值
            {
              if(tempc=='-') flag = true;//2.3.1 若是-号。则设置标志位
              
              index++;                   //2.4 若是+-号,则推断下一位是不是数值,是则合法,不是则返回0
              tempc = str.charAt(index);
              if((tempc<='9'&&tempc>='0'))
              {}else
               {
                   return 0;
               }
            }
            
        }else    //2.1 若是+-或数值则进行,否则则跳出
        { 
            return 0;
        }

        //3. 開始扫描有效数字
        while(index<sl)
         {
            tempc = str.charAt(index);
            if(tempc<='9'&&tempc>='0')
            {
             re = re*10 + (str.charAt(index)-'0');
             if(re>=Integer.MAX_VALUE||re<=Integer.MIN_VALUE)
                break;
            }else 
            {
                break;
            }
            index++;
         }
        
        if(flag==true) 
        { re=-re;
          re = re<Integer.MIN_VALUE?

Integer.MIN_VALUE:re; }else { re = re>Integer.MAX_VALUE?Integer.MAX_VALUE:re; } return (int)re; } }





posted @ 2017-06-01 11:14  brucemengbm  阅读(150)  评论(0编辑  收藏  举报