leetcode 157. Read N Characters Given Read4 利用read4实现read --------- java

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The API: int read4(char *buf) reads 4 characters at a time from a file.

The return value is the actual number of characters read. For example, it returns 3 if there is only 3 characters left in the file.

By using the read4 API, implement the function int read(char *buf, int n) that reads n characters from the file.

Note:
The read function will only be called once for each test case.

 

read4(char[] buf)指的是读取4个数,存储在buf中,然后返回成功读取的数目,如果不够四个,那么就返回剩余数目的字符。

实现的read(char[] buf, int n)功能类似,只不过将4改为了n,需要输入而已。(这里一个例子只会读取一次read)

刚开始做的时候理解错了,以为是读取buf中的字符,导致提交失败。

 

方法是:先读取n/4次read4,如果期间有出现了不等于4的情况,那么返回结果。

    然后读取最后一次,需要判断的是:1、如果刚好读完了,直接返回结果

                    2、判断n-result和读取数目num的大小,选择小的,读取并返回数目。

/* The read4 API is defined in the parent class Reader4.
      int read4(char[] buf); */

public class Solution extends Reader4 {
    /**
     * @param buf Destination buffer
     * @param n   Maximum number of characters to read
     * @return    The number of characters read
     */
    public int read(char[] buf, int n) {
        if (n < 1){
            return 0;
        }
        int time = n / 4;
        int result = 0;
        char[] chars = new char[4];
        for (int i = 0; i < time; i++){
            int num = read4(chars);
            for (int j = 0; j < num; j++){
                buf[i * 4 + j] = chars[j];
            }
            if (num != 4){
                result += num;
                return result;
            } else {
                result += 4;
            }
        }
        if (n - result == 0){
            return result;
        }
        int num = read4(chars);
        for (int i = 0; i < Math.min(n - result, num); i++){
            buf[result + i] = chars[i];
        }
        result += Math.min(n - result, num);
        return result;
    }
}

 


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