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objective-c - 关于一个递归代码的问题~

最近在学习objective-c,教程中有一段代码没弄清楚,是关于递归的,我用截图的形式发上来,给大家看看

void singTheSong(int numberOfBottles)
{
    if (numberOfBottles == 0) {
        printf("there are simply no more bottles of beer on the wall.\n");
    } else {
        printf("%d bottles of beer on the wall. %d bottles of beer.\n",
               numberOfBottles, numberOfBottles);
        int oneFewer = numberOfBottles - 1;
        printf("Take one dowm, pass it around, %d bottles of beer on the wall.\n",
               oneFewer);

        singTheSong(oneFewer);
        printf("put a bottle in the recycling, %d empty bottles in the bin.\n",
               numberOfBottles);
    }
}

int main(int argc, const char * argv[])
{
    singTheSong(99);
    return 0;
}

它的输出结果是这样的:

99 bottles of beer on the wall. 99 bottles of beer.
Take one dowm, pass it around, 98 bottles of beer on the wall.
98 bottles of beer on the wall. 98 bottles of beer.
Take one dowm, pass it around, 97 bottles of beer on the wall.
97 bottles of beer on the wall. 97 bottles of beer.
Take one dowm, pass it around, 96 bottles of beer on the wall.
96 bottles of beer on the wall. 96 bottles of beer.
Take one dowm, pass it around, 95 bottles of beer on the wall.
......(中间重复的省略)
1 bottles of beer on the wall. 1 bottles of beer.
Take one dowm, pass it around, 0 bottles of beer on the wall.
there are simply no more bottles of beer on the wall.
put a bottle in the recycling, 1 empty bottles in the bin.
put a bottle in the recycling, 2 empty bottles in the bin.
......(中间重复的省略)
put a bottle in the recycling, 98 empty bottles in the bin.
put a bottle in the recycling, 99 empty bottles in the bin.
Program ended with exit code: 0

这段代码,我看不懂的地方是,它如何从numberOfBottles等于0的时候,又继续运行了

printf("put a bottle in the recyling, %d empty bottles in the bin.\n",
        numberOfBottles);

这段代码呢?并且numberOfBottles一直在+1

请大家帮我解惑,谢谢了~

黄舟黄舟2768 天前536

全部回复(2)我来回复

  • 迷茫

    迷茫2017-04-22 09:02:04

    重点是: 你要理解函数调用会有压栈操作, 递归调用返回时会回到递归之前, 并继续执行递归调用之后的代码.

    将你的singTheSong(99);替换成singTheSong(3);说下吧.

    入参为3, 下面两行打印
    3 bottles of beer on the wall. 3 bottles of beer.
    Take one dowm, pass it around, 2 bottles of beer on the wall.

    第一次递归调用singTheSong(2), 入参为2.第一次递归调用singTheSong(2), 入参为2.
    注意, 此时singTheSong(oneFewer); 之后的printf打印不会出现, 因为递归调用还没有返回;
    后面你看到的 numberOfBottles一直在+1 现象的直接原因就在这.注意, 此时singTheSong(oneFewer); 之后的printf打印不会出现, 因为递归调用还没有返回;

    后面你看到的 numberOfBottles一直在+1 现象的直接原因就在这.

    第二次递归调用singTheSong(1), 入参为1
    同样, singTheSong(oneFewer) 之后的printf打印不会出现; 2 bottles of beer on the wall. 2 bottles of beer.
    Take one dowm, pass it around, 1 bottles of beer on the wall.

    第二次递归调用singTheSong(1), 入参为1

    同样, singTheSong(oneFewer) 之后的printf打印不会出现;第三次递归调用singTheSong(0), 入参为0, 直接打印下面一行, 并退出;
    注意, 这里的退出是退回到第二次递归的栈. 并从singTheSong(oneFewer)之后的printf开始执行. 1 bottles of beer on the wall. 1 bottles of beer. Take one dowm, pass it around, 0 bottles of beer on the wall.

    第三次递归调用singTheSong(0), 入参为0, 直接打印下面一行, 并退出;

    因为第二次递归入参为1, 所以这里打印下面一行
    第二次递归调用退回到 第一次 递归的栈继续执行注意, 这里的退出是退回到第二次递归的栈. 并从singTheSong(oneFewer)之后的printf开始执行.

    there are simply no more bottles of beer on the wall.

    因为第一次递归入参为2, 所以这里打印下面一行
    第一次递归调用退回到最初的singTheSong(3)继续执行因为第二次递归入参为1, 所以这里打印下面一行
    第二次递归调用退回到 第一次 递归的栈继续执行

    put a bottle in the recycling, 1 empty bottles in the bin.

    最初的singTheSong(3)调用入参为3, 所以打印下面一行.因为第一次递归入参为2, 所以这里打印下面一行
    第一次递归调用退回到最初的singTheSong(3)继续执行

    put a bottle in the recycling, 2 empty bottles in the bin.🎜 🎜🎜🎜 put a bottle in the recycling, 3 empty bottles in the bin.🎜

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  • 天蓬老师

    天蓬老师2017-04-22 09:02:04

    执行顺序问题,并没有出现numberOfBottles一直在+1的情况
    singTheSong(99);执行时需要调用singTheSong(98);但此时singTheSong(99);并没有执行完

    printf("put a bottle in the recyling, %d empty bottles in the bin.\n",
            numberOfBottles);
    

    该段代码没有被调用,直到singTheSong(0);运行完成之后,singTheSong(1);方法体中的最下面的printf代码才被执行,然后依次递归,开始执行 2, 3, 4 ... 99

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