c/c++语言开发共享从’void *’转换为指向非”’的指针需要显式转换（第17行）

我正在阅读“学习困难之路”一书，当我尝试运行此程序时，我收到以下错误消息：

从’void *’转换为指向非’void’的指针需要显式转换。

我不知道如何解决这个问题，我是否必须更改结构中的返回变量？

看看无论如何，这里的代码:(在Visual C ++ 2010上编译，还没有尝试过GCC）。

//learn c the hardway #include  #include  #include  #include  struct Person { char *name; int age; int height; int weight; }; struct Person *Person_create(char *name, int age, int height, int weight) { struct Person *who = malloc(sizeof(struct Person)); assert(who != NULL); who->name = strdup(name); who->age = age; who->height = height; who->weight = weight; return who; } void Person_destroy(struct Person *who) { assert(who != NULL); free(who->name); free(who); } void Person_print(struct Person *who) { printf("Name: %sn", who->name); printf("tAge: %dn", who->age); printf("tHeight: %dn", who->height); printf("tWeight: %dn", who->weight); } int main(int argc, char *argv[]) { // make two people structures struct Person *joe = Person_create( "Joe Alex", 32, 64, 140); struct Person *frank = Person_create( "Frank Blank", 20, 72, 180); // print them out and where they are in memory printf("Joe is at memory location %p:n", joe); Person_print(joe); printf("Frank is at memory location %p:n", frank); Person_print(frank); // make everyone age 20 years and print them again joe->age += 20; joe->height -= 2; joe->weight += 40; Person_print(joe); frank->age += 20; frank->weight += 20; Person_print(frank); // destroy them both so we clean up Person_destroy(joe); Person_destroy(frank); return 0; } 

  struct Person *who = malloc(sizeof(struct Person)); 

  struct Person *who = (struct Person *)malloc(sizeof(struct Person)); 

 struct Person *who = malloc(sizeof(struct Person)); 

 struct Person *who = (struct Person *) malloc(sizeof(struct Person)); 

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