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我在使用 x-macro 的地方有以下代码:

#define X_FIELDS  \
     X(int,        var1) \
     X(uint8_t,    var3) \
     X(uint16_t,   var4) \
     XA(uint8_t,   arr1, 4) \
     XB(char,      arr2, 2)

typedef struct {
#define X(type, name) type name;
#define XA(type, name, count) type name[count];
#define XB(type, name, count) type name[count];
    X_FIELDS
#undef X
#undef XA
#undef XB
} myStruct;

和一个打印值的函数:

void print(myStruct *aStruct)
{
  int i;
#define X(type, name) printf("mystruct.%s is %d\n", #name, aStruct->name);
#define XA(type, name, count) \
  for (i=0; i < count; i++) { \
      printf("element = %u\n", name[i]); \
  }
#define XB(type, name, count) \
  for (i=0; i < count; i++) { \
      printf("element = %c\n", name[i]); \
  }
X_FIELDS
#undef X
#undef XA
#undef XB
}

和主要功能:

int main() {
  myStruct a = {.var1 = 23, .var4 = 12, .arr1 = {32,15,22,11} };
  print(&a);

}

不知道为什么,但在编译时,我收到以下错误: 在此处输入图像描述

如果编译器无法看到arr1arr2,我可以在预处理器文件中看到两者。以下是预处理器的输出:

typedef struct {
    int var1; uint8_t var3; uint16_t var4; uint8_t arr1[4]; char arr2[2];
} myStruct;

void print(myStruct *aStruct)
{
  int i;
# 44 "C:\\Users\\akumar8\\CodeBlockWorkspace\\myTest\\myTest\\main.c"
printf("mystruct.%s is %d\n", "var1", aStruct->var1); printf("mystruct.%s is %d\n", "var3", aStruct->var3); printf("mystruct.%s is %d\n", "var4", aStruct->var4); for (i=0; i < 4; i++) { printf("element = %u\n", arr1[i]); } for (i=0; i < 2; i++) { printf("element = %c\n", arr2[i]); }
}

知道我在做什么错吗?

4

1 回答 1

2

正如您在预处理器输出中看到的那样,name宏中的计算结果为arr1- 它不知道它是 a 的一部分aStruct

#define XA(type, name, count) \
  for (i=0; i < count; i++) { \
      printf("element = %u\n", name[i]); \
  }

对于有效的行,您将结构包含aStruct在宏中

#define X(type, name) printf("mystruct.%s is %d\n", #name, aStruct->name);

所以你也应该像这样在这里做同样的事情

#define XA(type, name, count) \
  for (i=0; i < count; i++) { \
      printf("element = %u\n", aStruct->name[i]); \
  }
于 2018-10-15T14:52:54.300 回答