通过C#中的位掩码存储多个值
作者:互联网
我试图通过位掩码在32位int内存储四个独立的5位值(0-31),但是在正确设置值和从用于存储的被掩码int中获取单个值时遇到了麻烦.
谁能帮我这个?
编辑:
抱歉,外部链接-这里有一些JavaScript演示了我要实现的目标(但使用位掩码而不是十进制代数):
var s = 0;
var v = [31, 6, 23, 31];
//save values
s = v[0] + (v[1] * 32) + (v[2] * 1024) + (v[3] * 32768);
console.log(s);
//retrieve values
v[3] = parseInt(s / 32768);
v[2] = parseInt((s - (v[3] * 32768)) / 1024);
v[1] = parseInt((s - ((v[3] * 32768) + (v[2] * 1024))) / 32);
v[0] = parseInt(s - ((v[3] * 32768)+ (v[2] * 1024) + (v[1] * 32)));
console.log(v);
//modify values [1] and [2]
s = s - (v[1] * 32) + (9 * 32);
s = s - (v[2] * 1024) + (17 * 1024);
console.log(s);
//retrieve values
v[3] = parseInt(s / 32768);
v[2] = parseInt((s - (v[3] * 32768)) / 1024);
v[1] = parseInt((s - ((v[3] * 32768) + (v[2] * 1024))) / 32);
v[0] = parseInt(s - ((v[3] * 32768)+ (v[2] * 1024) + (v[1] * 32)));
console.log(v);
输出:
1039583
[31, 6, 23, 31]
1033535
[31, 9, 17, 31]
编辑:
多亏了Peter Duniho,我能够使用内置的掩码来实现这些目标,从而在32位整数内保存6个5位值的某些运算:
uint Get_5_In_32(uint storage, int index)
{
switch (index)
{
case 0:
return (storage & 0x0000001F);
case 1:
return (storage & 0x000003E0) >> 5;
case 2:
return (storage & 0x00007C00) >> 10;
case 3:
return (storage & 0x000F8000) >> 15;
case 4:
return (storage & 0x01F00000) >> 20;
case 5:
return (storage & 0x3E000000) >> 25;
default:
return (0);
}
}
uint Set_5_In_32(uint storage, uint value, int index)
{
if (value > 31) { value = 31; }
switch (index)
{
case 0:
return (storage & 0xFFFFFFE0) | value;
case 1:
return (storage & 0xFFFFFC1F) | (value << 5);
case 2:
return (storage & 0xFFFF83FF) | (value << 10);
case 3:
return (storage & 0xFFF07FFF) | (value << 15);
case 4:
return (storage & 0xFE0FFFFF) | (value << 20);
case 5:
return (storage & 0xC1FFFFFF) | (value << 25);
default:
return (0);
}
}
Set函数的byref版本可实现更少的分配:
void Set_5_In_32(ref uint storage, uint value, int index)
{
if (value > 31) { value = 31; }
switch (index)
{
case 0:
storage &= 0xFFFFFFE0;
storage |= value;
break;
case 1:
storage &= 0xFFFFFC1F;
storage |= (value << 5);
break;
case 2:
storage &= 0xFFFF83FF;
storage |= (value << 10);
break;
case 3:
storage &= 0xFFF07FFF;
storage |= (value << 15);
break;
case 4:
storage &= 0xFE0FFFFF;
storage |= (value << 20);
break;
case 5:
storage &= 0xC1FFFFFF;
storage |= (value << 25);
break;
}
}
解决方法:
如果没有更具体的问题,尤其是要显示到目前为止的代码,并特别说明要使其正常工作方面遇到的问题,那么很难确切地知道最佳答案是什么.
就是说,这里有一些示例方法可能会让您朝正确的方向指出:
// Stores the given value in storage at the given index
int Set(int storage, int value, int index)
{
int shiftCount = index * 5,
mask = 0x1f << shiftCount;
return (storage & ~mask) | (value << shiftCount);
}
// Retrieves the value stored in storage at the given index
int Get(int storage, int index)
{
int shiftCount = index * 5,
mask = 0x1f << shiftCount;
return (storage & mask) >> shiftCount;
}
上面的Set()方法获取存储中的当前值,清除要存储五位值的位范围内的所有位,然后使用|运算符来存储该五位值,首先将该值的位移到正确的位置.
Get()方法执行相反的操作.它会屏蔽(清除)不在存储该值的位范围内的所有位,然后在返回该结果之前将存储的位向下移至int的最低有效五位.
笔记:
>以上是针对您所陈述的问题的.通过封装在可以在初始化时配置位计数并基于该位计数生成掩码而不是对其进行硬编码的类中,可以很容易地将其概括.
>上面的代码中没有错误检查.在生产代码版本中,最好验证传递给Set()方法的值确实适合五位(即小于0x20).
编辑:
这是一个简单的控制台程序,通过示例数据演示了上述操作的用法:
static void Main(string[] args)
{
int[] array = { 31, 6, 23, 31 };
int storage = 0;
storage = ArrayToStorage(array, storage);
Console.WriteLine(storage);
LogArray(array);
storage = Set(storage, 9, 1);
storage = Set(storage, 17, 2);
StorageToArray(array, storage);
Console.WriteLine(storage);
LogArray(array);
}
static int ArrayToStorage(int[] array, int storage)
{
for (int i = 0; i < array.Length; i++)
{
storage = Set(storage, array[i], i);
}
return storage;
}
static void StorageToArray(int[] array, int storage)
{
for (int i = 0; i < array.Length; i++)
{
array[i] = Get(storage, i);
}
}
static void LogArray(int[] array)
{
Console.WriteLine("[" + string.Join(", ", array) + "]");
}
// Stores the given value in storage at the given index
static int Set(int storage, int value, int index)
{
int shiftCount = index * 5,
mask = 0x1f << shiftCount;
return (storage & ~mask) | (value << shiftCount);
}
// Retrieves the value stored in storage at the given index
static int Get(int storage, int index)
{
int shiftCount = index * 5,
mask = 0x1f << shiftCount;
return (storage & mask) >> shiftCount;
}
标签:bitmask,bit-masks,c 来源: https://codeday.me/bug/20191028/1952715.html