我有一个字节数组字节。 我需要每个字节的位值存储在一个整数数组。
例如 ,
字节数组是
byte HexToBin[] = {(byte)0x9A, (byte)0xFF,(byte) 0x05,(byte) 0x16};
然后将整数数组应具有
a = [10011010111111110000010100010110]
我曾尝试下面的代码,其中,i是能够打印的每个字节(S2)的二进制值,但我couldnot在整数数组ALLBITS存储。
byte hexToBin[] = {(byte)0x9A, (byte)0xFF,(byte) 0x05,(byte) 0x16};
int[] allBits = new int[32];
int a =0;
for (int i =0; i < hexToBin.length ; i++)
{
byte eachByte = hexToBin[i];
String s2 = String.format("%8s", Integer.toBinaryString((eachByte)& 0xFF)).replace(' ', '0');
System.out.println(s2);
char [] totalCharArr = s2.toCharArray();
for (int k=0; k <8; k++)
{
allBits[k+a]= totalCharArr[k];
}
a= a+8;
}
for (int b=0; b<32;b++)
{
System.out.print(allBits[b]);
}
的上面的代码的输出是
10011010
11111111
00000101
00010110
4948484949484948494949494949494948484848484948494848484948494948
整数数组不具有二进制值。
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感谢您的帮助
更正后的代码是
byte hexToBin[] = {(byte)0x9A, (byte)0xBF,(byte) 0x05,(byte) 0x16};
int[] allBits = new int[32]; // no of bits is determined by the license code
for (int n =0; n<hexToBin.length; n++)
{
//Use ints to avoid any possible confusion due to signed byte values
int sourceByte = 0xFF &(int)hexToBin[n];//convert byte to unsigned int
int mask = 0x80;
for (int i=0; i<8; i++)
{
int maskResult = sourceByte & mask; // Extract the single bit
if (maskResult>0) {
allBits[8*n + i] = 1;
}
else {
allBits[8*n + i] = 0; // Unnecessary since array is initiated to zero but good documentation
}
mask = mask >> 1;
}
}
for (int k= 0; k<32; k++)
{
System.out.print(allBits[k]);
}
