17

I am reading a file by using:

int len = (int)(new File(args[0]).length());
    FileInputStream fis =
        new FileInputStream(args[0]);
    byte buf[] = new byte[len];
    fis.read(buf);

As I found here. Is it possible to convert byte array buf to an Int Array ? Is converting the Byte Array to Int Array will take significantly more space ?

Edit: my file contains millions of ints like,

100000000 200000000 ..... (written using normal int file wirte). I read it to byte buffer. Now I want to wrap it into IntBuffer array. How to do that ? I dont want to convert each byte to int.

  • 7
    Why do you want to convert a byte array to an int array? – vidit Jul 11 '12 at 16:33
  • @vidit, Thus I can read integers like int c = array[0] – alessandro Jul 11 '12 at 16:34
  • Just loop and copy the value to a new int array? – nhahtdh Jul 11 '12 at 16:35
  • 2
    "will take significantly more space" each int is stored on 32 bits, byte is stored on 8 bits so it will take around 4x more space – Pshemo Jul 11 '12 at 16:37
  • 1
    @alessandro Do you want to convert your array to store each 4 bytes in one int element? In that case this may interest you. – Pshemo Jul 11 '12 at 16:47
37
0

You've said in the comments that you want four bytes from the input array to correspond to one integer on the output array, so that works out nicely.

Depends on whether you expect the bytes to be in big-endian or little-endian order, but...

 IntBuffer intBuf =
   ByteBuffer.wrap(byteArray)
     .order(ByteOrder.BIG_ENDIAN)
     .asIntBuffer();
 int[] array = new int[intBuf.remaining()];
 intBuf.get(array);

Done, in three lines.

| improve this answer | |
  • 2
    This of course assumes that you want each set of 4 bytes to be translated to an int, and not each byte. – Matt Jul 11 '12 at 17:50
  • Yep, the OP implied that in comments to other answers. – Louis Wasserman Jul 11 '12 at 17:57
  • How to make the above interpret each byte as one int? An array of 4 bytes becomes an array of four ints – truthadjustr Feb 26 at 7:53
  • @typelogic: You can't do it that way. Do it with a manual for loop. int[] intArray = new int[byteArray.length]; for (int i = 0; i < byteArray.length; i++) { intArray[i] = byteArray[i]; } – Louis Wasserman Feb 26 at 18:33
5
0

Converting every 4 bytes of a byte array into an integer array:

public int[] convert(byte buf[]) {
   int intArr[] = new int[buf.length / 4];
   int offset = 0;
   for(int i = 0; i < intArr.length; i++) {
      intArr[i] = (buf[3 + offset] & 0xFF) | ((buf[2 + offset] & 0xFF) << 8) |
                  ((buf[1 + offset] & 0xFF) << 16) | ((buf[0 + offset] & 0xFF) << 24);  
   offset += 4;
   }
   return intArr;
}
| improve this answer | |
  • I want 4 byte to convert in int. Not single byte to int. The file is int file. – alessandro Jul 11 '12 at 16:40
  • @alessandro: Are you saying you want every 4 bytes of the array to represent an integer? – Chris Dargis Jul 11 '12 at 16:43
  • what is the use of & with 0xFF – weima Apr 10 '18 at 4:27
  • use of & with 0xFF (decimal : 255 and binary: 11111111) is little endian approach of creating int array from byte array. – DareDevil Mar 21 at 9:52
1
0

Is this ok for you?

    int IntToByte(byte arrayDst[], int arrayOrg[], int maxOrg){
        int i;
        int idxDst;
        int maxDst;
        //
        maxDst = maxOrg*4;
        //
        if (arrayDst==null)
            return 0;
        if (arrayOrg==null)
            return 0;
        if (arrayDst.length < maxDst)
            return 0;
        if (arrayOrg.length < maxOrg)
            return 0;
        //
        idxDst = 0;
        for (i=0; i<maxOrg; i++){
            // Copia o int, byte a byte.
            arrayDst[idxDst] = (byte)(arrayOrg[i]);
            idxDst++;
            arrayDst[idxDst] = (byte)(arrayOrg[i] >> 8);
            idxDst++;
            arrayDst[idxDst] = (byte)(arrayOrg[i] >> 16);
            idxDst++;
            arrayDst[idxDst] = (byte)(arrayOrg[i] >> 24);
            idxDst++;
        }
        //
        return idxDst;
    }

    int ByteToInt(int arrayDst[], byte arrayOrg[], int maxOrg){
        int i;
        int v;
        int idxOrg;
        int maxDst;
        //
        maxDst = maxOrg/4;
        //
        if (arrayDst==null)
            return 0;
        if (arrayOrg==null)
            return 0;
        if (arrayDst.length < maxDst)
            return 0;
        if (arrayOrg.length < maxOrg)
            return 0;
        //
        idxOrg = 0;
        for (i=0; i<maxDst; i++){
            arrayDst[i] = 0;
            //
            v = 0x000000FF & arrayOrg[idxOrg];
            arrayDst[i] = arrayDst[i] | v;
            idxOrg++;
            //
            v = 0x000000FF & arrayOrg[idxOrg];
            arrayDst[i] = arrayDst[i] | (v << 8);
            idxOrg++;
            //
            v = 0x000000FF & arrayOrg[idxOrg];
            arrayDst[i] = arrayDst[i] | (v << 16);
            idxOrg++;
            //
            v = 0x000000FF & arrayOrg[idxOrg];
            arrayDst[i] = arrayDst[i] | (v << 24);
            idxOrg++;
        }
        //
        return maxDst;
    }
| improve this answer | |
1
0

Solution for converting an array of bytes into an array of integers, where each set of 4 bytes represents an integer. The byte input is byte[] srcByte. The int output is dstInt[].

Little-endian source bytes:

    int shiftBits;
    int byteNum = 0;
    int[] dstInt = new int[srcByte.length/4]; //you might have to hard code the array length

    //Convert array of source bytes (srcByte) into array of integers (dstInt)
    for (int intNum = 0; intNum < srcByte.length/4; ++intNum) {  //for the four integers
        dstInt[intNum] = 0;                                      //Start with the integer = 0

        for(shiftBits = 0; shiftBits < 32; shiftBits += 8) {     //Add in each data byte, lowest first
            dstInt[intNum] |= (srcByte[byteNum++] & 0xFF) << shiftBits;
        }
    }

For Big-Endian substitute this line:

    for(shiftBits = 24; shiftBits >= 0; shiftBits -= 8)  //Add in each data byte, highest first
| improve this answer | |
0
0

Create a new int array and copy over the values, casting as needed.

int[] arr = new int[len];

for(int i = 0; i < len; i++)
    arr[i] = (int)buf[i];
| improve this answer | |
0
0

define "significantly". in java, an int is 4 bytes, so by definition the array would be 4x the space. See: http://docs.oracle.com/javase/tutorial/java/nutsandbolts/datatypes.html

And during the conversion, you have to have both, so during the copy portion, you'd be using even more, if you were copying the whole array at once.

as for the conversion, there are many related questions:

Java - converting byte array of audio into integer array

| improve this answer | |
0
0

In java:

  • byte = 8 bits
  • integer = 32 bits

and for conversion you could do something like:

byte[] byteArray = new byte[] {123, 12, 87};
int[] intArray = new int[byteArray.length];

// converting byteArray to intArray
for (int i = 0; i < byteArray.length; intArray[i] = byteArray[i++]);

System.out.println(Arrays.toString(intArray));

this would output:

[123, 12, 87]
| improve this answer | |

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