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I am trying to convert a float to a byte array. Here is the method:

 public static byte [] float2ByteArray (float value)
 {  

    Float f = new Float(value);
     return new byte [] { (byte) (f.byteValue() >>> 56),
             (byte) (f.byteValue() >>> 48),
             (byte) (f.byteValue() >>> 40),
             (byte) (f.byteValue() >>> 32),
             (byte) (f.byteValue() >>> 24),
             (byte) (f.byteValue() >>> 16),
             (byte) (f.byteValue() >>> 8),
             (byte) f.byteValue() };
 }

The Exception I am getting is: Exception in thread "main" java.lang.ClassCastException: java.lang.Double cannot be cast to java.lang.Float

Using the primitive type in long is working but not the primitive type for float:

public static byte [] long2ByteArray (long value)
    {
    return new byte [] { (byte) (value >>> 56),
                         (byte) (value >>> 48),
                         (byte) (value >>> 40),
                         (byte) (value >>> 32),
                          (byte) (value >>> 24),
                         (byte) (value >>> 16),
                         (byte) (value >>> 8),
                         (byte) value };
   }
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how did you test the function ? –  bubuzzz Jan 31 '13 at 6:31
    
did you append f in the end of the test data float2ByteArray (3.4f) –  bubuzzz Jan 31 '13 at 6:34
    
I'm starting to like C now. char* floatAsByte = (char*)&myFloat; –  Ryan Amos Jan 31 '13 at 6:41
    
Floats are 32 bit, so get the int bits docs.oracle.com/javase/6/docs/api/java/lang/… and use a similar method as you did for long, but instead with int. –  Ryan Amos Jan 31 '13 at 6:42

4 Answers 4

up vote 16 down vote accepted

Use these instead.

public static byte [] long2ByteArray (long value)
{
    return ByteBuffer.allocate(8).putLong(value).array();
}

public static byte [] float2ByteArray (float value)
{  
     return ByteBuffer.allocate(4).putFloat(value).array();
}
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1  
Fancy. Short, sweet, and hides all of the cool stuff. –  Ryan Amos Jan 31 '13 at 6:43
1  
simple and elegant! –  Drogba Jan 31 '13 at 6:50

It wont work. Float.byteValue just truncates float value to 1 byte

  public byte byteValue() {
        return (byte)value;
    }

Besides, it's not clear what bytes you want. Is it IEEE 754 floating-point single-float bit layout? Then you can first convert it to int

int i =  Float.floatToIntBits(1.1f);   // see Float API, there are actually 2 options

then use shifts to break it into 4 bytes or 8 bytes like you did

share|improve this answer
    
The OP wants all 8 bytes, not just one of them. –  Ryan Amos Jan 31 '13 at 6:41
    
But this is exactly what he does not get, he shifts one and the same truncated byte 8 times –  Evgeniy Dorofeev Jan 31 '13 at 6:49
    
Yeah, I said that before you had the Float to int bits, so it was a bit more relevant then. –  Ryan Amos Jan 31 '13 at 6:55
    
Thanks for floatToIntBits just what i need. –  Valentin Mar 2 at 14:29

Just to add another useful one based on @shazin solution:

public static byte[] FloatArray2ByteArray(float[] values){
        ByteBuffer buffer = ByteBuffer.allocate(4 * values.length);

        for (float value : values){
            buffer.putFloat(value);
        }

        return buffer.array();
    }
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you need to supply a float value i.e real numbers such as 3.1416, -55.66 etc OR simply suffix your number supplied with letter f like float2Array(1.2f);

Float 32-bit (≈6-7 significant decimal digits, in the range of ±[≈10^-45, ≈10^38])

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