95

I would like to convert a character array to a byte array in Java. What methods exists for making this conversion?

0

6 Answers 6

181

Convert without creating String object:

import java.nio.CharBuffer;
import java.nio.ByteBuffer;
import java.util.Arrays;

byte[] toBytes(char[] chars) {
  CharBuffer charBuffer = CharBuffer.wrap(chars);
  ByteBuffer byteBuffer = Charset.forName("UTF-8").encode(charBuffer);
  byte[] bytes = Arrays.copyOfRange(byteBuffer.array(),
            byteBuffer.position(), byteBuffer.limit());
  Arrays.fill(byteBuffer.array(), (byte) 0); // clear sensitive data
  return bytes;
}

Usage:

char[] chars = {'0', '1', '2', '3', '4', '5', '6', '7', '8', '9'};
byte[] bytes = toBytes(chars);
/* do something with chars/bytes */
Arrays.fill(chars, '\u0000'); // clear sensitive data
Arrays.fill(bytes, (byte) 0); // clear sensitive data

Solution is inspired from Swing recommendation to store passwords in char[]. (See Why is char[] preferred over String for passwords?)

Remember not to write sensitive data to logs and ensure that JVM won't hold any references to it.


The code above is correct but not effective. If you don't need performance but want security you can use it. If security also not a goal then do simply String.getBytes. Code above is not effective if you look down of implementation of encode in JDK. Besides you need to copy arrays and create buffers. Another way to convert is inline all code behind encode (example for UTF-8):

val xs: Array[Char] = "A ß € 嗨 𝄞 🙂".toArray
val len = xs.length
val ys: Array[Byte] = new Array(3 * len) // worst case
var i = 0; var j = 0 // i for chars; j for bytes
while (i < len) { // fill ys with bytes
  val c = xs(i)
  if (c < 0x80) {
    ys(j) = c.toByte
    i = i + 1
    j = j + 1
  } else if (c < 0x800) {
    ys(j) = (0xc0 | (c >> 6)).toByte
    ys(j + 1) = (0x80 | (c & 0x3f)).toByte
    i = i + 1
    j = j + 2
  } else if (Character.isHighSurrogate(c)) {
    if (len - i < 2) throw new Exception("overflow")
    val d = xs(i + 1)
    val uc: Int = 
      if (Character.isLowSurrogate(d)) {
        Character.toCodePoint(c, d)
      } else {
        throw new Exception("malformed")
      }
    ys(j) = (0xf0 | ((uc >> 18))).toByte
    ys(j + 1) = (0x80 | ((uc >> 12) & 0x3f)).toByte
    ys(j + 2) = (0x80 | ((uc >>  6) & 0x3f)).toByte
    ys(j + 3) = (0x80 | (uc & 0x3f)).toByte
    i = i + 2 // 2 chars
    j = j + 4
  } else if (Character.isLowSurrogate(c)) {
    throw new Exception("malformed")
  } else {
    ys(j) = (0xe0 | (c >> 12)).toByte
    ys(j + 1) = (0x80 | ((c >> 6) & 0x3f)).toByte
    ys(j + 2) = (0x80 | (c & 0x3f)).toByte
    i = i + 1
    j = j + 3
  }
}
// check
println(new String(ys, 0, j, "UTF-8"))

Excuse me for using Scala language. If you have problems with converting this code to Java I can rewrite it. What about performance always check on real data (with JMH for example). This code looks very similar to what you can see in JDK[2] and Protobuf[3].

4
  • Wouldn't this create a ByteBuffer? I guess that's less costly than a String object?
    – Andi Jay
    Jul 2, 2012 at 19:41
  • @Andrii Nemchenko Yes you get a trailing 0 in last position if you use UTF-8 (originally I was using US-ASCII). I have refactored the code, now it works correctly with UTF-8 to. Thanks for notice!
    – Cassian
    May 17, 2017 at 15:42
  • @AndriiNemchenko Here 1 char takes 1 byte. Can I make it a half byte. I remember reading that 1 char occupies 4 bits.
    – Prabs
    Aug 20, 2018 at 6:23
  • 1
    This 'toBytes()' method has an important side effect. It wipes the input chars. charBuffer.array() actually is the input chars. Arrays.fill() would actually wipe out the input. In many cases it is OK, but sometime it creates undesired effect.
    – Guangliang
    Oct 30, 2018 at 21:23
84
char[] ch = ?
new String(ch).getBytes();

or

new String(ch).getBytes("UTF-8");

to get non-default charset.

Update: Since Java 7: new String(ch).getBytes(StandardCharsets.UTF_8);

3
  • 5
    Using the platform's default charset is wrong most of the time (web apps).
    – maaartinus
    Apr 1, 2011 at 12:14
  • 5
    This is a trivial solution, because of using a new String, the space needed for the operation is doubled. It won't work very well for extremely large inputs. May 30, 2018 at 12:26
  • Note this is not ideal if security is an issue due to how Java caches strings.
    – NBJack
    Apr 19, 2021 at 22:08
20

Edit: Andrey's answer has been updated so the following no longer applies.

Andrey's answer (the highest voted at the time of writing) is slightly incorrect. I would have added this as comment but I am not reputable enough.

In Andrey's answer:

char[] chars = {'c', 'h', 'a', 'r', 's'}
byte[] bytes = Charset.forName("UTF-8").encode(CharBuffer.wrap(chars)).array();

the call to array() may not return the desired value, for example:

char[] c = "aaaaaaaaaa".toCharArray();
System.out.println(Arrays.toString(Charset.forName("UTF-8").encode(CharBuffer.wrap(c)).array()));

output:

[97, 97, 97, 97, 97, 97, 97, 97, 97, 97, 0]

As can be seen a zero byte has been added. To avoid this use the following:

char[] c = "aaaaaaaaaa".toCharArray();
ByteBuffer bb = Charset.forName("UTF-8").encode(CharBuffer.wrap(c));
byte[] b = new byte[bb.remaining()];
bb.get(b);
System.out.println(Arrays.toString(b));

output:

[97, 97, 97, 97, 97, 97, 97, 97, 97, 97]

As the answer also alluded to using passwords it might be worth blanking out the array that backs the ByteBuffer (accessed via the array() function):

ByteBuffer bb = Charset.forName("UTF-8").encode(CharBuffer.wrap(c));
byte[] b = new byte[bb.remaining()];
bb.get(b);
blankOutByteArray(bb.array());
System.out.println(Arrays.toString(b));
6
  • Could the trailing \0 be implementation specific? I'm using 1.7_51 with netbeans 7.4 and not noticing any trailing \0.
    – user968363
    Jan 26, 2014 at 4:46
  • @orthopteroid yes this example could be jvm specific. This was run with oracle 1.7.0_45 linux 64 bit (from memory). With the following implementation (grepcode.com/file/repository.grepcode.com/java/root/jdk/openjdk/…) you will get errors if averageBytesPerChar() returns anything other than 1 (I get 1.1). Out of interest what OS/arch are you using as I double checked with oracle 1.7.0_51 and openjdk 1.7.0_51 and found it broken with 10 chars.
    – djsutho
    Jan 28, 2014 at 8:36
  • @Andrey no worries. Note that buffer.array() in the toBytes function still needs to be overridden, currently only the copy is.
    – djsutho
    Jan 29, 2014 at 7:59
  • @Andrey I have edited my answer to reflect the changes.
    – djsutho
    Jan 30, 2014 at 9:21
  • @djsutho Today, my platform is windows7x64. Sorry, can't show the code - I'm using code like "System.arraycopy( str.getBytes( "UTF-8" ), 0, stor, 0, used );" now.
    – user968363
    Jan 31, 2014 at 7:24
2
private static byte[] charArrayToByteArray(char[] c_array) {
        byte[] b_array = new byte[c_array.length];
        for(int i= 0; i < c_array.length; i++) {
            b_array[i] = (byte)(0xFF & (int)c_array[i]);
        }
        return b_array;
}
0

If you just want to convert the data container (the array) type itself, only regarding the data size and being agnostic to any encoding:

// original byte[]
byte[] pattern = null;
char[] arr = new char[pattern.length * 2];
ByteBuffer wrapper = ByteBuffer.wrap(pattern);
wrapper.position(0);
int i = 0;
while(wrapper.hasRemaining()) {
    char character = wrapper.remaining() < 2 ? ((char) (((int) wrapper.get()) << 8)) : wrapper.getChar();
    arr[i++] = character;
}
-5

You could make a method:

public byte[] toBytes(char[] data) {
byte[] toRet = new byte[data.length];
for(int i = 0; i < toRet.length; i++) {
toRet[i] = (byte) data[i];
}
return toRet;
}

Hope this helps

1
  • 8
    This answer is incorrect because char data is Unicode and as such there may be up to 4 bytes per character (more are possible, but in real life, I've only found up to 4). Simply taking one byte from each character will only work for a very limited character set. Please read 'The Absolute Minimum Every Software Developer Absolutely, Positively Must Know About Unicode and Character Sets (No Excuses!)' at joelonsoftware.com/articles/Unicode.html.
    – Ilane
    Oct 28, 2014 at 18:47

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.