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I saw this code sample without any explanation:

var xhr = new XMLHttpRequest();'GET', '/path/to/image.png', true);

// Trick to pass bytes through unprocessed.
xhr.overrideMimeType('text/plain; charset=x-user-defined');

xhr.onreadystatechange = function(e) {
  if (this.readyState == 4 && this.status == 200) {
    var binStr = this.responseText;
    for (var i = 0, len = binStr.length; i < len; ++i) {
      var c = binStr.charCodeAt(i);
      //String.fromCharCode(c & 0xff)
      var byte = c & 0xff;  // byte at offset i


I wonder what that line var byte = c & 0xff; // byte at offset i is doing? Why AND with 0xFF? This code is in JavaScript if that matters.

share|improve this question
Bytes are in the range [0, 255], and & 0xff equals % 255 so that it returns a valid byte. – pimvdb Jul 15 '11 at 14:29
I'd suggest to read up on bitwise operators. Even if you're not gonna use them every day, they're a good thing to know, and very interesting to learn about IMO. – Alex Turpin Jul 15 '11 at 14:29

1 Answer 1

up vote 3 down vote accepted

The code appears to be storing a byte value. Apparently, the developer thought it was possible that c could contain more than 8 bits (a byte) of data. By ANDing with 0xff, any data beyond 8 bits is trimmed off (or at least set to zero).

share|improve this answer
Hmm, I see, yea now I understand it. – Tower Jul 15 '11 at 14:38

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