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wondering if anyone might have some insight or point me to the proper documentation explaining the following line of code:

byte flag = (byte) (flagOfCardData&0x04);

I don't have any clue as to why there is the &0x04 after flagOfCardData. I know it has to do with something hexadecimal but that is it. Here it the line of code as it sits in the function.

public void onReceiveMsgCardData(byte flagOfCardData,byte[] cardData) {
        // TODO Auto-generated method stub
        byte flag = (byte) (flagOfCardData&0x04);

        if(flag==0x00)
            _strMSRData = new String (cardData);
        if(flag==0x04)
        {
            //You need to dencrypt the data here first.
            _strMSRData = new String (cardData);
        }
        _MSRData = null;
        _MSRData = new byte[cardData.length];
        System.arraycopy(cardData, 0, _MSRData, 0, cardData.length);
        _isCardData = true;
        handler.post(doHideTopDlg);
        handler.post(doHideSwipeTopDlg);
        handler.post(doUpdateTVS);
    }

I would look up why to do this but I can't even figure out the right search keywords DOH! Thanks for any and all help.

This is for Android sdk using eclipse and java. Also, the code is part of another sdk that is part of a magnetic card reader that connects to an Android powered device through the audio port. The product is called unimag pro. Here is the website: http://www.idtechproducts.com/products/mobile-readers/126.html I did send them the same question but who knows if and when they might respond. I will post their answer on here as well for anyone else that might come across the same problem.

Let me know if you need any more info.

Thanks.

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Ok, sweet! Thanks everyone for the amazing explanations. I have never had to deal with bitwise AND before. Could they have written it like this: 'flagOfCardData & 0x04' with spaces to make it more readable? –  RayJamesFun Aug 9 '11 at 22:16
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3 Answers

up vote 1 down vote accepted

Your flagOfCardData is an 8-bit integer, but each bit individually is assigned some independent meaning. In your case, you only want to know its second bit. To do so, you perform bitwise-and with 00000100b, which is 4:

Mystery byte:  ? ? ? ? ? ? ? ? 
We want bit 2: 0 0 0 0 0 1 0 0
               -----------------< bitwise AND
Result         0 0 0 0 0 X 0 0

Now X is 1 if the second bit is set (1 & 1 = 1), and 0 otherwise (1 & 0 = 0). Thus flagOfCardData & 0x04 is eiter 4 or 0 accordingly.

It's customary to just use hexadecimal notation for the individual bits:

Bit 0: 0x01   Bit 4: 0x10
Bit 1: 0x02   Bit 5: 0x20
Bit 2: 0x04   Bit 6: 0x40
Bit 3: 0x08   Bit 7: 0x80
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Read this as:

byte flag = (byte) (flagOfCardData & 0x04);

The & is the "bitwise and" operator. 0x04 is the hex for binary 00000100. And'ing that bit pattern will pick out a single bit of the flagOfCardData variable, which I assume is a set of flags.

If the flag is set then flag == 0x04. If it is not set then flag == 0x00. These two possibilities are checked in the if statements below. From the look of the comment, this is the "encrypted data" flag.

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The code tests whether bit 2 of flagOfCardData is set. The value 0x4 is binary 00000100. The '&' operator performs bitwise AND which means AND-ing each of the bits of the two operand bytes together to produce a byte sized result (as opposed to logical AND).

According to the comments, the function is supposed to decrypt the data if flag is not zero, i.e. bit 2 was set.

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