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I have two bytes and I am setting different bits in order to get different combinations. E.g, byte 1 bit 7 and byte 2 bit 1,bit 2 makes a combination device ready. Now, I have created mask

#define C1_device_ready   (0x80 | 0x100 | 0x200)

Then I read the data and try to compare. for 1 byte I can do (data[0] & mask == mask). But how can I compute it for C1_device_ready mask where there are two bytes, data[0] and data[1]. Is it easily possible or should I do masking only in single byte. ::added::data is unsigned char data[2]

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4 Answers 4

up vote 5 down vote accepted

If data is an array of unsigned char, you could test

if ((data[0] & mask) == (mask & 0xFF) && (data[1] & mask) == ((mask >> 8) & 0xFF))

or combine the two data[i] and check

if (((data[0] | (data[1] << 8)) & mask) == mask)
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Thanks that works. Could you please explain the bit shifting (<< 8). –  user1566277 Aug 10 '12 at 12:19
    
data[0] | (data[1] << 8) combines the two bytes from the data array into one int, having data[0] in the least significant byte, and data[1] in the second-least-significant byte per the shift. Since the bit operations << and | automatically make integer promotion happen, there's no need to insert a cast to a larger type manually. –  Daniel Fischer Aug 10 '12 at 12:27
    
That explains it well. Many thanks for such a clear answer. –  user1566277 Aug 10 '12 at 12:40

Use

if (((data[0] | (data[1] << 8)) & mask) == mask) {
    // do something
}
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((data[0] | (data[1]<<8)) & mask) == mask

should work. Might need to cast things as unsigned int

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Try:

if ((*(short *)data) & C1_device_ready)
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1  
you should add ==mask –  Gir Aug 10 '12 at 12:17

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