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I'm reading through someone else's code and can't quite understand how it's working. Here's the three lines of code. I want to know what the value of w3 is:

int w1 = fgetc(fp) & 0xFF;
int w2 = fgetc(fp) & 0xFF;
int w3 = w1 + (w2 << 8);

I understand that fgetc() returns a character from a FILE* fp, but I'm getting confused when he's using the & operator on a character with the value 0xFF. Then using the bitwise shift operator on w2 and adding it to w1. I'm not sure if I should be expected a character or an integer. This is a code snippet from a program that reads binary data from a file, generates UV coordinates as output. But I'm less concerned with that, and more concerned with how the above code works.

Thanks in advance for any responses.

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First off, fgetc() returns a int, not a char. Second, he's clearing all but the low 8-bit of the returned int for both values, then slipping the second 8-bit value w2 into bits 8-15 of the low 16 bits (0..15) of w3. When done he'll have (assuming 32bit ints) 0x0000w2w1 as the value in w3 More important, however, if fp is at EOF, and EOF is returned on either fgetc() this could get ugly quick. –  WhozCraig Feb 7 '13 at 0:58

2 Answers 2

up vote 3 down vote accepted

The & 0xff ensures that the result is unsigned. Then, w1 + (w2 << 8) makes a 16-bit integer from the two bytes. In effect, this code snippet is reading in a little-endian two-byte integer.

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What this int w1 = fgetc(fp) & 0xFF; does is to mask the received int into a single byte. (fgetc() returns an int after all)

What this w1 + (w2 << 8); does is to combine both bytes in to a single int. Probably trying to deserialize a previously serialized integer. (Not the best way of doing it if endianness is an issue)

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Well, if the integer is specified to be stored in little-endian format, this is the best way. –  nneonneo Feb 7 '13 at 1:01
    
True that, if you are reading and writing on the same platform. –  imreal Feb 7 '13 at 1:02
1  
@nneonneo The most portable way would be to read 2 bytes and convert with htonl. Depends on your definition of "best" I guess. –  SoapBox Feb 7 '13 at 1:29

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