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I ran across unexpected behaviour while programming in C for an 8-bit AVR microcontroller: Consider the following:

unsigned char a = 0xFF, b = 0xFF;
unsigned short c = ((a>>4)<<8)+b;
printf("%x",c);

Where the high order nibble of byte a contains bits 8..11 and the byte b contains bits 7..0 of a 12-bit value c. The intent of the code was originally to remove the unwanted lower nibble of byte a, and then combine a and b to yield the value of c. However later on I realized the code should not work, as a is an 8-bit value, and shifting it 8 bits to the left should result in clearing the byte to 0, and a final result of 0x00FF. Instead, the code produces a result of 0x0FFF, as originally intended. The code produces the same result both on the microcontroller (avr-gcc) and on the PC (gcc). What is the cause of this behaviour?

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1  
The operands of >> are expanded per standard C rules (which I forget at the moment). But basically a is expanded to int. – Hot Licks Jan 30 '14 at 21:59
up vote 4 down vote accepted

The integral promotion is performed for integral types that have ranks less than the rank of int when shift operators are used. So in this expression

(a>>4 )

a is converted to type int.

From the C++ Standard

A prvalue of an integer type other than bool, char16_t, char32_t, or wchar_t whose integer conversion rank (4.13) is less than the rank of int can be converted to a prvalue of type int if int can represent all the values of the source type; otherwise, the source prvalue can be converted to a prvalue of type unsigned int.

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I guess it promotes to an unsigned int? – Joky Jan 30 '14 at 22:05
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No, values of type char can be placed in type int without looses. – Vlad from Moscow Jan 30 '14 at 22:06
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In this case there is no problem because a is unsigned char and the promoted value is unsigned. – Vlad from Moscow Jan 30 '14 at 22:10
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@chux a in converted to signed int. But the promoted value is positive and the sign bit is equal to zero. So there is no any problem. – Vlad from Moscow Jan 30 '14 at 22:20
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@Joky I was convinced a narrower unsigned would get promoted to unsigned int, and int to int. But instead we get the unsigned char to int, which seems weird. – this Jan 30 '14 at 22:35

In C, most math on smaller types results in an int. You can get the answer you want by casting the result back to unsigned char or uint8_t.

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