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while working with bit shifts on the atmega328 chip under avr-gcc 5.4.0 I noticed a bug(?). Let's see some snippets:

This code works as expected:

uint32_t val = 0xaabbccdd;
Serial.println( val, HEX ); //Output: aabbccdd
// For testing 32 bit variables

This one also works:

uint16_t read = 0x3FF;
uint32_t val = read * 65536;
Serial.println( val, HEX ); // Output: 3ff0000

But this is not!:

uint16_t read = 0x3FF;
uint32_t val = read << 16;
Serial.println( val, HEX ); // Output: 0

(With values less than 16 the system even crashes!)

Is there any known bug in the compiler?

Thank you!

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  • 2
    uint32_t val = (uint32_t) read << 16;
    – Juraj
    Mar 4 at 6:21
  • I thought every bit in 'read' that was left shifted enters into 'val', but it seems the shifting is done completely in 'read' before its new value is copied to 'val'. Mar 6 at 1:45
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   uint16_t read = 0x3FF;
   uint32_t val = read << 16;

Since read is only 16 bit wide and 16 zeroes are shifted in from the right, the result in val is 0. You have to use a explicit cast to uint32_t as already suggested in the comments.

   uint16_t read = 0x3FF;
   uint32_t val = read * 65536;

This works without a cast, because 65536 is handled as an int32_t (because it does not fit into uint16_t) and thus, the result of the multiplication is int32_t and does not overflow.

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