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In the following program, the out variable always prints as 0 if it is compiled with optimization above O1. The out variable prints correctly with any level of optimizaiton if I uncomment the cout line in the digitTruncate function.

Am I doing something that is "undefined", or is this a compiler issue?

#include <iostream>
#include "mytime.hpp"
#include <stdint.h>

template <class IN>
int32_t
digitTruncate (IN data_in, uint32_t digits, uint64_t* data_out,
               int32_t bits = -1, bool safe = false)
{
  if (bits == -1)
    bits = (digits / 0.3010299957) + 1;
  if (!safe) 
  {
    if (bits > (int32_t)sizeof(data_in) * 8)
      return -1;
  }
  *data_out = (data_in & (0xffffffffffffffff >> (64 - bits)));
  //std::cout << *data_out << std::endl;
  return (bits / 8) + 1;
}

int
main()
{
  uint64_t cycles1, cycles2;
  uint32_t out;
  char* block = new char[8];
  cycles1 = mytime::cycles();
  for (int i = 0; i < 10000; i++)
  {
    uint32_t init = (uint32_t)mytime::cycles();
    digitTruncate(init, 5, ((uint64_t*)block), 17, true);
    out = *((uint32_t*)block);
  }
  cycles2 = mytime::cycles();
  std::cout << cycles2 - cycles1 << std::endl;
  std::cout << "results: " << out << std::endl;

  return 0;
}
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I don't think it is a compiler issue, I was listing possibilities. –  chew socks Apr 30 '13 at 3:03
    
@Mysticial Why would commenting out the the cout line prevent writing to block? That is an entirely different line. The code above is in the "commented state". –  chew socks Apr 30 '13 at 3:05
4  
I suspect there might be something funny going on with strict-aliasing here. –  Mysticial Apr 30 '13 at 3:07
1  
Why declare block as char* block = new char[8]; instead of just a uint64_t? –  Yuushi Apr 30 '13 at 3:12
1  
Here is a minimal test case. If you change the for loop to i < 3, the code prints 5 as expected. Something with optimizations, but not sure. I think out = *((uint32_t*)block); is getting optimized out perhaps? –  Jesse Good Apr 30 '13 at 3:32

2 Answers 2

By accessing block as a pointer to both uint64_t and uint32_t you violate the strict alias rules. The compiler is allowed to assume that a particular address is accessed (aliased) as only char* and one other type. You're using two non-char* types so all bets are off as to what the compiler's optimizer will do.

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Since the value of out in the loop is dead, except for the last iteration, and the function has no side effects other than setting block (and thus out), the compiler is free to eliminate the loop, and just evaluate the last iteration. Most of the code from that last iteration can be constant folded away, as well.

So you end up with just two consecutive calls to mytime::cycles(), which will probably have a difference of 0...

The compiler probably first inlines the call, and then simplifies it down to nothing, rather than noting that it doesn't actually do anything, but the overall effect is the same.

share|improve this answer
    
Interesting, I didn't think it would optimize whole chunks of code out. Wouldn't it be making a false assumption by doing this since out needs to change to have the correct output after the loop? –  chew socks Apr 30 '13 at 3:52
    
@chewsocks: You don't show the definition of mytime::cycles, so its tough to say what the compiler can figure out from that, but many bits of block will always be set to 0 regardless of what the input is. –  Chris Dodd Apr 30 '13 at 22:31

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