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I've been experimenting with placement new to "map" classes on top of I/O space to save some memory:

hardware::ioport *port = new(0xWHATEVER) hardware::ioport();

which works nicely, but zeros out the bytes at 0xWHATEVER. The "alternative" solution

hardware::ioport *port = reinterpret_cast<hardware::ioport *>(0xWHATEVER);

works as well, but does not call the default constructor I implemented.

Is there any way to call the constructor, but do not zero-out the memory beforehand in C++?

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How is hardware::ioport defined? –  Kerrek SB Dec 7 '13 at 14:54
    
Also, this question is a bit confused: You want to create an object, but also not modify any memory?! –  Kerrek SB Dec 7 '13 at 14:54
    
There is a great example shown by Stephen Dewhurst at an Embedded East conference several or ten or more years ago on using templates to map memory mapped I/O registers to classes and objects, for both read-only and read/write bit values. I wish I could find an Internet citation. Optimized code was incredibly compact. The reading from a register resulted in a 'load indirect via a constant' using standard C++ objects. –  KeithSmith Dec 7 '13 at 15:43

1 Answer 1

up vote 1 down vote accepted
  hardware::ioport *port = new(0xWHATEVER) hardware::ioport();

The () parentheses after ioport() invokes automatic zero-initialization on pod members of the ioport class. Clearly you don't like this feature, just remove them. Fix:

  hardware::ioport *port = new(0xWHATEVER) hardware::ioport;
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I think that this is misleading. If there is a user-declared constructor then there is no difference between the two initializations. In the either case there is no automatic initialization of pod members unless there is no user-declared default constructor. Further more, there is no guarantee that with or without a user-declared constructor that the second version doesn't write anything (zeros or a guard pattern) to the space where the object is being constructed before the actual initiazation of any bases and members of the class, it's a valid implementation choice. –  Charles Bailey Dec 7 '13 at 15:31
    
Well, that's correct. I just figured that my constructor in question was commented out, so the question was wrong. With existing constructor there seem to be no difference. –  Farcaller Dec 7 '13 at 17:27

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