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double diff = static_cast<int64_t>(a- b);

a and b are of type int64_t.

I saw this code in our project. I think it is suspicious, but I am really not sure. I am familiar with static_cast, and I would not write code like this.

Is this static_cast valid/legit? Is it useful?

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2  
What types are a and b? – David Schwartz Oct 7 '13 at 19:41
    
This code looks weird; there's no point in that cast. – Oliver Charlesworth Oct 7 '13 at 19:42
    
It does seem odd to cast something to an int64 only to assign it to a double. Maybe not "wrong", but "odd". Does your compiler throw any warnings when you use -Wall -pedantic? And now that we know a and b are already of byte int64_t, another cast ought to do nothing... Looks like some "left over" code that should have been cleaned out a long time ago. – Floris Oct 7 '13 at 19:42
    
The static_cast<type>(value) notation is C++ only. It is invalid in C. Retagging. – Jonathan Leffler Oct 7 '13 at 19:43
    
If a and b are already int64_ts then the static_cast is indeed pointless. – Simple Oct 7 '13 at 19:49
up vote 0 down vote accepted

This cast is valid but does not do anything. I agree that it is suspicious. You should carefully review what the code is supposed to be doing, and if it's correct then you may want to re-write it so that the intent is clearer and so that it doesn't look as suspicious.

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If a and b are both int64_t, there is no point to the cast. It is casting a result of type int64_t to type int64_t. It would be like doing this:

int a = 10, b = 5;
double c = (int)(a - b); // the cast is not needed, but also not "harmful"
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