2

With the new return type deduction in C++14, you can write code like:

auto almostPi (void) { return 3.14159; }

and the function itself will use the return value to decide the actual return type for the function, in this case a double.

How is this done for things like a general purpose library where you don't have the source code, instead only having a header file containing something like:

auto almostPi (void);

How does the compiler in that case know to warn you if you do:

char *dodgyPointer = almostPi();

from your own code.

marked as duplicate by 一二三, Community Oct 18 '15 at 1:06

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3

You can't call the function if its return type can't be deduced:

$ cat test.cpp
auto almostPi(void);

void test() {
  char *dodgyPointer = almostPi();
}

$ g++ -c test.cpp --std=c++14
test.cpp: In function ‘void test()’:
test.cpp:4:24: error: use of ‘auto almostPi()’ before deduction of ‘auto’
   char *dodgyPointer = almostPi();
                        ^

The library would just have to declare the actual return type in its header.

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