Sign up ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free.

I have a function whose prototype looks like this:

void example (double &var);

But, my problem is I might require to call function with some float values as well. e.g.

float temp=10.1;


If I do this my code don't compile, probably because of passing float value to double reference variable.

I want to avoid writing the overloaded function for double and float.

Can someone please suggest a cleaner/better way to implement this?

Function is basically a truncate function that truncate the input given & yes the original is modified.

Thank you.

share|improve this question

4 Answers 4

up vote 2 down vote accepted

You can template it.

template<typename T>
void example (T &var)
share|improve this answer

How about a template function?

template <typename T>
void example (T &var);

The compiler will replace both float and double usages (keep in mind C++ templates are macros with type-safety)

share|improve this answer

Passing small types by reference is not recommended. You'd better have something like double example(double var);. That will solve your problem as well.


void example(double& d);

double d = ...;
example(d); // unclear if d was modified


double example(double d);

double d = ...;
d = example(d);

float f = ...;
f = static_cast<float>( example(f) ); // cast required to tell the compiler to allow
                                       // the precision loss
share|improve this answer

Solution depends on what exactly example is doing.

  • Is it changing the value passed by reference? If yes, you cannot pass float to it. Passing by forceful conversion will compile, but would crash at runtime (since you'd be passing 4 bytes, where 8 bytes were needed).
  • If it is not changing value, you can just add const attribute to it, and pass any basic datatype. It would be: void example (const double &var);. If conversion is possible (since it is now treated as (double)), compiler wouldn't complain.
  • Making it function template may or may not work, and it entirely depends on what function is doing.
share|improve this answer
Yes the value passed by reference is changed. The function is a truncate function that truncate the input given. Is there any issue making it as template?? As suggested by you? What I may face? Thank you. –  user1147663 Feb 23 '12 at 5:31
Truncate as in what? Truncates the decimals? Splits into two parts? Converts to string and trims? For good answers, you should frame good questions! :) –  Ajay Feb 23 '12 at 6:52

Your Answer


By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.