I've seen some of this symbols, but I cannot find anything strange with it,

double d = 5D;
float f = 3.0F;

What does the D and F behind 5 exactly means?

  • For those coming from C: 1) d suffix does not exist in ANSI C, only as a GNU extension. 2) 1f is not possible in C, you must use 1.0f. 3) For hex integer literls, d and f don't work as they would be ambiguous with the number itself, e.g. 0x1f is 31, not 1.0f – Ciro Santilli 新疆改造中心 六四事件 法轮功 Feb 23 '15 at 10:20
  • Note that in C with GCC, even 5D is invalid as being an integer constant; 5.D would be OK. ICC 15 silently regards such numbers as 0. And with tcc 0.9.27, one gets a compile-time error. – vinc17 Jun 19 at 23:29
up vote 41 down vote accepted

Means that these numbers are doubles and floats, respectively. Assume you have

void foo(int x);
void foo(float x);
void foo(double x);

and then you call

foo(5)

the compiler might be stumped. That's why you can say 5, 5f, or 5.0 to specify the type.

  • with this, is 5.0 == 5d? – Ungeheuer Dec 4 '16 at 22:33

D stands for double

F for float

you can read up on the basic primitive types of java here

http://download.oracle.com/javase/tutorial/java/nutsandbolts/datatypes.html

I would like to point out that writing

5.1D or 5.1 : if you don't specify a type letter for a comma number then by default it is double

5 : without the period, by default it is an int

They're format specifiers for float and double literals. When you write 1.0, it's ambiguous as to whether you intend the literal to be a float or double. By writing 1.0f, you're telling Java that you intend the literal to be a float, while using 1.0d specifies that it should be a double. There's also L, which represents long (e.g., 1L is a long 1, as opposed to an int 1)

D stands for double and F stands for float. You will occasionally need to add these modifiers, as 5 is considered an integer in this case, and 3.0 is a double.

It defines the datatype for the constants 5 and 3.0.

As others have mentioned they are the Type definitions, however you will less likely see i or d mentioned as these are the defaults.

float myfloat = 0.5; 

will error as the 0.5 is a double as default and you cannot autobox down from double to float (64 -> 32 bits) but

double mydouble = 0.5;

will have no problem

  • "autobox" is the wrong terminology for what you describe. What you mean is the opposite of promotion, which would be demotion, but there are no (automatic) rules for that. – Tom Oct 22 '16 at 13:06
  • I just did the Oracle java SE8 Java Programmer course, its right here in the notes, defaults and the fact that autoboxing/unboxing does not occur with reduction of precision and so type definition is required or casting for reduction of precision. as the type definition – Theresa Forster Oct 22 '16 at 13:13
  • Autoboxing/unboxing occurs when one (or the compiler) "converts" a primitive type to its corresponding wrapper type int -> Integer. What you're talking about is the opposite of promotion and yes, there is no automatic conversion due to the lost of precision. – Tom Oct 22 '16 at 13:17

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