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Is there an XNOR (Logical biconditional) operator in C#?

开发者 https://www.devze.com 2023-03-28 03:49 出处:网络
I could not find an XNOR operator to provide this truth table:开发者_运维知识库 aba XNOR b ----------------

I could not find an XNOR operator to provide this truth table:

开发者_运维知识库
a  b    a XNOR b
----------------
T  T       T
T  F       F
F  T       F
F  F       T

Is there a specific operator for this? Or I need to use !(A^B)?


XNOR is simply equality on booleans; use A == B.

This is an easy thing to miss, since equality isn't commonly applied to booleans. And there are languages where it won't necessarily work. For example, in C, any non-zero scalar value is treated as true, so two "true" values can be unequal. But the question was tagged c#, which has, shall we say, well-behaved booleans.

Note also that this doesn't generalize to bitwise operations, where you want 0x1234 XNOR 0x5678 == 0xFFFFBBB3 (assuming 32 bits). For that, you need to build up from other operations, like ~(A^B). (Note: ~, not !.)


XOR = A or B, but Not A & B or neither (Can't be equal [!=])
XNOR is therefore the exact oppoiste, and can be easily represented by == or ===.

However, non-boolean cases present problems, like in this example:

a = 5
b = 1

if (a == b){
...
}

instead, use this:

a = 5
b = 1

if((a && b) || (!a && !b)){
...
}

or

if(!(a || b) && (a && b)){
...
}

the first example will return false (5 != 1), but the second will return true (a[value?] and b[value?]'s values return the same boolean, true (value = not 0/there is a value)

the alt example is just the reversed (a || b) && !(a && b) (XOR) gate


No, You need to use !(A^B)

Though I suppose you could use operator overloading to make your own XNOR.


I there is a few bitwise operations I don't see as conventional in the whole discussion. Even in c, appending or inserting to the end of a string, all familiar in standard IO and math libs. this is where I believe the problem lies with not and Xnor, not familiar with python but I propose the following example

function BitwiseNor(a as integer) l as string l=str(a) s as string For i=len(l) to 0 s=(str(i)+"="+Bin(i)) //using a string in this example because binary or base 2 numnbers dont exists in language I have used next i endfunction s

function BitwiseXNor(a as integer,b as integer) r as integer d as integer c as string c=str(BitwiseOr(a,b)) r=(val(c,2)) //the number to in this conversion is the base number value endfunction r


You can use === operator for XNOR. Just you need to convert a and b to bool.

if (!!a === !!b) {...}
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