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I'm trying to understand why ! ( ( true || false ) && false ) is true and not false but I can't seem to figure it out.

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2  
Why do you think it could be true? X and false is always false, so not (X and false) is always true. – bames53 Apr 5 '14 at 15:26
up vote 3 down vote accepted
! ( ( true || false ) && false )

is equal to

! ( ( true ) && false )

which is

! (  false )

which is

true
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true || false == true
true && false == false
!false == true
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Try to go through it one-by-one:

! ( ( true || false ) && false )

3 ( ( 1 ) 2 )

1) true || false => true because it is true if at least either of them is true.

2) true && false => false because it is only true if both are true, i.e. if at least either of them is false, it evaluates to false.

3) !(false) => true because '!' means negation, the negation of false is true, and the negation of true is false.

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For these kind of Boolean logic issues I always try to break it into steps.

So for this the first condition

    ( true || false )

This is equal to true as you're saying true OR false

The next condition can now be read as

   ( true && false )

Which is false

The final bit that makes it true as oppssed to false is the !

The final part can be equated to

    !( false )

The ! flips the value so the final statement is true

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