Why the second output is different??🤔

In your question values printing in the bases of priority int x=5; cout<<"Hi "<<(x && true)<<endl; Here x is decleared as 5 which is positive integer so every positive number with condition treat as true either 1 so first here in first cout statement u y used brackets so brac will solve first and result will be Hi 1 . But cout<<"Hi "<<x && true; Here u removed brac and << this extraction operator has highest priority so its printing 5 and 1 And work as multiply 5*1 and or as a plus so result is 5

A.S. I agree with your analysis up until this nonsense statement: "... so its printing 5 and 1 And work as multiply 5*1 and or as a plus so result is 5" Let's look again at the line cout<<"Hi "<<x && true; This is evaluated as a Boolean expression with two operands, <A> && <B>; First it evaluates <A>, which is    cout<<"Hi "<<x. The output is "Hi 5", and <A> evaluates to a non-null pointer. For Boolean purposes the pointer reduces to true. Then it evaluates <B>, which is simply    true. Finally, <A>&&<B>, i.e., true&&true, reduces to true. There is no further action to take with the expression so execution proceeds to the next statement without using the final true result.

A.S. 🤔 It's complicated but thanks 🙂

A.S. As you said, every positive number treated as true .. then why y && true is treated as true?? And false is equeals to 0.. Then x && false should be 0 or y && false should be 0 but why it shows 1??

Samael Morningstar read about logical operators you will understood better . 5&&true will give true here 5 is positive use bracket when u print values 5&&0 will give 0 or false 5||0 will give true ==1