Stack Overflow is a community of 4.7 million programmers, just like you, helping each other.

Join them; it only takes a minute:

Sign up
Join the Stack Overflow community to:
  1. Ask programming questions
  2. Answer and help your peers
  3. Get recognized for your expertise

This question already has an answer here:

let's say I have a statement

if(stack.pop() == 1 && stack.pop() == 1)

if top of stack is 0, then the second condition won't be implemented, which means it just pops one value at the top. What I want is to pop both, the top and the value after top. Is there any way to do that without using another if-else statement in it?

share|improve this question

marked as duplicate by Tim B, Mark, cpburnz, Izkata, Pshemo Mar 17 '14 at 20:03

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

3  
Not front -- it is Top in stack – Grijesh Chauhan Mar 16 '14 at 17:06
up vote 44 down vote accepted

Use the bitwise AND operator**:

if( stack.pop() == 1 & stack.pop() == 1 )

This will force the evaluation of both sides.

** I know it by "non-short-circuiting" of logical AND, but it is indeed a bitwise operator that acts on boolean operands (documentation here).

Update: As JBNizet said in his comment below, this code is "fragile", since some developer may "correct" the operator to the short-circuit version. If you choose to use & instead of storing the values of the method calls (forcing them to run) likewise JBNizet answer, you should write a comment before your if statement.

share|improve this answer
29  
That is extremely fragile. It's waiting for another developer in the team, or even yourself a few days later, to change the & to a && because it looks so strange to use a non-short-circuiting binary operator instead of a short-circuiting boolean operator. Using methods having side effects in conditional tests is not something I would recommend. – JB Nizet Mar 16 '14 at 17:08
2  
@JBNizet He didn't say it was a good idea. – Ryven Mar 16 '14 at 17:11
5  
@Ryven: And I didn't downvote. I just commented about the fragility of this answer, because I think it's important to warn the OP and future readers about it. – JB Nizet Mar 16 '14 at 17:12
4  
when used with booleans, it's not exactly a bitwise operator, it's just a non-short-circuiting logical operator. – immibis Mar 17 '14 at 5:31
1  
I would just add a comment in the source code to the reader that this is really meant as it is. Also, the term "fragile" means code is very prone to break on it's own, not when someone changes the code, so I think JB Nizet is misusing the term a bit here. – eis Mar 17 '14 at 8:42
int first = stack.pop();
int second = stack.pop();
if (first == 1 && second == 1)
share|improve this answer
3  
this is the most easiest way I can think of (though liking the presented power of & operator by others). This one at least can make sure that non-comment readers will bug the code. – Stefan Mar 17 '14 at 9:55
    
Maybe we can refactor the magic "1" into something with more meaning?! – Songo Mar 17 '14 at 10:11
4  
I like this best, because it clearly signals to the reader that two values are popped. – David Bullock Mar 17 '14 at 11:56
2  
@ErwinSmout lol poop() – Tyler Mar 17 '14 at 14:07
2  
shit ... A typo – Erwin Smout Mar 17 '14 at 14:49

Yet another one-line and slightly obfuscated way to do this:

if( stack.pop() == 1 ? stack.pop() == 1 : stack.pop() == 1 && false )

Personally I'd go for JB Nizet's way. Makes it as clear as can be exactly what you're trying to do.

share|improve this answer

easiest, I found is (if stack only contains 0 and 1):

if(stack.pop() + stack.pop() == 2)

or JB's solution with one variable:

int first = stack.pop();
if (stack.pop() == 1 && first == 1)
share|improve this answer
2  
0 + 2, or -1 + 3, or -2 + 4, ... this is even more flawed than the one with * – Robin Mar 17 '14 at 18:13
    
@Robin with OP given details I thought stack only contains 0 and 1 but yes it is not cleared so I added a note. thanks :) – Zaheer Ahmed Mar 18 '14 at 4:24

Here is an approach that will bypass the EmptyStackException thrown when the stack has fewer than two elements.

if (stack.size() > 0) {
    int first = stack.pop();
    if (stack.size() > 0) {
        if (first == 1 && stack.pop() == 1) ; //do something here
    }
}
share|improve this answer
    
This will not do what the question asked about, you'd need to swap the order of the statements in the third if. – blgt Mar 28 '14 at 13:20

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