39

I'd like to do the following:

std::stack <int> s;
int h = 0;
s.push(2);
h = s.pop();

Such as to have h hold the value 2. When I try my method, I get “void value not ignored as it ought to be”.

Is this not the intention of the .pop() method? What is the preferred way to do this?

5
  • 12
    h = s.top();
    – jrok
    Aug 30, 2012 at 22:07
  • 44
    No, you're not an idiot - this is a very non-intuitive design decision by the C++ committee. Most of us consider popping from a stack to return a value. Aug 30, 2012 at 22:10
  • @MarkRansom the rationale is for exception safety. See my comment on Kerrek SB's answer.
    – Brian Neal
    Aug 31, 2012 at 0:22
  • @BrianNeal, I knew there was a good reason even though I couldn't remember it. It's still non-intuitive. Aug 31, 2012 at 1:50
  • 1
    When it comes to exception safety, things rarely seem intuitive.
    – Brian Neal
    Sep 18, 2012 at 13:01

4 Answers 4

52

The standard library containers separate top() and pop(): top() returns a reference to the top element, and pop() removes the top element. (And similarly for back()/pop_back() etc.).

There's a good reason for this separation, and not have pop remove the top element and return it: One guiding principle of C++ is that you don't pay for what you don't need. A single function would have no choice but to return the element by value, which may be undesired. Separating concerns gives the user the most flexibility in how to use the data structure. (See note #3 in the original STL documentation.)

(As a curiousum, you may notice that for a concurrent container, a pop-like function is actually forced to remove and return the top value atomically, since in a concurrent context, there is no such notion as "being on top" (or "being empty" for that matter). This is one of the obvious examples of how concurrent data structures take a significant performance hit in order to provide their guarantees.)

12
  • 10
    I'd like to add more weight to the stance that pop() returning a value is a bad idea. Even if pop() returned a value efficiently, users that didn't use the return value could still pay a price: the copy-constructor could throw an exception. We wouldn't even be able to guarantee the simple act of popping off an unused value would work! (Obviously ignoring that failure of a possibility that is a throwing destructor.)
    – GManNickG
    Aug 30, 2012 at 22:39
  • 1
    @GManNickG: Good point, exception safety is always important to keep in mind!
    – Kerrek SB
    Aug 30, 2012 at 22:41
  • 2
    @BrianNeal, there are ways to design pop such that an exception caused by a copy constructor still leaves the stack in a good state. As for paying for what you don't need, there could have been an alternate method remove that removed the top element without returning it. Aug 31, 2012 at 1:55
  • 2
    While this design is valid, it's shortsighted 'cuz 1)removing and returning is the standard operation in stack-based algorithms 2)the definition of "pop" is "remove and return". It would make more sense to make both a version that returns and the one that doesn't, not requiring programmers to type two operations each time or resort to a macro or a subclass every time. Aug 15, 2018 at 15:35
  • 3
    pop is a misnomer then. It does not algorithmically pop from the stack. Reasoning for the behavior aside.
    – Erich
    Sep 25, 2019 at 16:54
6

You can use:

h = s.top();

then after that use(if you want to remove the most recent value otherwise do nothing)

 s.pop();

It works the same way!!

1

You can actually use s.top() to store the element and then pop it using

s.pop().

use

int h=s.top();
s.pop()

instead of

int h=s.pop()

You cannot directly assign s.pop() to some data type, as s.pop() removes element from stack and returns nothing.

0
-5

S.pop() does not return any value. Because pop() is void function. If you want to see the top of the stack then it will be S.top(). If you store this value then write value = S.top().

1
  • 8
    May I ask why you are answering a 3 year old question with an answer that doesn't provide any more insight into the question than the accepted answer does?
    – SirGuy
    Nov 24, 2015 at 18:19

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

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