3

I am trying to create a program which evaluates a stack of brackets for their correct implementation (i.e. if a bracket has opening and closing components, the bracket is valid, therefore it returns "true"). For example [()]{}{()()} is true while [({}) is false.

Currently, I am about to finish the program, although, the logical operator for stack evaluation does not work quite right.

I program in Xcode, and the problem can be related specifically for the IDE, but it is unlikely. The issue: Thread 1: EXC_BAD_ACCESS (code=1, address=0x0)

The program is not complete. I am about to insert a string of brackets as an input, and use a recursion for the evaluation of stack, in order to delete all the elements in a stack, if the bracket logic is correct, which in this case ("[()]{}{()()}") is correct. The desired logic is below:

s.evaluate -> []{[]}

s.evaluate -> {}

s.evaluate -> true

#include<iostream>

using namespace std;

struct node
{
    char bracket;
    node* next;
};

class stack
{
    node* top;

public:
    // constructure
    stack()
    {
        top = NULL;
    }

    void push(char bracket); // to insert an element
    void pop();  // to delete an element
    void evaluate(); // to evaluate the stack for brackets' logic
    void show(); // to show the stack

    bool isPair(node* n2, node* n1) {

        if ((n1->bracket == '(' && n2->bracket == ')') || (n1->bracket == '[' && n2->bracket == ']') || (n1->bracket == '{' && n2->bracket == '}')) {
            return true;
        } else {
            return false;
        }
    }
};

// insert an element
void stack::push(char bracket)
{
    char value = bracket;
    node* ptr;

    ptr = new node;
    ptr->bracket = value;
    ptr->next = NULL;

    if (top != NULL)
        ptr->next = top;

    top = ptr;

}

// delete an element
void stack::pop()
{
    node* temp;

    if (top == NULL)
    {
        cout << "\nThe stack is empty.";
    }

    temp = top;
    top = top->next;
    cout << "\nPOP Operation" << endl << "Poped value is " << temp->bracket;
    delete temp;
}

// evaluate a stack for bracket logic
void stack::evaluate()
{
    node* target = top;
    node* targetNext = target->next;
    node* temp;
    node* tempNext;

    if (target == NULL)
    {
        cout << "\nTrue" << endl;
    }

    while (target != NULL)
    {
        if (isPair(targetNext, target)) {
            temp = targetNext->next;
            tempNext = temp->next;

            cout << target->bracket << " and " << targetNext->bracket << " are deleted" << endl;

            delete target;
            delete targetNext;

            target = temp;
            targetNext = tempNext;

        } else {
            target = target->next;
            targetNext = target->next;
        }
    }

}


// Show stack
void stack::show()
{
    node* ptr1 = top;
    cout<<"\nThe stack is\n";
    while(ptr1 != NULL)
    {
        cout << ptr1->bracket << " -> ";
        ptr1 = ptr1->next;
    }
    cout << "NULL\n";
}

// Main function
int main()
{
    stack s1;

    string brackets = "[()]{}{[()()]()}";

    for(char& c : brackets) {
        s1.push(c);
    }

    s1.show();

    s1.evaluate();

    s1.show();

    return 0;
}

For now, I concentrate on the if logic part. I have changed the notation from:

bool isPair(node* n2, node* n1) {

    if ((n1->bracket == '(' && n2->bracket == ')') || (n1->bracket == '[' && n2->bracket == ']') || (n1->bracket == '{' && n2->bracket == '}')) {
        return true;
    } else {
        return false;
    }
}

to:

bool isPair(node* n2, node* n1) {

    if (n1->bracket == '(' && n2->bracket == ')')
    {
        return true;
    }

    else if (n1->bracket == '[' && n2->bracket == ']')
    {
        return true;
    }

    else if (n1->bracket == '{' && n2->bracket == '}')
    {
        return true;
    }

    else
    {
        return false;
    }
}

But it did not change anything (as expected). Why Xcode do not want to proceed my code fully?

Current output is:

The stack is
} -> ) -> ( -> ] -> ) -> ( -> ) -> ( -> [ -> { -> } -> { -> ] -> ) -> ( -> [ -> NULL
( and ) are deleted
{ and } are deleted
(lldb) 

I know, the code is very noobie, I am new to C++ and data structures, although, your help is utterly appreciated! 😄

  • Your problem is may related with getting char of empty string, have a look on stackoverflow.com/questions/19239566/… it could help you. – Manuel Romera Nov 15 '17 at 10:23
  • Indeed, I should have checked targetNext for it's existence. – Bexultan Myrzatayev Nov 15 '17 at 10:30
  • 1
    This is unrelated to your question, but since you are new: you might want to create a destructor or have a look at modern pointer types (unique_ptr, shared_ptr). This code would currently create a memory leak, since you create nodes on the heap, but never delete them, if the stack is deleted. – Jerome Reinländer Nov 15 '17 at 10:34
  • @JeromeReinländer, this is a problem I have now. Program never stops. Thank you for your advise! By the way, can you write a simple destructor for this problem? 😅 – Bexultan Myrzatayev Nov 15 '17 at 10:38
  • You are right, you check that target is not NULL, but not that target->next (aka targetNext) is not NULL... – Manuel Romera Nov 15 '17 at 10:39
1

Problems I see in your code:

Problem 1

You are leaving dangling pointers when you delete target and targetNext.

Let's say you have:

          target     targetNext
           |          |
           v          v
+----+     +----+     +----+
|    | --> |    | --> |    |
+----+     +----+     +----+

After you delete target and targetNext, you are left with:

node with dangling pointer
|
v
+----+     +----+     +----+
|    | --> | x  | --> | x  |
+----+     +----+     +----+

You have keep track of the node previous to target and make sure that its next is set to targetNext->next.

When you do that, you have to be careful to deal with the case where top and target are the same node.

You'll need to use:

// Special case the top node.
if ( top == target )
{
   top = prev = targetNext->next;
}
else
{
   prev->next = targetNext->next;
}

Problem 2

When you delete a pair of matching brackets, you'll need to start the check from the top. Otherwise, you will never be able to match outer brackets.

Let's say you start with "[()]".
You delete the inner matching pair, "()". Now you are left with "[]".
If you don't start from the top, the remaining pair will lever be matched.

You'll need to use the following logic after you delete target and targetNext.

// Start checking from the top.
target = top;
if (target == NULL)
{
   cout << "\nTrue" << endl;
   return;
}

targetNext = target->next;
if ( targetNext == NULL )
{
   cout << "\nFalse" << endl;
   return;
}

Problem 3

Use defensive programming. Always check whether target is valid, i.e. it is not NULL, before setting targetNext. Change the top of the function to:

node* target = top;
node* targetNext = NULL;
if ( target != NULL )
{
   targetNext = target->next;
}

Add similiar checks inside the loop too.

if (isPair(targetNext, target)) {
   ...
} else {
   target = target->next;
   if ( target != NULL )
   {
      targetNext = target->next;
   }
   else
   {
      targetNext = NULL;
   }
}

Problem 4

The expected nodes in isPair is switched.

When the input string is "[()]", the stack object is:

] -> ) -> ( -> [ -> NULL

When target points to ')' , targetNext points to '(`.

Your call to check whether target and targetNext point to a matching pair is:

if (isPair(targetNext, target)) {

In isPair, you have:

bool isPair(node* n2, node* n1) {
    if ((n1->bracket == '(' && n2->bracket == ')') ...

As you can see, n1 and n2 are flipped. You should change it to:

bool isPair(node* n1, node* n2) {
    if ((n1->bracket == '(' && n2->bracket == ')') ...

or switch the arguments when calling the function.

Problem 5

You are missing to output False when there are mismatching brackets.


Cleaned up versions of isPair and evaluate:

bool isPair(node* n1, node* n2)
{
   return ( (n1->bracket == '(' && n2->bracket == ')') ||
            (n1->bracket == '[' && n2->bracket == ']') ||
            (n1->bracket == '{' && n2->bracket == '}'));
}

void stack::evaluate()
{
   node* target = top;
   node* prev = top;

   while ( target )
   {
      node* targetNext = target->next;
      if ( targetNext == NULL )
      {
         cout << "\nFalse" << endl;
         return;
      }

      if (isPair(targetNext, target)) {

         cout << target->bracket << " and " << targetNext->bracket << " are deleted" << endl;

         // Special case the top node.
         if ( top == target )
         {
            top = prev = targetNext->next;
         }
         else
         {
            prev->next = targetNext->next;
         }

         delete target;
         delete targetNext;

         // Intermediate output for troubleshooting.
         // this->show();

         // Start checking from the top.
         target = top;
      }
      else
      {
         prev = target;
         target = target->next;
      }
   }

   cout << "\nTrue" << endl;
   return;
}

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.