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I need a function in my project that will take a tree as argument and return the number of integers that were typed and a correct call.

wouldn't it just be preorder? like below. Please. Thanks

#include "t.h"
void preorder(tnode * t){
if (t == NULL) return;
cout << t->info <<endl;
preorder(t->left);
preorder(t->right);
}

call would be preorder(t).

This is the original function i have

 #ifndef T_H

#define T_H

#include <iostream>
#include <iomanip>
using namespace std;

struct tnode {
    int info ;
    int count;
    tnode * right, *left;
};

tnode * insert(int target,tnode * t);
tnode * makenode(int x);
tnode * tsearch(int x,tnode * t);
void inorder(tnode * t);
int height(tnode * t);
int count(tnode * t) ;
int total(tnode * t) ;

#endif

int main() {
int n,c;
tnode * t = NULL, *x;
    while (cin >> n) {t=insert(n,t);cout << n <<' ';}
    cout << endl;
    inorder(t);
    cout << endl;
    c = count(t);
    cout << "count: "<< c  <<endl;
    cout << endl;
    c = height(t);
    cout << "height: "<< c  <<endl;
    cout << endl;
    c=200;
    while (c-->0) if (x = tsearch(c,t)) cout << c << " is on the tree."<<endl;
return 0;
}

#include "t.h"

int count(tnode * t) {
    if (t == NULL) return 0;
    return 1 +  count(t->left) + count (t->right);
}

#include "t.h"

int height(tnode * t) {
    if (t == NULL) return -1;
    return 1 + max(height(t->left) , height (t->right));
}

#include "t.h"

//write out t in order
void inorder(tnode * t) {
    if (t == NULL) return;
    inorder (t->left);//write out lst in order
    cout <<setw(5) << t->info <<setw(5) << t->count<< endl;
    inorder (t->right);//write out rst in order
}

#include "t.h"

tnode * insert(int x, tnode * t) {
tnode * tmp = tsearch(x,t);
if (tmp != NULL) {
    tmp->count++;
    return t;
}
if (t == NULL) return makenode(x);
if ( x < t->info ) {
    t->left = insert(x,t->left);
    return t;
}
t->right = insert(x,t->right);
return t;
}

#include "t.h"

tnode * makenode(int x) {
tnode * t = new tnode;
    t->info =x;
    t->count =1;
    t->right = t->left = NULL;
return t;
}
share|improve this question
1  
The question is somewhat nebulous. Is this tree representative of a parse tree for an expression (in which case the number of integers is the number of leaves only) or is it just a binary tree of integers (in which case it is imply the number of nodes) ? Also, you're not passing an accumulator through your function, so you'll need a global counter (or fix the function parameters to include an in-out int* parameter as your counter accumulator). – WhozCraig Aug 7 '13 at 17:51
up vote 0 down vote accepted

First, your function can't be void. It has to return the number of ints that were typed, so it has to return int or int*.

Secondly, is the tree a binary tree that has all the ints that were typed? If so, any tree traversal algorithm will do. You just need a variable that you will increment when you find a new node (assuming they all store an int).

int preorder(tnode * t){
  if (t == NULL) return 0;

  else{
     return 1 + preorder(t->left) + preorder(t->right);
  }
}

If t isn't null, then it has 1 int stored in it. Then you just have to check the node's children.

share|improve this answer

When the user types a number, the insert function either inserts a new node with a count of 1 or adds to the count of an existing node. You need to sum up the counts of the elements in the tree:

int tcount(tnode * t){
    if (t == NULL) return 0;
    return t->count + tcount(t->left) + tcount(t->right);
}

A typical call would be

tnode * root = NULL;

/* insert stuff into the tree */

int count = tcount(root);
share|improve this answer
    
Got it. Im also trying to write a function ismono which returns whether a tree is mono (all the elements are unique aka no element appears more than one time). I have no idea on that – user2661545 Aug 7 '13 at 19:02
    
@user2661545 - Easy. Use similar logic as above. If the root is NULL, return true; if the count field of the root is greater than 1, return false; otherwise return the logical AND of the recursive call to the left and right subtrees. – Ted Hopp Aug 7 '13 at 19:06
    
@user2661545 - I see that you accepted the answer by ivoSilva. That solution counts the number of unique integers that were inserted into the tree, not the number of integers that were typed. Is that what you actually wanted? (For example, if the input were the sequence [1, 2, 3, 2], my code would return 4, while ivoSilva's would return 3.) – Ted Hopp Aug 7 '13 at 19:13

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