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From Programming: principals and practices Chapter 4 Drill 1:

Write a program that consists of a while-loop that (each time around the loop) reads in two ints and then prints them. Exit the program when a terminating 'I' is entered.

So far the code's been crashing. When I debug it looks like it is crashed at line 20 with a range_error. I looked that up and it said it's because it's trying to access something that doesn't exist.

Also the | code is saying that no conversion from 'const char *' to 'int' How could I take that symbol in as an int so it can terminate? I thought doing it like (char)x was right!

Please if you have a solution keep it simple as I'm only on chapter 4 and I just learned loops and vectors.

#include "std_lib_facilities.h"

using namespace std;

int main()
{
    int x = 0;
    vector<int> tuggo;

    cout << "Enter two ints:" << endl;
    cout << "Enter a | to terminate program instead.";

    while(cin>>x)
    {
        if ((char)x == "|")
            break;
        tuggo.push_back(x);
            if (tuggo.size() == 1)
            {
                cout << tuggo[0] << tuggo[1] << endl;
                keep_window_open();
                break;
            }
            else if (tuggo.size() < 1)
                cout << "Too much data, this crappy program only can handle two integers." << endl;
    }
}
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3 Answers 3

up vote 2 down vote accepted

You need to get used to zero-based indexing.

size() is the number of elements. The first element is index 0. So when size() is 1, you can only access element 0.

Index 1 is the 2nd element, and so on.

Regarding your no conversion from 'const char *' to 'int' error, you should look up char and string literals. 'x' is of type char (a simple numeric value), whereas "x" is const char* (a pointer to zero or more null-terminated characters). Just change to single quotes, and you won't need the cast either.

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mmm yeah I forgot you don't define chars like that! –  Token coding newbie Jun 7 '13 at 13:51

When your vector size is 1 you try to access 2 elements - that's your range exception.

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Hrm, the way I wrote it I thought that it wouldn't try to access the elements unless vector has a least 2 elements in it. Doe's size() not start at 0? –  Token coding newbie Jun 7 '13 at 13:42
    
@user2442335 No, why would it? size is exactly what it says. –  Konrad Rudolph Jun 7 '13 at 13:45
2  
@user2442335 No. size() returns the number of elements, not the maximum index. Example: When tuggo.size() is 3, valid accesses are tuggo[0], tuggo[1] and tuggo[2]. –  Angew Jun 7 '13 at 13:45

tuggo.size() == 1 means that there is only one element in your std::vector (tuggo[0]) try with tuggo.size() == 2

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