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Currently I'm writing a rather extensive homework assignment that - among other things - reads a file, builds a binary search tree and outputs it.

Somewhere inside all that I've written a recursive method to output the values of the binary search tree in order.

void output(node* n)
{
if(n->leftChild != NULL)
    output(n->leftChild);
cout << n->keyAndValue << " || ";
outputString += n->keyAndValue << '|';
if(n->rightChild != NULL)
    output(n->rightChild);
}

No problem with that, but you'll notice the line outputString += n->keyAndValue << '|';, because I also want to have all the values inside a char array (I am not allowed to use strings or other more current features of C++) that I can use later on in a different method (e.g. Main method).

The Char-Array is declared as follows:

char *outputString;

This being just one of the ways I've tried. I also tried using the const keyword and just regularly building an array char outputString[]. With the version I've shown you I encounter an error when - later on in the program in a different method - calling the following code:

cout << outputString;

I get the following error:

Unhandled exception at 0x008c2c2a in BST.exe: 0xC00000005: Access Violation reading location 0x5000000000.

Any clue as to how I'd be able to build a dynamic char array, assign values to it numerous times using += and outputting it without triggering an access violation? I am sorry for asking a rather basic question but I am entirely new to C++.

Thanks and Regards,

Dennis

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10  
Whoever is stopping you from using std::string should be taken outside and shot. Every day for a week. –  David Heffernan Jan 16 '13 at 13:57
1  
Are you conclusively proving to the SO community that you are unable to pick up a C++ book and read it? –  Tony The Lion Jan 16 '13 at 13:57
    
@DavidHeffernan It's a homework assignment. –  Mysticial Jan 16 '13 at 13:57
    
You cannot append to char pointers like that, not to mention that outputString += n->keyAndValue << '|' would not work as written even on an std::string. If you are constrained to char* it's going to be needlessly hard, but look into creating a "very large" buffer with malloc and then appending to it with strcat. –  Jon Jan 16 '13 at 13:58
    
as this is homework I would only point you in the general direction of malloc and leave it at that. of course, if it is allowed, you should be using std::string instead of char*. –  Oren Jan 16 '13 at 13:58

2 Answers 2

up vote 2 down vote accepted

+= on pointers does pointer arithmetic, not string concatenation. Eventually you get way beyond your array that outputString was pointing to, and trying to print it leads to a segfault.

Since you can't use std::string, you need to use strcat along with new[] and delete[] and make sure you allocated your original array with new[].

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Thanks for the quick response, unfortunately, as I stated, I am not allowed to use strings for the sake of doing my homework within the means of the knowledge I should've acquired during the lectures. –  Dennis Röttger Jan 16 '13 at 13:57
1  
@DennisRöttger sorry, bad reading. You need to just reallocate the array and copy into it whenever you need to concatenate. –  Seth Carnegie Jan 16 '13 at 13:58
1  
It's also worth mentioning that plain C strings need to be \0-terminated before being output somewhere via cout or FILE. –  Alexey Frunze Jan 16 '13 at 14:02

I'm guessing that since you can't use std::string, you also can't use new[].

You can concatenate strings with a function like this:

char *concat(const char *s1, const char *s2)
{
    size_t len = strlen(s1) + strlen(s2);
    char *result = (char*)malloc(len+1);
    strcpy(result, s1);
    strcat(result, s2);
    return result;
}

This can be done more efficiently, but that probably doesn't matter for homework. And you need to check for errors, etc. etc.

You also need to decide who is going to call free on s1 and s2.

For what it is worth, the efficient version looks like this:

char *concat(const char *s1, const char *s2)
{
    size_t len1 = strlen(s1);
    size_t len2 = strlen(s2);
    char *result = (char*)malloc(len1+len2+1);
    memcpy(result, s1, len1);
    memcpy(result+len1, s2, len2);
    result[len1+len2] = '\0';
    return result;
}

It's more efficient because it only walks the input strings once.

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2  
Why not use size_t? –  Alexey Frunze Jan 16 '13 at 14:01
1  
@AlexeyFrunze Because I was lazy. Now changed. –  David Heffernan Jan 16 '13 at 14:01
    
Could certainly do with more const, too. Also, shocking myself, since this is C++ I guess you must cast the return value of malloc(). –  unwind Jan 16 '13 at 14:07
    
@unwind Yeah, I slipped into C mode! –  David Heffernan Jan 16 '13 at 14:09

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