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For some reason, Xcode will not take input from a file, while Visual C++ will. When I run this program in xcode, the variables numberRows and numberCols stay 0 (they are initialized to 0 in the main function). When I run it in Visual C++ they become 30 and 30 (the top line of maze.txt is "30 30" without the quotes). Any ideas why this is happening?

void readIn(int &numberRows, int &numberCols, char maze[][100]){

ifstream inData;
inData.open("maze.txt");

if (!inData.is_open()) {
	cout << "Could not open file. Aborting...";
	return;
}

inData >> numberRows >> numberCols;
cout << numberRows << numberCols;

inData.close();

return;

}

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2 Answers 2

up vote 1 down vote accepted

There is something else wrong.
Unfortunately it is hard to tell.

Try flushing the output to make sure you get the error message:

void readIn(int &numberRows, int &numberCols, char maze[][100])
{
    ifstream inData("maze.txt");

    if (!inData) // Check for all errors.
    {
         cerr << "Could not open file. Aborting..." << std::endl;
    }
    else
    {
         // Check that you got here.
         cerr << "File open correctly:" << std::endl;

         // inData >> numberRows >> numberCols;
         // cout << numberRows << numberCols;

         std::string word;
         while(inData >> word)
         {
             std::cout << "GOT:(" << word << ")\n";
         }

         if (!inData) // Check for all errors.
         {
             cerr << "Something went wrong" << std::endl;
         }
    }
}
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the file does open, the problem is not in the if statement, but rather with inData >> numberRows >> numberCols; –  Josh Oct 25 '09 at 1:16
1  
Unlikely. I think the problem is more likely to be the file was not opened correctly and because the error message is not flushed to the output you just have not noticed. –  Loki Astari Oct 25 '09 at 1:19
    
if the console does not display "Could not open file. Aborting..." wouldnt that mean the file is open? after taking away the exclamation point that statement does display. And sorry, I dont know what flushing is. First year csci student... –  Josh Oct 25 '09 at 1:26
    
Output to std::cout is buffered. This means it is stored in an internal data structure for efficiency. It will not be displayed on the output until the buffer is flushed. There are a couple of ways to flush the buffer std::endl is the easiest (or use std::cerr which is not buffered). –  Loki Astari Oct 25 '09 at 1:29
    
When I run the code you gave it prints this: File open correctly: 00Something went wrong. If, however, I add .is_open() to the end of !inData, it only outputs: File open correctly: 00. Not sure if this means anything...is !inData the same as !inData.is_open()? –  Josh Oct 25 '09 at 16:30

interesting, so I followed the following suggestion from this post http://forums.macrumors.com/showthread.php?t=796818:

Under Xcode 3.2 when creating a new project based on stdc++ project template the target build settings for Debug configuration adds preprocessor macros which are incompatible with gcc-4.2: _GLIBCXX_DEBUG=1 _GLIBXX_DEBUG_PEDANTIC=1

Destroy them if you want Debug/gcc-4.2 to execute correctly.

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