0

This question already has an answer here:

I am trying to get my program to read a file and use the file as input information. I put the file in the same directory as my program, but still nothing.

Here is my code:

int main()
{
    ifstream inFile;
    inFile.open("inData.txt");
    if (inFile.fail())            
    {
        cout << "file did not open please check it\n";
        system("pause");
        system("exit");
    }
    studentType sList[20];
    getData(inFile, sList, 20);
    calculateGrade(sList, 20);
    printResult(sList, 20);
    inFile.close();
    system("pause");
    return 0;
}

marked as duplicate by spectras, stijn, Swift - Friday Pie, πάντα ῥεῖ c++ Jul 28 '18 at 8:08

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

  • 1
    What compiler are you using? MSVS uses where the source files are as the working directory – NathanOliver Jul 28 '18 at 2:09
  • 1
    I believe you are running the code from an IDE, such as MSVS. So an idea is to print the directory where the program is running and make sure there is a "inData.txt" file there . Take a look at stackoverflow.com/a/198099/4289700. – HugoTeixeira Jul 28 '18 at 2:35
  • 2
    If your top priority is to get this working, I suggest using the complete path. Ex: inFile.open("C:\\myHome\\testFile.txt");. that is also a good practice to do in your production code. – techieChamp Jul 28 '18 at 7:00
  • The working directory is initialised when the process is started. It depends on how the process is started. How do you start the process? – David Heffernan Jul 28 '18 at 7:07
  • @DavidHeffernan 'Initialized' isn't a great choice of words. It is determined by where you are when you start the process. – user207421 Jul 28 '18 at 7:55
0

Compile and run this program from the same location your program is. Wherever it creates the file output.txt is your working directory:

#include <fstream>

int main(int argc, char **argv)
{
    std::ofstream myfile;
    myfile.open("output.txt");
    myfile << "output\n";
    myfile.close();
    return 0;
}

When you run your program, put your inData.txt file in that directory.

  • 2
    You can just pass the file name to the constructor of std::ofstream and let the destructor close the file for you. – Alexander Zhang Jul 28 '18 at 4:04
  • I ran this, and it turns out it is the same directory where I originally placed my "inData.txt" file. – 5MikesOut Jul 28 '18 at 4:37
  • @5MikesOut did you run my program and yours from the exact same location? if so, can you add the ls output (or windows equivalent) of this directory? – OrenIshShalom Jul 28 '18 at 5:08
-2

What is the working directory of my C++ program?

It is the directory you are in when you run it. Your current working directory. The output of cd (Windows) or pwd (Unix/Linux).

I put the file in the same directory as my program, but still nothing.

It is not the same directory as your program unless you were in that directory when you ran it. Clearly you weren't.

  • also program can change current directory – Swift - Friday Pie Jul 28 '18 at 8:06
  • This is, strictly speaking, incorrect. It is perfectly possible to, at least in Windows, create a new process with arbitrary initial working directory. – David Heffernan Jul 28 '18 at 8:15
  • it's that process's working directory. For user, it's user process's working directory. Any process. shell, etc. And it is possible in any system to call process with arbitrary directory, by default it's called with same as one of the caller process. – Swift - Friday Pie Jul 28 '18 at 8:24
  • 1
    First sentence is incorrect – David Heffernan Jul 28 '18 at 8:39
  • 1
    @TimBiegeleisen Matthew 7:6. – user207421 Nov 20 '18 at 5:40

Not the answer you're looking for? Browse other questions tagged or ask your own question.