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considering visual C++ compiler, Lets say I've got a file with whatever extension and it contains 100 bytes of data which are exactly the data that I want to initialize an array of char data type with a length of 100 characters with, Now apparently one way is to read those data out of file by using I/O file classes or APIs at run-time but what I want to know is that, is there any way using directives or something to tell the compiler I want to put that data in a right place in my application image files at compile time and compiler should go read those data out of that file?

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4 Answers 4

up vote 4 down vote accepted
  • Write a program that reads the 100 byte data file and generates as output, a file, with c++ code/syntax for declaring an array with the 100 bytes in the file.
  • Include this new generated file(inline) in your main c++ file.
  • Call the c++ compiler on the main c++ file.
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You do this with a resource in a Windows program. Right-click the project, Add, Resource, Import. Give the custom resource type a name. Edit the resource ID, if necessary. Get a pointer to the resource data at runtime with FindResource and LoadResource.

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Does the compiler examine the resource at compile time ? – letronje Sep 18 '10 at 19:49
The resource compiler, yes. Not much examining going on, it just embeds the bytes. – Hans Passant Sep 18 '10 at 19:59
You tell that still using a function like FindResource or LoadResource is required and that would be done at run-time, I meant a solution at compile-time. – Pooria Sep 23 '10 at 7:28

What I frequently use in testing for textual data is I create a std::istringstream object containing the text of the file to be read like this:

#include <string>
#include <fstream>
#include <sstream>

// raw string literal for easy pasting in
// of textual file data
std::istringstream internal_config(R"~(

# Config file

port: 7334
// etc....


// std::istream& can receive either an ifstream or an istringstream
void read_config(std::istream& is)
    std::string line;
    while(std::getline(is, line))
        // do stuff

int main(int argc, char* argv[])
    // did the user pass a filename to use?
    std::string filename;
    if(argc > 2 && std::string(argv[1]) == "--config")
        filename = argv[2];

    // if so try to use the file
    std::ifstream ifs;

        read_config(internal_config); // file failed use internal config
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#include "filename"

or am I missing something obvious?

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This won't work--he says the file is raw data (not code) – egrunin Sep 18 '10 at 20:48
That is because the question has been edited since I answered. – Dipstick Sep 18 '10 at 21:36
@Dipstick_No, Edition didn't have anything to do with changing the core issue. – Pooria Sep 23 '10 at 7:41
You didn't originally state that the data was in binary format. If it is then just convert it to comma separated hex ascii before hand then include that. – Dipstick Sep 24 '10 at 6:13
@Dipstick_Actually I did and that's why others proposed solutions regarding the matter. – Pooria Sep 24 '10 at 15:57

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