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this is my question. i opened a .jpg image and wrote its each byte in a .txt file seperated with a comma. it was success. now i want to use that txt file to rebuild the image. the img.txt looks something like 255,216,255,224,0,16,74,70,73,70,0,1,1....... the following code created the image.jpg, with the size if the original image, but but the image is not visible. im expecting help from somebody...

#include<iostream>
#include<string>
#include<fstream>
#include<sstream>
#include<cstdlib>
using namespace std;

int main(){

    char *s;
    long x;
    ifstream is("D:\\test\\img.txt");
    is.seekg(0,ios::end);
    x=is.tellg();
    is.seekg(0,ios::beg);

    s=new char[x];
    is.read(s,x);
    is.close();

    stringstream str;
    char a[4];
    int y = 0;
    for(int i=0; i<=x; i++) {
        if (s[i] != ',') {
            a[y] = s[i];
            y = y + 1;
        }
        if (s[i] == ',') {
            str << (unsigned char)atoi(a);
            a[0] = '\0';
            a[1] = '\0';
            a[2] = '\0';
            a[3] = '\0';
            y = 0;
        }
    }

    const char *ss=(str.str()).c_str();
    ofstream ex("D:\\test\\test.txt");
    ex << ss;

    ofstream fileo("D:\\test\\image.jpg",ios::binary);
    fileo.write(ss,(str.str()).length());
}
share|improve this question
1  
It's binary, not binery. – cnicutar Jul 12 '12 at 17:30
    
jpg is fairly complex, but here's something i found on the internet docs.oracle.com/javase/6/docs/api/javax/imageio/metadata/… – Sam I am Jul 12 '12 at 17:31
    
the created txt file contains all the data byte by byte of the image. so writing them back must re build the image. or eny ideas of re building it. – lakshitha Jul 12 '12 at 17:36
    
jpeg files carry much information than just a simple pixel-by-pixel array. – jrok Jul 12 '12 at 17:41
1  
the txt file was created as this. link – lakshitha Jul 12 '12 at 17:42
up vote 0 down vote accepted

Your code as written worked for me with Visual Studio 10 SP1. However, there is a subtle bug depending on your STL implementation (and luck):

Your code:

const char *ss=(str.str()).c_str();

Is using a temporary that has gone out of scope. What ss points to could well be garbage immediately (or any time in the future) after this line executes. The reason is std::stringstream::str() returns a copy of the string, it's safe to call std::string::c_str() on this copy, but that pointer will not be valid once the original (temporary) goes out of scope.

To fix this, make sure you copy the string out of the stringstream object so that the lifetime is known, like this:

std::string contents = str.str();
ofstream ex("D:\\Profile2.jpg.txt");
ex<<contents;

ofstream fileo("D:\\Profile2.jpg",ios::binary);
fileo.write(contents.c_str(), contents.length());

To reiterate, both versions are working for me, but the version I propose is actually working by design, as opposed to luck.

share|improve this answer
    
weldone mr.chard,,,, i dont know how to thank you. thanks thanks thanks very mutch. some people have vote down my question. but isnt this a real reachful question.... :) – lakshitha Jul 12 '12 at 18:02

The debugging process for this type of problem is this:

  • you create the smallest possible input (a text file with the letter 'a' inside and saved as 'test01.jpg') and run your conversion algorithm
  • you determine what is the expected result using your domain knowledge
  • you examine the output and determine if it is the expected result
  • if it is then you proceed and test the "txt to jpg" conversion
  • otherwise you either change your "jpg to txt" algorithm or your domain knowledge
  • assuming the txt output is the expected result you then run your "txt to jpg"
  • if the result matches the original file (remember, 'jpg' is just an extension, you can still open the file in notepad - or, better yet, a hex editor) then you change the input and test again
  • otherwise, you change your algorithm

The idea is to have a small input so you can follow the individual steps in the debugger and check that every instruction behaves the way you thought it should behave.

Since the output doesn't match the input, obviously something doesn't work as you intended. It is far more important to be able to solve your own problem than to get help with one specific issue.

I would also delete my buffers (s in the code above), even if the memory is reclaimed by the OS when the program exits, it is a good habit.

share|improve this answer
    
i would be very thankful for you. but the process was successful. mr.chard he solved the matter. he found out a bug. now all are correct. – lakshitha Jul 12 '12 at 18:06
    
@user1518082 This is precisely what I was talking about, Chad will not always be here to help you. You should be able to fix (most of) your problems yourself. – Andrei Jul 12 '12 at 18:11
    
thats true mr.Andrei, i agree with you, it is realy grate advice. – lakshitha Jul 12 '12 at 18:28

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