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Details:

Im using this github project to convert a Json to an object.

https://github.com/ereilin/qt-json

With this json:

{
    "bin": "/home/pablo/milaoserver/compile/Devices01.olk",
    "temp":"/home/pablo/milaoserver/temporal/",
    "port": "1234",
    "name": "lekta",

}

with this two lines I create two char pointers:

 char* bin = configuration["bin"].toString().toLatin1().data();
 char* temp = configuration["temp"].toString().toLatin1().data();

Debugging the app I have the proper strings.

However when I use them, concretely the "bin" char changes to

`hom 

Any Idea?

SOLUTION IN COMMENTS:

The problem was the "persistence" of the data.

I found the solution with:

std::string binAux(configuration["bin"].toString().toLatin1().data());
std::string tempAux(configuration["temp"].toString().toLatin1().data());

char* bin = new char[binAux.size()+1] ;
strcpy(bin, binAux.c_str());

char* temp = new char[tempAux.size()+1] ;
strcpy(temp, tempAux.c_str());
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4  
Is it possible that toString produces a temporary string, that doesn't "exist" after the line is finished? –  Mats Petersson Aug 23 '13 at 11:10
    
Does the value of temp appear correct? –  lurker Aug 23 '13 at 11:10
    
Temp exists properly. And the bin too. But when I "use" them, only bin changes :S –  Pablo Flores Aug 23 '13 at 11:12
    
If you're using C++ and Qt, you should use std::string or QString, and not the raw char array. –  Nemanja Boric Aug 23 '13 at 11:12
    
I Tried to delete "weird" characters like '.' and '_' but It doesnt work. –  Pablo Flores Aug 23 '13 at 11:13

4 Answers 4

up vote 3 down vote accepted

Your error here is because of temporary object.

toString() create a temporary object no longer available after the semicolon.

The standard state :

12.2 Temporary objects [class.temporary]

3/ [...] Temporary objects are destroyed as the last step in evaluating the full-expression (1.9) that (lexically) contains the point where they were created. This is true even if that evaluation ends in throwing an exception. The value computations and side effects of destroying a temporary object are associated only with the full-expression, not with any specific subexpression.

That is, when you want to access it you have Undefined Behavior.

This should solve your problem :

QString str = configuration["bin"].toString().toLatin1();
QByteArray ba = str1.toLatin1();
char *bin = ba.data();

But what do you want to use char* ? You are in C++, use std::string or Qstring instead :

#include <string>

std::string bin(configuration["bin"].toString().toLatin1().data());
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You are all right. Thank you. I can't vete you positive. –  Pablo Flores Aug 23 '13 at 11:27
    
I want to use char* because I'm integrating a C Library that needs char* Thats the problem. Force to change old coders its really difficult. I have seen "ugly code of old people" that you can't imagine :P –  Pablo Flores Aug 23 '13 at 11:33

Can you please try something like

std::string sbin(configuration["bin"].toString().toLatin1().data());
std::string sTemp(configuration["temp"].toString().toLatin1().data());
share|improve this answer
    
You are all right too. Thank you. I can't vete you positive. –  Pablo Flores Aug 23 '13 at 11:28

toString() creates a QString object that is deleted immediately, so the data that is contained in it will be freed. I do recommend you to store the data in a QString until you use that char* bin.

share|improve this answer

Your solution could be shorter, like this:

char* bin = strdup(configuration["bin"].toString().toLatin1().data().c_str());
char* temp = strdup(configuration["temp"].toString().toLatin1().data().c_str());

strdup() does virtually all you do.

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