Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have a 2D figure made from straight lines.

The figure's edges have coordinates from type double. The coordinates' values are stored in an object called Dot.

The data related to a line (is the line ascending or descending, the values of "a" and "b" in "a * X + b == Y" etc.) is stored in an object called Line. The Line class also has two Dot objects for the two ends of every line. The Line class also has 2 functions/methods and one constructor. The constructor has no arguments. The first function/method has no arguments and the second one has. Both functions/methods are created in order to change all the data automatically when ever necessary.

I insert the number of the sides of the figure and the coordinates of the edges after I start the program. Later the program has to write on the screen everything about every line. No matter what coordinates I insert, the coordinates of the first dot are X = -9,25596e+061 and Y = -9,25596e+061. But the other dots have the coordinates I have originally inserted.

There is one line that I add to a vector as much times as the number of the sides of the figure. After that I start changing the values of the coordinates of the edges of the figure (by inserting the values in the running program). The third action is to call the function/method that "creates" the lines (It calculates the rest of the data about the line). The fourth step of the program is to write on the screen the data about every line.

I have been searching for a problem in the algorithm and the code. I haven't found anything.

I'm using Visual C++ 2010 Express. I am also using the iostream and vector libraries.

So why are the X and Y coordinates of the first edge changing their values to -9,25596e+061?

share|improve this question
11  
Is there some code we can look at? –  Mysticial Dec 26 '11 at 23:15
2  
please post some code... –  Fredrik Pihl Dec 26 '11 at 23:15
5  
That's a magic value you could encounter in the debug build of your project in Visual Studio. It is meant to make you go whoa! something wrong here, Keanu style. The underlying hex value of that double is 0xcccccccccccccccc. The value that local variables are initialized to in the debug build. Initialize the variable to fix. –  Hans Passant Dec 26 '11 at 23:26
    
A small test program indicates that the double value -9.25596e+061 is represented in memory as f3 1f 26 29 cc cc cc cc. That sequence of 4 0xcc bytes looks suspicious. Could something be clobbering the memory containing those numbers? EDIT After setting the comment from @HansPassant, -9.25596000000e+61 is f3 1f 26 29 cc cc cc cc; -9.25596313493e+61 is cc cc cc cc cc cc cc cc. –  Keith Thompson Dec 26 '11 at 23:27
1  
Maybe the problem is that std::vector uses 0-based indexing whereas you assume that the first element is at index 1? –  Baltram Dec 26 '11 at 23:53

2 Answers 2

use a programmers calculator and put in 0xcccccc... and then convert it to a decimal (base 10 number) it will be something similar. This always means you have uninitialized values in memory. In the memory window or the debugger in visual studio, you can right click over the watch window and in the popup menu you can select the option to show the hexidecimal values for memory. Sometimes when I'm debugging crashes I do that to inspect raw floating point data.

share|improve this answer
    
"use a programmers calculator and put in 0xcccccc... and then convert it to a decimal (base 10 number) it will be something similar." No. You have to convert to IEEE 754 double-precision format, not "decimal". –  Pascal Cuoq Dec 27 '11 at 12:32
up vote 0 down vote accepted

OK, the problem appeared to be in the code. I haven't been initializing right... Had to swap the places of two variables in order to fix the problem. Thanks to Hans Passant and Baltram I figured where to search for the problem: when calling elements from any type of array.

Yeah, always be careful when doing such things.

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

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