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I have an application in which I am using a certain class that has a method to return current elapsed time to me.

unsigned long long getCurrentElapsedTime(){
}

Unsigned long long is used instead of float in the above class because float wraps (changes to expo form) after running for a certain time (~1 hour). Earlier, I was using the method from the class that returned float of seconds (1.112, 1.336 and so on) for my program.

float getElapsedTime(){
}

I was using the above method in my program as follows:

float startTime, deltaTime;
starttime = getElapsedTime();

On Some event
deltaTime = getElapsedtime() - startTime;
if(deltaTime > 1.0f){
//do something
}

I have this getCurrentElapsedTime() method now that returns unsigned long long integer to me which is not wrapped till a long time. I have to use this method in my application in similar manner I used float but I am confused how I should be converting unsigned long long to float so that I don't get exponent format digits. For my application, I was earlier using float that had the following format digits ( 1.123, 2.345, 3.737, etc.)

If I have a very long unsigned long long number which I try to convert to float, I would probably get the same problem again (and the float would be in expo form) How do I tackle this problem? Is there something similar in decimals that I could convert to from unsigned long long without getting into wrapping problem?

share|improve this question
    
The exponential form is not a matter of using floats, it's just iostream making assumptions about what kind of formatting the user wants to see. – user529758 Mar 8 '13 at 8:30
    
Why do you now want to go back to floats? Just keep all time in long integers. – Alexey Frunze Mar 8 '13 at 8:31
1  
1 - It's not clear what your 'conversion' should look like. An unsigned long long is an integer, why would you want to convert that to a floating point number? 2 - You can get rid of the exp-notation when printing floats, but that will result in trailing zeros that give the impression of precision that isn't there. 3 - What's wrong with exp-notation anyways? – us2012 Mar 8 '13 at 8:31
    
@H2CO3 iostream doesn't make any assumptions. It does what you tell it. It obviously has to start in some state, however (but given the options for outputting floating point, who would ever output floating point without specifying at least the format and the precision). – James Kanze Mar 8 '13 at 8:58
    
@JamesKanze Assumption: "if x > 100000000, print it as 1e7 instead of 10000000 because people like compact forms more". – user529758 Mar 8 '13 at 9:01

Float does not "change" to any "expo fo". In fact, an unsigned long long will at some point overflow and wrap back to 0. A float will not. It will just not differ from the previous float value anymore if you add too small increments. A float is lossy, but it can represent values such as "infinite". A long is lossless, but finite.

It's probably your output function that changes formatting at a certain scale. But it's a matter of how you print your numbers!

# Don't mind the python syntax, please:
print "Different format strings: %.3f %e %f" % (1.0, 1.0, 1.0)
Different format strings: 1.000 1.000000e+00 1.000000

Same number, different output

However, what is your time source? Use the native type of your time source (which will likely be a long) You cannot improve precision just by converting this to another type.

share|improve this answer
    
Not that it matters, but you're Python's out of date:-). In C++, of course, std::cout << 1.0 << std::fixed << 1.0 << ' ' << std::scientific << 1.0 << std::endl;. (You should also mention that float doesn't wrap, ever, but unsigned long long does.) – James Kanze Mar 8 '13 at 8:56

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