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I have the following equations:

//get thermistor resistor value
temp=(THERMISTOR_R0)/((temp2/temp)-1);

//get temperature value in Kelvins and convert to Celsiuis
temp=(THERMISTOR_BETA)/log(temp/(THERMISTOR_R0*exp((-THERMISTOR_BETA)/298)));
temp-=273;

desiredVoltage =((15700-(25*temp))/10);

THERMISTOR_R0 and THERMISTOR _BETA are constant.

temp, temp2 and desiredVoltage are unsigned int and are defined before calculations.

The problem is, for example, when the term ((temp2/temp)-1) falls below 1, it rounds down to 0. I want to get rid of this rounding as it is causing huge problems with my calculations.

How do I do this?

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3 Answers

up vote 5 down vote accepted

It's not rounding, it's integer division. If both operands of the / operator are of integer types the behavior of C++ is to perform an integer division, which keeps only the integer part of the result (this is often needed in some algorithms because it's faster).

To get a "regular" division make sure that at least one of the operands involved is of a floating point type (float, double or long double); you can do this either declaring the variables involved as FP types

double temp2, temp;

either sticking a cast in front of one of the operands.

temp=(THERMISTOR_R0)/((double(temp2)/temp)-1);

(notice that here you'll incur in truncation if temp is still of integral type).

Most probably, here you'll simply want to declare temp and temp2 as double (or float if you are working in a really resource-tight environment).

Also, when dividing by a numeric literal, keep in mind that if you don't write the decimal point it will be an int literal, if you write it it will be a double. E.g., 298 is an int, 298. is a double, so 1/2 is 0, but 1/2. is 0.5.

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Also, the OP may need to do something similar for (-THERMISTOR_BETA)/298 if THERMISTOR_BETA is an integer. –  Michael Burr Aug 13 '12 at 23:24
    
@MichaelBurr: although, it should suffice to write (-THERMISTOR_BETA)/298. (where 298. is a double literal). –  Matteo Italia Aug 14 '12 at 8:56
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Make sure that you use floating point types if you want floating point division behaviour.

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so if i was to declare unsigned float temp, temp2; it would solve my problem? –  moesef Aug 13 '12 at 23:05
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Probably not, as there's no unsigned float in C++. –  eq- Aug 13 '12 at 23:07
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The compiler rounds floating point values down.

Generally this problem is solved by adding 0.5 to the value before the conversion to an integer. You may want to explicitly use floating point values (or cast), then add 0.5 to the result before you cast back to integers.

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Truncation happens when you assign a FP value to an integral variable, but what seems to be happening here is that integer divisions are performed because the type of the operands are all integral. –  Matteo Italia Aug 13 '12 at 23:11
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