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Why this code

void Main()
    double a = 0.00004;
    Int32 castToInt = (Int32)(1.0/a);
    Int32 convertToInt = Convert.ToInt32(1.0/a);

    Console.WriteLine("{0} {1:F9} {2:F9}", castToInt == convertToInt, castToInt, convertToInt);

    Console.WriteLine((((int)(1.0/(1.0/25000))) == 24999));

results in

False 24999,000000000 25000,000000000

in context of CLR/C# implementation

share|improve this question
0.00004 is not representable – David Heffernan Sep 26 '13 at 12:25

4 Answers 4

up vote 5 down vote accepted

The trick lies in the way the double is represented so (1.0/a) will be represented in the following way:

(1.0/a) = 24999.99999999999636202119290828704833984375.

When you use cast you get only the first part of this number, while the convert Method works in a different way, here is the code for the Convert method:

public static int ToInt32(double value)
    if (value >= 0.0)
        if (value < 2147483647.5)
            int num = (int)value;
            double num2 = value - (double)num;
            if (num2 > 0.5 || (num2 == 0.5 && (num & 1) != 0))
            return num;
        if (value >= -2147483648.5)
            int num3 = (int)value;
            double num4 = value - (double)num3;
            if (num4 < -0.5 || (num4 == -0.5 && (num3 & 1) != 0))
            return num3;
    throw new OverflowException(Environment.GetResourceString("Overflow_Int32"));

As you can see there is an if statement that checks the difference between casted value and original double, in your example it is:

int num = (int)value;
double num2 = value - (double)num;

24999.99999999999636202119290828704833984375 - 24999 > 0.5

, hence you get the increment.

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This answers the question. – Silvermind Sep 26 '13 at 13:11

In your calculation, the answer to 1.0/0.00004 is getting converted to a value very slightly smaller than 2500, because floating-point numbers can't precisely represent all possible values. Given that,

Why do the two integers have different values?

Casting a double to an int truncates the value, so everything after the decimal point is discarded.

Convert.ToInt32 on a double rounds to the nearest integer.

Why are floating point numbers imprecise?

See the excellent article linked in another answer: What Every Computer Scientist Should Know About Floating-Point Arithmetic

How can I represent values precisely?

You could use a decimal type rather than double. There are pros and cons to doing this, see decimal vs double! - Which one should I use and when?

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Cast trunk the floating number

(Int32)41.548 == 41

Convert round the number (feature?)

Convert.ToInt32(41.548) == 42

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It is not a feature, it is fully documented behavior (see related question) – Alexander Simonov Sep 26 '13 at 12:17
That's not explain why ((int)(1.0/(1.0/25000))) == 24999 – diimdeep Sep 26 '13 at 12:19
@diimdeep, because 1.0 / 0.0004 == 24999.999999999996. I've edited my previous comment, see related question. – Alexander Simonov Sep 26 '13 at 12:24
What ? Actually (1.0 / 0.00004) == 25000 – diimdeep Sep 26 '13 at 12:25
@diimdeep, set a breakpoint after double r = 1.0 / 0.0004; and look at r value. You will be surprised :). – Alexander Simonov Sep 26 '13 at 12:29

Floating point math is not exact. Simple values like 0.2 cannot be precisely represented using binary floating point numbers, and the limited precision of floating point numbers means that slight changes in the order of operations can change the result. A must read:

What Every Computer Scientist Should Know About Floating-Point Arithmetic

The IEEE standard divides exceptions into 5 classes: overflow, underflow, division by zero, invalid operation and inexact. There is a separate status flag for each class of exception. The meaning of the first three exceptions is self-evident. Invalid operation covers the situations listed in TABLE D-3, and any comparison that involves a NaN.

share|improve this answer
Just a question, but does that document cover the difference between casting and converting, because it's a rather long document. – Silvermind Sep 26 '13 at 12:10
Can you provide more details about CLR implementation that is different campare one to another ? – diimdeep Sep 26 '13 at 12:13
Have you read the question? Because I am not sure the code is about precision in general. It's about the difference in Convert – Silvermind Sep 26 '13 at 12:13 – al-Acme Sep 26 '13 at 12:17

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