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A similar question Long in Float, why? here does not answer what I am searching for.

C# standard allows implicit conversion from long to float. But any long greater than 2^24 when represented as a float is bound to lose its 'value'. C# standard clearly states that long to float conversion may lose 'precision' but will never lose 'magnitude'.

My Questions are
  1. In reference to integral types what is meant by 'precision' and 'magnitude'. Isn't number n totally different from number n+1 unlike real numbers where 3.333333 and 3.333329 may be considered close enough for a calculation (i.e. depending on what precision programmer wants)
  2. Isn't allowing implicit conversion from long to float an invitation to subtle bugs as it can lead a long to 'silently' lose value (as a C# programmer I am accustomed to compiler doing an excellent job in guarding me against such issues)

So what could have been the rationale of C# language design team in allowing this conversion as implicit? What is it that I am missing here that justifies implicit conversion from long to float?

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"Loss of magnitude" is like in the case long n = 123456789012; byte x = (byte)n;. Before the conversion, the magnitude was something with "hundred billion". After the conversion the magnitude is something with "hundred". Magnitude is lost (the byte type has "wrapped around" very many times). When you convert the same n to float, it's still something with 123 billion. The magnitude is the same. However, the precision is not as high. You can't tell from the float that the number ended in 2, for example. –  Jeppe Stig Nielsen Aug 20 '13 at 20:10

5 Answers 5

up vote 8 down vote accepted

In general, floating point numbers don't represent many numbers exactly. By their nature they are inexact and subject to precision errors. It really doesn't add value to warn you about what is always the case with floating point.

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5  
This is much too general and imprecise. All integers and fractions with powers of two inside the precision range are exactly represented, so it is not correct to say "they are inexact and subject to precision errors". The other problem is that integer to float conversion is very often correct so bugs of it are very subtle. Counterexample: Casting 32bit ints to double precision yields always correct results. –  Thorsten S. Jun 25 '12 at 11:57
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@ThorstenS. true. That's why I said 'don't represent many numbers' not every number. –  kenny Jun 25 '12 at 12:00

This is a good question. Actually you can generalize this question, since the same issue exists for the implicit conversions of:

  • int to float
  • uint to float
  • long to float (which you're asking about)
  • ulong to float
  • long to double
  • ulong to double.

In fact, all integral types (and even char!!) have an implicit conversion to float and double; however, only the conversions listed above cause a loss of precision. Another interesting thing to note is that the C# language spec has a self-conflicting argument when explaining "why there is no implicit conversion from decimal to double":

The decimal type has greater precision but smaller range than the floating-point types. Thus, conversions from the floating-point types to decimal might produce overflow exceptions, and conversions from decimal to the floating-point types might cause loss of precision. For these reasons, no implicit conversions exist between the floating-point types and decimal, and without explicit casts, it is not possible to mix floating-point and decimal operands in the same expression.

The question of "why this decision was made" could best be answered by someone like Eric Lippert, I think. My best guess... this was one of those things where the language designers didn't have any strong arguments for going one way or the other, so they picked (what they thought was) the better of the alternatives, although that is arguable. In their defense, when you convert a large long to float, you do loose precision, but you still get what is the best representation of that number in the floating-point world. It is nothing like converting, say, an int to byte where there could be an overflow (the integer value is possibly outside the bounds of what a byte can represent) and you get an unrelated/wrong number. But still, in my opinion, it would have been more consistent with not having implicit conversions from decimal to floating-point, if they didn't also have these other conversions that cause loss of precision.

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Thanks for the explanation. The defense you think of is what I have settled for as of now:) but obviously people like Eric with more intimate knowledge of C# language and access to original design notes can help a lot in understanding this. –  Amit Mittal Jun 26 '12 at 4:42
    
I think .NET behaves that way because Java chose to do so, and I would guess Java did so because of some inconsistency about what floating-point numbers "mean". IMHO, there should be conversions from Long to Decimal, Decimal to Double, and Double to Single (i.e. float), but not Single to Double. Were those rules in effect, a sequence of implicit casts would always yield either the final type's best representation of the original value, or something very close to it. –  supercat Aug 5 '13 at 21:43
    
As it is, I think the designers of Java figured that since C likes to convert floating-point values to double even when it's not really needed, Java should allow implicit conversions in that direction, not recognizing that allowing an implicit operator from float to double implies that there cannot also exist an implicit operator from long to float without creating situations where e.g. an implicit cast from int to float, followed by a cast to double, may yield a value which is nowhere near the best Double representation of the original int. –  supercat Aug 5 '13 at 21:51
  1. In reference to integral types what is meant by 'precision' and 'magnitude'. Isn't number n totally different from number n+1 unlike real numbers where 3.333333 and 3.333329 may be considered close enough for a calculation (i.e. depending on what precision programmer wants)

'Precision' defines the amount of digits a number can carry. One byte can only carry 2 decimal digits if you (for easiness) encode them in BCD. Lets say you have 2 bytes available. You can use them to encode the numbers 0-9999 in an integer format or you can define a format where the last digit means the decimal exponent.

You can encode then 0-999 * (10^0 - 10^9)

Instead of encoding numbers from 0-9999 you can encode now numbers up to 999 000 000 000. But if you are casting 9999 from your integer format to your new format, you get only 9990. You have gained the span of possible numbers (your magnitude), but you lost precision.

With doubles and float you have following values which can be exactly represented: (int = 32 bits, long = 64 bits, both signed:)

int -> float -2^24 - 2^24

int -> double all values

long -> float -2^24 - 2^24

long -> double -2^53 - 2^53

Isn't allowing implicit conversion from long to float an invitation to subtle bugs as it > can lead a long to 'silently' lose value (as a C# programmer I am accustomed to compiler > doing an excellent job in guarding me against such issues)

Yes, it introduces silent bugs. If you expect that the Compiler gives you any help against these issues, forget it. You are on your own. I don't know any language which warns against losing precision.

One such bug: Ariane rocket...

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Your explanation of 'precision' and 'magnitude' for integral types makes perfect sense. Thanks for the explanation. Though I am still wondering, in deciding implicit or explicit conversion from long to float, what could possibly have tilted the scales in favor of implicit more so when general rule of thumb for C# seems to be 'Allow only explicit conversion until it is highly safe to go implicit'. –  Amit Mittal Jun 25 '12 at 11:05

max long value can be placed into float as

float.MaxValue ~= 3.402823+e38 
long.MaxValue ~= 9.223372+e18 

even though long is a 64bit Integer type and float is 32bit, but the way computer handles float's is different than long's. But for float greater range is achieved at the expense of precision.

long have much higher precision than float but the float have higher order of magnitude 10^38 compare to long 10^18.

I don't think they made a mistake allowing implicit conversion from long to float as float is still precise up to 7 digits. So if someone require more precision they can always use double or decimal`

Double-15-16 digits (64 bit)

Decimal -28-29 significant digits (128 bit)

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I am not saying they made a mistake. I just want to understand the 'why' part. .Net uses IEEE floating point standard and hence a float can only hold a maximum long of 2^24 without losing its value while long itself can hold 2^64 values (singed and unsigned). Hence Making long to float conversion implicit makes it silently lose value for more than half of the long range of values. Integral to real seem to be the only implicit conversions that can lead to a loss of value. –  Amit Mittal Jun 25 '12 at 7:14
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I would have to call experts on why part of it. @jonskeet can you please enlighten us. Thanks –  Mayank Jun 25 '12 at 9:02
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also @EricLippert –  Mayank Jun 25 '12 at 9:14

On further thinking, it seems all the three answers (which more/less point to same thing) are able to correctly explain the 'why' part of it.

  1. float and long both are numerical types
  2. float's range is big enough to hold long's range

Above two criteria I think were sufficient to dictate that long to float conversion should be implicit.

Since float is single precision it could not have represented all the values of long exactly. Hence they included it as a statement of fact in the standard. long to float conversion is 'safe' as the resulting float can easily denote the long value but off-course with lost precision.

Further float to long conversion is not implicit (as float's range is far bigger than what long can hold) and this ensures that something like this is not permitted silently

long lng = 16777217;
float flt = lng; //loses precision here
long lng2 = flt; //if permitted, would be 16777216 or 2^24
bool eq = lng == lng2;

Question of long losing its value only arrived if it was possible to silently obtain back the converted long.

Thanks all for helping me enhance my understanding.

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Since Stack Overflow does not allow to mark multiple answers, marking @Kenny answer which really triggered the thought. –  Amit Mittal Jun 25 '12 at 11:40

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