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I recently learned, while converting some Java code to C#, that Java's increment operator '+=' implicitly casts to the type of LHS:

int i = 5;
long lng = 0xffffffffffffL;  //larger than Int.MAX_VALUE
i += lng;                    //allowed by Java (i==4), rejected by C#

is equivalent to: (details here)

int i = 0;
long lng = 0xffffffffffffL;
i = (int)(i + lng);

thus silently causing the opportunity for loss of magnitude.

C# is more conscientious about this at compile-time:
Cannot convert source type long to target type int.

Are there other similar situations allowed by Java?

share|improve this question
    
Why the downvote? – Cristi Diaconescu Dec 19 '12 at 10:36
    
Possibly because it's not a question about C#, it just referrs to it ?? I find it annoying (but I don't downvote) when people include the [java] just because they mention it in the question. – Peter Lawrey Dec 19 '12 at 10:44
    
@Peter Okay, you may have a point. I was in a very C#-y mindset when I asked the question (being neck-deep in fixing C# code that was converted from Java). Never thought of adding tags from the readers' point of view :) [C# tag removed] – Cristi Diaconescu Dec 19 '12 at 15:51
2  
I am just guess here. I find it annoy when people down vote but there is no comment as to why. It's like telling you; I feel like you have done something wrong, but I am not telling you what or I don't even know what it is myself. ;) – Peter Lawrey Dec 19 '12 at 15:58
    
@Peter so... umm, why remove your answer? – Cristi Diaconescu Dec 19 '12 at 16:12
up vote 4 down vote accepted

A long can be promoted to a float or double, which results in a loss of accuracy:

public static void main(String[] args) {
    float f = Long.MAX_VALUE;
    double d = Long.MAX_VALUE;

    System.out.println(Long.MAX_VALUE);
    System.out.println(f);
    System.out.println(d);

}

prints

9223372036854775807
9.223372E18
9.223372036854776E18

I suspect C# does this the same way, though.

Aside from the compound assignment operators you already mentioned, I believe those to be all cases where an implicit conversion can change the value.

share|improve this answer
    
Yep, same in C# – Cristi Diaconescu Dec 19 '12 at 16:14
    
Conversion from float to double may change ranking by hundreds or orders of magnitude. Given float f=1E20; float f2=f*f; double d = 1E300;, a comparison between f2 and (float)d will correctly regard the values as indistinguishable. On the other hand, comparing d and (double)f2 will indicate that d is smaller than f2, even though it should be 240 orders of magnitude bigger. – supercat Feb 10 '14 at 22:42
    
Your example fails to support your claim, because it uses an explicit conversion which can (and in this instance does) change the value. Specifically, we have ((float) d) != d and ((double) f2) == f2. – meriton Feb 10 '14 at 23:12

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