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I came across two ways of getting BigDecimal object out of a double d.

1. new BigDecimal(d)
2. BigDecimal.valueOf(d)

Which would be a better approach? Would valueOf create a new object?

In general (not just BigDecimal), what is recommended - new or valueOf?

Thanks.

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4  
In general, valueOf is preferred (because it can avoid making new objects by reusing "popular" instances), but in the case of BigDecimals and double, unfortunately, the two methods produce different results, so you have to choose which one you need. –  Thilo Aug 25 '11 at 7:03

3 Answers 3

up vote 32 down vote accepted

Those are two separate questions: "What should I use for BigDecimal?" and "What do I do in general?"

For BigDecimal: this is a bit tricky, because they don't do the same thing. BigDecimal.valueOf(double) will use the canonical String representation of the double value passed in to instantiate the BigDecimal object. In other words: The value of the BigDecimal object will be what you see when you do System.out.println(d).

If you use new BigDecimal(d) however, then the BigDecimal will try to represent the double value as accurately as possible. This will usually result in a lot more digits being stored than you want. Strictly speaking, it's more correct than valueOf(), but it's a lot less intuitive.

There's a nice explanation of this in the JavaDoc:

The results of this constructor can be somewhat unpredictable. One might assume that writing new BigDecimal(0.1) in Java creates a BigDecimal which is exactly equal to 0.1 (an unscaled value of 1, with a scale of 1), but it is actually equal to 0.1000000000000000055511151231257827021181583404541015625. This is because 0.1 cannot be represented exactly as a double (or, for that matter, as a binary fraction of any finite length). Thus, the value that is being passed in to the constructor is not exactly equal to 0.1, appearances notwithstanding.

In general, if the result is the same (i.e. not in the case of BigDecimal, but in most other cases), then valueOf() should be preferred: it can do caching of common values (as seen on Integer.valueOf()) and it can even change the caching behaviour without the caller having to be changed. new will always instantiate a new value, even if not necessary (best example: new Boolean(true) vs. Boolean.valueOf(true)).

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Awesome answer (+1) –  Sean Patrick Floyd Aug 25 '11 at 7:45
    
This also explains my question: stackoverflow.com/questions/15685705/… –  Christian Mar 28 '13 at 17:22
    
@Joachim, it wasn't clear. Is new BigDecimal() better than BigDecimal.valueOf()? –  ryvantage Dec 24 '13 at 22:20
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@ryvantage: if one where strictly better than the other then there would be no need for both and my answer would be much shorter. They don't do the same thing, so you can't rank them at like that. –  Joachim Sauer Dec 24 '13 at 22:27
    
@JoachimSauer, ok sorry I should've been more specific. Would you mind giving an example of when new BigDecimal() would be preferred and an example of when BigDecimal.valueOf() would be preferred? –  ryvantage Dec 24 '13 at 22:43

If you are using your BigDecimal objects to store currency values, then I strongly recommend that you do NOT involve any double values anywhere in their calculations.

As stated in another answer, there are known accuracy issues with double values and these will come back to haunt you big time.

Once you get past that, the answer to your question is simple. Always use the constructor method with the String value as the argument to the constructor, as there is no valueOf method for String.

If you want proof, try the following:

BigDecimal bd1 = new BigDecimal(0.01);
BigDecimal bd2 = new BigDecimal("0.01");
System.out.println("bd1 = " + bd1);
System.out.println("bd2 = " + bd2);

You'll get the following output:

bd1 = 0.01000000000000000020816681711721685132943093776702880859375
bd2 = 0.01

See also this related question

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Basically valueOf(double val) just does this:

return new BigDecimal(Double.toString(val));

Therefore -> yep, a new object will be created :).

In general I think it depends upon your coding style. I would not mixure valueOf and "new", if both are the same outcome.

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4  
Technically true, but: it'll make a huge difference. valueOf() has the more intuitive behaviour, while new BigDecimal(d) has the more correct one. Try both and see the difference. –  Joachim Sauer Aug 25 '11 at 6:58
    
Technically false. 'new' always keyword always creates a new object while the javadoc does not tell if valueOf will return always a new object or not. It does not, not always. It has some values in cache so new BigDecimal(1) != new BigDecimal(1) but BigDecimal.valueOf(1) == BigDecimal.valueOf(1) –  user270349 Aug 25 '11 at 7:43
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@user: yes, but since BigDecimal is immutable it should be treated the same way that the primitive wrappers (Integer, Byte, ...) and String are treated: object identity should not matter to your code, only the value should matter. –  Joachim Sauer Aug 25 '11 at 8:21
    
@Joachim Right but that internal cache is there for a reason. Too many not needed equal instances of BigDecimal are not a good thing to have. And I was answering to Dr, He said "a new object will be created" –  user270349 Aug 25 '11 at 8:48
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@user: yes, that's why I said that valueOf() should generally be preferred. But note that BigDecimal.valueOf(double) doesn't do any caching (and it probably wouldn't be worth it, either). –  Joachim Sauer Aug 25 '11 at 8:50

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