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I'm trying out Rhino to embed Javascript in Java. I noticed that when I eval a script that adds two ints together in Javascript, the result comes back as a Double.

ScriptEngine engine = new ScriptEngineManager().getEngineByName("JavaScript");
engine.put("x", 3);
engine.put("y", 4);

assertEquals(3, engine.eval("x")); // OK
assertEquals(4, engine.eval("y")); // OK
assertEquals(7, engine.eval("x + y")); // FAILS, actual = (Double) 7.0

So why does the x + y expression return a double instead of an int?

Is Javascript itself doing some type promotion I don't understand?

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2 Answers 2

up vote 3 down vote accepted

Fun fact of the day: All numbers in javascript (ECMAScript) are double-precision.

The Number type has exactly 18437736874454810627 (that is, 264−253+3) values, representing the double-precision 64-bit format IEEE 754 values as specified in the IEEE Standard for Binary Floating-Point Arithmetic, except that the 9007199254740990 (that is, 253−2) distinct “Not-a-Number” values of the IEEE Standard are represented in ECMAScript as a single special NaN value.

http://people.mozilla.org/~jorendorff/es6-draft.html#sec-8.1.5

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ok - but then why do some numbers come back as ints and others as doubles? –  wrschneider99 Mar 20 '13 at 16:36
    
If I had to take a guess it has something to do with floating point approximation. When Rhino gets a nice integer it gives it a stright value of 4.0000000000000 However, 4.0000000000000 + 3.0000000000000 may become 7.0000000000001. JavaScript being nice just gives you 7, but Java knows better and someplace in the translation you will get 7.0 –  travis Mar 20 '13 at 17:12

JavaScript only has one numerical type - Number which is analogous to the Java Double type. I expect the engine is coercing the type to Number to perform the arithmetic.

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