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Given the following function call in C:

fooFunc( barFunc(), bazFunc() );

The order of execution of barFunc and BazFunc is not specified, so barFunc() may be called before bazFunc() or bazFunc() before barFunc() in C.

Does Java specify an order of execution of function argument expressions or like C is that unspecified?

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1 Answer 1

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From the Java Language Specification (on Expressions):

15.7.4 Argument Lists are Evaluated Left-to-Right

In a method or constructor invocation or class instance creation expression, argument expressions may appear within the parentheses, separated by commas. Each argument expression appears to be fully evaluated before any part of any argument expression to its right.

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    While this is true, please please don't code in a way that makes it dependent on execution order. It's just adding complexity without adding functionality.
    – Jon
    Feb 4, 2010 at 17:50
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    Indeed, "It is recommended that code not rely crucially on this specification." java.sun.com/docs/books/jls/third_edition/html/…
    – trashgod
    Feb 4, 2010 at 22:13
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    @Jon I disagree! if it is in the specification, then you can rely on it. For example, to read a rectangle from a file, I use this code: myRect = new Rectangle(scan.nextInt(), scan.nextInt(), scan.nextInt(), scan.nextInt()); It is concise and simple. A longer implementation would be unnecessary complexity. Oct 31, 2014 at 16:44
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    I used that to avoid saving local variables in many places and made code shorter 1/2 lines for each funcion call in a parser :D. Avoiding many local variables (unless that creates more complex code) is usually good design too. Feb 1, 2015 at 17:08
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    @Jon If Java allowed temporary variable declaration prior to constructor chaining calls, I would agree with you. However, I see no viable alternative to relying on this behavior when combining constructor chaining with complex member initialization.
    – Jeff G
    Mar 17, 2016 at 23:32

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