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I'm trying to make some test data with which to test some functionality of my code. To this end, I need a double[][]. I am trying to do with a function that takes a double[][] as an input parameter and copying onto it a local variable containing the test data. However, I get an error that I don't quite understand (I'm sure it's a very basic error, which is why I'm unable to Google it), understanding/fixing which I'd appreciate any help.

private void makeData(double[][] patterns)
{
    double[][] data = new double[2][];
    // exists so that I can change `data` easily, without having to change the core functionality of copying it over to `patterns`
    data[0] = {1.0,8.0}; // error!
    // copy over everything from data into patterns
}

The line marked in the above code is giving me the error Only assignment, call, increment, decrement, and new objects can be used as a statement. To this, my reaction is "Isn't data[0] = {1.0,8.0}; an assignment?

I'm fairly confused, so I'd appreciate any help

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1  
you're using a 2 dimensional array and your second statement became 1 dimensional array –  rajeem_cariazo Jul 22 '13 at 14:25
    
new double[]{,} (I presume the data type is required) –  Sayse Jul 22 '13 at 14:25
    
@rajeem_cariazo: Thank you. That is exactly the explanation that I needed –  inspectorG4dget Jul 22 '13 at 14:26

3 Answers 3

up vote 3 down vote accepted

Just replace:

data[0] = {1.0,8.0};

by:

data[0] = new double[] { 1.0, 8.0 };

The compiler has to know explicitly what to assign to data[0]. It doesn't infer it from the type of data[0].

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You can actually type new[] {...} because it can infer the type from the contents of the initializer. –  Servy Jul 22 '13 at 14:37
    
I never do it for numbers because its easy to get lost with integers, floats, doubles, etc. And the type is infered, not from the type of data[0], but from the content of the initializer. –  Cédric Bignon Jul 22 '13 at 14:40
    
Yes, I said that it would infer the type based on the contents of the array. Note that if it inferred the wrong type then it wouldn't compile; if, for example, the contents were of type int and it made it an int[] then you'd get an error assigning that to a double[], so the code would remain clear in context. –  Servy Jul 22 '13 at 14:43

You want to do

data[0] = new[] {1.0, 8.0};

The curly brace initializers are only valid if you're creating an object/array. They don't work by themselves.

You can specify the type specifically:

data[0] = new double[] {1.0, 8.0};

But you don't have to if the compiler can infer the right type (which, in your case, it can).

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You should to initialize your subarray first.

double[][] data = new double[2][];
data[0] = new double[] {1.0f, 8.0f};
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