0

Why can I invoke Parse method without parentheses since that method has 4 overloads?

For example in this case:

string[] aTemp = Console.ReadLine().Split(' ');
int[] a = Array.ConvertAll(aTemp, int.Parse);
2
  • You can't. The sample you posted does not invoke method. Can you please edit post to provide better more relevant example? Mar 22 '17 at 19:19
  • @AlexeiLevenkov you're right, but dana gave me the right answer so now I know why this isn't actually invoking.
    – gagro
    Mar 22 '17 at 19:57
5

The signature for ConvertAll is actually this:

public static TOutput[] ConvertAll<TInput, TOutput>(
    TInput[] array,
    Converter<TInput, TOutput> converter
)

Which the compiler can infer to be:

public static int[] ConvertAll<string, int>(
    string[] array,
    Converter<string, int> converter
)

From the signature for Int32.Parse:

public static int Parse(
    string s
)

If you wanted to write out in long hand:

Converter<string, int> converter = new Converter<string, int>(Int32.Parse);
string[] aTemp = Console.ReadLine().Split(' ');
int[] a = Array.ConvertAll<string, int>(aTemp, converter);

Note: Converter<TInput, TOutput> is actually a delegate that takes as input a parameter of type TInput and returns a value of type TOutput.

1
  • 1
    Ok @dana I got it. Thank you :)
    – gagro
    Mar 22 '17 at 19:15
0

Array.ConvertAll takes two parameters, an array of TInput, and a converter delegate from TInput to TOutput. There's only one overload of int.Parse that matches the signature of a converter delegate -

public static int Parse(
    string s
)

Putting together all of the information available, we can pick the right method to call.

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