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let a = Array.create 3 (Array.create 3 0)
let b = Array.init 3 (fun _ -> Array.init 3 (fun _ -> 0))

These two arrays both have the signature int [] [] and initial value [|[|0; 0; 0|]; [|0; 0; 0|]; [|0; 0; 0|]|].

However:

a.[0].[0] <- 3
b.[0].[0] <- 3

produces different results:

a: [|[|3; 0; 0|]; [|3; 0; 0|]; [|3; 0; 0|]|]
b: [|[|3; 0; 0|]; [|0; 0; 0|]; [|0; 0; 0|]|]

The result for b is the one I would have expected for both.

It seems logical to me that identical signatures should act in an identical manner. Can anyone tell me what I am missing?

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3 Answers 3

up vote 3 down vote accepted

The second argument to Array.create is a singular value, which is used to initialize every slot in the array. I.e., think of the following:

let a =
    let v = Array.create 3 0
    Array.create 3 v

v is stored into all 3 slots of a, so modifying any element in a affects all 3 slots.

EDIT: Consider also the logically equivelent:

let b =
    let v = Array.create 3 0
    Array.init 3 (fun _ -> v)
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Of course, yes, that makes perfect sense @ildjarn. Thank you! –  CJW Mar 1 '11 at 7:34

In the first version, (Array.create 3 0) is evaluated BEFORE it is passed as an argument, so all the cells of the array get the same value. Arrays are reference types, so practically all cells are the same.

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It seems logical to me that identical signatures should act in an identical manner. Can anyone tell me what I am missing?

Sharing

Using Array.create results in an array of elements that share the same value. Using Array.init invokes a function to create the value of each element.

Consequently, this allocates two arrays:

let a = Array.create 3 (Array.create 3 0)

whereas this allocates four arrays:

let b = Array.init 3 (fun _ -> Array.init 3 (fun _ -> 0))

You may prefer to think of it in terms of array literals where the former is equivalent to:

let xs = [|0;0;0|]
[|xs;xs;xs|]

and the latter is equivalent to:

let xs = [|0;0;0|]
let ys = [|0;0;0|]
let zs = [|0;0;0|]
[|xs;ys;zs|]
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