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Wasn't sure how to go about with the title, but when I try to cast an object in a list, I get that error.

this is what I try:

(type)objectList[i] = typeValue;

I would expect this to work but it doesn't. Can I get some help on rewriting it?

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You need to cast right of the equals sign. – John Koerner Jun 13 '12 at 2:17

The = sign in C# is the assignment operator. It assigns the value on the right side of the equals sign to the variable on the left side.

You have your statement backwards

you can assign objectList[i] to the value of typeValue like this

objectList[i] = typeValue;

if objectList is an array of type type and typeValue is already a variable of type type then no cast is needed.

if typeValue is not of type type then you can cast it like this

(type)typeValue

Hopefully that clarifies the situation

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I'm not completly sure what you mean, but if objectList is an array in typeof(object), no cast is necessary. If you are trying to cast typeValue, then assign it, you would use:

objectList[i] = (type)typeValue;
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When you cast an object to a different type, the return value is constant. A value must be a variable in order to accept assignment.

That is, the correct way to cast and assign is like so:

FooInstance = (Foo)BarInstance; // this is a correct cast

The above code creates a constant value of type Foo from the cast, then assigns its value to FooInstance, which is a variable.

(Bar)FooInstance = BarInstance; // this will cause a compiler error

This code, if allowed to run, would attempt to assign the value of BarInstance to a constant value of type Bar, created by the cast. Since you can't assign to constants, this is an error.

FooInstance = FooInstance2; // this works - no cast necessary
FooInstance = (Foo)FooInstance2; // this cast is unnecessary, but won't cause an error
(Foo)FooInstance = FooInstance2; // this will cause a compiler error

Even though they're of the same type, (Foo)FooInstance is constant, so it can't accept the value of FooInstance2. FooInstance, on the other hand, is a variable, so it can accept any value of type Foo.

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Having written this, I'm not certain whether the correct term for a return value is "constant" or "read-only". – Excrubulent Jun 13 '12 at 4:24

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