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In Haskell I don't need to write anything to declare a variable. In C++ I need to write auto, which as far as I know works in an analogous way to rust's let.

  • Isn't it a step back to use let to declare a variable?:

    let hi = "hi";
    
  • Type inference and the assignment operator should be enough, or aren't they?:

    hi = "hi";
    

I'm just asking because the first thing that caught my attention while skimming through Rust's tutorial were the let's everywhere. I felt like, I shouldn't be needing to type it! The compiler already knows that I'm declaring a variable! For declaring uninitialized variables, one could argue that it might be nice to declare them with a type. But again, it's optional, a matter of style. The compiler can deduce the type at first use, and don't compile if it's not used and hence can't deduce the type.

  • What is the rationale behind forcing the users to write let? In particular, what is the rationale against making let optional?
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I don't agree that the question should be closed. Unless some special source comes up (@dbaupp - surprise us?), I'll wager it's a matter of style - it adds readability, and most languages have such a keyword (let, var, auto etc.). –  Ramon Snir Jun 3 '13 at 8:49
    
@RamonSnir thanks! Of course there are use cases for the keyword let, e.g. declaring an uninitialized variable. But making it mandatory everywhere seems just overly verbose to me (Haskell does pretty fine without it). I can imagine how some combination of obscure C++ rules would require such a keyword to exists in C++. But retrofitting an existing language is different from designing a new language from scratch. –  gnzlbg Jun 3 '13 at 8:54
    
Haskell has let .. in .. and .. where .., what do you mean? –  Ramon Snir Jun 3 '13 at 9:05
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I have a feeling there are at least 2 things going on here. Rust is big about being explicit, so variables should be explicitly declared (so the compiler knows about them, and their scope, rather than having to infer it), and the core team is also keen on having an unambiguous LL(k) (for small k) grammar (not sure if this is super important here). (@RamonSnir, I don't have much more info than you. :) ) –  dbaupp Jun 3 '13 at 10:17
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Hm, just thought of this: the pattern grammar is different to the expression/statement grammar, and let introduces a pattern context (i.e. you can pattern match in a let expression.), but it wouldn't be possible to decide that one has a pattern-matching assignment with finite look-ahead without let. (Also having let x = 1 means that declaring a mutable variable with let mut x = 1 is slightly more consistent than x = 1 and mut x = 1, which is possibly a little nice?) –  dbaupp Jun 3 '13 at 14:09

2 Answers 2

I am not so sure about grammar considerations (I think omitting it would be fine, grammar-wise, just more complex), but let and variable assignment are not the same thing in Rust. let is 1. pattern matching, 2. binding introducing. You can only do x = 3 if x is a mutable slot, but you can always do let x = 3, it introduces a new binding of a possibly different type and mutability. Removing let would make the current binding semantics impossible. It would also make patterns much more difficult, if not impossible. For example, let (a, b) = some_fn_returning_tuple();.

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This is inferred from ML syntax and in ML you don't declare variables, you declare bindings to values.

So it's just a convention, but unless you declare it as mutable, you must think of it as a binding. I don't think that there is a reason to it, but just to make it better "parseable" and keep the language clean.

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