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I've found that some people call JavaScript a "dynamically, weakly typed" language, but some even say "untyped"? Which is it really?

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7 Answers

JavaScript is untyped:

Even Brendan Eich says so. On Twitter, he replied to a thread that linked to this question:

... academic types use "untyped" to mean "no static types"...

So the problem is that there's a few different definitions of untyped.

One definition has been talked about in one of the above answers - the runtime doesn't tag values and just treats each value as bits. JavaScript does tag values and has different behaviour based on those tags. So JavaScript obviously doesn't fit this category.

The other definition is from Programming Language Theory (the academic thing that Brendan is referring to). In this domain, untyped just means everything belongs to a single type.

Why? Because a language will only generate a program when it can prove that the types align (a.k.a. the Curry-Howard correspondence; types are theorems, programs are proofs). This means in an untyped language:

  1. A program is always generated
  2. Therefore types always match up
  3. Therefore there must only be one type

In contrast to a typed language:

  1. A program might not be generated
  2. Because types might not match up
  3. Because a program can contain multiple types

So there you go, in PLT, untyped just means dynamically typed and typed just means statically typed. JavaScript is definitely untyped in this category.

See also:

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That's the only right answer. –  soc Feb 6 '12 at 17:28
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And of course, "no static types" is not the same as "no type declarations" either. –  Andreas Rossberg Feb 6 '12 at 20:26
    
+1. You should perhaps also link this in your answer. This "weakly typed" bs is too widespread. –  missingfaktor May 15 '12 at 11:59
    
+100,000,000 - welcome the minority of programmers that actually understand not only 1 language, but its differences and relationships with other languages. Now watch in horror as the majority abuses and twists everything...like andrew hare's answer on this page... –  Jimbo Jonny Oct 19 '12 at 16:59
    
Proving my own point, I just had an answer deleted by a mod for answering another question similarly. Guess I should have included the mozilla graphic. –  Jimbo Jonny Oct 19 '12 at 18:16
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JavaScript is weakly typed. It is most certainly not "untyped" but its weakly typed nature allows for a lot of flexibility in terms of implicit conversions.

Keep in mind that JavaScript is also dynamically typed. This method of typing allows what is know as "duck typing".

For comparison consider that JavaScript is not strongly typed nor is it statically typed. Sometimes understanding what something isn't can help you see better what it is.

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+1 Your last comment about what it isn't is to the point! –  Dror Jun 8 '09 at 13:40
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-1. You need to read this. –  missingfaktor May 15 '12 at 11:55
    
-1 JS is untyped. Typing refers to the act of declaring a type for a variable, not whether it has types or casts between them very well. –  Jimbo Jonny Oct 19 '12 at 16:55
    
This answer is much better, and much more accurate, than the top voted answer. –  Alex W May 30 at 20:40
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Typing system

  • Weakly typed means type conversion is done implicitly behind the scenes:

    "12345" * 1 === 12345  // string * number => number
    

    In strongly typed lanugages you would need to explicitly cast the string to integer:

    (int) "12345" * 1 === 12345
    
  • Dynamically typed means a variable can hold values of different data types:

    x = 12345;    // number
    x = "string"; // string
    

    In statically typed languages a variable can only have values of the type it was declared for:

    int x = 12345; // binds x to the type int
    x = "string"   // error
    
  • Typed means that the language distinguishes between different types such as integer, float, string, boolean and so on. Also each operation is bound to specific types. So you cannot divide an integer by a string.

    2 / "blah"  // produces NaN
    

    In untyped languages the operation of dividing integer by string would result in treating the first four bytes of string as integer and the outcome will be something quite unexpected:

    2 / "blah"  // will be treated as  2 / 1500275048
    
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But I think there's a contradiction in the last statement. In JavaScript, the result of an integer-string division is well-defined, for any value of the integer or string. It's just not very useful! –  Deniz Dogan Jun 8 '09 at 13:45
    
If you have a better definition/description, feel free to edit it. That’s why I made it community wiki. –  Gumbo Jun 8 '09 at 13:53
    
@skurpur: You had completely swapped the meanings of Dynamic and Weak typing - corrected that. –  Rene Saarsoo Jun 8 '09 at 14:56
    
Oh, sorry, you edited it whyle I was also editing it and I overwrote your changes. –  Rene Saarsoo Jun 8 '09 at 15:01
    
-1. You need to read this. –  missingfaktor May 15 '12 at 11:56
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To the author's point JavaScript is also classified as Dynamically typed. Wiki states that Dynamically typed languages are type checked at runtime instead of in a compiler while Weakly Typed refers to the ability to change type on the fly within your code. So yes it is both Dynamically typed AND Weakly typed.

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While it is typed (you can ask "typeof someVar" and learn its specific type, it's very weak.

Given:

  var a = "5";

you might say that a is a string. However, if you then write:

  var b = a + 10;

b is an int equal to 15, so a acted just like an int. Of course, you can then write:

  var c = a + "Hello World";

and c will equal "5Hello World", so a is again acting like a string.

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1) Casting a value != typing a variable 2) it's not weak, it's non-existent. You cannot type a variable in javascript. –  Jimbo Jonny Oct 19 '12 at 17:04
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Remember that JavaScript allows you to ask what is the typeof(your_variable), and compare types: 5==="5" returns false. Thus I don't think you can call it untyped.

It is dynamically and (estimated as) weakly typed. You may want to know it uses Duck typing (see andrew's link) and offers OOP though Prototyping instead of classes and inheritance.

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Typing of a variable has nothing to do with casting of values. It has to do with declarations of types for variables. Javascript doesn't have a construct for this at all, which is why so few javascripters even understand the concept, and why so many of them misconstrue variable typing as something to do with comparing or casting variable types. In JS you can't declare String a = "blah"; or var a:String = 'blah'; (i.e. typed variables) AT ALL. That is why it is untyped. –  Jimbo Jonny Oct 19 '12 at 17:07
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The problem here that is confusing a lot of programmers is that definitions like this are not standardized somewhere. The term untyped programming language is ambiguous. Does that refer to a language that has no data types or a language that is a lambda calculus untyped variant?

JavaScript has a type system and all of its functions' domains will accept any var variable. So that means JavaScript has a single data type, in reality. That is a matter of implementation that is more important to the very advanced JavaScript programmers. The average JavaScript programmer only cares about the abstract data types implemented via the var variable that have been specified by ECMAScript.

In the context of the everyday programmer, not the researcher, the term untyped is a misnomer because most people aren't doing lambda calculus. Thus the term confuses the masses and seems to declare that JavaScript does not have any data types which is simply not true. Anyone who has ever used typeof knows that JavaScript variables implement their own abstract data types:

var test = "this is text";
typeof(test);

yields

"string"

ECMAScript defines the following types for the language: undefined,null,string,boolean,number,object

http://www.ecma-international.org/publications/files/ECMA-ST/Ecma-262.pdf

A more accurate designation for JavaScript would be implicitly typed, dynamically typed, or weakly/loosely typed (or some combination thereof), in that JavaScript uses type coercion in some cases which makes the type implicit because you don't have to explicitly specify the type of your variables. It falls under weakly typed because, unlike some languages which distinguish between float and integer etc, it just uses one number type to encompass all numbers, and makes use of the type coercion mentioned previously[Section 9 of ECMAScript Spec], in strong contrast to a strongly-typed language which would have very specific data types (i.e. you would have to specify int or float).

The definitions of statically and dynamically-typed languages are not standardized, however they most often refer to the presence of certain language features. One of which is type-checking at runtime, or what is called dynamic type-checking. If you've used JavaScript, you already know that it definitely waits until runtime to check types, which is why you get TypeError exceptions during execution of your code. Example here

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It's not a misnomer, but context matters, see stackoverflow.com/questions/9154388/… –  Andreas Rossberg Jun 8 at 23:19
    
@AndreasRossberg It absolutely is a misnomer. What you refer to, in your shamelessly self-promoted link, is a type system. The reason the term is a misnomer is because it is ambiguous. Most programmers think data type not type system when they hear about an untyped language. I think Konrad Rudoph's comment really drives this point home. –  Alex W Jun 9 at 13:45
    
Not sure why you find it "shameless" to refer to my previous answer instead of repeating it here. Also, I clearly said context matters. In contrast to K. Rudolph's complaint, there are perfectly consistent and widely accepted definitions of "type system" in literature, and I quoted one. Of course, you are free to find them confusing in your context, but that doesn't make them "misnomers". –  Andreas Rossberg Jun 9 at 17:15
    
@AndreasRossberg Context is very important here. The top-voted answer says "untyped = no type declarations" which is clearly incorrect. What I am saying is that it is a misnomer, in this context. No one mentioned lambda calculus here and to do so is somewhat pretentious in this simple case. –  Alex W Jun 11 at 14:56
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