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//declare and assign
const firstName = 'bangalore'
console.log(firstName)

//reassign
firstName = 'mysore'
console.log(firstName)//type error

//redeclare
const firstName = 'chennai'
console.log(firstName)//syntax error

If JavaScript is an interpreted language because it executes code line by line and stops executing when it encounters an error, then why in my case is the type error not printed in my terminal? Instead, it skips and goes on to print syntax error?

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    You have defined firstName as a constant. Change const to let. – Enijar Jul 15 at 14:16
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    The console breaks on the line firstName = 'mysore' so not sure what you are talking about. Not sure what the errors you are talking about exactly. The error should be "Uncaught SyntaxError: Identifier 'firstName' has already been declared", – epascarello Jul 15 at 14:19
  • @epascarello It breaks on the line const firstName = 'chennai'. I think OP's is asking why it doesn't break on firstName = 'mysore' instead. – Ivar Jul 15 at 14:21
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    Duplicate of Different Behavior for Different Syntax Errors in JavaScript - unfortunately the close banner won't display that because the first two CVers misunderstood the question and thought this was a case of a typo. – TylerH Jul 15 at 14:32
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Redeclaring is considered a syntax error, which happens as soon as the engine tries to parse the JS code. The TypeError is raised at runtime, which happens after parsing.

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because you set firstName variable as const (from constant - means invariable value) and later try to reassign it. use let instead of const for this specific case

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    OP asks why the SyntaxError appears before the TypError, not why an error appears at all. – ewen-lbh Jul 15 at 14:21

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