added documentation
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@ -219,6 +219,13 @@ impl Unifier {
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}
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(TVar { meta: Generic, id, range, .. }, _) => {
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self.occur_check(a, b)?;
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// We check for the range of the type variable to see if unification is allowed.
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// Note that although b may be compatible with a, we may have to constrain type
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// variables in b to make sure that instantiations of b would always be compatible
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// with a.
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// The return value x of check_var_compatibility would be a new type that is
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// guaranteed to be compatible with a under all possible instantiations. So we
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// unify x with b to recursively apply the constrains, and then set a to x.
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let x = self.check_var_compatibility(*id, b, &range.borrow())?.unwrap_or(b);
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self.unify(x, b)?;
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self.set_a_to_b(a, x);
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@ -319,6 +326,8 @@ impl Unifier {
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self.set_a_to_b(a, b);
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}
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(TCall(calls1), TCall(calls2)) => {
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// we do not unify individual calls, instead we defer until the unification wtih a
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// function definition.
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calls2.borrow_mut().extend_from_slice(&calls1.borrow());
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}
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(TCall(calls), TFunc(signature)) => {
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@ -330,6 +339,7 @@ impl Unifier {
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.map(|v| v.name.clone())
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.rev()
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.collect();
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// we unify every calls to the function signature.
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for c in calls.borrow().iter() {
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let Call { posargs, kwargs, ret, fun } = c.as_ref();
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let instantiated = self.instantiate_fun(b, signature);
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@ -341,6 +351,8 @@ impl Unifier {
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} else {
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unreachable!();
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}
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// we check to make sure that all required arguments (those without default
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// arguments) are provided, and do not provide the same argument twice.
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let mut required = required.clone();
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let mut all_names: Vec<_> =
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signature.args.iter().map(|v| (v.name.clone(), v.ty)).rev().collect();
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