Compute the number of expected arguments and whether the result type is of the form (?m ...) where ?m is an unassigned metavariable.
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- Lean.Meta.getExpectedNumArgsAux e = Lean.Meta.withDefault (Lean.Meta.forallTelescopeReducing e fun (xs : Array Lean.Expr) (body : Lean.Expr) => pure (xs.size, body.getAppFn.isMVar))
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- Lean.Meta.getExpectedNumArgs e = do let __discr ← Lean.Meta.getExpectedNumArgsAux e match __discr with | (numArgs, snd) => pure numArgs
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If synthAssignedInstances is true, then apply will synthesize instance implicit arguments
even if they have assigned by isDefEq, and then check whether the synthesized value matches the
one inferred. The congr tactic sets this flag to false.
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Close the given goal using apply e.
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Short-hand for applying a constant to the goal.
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Apply And.intro as much as possible to goal mvarId.
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- mvarId.splitAnd = mvarId.splitAndCore
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Apply the n-th constructor of the target type,
checking that it is an inductive type,
and that there are the expected number of constructors.
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Try to convert an Iff into an Eq by applying iff_of_eq.
If successful, returns the new goal, and otherwise returns the original MVarId.
This may be regarded as being a special case of Lean.MVarId.liftReflToEq, specifically for Iff.
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Try to close the goal using proof_irrel_heq. Returns whether or not it succeeds.
We need to be somewhat careful not to assign metavariables while doing this, otherwise we might
specialize Sort _ to Prop.
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Try to close the goal using Subsingleton.elim. Returns whether or not it succeeds.
We are careful to apply Subsingleton.elim in a way that does not assign any metavariables.
This is to prevent the Subsingleton Prop instance from being used as justification to specialize
Sort _ to Prop.
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