1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 16 17 18 19 20 21 22 23 24 25 26 27 28 29 30 31 32 33 34 35 36 37 38 39 40 41 42 43 44 45 46 47 48 49 50 51 52 53 54 55 56 57 58 59 60 61 62 63 64 65 66 67 68 69 70 71 72 73 74 75 76 77 78 79 80 81 82 83 84 85 86 87 88 89 90 91 92 93 94 95 96 97 98 99 100 101 102 103 104 105 106 107 108 109 110 111 112 113 114 115 116 117 118 119 120
|
(************************************************************************)
(* v * The Coq Proof Assistant / The Coq Development Team *)
(* <O___,, * INRIA - CNRS - LIX - LRI - PPS - Copyright 1999-2014 *)
(* \VV/ **************************************************************)
(* // * This file is distributed under the terms of the *)
(* * GNU Lesser General Public License Version 2.1 *)
(************************************************************************)
open Names
open Univ
open Term
open Declarations
open Environ
(** {6 Extracting an inductive type from a construction } *)
(** [find_m*type env sigma c] coerce [c] to an recursive type (I args).
[find_rectype], [find_inductive] and [find_coinductive]
respectively accepts any recursive type, only an inductive type and
only a coinductive type.
They raise [Not_found] if not convertible to a recursive type. *)
val find_rectype : env -> types -> inductive * constr list
val find_inductive : env -> types -> inductive * constr list
val find_coinductive : env -> types -> inductive * constr list
type mind_specif = mutual_inductive_body * one_inductive_body
(** {6 ... } *)
(** Fetching information in the environment about an inductive type.
Raises [Not_found] if the inductive type is not found. *)
val lookup_mind_specif : env -> inductive -> mind_specif
(** {6 Functions to build standard types related to inductive } *)
val ind_subst : mutual_inductive -> mutual_inductive_body -> constr list
val type_of_inductive : env -> mind_specif -> types
val elim_sorts : mind_specif -> sorts_family list
(** Return type as quoted by the user *)
val type_of_constructor : constructor -> mind_specif -> types
(** Return constructor types in normal form *)
val arities_of_constructors : inductive -> mind_specif -> types array
(** Return constructor types in user form *)
val type_of_constructors : inductive -> mind_specif -> types array
(** Transforms inductive specification into types (in nf) *)
val arities_of_specif : mutual_inductive -> mind_specif -> types array
val inductive_params : mind_specif -> int
(** [type_case_branches env (I,args) (p:A) c] computes useful types
about the following Cases expression:
<p>Cases (c :: (I args)) of b1..bn end
It computes the type of every branch (pattern variables are
introduced by products), the type for the whole expression, and
the universe constraints generated.
*)
val type_case_branches :
env -> inductive * constr list -> unsafe_judgment -> constr
-> types array * types * constraints
val build_branches_type :
inductive -> mutual_inductive_body * one_inductive_body ->
constr list -> constr -> types array
(** Return the arity of an inductive type *)
val mind_arity : one_inductive_body -> rel_context * sorts_family
val inductive_sort_family : one_inductive_body -> sorts_family
(** Check a [case_info] actually correspond to a Case expression on the
given inductive type. *)
val check_case_info : env -> inductive -> case_info -> unit
(** {6 Guard conditions for fix and cofix-points. } *)
val check_fix : env -> fixpoint -> unit
val check_cofix : env -> cofixpoint -> unit
(** {6 Support for sort-polymorphic inductive types } *)
(** The "polyprop" optional argument below allows to control
the "Prop-polymorphism". By default, it is allowed.
But when "polyprop=false", the following exception is raised
when a polymorphic singleton inductive type becomes Prop due to
parameter instantiation. This is used by the Ocaml extraction,
which cannot handle (yet?) Prop-polymorphism. *)
exception SingletonInductiveBecomesProp of identifier
val type_of_inductive_knowing_parameters : ?polyprop:bool ->
env -> one_inductive_body -> types array -> types
val max_inductive_sort : sorts array -> universe
val instantiate_universes : env -> rel_context ->
polymorphic_arity -> types array -> rel_context * sorts
(** {6 Debug} *)
type size = Large | Strict
type subterm_spec =
Subterm of (size * wf_paths)
| Dead_code
| Not_subterm
type guard_env =
{ env : env;
(** dB of last fixpoint *)
rel_min : int;
(** dB of variables denoting subterms *)
genv : subterm_spec Lazy.t list;
}
type stack_element = |SClosure of guard_env*constr |SArg of subterm_spec Lazy.t
val subterm_specif : guard_env -> stack_element list -> constr -> subterm_spec
|