catala/compiler/scalc/compile_from_lambda.ml

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(* This file is part of the Catala compiler, a specification language for tax
and social benefits computation rules. Copyright (C) 2021 Inria, contributor:
Denis Merigoux <denis.merigoux@inria.fr>
Licensed under the Apache License, Version 2.0 (the "License"); you may not
use this file except in compliance with the License. You may obtain a copy of
the License at
http://www.apache.org/licenses/LICENSE-2.0
Unless required by applicable law or agreed to in writing, software
distributed under the License is distributed on an "AS IS" BASIS, WITHOUT
WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied. See the
License for the specific language governing permissions and limitations under
the License. *)
open Utils
module A = Ast
module L = Lcalc.Ast
module D = Dcalc.Ast
type ctxt = {
func_dict : A.TopLevelName.t L.VarMap.t;
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decl_ctx : D.decl_ctx;
var_dict : A.LocalName.t L.VarMap.t;
inside_definition_of : A.LocalName.t option;
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context_name : string;
}
(* Expressions can spill out side effect, hence this function also returns a
list of statements to be prepended before the expression is evaluated *)
let rec translate_expr (ctxt : ctxt) (expr : L.expr Pos.marked) :
A.block * A.expr Pos.marked =
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match Pos.unmark expr with
| L.EVar v ->
let local_var =
try A.EVar (L.VarMap.find (Pos.unmark v) ctxt.var_dict)
with Not_found ->
A.EFunc (L.VarMap.find (Pos.unmark v) ctxt.func_dict)
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in
([], (local_var, Pos.get_position v))
| L.ETuple (args, Some s_name) ->
let args_stmts, new_args =
List.fold_left
(fun (args_stmts, new_args) arg ->
let arg_stmts, new_arg = translate_expr ctxt arg in
(arg_stmts @ args_stmts, new_arg :: new_args))
([], []) args
in
let new_args = List.rev new_args in
let args_stmts = List.rev args_stmts in
(args_stmts, (A.EStruct (new_args, s_name), Pos.get_position expr))
| L.ETuple (_, None) ->
failwith "Non-struct tuples cannot be compiled to scalc"
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| L.ETupleAccess (e1, num_field, Some s_name, _) ->
let e1_stmts, new_e1 = translate_expr ctxt e1 in
let field_name =
fst
(List.nth
(D.StructMap.find s_name ctxt.decl_ctx.ctx_structs)
num_field)
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in
( e1_stmts,
( A.EStructFieldAccess (new_e1, field_name, s_name),
Pos.get_position expr ) )
| L.ETupleAccess (_, _, None, _) ->
failwith "Non-struct tuples cannot be compiled to scalc"
| L.EInj (e1, num_cons, e_name, _) ->
let e1_stmts, new_e1 = translate_expr ctxt e1 in
let cons_name =
fst (List.nth (D.EnumMap.find e_name ctxt.decl_ctx.ctx_enums) num_cons)
in
(e1_stmts, (A.EInj (new_e1, cons_name, e_name), Pos.get_position expr))
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| L.EApp (f, args) ->
let f_stmts, new_f = translate_expr ctxt f in
let args_stmts, new_args =
List.fold_left
(fun (args_stmts, new_args) arg ->
let arg_stmts, new_arg = translate_expr ctxt arg in
(arg_stmts @ args_stmts, new_arg :: new_args))
([], []) args
in
let new_args = List.rev new_args in
(f_stmts @ args_stmts, (A.EApp (new_f, new_args), Pos.get_position expr))
| L.EArray args ->
let args_stmts, new_args =
List.fold_left
(fun (args_stmts, new_args) arg ->
let arg_stmts, new_arg = translate_expr ctxt arg in
(arg_stmts @ args_stmts, new_arg :: new_args))
([], []) args
in
let new_args = List.rev new_args in
(args_stmts, (A.EArray new_args, Pos.get_position expr))
| L.EOp op -> ([], (A.EOp op, Pos.get_position expr))
| L.ELit l -> ([], (A.ELit l, Pos.get_position expr))
| _ ->
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let tmp_var =
A.LocalName.fresh
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( (*This piece of logic is used to make the code more readable. TODO:
should be removed when
https://github.com/CatalaLang/catala/issues/240 is fixed. *)
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(match ctxt.inside_definition_of with
| None -> ctxt.context_name
| Some v ->
let v = Pos.unmark (A.LocalName.get_info v) in
let tmp_rex = Re.Pcre.regexp "^temp_" in
if Re.Pcre.pmatch ~rex:tmp_rex v then v else "temp_" ^ v),
Pos.get_position expr )
in
let ctxt =
{
ctxt with
inside_definition_of = Some tmp_var;
context_name = Pos.unmark (A.LocalName.get_info tmp_var);
}
in
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let tmp_stmts = translate_statements ctxt expr in
( ( A.SLocalDecl
((tmp_var, Pos.get_position expr), (D.TAny, Pos.get_position expr)),
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Pos.get_position expr )
:: tmp_stmts,
(A.EVar tmp_var, Pos.get_position expr) )
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and translate_statements (ctxt : ctxt) (block_expr : L.expr Pos.marked) :
A.block =
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match Pos.unmark block_expr with
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| L.EAssert e ->
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(* Assertions are always encapsulated in a unit-typed let binding *)
let e_stmts, new_e = translate_expr ctxt e in
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e_stmts @ [ (A.SAssert (Pos.unmark new_e), Pos.get_position block_expr) ]
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| L.EApp ((L.EAbs ((binder, binder_pos), taus), eabs_pos), args) ->
(* This defines multiple local variables at the time *)
let vars, body = Bindlib.unmbind binder in
let vars_tau =
List.map2 (fun x tau -> (x, tau)) (Array.to_list vars) taus
in
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let ctxt =
{
ctxt with
var_dict =
List.fold_left
(fun var_dict (x, _) ->
L.VarMap.add x
(A.LocalName.fresh (Bindlib.name_of x, binder_pos))
var_dict)
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ctxt.var_dict vars_tau;
}
in
let local_decls =
List.map
(fun (x, tau) ->
( A.SLocalDecl ((L.VarMap.find x ctxt.var_dict, binder_pos), tau),
eabs_pos ))
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vars_tau
in
let vars_args =
List.map2
(fun (x, tau) arg ->
((L.VarMap.find x ctxt.var_dict, binder_pos), tau, arg))
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vars_tau args
in
let def_blocks =
List.map
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(fun (x, _tau, arg) ->
let ctxt =
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{
ctxt with
inside_definition_of = Some (Pos.unmark x);
context_name = Pos.unmark (A.LocalName.get_info (Pos.unmark x));
}
in
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let arg_stmts, new_arg = translate_expr ctxt arg in
arg_stmts @ [ (A.SLocalDef (x, new_arg), binder_pos) ])
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vars_args
in
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let rest_of_block = translate_statements ctxt body in
local_decls @ List.flatten def_blocks @ rest_of_block
| L.EAbs ((binder, binder_pos), taus) ->
let vars, body = Bindlib.unmbind binder in
let vars_tau =
List.map2 (fun x tau -> (x, tau)) (Array.to_list vars) taus
in
let closure_name =
match ctxt.inside_definition_of with
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| None ->
A.LocalName.fresh (ctxt.context_name, Pos.get_position block_expr)
| Some x -> x
in
let ctxt =
{
ctxt with
var_dict =
List.fold_left
(fun var_dict (x, _) ->
L.VarMap.add x
(A.LocalName.fresh (Bindlib.name_of x, binder_pos))
var_dict)
ctxt.var_dict vars_tau;
inside_definition_of = None;
}
in
let new_body = translate_statements ctxt body in
[
( A.SInnerFuncDef
( (closure_name, binder_pos),
{
func_params =
List.map
(fun (var, tau) ->
((L.VarMap.find var ctxt.var_dict, binder_pos), tau))
vars_tau;
func_body = new_body;
} ),
binder_pos );
]
| L.EMatch (e1, args, e_name) ->
let e1_stmts, new_e1 = translate_expr ctxt e1 in
let new_args =
List.fold_left
(fun new_args arg ->
match Pos.unmark arg with
| L.EAbs ((binder, pos_binder), _) ->
let vars, body = Bindlib.unmbind binder in
assert (Array.length vars = 1);
let var = vars.(0) in
let scalc_var =
A.LocalName.fresh (Bindlib.name_of var, pos_binder)
in
let ctxt =
{
ctxt with
var_dict = L.VarMap.add var scalc_var ctxt.var_dict;
}
in
let new_arg = translate_statements ctxt body in
(new_arg, scalc_var) :: new_args
| _ -> assert false
(* should not happen *))
[] args
in
let new_args = List.rev new_args in
e1_stmts
@ [ (A.SSwitch (new_e1, e_name, new_args), Pos.get_position block_expr) ]
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| L.EIfThenElse (cond, e_true, e_false) ->
let cond_stmts, s_cond = translate_expr ctxt cond in
let s_e_true = translate_statements ctxt e_true in
let s_e_false = translate_statements ctxt e_false in
cond_stmts
@ [
( A.SIfThenElse (s_cond, s_e_true, s_e_false),
Pos.get_position block_expr );
]
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| L.ECatch (e_try, except, e_catch) ->
let s_e_try = translate_statements ctxt e_try in
let s_e_catch = translate_statements ctxt e_catch in
[
(A.STryExcept (s_e_try, except, s_e_catch), Pos.get_position block_expr);
]
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| L.ERaise except -> [ (A.SRaise except, Pos.get_position block_expr) ]
| _ -> (
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let e_stmts, new_e = translate_expr ctxt block_expr in
e_stmts
@
match e_stmts with
| (A.SRaise _, _) :: _ ->
(* if the last statement raises an exception, then we don't need to
return or to define the current variable since this code will be
unreachable *)
[]
| _ ->
[
( (match ctxt.inside_definition_of with
| None -> A.SReturn (Pos.unmark new_e)
| Some x -> A.SLocalDef (Pos.same_pos_as x new_e, new_e)),
Pos.get_position block_expr );
])
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let rec translate_scope_body_expr
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(scope_name : D.ScopeName.t)
(decl_ctx : D.decl_ctx)
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(var_dict : A.LocalName.t L.VarMap.t)
(func_dict : A.TopLevelName.t L.VarMap.t)
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(scope_expr : L.expr D.scope_body_expr) : A.block =
match scope_expr with
| Result e ->
let block, new_e =
translate_expr
{
decl_ctx;
func_dict;
var_dict;
inside_definition_of = None;
context_name = Pos.unmark (D.ScopeName.get_info scope_name);
}
e
in
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block @ [ (A.SReturn (Pos.unmark new_e), Pos.get_position new_e) ]
| ScopeLet scope_let ->
let let_var, scope_let_next = Bindlib.unbind scope_let.scope_let_next in
let let_var_id =
A.LocalName.fresh (Bindlib.name_of let_var, scope_let.scope_let_pos)
in
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let new_var_dict = L.VarMap.add let_var let_var_id var_dict in
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(match scope_let.scope_let_kind with
| D.Assertion ->
translate_statements
{
decl_ctx;
func_dict;
var_dict;
inside_definition_of = Some let_var_id;
context_name = Pos.unmark (D.ScopeName.get_info scope_name);
}
scope_let.scope_let_expr
| _ ->
let let_expr_stmts, new_let_expr =
translate_expr
{
decl_ctx;
func_dict;
var_dict;
inside_definition_of = Some let_var_id;
context_name = Pos.unmark (D.ScopeName.get_info scope_name);
}
scope_let.scope_let_expr
in
let_expr_stmts
@ [
( A.SLocalDecl
( (let_var_id, scope_let.scope_let_pos),
scope_let.scope_let_typ ),
scope_let.scope_let_pos );
( A.SLocalDef ((let_var_id, scope_let.scope_let_pos), new_let_expr),
scope_let.scope_let_pos );
])
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@ translate_scope_body_expr scope_name decl_ctx new_var_dict func_dict
scope_let_next
let translate_program (p : L.program) : A.program =
{
decl_ctx = p.L.decl_ctx;
scopes =
(let _, new_scopes =
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D.fold_left_scope_defs
~f:(fun (func_dict, new_scopes) scope_def scope_var ->
let scope_input_var, scope_body_expr =
Bindlib.unbind scope_def.scope_body.scope_body_expr
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in
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let input_pos =
Pos.get_position (D.ScopeName.get_info scope_def.scope_name)
in
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let scope_input_var_id =
A.LocalName.fresh (Bindlib.name_of scope_input_var, input_pos)
in
let var_dict =
L.VarMap.singleton scope_input_var scope_input_var_id
in
let new_scope_body =
translate_scope_body_expr scope_def.D.scope_name p.decl_ctx
var_dict func_dict scope_body_expr
in
let func_id =
A.TopLevelName.fresh (Bindlib.name_of scope_var, Pos.no_pos)
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in
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let func_dict = L.VarMap.add scope_var func_id func_dict in
( func_dict,
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{
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Ast.scope_body_name = scope_def.D.scope_name;
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Ast.scope_body_var = func_id;
scope_body_func =
{
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A.func_params =
[
( (scope_input_var_id, input_pos),
( D.TTuple
( List.map snd
(D.StructMap.find
scope_def.D.scope_body
.D.scope_body_input_struct
p.L.decl_ctx.ctx_structs),
Some
scope_def.D.scope_body
.D.scope_body_input_struct ),
input_pos ) );
];
A.func_body = new_scope_body;
};
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}
:: new_scopes ))
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~init:
( (if !Cli.avoid_exceptions_flag then
L.VarMap.singleton L.handle_default_opt
(A.TopLevelName.fresh ("handle_default_opt", Pos.no_pos))
else
L.VarMap.singleton L.handle_default
(A.TopLevelName.fresh ("handle_default", Pos.no_pos))),
[] )
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p.L.scopes
in
List.rev new_scopes);
}