602 lines
17 KiB
Go
602 lines
17 KiB
Go
// Mgmt
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// Copyright (C) 2013-2021+ James Shubin and the project contributors
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// Written by James Shubin <james@shubin.ca> and the project contributors
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//
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// This program is free software: you can redistribute it and/or modify
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// it under the terms of the GNU General Public License as published by
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// the Free Software Foundation, either version 3 of the License, or
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// (at your option) any later version.
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//
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// This program is distributed in the hope that it will be useful,
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// but WITHOUT ANY WARRANTY; without even the implied warranty of
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// MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
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// GNU General Public License for more details.
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//
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// You should have received a copy of the GNU General Public License
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// along with this program. If not, see <http://www.gnu.org/licenses/>.
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package funcs
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import (
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"fmt"
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"github.com/purpleidea/mgmt/lang/interfaces"
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"github.com/purpleidea/mgmt/lang/types"
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"github.com/purpleidea/mgmt/util/errwrap"
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)
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const (
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// MapLookupFuncName is the name this function is registered as. This
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// starts with an underscore so that it cannot be used from the lexer.
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// XXX: change to _maplookup and add syntax in the lexer/parser
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MapLookupFuncName = "maplookup"
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argNameMap = "map"
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argNameKey = "key"
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argNameDef = "default"
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)
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func init() {
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Register(MapLookupFuncName, func() interfaces.Func { return &MapLookupPolyFunc{} }) // must register the func and name
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}
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// MapLookupPolyFunc is a key map lookup function.
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type MapLookupPolyFunc struct {
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Type *types.Type // Kind == Map, that is used as the map we lookup
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init *interfaces.Init
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last types.Value // last value received to use for diff
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result types.Value // last calculated output
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closeChan chan struct{}
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}
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// ArgGen returns the Nth arg name for this function.
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func (obj *MapLookupPolyFunc) ArgGen(index int) (string, error) {
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seq := []string{argNameMap, argNameKey, argNameDef}
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if l := len(seq); index >= l {
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return "", fmt.Errorf("index %d exceeds arg length of %d", index, l)
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}
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return seq[index], nil
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}
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// Unify returns the list of invariants that this func produces.
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func (obj *MapLookupPolyFunc) Unify(expr interfaces.Expr) ([]interfaces.Invariant, error) {
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var invariants []interfaces.Invariant
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var invar interfaces.Invariant
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// func(map T1, key T2, default T3) T3
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// (map: T2 => T3)
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mapName, err := obj.ArgGen(0)
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if err != nil {
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return nil, err
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}
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keyName, err := obj.ArgGen(1)
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if err != nil {
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return nil, err
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}
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defaultName, err := obj.ArgGen(2)
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if err != nil {
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return nil, err
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}
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dummyMap := &interfaces.ExprAny{} // corresponds to the map type
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dummyKey := &interfaces.ExprAny{} // corresponds to the key type
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dummyDefault := &interfaces.ExprAny{} // corresponds to the default type
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dummyOut := &interfaces.ExprAny{} // corresponds to the out string
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// default type and out are the same
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invar = &interfaces.EqualityInvariant{
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Expr1: dummyDefault,
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Expr2: dummyOut,
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}
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invariants = append(invariants, invar)
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// relationship between T1, T2 and T3
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invar = &interfaces.EqualityWrapMapInvariant{
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Expr1: dummyMap,
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Expr2Key: dummyKey,
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Expr2Val: dummyDefault,
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}
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invariants = append(invariants, invar)
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// full function
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mapped := make(map[string]interfaces.Expr)
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ordered := []string{mapName, keyName, defaultName}
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mapped[mapName] = dummyMap
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mapped[keyName] = dummyKey
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mapped[defaultName] = dummyDefault
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invar = &interfaces.EqualityWrapFuncInvariant{
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Expr1: expr, // maps directly to us!
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Expr2Map: mapped,
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Expr2Ord: ordered,
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Expr2Out: dummyOut,
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}
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invariants = append(invariants, invar)
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// generator function
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fn := func(fnInvariants []interfaces.Invariant, solved map[interfaces.Expr]*types.Type) ([]interfaces.Invariant, error) {
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for _, invariant := range fnInvariants {
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// search for this special type of invariant
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cfavInvar, ok := invariant.(*interfaces.CallFuncArgsValueInvariant)
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if !ok {
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continue
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}
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// did we find the mapping from us to ExprCall ?
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if cfavInvar.Func != expr {
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continue
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}
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// cfavInvar.Expr is the ExprCall! (the return pointer)
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// cfavInvar.Args are the args that ExprCall uses!
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if l := len(cfavInvar.Args); l != 3 {
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return nil, fmt.Errorf("unable to build function with %d args", l)
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}
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// add the relationship to the returned value
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invar = &interfaces.EqualityInvariant{
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Expr1: cfavInvar.Expr,
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Expr2: dummyOut,
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}
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invariants = append(invariants, invar)
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// add the relationships to the called args
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invar = &interfaces.EqualityInvariant{
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Expr1: cfavInvar.Args[0],
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Expr2: dummyMap,
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}
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invariants = append(invariants, invar)
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invar = &interfaces.EqualityInvariant{
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Expr1: cfavInvar.Args[1],
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Expr2: dummyKey,
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}
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invariants = append(invariants, invar)
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invar = &interfaces.EqualityInvariant{
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Expr1: cfavInvar.Args[2],
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Expr2: dummyDefault,
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}
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invariants = append(invariants, invar)
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var invariants []interfaces.Invariant
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var invar interfaces.Invariant
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// If we figure out all of these three types, we'll
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// know the full type...
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var t1 *types.Type // map type
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var t2 *types.Type // map key type
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var t3 *types.Type // map val type
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// validateArg0 checks: map T1
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validateArg0 := func(typ *types.Type) error {
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if typ == nil { // unknown so far
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return nil
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}
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// we happen to have a map!
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if k := typ.Kind; k != types.KindMap {
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return fmt.Errorf("unable to build function with 0th arg of kind: %s", k)
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}
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if typ.Key == nil || typ.Val == nil {
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// programming error
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return fmt.Errorf("map is missing type")
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}
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if err := typ.Cmp(t1); t1 != nil && err != nil {
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return errwrap.Wrapf(err, "input type was inconsistent")
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}
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if err := typ.Key.Cmp(t2); t2 != nil && err != nil {
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return errwrap.Wrapf(err, "input key type was inconsistent")
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}
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if err := typ.Val.Cmp(t3); t3 != nil && err != nil {
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return errwrap.Wrapf(err, "input val type was inconsistent")
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}
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// learn!
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t1 = typ
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t2 = typ.Key
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t3 = typ.Val
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return nil
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}
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// validateArg1 checks: map key T2
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validateArg1 := func(typ *types.Type) error {
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if typ == nil { // unknown so far
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return nil
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}
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if err := typ.Cmp(t2); t2 != nil && err != nil {
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return errwrap.Wrapf(err, "input key type was inconsistent")
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}
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if t1 != nil {
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if err := typ.Cmp(t1.Key); err != nil {
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return errwrap.Wrapf(err, "input key type was inconsistent")
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}
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}
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if t3 != nil {
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t := &types.Type{ // build t1
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Kind: types.KindMap,
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Key: typ, // t2
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Val: t3,
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}
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if err := t.Cmp(t1); t1 != nil && err != nil {
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return errwrap.Wrapf(err, "input type was inconsistent")
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}
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t1 = t // learn!
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}
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// learn!
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t2 = typ
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return nil
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}
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// validateArg2 checks: map val T3
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validateArg2 := func(typ *types.Type) error {
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if typ == nil { // unknown so far
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return nil
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}
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if err := typ.Cmp(t3); t3 != nil && err != nil {
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return errwrap.Wrapf(err, "input val type was inconsistent")
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}
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if t1 != nil {
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if err := typ.Cmp(t1.Val); err != nil {
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return errwrap.Wrapf(err, "input val type was inconsistent")
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}
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}
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if t2 != nil {
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t := &types.Type{ // build t1
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Kind: types.KindMap,
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Key: t2,
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Val: typ, // t3
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}
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if err := t.Cmp(t1); t1 != nil && err != nil {
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return errwrap.Wrapf(err, "input type was inconsistent")
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}
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t1 = t // learn!
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}
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// learn!
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t3 = typ
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return nil
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}
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if typ, err := cfavInvar.Args[0].Type(); err == nil { // is it known?
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// this sets t1 and t2 and t3 on success if it learned
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if err := validateArg0(typ); err != nil {
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return nil, errwrap.Wrapf(err, "first map arg type is inconsistent")
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}
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}
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if typ, exists := solved[cfavInvar.Args[0]]; exists { // alternate way to lookup type
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// this sets t1 and t2 and t3 on success if it learned
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if err := validateArg0(typ); err != nil {
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return nil, errwrap.Wrapf(err, "first map arg type is inconsistent")
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}
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}
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if typ, err := cfavInvar.Args[1].Type(); err == nil { // is it known?
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// this sets t2 (and sometimes t1) on success if it learned
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if err := validateArg1(typ); err != nil {
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return nil, errwrap.Wrapf(err, "second key arg type is inconsistent")
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}
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}
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if typ, exists := solved[cfavInvar.Args[1]]; exists { // alternate way to lookup type
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// this sets t2 (and sometimes t1) on success if it learned
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if err := validateArg1(typ); err != nil {
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return nil, errwrap.Wrapf(err, "second key arg type is inconsistent")
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}
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}
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if typ, err := cfavInvar.Args[2].Type(); err == nil { // is it known?
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// this sets t3 (and sometimes t1) on success if it learned
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if err := validateArg2(typ); err != nil {
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return nil, errwrap.Wrapf(err, "third default arg type is inconsistent")
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}
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}
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if typ, exists := solved[cfavInvar.Args[2]]; exists { // alternate way to lookup type
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// this sets t3 (and sometimes t1) on success if it learned
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if err := validateArg2(typ); err != nil {
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return nil, errwrap.Wrapf(err, "third default arg type is inconsistent")
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}
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}
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// XXX: if the types aren't know statically?
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if t1 != nil {
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invar := &interfaces.EqualsInvariant{
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Expr: dummyMap,
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Type: t1,
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}
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invariants = append(invariants, invar)
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}
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if t2 != nil {
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invar := &interfaces.EqualsInvariant{
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Expr: dummyKey,
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Type: t2,
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}
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invariants = append(invariants, invar)
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}
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if t3 != nil {
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invar := &interfaces.EqualsInvariant{
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Expr: dummyDefault,
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Type: t3,
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}
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invariants = append(invariants, invar)
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}
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// XXX: if t{1..3} are missing, we could also return a
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// new generator for later if we learn new information,
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// but we'd have to be careful to not do the infinitely
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// TODO: do we return this relationship with ExprCall?
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invar = &interfaces.EqualityWrapCallInvariant{
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// TODO: should Expr1 and Expr2 be reversed???
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Expr1: cfavInvar.Expr,
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//Expr2Func: cfavInvar.Func, // same as below
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Expr2Func: expr,
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}
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invariants = append(invariants, invar)
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// TODO: are there any other invariants we should build?
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return invariants, nil // generator return
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}
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// We couldn't tell the solver anything it didn't already know!
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return nil, fmt.Errorf("couldn't generate new invariants")
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}
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invar = &interfaces.GeneratorInvariant{
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Func: fn,
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}
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invariants = append(invariants, invar)
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return invariants, nil
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}
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// Polymorphisms returns the list of possible function signatures available for
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// this static polymorphic function. It relies on type and value hints to limit
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// the number of returned possibilities.
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func (obj *MapLookupPolyFunc) Polymorphisms(partialType *types.Type, partialValues []types.Value) ([]*types.Type, error) {
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// TODO: return `variant` as arg for now -- maybe there's a better way?
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variant := []*types.Type{types.NewType("func(map variant, key variant, default variant) variant")}
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if partialType == nil {
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return variant, nil
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}
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// what's the map type of the first argument?
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typ := &types.Type{
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Kind: types.KindMap,
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//Key: ???,
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//Val: ???,
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}
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ord := partialType.Ord
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if partialType.Map != nil {
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if len(ord) != 3 {
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return nil, fmt.Errorf("must have exactly three args in maplookup func")
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}
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if tMap, exists := partialType.Map[ord[0]]; exists && tMap != nil {
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if tMap.Kind != types.KindMap {
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return nil, fmt.Errorf("first arg for maplookup must be a map")
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}
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typ.Key = tMap.Key
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typ.Val = tMap.Val
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}
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if tKey, exists := partialType.Map[ord[1]]; exists && tKey != nil {
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if typ.Key != nil && typ.Key.Cmp(tKey) != nil {
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return nil, fmt.Errorf("second arg for maplookup must match map's key type")
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}
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typ.Key = tKey
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}
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if tDef, exists := partialType.Map[ord[2]]; exists && tDef != nil {
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if typ.Val != nil && typ.Val.Cmp(tDef) != nil {
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return nil, fmt.Errorf("third arg for maplookup must match map's val type")
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}
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typ.Val = tDef
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// add this for better error messages
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if tOut := partialType.Out; tOut != nil {
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if tDef.Cmp(tOut) != nil {
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return nil, fmt.Errorf("third arg for maplookup must match return type")
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}
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}
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}
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if tOut := partialType.Out; tOut != nil {
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if typ.Val != nil && typ.Val.Cmp(tOut) != nil {
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return nil, fmt.Errorf("return type for maplookup must match map's val type")
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}
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typ.Val = tOut
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}
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}
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// TODO: are we okay adding just the map val type and not the map key type?
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//if tOut := partialType.Out; tOut != nil {
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// if typ.Val != nil && typ.Val.Cmp(tOut) != nil {
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// return nil, fmt.Errorf("return type for maplookup must match map's val type")
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// }
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// typ.Val = tOut
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//}
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typFunc := &types.Type{
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Kind: types.KindFunc, // function type
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Map: make(map[string]*types.Type),
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Ord: []string{argNameMap, argNameKey, argNameDef},
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Out: nil,
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}
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typFunc.Map[argNameMap] = typ
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typFunc.Map[argNameKey] = typ.Key
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typFunc.Map[argNameDef] = typ.Val
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typFunc.Out = typ.Val
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// TODO: don't include partial internal func map's for now, allow in future?
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if typ.Key == nil || typ.Val == nil {
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typFunc.Map = make(map[string]*types.Type) // erase partial
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typFunc.Map[argNameMap] = types.TypeVariant
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typFunc.Map[argNameKey] = types.TypeVariant
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typFunc.Map[argNameDef] = types.TypeVariant
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}
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if typ.Val == nil {
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typFunc.Out = types.TypeVariant
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}
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// just returning nothing for now, in case we can't detect a partial map
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if typ.Key == nil || typ.Val == nil {
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return []*types.Type{typFunc}, nil
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}
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// TODO: type check that the partialValues are compatible
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return []*types.Type{typFunc}, nil // solved!
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}
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// Build is run to turn the polymorphic, undetermined function, into the
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// specific statically typed version. It is usually run after Unify completes,
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// and must be run before Info() and any of the other Func interface methods are
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// used. This function is idempotent, as long as the arg isn't changed between
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// runs.
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func (obj *MapLookupPolyFunc) Build(typ *types.Type) error {
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// typ is the KindFunc signature we're trying to build...
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if typ.Kind != types.KindFunc {
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return fmt.Errorf("input type must be of kind func")
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}
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if len(typ.Ord) != 3 {
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return fmt.Errorf("the maplookup function needs exactly three args")
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}
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if typ.Out == nil {
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return fmt.Errorf("return type of function must be specified")
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}
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if typ.Map == nil {
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return fmt.Errorf("invalid input type")
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}
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tMap, exists := typ.Map[typ.Ord[0]]
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if !exists || tMap == nil {
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return fmt.Errorf("first arg must be specified")
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}
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tKey, exists := typ.Map[typ.Ord[1]]
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if !exists || tKey == nil {
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return fmt.Errorf("second arg must be specified")
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}
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tDef, exists := typ.Map[typ.Ord[2]]
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if !exists || tDef == nil {
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return fmt.Errorf("third arg must be specified")
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}
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if err := tMap.Key.Cmp(tKey); err != nil {
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return errwrap.Wrapf(err, "key must match map key type")
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}
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if err := tMap.Val.Cmp(tDef); err != nil {
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return errwrap.Wrapf(err, "default must match map val type")
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}
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if err := tMap.Val.Cmp(typ.Out); err != nil {
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return errwrap.Wrapf(err, "return type must match map val type")
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}
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obj.Type = tMap // map type
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return nil
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}
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// Validate tells us if the input struct takes a valid form.
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func (obj *MapLookupPolyFunc) Validate() error {
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if obj.Type == nil { // build must be run first
|
|
return fmt.Errorf("type is still unspecified")
|
|
}
|
|
if obj.Type.Kind != types.KindMap {
|
|
return fmt.Errorf("type must be a kind of map")
|
|
}
|
|
return nil
|
|
}
|
|
|
|
// Info returns some static info about itself. Build must be called before this
|
|
// will return correct data.
|
|
func (obj *MapLookupPolyFunc) Info() *interfaces.Info {
|
|
var typ *types.Type
|
|
if obj.Type != nil { // don't panic if called speculatively
|
|
// TODO: can obj.Type.Key or obj.Type.Val be nil (a partial) ?
|
|
k := obj.Type.Key.String()
|
|
v := obj.Type.Val.String()
|
|
typ = types.NewType(fmt.Sprintf("func(map %s, key %s, default %s) %s", obj.Type.String(), k, v, v))
|
|
}
|
|
return &interfaces.Info{
|
|
Pure: true,
|
|
Memo: false,
|
|
Sig: typ, // func kind
|
|
Err: obj.Validate(),
|
|
}
|
|
}
|
|
|
|
// Init runs some startup code for this function.
|
|
func (obj *MapLookupPolyFunc) Init(init *interfaces.Init) error {
|
|
obj.init = init
|
|
obj.closeChan = make(chan struct{})
|
|
return nil
|
|
}
|
|
|
|
// Stream returns the changing values that this func has over time.
|
|
func (obj *MapLookupPolyFunc) Stream() error {
|
|
defer close(obj.init.Output) // the sender closes
|
|
for {
|
|
select {
|
|
case input, ok := <-obj.init.Input:
|
|
if !ok {
|
|
return nil // can't output any more
|
|
}
|
|
//if err := input.Type().Cmp(obj.Info().Sig.Input); err != nil {
|
|
// return errwrap.Wrapf(err, "wrong function input")
|
|
//}
|
|
|
|
if obj.last != nil && input.Cmp(obj.last) == nil {
|
|
continue // value didn't change, skip it
|
|
}
|
|
obj.last = input // store for next
|
|
|
|
m := (input.Struct()[argNameMap]).(*types.MapValue)
|
|
key := input.Struct()[argNameKey]
|
|
def := input.Struct()[argNameDef]
|
|
|
|
var result types.Value
|
|
val, exists := m.Lookup(key)
|
|
if exists {
|
|
result = val
|
|
} else {
|
|
result = def
|
|
}
|
|
|
|
// if previous input was `2 + 4`, but now it
|
|
// changed to `1 + 5`, the result is still the
|
|
// same, so we can skip sending an update...
|
|
if obj.result != nil && result.Cmp(obj.result) == nil {
|
|
continue // result didn't change
|
|
}
|
|
obj.result = result // store new result
|
|
|
|
case <-obj.closeChan:
|
|
return nil
|
|
}
|
|
|
|
select {
|
|
case obj.init.Output <- obj.result: // send
|
|
case <-obj.closeChan:
|
|
return nil
|
|
}
|
|
}
|
|
}
|
|
|
|
// Close runs some shutdown code for this function and turns off the stream.
|
|
func (obj *MapLookupPolyFunc) Close() error {
|
|
close(obj.closeChan)
|
|
return nil
|
|
}
|