1use crate::{
2 RiddleError,
3 env::{Atom, AtomId, BoolExpr, CommonEnv, Env, Object, ObjectId, Slot},
4 language::{Disjunction, execute},
5 parse_problem,
6 scope::{BoolType, Class, CommonScope, Field, Function, IntType, Predicate, RealType, Scope, StringType, Type},
7};
8use std::{
9 cell::RefCell,
10 collections::HashMap,
11 rc::{Rc, Weak},
12};
13
14pub trait Core: Scope + Env {
15 fn new_bool(&self, value: bool) -> Slot;
16 fn new_bool_var(&self) -> Slot;
17 fn new_int(&self, value: &str) -> Slot;
18 fn new_int_var(&self) -> Slot;
19 fn new_real(&self, num: &str, den: &str) -> Slot;
20 fn new_real_var(&self) -> Slot;
21 fn new_string(&self, value: &str) -> Slot;
22 fn new_string_var(&self) -> Slot;
23
24 fn sum(&self, sum: &[Slot]) -> Result<Slot, RiddleError>;
25 fn opposite(&self, term: Slot) -> Result<Slot, RiddleError>;
26 fn mul(&self, mul: &[Slot]) -> Result<Slot, RiddleError>;
27 fn div(&self, left: Slot, right: Slot) -> Result<Slot, RiddleError>;
28
29 fn assert(&self, term: Rc<BoolExpr>) -> bool;
30 fn new_var(&self, tp: Rc<dyn Class>, instances: &[ObjectId]) -> Result<Slot, RiddleError>;
31 fn new_disjunction(&self, disjunction: Disjunction);
32
33 fn new_object(&self, class: Rc<dyn Class>) -> ObjectId;
34 fn get_object(&self, id: ObjectId) -> Option<Rc<Object>>;
35 fn new_atom(&self, predicate: Rc<Predicate>, fact: bool, args: HashMap<String, Slot>) -> AtomId;
36 fn get_atom(&self, id: AtomId) -> Option<Rc<Atom>>;
37
38 fn bool_type(&self) -> Rc<dyn Type> {
39 self.get_type("bool").expect("Core should have bool type")
40 }
41
42 fn int_type(&self) -> Rc<dyn Type> {
43 self.get_type("int").expect("Core should have int type")
44 }
45
46 fn real_type(&self) -> Rc<dyn Type> {
47 self.get_type("real").expect("Core should have real type")
48 }
49
50 fn string_type(&self) -> Rc<dyn Type> {
51 self.get_type("string").expect("Core should have string type")
52 }
53}
54
55pub struct CommonCore {
56 scope: Rc<CommonScope>,
57 env: Rc<CommonEnv>,
58 objects: RefCell<Vec<Rc<Object>>>,
59 atoms: RefCell<Vec<Rc<Atom>>>,
60}
61
62impl CommonCore {
63 pub fn new(core: Weak<dyn Core>) -> Rc<Self> {
64 let c_core = Rc::new(CommonCore {
65 scope: Rc::new(CommonScope::new(core.clone(), None)),
66 env: Rc::new(CommonEnv::new(None)),
67 objects: RefCell::new(Vec::new()),
68 atoms: RefCell::new(Vec::new()),
69 });
70 c_core.add_type(Rc::new(BoolType::new(core.clone())));
71 c_core.add_type(Rc::new(IntType::new(core.clone())));
72 c_core.add_type(Rc::new(RealType::new(core.clone())));
73 c_core.add_type(Rc::new(StringType::new(core.clone())));
74 c_core
75 }
76
77 pub fn read(&self, riddle: &str) -> Result<(), RiddleError> {
85 let mut problem = parse_problem(riddle)?;
86 let statments = std::mem::take(&mut problem.statements);
87 self.scope.clone().add_problem(problem);
88 let scope: Rc<dyn Scope> = self.scope.clone();
89 for stmt in statments {
90 execute(&scope, self.env.clone(), &stmt)?;
91 }
92 Ok(())
93 }
94
95 pub fn add_type(&self, tp: Rc<dyn Type>) {
97 self.scope.types.borrow_mut().insert(tp.name().to_string(), tp);
98 }
99
100 pub fn get_objects(&self) -> Vec<Rc<Object>> {
101 self.objects.borrow().clone()
102 }
103
104 pub fn get_object(&self, id: ObjectId) -> Option<Rc<Object>> {
105 self.objects.borrow().get(*id).cloned()
106 }
107
108 pub fn new_object(&self, class: Rc<dyn Class>) -> ObjectId {
109 let id = ObjectId(self.objects.borrow().len());
110 self.objects.borrow_mut().push(Rc::new(Object::new(id, class)));
111 id
112 }
113
114 pub fn get_atoms(&self) -> Vec<Rc<Atom>> {
115 self.atoms.borrow().clone()
116 }
117
118 pub fn get_atom(&self, id: AtomId) -> Option<Rc<Atom>> {
119 self.atoms.borrow().get(*id).cloned()
120 }
121
122 pub fn new_atom(&self, predicate: Rc<Predicate>, fact: bool, args: HashMap<String, Slot>) -> AtomId {
123 let id = AtomId(self.atoms.borrow().len());
124 predicate.atoms.borrow_mut().push(id);
125 self.atoms.borrow_mut().push(Rc::new(Atom::new(id, predicate, fact, args)));
126 id
127 }
128}
129
130impl Scope for CommonCore {
131 fn core(&self) -> Rc<dyn Core> {
132 self.scope.clone().core()
133 }
134
135 fn scope(&self) -> Option<Rc<dyn Scope>> {
136 None
137 }
138
139 fn get_fields(&self) -> Vec<Rc<Field>> {
140 self.scope.get_fields()
141 }
142
143 fn get_field(&self, name: &str) -> Option<Rc<Field>> {
144 self.scope.get_field(name)
145 }
146
147 fn get_function(&self, name: &str, types: &[Rc<dyn Type>]) -> Option<Rc<Function>> {
148 self.scope.get_function(name, types)
149 }
150
151 fn get_type(&self, name: &str) -> Option<Rc<dyn Type>> {
152 self.scope.get_type(name)
153 }
154
155 fn get_predicate(&self, name: &str) -> Option<Rc<Predicate>> {
156 self.scope.get_predicate(name)
157 }
158}
159
160impl Env for CommonCore {
161 fn parent(&self) -> Option<Rc<dyn Env>> {
162 None
163 }
164
165 fn get_slots(&self) -> HashMap<String, Slot> {
166 self.env.get_slots()
167 }
168
169 fn get(&self, name: &str) -> Option<Slot> {
170 self.env.get(name)
171 }
172
173 fn set(&self, name: String, value: Slot) {
174 self.env.set(name, value);
175 }
176}
177
178#[cfg(test)]
179mod tests {
180 use super::*;
181 use crate::{env::Var, scope::arith_type};
182 use std::any::Any;
183
184 struct TestObject {
185 tp: Weak<dyn Type>,
186 }
187
188 impl TestObject {
189 fn new(var_type: Rc<dyn Type>) -> Self {
190 Self { tp: Rc::downgrade(&var_type) }
191 }
192 }
193
194 impl Var for TestObject {
195 fn var_type(&self) -> Rc<dyn Type> {
196 self.tp.upgrade().expect("Type should still exist")
197 }
198
199 fn as_any(self: Rc<Self>) -> Rc<dyn Any> {
200 self
201 }
202 }
203
204 struct TestCore {
205 core: Rc<CommonCore>,
206 }
207
208 impl TestCore {
209 fn new() -> Rc<Self> {
210 Rc::new_cyclic(|core| Self {
211 core: {
212 let core: Weak<TestCore> = core.clone();
213 CommonCore::new(core)
214 },
215 })
216 }
217
218 fn read(&self, riddle: &str) -> Result<(), RiddleError> {
219 self.core.read(riddle)
220 }
221 }
222
223 impl Core for TestCore {
224 fn new_bool(&self, _value: bool) -> Slot {
225 Slot::Primitive(Rc::new(TestObject::new(self.bool_type())))
226 }
227 fn new_bool_var(&self) -> Slot {
228 Slot::Primitive(Rc::new(TestObject::new(self.bool_type())))
229 }
230 fn new_int(&self, _value: &str) -> Slot {
231 Slot::Primitive(Rc::new(TestObject::new(self.int_type())))
232 }
233 fn new_int_var(&self) -> Slot {
234 Slot::Primitive(Rc::new(TestObject::new(self.int_type())))
235 }
236 fn new_real(&self, _num: &str, _den: &str) -> Slot {
237 Slot::Primitive(Rc::new(TestObject::new(self.real_type())))
238 }
239 fn new_real_var(&self) -> Slot {
240 Slot::Primitive(Rc::new(TestObject::new(self.real_type())))
241 }
242 fn new_string(&self, _value: &str) -> Slot {
243 Slot::Primitive(Rc::new(TestObject::new(self.string_type())))
244 }
245 fn new_string_var(&self) -> Slot {
246 Slot::Primitive(Rc::new(TestObject::new(self.string_type())))
247 }
248
249 fn sum(&self, sum: &[Slot]) -> Result<Slot, RiddleError> {
250 let tp = arith_type(self, sum)?;
251 Ok(Slot::Primitive(Rc::new(TestObject::new(tp))))
252 }
253 fn opposite(&self, term: Slot) -> Result<Slot, RiddleError> {
254 let tp = match term {
255 Slot::Primitive(var) => var.var_type(),
256 Slot::ObjectRef(id) => self.get_object(id).expect("Object should exist").class(),
257 Slot::AtomRef(id) => self.get_atom(id).expect("Atom should exist").predicate(),
258 };
259 Ok(Slot::Primitive(Rc::new(TestObject::new(tp))))
260 }
261 fn mul(&self, mul: &[Slot]) -> Result<Slot, RiddleError> {
262 let tp = arith_type(self, mul)?;
263 Ok(Slot::Primitive(Rc::new(TestObject::new(tp))))
264 }
265 fn div(&self, left: Slot, right: Slot) -> Result<Slot, RiddleError> {
266 let tp = arith_type(self, &[left, right])?;
267 Ok(Slot::Primitive(Rc::new(TestObject::new(tp))))
268 }
269
270 fn assert(&self, _term: Rc<BoolExpr>) -> bool {
271 true
272 }
273
274 fn new_var(&self, class: Rc<dyn Class>, instances: &[ObjectId]) -> Result<Slot, RiddleError> {
275 if instances.is_empty() {
276 return Err(RiddleError::InconsistencyError("Cannot create variable with no instances".into()));
277 }
278 Ok(Slot::Primitive(Rc::new(TestObject::new(class))))
279 }
280 fn new_disjunction(&self, _disjunction: Disjunction) {}
281
282 fn new_object(&self, class: Rc<dyn Class>) -> ObjectId {
283 self.core.new_object(class)
284 }
285 fn get_object(&self, id: ObjectId) -> Option<Rc<Object>> {
286 self.core.get_object(id)
287 }
288 fn new_atom(&self, predicate: Rc<Predicate>, fact: bool, args: HashMap<String, Slot>) -> AtomId {
289 self.core.new_atom(predicate, fact, args)
290 }
291 fn get_atom(&self, id: AtomId) -> Option<Rc<Atom>> {
292 self.core.get_atom(id)
293 }
294 }
295
296 impl Scope for TestCore {
297 fn core(&self) -> Rc<dyn Core> {
298 panic!("Core should not call scope core function")
299 }
300
301 fn scope(&self) -> Option<Rc<dyn Scope>> {
302 None
303 }
304
305 fn get_fields(&self) -> Vec<Rc<Field>> {
306 self.core.get_fields()
307 }
308
309 fn get_field(&self, _name: &str) -> Option<Rc<Field>> {
310 self.core.get_field(_name)
311 }
312
313 fn get_function(&self, name: &str, types: &[Rc<dyn Type>]) -> Option<Rc<Function>> {
314 self.core.get_function(name, types)
315 }
316
317 fn get_type(&self, name: &str) -> Option<Rc<dyn Type>> {
318 self.core.get_type(name)
319 }
320
321 fn get_predicate(&self, name: &str) -> Option<Rc<Predicate>> {
322 self.core.get_predicate(name)
323 }
324 }
325
326 impl Env for TestCore {
327 fn parent(&self) -> Option<Rc<dyn Env>> {
328 None
329 }
330
331 fn get_slots(&self) -> HashMap<String, Slot> {
332 self.core.get_slots()
333 }
334
335 fn get(&self, name: &str) -> Option<Slot> {
336 self.core.get(name)
337 }
338
339 fn set(&self, name: String, value: Slot) {
340 self.core.set(name, value);
341 }
342 }
343
344 #[test]
345 fn create_core() {
346 let core = TestCore::new();
347 assert!(core.get_type("bool").is_some());
348 assert!(core.get_type("int").is_some());
349 assert!(core.get_type("real").is_some());
350 assert!(core.get_type("string").is_some());
351 }
352
353 #[test]
354 fn read_problem() {
355 let core = TestCore::new();
356 core.read("bool a, b, c; (a & b) | c;").expect("Failed to read problem with boolean variables and expression");
357 }
358}