1
#![allow(clippy::unwrap_used)]
2
#![allow(clippy::expect_used)]
3
use std::sync::{Arc, RwLock};
4
use ustr::Ustr;
5

            
6
use serde_json::Map as JsonMap;
7
use serde_json::Value;
8
use serde_json::Value as JsonValue;
9

            
10
use crate::ast::Moo;
11
use crate::ast::abstract_comprehension::AbstractComprehensionBuilder;
12
use crate::ast::ac_operators::ACOperatorKind;
13
use crate::ast::comprehension::ComprehensionBuilder;
14
use crate::ast::records::RecordValue;
15
use crate::ast::{
16
    AbstractLiteral, Atom, DeclarationPtr, Domain, Expression, FuncAttr, IntVal, JectivityAttr,
17
    Literal, MSetAttr, Name, PartialityAttr, Range, RecordEntry, SetAttr, SymbolTable,
18
    SymbolTablePtr,
19
};
20
use crate::ast::{DomainPtr, Metadata};
21
use crate::context::Context;
22
use crate::error::{Error, Result};
23
use crate::{Model, bug, error, into_matrix_expr, throw_error};
24

            
25
#[allow(unused_macros)]
26
macro_rules! parser_trace {
27
    ($($arg:tt)+) => {
28
        log::trace!(target:"jsonparser",$($arg)+)
29
    };
30
}
31

            
32
#[allow(unused_macros)]
33
macro_rules! parser_debug {
34
    ($($arg:tt)+) => {
35
        log::debug!(target:"jsonparser",$($arg)+)
36
    };
37
}
38

            
39
9318
pub fn model_from_json(str: &str, context: Arc<RwLock<Context<'static>>>) -> Result<Model> {
40
9318
    let mut m = Model::new(context);
41
9318
    let v: JsonValue = serde_json::from_str(str)?;
42
9318
    let statements = v["mStatements"]
43
9318
        .as_array()
44
9318
        .ok_or(error!("mStatements is not an array"))?;
45

            
46
27440
    for statement in statements {
47
27440
        let entry = statement
48
27440
            .as_object()
49
27440
            .ok_or(error!("mStatements contains a non-object"))?
50
27440
            .iter()
51
27440
            .next()
52
27440
            .ok_or(error!("mStatements contains an empty object"))?;
53

            
54
27440
        match entry.0.as_str() {
55
27440
            "Declaration" => {
56
19122
                let decl = entry
57
19122
                    .1
58
19122
                    .as_object()
59
19122
                    .ok_or(error!("Declaration is not an object".to_owned()))?;
60

            
61
                // One field in the declaration should tell us what kind it is.
62
                //
63
                // Find it, ignoring the other fields.
64
                //
65
                // e.g. FindOrGiven,
66

            
67
19122
                let mut valid_decl: bool = false;
68
19122
                let scope = m.symbols_ptr_unchecked().clone();
69
19122
                let model = &mut m;
70
19122
                for (kind, value) in decl {
71
19122
                    match kind.as_str() {
72
19122
                        "FindOrGiven" => {
73
17258
                            parse_variable(value, &mut model.symbols_mut())?;
74
17258
                            valid_decl = true;
75
17258
                            break;
76
                        }
77
1864
                        "Letting" => {
78
1864
                            parse_letting(value, &scope)?;
79
1844
                            valid_decl = true;
80
1844
                            break;
81
                        }
82
                        _ => continue,
83
                    }
84
                }
85

            
86
19102
                if !valid_decl {
87
                    throw_error!("Declaration is not a valid kind")?;
88
19102
                }
89
            }
90
8318
            "SuchThat" => {
91
8318
                let constraints_arr = match entry.1.as_array() {
92
8318
                    Some(x) => x,
93
                    None => bug!("SuchThat is not a vector"),
94
                };
95

            
96
8318
                let constraints: Vec<Expression> = constraints_arr
97
8318
                    .iter()
98
12698
                    .map(|x| parse_expression(x, m.symbols_ptr_unchecked()))
99
8318
                    .collect::<Result<Vec<_>>>()?;
100
8318
                m.add_constraints(constraints);
101
            }
102
            otherwise => bug!("Unhandled Statement {:#?}", otherwise),
103
        }
104
    }
105
9298
    Ok(m)
106
9318
}
107

            
108
17258
fn parse_variable(v: &JsonValue, symtab: &mut SymbolTable) -> Result<()> {
109
17258
    let arr = v.as_array().ok_or(error!("FindOrGiven is not an array"))?;
110
17258
    let name = arr[1]
111
17258
        .as_object()
112
17258
        .ok_or(error!("FindOrGiven[1] is not an object"))?["Name"]
113
17258
        .as_str()
114
17258
        .ok_or(error!("FindOrGiven[1].Name is not a string"))?;
115

            
116
17258
    let name = Name::User(Ustr::from(name));
117

            
118
17258
    let domain = arr[2]
119
17258
        .as_object()
120
17258
        .ok_or(error!("FindOrGiven[2] is not an object"))?
121
17258
        .iter()
122
17258
        .next()
123
17258
        .ok_or(error!("FindOrGiven[2] is an empty object"))?;
124

            
125
17258
    let domain = parse_domain(domain.0, domain.1, symtab)?;
126

            
127
17258
    symtab
128
17258
        .insert(DeclarationPtr::new_find(name.clone(), domain))
129
17258
        .ok_or(Error::Parse(format!(
130
17258
            "Could not add {name} to symbol table as it already exists"
131
17258
        )))
132
17258
}
133

            
134
1864
fn parse_letting(v: &JsonValue, scope: &SymbolTablePtr) -> Result<()> {
135
1864
    let arr = v.as_array().ok_or(error!("Letting is not an array"))?;
136
1864
    let name = arr[0]
137
1864
        .as_object()
138
1864
        .ok_or(error!("Letting[0] is not an object"))?["Name"]
139
1864
        .as_str()
140
1864
        .ok_or(error!("Letting[0].Name is not a string"))?;
141
1864
    let name = Name::User(Ustr::from(name));
142
    // value letting
143
1864
    if let Ok(value) = parse_expression(&arr[1], scope) {
144
1544
        let mut symtab = scope.write();
145
1544
        symtab
146
1544
            .insert(DeclarationPtr::new_value_letting(name.clone(), value))
147
1544
            .ok_or(Error::Parse(format!(
148
1544
                "Could not add {name} to symbol table as it already exists"
149
1544
            )))
150
    } else {
151
        // domain letting
152
320
        let domain = &arr[1]
153
320
            .as_object()
154
320
            .ok_or(error!("Letting[1] is not an object".to_owned()))?["Domain"]
155
320
            .as_object()
156
320
            .ok_or(error!("Letting[1].Domain is not an object"))?
157
320
            .iter()
158
320
            .next()
159
320
            .ok_or(error!("Letting[1].Domain is an empty object"))?;
160

            
161
320
        let mut symtab = scope.write();
162
320
        let domain = parse_domain(domain.0, domain.1, &mut symtab)?;
163

            
164
320
        symtab
165
320
            .insert(DeclarationPtr::new_domain_letting(name.clone(), domain))
166
320
            .ok_or(Error::Parse(format!(
167
320
                "Could not add {name} to symbol table as it already exists"
168
320
            )))
169
    }
170
1864
}
171

            
172
33138
fn parse_domain(
173
33138
    domain_name: &str,
174
33138
    domain_value: &JsonValue,
175
33138
    symbols: &mut SymbolTable,
176
33138
) -> Result<DomainPtr> {
177
33138
    match domain_name {
178
33138
        "DomainInt" => Ok(parse_int_domain(domain_value, symbols)?),
179
8544
        "DomainBool" => Ok(Domain::bool()),
180
4124
        "DomainReference" => {
181
640
            let name = Name::user(
182
640
                domain_value
183
640
                    .as_array()
184
640
                    .ok_or(error!("DomainReference is not an array"))?[0]
185
640
                    .as_object()
186
640
                    .ok_or(error!("DomainReference[0] is not an object"))?["Name"]
187
640
                    .as_str()
188
640
                    .ok_or(error!("DomainReference[0].Name is not a string"))?,
189
            );
190
640
            let ptr = symbols
191
640
                .lookup(&name)
192
640
                .ok_or(error!(format!("Name {name} not found")))?;
193
640
            let dom =
194
640
                Domain::reference(ptr).ok_or(error!("Could not construct reference domain"))?;
195
640
            Ok(dom)
196
        }
197
3484
        "DomainSet" => {
198
260
            let dom = domain_value.get(2).and_then(|v| v.as_object());
199
260
            let domain_obj = dom.ok_or(error!("DomainSet is missing domain object"))?;
200
260
            let domain = domain_obj
201
260
                .iter()
202
260
                .next()
203
260
                .ok_or(Error::Parse("DomainSet is an empty object".to_owned()))?;
204
260
            let domain = parse_domain(domain.0.as_str(), domain.1, symbols)?;
205
260
            let size = domain_value
206
260
                .get(1)
207
260
                .and_then(|v| v.as_object())
208
260
                .ok_or(error!("Set size attributes is not an object"))?;
209
260
            let size = parse_size_attr(size, symbols)?;
210
260
            let attr: SetAttr<IntVal> = SetAttr { size };
211
260
            Ok(Domain::set(attr, domain))
212
        }
213
3224
        "DomainMSet" => {
214
360
            let dom = domain_value
215
360
                .get(2)
216
360
                .and_then(|v| v.as_object())
217
360
                .expect("domain object exists");
218
360
            let domain = dom
219
360
                .iter()
220
360
                .next()
221
360
                .ok_or(Error::Parse("DomainMSet is an empty object".to_owned()))?;
222
360
            let domain = parse_domain(domain.0.as_str(), domain.1, symbols)?;
223

            
224
            // Parse Attributes
225
360
            let attributes = domain_value
226
360
                .get(1)
227
360
                .and_then(|v| v.as_array())
228
360
                .ok_or(error!("MSet attributes is not a json array"))?;
229

            
230
360
            let size = attributes
231
360
                .first()
232
360
                .and_then(|v| v.as_object())
233
360
                .ok_or(error!("MSet size attributes is not an object"))?;
234
360
            let size = parse_size_attr(size, symbols)?;
235

            
236
360
            let occurrence = attributes
237
360
                .get(1)
238
360
                .and_then(|v| v.as_object())
239
360
                .ok_or(error!("MSet occurrence attributes is not an object"))?;
240
360
            let occurrence = parse_occur_attr(occurrence, symbols)?;
241

            
242
360
            let attr: MSetAttr<IntVal> = MSetAttr { size, occurrence };
243
360
            Ok(Domain::mset(attr, domain))
244
        }
245

            
246
2864
        "DomainMatrix" => {
247
2184
            let domain_value = domain_value
248
2184
                .as_array()
249
2184
                .ok_or(error!("Domain matrix is not an array"))?;
250

            
251
2184
            let indexed_by_domain = domain_value[0].clone();
252
2184
            let (index_domain_name, index_domain_value) = indexed_by_domain
253
2184
                .as_object()
254
2184
                .ok_or(error!("DomainMatrix[0] is not an object"))?
255
2184
                .iter()
256
2184
                .next()
257
2184
                .ok_or(error!(""))?;
258

            
259
2184
            let (value_domain_name, value_domain_value) = domain_value[1]
260
2184
                .as_object()
261
2184
                .ok_or(error!(""))?
262
2184
                .iter()
263
2184
                .next()
264
2184
                .ok_or(error!(""))?;
265

            
266
            // Conjure stores a 2-d matrix as a matrix of a matrix.
267
            //
268
            // Therefore, the index is always a Domain.
269

            
270
2184
            let mut index_domains: Vec<DomainPtr> = vec![];
271

            
272
2184
            index_domains.push(parse_domain(
273
2184
                index_domain_name,
274
2184
                index_domain_value,
275
2184
                symbols,
276
            )?);
277

            
278
            // We want to store 2-d matrices as a matrix with two index domains, not a matrix in a
279
            // matrix.
280
            //
281
            // Walk through the value domain until it is not a DomainMatrix, adding the index to
282
            // our list of indices.
283
2184
            let mut value_domain = parse_domain(value_domain_name, value_domain_value, symbols)?;
284
2544
            while let Some((new_value_domain, mut indices)) = value_domain.as_matrix() {
285
360
                index_domains.append(&mut indices);
286
360
                value_domain = new_value_domain.clone()
287
            }
288

            
289
2184
            Ok(Domain::matrix(value_domain, index_domains))
290
        }
291
680
        "DomainTuple" => {
292
140
            let domain_value = domain_value
293
140
                .as_array()
294
140
                .ok_or(error!("Domain tuple is not an array"))?;
295

            
296
            //iterate through the array and parse each domain
297
140
            let domain = domain_value
298
140
                .iter()
299
280
                .map(|x| {
300
280
                    let domain = x
301
280
                        .as_object()
302
280
                        .ok_or(error!("DomainTuple[0] is not an object"))?
303
280
                        .iter()
304
280
                        .next()
305
280
                        .ok_or(error!("DomainTuple[0] is an empty object"))?;
306
280
                    parse_domain(domain.0, domain.1, symbols)
307
280
                })
308
140
                .collect::<Result<Vec<DomainPtr>>>()?;
309

            
310
140
            Ok(Domain::tuple(domain))
311
        }
312
540
        "DomainRecord" => {
313
20
            let domain_value = domain_value
314
20
                .as_array()
315
20
                .ok_or(error!("Domain Record is not a json array"))?;
316

            
317
20
            let mut record_entries = vec![];
318

            
319
40
            for item in domain_value {
320
                //collect the name of the record field
321
40
                let name = item[0]
322
40
                    .as_object()
323
40
                    .ok_or(error!("FindOrGiven[1] is not an object"))?["Name"]
324
40
                    .as_str()
325
40
                    .ok_or(error!("FindOrGiven[1].Name is not a string"))?;
326

            
327
40
                let name = Name::User(Ustr::from(name));
328
                // then collect the domain of the record field
329
40
                let domain = item[1]
330
40
                    .as_object()
331
40
                    .ok_or(error!("FindOrGiven[2] is not an object"))?
332
40
                    .iter()
333
40
                    .next()
334
40
                    .ok_or(error!("FindOrGiven[2] is an empty object"))?;
335

            
336
40
                let domain = parse_domain(domain.0, domain.1, symbols)?;
337

            
338
40
                let rec = RecordEntry { name, domain };
339

            
340
40
                record_entries.push(rec);
341
            }
342

            
343
            // add record fields to symbol table
344
40
            for decl in record_entries
345
20
                .iter()
346
20
                .cloned()
347
20
                .map(DeclarationPtr::new_record_field)
348
            {
349
40
                symbols.insert(decl).ok_or(error!(
350
                    "record field should not already be in the symbol table"
351
                ))?;
352
            }
353

            
354
20
            Ok(Domain::record(record_entries))
355
        }
356
520
        "DomainFunction" => {
357
520
            let domain = domain_value
358
520
                .get(2)
359
520
                .and_then(|v| v.as_object())
360
520
                .ok_or(error!("Function domain is not an object"))?;
361
520
            let domain = domain
362
520
                .iter()
363
520
                .next()
364
520
                .ok_or(Error::Parse("DomainSet is an empty object".to_owned()))?;
365
520
            let domain = parse_domain(domain.0.as_str(), domain.1, symbols)?;
366

            
367
520
            let codomain = domain_value
368
520
                .get(3)
369
520
                .and_then(|v| v.as_object())
370
520
                .ok_or(error!("Function codomain is not an object"))?;
371
520
            let codomain = codomain
372
520
                .iter()
373
520
                .next()
374
520
                .ok_or(Error::Parse("DomainSet is an empty object".to_owned()))?;
375
520
            let codomain = parse_domain(codomain.0.as_str(), codomain.1, symbols)?;
376

            
377
            // Attribute parsing
378
520
            let attributes = domain_value
379
520
                .get(1)
380
520
                .and_then(|v| v.as_array())
381
520
                .ok_or(error!("Function attributes is not a json array"))?;
382
520
            let size = attributes
383
520
                .first()
384
520
                .and_then(|v| v.as_object())
385
520
                .ok_or(error!("Function size attributes is not an object"))?;
386
520
            let size = parse_size_attr(size, symbols)?;
387
520
            let partiality = attributes
388
520
                .get(1)
389
520
                .and_then(|v| v.as_str())
390
520
                .ok_or(error!("Function partiality is not a string"))?;
391
520
            let partiality = match partiality {
392
520
                "PartialityAttr_Partial" => Some(PartialityAttr::Partial),
393
80
                "PartialityAttr_Total" => Some(PartialityAttr::Total),
394
                _ => None,
395
            };
396
520
            let partiality =
397
520
                partiality.ok_or(Error::Parse("Partiality is an unknown type".to_owned()))?;
398
520
            let jectivity = attributes
399
520
                .get(2)
400
520
                .and_then(|v| v.as_str())
401
520
                .ok_or(error!("Function jectivity is not a string"))?;
402
520
            let jectivity = match jectivity {
403
520
                "JectivityAttr_Injective" => Some(JectivityAttr::Injective),
404
440
                "JectivityAttr_Surjective" => Some(JectivityAttr::Surjective),
405
400
                "JectivityAttr_Bijective" => Some(JectivityAttr::Bijective),
406
360
                "JectivityAttr_None" => Some(JectivityAttr::None),
407
                _ => None,
408
            };
409
520
            let jectivity =
410
520
                jectivity.ok_or(Error::Parse("Jectivity is an unknown type".to_owned()))?;
411

            
412
520
            let attr: FuncAttr<IntVal> = FuncAttr {
413
520
                size,
414
520
                partiality,
415
520
                jectivity,
416
520
            };
417

            
418
520
            Ok(Domain::function(attr, domain, codomain))
419
        }
420
        _ => Err(Error::Parse(
421
            "FindOrGiven[2] is an unknown object".to_owned(), // consider covered
422
        )),
423
    }
424
33138
}
425

            
426
1140
fn parse_size_attr(
427
1140
    attr_map: &JsonMap<String, JsonValue>,
428
1140
    symbols: &mut SymbolTable,
429
1140
) -> Result<Range<IntVal>> {
430
1140
    let scope = SymbolTablePtr::new();
431
1140
    *scope.write() = symbols.clone();
432

            
433
1140
    let attr_obj = attr_map
434
1140
        .iter()
435
1140
        .next()
436
1140
        .ok_or(Error::Parse("SizeAttr is an empty object".to_owned()))?;
437
1140
    match attr_obj.0.as_str() {
438
1140
        "SizeAttr_None" => Ok(Range::Unbounded),
439
580
        "SizeAttr_MinSize" => {
440
260
            let size = parse_expression_to_int_val(attr_obj.1, &scope)?;
441
260
            Ok(Range::UnboundedR(size))
442
        }
443
320
        "SizeAttr_MaxSize" => {
444
96
            let size = parse_expression_to_int_val(attr_obj.1, &scope)?;
445
96
            Ok(Range::UnboundedL(size))
446
        }
447
224
        "SizeAttr_MinMaxSize" => {
448
104
            let min_max = attr_obj
449
104
                .1
450
104
                .as_array()
451
104
                .ok_or(error!("SizeAttr MinMaxSize is not a json array"))?;
452
104
            let min = min_max
453
104
                .first()
454
104
                .ok_or(error!("SizeAttr Min is not present"))?;
455
104
            let min_int = parse_expression_to_int_val(min, &scope)?;
456
104
            let max = min_max
457
104
                .get(1)
458
104
                .ok_or(error!("SizeAttr Max is not present"))?;
459
104
            let max_int = parse_expression_to_int_val(max, &scope)?;
460
104
            Ok(Range::Bounded(min_int, max_int))
461
        }
462
120
        "SizeAttr_Size" => {
463
120
            let size = parse_expression_to_int_val(attr_obj.1, &scope)?;
464
120
            Ok(Range::Single(size))
465
        }
466
        _ => Err(Error::Parse("SizeAttr is an unknown type".to_owned())),
467
    }
468
1140
}
469

            
470
360
fn parse_occur_attr(
471
360
    attr_map: &JsonMap<String, JsonValue>,
472
360
    symbols: &mut SymbolTable,
473
360
) -> Result<Range<IntVal>> {
474
360
    let scope = SymbolTablePtr::new();
475
360
    *scope.write() = symbols.clone();
476
360
    let attr_obj = attr_map
477
360
        .iter()
478
360
        .next()
479
360
        .ok_or(Error::Parse("OccurAttr is an empty object".to_owned()))?;
480
360
    match attr_obj.0.as_str() {
481
360
        "OccurAttr_None" => Ok(Range::Unbounded),
482
200
        "OccurAttr_MinOccur" => {
483
40
            let size_int = parse_expression_to_int_val(attr_obj.1, &scope)?;
484
40
            Ok(Range::UnboundedR(size_int))
485
        }
486
160
        "OccurAttr_MaxOccur" => {
487
80
            let size_int = parse_expression_to_int_val(attr_obj.1, &scope)?;
488
80
            Ok(Range::UnboundedL(size_int))
489
        }
490
80
        "OccurAttr_MinMaxOccur" => {
491
80
            let min_max = attr_obj
492
80
                .1
493
80
                .as_array()
494
80
                .ok_or(error!("OccurAttr MinMaxOccur is not a json array"))?;
495
80
            let min = min_max
496
80
                .first()
497
80
                .ok_or(error!("OccurAttr Min is not present"))?;
498
80
            let min_int = parse_expression_to_int_val(min, &scope)?;
499
80
            let max = min_max
500
80
                .get(1)
501
80
                .ok_or(error!("OccurAttr Max is not present"))?;
502
80
            let max_int = parse_expression_to_int_val(max, &scope)?;
503
80
            Ok(Range::Bounded(min_int, max_int))
504
        }
505
        "OccurAttr_Size" => {
506
            let size_int = parse_expression_to_int_val(attr_obj.1, &scope)?;
507
            Ok(Range::Single(size_int))
508
        }
509
        _ => Err(Error::Parse("OccurAttr is an unknown type".to_owned())),
510
    }
511
360
}
512

            
513
24594
fn parse_int_domain(v: &JsonValue, symbols: &SymbolTable) -> Result<DomainPtr> {
514
24594
    let scope = SymbolTablePtr::new();
515
24594
    *scope.write() = symbols.clone();
516

            
517
24594
    let mut ranges = Vec::new();
518
24594
    let arr = v
519
24594
        .as_array()
520
24594
        .ok_or(error!("DomainInt is not an array".to_owned()))?[1]
521
24594
        .as_array()
522
24594
        .ok_or(error!("DomainInt[1] is not an array".to_owned()))?;
523
25694
    for range in arr {
524
25694
        let range = range
525
25694
            .as_object()
526
25694
            .ok_or(error!("DomainInt[1] contains a non-object"))?
527
25694
            .iter()
528
25694
            .next()
529
25694
            .ok_or(error!("DomainInt[1] contains an empty object"))?;
530
25694
        match range.0.as_str() {
531
25694
            "RangeBounded" => {
532
23914
                let arr = range
533
23914
                    .1
534
23914
                    .as_array()
535
23914
                    .ok_or(error!("RangeBounded is not an array".to_owned()))?;
536
23914
                let mut nums = Vec::new();
537
47828
                for item in arr.iter() {
538
47828
                    let num = parse_expression_to_int_val(item, &scope)?;
539
47828
                    nums.push(num);
540
                }
541
23914
                let lower = nums
542
23914
                    .first()
543
23914
                    .cloned()
544
23914
                    .ok_or(error!("RangeBounded lower bound missing"))?;
545
23914
                let upper = nums
546
23914
                    .get(1)
547
23914
                    .cloned()
548
23914
                    .ok_or(error!("RangeBounded upper bound missing"))?;
549
23914
                ranges.push(Range::Bounded(lower, upper));
550
            }
551
1780
            "RangeSingle" => {
552
1780
                let num = parse_expression_to_int_val(range.1, &scope)?;
553
1780
                ranges.push(Range::Single(num));
554
            }
555
            _ => return throw_error!("DomainInt[1] contains an unknown object"),
556
        }
557
    }
558
24594
    Ok(Domain::int(ranges))
559
24594
}
560

            
561
50572
fn parse_expression_to_int_val(obj: &JsonValue, scope: &SymbolTablePtr) -> Result<IntVal> {
562
50572
    parser_trace!("trying to parse domain value as expression: {}", obj);
563
50572
    let expr = parse_expression(obj, scope)?;
564

            
565
50572
    if let Some(Literal::Int(i)) = expr.clone().into_literal() {
566
49096
        return Ok(IntVal::Const(i));
567
1476
    }
568

            
569
916
    if let Expression::Atomic(_, Atom::Reference(reference)) = &expr
570
916
        && let Some(reference_val) = IntVal::new_ref(reference)
571
    {
572
916
        return Ok(reference_val);
573
560
    }
574

            
575
560
    IntVal::new_expr(Moo::new(expr)).ok_or(error!("Could not parse integer expression"))
576
50572
}
577

            
578
type BinOp = fn(Metadata, Moo<Expression>, Moo<Expression>) -> Expression;
579
type UnaryOp = fn(Metadata, Moo<Expression>) -> Expression;
580

            
581
46164
fn binary_operator(op_name: &str) -> Option<BinOp> {
582
46164
    match op_name {
583
46164
        "MkOpIn" => Some(Expression::In),
584
45804
        "MkOpUnion" => Some(Expression::Union),
585
45664
        "MkOpIntersect" => Some(Expression::Intersect),
586
45524
        "MkOpSupset" => Some(Expression::Supset),
587
45364
        "MkOpSupsetEq" => Some(Expression::SupsetEq),
588
45204
        "MkOpSubset" => Some(Expression::Subset),
589
45004
        "MkOpSubsetEq" => Some(Expression::SubsetEq),
590
44832
        "MkOpEq" => Some(Expression::Eq),
591
32496
        "MkOpNeq" => Some(Expression::Neq),
592
30112
        "MkOpGeq" => Some(Expression::Geq),
593
28752
        "MkOpLeq" => Some(Expression::Leq),
594
25776
        "MkOpGt" => Some(Expression::Gt),
595
24652
        "MkOpLt" => Some(Expression::Lt),
596
22684
        "MkOpLexLt" => Some(Expression::LexLt),
597
22364
        "MkOpLexGt" => Some(Expression::LexGt),
598
22364
        "MkOpLexLeq" => Some(Expression::LexLeq),
599
21884
        "MkOpLexGeq" => Some(Expression::LexGeq),
600
21884
        "MkOpDiv" => Some(Expression::UnsafeDiv),
601
20244
        "MkOpMod" => Some(Expression::UnsafeMod),
602
19244
        "MkOpMinus" => Some(Expression::Minus),
603
17600
        "MkOpImply" => Some(Expression::Imply),
604
15788
        "MkOpIff" => Some(Expression::Iff),
605
15588
        "MkOpPow" => Some(Expression::UnsafePow),
606
14324
        "MkOpImage" => Some(Expression::Image),
607
14244
        "MkOpImageSet" => Some(Expression::ImageSet),
608
14164
        "MkOpPreImage" => Some(Expression::PreImage),
609
14084
        "MkOpInverse" => Some(Expression::Inverse),
610
14004
        "MkOpRestrict" => Some(Expression::Restrict),
611
13924
        _ => None,
612
    }
613
46164
}
614

            
615
27848
fn unary_operator(op_name: &str) -> Option<UnaryOp> {
616
27848
    match op_name {
617
27848
        "MkOpNot" => Some(Expression::Not),
618
25968
        "MkOpNegate" => Some(Expression::Neg),
619
18648
        "MkOpTwoBars" => Some(Expression::Abs),
620
18048
        "MkOpAnd" => Some(Expression::And),
621
14104
        "MkOpSum" => Some(Expression::Sum),
622
8568
        "MkOpProduct" => Some(Expression::Product),
623
7128
        "MkOpOr" => Some(Expression::Or),
624
4360
        "MkOpMin" => Some(Expression::Min),
625
3320
        "MkOpMax" => Some(Expression::Max),
626
2320
        "MkOpAllDiff" => Some(Expression::AllDiff),
627
320
        "MkOpToInt" => Some(Expression::ToInt),
628
160
        "MkOpDefined" => Some(Expression::Defined),
629
80
        "MkOpRange" => Some(Expression::Range),
630
        _ => None,
631
    }
632
27848
}
633

            
634
141830
pub fn parse_expression(obj: &JsonValue, scope: &SymbolTablePtr) -> Result<Expression> {
635
141830
    let fail = |stage: &str| -> Error {
636
520
        Error::Parse(format!(
637
520
            "Could not parse expression at stage `{stage}` for json `{obj}`"
638
520
        ))
639
520
    };
640

            
641
360
    match obj {
642
141630
        Value::Object(op) if op.contains_key("Op") => {
643
36128
            let op_obj = op
644
36128
                .get("Op")
645
36128
                .and_then(Value::as_object)
646
36128
                .ok_or_else(|| fail("Op.as_object"))?;
647
36128
            let (op_name, _) = op_obj.iter().next().ok_or_else(|| fail("Op.iter().next"))?;
648

            
649
36128
            if op_obj.contains_key("MkOpFlatten") {
650
200
                parse_flatten_op(op_obj, scope)
651
35928
            } else if op_obj.contains_key("MkOpTable") {
652
60
                parse_table_op(op_obj, scope)
653
35868
            } else if op_obj.contains_key("MkOpIndexing") || op_obj.contains_key("MkOpSlicing") {
654
5824
                parse_indexing_slicing_op(op_obj, scope)
655
30044
            } else if binary_operator(op_name).is_some() {
656
16120
                parse_bin_op(op_obj, scope)
657
13924
            } else if unary_operator(op_name).is_some() {
658
13924
                parse_unary_op(op_obj, scope)
659
            } else {
660
                Err(fail("Op.unknown"))
661
            }
662
        }
663
105502
        Value::Object(comprehension) if comprehension.contains_key("Comprehension") => {
664
            parse_comprehension(comprehension, scope.clone(), None)
665
        }
666
105502
        Value::Object(refe) if refe.contains_key("Reference") => {
667
29166
            let ref_arr = refe["Reference"]
668
29166
                .as_array()
669
29166
                .ok_or_else(|| fail("Reference.as_array"))?;
670
29166
            let ref_obj = ref_arr
671
29166
                .first()
672
29166
                .and_then(|x| x.as_object())
673
29166
                .ok_or_else(|| fail("Reference[0].as_object"))?;
674
29166
            let name = ref_obj
675
29166
                .get("Name")
676
29166
                .and_then(|x| x.as_str())
677
29166
                .ok_or_else(|| fail("Reference[0].Name.as_str"))?;
678
29166
            let user_name = Name::User(Ustr::from(name));
679

            
680
29166
            let declaration: DeclarationPtr = scope
681
29166
                .read()
682
29166
                .lookup(&user_name)
683
29166
                .ok_or_else(|| fail("Reference.lookup"))?;
684

            
685
29166
            Ok(Expression::Atomic(
686
29166
                Metadata::new(),
687
29166
                Atom::Reference(crate::ast::Reference::new(declaration)),
688
29166
            ))
689
        }
690
76336
        Value::Object(abslit) if abslit.contains_key("AbstractLiteral") => {
691
6180
            let abstract_literal = abslit["AbstractLiteral"]
692
6180
                .as_object()
693
6180
                .ok_or_else(|| fail("AbstractLiteral.as_object"))?;
694

            
695
6180
            if abstract_literal.contains_key("AbsLitSet") {
696
40
                parse_abs_lit(&abslit["AbstractLiteral"]["AbsLitSet"], scope)
697
6140
            } else if abstract_literal.contains_key("AbsLitFunction") {
698
40
                parse_abs_function(&abslit["AbstractLiteral"]["AbsLitFunction"], scope)
699
6100
            } else if abstract_literal.contains_key("AbsLitMSet") {
700
                parse_abs_mset(&abslit["AbstractLiteral"]["AbsLitMSet"], scope)
701
            } else {
702
6100
                parse_abstract_matrix_as_expr(obj, scope)
703
            }
704
        }
705

            
706
70156
        Value::Object(constant) if constant.contains_key("Constant") => {
707
62416
            parse_constant(constant, scope).or_else(|_| parse_abstract_matrix_as_expr(obj, scope))
708
        }
709

            
710
7740
        Value::Object(constant) if constant.contains_key("ConstantAbstract") => {
711
340
            parse_abstract_matrix_as_expr(obj, scope)
712
        }
713

            
714
7400
        Value::Object(constant) if constant.contains_key("ConstantInt") => {
715
7040
            parse_constant(constant, scope)
716
        }
717
360
        Value::Object(constant) if constant.contains_key("ConstantBool") => {
718
40
            parse_constant(constant, scope)
719
        }
720

            
721
520
        _ => Err(fail("no_match")),
722
    }
723
141830
}
724

            
725
1200
fn parse_abs_lit(abs_set: &Value, scope: &SymbolTablePtr) -> Result<Expression> {
726
1200
    let values = abs_set
727
1200
        .as_array()
728
1200
        .ok_or(error!("AbsLitSet is not an array"))?;
729
1200
    let expressions = values
730
1200
        .iter()
731
3040
        .map(|values| parse_expression(values, scope))
732
1200
        .collect::<Result<Vec<_>>>()?;
733

            
734
1200
    Ok(Expression::AbstractLiteral(
735
1200
        Metadata::new(),
736
1200
        AbstractLiteral::Set(expressions),
737
1200
    ))
738
1200
}
739

            
740
40
fn parse_abs_mset(abs_mset: &Value, scope: &SymbolTablePtr) -> Result<Expression> {
741
40
    let values = abs_mset
742
40
        .as_array()
743
40
        .ok_or(error!("AbsLitMSet is not an array"))?;
744
40
    let expressions = values
745
40
        .iter()
746
120
        .map(|values| parse_expression(values, scope))
747
40
        .collect::<Result<Vec<_>>>()?;
748

            
749
40
    Ok(Expression::AbstractLiteral(
750
40
        Metadata::new(),
751
40
        AbstractLiteral::MSet(expressions),
752
40
    ))
753
40
}
754

            
755
80
fn parse_abs_tuple(abs_tuple: &Value, scope: &SymbolTablePtr) -> Result<Expression> {
756
80
    let values = abs_tuple
757
80
        .as_array()
758
80
        .ok_or(error!("AbsLitTuple is not an array"))?;
759
80
    let expressions = values
760
80
        .iter()
761
200
        .map(|values| parse_expression(values, scope))
762
80
        .collect::<Result<Vec<_>>>()?;
763

            
764
80
    Ok(Expression::AbstractLiteral(
765
80
        Metadata::new(),
766
80
        AbstractLiteral::Tuple(expressions),
767
80
    ))
768
80
}
769

            
770
//parses an abstract record as an expression
771
20
fn parse_abs_record(abs_record: &Value, scope: &SymbolTablePtr) -> Result<Expression> {
772
20
    let entries = abs_record
773
20
        .as_array()
774
20
        .ok_or(error!("AbsLitRecord is not an array"))?;
775
20
    let mut rec = vec![];
776

            
777
40
    for entry in entries {
778
40
        let entry = entry
779
40
            .as_array()
780
40
            .ok_or(error!("AbsLitRecord entry is not an array"))?;
781
40
        let name = entry[0]
782
40
            .as_object()
783
40
            .ok_or(error!("AbsLitRecord field name is not an object"))?["Name"]
784
40
            .as_str()
785
40
            .ok_or(error!("AbsLitRecord field name is not a string"))?;
786

            
787
40
        let value = parse_expression(&entry[1], scope)?;
788

            
789
40
        let name = Name::User(Ustr::from(name));
790
40
        let rec_entry = RecordValue {
791
40
            name: name.clone(),
792
40
            value,
793
40
        };
794
40
        rec.push(rec_entry);
795
    }
796

            
797
20
    Ok(Expression::AbstractLiteral(
798
20
        Metadata::new(),
799
20
        AbstractLiteral::Record(rec),
800
20
    ))
801
20
}
802

            
803
//parses an abstract function as an expression
804
120
fn parse_abs_function(abs_function: &Value, scope: &SymbolTablePtr) -> Result<Expression> {
805
120
    let entries = abs_function
806
120
        .as_array()
807
120
        .ok_or(error!("AbsLitFunction is not an array"))?;
808
120
    let mut assignments = vec![];
809

            
810
240
    for entry in entries {
811
240
        let entry = entry
812
240
            .as_array()
813
240
            .ok_or(error!("Explicit function assignment is not an array"))?;
814
240
        let expression = entry
815
240
            .iter()
816
480
            .map(|values| parse_expression(values, scope))
817
240
            .collect::<Result<Vec<_>>>()?;
818
240
        let domain_value = expression
819
240
            .first()
820
240
            .ok_or(error!("Invalid function domain"))?;
821
240
        let codomain_value = expression
822
240
            .get(1)
823
240
            .ok_or(error!("Invalid function codomain"))?;
824
240
        let tuple = (domain_value.clone(), codomain_value.clone());
825
240
        assignments.push(tuple);
826
    }
827
120
    Ok(Expression::AbstractLiteral(
828
120
        Metadata::new(),
829
120
        AbstractLiteral::Function(assignments),
830
120
    ))
831
120
}
832

            
833
2084
fn parse_comprehension(
834
2084
    comprehension: &serde_json::Map<String, Value>,
835
2084
    scope: SymbolTablePtr,
836
2084
    comprehension_kind: Option<ACOperatorKind>,
837
2084
) -> Result<Expression> {
838
2084
    let fail = |stage: &str| -> Error {
839
        Error::Parse(format!("Could not parse comprehension at stage `{stage}`"))
840
    };
841

            
842
2084
    let value = &comprehension["Comprehension"];
843
2084
    let mut comprehension = ComprehensionBuilder::new(scope.clone());
844
2084
    let generator_symboltable = comprehension.generator_symboltable();
845
2084
    let return_expr_symboltable = comprehension.return_expr_symboltable();
846

            
847
2084
    let generators_and_guards_array = value
848
2084
        .pointer("/1")
849
2084
        .and_then(Value::as_array)
850
2084
        .ok_or_else(|| fail("Comprehension.pointer(/1).as_array"))?;
851
2084
    let generators_and_guards = generators_and_guards_array.iter();
852

            
853
2612
    for gen_or_guard in generators_and_guards {
854
2612
        let gen_or_guard_obj = gen_or_guard
855
2612
            .as_object()
856
2612
            .ok_or_else(|| fail("generator_or_guard.as_object"))?;
857
2612
        let (name, inner) = gen_or_guard_obj
858
2612
            .iter()
859
2612
            .next()
860
2612
            .ok_or_else(|| fail("generator_or_guard.iter().next"))?;
861
2612
        comprehension = match name.as_str() {
862
2612
            "Generator" => {
863
                // TODO: more things than GenDomainNoRepr and Single names here?
864
2312
                let generator_obj = inner
865
2312
                    .as_object()
866
2312
                    .ok_or_else(|| fail("Generator.inner.as_object"))?;
867
2312
                let (name, gen_inner) = generator_obj
868
2312
                    .iter()
869
2312
                    .next()
870
2312
                    .ok_or_else(|| fail("Generator.inner.iter().next"))?;
871
2312
                match name.as_str() {
872
2312
                    "GenDomainNoRepr" => {
873
2292
                        let name = gen_inner
874
2292
                            .pointer("/0/Single/Name")
875
2292
                            .and_then(Value::as_str)
876
2292
                            .ok_or_else(|| {
877
                                fail("GenDomainNoRepr.pointer(/0/Single/Name).as_str")
878
                            })?;
879
2292
                        let domain_obj = gen_inner
880
2292
                            .pointer("/1")
881
2292
                            .and_then(Value::as_object)
882
2292
                            .ok_or_else(|| fail("GenDomainNoRepr.pointer(/1).as_object"))?;
883
2292
                        let (domain_name, domain_value) = domain_obj
884
2292
                            .iter()
885
2292
                            .next()
886
2292
                            .ok_or_else(|| fail("GenDomainNoRepr.domain.iter().next"))?;
887
2292
                        let domain = parse_domain(
888
2292
                            domain_name,
889
2292
                            domain_value,
890
2292
                            &mut generator_symboltable.write(),
891
                        )?;
892
2292
                        comprehension.generator(DeclarationPtr::new_find(name.into(), domain))
893
                    }
894
                    // TODO: this is temporary until comprehensions support "in expr" generators
895
                    // currently only supports a single generator of this type
896
20
                    "GenInExpr" => return parse_in_expr_comprehension(scope, value, gen_inner),
897
                    _ => {
898
                        bug!("unknown generator type inside comprehension {name}");
899
                    }
900
                }
901
            }
902

            
903
300
            "Condition" => {
904
300
                let expr = parse_expression(inner, &generator_symboltable)
905
300
                    .map_err(|_| fail("Condition.parse_expression"))?;
906
300
                comprehension.guard(expr)
907
            }
908

            
909
            x => {
910
                bug!("unknown field inside comprehension {x}");
911
            }
912
        }
913
    }
914

            
915
2064
    let return_expr_value = value
916
2064
        .pointer("/0")
917
2064
        .ok_or_else(|| fail("Comprehension.pointer(/0)"))?;
918
2064
    let expr = parse_expression(return_expr_value, &return_expr_symboltable)
919
2064
        .map_err(|_| fail("Comprehension.return_expr.parse_expression"))?;
920

            
921
2064
    Ok(Expression::Comprehension(
922
2064
        Metadata::new(),
923
2064
        Moo::new(comprehension.with_return_value(expr, comprehension_kind)),
924
2064
    ))
925
2084
}
926

            
927
20
fn parse_in_expr_comprehension(
928
20
    scope: SymbolTablePtr,
929
20
    comprehension_value: &Value,
930
20
    gen_inner: &Value,
931
20
) -> Result<Expression> {
932
20
    let fail = |stage: &str| -> Error {
933
        Error::Parse(format!(
934
            "Could not parse GenInExpr comprehension at stage `{stage}`"
935
        ))
936
    };
937

            
938
20
    let name = gen_inner
939
20
        .pointer("/0/Single/Name")
940
20
        .and_then(Value::as_str)
941
20
        .ok_or_else(|| fail("GenInExpr.pointer(/0/Single/Name).as_str"))?;
942
20
    let generator_expr = gen_inner
943
20
        .pointer("/1")
944
20
        .ok_or_else(|| fail("GenInExpr.pointer(/1)"))?;
945
20
    let expr =
946
20
        parse_expression(generator_expr, &scope).map_err(|_| fail("GenInExpr.parse_expression"))?;
947

            
948
20
    let comprehension =
949
20
        AbstractComprehensionBuilder::new(&scope).new_expression_generator(expr, name.into());
950
20
    let return_expr_value = comprehension_value
951
20
        .pointer("/0")
952
20
        .ok_or_else(|| fail("comprehension_value.pointer(/0)"))?;
953
20
    let expr = parse_expression(return_expr_value, &comprehension.return_expr_symbols())
954
20
        .map_err(|_| fail("GenInExpr.return_expr.parse_expression"))?;
955

            
956
20
    Ok(Expression::AbstractComprehension(
957
20
        Metadata::new(),
958
20
        Moo::new(comprehension.with_return_value(expr)),
959
20
    ))
960
20
}
961

            
962
16120
fn parse_bin_op(
963
16120
    bin_op: &serde_json::Map<String, Value>,
964
16120
    scope: &SymbolTablePtr,
965
16120
) -> Result<Expression> {
966
    // we know there is a single key value pair in this object
967
    // extract the value, ignore the key
968
16120
    let (key, value) = bin_op
969
16120
        .into_iter()
970
16120
        .next()
971
16120
        .ok_or(error!("Binary op object is empty"))?;
972

            
973
16120
    let constructor = binary_operator(key.as_str())
974
16120
        .ok_or(error!(format!("Unknown binary operator `{}`", key)))?;
975

            
976
16120
    match &value {
977
16120
        Value::Array(bin_op_args) if bin_op_args.len() == 2 => {
978
16120
            let arg1 = parse_expression(&bin_op_args[0], scope)?;
979
16120
            let arg2 = parse_expression(&bin_op_args[1], scope)?;
980
16120
            Ok(constructor(Metadata::new(), Moo::new(arg1), Moo::new(arg2)))
981
        }
982
        _ => Err(error!("Binary operator arguments are not a 2-array")),
983
    }
984
16120
}
985

            
986
60
fn parse_table_op(
987
60
    op: &serde_json::Map<String, Value>,
988
60
    scope: &SymbolTablePtr,
989
60
) -> Result<Expression> {
990
60
    let args = op
991
60
        .get("MkOpTable")
992
60
        .ok_or(error!("MkOpTable missing"))?
993
60
        .as_array()
994
60
        .ok_or(error!("MkOpTable is not an array"))?;
995

            
996
60
    if args.len() != 2 {
997
        return Err(error!("MkOpTable arguments are not a 2-array"));
998
60
    }
999

            
60
    let tuple_expr = parse_expression(&args[0], scope)?;
60
    let allowed_rows_expr = parse_expression(&args[1], scope)?;
60
    let (tuple_elems, _) = tuple_expr
60
        .clone()
60
        .unwrap_matrix_unchecked()
60
        .ok_or(error!("MkOpTable first argument is not a matrix"))?;
60
    let (allowed_rows, _) = allowed_rows_expr
60
        .clone()
60
        .unwrap_matrix_unchecked()
60
        .ok_or(error!("MkOpTable second argument is not a matrix"))?;
160
    for row_expr in allowed_rows {
160
        let (row_elems, _) = row_expr
160
            .unwrap_matrix_unchecked()
160
            .ok_or(error!("MkOpTable row is not a matrix"))?;
160
        if row_elems.len() != tuple_elems.len() {
            return Err(error!("MkOpTable row width does not match tuple width"));
160
        }
    }
60
    Ok(Expression::Table(
60
        Metadata::new(),
60
        Moo::new(tuple_expr),
60
        Moo::new(allowed_rows_expr),
60
    ))
60
}
5824
fn parse_indexing_slicing_op(
5824
    op: &serde_json::Map<String, Value>,
5824
    scope: &SymbolTablePtr,
5824
) -> Result<Expression> {
    // we know there is a single key value pair in this object
    // extract the value, ignore the key
5824
    let (key, value) = op
5824
        .into_iter()
5824
        .next()
5824
        .ok_or(error!("Indexing/Slicing op object is empty"))?;
    // we know that this is meant to be a mkopindexing, so anything that goes wrong from here is a
    // bug!
    // Conjure does a[1,2,3] as MkOpIndexing(MkOpIndexing(MkOpIndexing(a,3),2),1).
    //
    // And  a[1,..,3] as MkOpIndexing(MkOpSlicing(MkOpIndexing(a,3)),1).
    //
    // However, we want this in a flattened form: Index(a, [1,2,3])
    let mut target: Expression;
5824
    let mut indices: Vec<Option<Expression>> = vec![];
    // true if this has no slicing, false otherwise.
5824
    let mut all_known = true;
5824
    match key.as_str() {
5824
        "MkOpIndexing" => {
5104
            match &value {
5104
                Value::Array(op_args) if op_args.len() == 2 => {
5104
                    target = parse_expression(&op_args[0], scope)?;
5104
                    indices.push(Some(parse_expression(&op_args[1], scope)?));
                }
                _ => return Err(error!("Unknown object inside MkOpIndexing")),
            };
        }
720
        "MkOpSlicing" => {
720
            all_known = false;
720
            match &value {
720
                Value::Array(op_args) if op_args.len() == 3 => {
720
                    target = parse_expression(&op_args[0], scope)?;
720
                    indices.push(None);
                }
                _ => return Err(error!("Unknown object inside MkOpSlicing")),
            };
        }
        _ => return Err(error!("Unknown indexing/slicing operator")),
    }
    loop {
7524
        match &mut target {
1460
            Expression::UnsafeIndex(_, new_target, new_indices) => {
1460
                indices.extend(new_indices.iter().cloned().rev().map(Some));
1460
                target = Moo::unwrap_or_clone(new_target.clone());
1460
            }
240
            Expression::UnsafeSlice(_, new_target, new_indices) => {
240
                all_known = false;
240
                indices.extend(new_indices.iter().cloned().rev());
240
                target = Moo::unwrap_or_clone(new_target.clone());
240
            }
            _ => {
                // not a slice or an index, we have reached the target.
5824
                break;
            }
        }
    }
5824
    indices.reverse();
5824
    if all_known {
        Ok(Expression::UnsafeIndex(
4864
            Metadata::new(),
4864
            Moo::new(target),
4864
            indices
4864
                .into_iter()
4864
                .collect::<Option<Vec<_>>>()
4864
                .ok_or(error!("Missing index in fully-known indexing operation"))?,
        ))
    } else {
960
        Ok(Expression::UnsafeSlice(
960
            Metadata::new(),
960
            Moo::new(target),
960
            indices,
960
        ))
    }
5824
}
200
fn parse_flatten_op(
200
    op: &serde_json::Map<String, Value>,
200
    scope: &SymbolTablePtr,
200
) -> Result<Expression> {
200
    let args = op
200
        .get("MkOpFlatten")
200
        .ok_or(error!("MkOpFlatten missing"))?
200
        .as_array()
200
        .ok_or(error!("MkOpFlatten is not an array"))?;
200
    let first = args
200
        .first()
200
        .ok_or(error!("MkOpFlatten missing first argument"))?;
200
    let second = args
200
        .get(1)
200
        .ok_or(error!("MkOpFlatten missing second argument"))?;
200
    let n = parse_expression(first, scope).ok();
200
    let matrix = parse_expression(second, scope)?;
200
    if let Some(n) = n {
        Ok(Expression::Flatten(
            Metadata::new(),
            Some(Moo::new(n)),
            Moo::new(matrix),
        ))
    } else {
200
        Ok(Expression::Flatten(Metadata::new(), None, Moo::new(matrix)))
    }
200
}
13924
fn parse_unary_op(
13924
    un_op: &serde_json::Map<String, Value>,
13924
    scope: &SymbolTablePtr,
13924
) -> Result<Expression> {
13924
    let fail = |stage: &str| -> Error {
        Error::Parse(format!("Could not parse unary op at stage `{stage}`"))
    };
13924
    let (key, value) = un_op
13924
        .iter()
13924
        .next()
13924
        .ok_or_else(|| fail("un_op.iter().next"))?;
13924
    let constructor = unary_operator(key.as_str()).ok_or_else(|| fail("unary_operator"))?;
    // unops are the main things that contain comprehensions
    //
    // if the current expr is a quantifier like and/or/sum and it contains a comprehension, let the comprehension know what it is inside.
13924
    let arg = match value {
13924
        Value::Object(comprehension) if comprehension.contains_key("Comprehension") => {
2084
            let comprehension_kind = match key.as_str() {
2084
                "MkOpOr" => Some(ACOperatorKind::Or),
1624
                "MkOpAnd" => Some(ACOperatorKind::And),
400
                "MkOpSum" => Some(ACOperatorKind::Sum),
100
                "MkOpProduct" => Some(ACOperatorKind::Product),
100
                _ => None,
            };
2084
            parse_comprehension(comprehension, scope.clone(), comprehension_kind)
2084
                .map_err(|_| fail("value.Comprehension.parse_comprehension"))
        }
11840
        _ => parse_expression(value, scope).map_err(|_| fail("value.parse_expression")),
    }
13924
    .map_err(|_| fail("arg"))?;
13924
    Ok(constructor(Metadata::new(), Moo::new(arg)))
13924
}
// Takes in { AbstractLiteral: .... }
7400
fn parse_abstract_matrix_as_expr(
7400
    value: &serde_json::Value,
7400
    scope: &SymbolTablePtr,
7400
) -> Result<Expression> {
7400
    parser_trace!("trying to parse an abstract literal matrix");
6920
    let (values, domain_name, domain_value) =
7400
        if let Some(abs_lit_matrix) = value.pointer("/AbstractLiteral/AbsLitMatrix") {
6100
            parser_trace!(".. found JSON pointer /AbstractLiteral/AbstractLitMatrix");
6100
            let (domain_name, domain_value) = abs_lit_matrix
6100
                .pointer("/0")
6100
                .and_then(Value::as_object)
6100
                .and_then(|x| x.iter().next())
6100
                .ok_or(error!("AbsLitMatrix missing domain"))?;
6100
            let values = abs_lit_matrix
6100
                .pointer("/1")
6100
                .ok_or(error!("AbsLitMatrix missing values"))?;
6100
            Some((values, domain_name, domain_value))
        }
        // the input of this expression is constant - e.g. or([]), or([false]), min([2]), etc.
480
        else if let Some(const_abs_lit_matrix) =
1300
            value.pointer("/Constant/ConstantAbstract/AbsLitMatrix")
        {
480
            parser_trace!(".. found JSON pointer /Constant/ConstantAbstract/AbsLitMatrix");
480
            let (domain_name, domain_value) = const_abs_lit_matrix
480
                .pointer("/0")
480
                .and_then(Value::as_object)
480
                .and_then(|x| x.iter().next())
480
                .ok_or(error!("ConstantAbstract AbsLitMatrix missing domain"))?;
480
            let values = const_abs_lit_matrix
480
                .pointer("/1")
480
                .ok_or(error!("ConstantAbstract AbsLitMatrix missing values"))?;
480
            Some((values, domain_name, domain_value))
820
        } else if let Some(const_abs_lit_matrix) = value.pointer("/ConstantAbstract/AbsLitMatrix") {
340
            parser_trace!(".. found JSON pointer /ConstantAbstract/AbsLitMatrix");
340
            let (domain_name, domain_value) = const_abs_lit_matrix
340
                .pointer("/0")
340
                .and_then(Value::as_object)
340
                .and_then(|x| x.iter().next())
340
                .ok_or(error!("ConstantAbstract/AbsLitMatrix missing domain"))?;
340
            let values = const_abs_lit_matrix
340
                .pointer("/1")
340
                .ok_or(error!("ConstantAbstract/AbsLitMatrix missing values"))?;
340
            Some((values, domain_name, domain_value))
        } else {
480
            None
        }
7400
        .ok_or(error!("Could not parse abstract literal matrix"))?;
6920
    parser_trace!(".. found in domain and values in JSON:");
6920
    parser_trace!(".. .. index domain name {domain_name}");
6920
    parser_trace!(".. .. values {value}");
6920
    let args_parsed = values
6920
        .as_array()
6920
        .ok_or(error!("Matrix values are not an array"))?
6920
        .iter()
14884
        .map(|x| parse_expression(x, scope))
6920
        .collect::<Result<Vec<Expression>>>()?;
6920
    if !args_parsed.is_empty() {
6900
        parser_trace!(
            ".. successfully parsed values as expressions: {}, ... ",
16
            args_parsed[0]
        );
    } else {
20
        parser_trace!(".. successfully parsed empty values ",);
    }
6920
    let mut symbols = scope.write();
6920
    match parse_domain(domain_name, domain_value, &mut symbols) {
6920
        Ok(domain) => {
6920
            parser_trace!("... sucessfully parsed domain as {domain}");
6920
            Ok(into_matrix_expr![args_parsed;domain])
        }
        Err(_) => {
            parser_trace!("... failed to parse domain, creating a matrix without one.");
            Ok(into_matrix_expr![args_parsed])
        }
    }
7400
}
69496
fn parse_constant(
69496
    constant: &serde_json::Map<String, Value>,
69496
    scope: &SymbolTablePtr,
69496
) -> Result<Expression> {
69496
    match &constant.get("Constant") {
62416
        Some(Value::Object(int)) if int.contains_key("ConstantInt") => {
59976
            let int_32: i32 = match int["ConstantInt"]
59976
                .as_array()
59976
                .ok_or(error!("ConstantInt is not an array"))?[1]
59976
                .as_i64()
59976
                .ok_or(error!("ConstantInt does not contain int"))?
59976
                .try_into()
            {
59976
                Ok(x) => x,
                Err(_) => return Err(error!("ConstantInt cannot be represented as i32")),
            };
59976
            Ok(Expression::Atomic(
59976
                Metadata::new(),
59976
                Atom::Literal(Literal::Int(int_32)),
59976
            ))
        }
2440
        Some(Value::Object(b)) if b.contains_key("ConstantBool") => {
580
            let b: bool = b["ConstantBool"]
580
                .as_bool()
580
                .ok_or(error!("ConstantBool does not contain bool"))?;
580
            Ok(Expression::Atomic(
580
                Metadata::new(),
580
                Atom::Literal(Literal::Bool(b)),
580
            ))
        }
1860
        Some(Value::Object(int)) if int.contains_key("ConstantAbstract") => {
1860
            if let Some(Value::Object(obj)) = int.get("ConstantAbstract") {
1860
                if let Some(arr) = obj.get("AbsLitSet") {
1160
                    return parse_abs_lit(arr, scope);
700
                } else if let Some(arr) = obj.get("AbsLitMSet") {
40
                    return parse_abs_mset(arr, scope);
660
                } else if let Some(arr) = obj.get("AbsLitMatrix") {
480
                    return parse_abstract_matrix_as_expr(arr, scope);
180
                } else if let Some(arr) = obj.get("AbsLitTuple") {
80
                    return parse_abs_tuple(arr, scope);
100
                } else if let Some(arr) = obj.get("AbsLitRecord") {
20
                    return parse_abs_record(arr, scope);
80
                } else if let Some(arr) = obj.get("AbsLitFunction") {
80
                    return parse_abs_function(arr, scope);
                }
            }
            Err(error!("Unhandled ConstantAbstract literal type"))
        }
        // sometimes (e.g. constant matrices) we can have a ConstantInt / Constant bool that is
        // not wrapped in Constant
        None => {
7080
            let int_expr = constant
7080
                .get("ConstantInt")
7080
                .and_then(|x| x.as_array())
7080
                .and_then(|x| x[1].as_i64())
7080
                .and_then(|x| x.try_into().ok())
7080
                .map(|x| Expression::Atomic(Metadata::new(), Atom::Literal(Literal::Int(x))));
7080
            if let Some(expr) = int_expr {
7040
                return Ok(expr);
40
            }
40
            let bool_expr = constant
40
                .get("ConstantBool")
40
                .and_then(|x| x.as_bool())
40
                .map(|x| Expression::Atomic(Metadata::new(), Atom::Literal(Literal::Bool(x))));
40
            if let Some(expr) = bool_expr {
40
                return Ok(expr);
            }
            Err(error!(format!("Unhandled parse_constant {constant:#?}")))
        }
        otherwise => Err(error!(format!("Unhandled parse_constant {otherwise:#?}"))),
    }
69496
}