1
use crate::diagnostics::diagnostics_api::SymbolKind;
2
use crate::diagnostics::source_map::{HoverInfo, span_with_hover};
3
use crate::errors::FatalParseError;
4
use crate::parser::ParseContext;
5
use crate::parser::atom::parse_atom;
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use crate::parser::comprehension::parse_quantifier_or_aggregate_expr;
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use crate::util::TypecheckingContext;
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use crate::{field, named_child};
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use conjure_cp_core::ast::{Expression, Metadata, Moo};
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use conjure_cp_core::{domain_int, matrix_expr, range};
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use tree_sitter::Node;
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13
6625
pub fn parse_expression(
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6625
    ctx: &mut ParseContext,
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6625
    node: Node,
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6625
) -> Result<Option<Expression>, FatalParseError> {
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6625
    match node.kind() {
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6625
        "atom" => parse_atom(ctx, &node),
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1977
        "bool_expr" => parse_boolean_expression(ctx, &node),
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1366
        "arithmetic_expr" => parse_arithmetic_expression(ctx, &node),
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993
        "comparison_expr" => parse_comparison_expression(ctx, &node),
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        "dominance_relation" => parse_dominance_relation(ctx, &node),
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        _ => Err(FatalParseError::internal_error(
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            format!("Unexpected expression type: '{}'", node.kind()),
25
            Some(node.range()),
26
        )),
27
    }
28
6625
}
29

            
30
fn parse_dominance_relation(
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    ctx: &mut ParseContext,
32
    node: &Node,
33
) -> Result<Option<Expression>, FatalParseError> {
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    if ctx.root.kind() == "dominance_relation" {
35
        return Err(FatalParseError::internal_error(
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            "Nested dominance relations are not allowed".to_string(),
37
            Some(node.range()),
38
        ));
39
    }
40

            
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    // NB: In all other cases, we keep the root the same;
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    // However, here we create a new context with the new root so downstream functions
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    // know we are inside a dominance relation
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    let mut inner_ctx = ParseContext {
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        source_code: ctx.source_code,
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        root: node,
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        symbols: ctx.symbols.clone(),
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        errors: ctx.errors,
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        source_map: &mut *ctx.source_map,
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        typechecking_context: ctx.typechecking_context,
51
    };
52

            
53
    let Some(inner) = parse_expression(&mut inner_ctx, field!(node, "expression"))? else {
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        return Ok(None);
55
    };
56

            
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    Ok(Some(Expression::DominanceRelation(
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        Metadata::new(),
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        Moo::new(inner),
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    )))
61
}
62

            
63
373
fn parse_arithmetic_expression(
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    ctx: &mut ParseContext,
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373
    node: &Node,
66
373
) -> Result<Option<Expression>, FatalParseError> {
67
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    ctx.typechecking_context = TypecheckingContext::Arithmetic;
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    let inner = named_child!(node);
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    match inner.kind() {
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        "atom" => parse_atom(ctx, &inner),
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        "negative_expr" | "abs_value" | "sub_arith_expr" | "toInt_expr" => {
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102
            parse_unary_expression(ctx, &inner)
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        }
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271
        "exponent" | "product_expr" | "sum_expr" => parse_binary_expression(ctx, &inner),
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24
        "list_combining_expr_arith" => parse_list_combining_expression(ctx, &inner),
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        "aggregate_expr" => parse_quantifier_or_aggregate_expr(ctx, &inner),
77
        _ => Err(FatalParseError::internal_error(
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            format!("Expected arithmetic expression, found: {}", inner.kind()),
79
            Some(inner.range()),
80
        )),
81
    }
82
373
}
83

            
84
993
fn parse_comparison_expression(
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    ctx: &mut ParseContext,
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    node: &Node,
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) -> Result<Option<Expression>, FatalParseError> {
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    let inner = named_child!(node);
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    match inner.kind() {
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        "arithmetic_comparison" => {
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            // Arithmetic comparisons require arithmetic operands
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184
            ctx.typechecking_context = TypecheckingContext::Arithmetic;
93
184
            parse_binary_expression(ctx, &inner)
94
        }
95
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        "equality_comparison" => {
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            // Equality works on any type
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            // TODO: add type checking to ensure both sides have the same type
98
463
            ctx.typechecking_context = TypecheckingContext::Unknown;
99
463
            parse_binary_expression(ctx, &inner)
100
        }
101
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        "set_comparison" => {
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            // Set comparisons require set operands (no specific type checking for now)
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            // TODO: add typechecking for sets
104
346
            ctx.typechecking_context = TypecheckingContext::Unknown;
105
346
            parse_binary_expression(ctx, &inner)
106
        }
107
        _ => Err(FatalParseError::internal_error(
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            format!("Expected comparison expression, found '{}'", inner.kind()),
109
            Some(inner.range()),
110
        )),
111
    }
112
993
}
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fn parse_boolean_expression(
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    ctx: &mut ParseContext,
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    node: &Node,
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) -> Result<Option<Expression>, FatalParseError> {
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    ctx.typechecking_context = TypecheckingContext::Boolean;
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    let inner = named_child!(node);
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    match inner.kind() {
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        "atom" => parse_atom(ctx, &inner),
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        "not_expr" | "sub_bool_expr" => parse_unary_expression(ctx, &inner),
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        "and_expr" | "or_expr" | "implication" | "iff_expr" => parse_binary_expression(ctx, &inner),
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        "list_combining_expr_bool" => parse_list_combining_expression(ctx, &inner),
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        "quantifier_expr" => parse_quantifier_or_aggregate_expr(ctx, &inner),
126
        _ => Err(FatalParseError::internal_error(
127
            format!("Expected boolean expression, found '{}'", inner.kind()),
128
            Some(inner.range()),
129
        )),
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    }
131
611
}
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133
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fn parse_list_combining_expression(
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    ctx: &mut ParseContext,
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    node: &Node,
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) -> Result<Option<Expression>, FatalParseError> {
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    let operator_node = field!(node, "operator");
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    let operator_str = &ctx.source_code[operator_node.start_byte()..operator_node.end_byte()];
139

            
140
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    let Some(inner) = parse_atom(ctx, &field!(node, "arg"))? else {
141
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        return Ok(None);
142
    };
143

            
144
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    match operator_str {
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        "and" => Ok(Some(Expression::And(Metadata::new(), Moo::new(inner)))),
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        "or" => Ok(Some(Expression::Or(Metadata::new(), Moo::new(inner)))),
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        "sum" => Ok(Some(Expression::Sum(Metadata::new(), Moo::new(inner)))),
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        "product" => Ok(Some(Expression::Product(Metadata::new(), Moo::new(inner)))),
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        "min" => Ok(Some(Expression::Min(Metadata::new(), Moo::new(inner)))),
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1
        "max" => Ok(Some(Expression::Max(Metadata::new(), Moo::new(inner)))),
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1
        "allDiff" => Ok(Some(Expression::AllDiff(Metadata::new(), Moo::new(inner)))),
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        _ => Err(FatalParseError::internal_error(
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            format!("Invalid operator: '{operator_str}'"),
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            Some(operator_node.range()),
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        )),
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    }
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}
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fn parse_unary_expression(
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    ctx: &mut ParseContext,
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    node: &Node,
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) -> Result<Option<Expression>, FatalParseError> {
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    let Some(inner) = parse_expression(ctx, field!(node, "expression"))? else {
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        return Ok(None);
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    };
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    match node.kind() {
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        "negative_expr" => Ok(Some(Expression::Neg(Metadata::new(), Moo::new(inner)))),
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        "abs_value" => Ok(Some(Expression::Abs(Metadata::new(), Moo::new(inner)))),
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        "not_expr" => Ok(Some(Expression::Not(Metadata::new(), Moo::new(inner)))),
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        "toInt_expr" => Ok(Some(Expression::ToInt(Metadata::new(), Moo::new(inner)))),
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        "sub_bool_expr" | "sub_arith_expr" => Ok(Some(inner)),
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        _ => Err(FatalParseError::internal_error(
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            format!("Unrecognised unary operation: '{}'", node.kind()),
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            Some(node.range()),
175
        )),
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    }
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}
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pub fn parse_binary_expression(
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    ctx: &mut ParseContext,
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    node: &Node,
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) -> Result<Option<Expression>, FatalParseError> {
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    let mut parse_subexpr = |expr: Node| parse_expression(ctx, expr);
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    let Some(left) = parse_subexpr(field!(node, "left"))? else {
186
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        return Ok(None);
187
    };
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1383
    let Some(right) = parse_subexpr(field!(node, "right"))? else {
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44
        return Ok(None);
190
    };
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1339
    let op_node = field!(node, "operator");
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1339
    let op_str = &ctx.source_code[op_node.start_byte()..op_node.end_byte()];
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1339
    let mut description = format!("Operator '{op_str}'");
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    let expr = match op_str {
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        // NB: We are deliberately setting the index domain to 1.., not 1..2.
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        // Semantically, this means "a list that can grow/shrink arbitrarily".
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        // This is expected by rules which will modify the terms of the sum expression
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        // (e.g. by partially evaluating them).
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1339
        "+" => Ok(Some(Expression::Sum(
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            Metadata::new(),
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            Moo::new(matrix_expr![left, right; domain_int!(1..)]),
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134
        ))),
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1205
        "-" => Ok(Some(Expression::Minus(
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            Metadata::new(),
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            Moo::new(left),
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            Moo::new(right),
209
48
        ))),
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        "*" => Ok(Some(Expression::Product(
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            Metadata::new(),
212
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            Moo::new(matrix_expr![left, right; domain_int!(1..)]),
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39
        ))),
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1118
        "/\\" => Ok(Some(Expression::And(
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52
            Metadata::new(),
216
52
            Moo::new(matrix_expr![left, right; domain_int!(1..)]),
217
52
        ))),
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1066
        "\\/" => Ok(Some(Expression::Or(
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13
            Metadata::new(),
220
13
            Moo::new(matrix_expr![left, right; domain_int!(1..)]),
221
13
        ))),
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1053
        "**" => Ok(Some(Expression::UnsafePow(
223
            Metadata::new(),
224
            Moo::new(left),
225
            Moo::new(right),
226
        ))),
227
1053
        "/" => {
228
            //TODO: add checks for if division is safe or not
229
4
            Ok(Some(Expression::UnsafeDiv(
230
4
                Metadata::new(),
231
4
                Moo::new(left),
232
4
                Moo::new(right),
233
4
            )))
234
        }
235
1049
        "%" => {
236
            //TODO: add checks for if mod is safe or not
237
            Ok(Some(Expression::UnsafeMod(
238
                Metadata::new(),
239
                Moo::new(left),
240
                Moo::new(right),
241
            )))
242
        }
243
1049
        "=" => Ok(Some(Expression::Eq(
244
360
            Metadata::new(),
245
360
            Moo::new(left),
246
360
            Moo::new(right),
247
360
        ))),
248
689
        "!=" => Ok(Some(Expression::Neq(
249
48
            Metadata::new(),
250
48
            Moo::new(left),
251
48
            Moo::new(right),
252
48
        ))),
253
641
        "<=" => Ok(Some(Expression::Leq(
254
52
            Metadata::new(),
255
52
            Moo::new(left),
256
52
            Moo::new(right),
257
52
        ))),
258
589
        ">=" => Ok(Some(Expression::Geq(
259
41
            Metadata::new(),
260
41
            Moo::new(left),
261
41
            Moo::new(right),
262
41
        ))),
263
548
        "<" => Ok(Some(Expression::Lt(
264
14
            Metadata::new(),
265
14
            Moo::new(left),
266
14
            Moo::new(right),
267
14
        ))),
268
534
        ">" => Ok(Some(Expression::Gt(
269
44
            Metadata::new(),
270
44
            Moo::new(left),
271
44
            Moo::new(right),
272
44
        ))),
273
490
        "->" => Ok(Some(Expression::Imply(
274
65
            Metadata::new(),
275
65
            Moo::new(left),
276
65
            Moo::new(right),
277
65
        ))),
278
425
        "<->" => Ok(Some(Expression::Iff(
279
13
            Metadata::new(),
280
13
            Moo::new(left),
281
13
            Moo::new(right),
282
13
        ))),
283
412
        "<lex" => Ok(Some(Expression::LexLt(
284
            Metadata::new(),
285
            Moo::new(left),
286
            Moo::new(right),
287
        ))),
288
412
        ">lex" => Ok(Some(Expression::LexGt(
289
            Metadata::new(),
290
            Moo::new(left),
291
            Moo::new(right),
292
        ))),
293
412
        "<=lex" => Ok(Some(Expression::LexLeq(
294
            Metadata::new(),
295
            Moo::new(left),
296
            Moo::new(right),
297
        ))),
298
412
        ">=lex" => Ok(Some(Expression::LexGeq(
299
            Metadata::new(),
300
            Moo::new(left),
301
            Moo::new(right),
302
        ))),
303
412
        "in" => Ok(Some(Expression::In(
304
159
            Metadata::new(),
305
159
            Moo::new(left),
306
159
            Moo::new(right),
307
159
        ))),
308
253
        "subset" => Ok(Some(Expression::Subset(
309
55
            Metadata::new(),
310
55
            Moo::new(left),
311
55
            Moo::new(right),
312
55
        ))),
313
198
        "subsetEq" => Ok(Some(Expression::SubsetEq(
314
44
            Metadata::new(),
315
44
            Moo::new(left),
316
44
            Moo::new(right),
317
44
        ))),
318
154
        "supset" => Ok(Some(Expression::Supset(
319
44
            Metadata::new(),
320
44
            Moo::new(left),
321
44
            Moo::new(right),
322
44
        ))),
323
110
        "supsetEq" => Ok(Some(Expression::SupsetEq(
324
44
            Metadata::new(),
325
44
            Moo::new(left),
326
44
            Moo::new(right),
327
44
        ))),
328
66
        "union" => {
329
33
            description = "set union: combines the elements from both operands".to_string();
330
33
            Ok(Some(Expression::Union(
331
33
                Metadata::new(),
332
33
                Moo::new(left),
333
33
                Moo::new(right),
334
33
            )))
335
        }
336
33
        "intersect" => {
337
33
            description =
338
33
                "set intersection: keeps only elements common to both operands".to_string();
339
33
            Ok(Some(Expression::Intersect(
340
33
                Metadata::new(),
341
33
                Moo::new(left),
342
33
                Moo::new(right),
343
33
            )))
344
        }
345
        _ => Err(FatalParseError::internal_error(
346
            format!("Invalid operator: '{op_str}'"),
347
            Some(op_node.range()),
348
        )),
349
    };
350

            
351
1339
    if expr.is_ok() {
352
1339
        let hover = HoverInfo {
353
1339
            description,
354
1339
            kind: Some(SymbolKind::Function),
355
1339
            ty: None,
356
1339
            decl_span: None,
357
1339
        };
358
1339
        span_with_hover(&op_node, ctx.source_code, ctx.source_map, hover);
359
1339
    }
360

            
361
1339
    expr
362
1482
}