mech_syntax/
literals.rs

1#[macro_use]
2use crate::*;
3use nom::{
4  multi::separated_list0,
5  sequence::tuple as nom_tuple,
6};
7use crate::nodes::Kind;
8
9// boolean_literal := true_literal | false_literal ;
10pub fn boolean(input: ParseString) -> ParseResult<Token> {
11  let (input, boolean) = alt((true_literal, false_literal))(input)?;
12  Ok((input, boolean))
13}
14
15// true_literal := english_true_literal | check_mark ;
16pub fn true_literal(input: ParseString) -> ParseResult<Token> {
17  let (input, token) = alt((english_true_literal, check_mark))(input)?;
18  Ok((input, token))
19}
20
21// false_literal := english_false_literal | cross ;
22pub fn false_literal(input: ParseString) -> ParseResult<Token> {
23  let (input, token) = alt((english_false_literal, cross))(input)?;
24  Ok((input, token))
25}
26
27// number := real_number, "i"? | ("+", real_number, "i")? ;
28pub fn number(input: ParseString) -> ParseResult<Number> {
29  let (input, real_num) = real_number(input)?;
30  match tag("i")(input.clone()) {
31    Ok((input,_)) => {
32      return Ok((input, Number::Imaginary(
33        ComplexNumber{
34          real: None, 
35          imaginary: ImaginaryNumber{number: real_num}
36        })));
37      }
38    _ => match nom_tuple((plus,real_number,tag("i")))(input.clone()) {
39      Ok((input, (_,imaginary_num,_))) => {
40        return Ok((input, Number::Imaginary(
41          ComplexNumber{
42            real: Some(real_num), 
43            imaginary: ImaginaryNumber{number: imaginary_num},
44          })));
45        }
46      _ => ()
47    }
48  }
49  Ok((input, Number::Real(real_num)))
50}
51
52// real_number := dash?, (hexadecimal_literal | decimal_literal | octal_literal | binary_literal | scientific_literal | rational_literal | float_literal | integer_literal) ;
53pub fn real_number(input: ParseString) -> ParseResult<RealNumber> {
54  let (input, neg) = opt(dash)(input)?;
55  let (input, result) = alt((hexadecimal_literal, decimal_literal, octal_literal, binary_literal, scientific_literal, rational_literal, float_literal, integer_literal))(input)?;
56  let result = match neg {
57    Some(_) => RealNumber::Negated(Box::new(result)),
58    None => result,
59  };
60  Ok((input, result))
61}
62
63// rational_literal := integer_literal, "/", integer_literal ;
64pub fn rational_literal(input: ParseString) -> ParseResult<RealNumber> {
65  let (input, RealNumber::Integer(numerator)) = integer_literal(input)? else { unreachable!() };
66  let (input, _) = slash(input)?;
67  let (input, RealNumber::Integer(denominator)) = integer_literal(input)? else { unreachable!() };
68  Ok((input, RealNumber::Rational((numerator,denominator))))
69}
70
71// scientific_literal := (float_literal | integer_literal), ("e" | "E"), plus?, dash?, (float_literal | integer_literal) ;
72pub fn scientific_literal(input: ParseString) -> ParseResult<RealNumber> {
73  let (input, base) = match float_literal(input.clone()) {
74    Ok((input, RealNumber::Float(base))) => {
75      (input, base)
76    }
77    _ => match integer_literal(input.clone()) {
78      Ok((input, RealNumber::Integer(base))) => {
79        (input, (base, Token::default()))
80      }
81      Err(err) => {return Err(err);}
82      _ => unreachable!(),
83    }
84  };
85  let (input, _) = alt((tag("e"), tag("E")))(input)?;
86  let (input, _) = opt(plus)(input)?;
87  let (input, neg) = opt(dash)(input)?;
88  let (input, (ex_whole,ex_part)) = match float_literal(input.clone()) {
89    Ok((input, RealNumber::Float(exponent))) => {
90      (input, exponent)
91    }
92    _ => match integer_literal(input.clone()) {
93      Ok((input, RealNumber::Integer(exponent))) => {
94        (input, (exponent, Token::default()))
95      }
96      Err(err) => {return Err(err);}
97      _ => unreachable!(),
98    }
99  };
100  let ex_sign = match neg {
101    Some(_) => true,
102    None => false,
103  };
104  Ok((input, RealNumber::Scientific((base,(ex_sign,ex_whole,ex_part)))))
105}
106
107// float_decimal_start := ".", digit_sequence ;
108pub fn float_decimal_start(input: ParseString) -> ParseResult<RealNumber> {
109  let (input, _) = period(input)?;
110  let (input, part) = digit_sequence(input)?;
111  let mut tokens2 = part.clone();
112  let mut merged = Token::merge_tokens(&mut tokens2).unwrap();
113  merged.kind = TokenKind::Number;
114  Ok((input, RealNumber::Float((Token::default(),merged))))
115}
116
117// float_full := digit_sequence, ".", digit_sequnce ;
118pub fn float_full(input: ParseString) -> ParseResult<RealNumber> {
119  let (input, mut whole) = digit_sequence(input)?;
120  let (input, _) = period(input)?;
121  let (input, mut part) = digit_sequence(input)?;
122  let mut whole = Token::merge_tokens(&mut whole).unwrap();
123  let mut part = Token::merge_tokens(&mut part).unwrap();
124  whole.kind = TokenKind::Number;
125  part.kind = TokenKind::Number;
126  Ok((input, RealNumber::Float((whole,part))))
127}
128
129// float_literal := float_decimal_start | float_full;
130pub fn float_literal(input: ParseString) -> ParseResult<RealNumber> {
131  let (input, result) = alt((float_decimal_start,float_full))(input)?;
132  Ok((input, result))
133}
134
135// integer := digit1 ;
136pub fn integer_literal(input: ParseString) -> ParseResult<RealNumber> {
137  let (input, mut digits) = digit_sequence(input)?;
138  let mut merged = Token::merge_tokens(&mut digits).unwrap();
139  merged.kind = TokenKind::Number; 
140  Ok((input, RealNumber::Integer(merged)))
141}
142
143// decimal_literal := "0d", <digit1> ;
144pub fn decimal_literal(input: ParseString) -> ParseResult<RealNumber> {
145  let msg = "Expects decimal digits after \"0d\"";
146  let input = tag("0d")(input);
147  let (input, _) = input?;
148  let (input, mut tokens) = label!(digit_sequence, msg)(input)?;
149  let mut merged = Token::merge_tokens(&mut tokens).unwrap();
150  merged.kind = TokenKind::Number; 
151  Ok((input, RealNumber::Decimal(merged)))
152}
153
154// hexadecimal_literal := "0x", <hex_digit+> ;
155pub fn hexadecimal_literal(input: ParseString) -> ParseResult<RealNumber> {
156  let msg = "Expects hexadecimal digits after \"0x\"";
157  let input = tag("0x")(input);
158  let (input, _) = input?;
159  let (input, mut tokens) = label!(many1(alt((digit_token,underscore,alpha_token))), msg)(input)?;
160  let mut merged = Token::merge_tokens(&mut tokens).unwrap();
161  merged.kind = TokenKind::Number; 
162  Ok((input, RealNumber::Hexadecimal(merged)))
163}
164
165// octal_literal := "0o", <oct_digit+> ;
166pub fn octal_literal(input: ParseString) -> ParseResult<RealNumber> {
167  let msg = "Expects octal digits after \"0o\"";
168  let input = tag("0o")(input);
169  let (input, _) = input?;
170  let (input, mut tokens) = label!(many1(alt((digit_token,underscore,alpha_token))), msg)(input)?;
171  let mut merged = Token::merge_tokens(&mut tokens).unwrap();
172  merged.kind = TokenKind::Number; 
173  Ok((input, RealNumber::Octal(merged)))
174}
175
176// binary_literal := "0b", <bin_digit+> ;
177pub fn binary_literal(input: ParseString) -> ParseResult<RealNumber> {
178  let msg = "Expects binary digits after \"0b\"";
179  let input = tag("0b")(input);
180  let (input, _) = input?;
181  let (input, mut tokens) = label!(many1(alt((digit_token,underscore,alpha_token))), msg)(input)?;
182  let mut merged = Token::merge_tokens(&mut tokens).unwrap();
183  merged.kind = TokenKind::Number; 
184  Ok((input, RealNumber::Binary(merged)))
185}
186
187// empty := underscore+ ;
188pub fn empty(input: ParseString) -> ParseResult<Token> {
189  let (input, (g, src_range)) = range(many1(tag("_")))(input)?;
190  Ok((input, Token{kind: TokenKind::Empty, chars: g.join("").chars().collect(), src_range}))
191}
192
193// #### Kind Annotations
194
195// kind_annotation := left_angle, kind, right_angle ;
196pub fn kind_annotation(input: ParseString) -> ParseResult<KindAnnotation> {
197  let msg2 = "Expects at least one unit in kind annotation";
198  let msg3 = "Expects right angle";
199  let (input, (_, r)) = range(left_angle)(input)?;
200  let (input, kind) = kind(input)?;
201  let (input, _) = label!(right_angle, msg3, r)(input)?;
202  Ok((input, KindAnnotation{ kind }))
203}
204
205// kind := kind_fxn | kind_empty | kind_atom | kind_tuple | kind_scalar | kind_bracket | kind_map | kind_brace ;
206pub fn kind(input: ParseString) -> ParseResult<Kind> {
207  let (input, kind) = alt((kind_fxn,kind_empty,kind_atom,kind_tuple,kind_scalar,kind_bracket,kind_map,kind_brace))(input)?;
208  Ok((input, kind))
209}
210
211// kind_empty := underscore+ ;
212pub fn kind_empty(input: ParseString) -> ParseResult<Kind> {
213  let (input, _) = many1(underscore)(input)?;
214  Ok((input, Kind::Empty))
215}
216
217// kind_atom := "`", identifier ;
218pub fn kind_atom(input: ParseString) -> ParseResult<Kind> {
219  let (input, _) = grave(input)?;
220  let (input, atm) = identifier(input)?;
221  Ok((input, Kind::Atom(atm)))
222}
223
224// kind_map := "{", kind, ":", kind, "}" ;
225pub fn kind_map(input: ParseString) -> ParseResult<Kind> {
226  let (input, _) = left_brace(input)?;
227  let (input, key_kind) = kind(input)?;
228  let (input, _) = colon(input)?;
229  let (input, value_kind) = kind(input)?;
230  let (input, _) = right_brace(input)?;
231  Ok((input, Kind::Map(Box::new(key_kind),Box::new(value_kind))))
232}
233
234// kind_fxn := "(", list0(list_separator, kind), ")", "=", "(", list0(list_separator, kind), ")" ;
235pub fn kind_fxn(input: ParseString) -> ParseResult<Kind> {
236  let (input, _) = left_parenthesis(input)?;
237  let (input, input_kinds) = separated_list0(list_separator,kind)(input)?;
238  let (input, _) = right_parenthesis(input)?;
239  let (input, _) = equal(input)?;
240  let (input, _) = left_parenthesis(input)?;
241  let (input, output_kinds) = separated_list0(list_separator,kind)(input)?;
242  let (input, _) = right_parenthesis(input)?;
243  Ok((input, Kind::Function(input_kinds,output_kinds)))
244}
245
246// kind_brace := "{", list1(",", kind), "}", ":"?, list0("," , literal) ;
247pub fn kind_brace(input: ParseString) -> ParseResult<Kind> {
248  let (input, _) = left_brace(input)?;
249  let (input, kinds) = separated_list1(list_separator,kind)(input)?;
250  let (input, _) = right_brace(input)?;
251  let (input, _) = opt(colon)(input)?;
252  let (input, size) = separated_list0(list_separator,literal)(input)?;
253  Ok((input, Kind::Brace((kinds,size))))
254}
255
256// kind_bracket := "[", list1(",",kind), "]", ":"?, list0(",", literal) ;
257pub fn kind_bracket(input: ParseString) -> ParseResult<Kind> {
258  let (input, _) = left_bracket(input)?;
259  let (input, kinds) = separated_list1(list_separator,kind)(input)?;
260  let (input, _) = right_bracket(input)?;
261  let (input, _) = opt(colon)(input)?;
262  let (input, size) = separated_list0(list_separator,literal)(input)?;
263  Ok((input, Kind::Bracket((kinds,size))))
264}
265
266// kind_tuple := "(", list1(",", kind), ")" ;
267pub fn kind_tuple(input: ParseString) -> ParseResult<Kind> {
268  let (input, _) = left_parenthesis(input)?;
269  let (input, kinds) = separated_list1(list_separator, kind)(input)?;
270  let (input, _) = right_parenthesis(input)?;
271  Ok((input, Kind::Tuple(kinds)))
272}
273
274// kind_scalar := identifier, [":", range_expression] ;
275pub fn kind_scalar(input: ParseString) -> ParseResult<Kind> {
276  let (input, kind) = identifier(input)?;
277  let (input, range) = opt(tuple((colon,range_expression)))(input)?;
278  Ok((input, Kind::Scalar(kind)))
279}