1use crate::*;
2#[cfg(feature = "convert")]
3use crate::stdlib::convert::ConvertKind;
4
5pub fn literal(ltrl: &Literal, p: &Interpreter) -> MResult<Value> {
9 match <rl {
10 Literal::Empty(_) => Ok(empty()),
11 #[cfg(feature = "bool")]
12 Literal::Boolean(bln) => Ok(boolean(bln)),
13 Literal::Number(num) => number(num, p),
14 #[cfg(feature = "string")]
15 Literal::String(strng) => Ok(string(strng)),
16 #[cfg(feature = "atom")]
17 Literal::Atom(atm) => Ok(atom(atm, p)),
18 #[cfg(feature = "kind_annotation")]
19 Literal::Kind(knd) => kind_value(knd, p),
20 #[cfg(feature = "convert")]
21 Literal::TypedLiteral((ltrl,kind)) => typed_literal(ltrl,kind,p),
22 _ => Err(MechError::new(
23 FeatureNotEnabledError, None
24 ).with_compiler_loc())
25 }
26}
27
28#[cfg(feature = "kind_annotation")]
29pub fn kind_value(knd: &NodeKind, p: &Interpreter) -> MResult<Value> {
30 let kind = kind_annotation(knd, p)?;
31 Ok(Value::Kind(kind.to_value_kind(&p.state.borrow().kinds)?))
32}
33
34pub fn kind_annotation(knd: &NodeKind, p: &Interpreter) -> MResult<Kind> {
35 match knd {
36 NodeKind::Kind(knd) => {
37 let knda = kind_annotation(knd, p)?;
38 Ok(Kind::Kind(Box::new(knda)))
39 }
40 NodeKind::Any => Ok(Kind::Any),
41 NodeKind::Atom(atm_identifier) => {
42 let id = atm_identifier.hash();
43 let name = atm_identifier.to_string();
44 Ok(Kind::Atom(id, name))
45 }
46 NodeKind::Empty => Ok(Kind::Empty),
47 NodeKind::Record(elements) => {
48 let mut knds = vec![];
49 for (id, knd) in elements {
50 let knda = kind_annotation(knd, p)?;
51 knds.push((id.to_string().clone(), knda));
52 }
53 Ok(Kind::Record(knds))
54 }
55 NodeKind::Tuple(elements) => {
56 let mut knds = vec![];
57 for knd in elements {
58 let knda = kind_annotation(knd, p)?;
59 knds.push(knda);
60 }
61 Ok(Kind::Tuple(knds))
62 }
63 NodeKind::Map(keys, vals) => {
64 let key_knd = kind_annotation(keys, p)?;
65 let val_knd = kind_annotation(vals, p)?;
66 Ok(Kind::Map(Box::new(key_knd), Box::new(val_knd)))
67 }
68 NodeKind::Scalar(id) => {
69 let kind_id = id.hash();
70 Ok(Kind::Scalar(kind_id))
71 }
72 NodeKind::Matrix((knd, size)) => {
73 let knda = kind_annotation(knd, p)?;
74 let mut dims = vec![];
75 for dim in size {
76 let dim_val = literal(dim, p)?;
77 match dim_val {
78 Value::Empty => { dims.push(0); }
79 _ => {
80 match dim_val.as_usize() {
81 Ok(size_val) => dims.push(size_val.clone()),
82 Err(_) => { return Err(MechError::new(
83 ExpectedNumericForKindSizeError, None
84 ).with_compiler_loc())
85 }
86 }
87 }
88 }
89 }
90 Ok(Kind::Matrix(Box::new(knda.clone()),dims))
91 }
92 NodeKind::Option(knd) => {
93 let knda = kind_annotation(knd, p)?;
94 Ok(Kind::Option(Box::new(knda)))
95 }
96 NodeKind::Table((elements, size)) => {
97 let mut knds = vec![];
98 for (id, knd) in elements {
99 let knda = kind_annotation(knd, p)?;
100 knds.push((id.to_string().clone(), knda));
101 }
102 let size_val = literal(size, p)?;
103 let size_val = match size_val {
104 Value::Empty => 0,
105 _ => {
106 match size_val.as_usize() {
107 Ok(size_val) => size_val,
108 Err(_) => { return Err(MechError::new(
109 ExpectedNumericForKindSizeError, None
110 ).with_compiler_loc())
111 }
112 }
113 }
114 };
115 Ok(Kind::Table(knds, size_val))
116 }
117 NodeKind::Set(knd, size) => {
118 let knda = kind_annotation(knd, p)?;
119 let size_val = match size {
120 Some(size) => literal(size, p)?,
121 None => Value::Empty,
122 };
123 match size_val.as_usize() {
124 Ok(size_val) => Ok(Kind::Set(Box::new(knda.clone()), Some(size_val))),
125 Err(_) => Ok(Kind::Set(Box::new(knda.clone()), None)),
126 }
127 }
128 }
129}
130
131#[cfg(feature = "convert")]
132pub fn typed_literal(ltrl: &Literal, knd_attn: &KindAnnotation, p: &Interpreter) -> MResult<Value> {
133 let value = literal(ltrl,p)?;
134 let kind = kind_annotation(&knd_attn.kind, p)?;
135 let args = vec![value, kind.to_value(&p.state.borrow().kinds)?];
136 let convert_fxn = ConvertKind{}.compile(&args)?;
137 convert_fxn.solve();
138 let converted_result = convert_fxn.out();
139 p.state.borrow_mut().add_plan_step(convert_fxn);
140 Ok(converted_result)
141}
142
143#[cfg(feature = "atom")]
144pub fn atom(atm: &Atom, p: &Interpreter) -> Value {
145 let id = atm.name.hash();
146 let state = p.state.borrow();
147 let dictionary = state.dictionary.clone();
148 {
149 let mut dictionary_brrw = dictionary.borrow_mut();
150 dictionary_brrw.insert(id, atm.name.to_string());
151 }
152 Value::Atom(Ref::new(MechAtom((id, dictionary))))
153}
154
155pub fn number(num: &Number, p: &Interpreter) -> MResult<Value> {
156 match num {
157 Number::Real(num) => real(num, p),
158 #[cfg(feature = "complex")]
159 Number::Complex(num) => complex(num, p),
160 _ => panic!("Number type not supported."),
161 }
162}
163
164#[cfg(feature = "complex")]
165fn complex(num: &C64Node, p: &Interpreter) -> MResult<Value> {
166 let im: f64 = match real(&num.imaginary.number, p)?.as_f64() {
167 Ok(val) => *val.borrow(),
168 Err(_) => 0.0,
169 };
170 let result = match &num.real {
171 Some(real_val) => {
172 let re: f64 = match real(&real_val, p)?.as_f64() {
173 Ok(val) => *val.borrow(),
174 Err(_) => 0.0,
175 };
176 Value::C64(Ref::new(C64::new(re, im)))
177 },
178 None => Value::C64(Ref::new(C64::new(0.0, im))),
179 };
180 Ok(result)
181}
182
183pub fn real(rl: &RealNumber, p: &Interpreter) -> MResult<Value> {
184 let result = match rl {
185 #[cfg(feature = "math_neg")]
186 RealNumber::Negated(num) => negated(num, p)?,
187 #[cfg(feature = "f64")]
188 RealNumber::Integer(num) => integer(num),
189 #[cfg(feature = "floats")]
190 RealNumber::Float(num) => float(num),
191 #[cfg(feature = "i64")]
192 RealNumber::Decimal(num) => dec(num),
193 #[cfg(feature = "i64")]
194 RealNumber::Hexadecimal(num) => hex(num),
195 #[cfg(feature = "i64")]
196 RealNumber::Octal(num) => oct(num),
197 #[cfg(feature = "i64")]
198 RealNumber::Binary(num) => binary(num),
199 #[cfg(feature = "floats")]
200 RealNumber::Scientific(num) => scientific(num),
201 #[cfg(feature = "rational")]
202 RealNumber::Rational(num) => rational(num),
203 #[cfg(feature = "convert")]
204 RealNumber::TypedInteger((num_tkn, kind)) => {
205 let num: Literal = Literal::Number(Number::Real(RealNumber::Integer(num_tkn.clone())));
206 typed_literal(&num, kind, p)?
207 },
208 _ => panic!("Number type not supported."),
209 };
210 Ok(result)
211}
212
213#[cfg(feature = "math_neg")]
214pub fn negated(num: &RealNumber, p: &Interpreter) -> MResult<Value> {
215 let num_val = real(&num, p)?;
216 let result = match num_val {
217 #[cfg(feature = "i8")]
218 Value::I8(val) => Value::I8(Ref::new(-*val.borrow())),
219 #[cfg(feature = "i16")]
220 Value::I16(val) => Value::I16(Ref::new(-*val.borrow())),
221 #[cfg(feature = "i32")]
222 Value::I32(val) => Value::I32(Ref::new(-*val.borrow())),
223 #[cfg(feature = "i64")]
224 Value::I64(val) => Value::I64(Ref::new(-*val.borrow())),
225 #[cfg(feature = "i128")]
226 Value::I128(val) => Value::I128(Ref::new(-*val.borrow())),
227 #[cfg(feature = "f64")]
228 Value::F64(val) => Value::F64(Ref::new(-(*val.borrow()))),
229 #[cfg(feature = "f32")]
230 Value::F32(val) => Value::F32(Ref::new(-(*val.borrow()))),
231 x => panic!("Negation is only supported for integer and float types, got {:?}", x),
232 };
233 Ok(result)
234}
235
236#[cfg(feature = "rational")]
237pub fn rational(rat: &(Token,Token)) -> Value {
238 let (num, denom) = rat;
239 let num = num.chars.iter().collect::<String>().parse::<i64>().unwrap();
240 let denom = denom.chars.iter().collect::<String>().parse::<i64>().unwrap();
241 if denom == 0 {
242 panic!("Denominator cannot be zero in a rational number");
243 }
244 let rat_num = R64::new(num, denom);
245 Value::R64(Ref::new(rat_num))
246}
247
248#[cfg(feature = "i64")]
249pub fn dec(bnry: &Token) -> Value {
250 let binary_str: String = bnry.chars.iter().collect();
251 let num = i64::from_str_radix(&binary_str, 10).unwrap();
252 Value::I64(Ref::new(num))
253}
254
255#[cfg(feature = "i64")]
256pub fn binary(bnry: &Token) -> Value {
257 let binary_str: String = bnry.chars.iter().collect();
258 let num = i64::from_str_radix(&binary_str, 2).unwrap();
259 Value::I64(Ref::new(num))
260}
261
262#[cfg(feature = "i64")]
263pub fn oct(octl: &Token) -> Value {
264 let hex_str: String = octl.chars.iter().collect();
265 let num = i64::from_str_radix(&hex_str, 8).unwrap();
266 Value::I64(Ref::new(num))
267}
268
269#[cfg(feature = "i64")]
270pub fn hex(hxdcml: &Token) -> Value {
271 let hex_str: String = hxdcml.chars.iter().collect();
272 let num = i64::from_str_radix(&hex_str, 16).unwrap();
273 Value::I64(Ref::new(num))
274}
275
276#[cfg(feature = "f64")]
277pub fn scientific(sci: &(Base,Exponent)) -> Value {
278 let (base,exp): &(Base,Exponent) = sci;
279 let (whole,part): &(Whole,Part) = base;
280 let (sign,exp_whole, exp_part): &(Sign, Whole, Part) = exp;
281
282 let a = whole.chars.iter().collect::<String>();
283 let b = part.chars.iter().collect::<String>();
284 let c = exp_whole.chars.iter().collect::<String>();
285 let d = exp_part.chars.iter().collect::<String>();
286 let num_f64: f64 = format!("{}.{}",a,b).parse::<f64>().unwrap();
287 let mut exp_f64: f64 = format!("{}.{}",c,d).parse::<f64>().unwrap();
288 if *sign {
289 exp_f64 = -exp_f64;
290 }
291 let num = num_f64 * 10f64.powf(exp_f64);
292 Value::F64(Ref::new(num))
293}
294
295#[cfg(feature = "floats")]
296pub fn float(flt: &(Token,Token)) -> Value {
297 let a = flt.0.chars.iter().collect::<String>();
298 let b = flt.1.chars.iter().collect::<String>();
299 let num: f64 = format!("{}.{}",a,b).parse::<f64>().unwrap();
300 Value::F64(Ref::new(num))
301}
302
303#[cfg(feature = "f64")]
304pub fn integer(int: &Token) -> Value {
305 let num: f64 = int.chars.iter().collect::<String>().parse::<f64>().unwrap();
306 Value::F64(Ref::new(num))
307}
308
309#[cfg(feature = "string")]
310pub fn string(tkn: &MechString) -> Value {
311 let strng: String = tkn.text.chars.iter().collect::<String>();
312 Value::String(Ref::new(strng))
313}
314
315pub fn empty() -> Value {
316 Value::Empty
317}
318
319#[cfg(feature = "bool")]
320pub fn boolean(tkn: &Token) -> Value {
321 let val = match tkn.kind {
322 TokenKind::True => true,
323 TokenKind::False => false,
324 _ => unreachable!(),
325 };
326 Value::Bool(Ref::new(val))
327}
328
329#[derive(Debug, Clone)]
330pub struct ExpectedNumericForKindSizeError;
331impl MechErrorKind for ExpectedNumericForKindSizeError {
332 fn name(&self) -> &str {
333 "ExpectedNumericForKindSize"
334 }
335 fn message(&self) -> String {
336 "Expected a numeric value for kind size, but received a non-numeric value.".to_string()
337 }
338}