bitis_lib/lib_impl/
compiler.rs

1use std::collections::HashMap;
2use std::process::{abort};
3use askama::Template;
4use logos::{Lexer, Logos, Span};
5use regex::Regex;
6use stringcase::Caser;
7
8
9// ************************************************************************
10// ************************************************************************
11fn integer_bit_size(bit_size: &u8) -> u8 {
12    match bit_size {
13        0..=8 => 8,
14        9..=16 => 16,
15        17..=32 => 32,
16        _ => 64
17    }
18}
19// ************************************************************************
20#[derive(Debug, Clone )]
21#[allow(unused)]
22pub struct AttributeEx {
23    base: Attribute,
24    rust_type_str: String,
25    // rust_pyo3_str: String,
26    base_type_str: String,
27    is_py_wrapped: bool, is_msg: bool, is_enum: bool, is_oo: bool, add_val: bool,
28}
29#[derive(Debug, Clone )]
30pub struct MessageR {
31    pub name: String,
32    // pub version_info: VersionInfo,
33    pub comment: Option<String>,
34    pub parent: Option<String>,
35    pub attributes: Vec<AttributeEx>,
36}
37#[derive(Debug, Clone )]
38#[allow(dead_code)]
39pub struct OneOfInfoR {
40    msg_name: String,
41    name: String,
42    dyn_bits: u8,
43    attributes: Vec<AttributeEx>,
44}
45fn to_rust_attribute(attribute: &Attribute, msg_names: &Vec<String>) -> AttributeEx {
46    let (rtype, base_type, is_py_wrapped, is_msg, is_enum, is_oo, add_val) = {
47        let mut is_py_wrapped = false;
48        let mut is_enum = false;
49        let mut is_msg = false;
50        let mut is_oo = false;
51        let mut add_val = false;
52
53        let (rtype, base_type) = match &attribute.specific_details {
54            AttributeDetails::AttributeSimple(a) => {
55                match a {
56                    SimpleType::NoTypeSetYet => {
57                        println!("Unexpected unspecified attribute type");
58                        abort()
59                    },
60                    SimpleType::Bool => { ("bool".to_string(), "bool".to_string()) }
61                    SimpleType::UIntFixed(b) => {
62                        add_val = true;
63                        let base = format!("u{}", integer_bit_size(&b));
64                        (format!("VarWithGivenBitSize<{}, {}>", base.clone(), b), base) }
65                    SimpleType::IntFixed(b) => {
66                        add_val = true;
67                        let base = format!("i{}", integer_bit_size(&b));
68                        (format!("VarWithGivenBitSize<{}, {}>", base.clone(), b), base) }
69                    SimpleType::UIntDyn(b) => {
70                        add_val = true;
71                        let base = format!("u{}", integer_bit_size(&b.0));
72                        (format!("DynInteger<{}, {}>", base.clone(), b.1), base) }
73                    SimpleType::IntDyn(b) => {
74                        add_val = true;
75                        let base = format!("i{}", integer_bit_size(&b.0));
76                        (format!("DynInteger<{}, {}>", base.clone(), b.1), base) }
77                    SimpleType::Float => {
78                        add_val = true;
79                        let base = "f32".to_string();
80                        (base.clone(), base)
81                    }
82                    SimpleType::Double => {
83                        let base = "f64".to_string();
84                        (base.clone(), base) }
85                    SimpleType::FixedPrecision(fpp) => {
86                        add_val = true;
87                        (format!("FixPrecisionMinMax<{}, {}, {}>", fpp.bits, fpp.min_val, fpp.max_val), "f64".to_string())
88                    }
89                    SimpleType::Binary(b) => {
90                        add_val = true;
91                        (format!("Binary<{}>", b), "Vec<u8>".to_string()) }
92                }
93            }
94            AttributeDetails::AttributeEnumOrMsg(em) => {
95                is_py_wrapped = true;
96                is_msg = msg_names.contains(&em);
97                is_enum = !is_msg.clone();
98                (em.clone(), em.clone()) }
99            AttributeDetails::AttributeOneOf(ooi) => {
100                is_py_wrapped=true; is_oo = true;
101                (ooi.name.clone(), ooi.name.clone()) }
102        };
103        (rtype, base_type, is_py_wrapped, is_msg, is_enum, is_oo,  add_val)
104    };
105    AttributeEx{base: attribute.clone(), rust_type_str: rtype, base_type_str: base_type,
106        is_py_wrapped, is_msg, is_enum, is_oo, add_val }
107}
108
109pub fn to_rust_messages(msgs: &Vec<Message>) -> Vec<MessageR> {
110    let msgs_names: Vec<_> = msgs.iter().map(|m| {m.name.clone()}).collect();
111
112    msgs.iter().map(|msg| {
113        let attrs_rust: Vec<_> = msg.attributes.iter().map(|attribute| {
114            to_rust_attribute(attribute, &msgs_names) }).collect();
115        MessageR{name: msg.name.clone(), comment: msg.comment.clone(), parent: msg.parent.clone(),
116            attributes: attrs_rust}
117    }).collect()
118}
119pub fn to_rust_oneofs(oos: &Vec<(String, OneOfInfo)>, msgs: &Vec<Message>) -> HashMap<String, OneOfInfoR> {
120    let msgs_names: Vec<_> = msgs.iter().map(|m| {m.name.clone()}).collect();
121
122    oos.iter().map(|(msg_name, oo)| {
123        let attrs_rust: Vec<_> = oo.attributes.iter().map(|attribute| {
124            to_rust_attribute(attribute, &msgs_names) }).collect();
125        (oo.name.clone(), OneOfInfoR{msg_name: msg_name.clone(), name: oo.name.clone(), dyn_bits: oo.dyn_bits, attributes: attrs_rust})
126    }).collect()
127}
128
129fn to_cpp_attribute(attribute: &Attribute, msg_names: &Vec<String>) -> AttributeEx {
130    let (rtype, base_type, is_py_wrapped, is_msg, is_enum, is_oo, add_val) = {
131        let mut is_py_wrapped = false;
132        let mut is_enum = false;
133        let mut is_msg = false;
134        let mut is_oo = false;
135        let mut add_val = false;
136
137        let (rtype, base_type) = match &attribute.specific_details {
138            AttributeDetails::AttributeSimple(a) => {
139                match a {
140                    SimpleType::NoTypeSetYet => {
141                        println!("Unexpected unspecified attribute type");
142                        abort()
143                    },
144                    SimpleType::Bool => { ("BitisBool".to_string(), "bool".to_string()) }
145                    SimpleType::UIntFixed(b) => {
146                        add_val = true;
147                        let base = format!("uint{}_t", integer_bit_size(&b));
148                        (format!("IntgralWithGivenBitSize<{}, {}>", base.clone(), b), base) }
149                    SimpleType::IntFixed(b) => {
150                        add_val = true;
151                        let base = format!("int{}_t", integer_bit_size(&b));
152                        (format!("IntgralWithGivenBitSize<{}, {}>", base.clone(), b), base) }
153                    SimpleType::UIntDyn(b) => {
154                        add_val = true;
155                        let base = format!("uint{}_t", integer_bit_size(&b.0));
156                        (format!("DynInteger<{}, {}>", base.clone(), b.1), base) }
157                    SimpleType::IntDyn(b) => {
158                        add_val = true;
159                        let base = format!("int{}_t", integer_bit_size(&b.0));
160                        (format!("DynInteger<{}, {}>", base.clone(), b.1), base) }
161                    SimpleType::Float => {
162                        add_val = true;
163                        let base = "float".to_string();
164                        (base.clone(), base)
165                    }
166                    SimpleType::Double => {
167                        let base = "double".to_string();
168                        (base.clone(), base) }
169                    SimpleType::FixedPrecision(fpp) => {
170                        add_val = true;
171                        (format!("FixPrecisionMinMax<{}, {}, {}>", fpp.bits, fpp.min_val, fpp.max_val), "double".to_string())
172                    }
173                    SimpleType::Binary(b) => {
174                        add_val = true;
175                        (format!("Binary<{}>", b), "Vec<u8>".to_string()) }
176                }
177            }
178            AttributeDetails::AttributeEnumOrMsg(em) => {
179                is_py_wrapped = true;
180                is_msg = msg_names.contains(&em);
181                is_enum = !is_msg.clone();
182                (em.clone(), em.clone()) }
183            AttributeDetails::AttributeOneOf(ooi) => {
184                is_py_wrapped=true; is_oo = true;
185                (ooi.name.clone(), ooi.name.clone()) }
186        };
187        (rtype, base_type, is_py_wrapped, is_msg, is_enum, is_oo,  add_val)
188    };
189    AttributeEx{base: attribute.clone(), rust_type_str: rtype, base_type_str: base_type,
190        is_py_wrapped, is_msg, is_enum, is_oo, add_val }
191}
192pub fn to_cpp_messages(msgs: &Vec<Message>) -> Vec<MessageR> {
193    let msgs_names: Vec<_> = msgs.iter().map(|m| {m.name.clone()}).collect();
194
195    msgs.iter().map(|msg| {
196        let attrs_rust: Vec<_> = msg.attributes.iter().map(|attribute| {
197            to_cpp_attribute(attribute, &msgs_names) }).collect();
198        MessageR{name: msg.name.clone(), comment: msg.comment.clone(), parent: msg.parent.clone(),
199            attributes: attrs_rust}
200    }).collect()
201}
202pub fn to_cpp_oneofs(oos: &Vec<(String, OneOfInfo)>, msgs: &Vec<Message>) -> HashMap<String, OneOfInfoR> {
203    let msgs_names: Vec<_> = msgs.iter().map(|m| {m.name.clone()}).collect();
204
205    oos.iter().map(|(msg_name, oo)| {
206        let attrs_cpp: Vec<_> = oo.attributes.iter().map(|attribute| {
207            to_cpp_attribute(attribute, &msgs_names) }).collect();
208        (oo.name.clone(), OneOfInfoR{msg_name: msg_name.clone(), name: oo.name.clone(), dyn_bits: oo.dyn_bits, attributes: attrs_cpp })
209    }).collect()
210}
211
212#[derive(Clone, Debug)]
213pub struct JinjaData {
214    pub enums: Vec<Enum>,
215    pub msgs: Vec<MessageR>,
216    pub oos: HashMap<String, OneOfInfoR>,
217}
218
219#[derive(Template, Clone, Debug)]
220#[template(path = "data_objects.rs.jinja")]
221pub struct RustDataObjects {
222    pub d: JinjaData
223}
224#[derive(Template, Clone, Debug)]
225#[template(path = "pyclasses.py.rs.jinja")]
226pub struct RustPyDataObjects {
227    pub d: JinjaData
228}
229#[derive(Template, Clone, Debug)]
230#[template(path = "pylib.py.rs.jinja")]
231pub struct RustPyLib {
232    pub d: JinjaData,
233    pub lib_name: String
234}
235#[derive(Template, Clone, Debug)]
236#[template(path = "py_type_hints.pyi.jinja")]
237pub struct PyTypeHints {
238    pub d: JinjaData
239}
240#[derive(Template, Clone, Debug)]
241#[template(path = "data_objects.cpp.jinja")]
242pub struct CppDataObjects {
243    pub d: JinjaData,
244    pub object_order: Vec<String>,
245}
246
247
248mod filters {
249    #[allow(dead_code)]
250    pub fn snake_case<T: std::fmt::Display>(s: T, _: &dyn askama::Values) -> ::askama::Result<String> {
251        Ok(stringcase::snake_case(s.to_string().as_str()))
252    }
253    #[allow(dead_code)]
254    pub fn camel_case<T: std::fmt::Display>(s: T, _: &dyn askama::Values,) -> ::askama::Result<String> {
255        Ok(stringcase::camel_case(s.to_string().as_str()))
256    }
257    #[allow(dead_code)]
258    pub fn pascal_case<T: std::fmt::Display>(s: T, _: &dyn askama::Values,) -> ::askama::Result<String> {
259        Ok(stringcase::pascal_case(s.to_string().as_str()))
260    }
261    #[allow(dead_code)]
262    pub fn to_py_type<T: std::fmt::Display>(s: T, _: &dyn askama::Values,) -> ::askama::Result<String> {
263        if ["u8", "u16", "u32", "u64", "i8", "i16", "i32", "i64"].contains(&s.to_string().as_str()) {
264            Ok("int".to_string()) }
265        else if ["f32", "f64"].contains(&s.to_string().as_str()) {
266            Ok("float".to_string())
267        }
268        else { Ok(s.to_string()) }
269    }
270}
271
272// ************************************************************************
273type Error = (String, Span);
274
275type Result<T> = std::result::Result<T, Error>;
276
277#[derive(Debug, Clone)]
278pub enum DynOrFixedType {
279    Dyn(u8),
280    Fixed(u8)
281}
282#[derive(Debug, PartialEq, Eq, Clone, Copy)]
283pub struct FixedPrecisionProperties {
284    bits: u8, min_val: i64, max_val: i64
285}
286#[derive(Debug, PartialEq, Eq, Clone, Copy)]
287pub enum SimpleType {
288    NoTypeSetYet,
289    Bool,
290    UIntFixed(u8), IntFixed(u8),
291    UIntDyn((u8,u8)), IntDyn((u8,u8)),
292    Float, Double,
293    FixedPrecision(FixedPrecisionProperties),
294    Binary(u8),
295}
296/*impl SimpleType {
297    fn int_size(min_bits: u8) -> std::result::Result<u8, String> {
298        match min_bits {
299            1..=8 => Ok(8),
300            9..=16 => Ok(16),
301            17..=32 => Ok(32),
302            33..=64 => Ok(64),
303            34..=128 => Ok(128),
304            0 => Err("Bitsize of zero for integer is not allowed".into()),
305            _ => Err("Bitsize larger than 128  for integer are not allowed".into())
306        }
307    }
308    fn get_int_bits(self) -> std::result::Result<u8, String> {
309        match self {
310            SimpleType::UIntFixed(s) => Ok(SimpleType::int_size(s)?),
311            SimpleType::IntFixed(s) => Ok(SimpleType::int_size(s)?),
312            SimpleType::UIntDyn((s,_)) => Ok(SimpleType::int_size(s)?),
313            SimpleType::IntDyn((s,_)) => Ok(SimpleType::int_size(s)?),
314            SimpleType::FixedPrecision(fps) => Ok(SimpleType::int_size(fps.bits)?),
315            SimpleType::UFixedPrecision(fps) => Ok(SimpleType::int_size(fps.bits)?),
316            _ => Err("get_int_bits(): Only integers types allowed.".into())
317        }
318    }
319    fn get_int_bits_no_error(self) -> u8 {
320        match self.get_int_bits() {
321            Ok(bits) => bits,
322            Err(e) => { println!("Error: {}", e); abort(); }
323        }
324    }
325}*/
326
327#[derive(Debug, Clone )]
328pub struct OneOfInfo {
329    name: String,
330    dyn_bits: u8,
331    attributes: Vec<Attribute>,
332}
333#[derive(Debug, Clone )]
334pub enum AttributeDetails {
335    AttributeSimple(SimpleType),
336    AttributeEnumOrMsg(String),
337    AttributeOneOf(OneOfInfo),
338}
339#[derive(Debug, Clone )]
340pub struct Attribute {
341    name: String,
342    comment: Option<String>,
343    is_repeated_and_size: Option<DynOrFixedType>,
344    is_optional: bool,
345    specific_details: AttributeDetails
346}
347// #[derive(Debug, Clone)]
348// pub enum VersionInfo {
349//     Version(u16),
350//     BaseWithAllowedVersion(u16),
351// }
352#[derive(Debug, Clone)]
353pub struct Message {
354    pub name: String,
355    // pub version_info: VersionInfo,
356    pub comment: Option<String>,
357    pub parent: Option<String>,
358    pub attributes: Vec<Attribute>,
359}
360
361/// Enum information for bitis. The ids are always DynInteger with a given bit size.
362#[derive(Debug, Clone)]
363pub struct Enum {
364    pub name: String,
365    // pub version_info: VersionInfo,
366    pub comment: Option<String>,
367    pub bit_size: u8,
368    pub values: Vec<String>,
369}
370
371pub fn get_suffix_number(lex: &mut Lexer<Token>) -> Option<u8> {
372    let slice = lex.slice();
373    let re = Regex::new(r".*_d?([0-9]+)$").unwrap();
374    let num_str = re.captures(slice)?.get(1)?;
375    num_str.as_str().parse().ok()
376}
377pub fn get_d_suffix_numbers(lex: &mut Lexer<Token>) -> Option<(u8,u8)> {
378    let slice = lex.slice();
379    let re = Regex::new(r".*_([0-9]+)d([0-9]+)$").unwrap();
380    let first_num_str = re.captures(slice)?.get(1)?.as_str().parse().ok()?;
381    let second_num_str = re.captures(slice)?.get(2)?.as_str().parse().ok()?;
382    Some((first_num_str, second_num_str))
383}
384pub fn get_fp_properties_number(lex: &mut Lexer<Token>) -> Option<FixedPrecisionProperties> {
385    let slice = lex.slice();
386    let re = Regex::new(r"fp_([0-9]+)\[ *(-?[0-9]+) *, *(-?[0-9]+) *]").unwrap();
387    let bits = re.captures(slice)?.get(1)?.as_str().parse::<u8>().ok()?;
388    let min_val = re.captures(slice)?.get(2)?.as_str().parse::<i64>().ok()?;
389    let max_val = re.captures(slice)?.get(3)?.as_str().parse::<i64>().ok()?;
390    Some(FixedPrecisionProperties {bits, min_val, max_val})
391}
392/*pub fn get_dyn_or_fixed_from_args(lex: &mut Lexer<Token>) -> Option<DynOrFixedType> {
393    let slice = lex.slice();
394    let re = Regex::new(r" *(dyn|fixed) *, *([0-9]+)").unwrap();
395    let type_str = re.captures(slice)?.get(1)?.as_str();
396    let bits = re.captures(slice)?.get(2)?.as_str().parse::<u8>().ok()?;
397    if type_str == "dyn" {
398        Some(DynOrFixedType::Dyn(bits))
399    }
400    else {
401        Some(DynOrFixedType::Fixed(bits))
402    }
403}*/
404pub fn get_enum_bit_size(lex: &mut Lexer<Token>) -> Option<u8> {
405    let slice = lex.slice();
406    let re = Regex::new(r"\( *([0-9]+) *\)").unwrap();
407    let bits = re.captures(slice)?.get(1)?.as_str().parse::<u8>().ok()?;
408    Some(bits)
409}
410pub fn get_version(lex: &mut Lexer<Token>) -> Option<u16> {
411    let slice = lex.slice();
412    let re = Regex::new(r"\[.* +(v[0-9]+) *]").unwrap();
413    let ver_str = re.captures(slice)?.get(1)?.as_str();
414    Some(ver_str.parse::<u16>().ok()?)
415}
416
417#[derive(Debug, Logos)]
418#[logos(skip r"[ \t\r\n\f]+")]
419#[logos(extras = u16)]
420#[allow(dead_code)]
421pub enum Token{
422    #[regex(r"//[^\n]*\n?", priority=40)] Comment,
423    #[regex(r"//\|[^\n]*\n?", |lex| lex.slice()[3..].to_owned(), priority=41)] SpecificComment(String),
424    #[token("msg", priority=20)] Msg,
425    #[token("enum", priority=20)] Enum,
426    #[token("oneof", priority=20)] OneOf,
427    #[token("{")] CBraceOpen,
428    #[token("}")] CBraceClose,
429    #[token("(")] BraceOpen,
430    #[token(")")] BraceClose,
431    #[token(":")] Colon,
432    #[token(";")] SemiColon,
433    #[token(",")] Comma,
434    // #[token("fixed", priority=20)] FixedFlag,
435    // #[token("dyn", priority=20)] DynFlag,
436    #[regex(r"\[ *base +use +starting +with +v[0-9]+ *\]", get_version, priority=35)] MsgBaseInfoToken(u16),
437    #[regex(r"\[ *version +v[0-9]+ *\]", get_version, priority=35)] MsgVersionToken(u16),
438    // #[regex(r"\[ *base +use +starting +with +v[0-9]+ *\]", get_version, priority=35)] MsgVersionToken((MsgVersion, u16)),
439    #[regex("[0-9]+", |lex| lex.slice().parse::<isize>().unwrap(), priority=1)] IntegerVal(isize),
440    #[regex(r"-?(?:0|[1-9]\d*)(?:\.\d+)?(?:[eE][+-]?\d+)?",
441        |lex| lex.slice().parse::<f64>().unwrap(), priority=2)] Number(f64),
442    #[token("bool", priority=30)] Bool,
443    #[token("msg_size_type", priority=30)] MsgSizeType,
444    #[regex(r"uint_[0-9]+", get_suffix_number, priority=30)] UIntFixed(u8),
445    #[regex(r"int_[0-9]+", get_suffix_number, priority=30)] IntFixed(u8),
446    #[regex(r"uint_[0-9]+d[0-9]+", get_d_suffix_numbers, priority=31)] UIntDyn((u8,u8)),
447    #[regex(r"int_[0-9]+d[0-9]+", get_d_suffix_numbers, priority=31)] IntDyn((u8,u8)),
448    #[token("float", priority=30)] Float,
449    #[token("double", priority=30)] Double,
450    #[regex(r"fp_[0-9]+\[ *-?[0-9]+ *, *-?[0-9]+ *]", get_fp_properties_number, priority=30)] FixedPoint(FixedPrecisionProperties),
451    // #[regex(r"ufp_[0-9]+\[ *-?[0-9]+ *, *-?[0-9]+ *]", get_fp_properties_number, priority=30)] UFixedPoint(FixedPrecisionProperties),
452    //#[token("str", priority=30)] String,
453    #[token("binary_d[0-9]+", get_suffix_number, priority=30)] Binary(u8),
454    #[regex(r"repeated_dyn_[0-9]+", get_suffix_number, priority=30)] RepeatedDyn(u8),
455    #[regex(r"repeated_fixed_[0-9]+", get_suffix_number, priority=30)] RepeatedFixed(u8),
456    #[token("optional", priority=30)] Optional,
457    #[regex(r"[A-Za-z][A-Za-z0-9_-]+", |lex| lex.slice().to_owned(), priority=11)] StringVal(String),
458    #[token("false", |_| false, priority=20)]
459    #[token("true", |_| true, priority=20)] BoolVal(bool),
460    #[regex(r"\( *([0-9]+) *\)", get_enum_bit_size, priority=40)] EnumDynSize(u8),
461}
462
463#[derive(Debug, Clone)]
464pub enum Value {
465    /// null.
466    Message(Message),
467    /// Enum.
468    Enum(Enum)
469}
470
471macro_rules! parse_one_token {
472    ($token_enum: path, $lexer: expr, $error_msg_or_empty: expr) => {
473        loop {
474            let rv = $lexer.next();
475            if let Some(token) = rv {
476                match token {
477                    Ok($token_enum) => {
478                        break Ok(Ok(()));
479                    },
480                    Ok(Token::Comment) => (),
481                    _ => {
482                        if let Some(err_str) = $error_msg_or_empty {
483                            break Err((format!("{err_str}\nToken: {token:?}").to_owned(), $lexer.span()));
484                        }
485                        else {
486                            break Ok(Err($lexer.span()));
487                        }
488                    }
489                }
490            }
491            else {
492                break Err((format!("Unexpected end or text {rv:?}").to_owned(), $lexer.span()));
493            }
494        }
495    }
496}
497macro_rules! parse_one_token_with_arg {
498    ($token_enum: path, $lexer: expr, $error_msg_or_empty: expr) => {
499        loop {
500            let rv = $lexer.next();
501            if let Some(token) = rv {
502                match token {
503                    Ok($token_enum(s)) => {
504                        break Ok(Ok(s));
505                    },
506                    Ok(Token::Comment) => (),
507                    _ => {
508                        if let Some(err_str) = $error_msg_or_empty {
509                            break Err((format!("{}\nFound token: {:?}.",
510                                err_str, token).to_owned(), $lexer.span()));
511                        }
512                        else {
513                            break Ok(Err($lexer.span()));
514                        }
515                    }
516                }
517            }
518            else {
519                break Err((format!("Unexpected end or text {rv:?}").to_owned(), $lexer.span()));
520            }
521        }
522    }
523}
524
525pub fn parse_root(lexer: &mut Lexer<'_, Token>) -> Result<Vec<Value>> {
526    let mut list: Vec<Value> = Vec::new();
527    let mut specific_comment: Option<String> = None;
528    loop {
529        if let Some(token) = lexer.next() {
530            let rv = match token {
531                Ok(Token::Msg) => Some(parse_msg(lexer, specific_comment.clone())),
532                Ok(Token::Enum) => Some(parse_enum(lexer, specific_comment.clone())),
533                Ok(Token::Comment) => None,
534                Ok(Token::SpecificComment(s)) => {
535                    specific_comment = Some(s); None },
536                _ => Some(Err((format!("Unexpected token {:?}", token).to_owned(), lexer.span()))),
537            };
538            match rv {
539                None => (),
540                Some(Ok(value)) => { list.push(value); specific_comment = None; },
541                Some(Err(err)) => return Err(err)
542            }
543        }
544        else { break; }
545    }
546    Ok(list)
547}
548
549pub fn parse_msg(lexer: &mut Lexer<'_, Token>, comment_for_msg: Option<String>) -> Result<Value> {
550    let mut attributes = Vec::new();
551
552    let name = match parse_one_token_with_arg!(Token::StringVal, lexer, Some("Expected msg name but received:"))? {
553        Ok(s) => s,
554        Err(s) => { return Err(("Code should not be reached".into(), s)); }
555    };
556
557    // let version_info = if(lexer.extras == 0) {
558    //     if let Some(token) = lexer.next() {
559    //         match token {
560    //             Ok(Token::MsgVersionToken(v)) => VersionInfo::Version(v),
561    //             Ok(Token::MsgBaseInfoToken(v)) => VersionInfo::BaseWithAllowedVersion(v),
562    //             Ok(_) => { return Err((format!("Unexpected token {:?} for message '{}' when expecting version info", token, name)
563    //                                    .to_owned(), lexer.span())); }
564    //             Err(_) => { return Err((format!("Error: Syntax error for message '{}'", name).to_owned(), lexer.span())); }
565    //         }
566    //     } else { return Err(("Unexpectedly did not find version information".to_owned(), lexer.span())); }
567    // }
568    // else { VersionInfo::Version(lexer.extras) };
569
570    let parent = {
571        let has_parent; let p;
572        if let Some(token) = lexer.next() {
573            match token {
574                Ok(Token::Colon) => has_parent = true,
575                Ok(Token::CBraceOpen) => has_parent = false,
576                _ => { return Err((format!("Unexpected text for msg '{name}'.").into(), lexer.span())) },
577            }
578            if has_parent {
579                match parse_one_token_with_arg!(Token::StringVal, lexer, Some("Expected msg name."))? {
580                    Ok(s) => p = Some(s),
581                    Err(s) => { return Err((format!("For msg '{name} colon found but no parent name").into(), s)); }
582                };
583                parse_one_token!(Token::CBraceOpen, lexer, Some(format!("Expected curly bracket open for msg '{name}'")))?.unwrap();
584            }
585            else {
586                p = None
587            }
588        }
589        else { return Err(("Unexpected end of file".into(), lexer.span())); }
590        p
591    };
592
593    loop {
594        if let Some(token) = lexer.next() {
595            match token {
596                Ok(Token::CBraceClose) => break,
597                Ok(Token::Comment) => (),
598                Ok(ctoken) => match parse_attribute(ctoken, lexer, name.clone(), false) {
599                    Ok(a) => { attributes.push(a); },
600                    Err(e) => { return Err(e); }
601                },
602                _ => { return Err((format!("Error: Unexpected text found for msg '{name}'.").into(), lexer.span())) },
603            };
604        }
605        else { return Err(("Unexpected end of file".into(), lexer.span())); }
606    }
607
608    Ok(Value::Message(Message{name, /*version_info,*/ comment: comment_for_msg, parent, attributes}))
609}
610
611pub fn parse_attribute(last_token: Token, lexer: &mut Lexer<'_, Token>,
612                       parent_name: String, attributes_for_oneof: bool) -> Result<Attribute> {
613    let mut is_optional = false;
614    let mut is_repeated_and_size: Option<DynOrFixedType> = None;
615    let mut attr_type = SimpleType::NoTypeSetYet;
616    let mut ctoken = last_token;
617    let mut enum_or_msg_str = None;
618    let mut oneof_infos = None;
619    let lexer_span_start = lexer.span();
620    let mut specific_comment: Option<String> = None;
621
622    loop {
623        match ctoken {
624            Token::SpecificComment(s) => {
625                specific_comment = Some(s); () },
626            Token::Optional if is_repeated_and_size.is_some() =>
627                return Err(("Error: Optional and repeated not allowed together".to_owned(), lexer.span())),
628            Token::RepeatedFixed(_) | Token::RepeatedDyn(_) if is_optional =>
629                return Err(("Error: Optional and repeated are not allowed together".to_owned(), lexer.span())),
630
631            Token::Optional | Token::RepeatedDyn(_) | Token::RepeatedFixed(_) if attributes_for_oneof =>
632                return Err(("Error: Optional and repeated are not allowed in oneof".to_owned(), lexer.span())),
633
634            Token::Optional => is_optional = true,
635            Token::RepeatedDyn(b) => is_repeated_and_size = Some(DynOrFixedType::Dyn(b)),
636            Token::RepeatedFixed(b) => is_repeated_and_size = Some(DynOrFixedType::Fixed(b)),
637            Token::Bool => { attr_type = SimpleType::Bool; break; },
638            Token::UIntFixed(s) => { attr_type = SimpleType::UIntFixed(s); break; },
639            Token::UIntDyn((m,s)) if m < s =>
640                return Err(("Error: Unsigned dyn integer bit size of integer type must be bigger than the bit size of the package".to_owned(), lexer.span())),
641            Token::UIntDyn((m,_)) if (m & 3) != 0 =>
642                return Err(("Error: Unsigned dyn integer bit size of integer type must be a multiple of 8".to_owned(), lexer.span())),
643            Token::UIntDyn((m,s)) => { attr_type = SimpleType::UIntDyn((m, s)); break; },
644            Token::IntFixed(s) => { attr_type = SimpleType::IntFixed(s); break; },
645            Token::IntDyn((m,s)) if m < s =>
646                return Err(("Error: Unsigned dyn integer bit size of integer type must be bigger than the bit size of the package".to_owned(), lexer.span())),
647            Token::IntDyn((m,_)) if (m & 3) != 0 =>
648                return Err(("Error: Unsigned dyn integer bit size of integer type must be a multiple of 8".to_owned(), lexer.span())),
649            Token::IntDyn((m,s)) => {
650                attr_type = SimpleType::IntDyn((m,s)); break;
651            },
652            //Token::String => { attr_type = SimpleType::String; break; },
653            Token::Float => { attr_type = SimpleType::Float; break; },
654            Token::Double => { attr_type = SimpleType::Double; break; },
655            Token::FixedPoint(s) => { attr_type = SimpleType::FixedPrecision(s); break; },
656            Token::Binary(b) => { attr_type = SimpleType::Binary(b); break; },
657            Token::StringVal(s) => { enum_or_msg_str = Some(s); break; }
658            Token::OneOf => {
659                oneof_infos = match parse_oneof(lexer, parent_name.clone(), specific_comment.clone(),
660                                                is_repeated_and_size.clone(), is_optional.clone()) {
661                    Ok(oo) => Some(oo),
662                    Err(s) => { return Err(s); }
663                };
664                break;
665            }
666            _ => { return Err((format!("Error: Expected attribute type or modifier (got {ctoken:?}) when parsing msg or oneof '{parent_name}'")
667                                   .to_owned(), lexer.span())); }
668        }
669        if let Some(token) = lexer.next() {
670            match token {
671                Ok(t) => ctoken = t,
672                Err(_) => { return Err((format!("Error: Unexpected text found for msg '{parent_name}'.").to_owned(), lexer.span())); }
673            }
674        } else {
675            return Err(("Unexpected end of file".to_string(), lexer.span()));
676        }
677    }
678
679    let mut name= "".to_owned();
680    if oneof_infos.is_none() {
681        name = parse_one_token_with_arg!(
682            Token::StringVal, lexer, Some(format!("Error: Expected attribute name for msg '{parent_name}' (type: {attr_type:?}/{enum_or_msg_str:?})")))?.unwrap();
683
684        parse_one_token!(Token::SemiColon, lexer, Some(format!(
685            "Error: Expected semicolon to end line of attribute '{name}' of msg or oneof '{parent_name}'")))?.unwrap();
686    }
687    let num_of_set_types_or_opts = vec![(attr_type != SimpleType::NoTypeSetYet), enum_or_msg_str.is_some(), oneof_infos.is_some()]
688        .iter().map(|&x| if x { 1_u8 } else { 0_u8 }).sum::<u8>();
689    if num_of_set_types_or_opts > 1 {
690        let mut span = lexer_span_start.clone();
691        span.end = lexer.span().end;
692        return Err(("Error: Attribute contains inconsistent optional, simple types and messages or Enums".to_string(), span));
693    }
694
695    if let Some(oo) = oneof_infos {
696        Ok(oo)
697    }
698    else if let Some(t) = enum_or_msg_str {
699        Ok(Attribute{name, comment: specific_comment, is_repeated_and_size, is_optional,
700            specific_details: AttributeDetails::AttributeEnumOrMsg(t)})
701    }
702    else {
703        Ok(Attribute{name, comment: specific_comment, is_repeated_and_size, is_optional,
704            specific_details: AttributeDetails::AttributeSimple(attr_type)})
705    }
706}
707
708pub fn parse_oneof(lexer: &mut Lexer<'_, Token>, parent_name: String, comment: Option<String>,
709                   is_repeated_and_size: Option<DynOrFixedType>, is_optional: bool) -> Result<Attribute> {
710    let oo_name = parse_one_token_with_arg!(
711            Token::StringVal, lexer, Some(format!("Error: Expected name for oneof in parent '{parent_name}'")))?.unwrap();
712
713    let bit_size = match parse_one_token_with_arg!(Token::EnumDynSize, lexer, Some("Expected oneof properties for dyn size, e.g. (4)."))? {
714        Ok(s) => s, Err(s) => { return Err(("Code should not be reached".into(), s)); }
715    };
716
717    parse_one_token!(Token::CBraceOpen, lexer, Some("Error: Expected open curly bracket to enclose oneof elements"))?.unwrap();
718
719    let mut oo_attribs = Vec::new();
720    loop {
721        if let Some(token) = lexer.next() {
722            match token {
723                Ok(Token::CBraceClose) => break,
724                Ok(last_token) => {
725                    match parse_attribute(last_token, lexer, oo_name.clone(), true) {
726                        Ok(o) => oo_attribs.push(o),
727                        Err(s) => return Err(s),
728                    }
729                }
730                Err(_) => { return Err((format!("Error: Unexpected text when decoding oneof ({token:?})").to_owned(), lexer.span())); },
731            }
732        }
733    }
734    Ok(Attribute{name: oo_name.clone(), comment, is_repeated_and_size, is_optional,
735        specific_details: AttributeDetails::AttributeOneOf(OneOfInfo{
736            name: format!("OO_{}_{}", parent_name.to_pascal_case(), oo_name.to_pascal_case()),
737            dyn_bits: bit_size, attributes: oo_attribs})})
738}
739
740pub fn parse_enum(lexer: &mut Lexer<'_, Token>, comment: Option<String>) -> Result<Value> {
741    let name = match parse_one_token_with_arg!(Token::StringVal, lexer, Some("Expected msg name but received."))? {
742        Ok(s) => s, Err(s) => { return Err(("Code should not be reached".into(), s)); }
743    };
744
745    let bit_size = match parse_one_token_with_arg!(Token::EnumDynSize, lexer, Some("Expected enum properties for dyn size, e.g. (4)."))? {
746        Ok(s) => s, Err(s) => { return Err(("Code should not be reached".into(), s)); }
747    };
748
749    // let version_info = if(lexer.extras == 0) {
750    //     if let Some(token) = lexer.next() {
751    //         match token {
752    //             Ok(Token::MsgVersionToken(v)) => VersionInfo::Version(v),
753    //             Ok(Token::MsgBaseInfoToken(v)) => VersionInfo::BaseWithAllowedVersion(v),
754    //             Ok(_) => { return Err((format!("Unexpected token {:?} for enum '{}' when expecting version info", token, name)
755    //                                        .to_owned(), lexer.span())); }
756    //             Err(_) => { return Err((format!("Error: Syntax error for enum '{}'", name).to_owned(), lexer.span())); }
757    //         }
758    //     } else { return Err(("Unexpectedly did not find version information".to_owned(), lexer.span())); }
759    // }
760    // else { VersionInfo::Version(lexer.extras) };
761
762    parse_one_token!(Token::CBraceOpen, lexer, Some(format!("Expected open curly bracket for enum '{name}'")))?.unwrap();
763
764    let mut values = Vec::new();
765    loop {
766        if let Some(token) = lexer.next() {
767            match token {
768                Ok(Token::CBraceClose) => break,
769                Ok(Token::StringVal(s)) => values.push(s),
770                Ok(Token::Comma) | Ok(Token::Comment)=> (),
771                _ => { return Err((format!("Error: Unexpected text found for enum '{name}'.").into(), lexer.span())) },
772            }
773        } else { return Err(("Unexpected end of file".into(), lexer.span())); }
774    }
775
776    Ok(Value::Enum(Enum{name, /*version_info,*/ comment, bit_size, values}))
777}
778
779
780/*pub fn validate_bitis(parsed_bitis: &Vec<Value>) -> Option<String> {
781    let enum_types = parsed_bitis.iter().filter_map(|x|
782        match x { Value::Enum(ev) => Some(ev.name.clone()), _ => None }).collect::<Vec<String>>();
783    let msg_types = parsed_bitis.iter().filter_map(|x|
784        match x { Value::Message(msg) => Some(msg.name.clone()), _ => None }).collect::<Vec<String>>();
785
786    // ***
787    if let Some (err_str) = parsed_bitis.iter().find_map(|s| match s {
788        Value::Message(msg) => {
789            msg.attributes.iter().find_map(|a| match a.specific_details.clone() {
790                AttributeDetails::AttributeEnumOrMsg(eon) => {
791                    if !enum_types.contains(&eon) && !msg_types.contains(&eon) {
792                        Some(format!("Type or enum '{eon}' unknown"))
793                    }
794                    else { None }
795                },
796                _ => None
797            })
798        },
799        _ => None,
800    }) { return Some(err_str); };
801
802    // *** check msg versions
803    let msgs_with_version: Vec<_> = parsed_bitis.iter().filter_map(|s| match s {
804        Value::Message(msg) => {
805            Some(match msg.version {
806                MsgVersion::Fixed => format!("{}_fixed", msg.name),
807                // MsgVersion::VersionedMsg => format!("{}_versioned", msg.name),
808                // MsgVersion::Base => format!("{}_base", msg.name),
809                MsgVersion::Versioned(v) => format!("{}_v{}", msg.name, v)
810            })
811        },
812        _ => None,
813    }).collect();
814    match (1..msgs_with_version.len()).into_iter().find_map(|i| {
815        let s = &msgs_with_version[i - 1];
816        if msgs_with_version[i..].contains(s) { Some(s.clone()) } else { None }
817    })
818    {
819        Some(msg) => return Some(format!("Conflicting versions of {}.", msg)),
820        None => ()
821    };
822
823    let fixed_msgs: Vec<_> = parsed_bitis.iter().filter_map(|s| match s {
824        Value::Message(msg) => {
825            match msg.version.clone() {
826                MsgVersion::Fixed => Some(msg.name.clone()), _ => None }
827        }, _ => None,
828    }).collect();
829    if let Some (err_str) = parsed_bitis.iter().find_map(|s| match s {
830        Value::Message(msg) => {
831            match msg.version.clone() {
832                MsgVersion::Fixed => None,
833                _ => {
834                    if fixed_msgs.contains(&msg.name) {
835                        Some(format!("Multiple conflicting versions of {} (fixed and version).", msg.name))
836                    }
837                    else { None }
838                }
839            }
840        }, _ => None,
841    }) { return Some(err_str); };
842
843    // ***
844    // Check that only attributes were added
845    // parsed_bitis.iter().for_each(|s| match s {
846    //     Value::Message(msg) => {
847    //
848    //     },
849    //     Value::Enum(eon) => {
850    //
851    //     }
852    // })
853
854    None
855}
856*/
857// Struct that collects all bitis information
858#[derive(Debug, Clone)]
859pub struct Dependencies {
860    pub in_deps: Vec<String>,
861    pub out_deps: Vec<String>,
862}
863#[derive(Debug, Clone)]
864pub struct BitisProcessed {
865    pub max_version_number: u16,
866    pub msgs: Vec<Message>,
867    pub enums: Vec<Enum>,
868    pub oo_enums: Vec<(String, OneOfInfo)>,
869}
870
871/// This function prepares message and enums for rendering
872pub fn process_and_validate_bitis(parsed_bitis: &Vec<Value>) -> BitisProcessed {
873    /*let (processed_msgs, max_msg_version_number) = {
874        let msgs: Vec<_> = parsed_bitis.iter().filter_map(|v| {
875            match v { Value::Message(msg) => Some(msg.clone()), _ => None }
876        }).collect();
877
878        let max_version_number: u16 = msgs.iter().fold(0_u16, |cur_max, v| {
879            std::cmp::max(cur_max, match v.version_info.clone()
880            { VersionInfo::BaseWithAllowedVersion(_) => 0, VersionInfo::Version(v) => v })
881        });
882        println!("Max version number for msgs found: {}", max_version_number);
883
884        // ***
885        // sort msgs per versions
886        let msgs_per_version: HashMap<u16, HashMap<String, Message>> = (0..=max_version_number).map(|cver| {
887            let msgs: HashMap<String, Message> = msgs.iter().filter_map(|cmsg| {
888                match &cmsg.version_info {
889                    VersionInfo::BaseWithAllowedVersion(_) if cver==0  => Some(cmsg.clone()),
890                    VersionInfo::Version(msg_ver) => {
891                        if *msg_ver == 0 {
892                            println!("Error: Message '{}' has version zero which is not allowed", cmsg.name);
893                            abort();
894                        } else if *msg_ver == cver { Some(cmsg.clone()) }
895                        else { None }
896                    }, _ => None
897                } }
898            ).map(|msg| { (msg.name.clone(), msg) }).collect();
899            (cver, msgs)
900        }).collect();
901
902        // todo check that messages as attributes are used with the correct version
903
904        // todo check that messages have the same allowed_to_be_used_starting_with_version for all versions
905
906        // todo check that attributes for different versions are unique
907
908        // ***
909        let msg_names_and_ver_type: HashMap<_, _> = msgs.iter().map(|v| {
910            (v.name.clone(), v.version_info.clone()) }).collect();
911
912        let msg_version_to_use_per_version: HashMap<String, HashMap<u16, u16>> = {
913            let mut temp_msg_last_version: HashMap<String, u16> =
914                msgs.iter().enumerate().map(|(x1, x2)| { (x2.name.clone(), x1.clone() as u16) }).collect();
915
916            msgs.iter().map(|v| {
917                (1..=max_version_number).map(|cver| {
918
919                }
920            }
921        }
922
923
924        // let msg_base_with_version: Vec<_> = msgs.iter().filter_map(|msg| {
925        // });
926
927        let msgs_processed: Vec<Vec<Message>> = msgs_per_version.iter()
928            .map(|(&cver, cver_msgs) | {
929                let mut msgs_for_version: HashMap<String, Message> = HashMap::new();
930
931                println!("Processing V{} msgs: {:?}", cver, cver_msgs);
932                if cver == 0 {
933                    msg_names_and_ver_type.iter().for_each(|(mi_name, _)| {
934                        if !cver_msgs.contains_key(mi_name) {
935                            println!("Error: Message '{}' not found in base version. All messages must be declared in base.", mi_name);
936                            abort();
937                        }
938                    });
939                }
940                else {
941                    // add missing msg definitions for each version
942                    let new_msgs: HashMap<_, _> = msg_names_and_ver_type.iter().filter_map(|(mi_name, ver_type)| {
943                        // do it only for versioned msgs
944                        if let VersionInfo::BaseWithAllowedVersion(_) = ver_type { None } else {
945                            // check if
946                            if !cver_msgs.contains_key(mi_name) {
947                                println!("Generating empty version msg '{mi_name}'");
948
949                                let base_ver_msg = msgs_per_version.get(&0).unwrap().get(mi_name).unwrap();
950
951                                let name = format!("{}_DataV{}", mi_name, cver);
952                                Some((name.clone(), Message { name, attributes: vec![], comment: Some("Automatically generated empty msg".to_string()),
953                                    ..base_ver_msg.clone() }))
954                            } else { None }
955                        }
956                    }).collect();
957                    msgs_for_version.extend(new_msgs);
958                }
959
960                cver_msgs.iter().for_each(|(_, cmsg)| {
961                    if let VersionInfo::Version(msg_ver) = &cmsg.version_info {
962                        match cver {
963                            cver_iter if cver_iter >= *msg_ver => {
964                                let cname = format!("{}_DataV{}", cmsg.name, cver_iter);
965                                msgs_for_version.insert(cname.clone(), Message { name: cname, ..cmsg.clone() });
966                            },
967                            _ => ()
968                        };
969                    }
970                    else {
971                        let processed_attributes: Vec<_> = cmsg.attributes.iter().map(|attr| {
972                            match &attr.specific_details {
973                                AttributeDetails::AttributeSimple(_) => attr.clone(),
974                                AttributeDetails::AttributeEnumOrMsg(at) => {
975                                    Attribute{specific_details: AttributeEnumOrMsg(format!("{}_V{}", at, cver)), ..attr.clone()}
976                                }
977                                AttributeDetails::AttributeOneOf(_) => {
978                                    Attribute{name: format!("{}_TODO", attr.name), ..attr.clone()}
979                                }
980                            }
981                        }).collect();
982                        let cname = format!("{}_BaseV{}", cmsg.name, cver);
983                        msgs_for_version.insert(cname.clone(), Message { name: cname, attributes: processed_attributes, ..cmsg.clone() });
984                    }
985                });
986                msgs_for_version.values().cloned().collect::<Vec<Message>>()
987            }).collect();
988
989        let mut msg_processed_concat: Vec<_> = msgs_processed.concat();
990        msg_processed_concat.sort_by_key(|msg| { msg.name.to_lowercase() });
991
992
993        (msg_processed_concat, max_version_number)
994    };*/
995
996    //
997    let msgs: Vec<_> = parsed_bitis.iter().filter_map(|v| {
998        match v { Value::Message(msg) => Some(msg.clone()), _ => None }
999    }).collect();
1000    let enums: Vec<_> = parsed_bitis.iter().filter_map(|v| {
1001        match v { Value::Enum(enm) => Some(enm.clone()), _ => None }
1002    }).collect();
1003
1004    fn get_oneofs(msg_name: String, attrs: &Vec<Attribute>) -> Option<Vec<(String, OneOfInfo)>> {
1005        let direct_oos = attrs.iter().filter_map(|attr| {
1006            match &attr.specific_details {
1007                AttributeDetails::AttributeOneOf(oo) => Some(vec![(msg_name.clone(), oo.clone())]),
1008                _ => None
1009            }
1010        }).collect::<Vec<Vec<(String, OneOfInfo)>>>().concat();
1011
1012        let inner_oos = direct_oos.iter().filter_map(|(_, doo)| {
1013            get_oneofs(msg_name.clone(), &doo.attributes)
1014        }).collect::<Vec<Vec<_>>>().concat();
1015
1016        let all_oos = vec![direct_oos, inner_oos].concat();
1017        if all_oos.len() == 0 { None }
1018        else { Some(all_oos) }
1019    }
1020    let oo_enums: Vec<_> = msgs.iter().filter_map(|msg| {
1021        get_oneofs(msg.name.clone(), &msg.attributes)
1022    }).collect::<Vec<_>>().concat();
1023
1024    // println!("\noo_enums:\n{:?}\n", oo_enums);
1025
1026    { // Test msgs and enum
1027        let msg_names = msgs.iter().map(|msg| &msg.name).collect::<Vec<_>>();
1028        msg_names.iter().for_each(|name| {
1029            // println!("name: {}", name);
1030            if msg_names.iter().filter(|cname| **cname == *name).count() > 1 {
1031                println!("Error: Multiple instances of msg '{}' found.", name);
1032                abort()
1033            }
1034        });
1035        let enum_names = enums.iter().map(|enm| &enm.name).collect::<Vec<_>>();
1036        enum_names.iter().for_each(|name| {
1037            if enum_names.iter().filter(|cname| **cname == *name).count() > 1 {
1038                println!("Error: Multiple instances of enum '{}' found.", name); abort()
1039            }
1040        });
1041
1042        // check that all attributes are defined
1043        //...
1044    }
1045
1046
1047    BitisProcessed { max_version_number: 0, msgs, enums, oo_enums}
1048}
1049
1050pub fn dependencies_process(jd: JinjaData) -> Vec<String>{
1051    let mut dependencies = HashMap::new();
1052
1053    for msgs in jd.msgs.clone() {
1054        dependencies.insert(
1055            msgs.name.clone(), Dependencies{in_deps: vec![], out_deps: vec![]});
1056    }
1057    for enm in jd.enums {
1058        dependencies.insert(
1059            enm.name.clone(), Dependencies{in_deps: vec![], out_deps: vec![]});
1060    }
1061    for (_, oos) in jd.oos.clone() {
1062        dependencies.insert(
1063            oos.name.clone(), Dependencies{in_deps: vec![], out_deps: vec![]});
1064    }
1065
1066    // msgs
1067    for msgs in jd.msgs {
1068        for attr in msgs.attributes {
1069            if attr.is_enum || attr.is_msg || attr.is_oo {
1070                dependencies.get_mut(&attr.rust_type_str).unwrap().out_deps.push(msgs.name.clone());
1071                dependencies.get_mut(&msgs.name).unwrap().in_deps.push(attr.rust_type_str.clone());
1072            }
1073        }
1074    }
1075    for (_, msgs) in jd.oos {
1076        for attr in msgs.attributes {
1077            if attr.is_enum || attr.is_msg || attr.is_oo {
1078                dependencies.get_mut(&attr.rust_type_str).unwrap().out_deps.push(msgs.name.clone());
1079                dependencies.get_mut(&msgs.name).unwrap().in_deps.push(attr.rust_type_str.clone());
1080            }
1081        }
1082    }
1083    println!("{:#?}", dependencies.clone());
1084
1085    let mut object_order = Vec::new();
1086    while dependencies.len() > 0 {
1087        let mut cobjs: Vec<_> = dependencies.clone().iter().filter_map(|(obj_name, deps)| {
1088            if deps.in_deps.len() == 0 { Some(obj_name.clone()) }
1089            else { None }
1090        }).collect();
1091
1092        for co in cobjs.clone() {
1093            dependencies.remove(&co);
1094        }
1095        for co in cobjs.clone() {
1096            for (_, deps) in &mut dependencies {
1097                deps.in_deps.retain(|x| *x != co);
1098            }
1099        }
1100        object_order.append(&mut cobjs);
1101    }
1102    println!("{:?}", object_order);
1103
1104    object_order
1105}
1106// ***************************************************
1107
1108#[cfg(test)]
1109mod bitis_semantic {
1110    use rstest::rstest;
1111    use super::*;
1112
1113    #[rstest]
1114    fn msg_empty_msg() {
1115        let test_empty_msg = "msg Lala { }";
1116
1117        let mut lexer = Token::lexer(test_empty_msg);
1118        lexer.extras = 0;
1119
1120        let parsed_bitis = parse_root(&mut lexer);
1121        if let Err(s) = parsed_bitis.clone() {
1122            panic!("Error: {} ('{}' ,span: {:?})", s.0, &test_empty_msg[s.1.clone()], s.1);
1123        }
1124        assert_eq!(parsed_bitis.is_ok(), true);
1125
1126        let parsed_bitis = parsed_bitis.unwrap();
1127        assert_eq!(parsed_bitis.len(), 1);
1128
1129        assert!(if let Value::Message(_) = parsed_bitis[0].clone() { true } else { false });
1130
1131        if let Value::Message(msg) = parsed_bitis[0].clone() {
1132            assert_eq!(msg.name, "Lala".to_string());
1133        }
1134
1135        // let validate_result = validate_bitis(&parsed_bitis);
1136        // println!("validate_result: {:?}", validate_result);
1137
1138        let process_result = process_and_validate_bitis(&parsed_bitis);
1139        println!("process_result {:?}", process_result);
1140
1141        assert_eq!(process_result.msgs.len(), 1);
1142        assert_eq!(process_result.enums.len(), 0);
1143    }
1144
1145    #[rstest]
1146    fn msg_simple_msg() {
1147        let test_empty_msg = "msg Lala { uint_7 a1; }";
1148
1149        let mut lexer = Token::lexer(test_empty_msg);
1150        lexer.extras = 0;
1151
1152        let parsed_bitis = parse_root(&mut lexer);
1153        if let Err(s) = parsed_bitis.clone() {
1154            panic!("Error: {} ('{}' ,span: {:?})", s.0, &test_empty_msg[s.1.clone()], s.1);
1155        }
1156        assert_eq!(parsed_bitis.is_ok(), true);
1157
1158        let parsed_bitis = parsed_bitis.unwrap();
1159        assert_eq!(parsed_bitis.len(), 1);
1160
1161        if let Value::Message(msg) = parsed_bitis[0].clone() {
1162            assert_eq!(msg.attributes.len(), 1);
1163            assert_eq!(msg.attributes[0].name, "a1".to_string());
1164            if let AttributeDetails::AttributeSimple(s) = msg.attributes[0].specific_details.clone() {
1165                assert_eq!(s, SimpleType::UIntFixed(7));
1166            }
1167            else { assert!(false, "Attribute type must be AttributeSimple."); }
1168        }
1169        else { assert!(false, "Value must be a message."); }
1170    }
1171
1172    #[rstest]
1173    fn msg_simple_enum() {
1174        let test_empty_msg = "enum Lala(4) { one, two }";
1175
1176        let mut lexer = Token::lexer(test_empty_msg);
1177        lexer.extras = 0;
1178
1179        let parsed_bitis = parse_root(&mut lexer);
1180        if let Err(s) = parsed_bitis.clone() {
1181            panic!("Error: {} ('{}' ,span: {:?})", s.0, &test_empty_msg[s.1.clone()], s.1);
1182        }
1183        assert_eq!(parsed_bitis.is_ok(), true);
1184
1185        let parsed_bitis = parsed_bitis.unwrap();
1186        assert_eq!(parsed_bitis.len(), 1);
1187
1188        if let Value::Enum(enm) = parsed_bitis[0].clone() {
1189            assert_eq!(enm.values.len(), 2);
1190            assert_eq!(enm.values[0], "one".to_string());
1191            assert_eq!(enm.values[1], "two".to_string());
1192        }
1193        else { assert!(false, "Value must be a message."); }
1194    }
1195
1196
1197    /*#[rstest]
1198        #[case::float("float", SimpleType::Float)]
1199        #[case::uint_12("uint_12", SimpleType::UIntFixed(12))]
1200        #[case::uint_32d4("uint_32d4", SimpleType::UIntDyn((32,4)))]
1201        #[case::bool("bool", SimpleType::Bool)]
1202        fn msg_various_attribute_types(#[case] attr_type_str: String, #[case] attr_type: SimpleType) {
1203            let test_msg = format!("msg Lala [fixed] {{ {attr_type_str} attr; }}");
1204
1205            let mut lexer = Token::lexer(test_msg.as_str());
1206            lexer.extras = 0;
1207
1208            let parsed_bitis = parse_root(&mut lexer);
1209            assert_eq!(parsed_bitis.is_ok(), true);
1210
1211            let parsed_bitis = parsed_bitis.unwrap();
1212            assert_eq!(parsed_bitis.len(), 1);
1213
1214            assert!(if let Value::Message(_) = parsed_bitis[0].clone() { true } else { false });
1215
1216            if let Value::Message(msg) = parsed_bitis[0].clone() {
1217                assert_eq!(msg.name, "Lala".to_string());
1218
1219                assert_eq!(msg.attributes.len(), 1);
1220                assert_eq!(msg.attributes[0].name, "attr".to_string());
1221
1222                assert!(if let AttributeDetails::AttributeSimple(_) = msg.attributes[0].specific_details.clone() { true } else { false });
1223
1224                if let AttributeDetails::AttributeSimple(at) = msg.attributes[0].specific_details.clone() {
1225                    assert_eq!(at, attr_type);
1226                }
1227            }
1228
1229            let validate_result = validate_bitis(&parsed_bitis);
1230            println!("validate_result: {:?}", validate_result);
1231            assert!(validate_result.is_none());
1232        }*/
1233}
1234
1235#[cfg(test)]
1236mod bitis_generate_rust {
1237    use rstest::rstest;
1238    use super::*;
1239
1240    const HEADER: &str = "use bitis_lib::*;\n\n";
1241    const ENUMS_HEADER: &str = "// Enums\n";
1242    const OO_HEADER: &str = "// Enums for oneof\n";
1243    const MSG_HEADER: &str = "// Messages\n";
1244    const PER_ENUM_HEADER: &str = "#[derive(BiserdiEnum, Debug, Clone, PartialEq)]\n#[biserdi_enum_id_dynbits(3)]\n#[allow(nonstandard_style)]\n";
1245    const PER_OO_HEADER: &str = "#[derive(BiserdiOneOf, Debug, Clone, PartialEq)]\n#[biserdi_enum_id_dynbits(3)]\n#[allow(nonstandard_style)]\n";
1246    const PER_MSG_HEADER: &str = "#[derive(BiserdiMsg, Debug, Clone, PartialEq)]\n#[allow(nonstandard_style)]\n";
1247
1248    #[rstest]
1249    fn msg_empty_msg() {
1250        let test_empty_msg = "msg Lala { }";
1251
1252        let mut lexer = Token::lexer(test_empty_msg);
1253        lexer.extras = 0;
1254
1255        let parsed_bitis = parse_root(&mut lexer);
1256        if let Err(s) = parsed_bitis.clone() {
1257            panic!("Error: {} ('{}' ,span: {:?})", s.0, &test_empty_msg[s.1.clone()], s.1);
1258        }
1259        assert_eq!(parsed_bitis.is_ok(), true);
1260
1261        let parsed_bitis = parsed_bitis.unwrap();
1262        assert_eq!(parsed_bitis.len(), 1);
1263
1264        let processed_bitis = process_and_validate_bitis(&parsed_bitis);
1265        let rdo = RustDataObjects{ d: JinjaData{
1266            enums: processed_bitis.enums,
1267            msgs: to_rust_messages(&processed_bitis.msgs),
1268            oos: to_rust_oneofs(&processed_bitis.oo_enums, &processed_bitis.msgs) } };
1269
1270        let rendered = rdo.render().unwrap();
1271        let lala_empty = "pub struct Lala {\n}\n";
1272        assert_eq!(rendered, (HEADER.to_owned() + ENUMS_HEADER + "\n\n" + OO_HEADER + "\n\n"  +
1273            MSG_HEADER + PER_MSG_HEADER +lala_empty).to_string());
1274    }
1275
1276    #[rstest]
1277    fn msg_simple_msg() {
1278        let test_empty_msg = "//| comment for Lala\nmsg Lala { int_5 a1; repeated_fixed_4 bool bool_array; }";
1279        println!("Input code:\n{}", test_empty_msg);
1280
1281        let mut lexer = Token::lexer(test_empty_msg);
1282        lexer.extras = 0;
1283
1284        let parsed_bitis = parse_root(&mut lexer);
1285        if let Err(s) = parsed_bitis.clone() {
1286            panic!("Error: {} ('{}' ,span: {:?})", s.0, &test_empty_msg[s.1.clone()], s.1);
1287        }
1288        assert_eq!(parsed_bitis.is_ok(), true);
1289
1290        let parsed_bitis = parsed_bitis.unwrap();
1291        assert_eq!(parsed_bitis.len(), 1);
1292
1293        let processed_bitis = process_and_validate_bitis(&parsed_bitis);
1294        let rdo = RustDataObjects{ d: JinjaData{
1295            enums: processed_bitis.enums, msgs: to_rust_messages(&processed_bitis.msgs),
1296            oos: to_rust_oneofs(&processed_bitis.oo_enums, &processed_bitis.msgs) } };
1297
1298        let rendered = rdo.render().unwrap();
1299        let lala_commment = "/// comment for Lala\n";
1300        let lala_empty = "pub struct Lala {\n  pub a1: VarWithGivenBitSize<i8, 5>,\n  pub bool_array: FixedArray<bool,4>,\n}\n";
1301        println!("rendered:\n{}",rendered);
1302        assert_eq!(rendered, (HEADER.to_owned() + ENUMS_HEADER + "\n\n" + OO_HEADER + "\n\n" +
1303            MSG_HEADER + lala_commment + PER_MSG_HEADER +lala_empty).to_string());
1304    }
1305
1306    #[rstest]
1307    fn msg_simple_enum() {
1308        let test_enum_msg = "//| comment for Numbers\nenum Numbers(3) {\n  // Comment for One\n  One,\n  Two,\n  Three\n}";
1309        println!("Input code:\n{}", test_enum_msg);
1310
1311        let mut lexer = Token::lexer(test_enum_msg);
1312        lexer.extras = 0;
1313
1314        let parsed_bitis = parse_root(&mut lexer);
1315        if let Err(s) = parsed_bitis.clone() {
1316            panic!("Error: {} ('{}' ,span: {:?})", s.0, &test_enum_msg[s.1.clone()], s.1);
1317        }
1318        assert_eq!(parsed_bitis.is_ok(), true);
1319
1320        let parsed_bitis = parsed_bitis.unwrap();
1321        assert_eq!(parsed_bitis.len(), 1);
1322
1323        let processed_bitis = process_and_validate_bitis(&parsed_bitis);
1324        let rdo = RustDataObjects{ d: JinjaData{ enums: processed_bitis.enums,
1325            msgs: to_rust_messages(&processed_bitis.msgs),
1326            oos: to_rust_oneofs(&processed_bitis.oo_enums, &processed_bitis.msgs) } };
1327
1328        let rendered = rdo.render().unwrap();
1329        let lala_commment = "/// comment for Numbers\n";
1330        let lala_enum = "pub enum Numbers {\n  One,\n  Two,\n  Three,\n}\n\n";
1331        println!("*rendered:\n{}",rendered);
1332        assert_eq!(rendered, (HEADER.to_owned() + ENUMS_HEADER + lala_commment + PER_ENUM_HEADER + lala_enum + OO_HEADER +
1333            "\n\n" + MSG_HEADER ).to_string());
1334    }
1335
1336    #[rstest]
1337    fn msg_simple_oneof() {
1338        let test_enum_msg = "//| comment for Oneof\nmsg TestOO {\n  oneof oo_li(3) { uint_3 test1; float test2; }\n  bool b1;\n}";
1339        println!("Input code:\n{}", test_enum_msg);
1340
1341        let mut lexer = Token::lexer(test_enum_msg);
1342        lexer.extras = 0;
1343
1344        let parsed_bitis = parse_root(&mut lexer);
1345        if let Err(s) = parsed_bitis.clone() {
1346            panic!("Error: {} ('{}' ,span: {:?})", s.0, &test_enum_msg[s.1.clone()], s.1);
1347        }
1348        assert_eq!(parsed_bitis.is_ok(), true);
1349
1350        let parsed_bitis = parsed_bitis.unwrap();
1351        assert_eq!(parsed_bitis.len(), 1);
1352
1353        let processed_bitis = process_and_validate_bitis(&parsed_bitis);
1354        let rdo = RustDataObjects{ d: JinjaData{ enums: processed_bitis.enums,
1355            msgs: to_rust_messages(&processed_bitis.msgs),
1356            oos: to_rust_oneofs(&processed_bitis.oo_enums, &processed_bitis.msgs) } };
1357
1358        let rendered = rdo.render().unwrap();
1359        let testoo_commment = "/// comment for Oneof\n";
1360        let testoo_enum = "pub enum OO_TestOo_OoLi {\n  Test1(VarWithGivenBitSize<u8, 3>),\n  Test2(f32),\n}\n\n";
1361        let testoo_msg = "pub struct TestOo {\n  pub oo_li: OO_TestOo_OoLi,\n  pub b1: bool,\n}\n";
1362        println!("*rendered:\n{}",rendered);
1363        assert_eq!(rendered, (HEADER.to_owned() + ENUMS_HEADER + "\n\n" + OO_HEADER + PER_OO_HEADER
1364            + testoo_enum + MSG_HEADER + testoo_commment + PER_MSG_HEADER + testoo_msg).to_string());
1365    }
1366}
1367
1368#[cfg(test)]
1369mod bitis_compile {
1370    use std::fs;
1371    use std::path::Path;
1372    use rstest::rstest;
1373    use super::*;
1374
1375    fn compile(content: &str) -> BitisProcessed {
1376        let mut lexer = Token::lexer(content);
1377        lexer.extras = 0;
1378        println!("*** content:\n{}", content);
1379        let bitis_parsed = match parse_root(&mut lexer) {
1380            Ok(v) => v,
1381            Err(e) => {
1382                let (err_str, err_span) = e.clone();
1383                let content_err = &content[err_span];
1384                println!("Error: {}\n  -> Source: '{}'", err_str, content_err);
1385                abort()
1386            }
1387        };
1388        println!("** content:\n{:?}", bitis_parsed);
1389        process_and_validate_bitis(&bitis_parsed)
1390    }
1391    fn render(d: JinjaData) {
1392        let rdo = RustDataObjects{ d: d.clone() };
1393        let rendered_rust = rdo.render().unwrap();
1394        println!("*** rendered DO:\n{}", rendered_rust);
1395        fs::write(Path::new("./test_data/test_py/bitis/src/messages_test.rs"), rendered_rust).expect("Unable to write file");
1396
1397        let rdo = RustPyDataObjects{ d: d.clone() };
1398        let rendered_rust = rdo.render().unwrap();
1399        println!("*** rendered PyDO:\n{}", rendered_rust);
1400        fs::write(Path::new("./test_data/test_py/bitis/src/pyrust_test.rs"), rendered_rust).expect("Unable to write file");
1401
1402        let rdo = RustPyLib{ d: d.clone(), lib_name: "bitis_msgs".into() };
1403        let rendered_rust = rdo.render().unwrap();
1404        println!("*** rendered pyLib:\n{}", rendered_rust);
1405        fs::write(Path::new("./test_data/test_py/bitis/src/lib_test.rs"), rendered_rust).expect("Unable to write file");
1406
1407        let rdo = PyTypeHints{ d };
1408        let rendered_rust = rdo.render().unwrap();
1409        println!("*** rendered py_type_hints:\n{}", rendered_rust);
1410        fs::write(Path::new("./test_data/test_py/bitis/bitis_msgs/bitis_msgs.pyi"), rendered_rust).expect("Unable to write file");
1411    }
1412
1413    #[rstest]
1414    #[ignore]
1415    fn simple_rust_py() {
1416        let bitis_str = "msg ParamTestSimple { uint_4 param_1; bool param_2; }";
1417
1418        let bitis_processed_org = compile(bitis_str);
1419
1420        let bitis_processed = bitis_processed_org.clone();
1421        let d = JinjaData{
1422            enums: bitis_processed.enums,
1423            msgs: to_rust_messages(&bitis_processed.msgs),
1424            oos: to_rust_oneofs(&bitis_processed.oo_enums, &bitis_processed.msgs)
1425        };
1426        render(d);
1427    }
1428
1429    #[rstest]
1430    #[ignore]
1431    fn nested_rust_py() {
1432        let bitis_str = "msg Inner { uint_2 val; }\nmsg ParamTestWithInner { uint_4 param_1; bool param_2; Inner inner; }";
1433
1434        let bitis_processed_org = compile(bitis_str);
1435
1436        let bitis_processed = bitis_processed_org.clone();
1437
1438        let d = JinjaData{
1439            enums: bitis_processed.enums,
1440            msgs: to_rust_messages(&bitis_processed.msgs),
1441            oos: to_rust_oneofs(&bitis_processed.oo_enums, &bitis_processed.msgs)
1442        };
1443        render(d);
1444    }
1445    #[test]
1446    #[ignore]
1447    fn nested_and_enum_rust_py() {
1448        let bitis_str = [
1449            "enum Numbers(4) { one, two, three, four }\n/// Test comment for Inner\nmsg Inner { uint_3 val; Numbers num; }\n",
1450            "msg ParamTestWithInner { uint_4 param_1; bool param_2; Inner inner; } }"
1451        ].join("");
1452
1453        let bitis_processed_org = compile(bitis_str.as_str());
1454
1455        let bitis_processed = bitis_processed_org.clone();
1456
1457        let d = JinjaData{
1458            enums: bitis_processed.enums,
1459            msgs: to_rust_messages(&bitis_processed.msgs),
1460            oos: to_rust_oneofs(&bitis_processed.oo_enums, &bitis_processed.msgs)
1461        };
1462        render(d);
1463    }
1464    #[test]
1465    fn oneof_nested_and_enum_rust_py() {
1466        let bitis_str = [
1467            "//| Test comment for Enum\nenum Numbers(4) { one, two, three, four }\n\n//| Test comment for Inner\nmsg Inner { uint_3 val; Numbers num; }\n",
1468            "msg ParamTestWithInner { uint_4 param_1; bool param_2; oneof action(4) { Inner inner; uint_3 val; } }"
1469        ].join("");
1470
1471        let bitis_processed_org = compile(bitis_str.as_str());
1472
1473        let bitis_processed = bitis_processed_org.clone();
1474
1475        let d = JinjaData{
1476            enums: bitis_processed.enums,
1477            msgs: to_rust_messages(&bitis_processed.msgs),
1478            oos: to_rust_oneofs(&bitis_processed.oo_enums, &bitis_processed.msgs)
1479        };
1480        render(d);
1481    }
1482}
1483
1484#[cfg(test)]
1485mod bitis_serialization {
1486    // use std::fs;
1487    use rstest::rstest;
1488    use super::*;
1489
1490    //noinspection DuplicatedCode
1491    #[rstest]
1492    fn msg_simple_msg_compile() {
1493        let test_empty_msg = "msg Lala { repeated_fixed_10 bool data_bool; uint_4 data1_uint; uint_12 data2_uint; }";
1494
1495        let mut lexer = Token::lexer(test_empty_msg);
1496        lexer.extras = 0;
1497
1498        let parsed_bitis = parse_root(&mut lexer);
1499        assert_eq!(parsed_bitis.is_ok(), true);
1500
1501        let _parsed_bitis = parsed_bitis.unwrap();
1502
1503        // let rdo = RustDataObjects {
1504        //     enums: parsed_bitis.iter().filter_map(|x|
1505        //         match x {
1506        //             Value::Enum(ev) => Some((ev.name.clone(), ev.clone())),
1507        //             _ => None
1508        //         })
1509        //         .collect::<HashMap<_, _>>(),
1510        //     msgs: parsed_bitis.iter().filter_map(|x|
1511        //         match x {
1512        //             Value::Message(mv) => Some((mv.name.clone(), mv.clone())),
1513        //             _ => None
1514        //         })
1515        //         .collect::<HashMap<_, _>>(),
1516        // };
1517        //
1518        // let rendered = rdo.render().unwrap();
1519        //
1520        // let current_test_simple_code = String::from(std::str::from_utf8(&fs::read("test_data/test_simple_msg.rs")
1521        //     .expect("Unable to read test_simple_msg.rs file")).unwrap());
1522        // assert_eq!(current_test_simple_code, rendered);
1523        //
1524        // let validate_result = validate_bitis(&parsed_bitis);
1525        // println!("validate_result: {:?}", validate_result);
1526        // assert!(validate_result.is_none());
1527    }
1528}
1529
1530#[cfg(test)]
1531mod bitis_processing {
1532    use rstest::rstest;
1533    use crate::AttributeDetails::{AttributeEnumOrMsg, AttributeSimple};
1534    use super::*;
1535
1536    #[rstest]
1537    #[ignore]
1538    fn msg_base_and_v2() {
1539        let bitis_values = vec![
1540            Value::Message(Message{
1541                name: "TestMsg".to_string(),
1542                /*version_info: VersionInfo::BaseWithAllowedVersion(0),*/
1543                comment: Some("This is a test".to_string()),
1544                parent: None,
1545                attributes: vec![Attribute{name: "a1".to_string(), comment: None,
1546                    is_repeated_and_size: None, is_optional: false,
1547                    specific_details: AttributeSimple(SimpleType::UIntFixed(4)),
1548                }],
1549            }),
1550            Value::Message(Message{
1551                name: "TestMsg".to_string(),
1552                /*version_info: VersionInfo::Version(2),*/
1553                comment: Some("This is a test".to_string()),
1554                parent: None,
1555                attributes: vec![Attribute{name: "a2".to_string(), comment: None,
1556                    is_repeated_and_size: None, is_optional: false,
1557                    specific_details: AttributeSimple(SimpleType::UIntFixed(4)),
1558                }],
1559            })
1560        ];
1561        let pb = process_and_validate_bitis(&bitis_values);
1562
1563        assert_eq!(pb.max_version_number, 2);
1564        assert_eq!(pb.msgs.len(), 3);
1565
1566        assert_eq!(pb.msgs[0].name, "TestMsg_Base".to_string());
1567        assert_eq!(pb.msgs[1].name, "TestMsg_V1".to_string());
1568        assert_eq!(pb.msgs[2].name, "TestMsg_V2".to_string());
1569
1570        assert_eq!(pb.msgs[0].attributes.len(), 1);
1571        assert_eq!(pb.msgs[0].attributes.get(0).unwrap().name, "a1".to_string());
1572        assert_eq!(pb.msgs[1].attributes.len(), 0);
1573        assert_eq!(pb.msgs[2].attributes.len(), 1);
1574        assert_eq!(pb.msgs[2].attributes.get(0).unwrap().name, "a2".to_string());
1575    }
1576
1577    #[rstest]
1578    #[ignore]
1579    fn msg_base_and_v2_and_add_msg() {
1580        let bitis_values = vec![
1581            Value::Message(Message{
1582                name: "TestMsgInner".to_string(),
1583                /*version_info: VersionInfo::BaseWithAllowedVersion(0),*/
1584                comment: Some("This is a test2".to_string()),
1585                parent: None,
1586                attributes: vec![Attribute{name: "lala".to_string(), comment: None,
1587                    is_repeated_and_size: None, is_optional: false,
1588                    specific_details: AttributeSimple(SimpleType::UIntFixed(4)),
1589                }],
1590            }),
1591            Value::Message(Message{
1592                name: "TestMsgInner".to_string(),
1593                /*version_info: VersionInfo::Version(1),*/
1594                comment: Some("This is a test2".to_string()),
1595                parent: None,
1596                attributes: vec![
1597                    Attribute{name: "lala".to_string(), comment: None, is_repeated_and_size: None, is_optional: false,
1598                        specific_details: AttributeSimple(SimpleType::UIntFixed(4)),},
1599                    Attribute{name: "lala2".to_string(), comment: None, is_repeated_and_size: None, is_optional: false,
1600                        specific_details: AttributeSimple(SimpleType::UIntFixed(3)),},
1601                ],
1602            }),
1603            Value::Message(Message{
1604                name: "TestMsg".to_string(),
1605                /*version_info: VersionInfo::BaseWithAllowedVersion(0),*/
1606                comment: Some("This is a test".to_string()),
1607                parent: None,
1608                attributes: vec![
1609                    Attribute{ name: "a1".to_string(), comment: None, is_repeated_and_size: None, is_optional: false,
1610                        specific_details: AttributeSimple(SimpleType::UIntFixed(4)) },
1611                    Attribute{ name: "lala_use".to_string(), comment: None, is_repeated_and_size: None, is_optional: false,
1612                        specific_details: AttributeEnumOrMsg("TestMsgInner".to_string()) },
1613                ],
1614            }),
1615            Value::Message(Message{
1616                name: "TestMsg".to_string(),
1617                /*version_info: VersionInfo::Version(2),*/
1618                comment: Some("This isa test".to_string()),
1619                parent: None,
1620                attributes: vec![Attribute{name: "a2".to_string(), comment: None,
1621                    is_repeated_and_size: None, is_optional: false,
1622                    specific_details: AttributeSimple(SimpleType::UIntFixed(4)),
1623                }],
1624            }),
1625        ];
1626        let pb = process_and_validate_bitis(&bitis_values);
1627
1628        assert_eq!(pb.max_version_number, 2);
1629        assert_eq!(pb.msgs.len(), 4);
1630
1631/*        assert_eq!(pb.msgs[0].name, "TestMsg_Base".to_string());
1632        assert_eq!(pb.msgs[1].name, "TestMsg_V1".to_string());
1633        assert_eq!(pb.msgs[2].name, "TestMsg_V2".to_string());
1634        assert_eq!(pb.msgs[3].name, "TestMsgLala".to_string());
1635
1636        if let MsgVersion::Versioned(l) = pb.msgs[0].version { assert_eq!(l, 0); }
1637        assert_eq!(pb.msgs[0].attributes.len(), 1);
1638        assert_eq!(pb.msgs[0].attributes.get(0).unwrap().name, "a1".to_string());
1639        assert_eq!(pb.msgs[1].attributes.len(), 0);
1640        assert_eq!(pb.msgs[2].attributes.len(), 1);
1641        assert_eq!(pb.msgs[2].attributes.get(0).unwrap().name, "a2".to_string());
1642        if let MsgVersion::Fixed = pb.msgs[0].version { assert!(false) }
1643        assert_eq!(pb.msgs[3].attributes.len(), 1);
1644        assert_eq!(pb.msgs[3].attributes.get(0).unwrap().name, "lala".to_string());*/
1645    }
1646}
1647