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edifact_rs/
tokenizer.rs

1//! EDIFACT tokenizer — splits raw bytes into typed tokens.
2//!
3//! Respects UNA service string advice for non-default delimiters.
4//! Uses `memchr` for fast delimiter scanning (no byte-by-byte inner loops).
5
6use crate::{error::EdifactError, model::Span};
7use memchr::{memchr, memchr3};
8
9/// EDIFACT service string advice (UNA segment).
10///
11/// Defaults: `+` (element), `:` (component), `?` (release), space (reserved), `'` (segment).
12#[derive(Debug, Clone, Copy, PartialEq, Eq)]
13pub struct ServiceStringAdvice {
14    /// Data element separator (default `+`)
15    pub element_sep: u8,
16    /// Component data element separator (default `:`)
17    pub component_sep: u8,
18    /// Release character (default `?`)
19    pub release_char: u8,
20    /// Decimal notation mark (default `.`; UNA byte 5, ISO 9735-1 §7.1).
21    /// Not used by the tokenizer for splitting, but preserved for downstream use.
22    pub decimal_mark: u8,
23    /// Segment terminator (default `'`)
24    pub segment_term: u8,
25}
26
27impl Default for ServiceStringAdvice {
28    fn default() -> Self {
29        Self {
30            element_sep: b'+',
31            component_sep: b':',
32            release_char: b'?',
33            decimal_mark: b'.',
34            segment_term: b'\'',
35        }
36    }
37}
38
39impl ServiceStringAdvice {
40    /// Parse a UNA header from the beginning of an EDIFACT interchange.
41    ///
42    /// If no UNA is present, returns [`ServiceStringAdvice::default`].
43    /// Does not validate that the 6 service characters are mutually distinct;
44    /// use [`ServiceStringAdvice::from_bytes_strict`] when that matters.
45    pub fn from_bytes(input: &[u8]) -> Self {
46        // UNA is 9 bytes: "UNA" + 6 service chars
47        if input.len() >= 9 && &input[..3] == b"UNA" {
48            Self {
49                component_sep: input[3],
50                element_sep: input[4],
51                decimal_mark: input[5],
52                release_char: input[6],
53                // input[7] = repetition separator (ISO 9735-4 §3.1; not modelled here)
54                segment_term: input[8],
55            }
56        } else {
57            Self::default()
58        }
59    }
60
61    /// Parse a UNA header and validate that the four active service characters
62    /// (`element_sep`, `component_sep`, `release_char`, `segment_term`) are all
63    /// mutually distinct and are not ASCII whitespace (`CR`, `LF`, space, tab).
64    ///
65    /// Returns [`EdifactError::InvalidUna`] if the invariant is violated.
66    /// Falls back to [`ServiceStringAdvice::default`] when no UNA is present.
67    pub fn from_bytes_strict(input: &[u8]) -> Result<Self, crate::error::EdifactError> {
68        let ssa = Self::from_bytes(input);
69        if !ssa.is_valid() {
70            return Err(crate::error::EdifactError::InvalidUna);
71        }
72        Ok(ssa)
73    }
74
75    /// Return `true` if the four active service characters are mutually distinct
76    /// and none is ASCII whitespace (`CR`, `LF`, space, tab).
77    pub fn is_valid(&self) -> bool {
78        let [e, c, r, t] = [
79            self.element_sep,
80            self.component_sep,
81            self.release_char,
82            self.segment_term,
83        ];
84        let no_ws = |b: u8| !matches!(b, b' ' | b'\t' | b'\r' | b'\n');
85        // All must be non-whitespace and mutually distinct (6 pairwise checks).
86        no_ws(e) && no_ws(c) && no_ws(r) && no_ws(t)
87            && e != c && e != r && e != t
88            && c != r && c != t
89            && r != t
90    }
91}
92
93/// Token produced by [`Tokenizer`].
94#[derive(Debug, Clone, PartialEq, Eq)]
95pub enum Token<'a> {
96    /// 3-character segment tag (e.g. `"BGM"`)
97    SegmentTag {
98        /// Raw tag value.
99        value: &'a str,
100        /// Source span of the tag.
101        span: Span,
102    },
103    /// Data element value (between element separators)
104    DataElement {
105        /// Raw element value.
106        value: &'a str,
107        /// Source span of the element value.
108        span: Span,
109    },
110    /// Component within a composite data element (between component separators)
111    ComponentElement {
112        /// Raw component value.
113        value: &'a str,
114        /// Source span of the component value.
115        span: Span,
116    },
117    /// Segment terminator — signals the end of a segment
118    SegmentTerminator {
119        /// Source span of the segment terminator byte.
120        span: Span,
121    },
122}
123
124
125#[derive(Debug)]
126pub(crate) struct RawSegment {
127    pub(crate) bytes: Vec<u8>,
128    pub(crate) start_offset: usize,
129}
130
131/// Zero-copy tokenizer over a byte slice.
132///
133/// Yields `Token` values, each borrowing from the original input.
134///
135/// # Segment size guard
136///
137/// Pass a limit to [`Tokenizer::with_limit`] to reject segments that exceed a
138/// byte-length threshold.  This bounds both the memory and CPU cost of parsing
139/// a single segment on the zero-copy slice path, and causes an
140/// [`EdifactError::SegmentTooLong`] error when the limit is exceeded.
141/// The default constructor [`Tokenizer::new`] sets no limit (`usize::MAX`).
142pub struct Tokenizer<'a> {
143    input: &'a [u8],
144    pos: usize,
145    ssa: ServiceStringAdvice,
146    state: TokState,
147    /// Maximum allowed segment byte length (tag + elements, **excluding** the
148    /// segment terminator byte itself).  Checked in `read_value` and `read_tag`.
149    /// `usize::MAX` = unlimited.
150    max_segment_bytes: usize,
151    /// Byte position where the current segment started (set in `read_tag`).
152    segment_start: usize,
153}
154
155#[derive(Debug, Clone, Copy, PartialEq, Eq)]
156enum TokState {
157    /// Expecting a segment tag next
158    ExpectTag,
159    /// Inside a segment; next byte could be element or component sep, release, or terminator
160    InSegment,
161}
162
163impl<'a> Tokenizer<'a> {
164    /// Return the byte offset of the first non-UNA byte in `input`.
165    ///
166    /// If the input starts with the `UNA` service string advice (first 3
167    /// bytes are `b"UNA"`), the UNA header is exactly 9 bytes long and the
168    /// first segment tag starts at offset 9.  Otherwise parsing starts at 0.
169    #[inline]
170    fn una_start_pos(input: &[u8]) -> usize {
171        if input.len() >= 9 && &input[..3] == b"UNA" { 9 } else { 0 }
172    }
173
174    /// Construct a zero-copy tokenizer over `input` with explicit service-string advice.
175    ///
176    /// No segment-size limit is applied.  Use [`Tokenizer::with_limit`] when
177    /// processing untrusted input to bound CPU and memory usage.
178    ///
179    /// # Security
180    ///
181    /// This constructor imposes **no upper bound** on how many bytes a single
182    /// segment may consume.  For untrusted or adversarially crafted input a
183    /// missing segment terminator can cause the tokenizer to scan the entire
184    /// input before returning an error.  Call [`Tokenizer::with_limit`]
185    /// instead, or use the higher-level [`crate::from_bytes`] /
186    /// [`crate::from_reader_with_config`] which default to a 64 KiB limit.
187    pub fn new(input: &'a [u8], ssa: ServiceStringAdvice) -> Self {
188        Self {
189            input,
190            pos: Self::una_start_pos(input),
191            ssa,
192            state: TokState::ExpectTag,
193            max_segment_bytes: usize::MAX,
194            segment_start: 0,
195        }
196    }
197
198    /// Construct a tokenizer with a segment-size limit.
199    ///
200    /// If a single segment's byte length (from the start of the tag to the end
201    /// of the last value, not including the terminator itself) exceeds `limit`,
202    /// the iterator returns [`EdifactError::SegmentTooLong`].
203    ///
204    /// # Examples
205    ///
206    /// ```
207    /// use edifact_rs::{ServiceStringAdvice, Tokenizer};
208    ///
209    /// let input = b"BGM+220+PO-4711+9'";
210    /// let ssa = ServiceStringAdvice::default();
211    /// let tokens: Vec<_> = Tokenizer::with_limit(input, ssa, 64)
212    ///     .collect::<Result<_, _>>()
213    ///     .unwrap();
214    /// assert!(!tokens.is_empty());
215    /// ```
216    pub fn with_limit(input: &'a [u8], ssa: ServiceStringAdvice, max_segment_bytes: usize) -> Self {
217        Self {
218            input,
219            pos: Self::una_start_pos(input),
220            ssa,
221            state: TokState::ExpectTag,
222            max_segment_bytes,
223            segment_start: 0,
224        }
225    }
226
227    /// Current byte position in the input.
228    #[inline]
229    pub fn position(&self) -> usize {
230        self.pos
231    }
232
233    /// Return the service string advice active for this tokenizer.
234    #[inline]
235    pub fn service_string_advice(&self) -> ServiceStringAdvice {
236        self.ssa
237    }
238
239    /// Consume leading whitespace / CR / LF between segments (not inside data values).
240    fn skip_inter_segment_whitespace(&mut self) {
241        while self.pos < self.input.len() {
242            match self.input[self.pos] {
243                b' ' | b'\t' | b'\r' | b'\n' => self.pos += 1,
244                _ => break,
245            }
246        }
247    }
248
249    /// Read a field value starting at `self.pos`, advancing past the value.
250    ///
251    /// Recognises the release character (`?` by default) and returns the raw
252    /// slice including release sequences. The parser layer resolves them.
253    ///
254    /// Uses `memchr3` to bulk-scan over non-special bytes between hits, only
255    /// falling back to a per-byte step when a release character is encountered.
256    fn read_value(&mut self) -> Result<(&'a str, Span), EdifactError> {
257        let start = self.pos;
258        let (elem, comp, release, term) = (
259            self.ssa.element_sep,
260            self.ssa.component_sep,
261            self.ssa.release_char,
262            self.ssa.segment_term,
263        );
264        loop {
265            let remaining = &self.input[self.pos..];
266            if remaining.is_empty() {
267                break;
268            }
269            // Scan for release OR a value-terminating delimiter.
270            // memchr3 can hold three bytes; we combine elem/comp/release.
271            // A separate memchr finds term so we take the nearest hit.
272            let hit_ect = memchr3(elem, comp, release, remaining);
273            let hit_term = memchr(term, remaining);
274            let hit = match (hit_ect, hit_term) {
275                (None, None) => {
276                    self.pos += remaining.len();
277                    break;
278                }
279                (Some(a), None) => a,
280                (None, Some(b)) => b,
281                (Some(a), Some(b)) => a.min(b),
282            };
283            let b = remaining[hit];
284            if b == release {
285                // A release char must be followed by exactly one escaped byte.
286                // If it is the last byte in the buffer the sequence is malformed.
287                if remaining.len() - hit == 1 {
288                    return Err(EdifactError::InvalidReleaseSequence {
289                        offset: self.pos + hit,
290                    });
291                }
292                // Skip release char + the escaped byte.
293                self.pos += hit + 2;
294                continue;
295            }
296            // b is elem, comp, or term — end of value.
297            self.pos += hit;
298            break;
299        }
300        let span = Span::new(start, self.pos);
301        let value = std::str::from_utf8(&self.input[start..self.pos])
302            .map_err(|_| EdifactError::InvalidText { offset: start })?;
303        // Enforce the per-segment byte-length guard.
304        if self.pos - self.segment_start > self.max_segment_bytes {
305            return Err(EdifactError::SegmentTooLong {
306                offset: self.segment_start,
307                limit: self.max_segment_bytes,
308            });
309        }
310        Ok((value, span))
311    }
312
313    /// Fast scan for the segment tag (exactly 3 ASCII uppercase letters).
314    fn read_tag(&mut self) -> Result<Option<Token<'a>>, EdifactError> {
315        self.skip_inter_segment_whitespace();
316        if self.pos >= self.input.len() {
317            return Ok(None);
318        }
319        let start = self.pos;
320        // A segment tag is terminated by the element separator or segment terminator.
321        // Bound the scan to max_segment_bytes + 1 so adversarial input with no delimiters
322        // cannot force memchr to scan arbitrarily large buffers before we return an error.
323        let input_remaining = &self.input[self.pos..];
324        let scan_limit = self.max_segment_bytes.saturating_add(1).min(input_remaining.len());
325        let remaining = &input_remaining[..scan_limit];
326        let end = memchr(self.ssa.element_sep, remaining)
327            .or_else(|| memchr(self.ssa.segment_term, remaining))
328            .unwrap_or(remaining.len());
329
330        if end == 0 {
331            // First byte is already a delimiter — tag is zero-length, which is invalid.
332            let byte = self.input[self.pos];
333            self.pos += 1;
334            return Err(EdifactError::InvalidDelimiter { byte, offset: start });
335        }
336
337        // Enforce the per-segment byte-length guard in read_tag as well.
338        // Without this check, adversarial input with no delimiters could cause
339        // memchr to scan the entire remaining buffer (potentially hundreds of MB).
340        if end > self.max_segment_bytes {
341            // Advance past the offending bytes so the iterator can continue.
342            self.pos = start + end;
343            return Err(EdifactError::SegmentTooLong {
344                offset: start,
345                limit: self.max_segment_bytes,
346            });
347        }
348        let tag_bytes = &self.input[start..start + end];
349        // Always advance pos so errors cannot cause an infinite retry loop.
350        self.pos = start + end;
351        // Record segment start for the size-limit check in read_value.
352        self.segment_start = start;
353        let tag = std::str::from_utf8(tag_bytes)
354            .map_err(|_| EdifactError::InvalidSegmentTag(format!("{tag_bytes:?}")))?;
355        if tag.len() != 3 || !tag.bytes().all(|b| b.is_ascii_uppercase()) {
356            return Err(EdifactError::InvalidSegmentTag(tag.to_owned()));
357        }
358        self.state = TokState::InSegment;
359        Ok(Some(Token::SegmentTag {
360            value: tag,
361            span: Span::new(start, start + end),
362        }))
363    }
364}
365
366impl<'a> Iterator for Tokenizer<'a> {
367    type Item = Result<Token<'a>, EdifactError>;
368
369    fn next(&mut self) -> Option<Self::Item> {
370        loop {
371            if self.pos >= self.input.len() {
372                return None;
373            }
374
375            match self.state {
376                TokState::ExpectTag => {
377                    return match self.read_tag() {
378                        Ok(Some(tok)) => Some(Ok(tok)),
379                        Ok(None) => None,
380                        Err(e) => Some(Err(e)),
381                    };
382                }
383                TokState::InSegment => {
384                    let b = self.input[self.pos];
385                    let (elem, comp, term) = (
386                        self.ssa.element_sep,
387                        self.ssa.component_sep,
388                        self.ssa.segment_term,
389                    );
390
391                    if b == term {
392                        let start = self.pos;
393                        self.pos += 1;
394                        self.state = TokState::ExpectTag;
395                        return Some(Ok(Token::SegmentTerminator {
396                            span: Span::new(start, self.pos),
397                        }));
398                    } else if b == elem {
399                        self.pos += 1;
400                        let (value, span) = match self.read_value() {
401                            Ok(value) => value,
402                            Err(error) => return Some(Err(error)),
403                        };
404                        // Peek: is the *next* byte a component sep?
405                        // We emit DataElement for the leading sub-element regardless;
406                        // subsequent components within the same element are ComponentElement.
407                        return Some(Ok(Token::DataElement { value, span }));
408                    } else if b == comp {
409                        self.pos += 1;
410                        let (value, span) = match self.read_value() {
411                            Ok(value) => value,
412                            Err(error) => return Some(Err(error)),
413                        };
414                        return Some(Ok(Token::ComponentElement { value, span }));
415                    } else if b == b'\r' || b == b'\n' {
416                        self.pos += 1;
417                        // inter-element whitespace inside a segment — skip
418                        continue;
419                    } else {
420                        // Unexpected byte inside a segment — skip it and report.
421                        let offset = self.pos;
422                        self.pos += 1; // always advance to prevent infinite retry loop
423                        self.state = TokState::ExpectTag;
424                        return Some(Err(EdifactError::InvalidDelimiter { byte: b, offset }));
425                    }
426                }
427            }
428        }
429    }
430}
431
432#[cfg(test)]
433mod tests {
434    use super::*;
435
436    fn tokens(input: &[u8]) -> Vec<Token<'_>> {
437        let ssa = ServiceStringAdvice::from_bytes(input);
438        Tokenizer::new(input, ssa)
439            .collect::<Result<Vec<_>, _>>()
440            .expect("tokenize failed")
441    }
442
443    #[test]
444    fn minimal_unb_unz() {
445        let input = b"UNB+UNOA:1+SENDER+RECEIVER+200101:0900+1'UNZ+0+1'";
446        let toks = tokens(input);
447        assert!(matches!(toks[0], Token::SegmentTag { value: "UNB", .. }));
448        // should end with UNZ terminator
449        assert!(matches!(toks.last(), Some(Token::SegmentTerminator { .. })));
450    }
451
452    #[test]
453    fn release_character_not_a_delimiter() {
454        // `?+` inside a value must NOT produce a DataElement split
455        let input = b"BGM+220+test?+value'";
456        let toks = tokens(input);
457        // Elements after BGM tag: "220", "test?+value"
458        let vals: Vec<_> = toks
459            .iter()
460            .filter_map(|t| {
461                if let Token::DataElement { value, .. } = t {
462                    Some(*value)
463                } else {
464                    None
465                }
466            })
467            .collect();
468        assert_eq!(vals, vec!["220", "test?+value"]);
469    }
470
471    #[test]
472    fn custom_una_delimiters() {
473        // UNA with `;` as element sep
474        let input = b"UNA:;.? 'BGM;220;hello'";
475        let toks = tokens(input);
476        assert!(matches!(toks[0], Token::SegmentTag { value: "BGM", .. }));
477        let vals: Vec<_> = toks
478            .iter()
479            .filter_map(|t| {
480                if let Token::DataElement { value, .. } = t {
481                    Some(*value)
482                } else {
483                    None
484                }
485            })
486            .collect();
487        assert!(vals.contains(&"220"));
488    }
489
490    #[test]
491    fn tokens_expose_spans() {
492        let input = b"BGM+220+ABC'";
493        let toks = tokens(input);
494        assert!(matches!(
495            toks[0],
496            Token::SegmentTag {
497                value: "BGM",
498                span: Span { start: 0, end: 3 }
499            }
500        ));
501        assert!(matches!(
502            toks[1],
503            Token::DataElement {
504                value: "220",
505                span: Span { start: 4, end: 7 }
506            }
507        ));
508    }
509
510    #[test]
511    fn truncated_input_does_not_panic() {
512        let input = b"UNB+UNOA:1"; // no terminator
513        let _: Vec<_> = Tokenizer::new(input, ServiceStringAdvice::default()).collect();
514        // must not panic regardless of result
515    }
516
517    #[test]
518    fn invalid_segment_tags_are_rejected() {
519        for input in [
520            &b"bgm+220+'"[..],
521            &b"ABCDE+220+'"[..],
522            &b"BGM1+220+'"[..],
523            &b"BGM +220+'"[..],
524            &b" BG+220+'"[..],
525        ] {
526            let result = Tokenizer::new(input, ServiceStringAdvice::default())
527                .collect::<Result<Vec<_>, _>>();
528            assert!(result.is_err(), "expected tag rejection for {input:?}");
529        }
530    }
531
532    #[test]
533    fn chunked_reader_parses_via_parser() {
534        // The reader tokenizer path was removed; verify the equivalent via the parser.
535        let input = b"UNA:+.? 'BGM+220+test?+value'UNT+2+1'";
536        let segments =
537            crate::parser::from_bufread(std::io::BufReader::new(std::io::Cursor::new(input)))
538                .expect("parser should succeed");
539        assert!(segments.iter().any(|s| s.tag == "BGM"));
540        // The release sequence '?+' inside 'test?+value' should survive in the element.
541        let bgm = segments.iter().find(|s| s.tag == "BGM").unwrap();
542        let raw_val = bgm.elements.get(1).and_then(|e| e.components.first()).map(|s| s.as_str());
543        assert_eq!(raw_val, Some("test+value"));
544    }
545}