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, memchr2, memchr3};
8
9/// EDIFACT service string advice (UNA segment).
10///
11/// Defaults: `+` (element), `:` (component), `?` (release), `.` (decimal mark),
12/// `*` (repetition separator), `'` (segment terminator).
13///
14/// All six service characters are first-class fields. [`is_valid`][Self::is_valid]
15/// checks all six for mutual distinctness and for being printable, non-alphanumeric
16/// ASCII, so a collision between the repetition separator and any other delimiter —
17/// or a delimiter that would clash with segment-tag characters — is caught at UNA
18/// parse time.
19#[derive(Debug, Clone, Copy, PartialEq, Eq)]
20pub struct ServiceStringAdvice {
21 /// Data element separator (default `+`)
22 pub element_sep: u8,
23 /// Component data element separator (default `:`)
24 pub component_sep: u8,
25 /// Release character (default `?`)
26 pub release_char: u8,
27 /// Decimal notation mark (default `.`; UNA byte 5, ISO 9735-1 §7.1).
28 /// Not used by the tokenizer for splitting, but preserved for downstream use.
29 pub decimal_mark: u8,
30 /// Repetition separator (UNA byte 7, ISO 9735-4 §3.1).
31 ///
32 /// Defaults to space (`0x20`), the conventional "not used" sentinel, when no
33 /// UNA is present. Some DVGW gas-market profiles and other non-default
34 /// EDIFACT implementations declare a real repetition separator here; this
35 /// field is always populated from the UNA so that downstream code can access
36 /// it without re-parsing the raw UNA bytes.
37 ///
38 /// The tokenizer does not currently split on the repetition separator — that
39 /// responsibility belongs to downstream consumers — but `is_valid()` includes
40 /// it in the six-way uniqueness check to catch delimiter collisions early.
41 pub repetition_sep: u8,
42 /// Segment terminator (default `'`)
43 pub segment_term: u8,
44}
45
46impl Default for ServiceStringAdvice {
47 fn default() -> Self {
48 Self {
49 element_sep: b'+',
50 component_sep: b':',
51 release_char: b'?',
52 decimal_mark: b'.',
53 // Space (0x20) is the conventional "not used" sentinel found at
54 // position 7 in the vast majority of real-world EDIFACT interchanges
55 // that do not employ ISO 9735-4 repetition elements. `is_valid()`
56 // accepts space here without a printability or uniqueness check.
57 repetition_sep: b' ',
58 segment_term: b'\'',
59 }
60 }
61}
62
63impl ServiceStringAdvice {
64 /// Parse a UNA header and validate that all six service characters
65 /// (`element_sep`, `component_sep`, `decimal_mark`, `release_char`,
66 /// `repetition_sep`, and `segment_term`) are mutually distinct and are
67 /// printable, non-alphanumeric ASCII. See [`is_valid`][Self::is_valid] for
68 /// the exact rule.
69 ///
70 /// Returns [`EdifactError::InvalidUna`] if the invariant is violated.
71 /// Falls back to [`ServiceStringAdvice::default`] when no UNA is present.
72 ///
73 /// This is the **safe, default constructor** — always use this for input from
74 /// an external source. For trusted or internal use where delimiter uniqueness
75 /// is already guaranteed, use [`from_bytes_unchecked`](Self::from_bytes_unchecked).
76 pub fn from_bytes(input: &[u8]) -> Result<Self, crate::error::EdifactError> {
77 let ssa = Self::from_bytes_unchecked(input);
78 if !ssa.is_valid() {
79 return Err(crate::error::EdifactError::InvalidUna);
80 }
81 Ok(ssa)
82 }
83
84 /// Parse a UNA header from the beginning of an EDIFACT interchange **without**
85 /// validating delimiter uniqueness or printability.
86 ///
87 /// If no UNA is present, returns [`ServiceStringAdvice::default`].
88 ///
89 /// The `repetition_sep` field is populated from UNA byte 7 (ISO 9735-4 §3.1)
90 /// or defaults to space (`0x20`, the "not used" sentinel) when no UNA is present.
91 ///
92 /// # When to use
93 ///
94 /// Use this only for trusted internal data (e.g. round-tripping data where
95 /// the UNA invariant is already guaranteed) or in fuzz/property tests that
96 /// intentionally explore degenerate delimiter combinations.
97 ///
98 /// For any external or user-provided input, prefer [`from_bytes`](Self::from_bytes)
99 /// which validates delimiter uniqueness and rejects invalid bytes.
100 pub fn from_bytes_unchecked(input: &[u8]) -> Self {
101 // UNA is 9 bytes: "UNA" + 6 service chars
102 if input.len() >= 9 && &input[..3] == b"UNA" {
103 Self {
104 component_sep: input[3],
105 element_sep: input[4],
106 decimal_mark: input[5],
107 release_char: input[6],
108 repetition_sep: input[7],
109 segment_term: input[8],
110 }
111 } else {
112 Self::default()
113 }
114 }
115
116 /// Return `true` if all active service characters are mutually distinct
117 /// and printable ASCII.
118 ///
119 /// The five *mandatory* characters (`element_sep`, `component_sep`,
120 /// `decimal_mark`, `release_char`, `segment_term`) must all be printable,
121 /// **non-alphanumeric** ASCII (`0x21–0x7E`, excluding `0-9A-Za-z`) and
122 /// mutually distinct (10 pairwise checks). Alphanumerics are rejected
123 /// because segment tags are written verbatim and cannot be escaped, so a
124 /// letter delimiter would make tags containing it unrepresentable.
125 ///
126 /// The `repetition_sep` field is also validated when it is **not a space**
127 /// (`0x20`). A space at position 7 of the UNA is the conventional
128 /// "absent" sentinel used by interchanges that do not employ repetition
129 /// elements (ISO 9735-1 / ISO 9735-4 §3.1), and it is accepted without
130 /// a printability or uniqueness check. Any other value must be printable
131 /// non-alphanumeric ASCII and distinct from all five mandatory characters.
132 ///
133 /// High bytes (`>= 0x80`) are rejected because they would incorrectly bisect
134 /// multi-byte UTF-8 sequences, and DEL (`0x7F`) is a non-printable control
135 /// character.
136 pub fn is_valid(&self) -> bool {
137 let [e, c, d, r, t] = [
138 self.element_sep,
139 self.component_sep,
140 self.decimal_mark,
141 self.release_char,
142 self.segment_term,
143 ];
144 // All five mandatory chars must be printable, non-alphanumeric ASCII and
145 // mutually distinct (10 pairwise checks).
146 //
147 // Alphanumerics are excluded because segment tags are always three ASCII
148 // uppercase letters and are written verbatim (a tag cannot be escaped).
149 // A delimiter such as `N` would therefore make `NAD` unrepresentable —
150 // the writer would emit a premature terminator and the result would not
151 // reparse. Real-world UNA strings use punctuation exclusively, so this
152 // rejects only degenerate configurations.
153 let printable_ascii = |b: u8| (0x21..=0x7E).contains(&b) && !b.is_ascii_alphanumeric();
154 let basic_valid = printable_ascii(e)
155 && printable_ascii(c)
156 && printable_ascii(d)
157 && printable_ascii(r)
158 && printable_ascii(t)
159 && e != c
160 && e != d
161 && e != r
162 && e != t
163 && c != d
164 && c != r
165 && c != t
166 && d != r
167 && d != t
168 && r != t;
169 if !basic_valid {
170 return false;
171 }
172 // repetition_sep: space (0x20) means "not used" — accepted as-is.
173 // Any other value must be printable ASCII and distinct from all five
174 // mandatory service characters.
175 let rep = self.repetition_sep;
176 if rep == b' ' {
177 true
178 } else {
179 printable_ascii(rep) && rep != e && rep != c && rep != d && rep != r && rep != t
180 }
181 }
182}
183
184/// Token produced by [`Tokenizer`].
185#[derive(Debug, Clone, PartialEq, Eq)]
186pub enum Token<'a> {
187 /// 3-character segment tag (e.g. `"BGM"`)
188 SegmentTag {
189 /// Raw tag value.
190 value: &'a str,
191 /// Source span of the tag.
192 span: Span,
193 },
194 /// Data element value (between element separators)
195 DataElement {
196 /// Raw element value.
197 value: &'a str,
198 /// Source span of the element value.
199 span: Span,
200 },
201 /// Component within a composite data element (between component separators)
202 ComponentElement {
203 /// Raw component value.
204 value: &'a str,
205 /// Source span of the component value.
206 span: Span,
207 },
208 /// Segment terminator — signals the end of a segment
209 SegmentTerminator {
210 /// Source span of the segment terminator byte.
211 span: Span,
212 },
213}
214
215#[derive(Debug)]
216pub(crate) struct RawSegment {
217 pub(crate) bytes: Vec<u8>,
218 pub(crate) start_offset: usize,
219}
220
221/// Zero-copy tokenizer over a byte slice.
222///
223/// Yields `Token` values, each borrowing from the original input.
224///
225/// # Segment size guard
226///
227/// The default constructor [`Tokenizer::new`] enforces a **64 KiB** per-segment
228/// limit, which is sufficient for all well-formed EDIFACT interchanges and guards
229/// against adversarially crafted inputs that omit segment terminators.
230/// Use [`Tokenizer::with_limit`] to raise or lower this threshold, or
231/// [`Tokenizer::unlimited`] to remove it entirely (trusted / pre-validated input only).
232pub struct Tokenizer<'a> {
233 input: &'a [u8],
234 pos: usize,
235 ssa: ServiceStringAdvice,
236 state: TokState,
237 /// Maximum allowed segment byte length (tag + elements, **excluding** the
238 /// segment terminator byte itself). Checked in `read_value` and `read_tag`.
239 /// `usize::MAX` = unlimited.
240 max_segment_bytes: usize,
241 /// Byte position where the current segment started (set in `read_tag`).
242 segment_start: usize,
243}
244
245#[derive(Debug, Clone, Copy, PartialEq, Eq)]
246enum TokState {
247 /// Expecting a segment tag next
248 ExpectTag,
249 /// Inside a segment; next byte could be element or component sep, release, or terminator
250 InSegment,
251}
252
253impl<'a> Tokenizer<'a> {
254 /// Return the byte offset of the first non-UNA byte in `input`.
255 ///
256 /// If the input starts with the `UNA` service string advice (first 3
257 /// bytes are `b"UNA"`), the UNA header is exactly 9 bytes long and the
258 /// first segment tag starts at offset 9. Otherwise parsing starts at 0.
259 #[inline]
260 fn una_start_pos(input: &[u8]) -> usize {
261 if input.len() >= 9 && &input[..3] == b"UNA" {
262 9
263 } else {
264 0
265 }
266 }
267
268 /// Construct a tokenizer with the default 64 KiB segment-size limit.
269 ///
270 /// If a single segment's byte length exceeds 65 536 bytes, the iterator
271 /// returns [`EdifactError::SegmentTooLong`]. This guards against
272 /// pathological or adversarially crafted inputs that omit segment
273 /// terminators and would otherwise cause unbounded scanning.
274 ///
275 /// Call [`Tokenizer::unlimited`] if you deliberately need to process
276 /// segments larger than 64 KiB, or [`Tokenizer::with_limit`] to supply a
277 /// custom bound.
278 pub fn new(input: &'a [u8], ssa: ServiceStringAdvice) -> Self {
279 Self::with_limit(input, ssa, 65_536)
280 }
281
282 /// Construct a tokenizer with **no** segment-size limit.
283 ///
284 /// # Security warning
285 ///
286 /// This constructor imposes **no upper bound** on how many bytes a single
287 /// segment may consume. For untrusted or adversarially crafted input a
288 /// missing segment terminator can cause the tokenizer to scan the entire
289 /// input before returning an error. Prefer [`Tokenizer::new`] (64 KiB
290 /// limit) or [`Tokenizer::with_limit`] for untrusted sources.
291 #[must_use]
292 pub fn unlimited(input: &'a [u8], ssa: ServiceStringAdvice) -> Self {
293 Self {
294 input,
295 pos: Self::una_start_pos(input),
296 ssa,
297 state: TokState::ExpectTag,
298 max_segment_bytes: usize::MAX,
299 segment_start: 0,
300 }
301 }
302
303 /// Construct a tokenizer with a segment-size limit.
304 ///
305 /// If a single segment's byte length (from the start of the tag to the end
306 /// of the last value, not including the terminator itself) exceeds `limit`,
307 /// the iterator returns [`EdifactError::SegmentTooLong`].
308 ///
309 /// # Examples
310 ///
311 /// ```
312 /// use edifact_rs::{ServiceStringAdvice, Tokenizer};
313 ///
314 /// let input = b"BGM+220+PO-4711+9'";
315 /// let ssa = ServiceStringAdvice::default();
316 /// let tokens: Vec<_> = Tokenizer::with_limit(input, ssa, 64)
317 /// .collect::<Result<_, _>>()
318 /// .unwrap();
319 /// assert!(!tokens.is_empty());
320 /// ```
321 pub fn with_limit(input: &'a [u8], ssa: ServiceStringAdvice, max_segment_bytes: usize) -> Self {
322 Self {
323 input,
324 pos: Self::una_start_pos(input),
325 ssa,
326 state: TokState::ExpectTag,
327 max_segment_bytes,
328 segment_start: 0,
329 }
330 }
331
332 /// Current byte position in the input.
333 #[inline]
334 pub fn position(&self) -> usize {
335 self.pos
336 }
337
338 /// Return the service string advice active for this tokenizer.
339 #[inline]
340 pub fn service_string_advice(&self) -> ServiceStringAdvice {
341 self.ssa
342 }
343
344 /// Consume leading whitespace / CR / LF between segments (not inside data values).
345 fn skip_inter_segment_whitespace(&mut self) {
346 while self.pos < self.input.len() {
347 match self.input[self.pos] {
348 b' ' | b'\t' | b'\r' | b'\n' => self.pos += 1,
349 _ => break,
350 }
351 }
352 }
353
354 /// Read a field value starting at `self.pos`, advancing past the value.
355 ///
356 /// Recognises the release character (`?` by default) and returns the raw
357 /// slice including release sequences. The parser layer resolves them.
358 ///
359 /// Uses `memchr3` to bulk-scan over non-special bytes between hits, only
360 /// falling back to a per-byte step when a release character is encountered.
361 fn read_value(&mut self) -> Result<(&'a str, Span), EdifactError> {
362 let start = self.pos;
363 let (elem, comp, release, term) = (
364 self.ssa.element_sep,
365 self.ssa.component_sep,
366 self.ssa.release_char,
367 self.ssa.segment_term,
368 );
369 // Absolute cap on how far this value may extend before the per-segment
370 // byte guard trips. Bounding the scan window here (rather than only
371 // checking the length after the loop) keeps adversarial input that omits
372 // every delimiter from forcing a scan across the whole remaining input.
373 let scan_end = self
374 .segment_start
375 .saturating_add(self.max_segment_bytes)
376 .saturating_add(1)
377 .min(self.input.len());
378
379 // Absolute offset of the next segment terminator at or after the current
380 // search origin. `memchr3` below rescans only the bytes it actually
381 // consumes, but a naive `memchr(term, remaining)` per iteration would
382 // rescan the whole tail on every release sequence, making a value such as
383 // `?a?a?a…` quadratic. Caching the hit keeps the terminator search
384 // amortised linear: each rescan starts past the previous hit, so the
385 // scanned regions are disjoint.
386 let mut term_hit = memchr(term, &self.input[self.pos..scan_end]).map(|i| self.pos + i);
387
388 loop {
389 if self.pos >= scan_end {
390 break;
391 }
392 let remaining = &self.input[self.pos..scan_end];
393 // Refresh the cached terminator position once the cursor has moved
394 // past it (only happens when a release sequence escaped a terminator).
395 if term_hit.is_some_and(|t| t < self.pos) {
396 term_hit = memchr(term, remaining).map(|i| self.pos + i);
397 }
398 let hit_ect = memchr3(elem, comp, release, remaining);
399 let hit_term = term_hit.map(|t| t - self.pos);
400 let hit = match (hit_ect, hit_term) {
401 (None, None) => {
402 self.pos = scan_end;
403 break;
404 }
405 (Some(a), None) => a,
406 (None, Some(b)) => b,
407 (Some(a), Some(b)) => a.min(b),
408 };
409 let b = remaining[hit];
410 if b == release {
411 // A release char must be followed by exactly one escaped byte.
412 // If it is the last byte in the buffer the sequence is malformed.
413 if self.pos + hit + 1 >= self.input.len() {
414 return Err(EdifactError::InvalidReleaseSequence {
415 offset: self.pos + hit,
416 });
417 }
418 // Skip release char + the escaped byte.
419 self.pos += hit + 2;
420 continue;
421 }
422 // b is elem, comp, or term — end of value.
423 self.pos += hit;
424 break;
425 }
426 let span = Span::new(start, self.pos);
427 let value = std::str::from_utf8(&self.input[start..self.pos])
428 .map_err(|_| EdifactError::InvalidText { offset: start })?;
429 // Enforce the per-segment byte-length guard.
430 if self.pos - self.segment_start > self.max_segment_bytes {
431 return Err(EdifactError::SegmentTooLong {
432 offset: self.segment_start,
433 limit: self.max_segment_bytes,
434 });
435 }
436 Ok((value, span))
437 }
438
439 /// Fast scan for the segment tag (exactly 3 ASCII uppercase letters).
440 fn read_tag(&mut self) -> Result<Option<Token<'a>>, EdifactError> {
441 self.skip_inter_segment_whitespace();
442 if self.pos >= self.input.len() {
443 return Ok(None);
444 }
445 let start = self.pos;
446 // A segment tag is terminated by the element separator or segment terminator.
447 // Bound the scan to max_segment_bytes + 1 so adversarial input with no delimiters
448 // cannot force memchr to scan arbitrarily large buffers before we return an error.
449 let input_remaining = &self.input[self.pos..];
450 let scan_limit = self
451 .max_segment_bytes
452 .saturating_add(1)
453 .min(input_remaining.len());
454 let remaining = &input_remaining[..scan_limit];
455 // Take the *nearest* of the two terminating delimiters. Searching for
456 // the element separator first and only falling back to the segment
457 // terminator would run straight past the terminator of an element-less
458 // segment (`UNZ'…`) and swallow the following segment's tag.
459 let end = memchr2(self.ssa.element_sep, self.ssa.segment_term, remaining)
460 .unwrap_or(remaining.len());
461
462 if end == 0 {
463 // First byte is already a delimiter — tag is zero-length, which is invalid.
464 let byte = self.input[self.pos];
465 self.pos += 1;
466 return Err(EdifactError::InvalidDelimiter {
467 byte,
468 offset: start,
469 });
470 }
471
472 // Enforce the per-segment byte-length guard in read_tag as well.
473 // Without this check, adversarial input with no delimiters could cause
474 // memchr to scan the entire remaining buffer (potentially hundreds of MB).
475 if end > self.max_segment_bytes {
476 // Advance past the offending bytes so the iterator can continue.
477 self.pos = start + end;
478 return Err(EdifactError::SegmentTooLong {
479 offset: start,
480 limit: self.max_segment_bytes,
481 });
482 }
483 let tag_bytes = &self.input[start..start + end];
484 // Always advance pos so errors cannot cause an infinite retry loop.
485 self.pos = start + end;
486 // Record segment start for the size-limit check in read_value.
487 self.segment_start = start;
488 let tag = std::str::from_utf8(tag_bytes)
489 .map_err(|_| EdifactError::InvalidSegmentTag(format!("{tag_bytes:?}")))?;
490 if tag.len() != 3 || !tag.bytes().all(|b| b.is_ascii_uppercase()) {
491 return Err(EdifactError::InvalidSegmentTag(tag.to_owned()));
492 }
493 self.state = TokState::InSegment;
494 Ok(Some(Token::SegmentTag {
495 value: tag,
496 span: Span::new(start, start + end),
497 }))
498 }
499}
500
501impl<'a> Iterator for Tokenizer<'a> {
502 type Item = Result<Token<'a>, EdifactError>;
503
504 fn next(&mut self) -> Option<Self::Item> {
505 loop {
506 if self.pos >= self.input.len() {
507 return None;
508 }
509
510 match self.state {
511 TokState::ExpectTag => {
512 return match self.read_tag() {
513 Ok(Some(tok)) => Some(Ok(tok)),
514 Ok(None) => None,
515 Err(e) => Some(Err(e)),
516 };
517 }
518 TokState::InSegment => {
519 let b = self.input[self.pos];
520 let (elem, comp, term) = (
521 self.ssa.element_sep,
522 self.ssa.component_sep,
523 self.ssa.segment_term,
524 );
525
526 if b == term {
527 let start = self.pos;
528 self.pos += 1;
529 self.state = TokState::ExpectTag;
530 return Some(Ok(Token::SegmentTerminator {
531 span: Span::new(start, self.pos),
532 }));
533 } else if b == elem {
534 self.pos += 1;
535 let (value, span) = match self.read_value() {
536 Ok(value) => value,
537 Err(error) => return Some(Err(error)),
538 };
539 // Peek: is the *next* byte a component sep?
540 // We emit DataElement for the leading sub-element regardless;
541 // subsequent components within the same element are ComponentElement.
542 return Some(Ok(Token::DataElement { value, span }));
543 } else if b == comp {
544 self.pos += 1;
545 let (value, span) = match self.read_value() {
546 Ok(value) => value,
547 Err(error) => return Some(Err(error)),
548 };
549 return Some(Ok(Token::ComponentElement { value, span }));
550 } else if b == b'\r' || b == b'\n' {
551 self.pos += 1;
552 // inter-element whitespace inside a segment — skip
553 continue;
554 } else {
555 // Unexpected byte inside a segment — skip it and report.
556 let offset = self.pos;
557 self.pos += 1; // always advance to prevent infinite retry loop
558 self.state = TokState::ExpectTag;
559 return Some(Err(EdifactError::InvalidDelimiter { byte: b, offset }));
560 }
561 }
562 }
563 }
564 }
565}
566
567#[cfg(test)]
568mod tests {
569 use super::*;
570
571 fn tokens(input: &[u8]) -> Vec<Token<'_>> {
572 let ssa = ServiceStringAdvice::from_bytes_unchecked(input);
573 Tokenizer::new(input, ssa)
574 .collect::<Result<Vec<_>, _>>()
575 .expect("tokenize failed")
576 }
577
578 #[test]
579 fn minimal_unb_unz() {
580 let input = b"UNB+UNOA:1+SENDER+RECEIVER+200101:0900+1'UNZ+0+1'";
581 let toks = tokens(input);
582 assert!(matches!(toks[0], Token::SegmentTag { value: "UNB", .. }));
583 // should end with UNZ terminator
584 assert!(matches!(toks.last(), Some(Token::SegmentTerminator { .. })));
585 }
586
587 #[test]
588 fn release_character_not_a_delimiter() {
589 // `?+` inside a value must NOT produce a DataElement split
590 let input = b"BGM+220+test?+value'";
591 let toks = tokens(input);
592 // Elements after BGM tag: "220", "test?+value"
593 let vals: Vec<_> = toks
594 .iter()
595 .filter_map(|t| {
596 if let Token::DataElement { value, .. } = t {
597 Some(*value)
598 } else {
599 None
600 }
601 })
602 .collect();
603 assert_eq!(vals, vec!["220", "test?+value"]);
604 }
605
606 #[test]
607 fn custom_una_delimiters() {
608 // UNA with `;` as element sep
609 let input = b"UNA:;.? 'BGM;220;hello'";
610 let toks = tokens(input);
611 assert!(matches!(toks[0], Token::SegmentTag { value: "BGM", .. }));
612 let vals: Vec<_> = toks
613 .iter()
614 .filter_map(|t| {
615 if let Token::DataElement { value, .. } = t {
616 Some(*value)
617 } else {
618 None
619 }
620 })
621 .collect();
622 assert!(vals.contains(&"220"));
623 }
624
625 #[test]
626 fn tokens_expose_spans() {
627 let input = b"BGM+220+ABC'";
628 let toks = tokens(input);
629 assert!(matches!(
630 toks[0],
631 Token::SegmentTag {
632 value: "BGM",
633 span: Span { start: 0, end: 3 }
634 }
635 ));
636 assert!(matches!(
637 toks[1],
638 Token::DataElement {
639 value: "220",
640 span: Span { start: 4, end: 7 }
641 }
642 ));
643 }
644
645 #[test]
646 fn truncated_input_does_not_panic() {
647 let input = b"UNB+UNOA:1"; // no terminator
648 let _: Vec<_> = Tokenizer::new(input, ServiceStringAdvice::default()).collect();
649 // must not panic regardless of result
650 }
651
652 #[test]
653 fn invalid_segment_tags_are_rejected() {
654 for input in [
655 &b"bgm+220+'"[..],
656 &b"ABCDE+220+'"[..],
657 &b"BGM1+220+'"[..],
658 &b"BGM +220+'"[..],
659 &b" BG+220+'"[..],
660 ] {
661 let result = Tokenizer::new(input, ServiceStringAdvice::default())
662 .collect::<Result<Vec<_>, _>>();
663 assert!(result.is_err(), "expected tag rejection for {input:?}");
664 }
665 }
666
667 #[test]
668 fn element_less_segment_does_not_swallow_the_next_tag() {
669 // `read_tag` must stop at the *nearest* of element-separator and
670 // segment-terminator. Scanning for `+` first would run past the `'`
671 // and produce the bogus tag "UNZ'UNB".
672 let segs: Vec<_> = crate::from_bytes(b"UNZ'UNB+A'")
673 .collect::<Result<Vec<_>, _>>()
674 .expect("element-less segment must parse");
675 assert_eq!(
676 segs.iter().map(|s| s.tag).collect::<Vec<_>>(),
677 vec!["UNZ", "UNB"]
678 );
679 assert!(segs[0].elements.is_empty());
680 }
681
682 #[test]
683 fn release_heavy_value_is_bounded_by_the_segment_guard() {
684 // A value consisting solely of release sequences and no delimiter must
685 // trip the per-segment guard rather than scanning the whole input once
686 // per release sequence (which was quadratic).
687 let mut input = b"BGM+".to_vec();
688 input.extend(std::iter::repeat_n(b"?a".as_slice(), 200_000).flatten());
689 let err = crate::from_bytes(&input)
690 .collect::<Result<Vec<_>, _>>()
691 .expect_err("oversized segment must be rejected");
692 assert!(
693 matches!(err, EdifactError::SegmentTooLong { .. }),
694 "expected SegmentTooLong, got {err:?}"
695 );
696 }
697
698 #[test]
699 fn escaped_terminator_inside_a_value_is_not_a_segment_break() {
700 // Exercises the cached-terminator refresh path: the first `'` is escaped,
701 // so the scan must resume past it and find the real terminator.
702 let segs: Vec<_> = crate::from_bytes(b"FTX+a?'b+c'")
703 .collect::<Result<Vec<_>, _>>()
704 .expect("escaped terminator must parse");
705 assert_eq!(segs.len(), 1);
706 assert_eq!(segs[0].element_str(0), Some("a'b"));
707 assert_eq!(segs[0].element_str(1), Some("c"));
708 }
709
710 #[test]
711 fn chunked_reader_parses_via_parser() {
712 // The reader tokenizer path was removed; verify the equivalent via the parser.
713 let input = b"UNA:+.? 'BGM+220+test?+value'UNT+2+1'";
714 let segments =
715 crate::parser::from_bufread(std::io::BufReader::new(std::io::Cursor::new(input)))
716 .expect("parser should succeed");
717 assert!(segments.iter().any(|s| s.tag == "BGM"));
718 // The release sequence '?+' inside 'test?+value' should survive in the element.
719 let bgm = segments.iter().find(|s| s.tag == "BGM").unwrap();
720 let raw_val = bgm
721 .elements
722 .get(1)
723 .and_then(|e| e.components.first())
724 .map(|(s, _)| s.as_str());
725 assert_eq!(raw_val, Some("test+value"));
726 }
727}