Skip to main content

hs_predict/smiles/
detector.rs

1//! Organic / inorganic detection and functional group detection from SMILES.
2//!
3//! Detection is based on substring pattern matching against canonical SMILES
4//! (as returned by PubChem). It is intentionally approximate — results carry
5//! a confidence of ≤ 0.70 and are used only as heading-level hints.
6//!
7//! # Priority order
8//! Groups are checked in decreasing specificity so that more specific patterns
9//! take precedence (e.g. anhydride before ester before carboxylic acid).
10
11use crate::types::OrganicInorganic;
12use serde::{Deserialize, Serialize};
13
14// ─────────────────────────────────────────────────────────────────────────────
15// FunctionalGroup enum
16// ─────────────────────────────────────────────────────────────────────────────
17
18/// Functional group category detectable from a SMILES string.
19///
20/// The 20 groups cover the main HS Chapter 29 classification criteria
21/// for organic chemicals plus the organic/inorganic distinction used
22/// for Chapter 28.
23#[derive(Debug, Clone, Copy, PartialEq, Eq, Hash, Serialize, Deserialize)]
24#[serde(rename_all = "snake_case")]
25pub enum FunctionalGroup {
26    /// –C(=O)–O–C(=O)– (acid anhydride).
27    Anhydride,
28    /// –N=C=O (isocyanate or isothiocyanate N=C=S).
29    Isocyanate,
30    /// –C≡N (nitrile / cyanide).
31    Nitrile,
32    /// –[N+](=O)[O–] nitro group.
33    Nitro,
34    /// Three-membered ring containing O (epoxide).
35    Epoxide,
36    /// –S(=O)(=O)–OH sulphonic acid.
37    SulphonicAcid,
38    /// P=O or P–O (phosphate / phosphonate ester).
39    Phosphate,
40    /// –C(=O)–NH₂ / –NHC(=O)– amide.
41    Amide,
42    /// –C(=O)–O–C ester (not anhydride).
43    Ester,
44    /// –C(=O)–OH carboxylic acid.
45    CarboxylicAcid,
46    /// –CHO terminal aldehyde.
47    Aldehyde,
48    /// –C(=O)– flanked by two C atoms (ketone).
49    Ketone,
50    /// Phenolic –OH on aromatic ring.
51    Phenol,
52    /// –SH thiol (mercaptan).
53    Thiol,
54    /// C–S–C thioether / sulphide.
55    Sulphide,
56    /// Aliphatic –C–OH alcohol.
57    Alcohol,
58    /// C–O–C ether (not ester, not epoxide).
59    Ether,
60    /// Primary, secondary, or tertiary amine –NHₓ (not amide).
61    Amine,
62    /// C–F / C–Cl / C–Br / C–I organic halide.
63    Halide,
64    /// Aromatic ring (any aromatic atom present).
65    AromaticRing,
66}
67
68impl FunctionalGroup {
69    /// Short display label for notes and logging.
70    pub fn label(self) -> &'static str {
71        match self {
72            Self::Anhydride => "Anhydride",
73            Self::Isocyanate => "Isocyanate",
74            Self::Nitrile => "Nitrile",
75            Self::Nitro => "Nitro",
76            Self::Epoxide => "Epoxide",
77            Self::SulphonicAcid => "SulphonicAcid",
78            Self::Phosphate => "Phosphate",
79            Self::Amide => "Amide",
80            Self::Ester => "Ester",
81            Self::CarboxylicAcid => "CarboxylicAcid",
82            Self::Aldehyde => "Aldehyde",
83            Self::Ketone => "Ketone",
84            Self::Phenol => "Phenol",
85            Self::Thiol => "Thiol",
86            Self::Sulphide => "Sulphide",
87            Self::Alcohol => "Alcohol",
88            Self::Ether => "Ether",
89            Self::Amine => "Amine",
90            Self::Halide => "Halide",
91            Self::AromaticRing => "AromaticRing",
92        }
93    }
94}
95
96// ─────────────────────────────────────────────────────────────────────────────
97// Organic / inorganic classification
98// ─────────────────────────────────────────────────────────────────────────────
99
100/// Determine whether a SMILES string represents an organic, inorganic,
101/// or organometallic compound.
102///
103/// Uses the chemical definition: *organic* = contains at least one carbon atom
104/// that is not in a purely inorganic context (CO₂, CO, CS₂, carbonate, cyanide
105/// as free ion).
106pub fn classify_organic(smiles: &str) -> OrganicInorganic {
107    // No carbon → definitely inorganic
108    if !smiles.chars().any(|c| c == 'C' || c == 'c') {
109        return OrganicInorganic::Inorganic;
110    }
111
112    // Exact-match known simple inorganic carbon compounds
113    let normalised = smiles.replace(' ', "");
114    let inorganic_exact: &[&str] = &[
115        "O=C=O",       // CO₂
116        "[O-]C(=O)[O-]", // carbonate ion
117        "[O-]C([O-])=O",
118        "[C-]#[O+]",   // CO
119        "[C+]#[O-]",
120        "S=C=S",       // CS₂
121        "[C-]#N",      // cyanide ion
122        "[N+]#[C-]",
123        "C(=O)([O-])[O-]", // carbonate
124    ];
125    if inorganic_exact.iter().any(|p| normalised == *p) {
126        return OrganicInorganic::Inorganic;
127    }
128
129    // Check multi-component SMILES (dot-separated): each fragment independently
130    // A compound is organometallic if any fragment has a direct metal–C bond.
131    let metal_symbols: &[&str] = &[
132        "[Fe]", "[Co]", "[Ni]", "[Cr]", "[Mn]", "[Mo]", "[W]",
133        "[Ti]", "[V]",  "[Ru]", "[Rh]", "[Pd]", "[Os]", "[Ir]",
134        "[Pt]", "[Zn]", "[Al]", "[Pb]", "[Sn]", "[Hg]", "[Tl]",
135    ];
136    // Organometallic: metal atom directly bonded to carbon in SMILES notation
137    // i.e. the metal symbol is followed or preceded by C/c (with no space or [)
138    for metal in metal_symbols {
139        if smiles.contains(metal) {
140            // Check if this metal is bonded to C in the SMILES graph.
141            // Heuristic: metal symbol immediately adjacent to C or c in the string.
142            let idx = smiles.find(metal).unwrap_or(usize::MAX);
143            let after = smiles.get(idx + metal.len()..).unwrap_or("");
144            let before = smiles.get(..idx).unwrap_or("");
145            let bonded = after.starts_with('C')
146                || after.starts_with('c')
147                || before.ends_with('C')
148                || before.ends_with('c');
149            if bonded {
150                return OrganicInorganic::Organometallic;
151            }
152        }
153    }
154
155    OrganicInorganic::Organic
156}
157
158// ─────────────────────────────────────────────────────────────────────────────
159// Functional group detection
160// ─────────────────────────────────────────────────────────────────────────────
161
162/// Detect functional groups present in a SMILES string.
163///
164/// The detection uses substring pattern matching against both the
165/// canonical and common alternative SMILES representations.
166/// Groups are returned in detection priority order (most specific first).
167///
168/// # Limitations
169/// - Does not perform full SMILES parsing; edge cases may be missed.
170/// - Designed primarily for PubChem canonical SMILES.
171/// - Confidences are capped at ≤ 0.70 due to these limitations.
172pub fn detect_functional_groups(smiles: &str) -> Vec<FunctionalGroup> {
173    let mut groups: Vec<FunctionalGroup> = Vec::new();
174
175    // Helper: returns true if any of `patterns` is a substring of `smiles`.
176    let any = |patterns: &[&str]| -> bool { patterns.iter().any(|p| smiles.contains(p)) };
177
178    // ── 1. Anhydride (check before ester and acid) ────────────────────────
179    // Linear anhydride: C(=O)OC(=O) (e.g. acetic anhydride: CC(=O)OC(=O)C)
180    // Cyclic anhydride: O=C[digit]OC(=O) (e.g. phthalic: O=C1OC(=O)c2ccccc21)
181    let cyclic_anhydride = (1u8..=9).any(|n| {
182        smiles.contains(&format!("O=C{}OC(=O)", n))
183    });
184    if smiles.contains("C(=O)OC(=O)") || cyclic_anhydride {
185        groups.push(FunctionalGroup::Anhydride);
186    }
187
188    // ── 2. Isocyanate ─────────────────────────────────────────────────────
189    if any(&["N=C=O", "O=C=N"]) {
190        groups.push(FunctionalGroup::Isocyanate);
191    }
192
193    // ── 3. Nitrile ────────────────────────────────────────────────────────
194    if any(&["C#N", "N#C"]) {
195        groups.push(FunctionalGroup::Nitrile);
196    }
197
198    // ── 4. Nitro ──────────────────────────────────────────────────────────
199    // PubChem canonical writes the double-bond O before N: O=[N+]([O-])
200    if any(&[
201        "O=[N+]([O-])", // PubChem canonical (nitrobenzene, TNT, etc.)
202        "[N+](=O)[O-]", // alternative bracket form
203        "N(=O)=O",
204        "[N+]([O-])=O",
205        "[N+](=O)([O-])",
206    ]) {
207        groups.push(FunctionalGroup::Nitro);
208    }
209
210    // ── 5. Epoxide (3-membered ring with O) ───────────────────────────────
211    // PubChem canonical for ethylene oxide: C1CO1 (C-C-O ring).
212    // Also handle C1OC1 (alternative) and stereocentres.
213    if any(&[
214        "C1CO1",           // ethylene oxide / PubChem canonical
215        "C1OC1",           // alternative ring ordering
216        "[C@@H]1O[C@H]1",  // stereo epoxide
217        "[C@H]1O[C@@H]1",
218    ]) {
219        groups.push(FunctionalGroup::Epoxide);
220    }
221
222    // ── 6. Sulphonic acid ─────────────────────────────────────────────────
223    if any(&["S(=O)(=O)O", "S(=O)(=O)[OH]", "S(O)(=O)=O", "[S](=O)(=O)O"]) {
224        groups.push(FunctionalGroup::SulphonicAcid);
225    }
226
227    // ── 7. Phosphate / phosphonate ────────────────────────────────────────
228    if smiles.contains('P')
229        && any(&["P(=O)(O)", "P(=O)([O", "P(O)(O)", "P([OH])", "OP(=O)", "P(=O)O"])
230    {
231        groups.push(FunctionalGroup::Phosphate);
232    }
233
234    // ── 8. Amide (before amine) ───────────────────────────────────────────
235    // Canonical: NC(=O), NC(C...)=O, C(N)=O, C(=O)N, C(=O)[NH
236    if any(&[
237        "NC(=O)", "NC(C", // NC(C...)=O  — amide N before carbonyl-C
238        "C(N)=O", "C(=O)N", "C(=O)[NH", "[NH]C(=O)", "[NH2]C(=O)",
239        "N)=O",   // -N)=O terminal amide
240    ]) {
241        // Exclude isocyanate and nitrile (already tagged)
242        let has_iso = groups.contains(&FunctionalGroup::Isocyanate);
243        let has_nitrile = groups.contains(&FunctionalGroup::Nitrile);
244        if !has_iso && !has_nitrile {
245            groups.push(FunctionalGroup::Amide);
246        }
247    }
248
249    // ── 9. Ester (before carboxylic acid) ─────────────────────────────────
250    // Canonical: OC(C...)=O (ester O before carbonyl-C), C(=O)OC
251    let has_anhydride = groups.contains(&FunctionalGroup::Anhydride);
252    if !has_anhydride
253        && any(&[
254            "OC(C)=O", "OC(=O)C", "C(=O)OC", "C(=O)Oc",  // common ester patterns
255            "OC(CC", "OC(c",  // aromatic/branched esters
256        ])
257    {
258        groups.push(FunctionalGroup::Ester);
259    }
260
261    // ── 10. Carboxylic acid ────────────────────────────────────────────────
262    // After ester to avoid false positives
263    let has_ester = groups.contains(&FunctionalGroup::Ester);
264    if !has_ester && !has_anhydride {
265        // Acid patterns: C(=O)O terminal, C(O)=O, OC(=O) at boundaries
266        // In canonical SMILES: acetic acid = CC(=O)O (O is terminal)
267        let has_acid_pattern = any(&[
268            "C(=O)O",    // acetic acid: CC(=O)O — O terminal
269            "C(O)=O",    // alternative writing
270            "C(=O)[OH]", // explicit H on O
271        ]);
272        // Exclude if the pattern belongs to carbonate or similar
273        if has_acid_pattern {
274            groups.push(FunctionalGroup::CarboxylicAcid);
275        }
276    }
277
278    // ── 11. Aldehyde ──────────────────────────────────────────────────────
279    // Terminal C=O with no second C on the carbonyl C
280    // Canonical: CC=O, O=Cc..., [CH]=O
281    let has_higher_carbonyl = groups.iter().any(|g| {
282        matches!(
283            g,
284            FunctionalGroup::Amide
285                | FunctionalGroup::Ester
286                | FunctionalGroup::CarboxylicAcid
287                | FunctionalGroup::Anhydride
288        )
289    });
290    if !has_higher_carbonyl {
291        let aldehyde = smiles.ends_with("C=O")
292            || smiles.ends_with("[CH]=O")
293            || smiles.starts_with("O=C")  // e.g. O=Cc1ccccc1 (benzaldehyde)
294            || any(&["[CH]=O", "[CHO]"]);
295        if aldehyde {
296            groups.push(FunctionalGroup::Aldehyde);
297        }
298    }
299
300    // ── 12. Ketone ────────────────────────────────────────────────────────
301    // Carbonyl C with C on both sides; canonical: CC(C)=O, CC(CC)=O
302    if !has_higher_carbonyl {
303        let has_aldehyde = groups.contains(&FunctionalGroup::Aldehyde);
304        if !has_aldehyde
305            && any(&[
306                "C(C)=O",  // CC(C)=O acetone, CC(CC)=O 2-butanone
307                "C(CC)=O", "C(CCC)=O",
308                "C(c)=O",  // aryl ketone: C(c1...)=O
309                "c(=O)C",  // aromatic ketone
310                "C(=O)C",  // alternative form: CC(=O)CC
311            ])
312        {
313            groups.push(FunctionalGroup::Ketone);
314        }
315    }
316
317    // ── 13. Phenol ────────────────────────────────────────────────────────
318    if any(&[
319        "c1ccccc1O", "Oc1ccccc1",
320        "c(O)",      // aromatic C-OH inline
321        "c([OH])",   // explicit
322        "Oc1cc", "Oc1ccc", "c1cc(O)", "c1ccc(O)",
323    ]) {
324        groups.push(FunctionalGroup::Phenol);
325    }
326
327    // ── 14. Thiol ─────────────────────────────────────────────────────────
328    // Canonical: [SH] explicit, or CS at end of string
329    if any(&["[SH]", "C[SH]", "c[SH]"])
330        || smiles.ends_with("CS")
331        || smiles.ends_with("cS")
332    {
333        groups.push(FunctionalGroup::Thiol);
334    }
335
336    // ── 15. Sulphide (after thiol and sulphonic acid) ──────────────────────
337    let has_sulphonic = groups.contains(&FunctionalGroup::SulphonicAcid);
338    let has_thiol = groups.contains(&FunctionalGroup::Thiol);
339    if !has_sulphonic
340        && !has_thiol
341        && smiles.contains('S')
342        && any(&["CSC", "cSC", "CSc", "cSc", "C(S)C"])
343    {
344        groups.push(FunctionalGroup::Sulphide);
345    }
346
347    // ── 16. Alcohol ───────────────────────────────────────────────────────
348    // Aliphatic C-OH: [OH] explicit, terminal O in chain, or (O) pendant
349    let has_phenol = groups.contains(&FunctionalGroup::Phenol);
350    let has_acid = groups.contains(&FunctionalGroup::CarboxylicAcid);
351    let has_ester2 = groups.contains(&FunctionalGroup::Ester);
352    let has_anhydride2 = groups.contains(&FunctionalGroup::Anhydride);
353    // Also guard against aldehyde: "CC=O" ends with "O" but is not an alcohol.
354    let has_aldehyde_grp = groups.contains(&FunctionalGroup::Aldehyde);
355    if !has_phenol && !has_acid && !has_ester2 && !has_anhydride2 && !has_aldehyde_grp {
356        let alcohol = any(&["[OH]", "C[OH]"])
357            || smiles.ends_with("CO")
358            || smiles.ends_with("CCO")
359            || smiles.ends_with("O")  // generic terminal O (e.g. CCO = ethanol)
360            || any(&["C(O)", "C([OH])"]);
361        if alcohol {
362            groups.push(FunctionalGroup::Alcohol);
363        }
364    }
365
366    // ── 17. Ether ─────────────────────────────────────────────────────────
367    // C-O-C not ester, not epoxide, not acid anhydride
368    let has_epoxide = groups.contains(&FunctionalGroup::Epoxide);
369    let has_ester3 = groups.contains(&FunctionalGroup::Ester);
370    let has_acid2 = groups.contains(&FunctionalGroup::CarboxylicAcid);
371    if !has_epoxide && !has_ester3 && !has_acid2 && !has_anhydride
372        && any(&["COC", "cOC", "COc", "cOc"]) {
373        groups.push(FunctionalGroup::Ether);
374    }
375
376    // ── 18. Amine ─────────────────────────────────────────────────────────
377    // N not in amide, nitrile, nitro
378    let has_amide = groups.contains(&FunctionalGroup::Amide);
379    let has_nitrile = groups.contains(&FunctionalGroup::Nitrile);
380    let has_nitro = groups.contains(&FunctionalGroup::Nitro);
381    if smiles.contains('N')
382        && !has_nitrile
383        && !has_nitro
384    {
385        // Look for amine patterns not adjacent to a carbonyl
386        let amine = any(&[
387            "CN", "NC", "[NH2]", "[NH3+]", "[NH]", "cN", "Nc",
388        ]);
389        // If amide already detected, only add amine if there's a free amine too
390        if amine && (!has_amide || any(&["[NH2]", "[NH3+]", "CN(", "N(C)C"])) {
391            groups.push(FunctionalGroup::Amine);
392        }
393    }
394
395    // ── 19. Halide ────────────────────────────────────────────────────────
396    if any(&[
397        "CF", "CCl", "CBr", "CI",
398        "Fc", "Clc", "Brc", "Ic",
399        "[F]", "[Cl]", "[Br]", "[I]",
400        "c[F]", "c[Cl]", "c[Br]", "c[I]",
401        "CF3", "CCl3", "CHF", "CHCl", "CHBr",
402    ]) {
403        groups.push(FunctionalGroup::Halide);
404    }
405
406    // ── 20. Aromatic ring (last — lowest priority) ────────────────────────
407    if smiles.chars().any(|c| matches!(c, 'c' | 'n' | 'o' | 's' | 'p')) {
408        groups.push(FunctionalGroup::AromaticRing);
409    }
410
411    groups
412}
413
414// ─────────────────────────────────────────────────────────────────────────────
415// Structural feature extraction
416// ─────────────────────────────────────────────────────────────────────────────
417
418/// Atom-count and connectivity properties extracted from a SMILES string.
419///
420/// These supplement functional-group detection and are used by
421/// [`crate::smiles::chapter_map::map_to_subheading`] to resolve
422/// 4-digit HS headings to 6-digit subheadings.
423///
424/// Analysis is heuristic and designed for PubChem canonical SMILES.
425#[derive(Debug, Clone, Default, Serialize, Deserialize)]
426pub struct StructuralFeatures {
427    /// Total carbon atom count (uppercase C + aromatic c, excluding Cl).
428    pub carbon_count: u32,
429    /// Estimated hydroxyl (–OH) group count.
430    ///
431    /// For carboxylic acids this includes the acid –OH (one per –COOH).
432    /// Use `hydroxyl_count.saturating_sub(1)` when `CarboxylicAcid` is
433    /// in the detected functional groups to get the extra alcohol –OH count.
434    pub hydroxyl_count: u32,
435    /// Number of C=O (carbonyl) groups (ketone, aldehyde, ester, acid, etc.).
436    pub carbonyl_count: u32,
437    /// `true` when the SMILES contains a ring-closure digit outside brackets.
438    pub has_ring: bool,
439    /// `true` when lowercase aromatic-carbon atoms (`c`) are present.
440    pub has_aromatic_ring: bool,
441    /// `true` when a C=C aliphatic double bond is present.
442    pub has_cc_double_bond: bool,
443    /// `true` when a halogen substituent (F, Cl, Br, I) is present.
444    pub has_halogen: bool,
445}
446
447/// Extract structural features from a canonical SMILES string.
448///
449/// The analysis is approximate.  Use together with [`detect_functional_groups`]
450/// to narrow 4-digit HS headings down to 6-digit subheadings.
451pub fn detect_structural_features(smiles: &str) -> StructuralFeatures {
452    StructuralFeatures {
453        carbon_count:      count_carbons(smiles),
454        hydroxyl_count:    count_hydroxyls(smiles),
455        carbonyl_count:    smiles.matches("=O").count() as u32,
456        has_ring:          ring_present(smiles),
457        has_aromatic_ring: smiles.contains('c'),
458        has_cc_double_bond: cc_double_bond_present(smiles),
459        has_halogen: smiles.contains('F')
460            || smiles.contains("Cl")
461            || smiles.contains("Br")
462            || (smiles.contains('I') && !smiles.contains("In")),
463    }
464}
465
466/// Count carbon atoms in a SMILES string.
467/// Handles bracket atoms (`[13C]`, `[CH2]`) and skips `Cl` (chlorine).
468fn count_carbons(smiles: &str) -> u32 {
469    let mut count = 0u32;
470    let mut chars = smiles.chars().peekable();
471    let mut in_bracket = false;
472    let mut bracket_buf = String::new();
473
474    while let Some(ch) = chars.next() {
475        match ch {
476            '[' => {
477                in_bracket = true;
478                bracket_buf.clear();
479            }
480            ']' if in_bracket => {
481                in_bracket = false;
482                // Strip leading isotope digits then inspect the atom symbol.
483                let sym = bracket_buf.trim_start_matches(|c: char| c.is_ascii_digit());
484                if sym.starts_with('C') || sym.starts_with('c') {
485                    count += 1;
486                }
487            }
488            c if in_bracket => bracket_buf.push(c),
489            'C' => {
490                if chars.peek() == Some(&'l') {
491                    chars.next(); // Cl = chlorine, not carbon
492                } else {
493                    count += 1;
494                }
495            }
496            'c' => count += 1,
497            _ => {}
498        }
499    }
500    count
501}
502
503/// Estimate the number of hydroxyl (–OH) groups in a SMILES string.
504///
505/// Counts aliphatic `O` atoms that are not carbonyl oxygens (`=O`) and not
506/// ether oxygens (flanked by carbon on both sides).  Also recognises `[OH]`.
507fn count_hydroxyls(smiles: &str) -> u32 {
508    let chars: Vec<char> = smiles.chars().collect();
509    let n = chars.len();
510    let mut count = 0u32;
511    let mut i = 0;
512
513    while i < n {
514        // Bracket atom: read until ']'
515        if chars[i] == '[' {
516            i += 1;
517            let mut buf = String::new();
518            while i < n && chars[i] != ']' {
519                buf.push(chars[i]);
520                i += 1;
521            }
522            i += 1; // skip ']'
523            let sym = buf.trim_start_matches(|c: char| c.is_ascii_digit());
524            if sym.starts_with("OH") {
525                count += 1;
526            }
527            continue;
528        }
529
530        if chars[i] == 'O' {
531            let prev = if i > 0 { chars[i - 1] } else { '\0' };
532            let next = if i + 1 < n { chars[i + 1] } else { '\0' };
533
534            // Skip carbonyl oxygen (=O)
535            if prev == '=' {
536                i += 1;
537                continue;
538            }
539
540            // Skip ether oxygen: carbon-like on both sides
541            let prev_is_c = matches!(prev, 'C' | 'c' | ')');
542            let next_is_c = matches!(next, 'C' | 'c' | '(');
543            if prev_is_c && next_is_c {
544                i += 1;
545                continue;
546            }
547
548            count += 1;
549        }
550
551        i += 1;
552    }
553    count
554}
555
556/// Return `true` when the SMILES contains a ring-closure digit outside brackets.
557fn ring_present(smiles: &str) -> bool {
558    let mut in_bracket = false;
559    for ch in smiles.chars() {
560        match ch {
561            '[' => in_bracket = true,
562            ']' => in_bracket = false,
563            c if c.is_ascii_digit() && !in_bracket => return true,
564            _ => {}
565        }
566    }
567    false
568}
569
570/// Return `true` when a C=C aliphatic double bond is present.
571fn cc_double_bond_present(smiles: &str) -> bool {
572    // Direct C=C forms
573    smiles.contains("C=C")
574        || smiles.contains("c=c")
575        || smiles.contains("C=c")
576        || smiles.contains("c=C")
577        // Branch form: C(=C)... e.g. methacrylic acid CC(=C)C(=O)O
578        || smiles.contains("(=C)")
579        || smiles.contains("(=c)")
580}
581
582// ─────────────────────────────────────────────────────────────────────────────
583// Tests
584// ─────────────────────────────────────────────────────────────────────────────
585
586#[cfg(test)]
587mod tests {
588    use super::*;
589
590    fn fg(smiles: &str) -> Vec<FunctionalGroup> {
591        detect_functional_groups(smiles)
592    }
593
594    fn has(smiles: &str, g: FunctionalGroup) -> bool {
595        fg(smiles).contains(&g)
596    }
597
598    // ── Organic / inorganic ───────────────────────────────────────────────
599
600    #[test]
601    fn co2_is_inorganic() {
602        assert_eq!(classify_organic("O=C=O"), OrganicInorganic::Inorganic);
603    }
604
605    #[test]
606    fn water_is_inorganic() {
607        assert_eq!(classify_organic("O"), OrganicInorganic::Inorganic);
608    }
609
610    #[test]
611    fn ethanol_is_organic() {
612        assert_eq!(classify_organic("CCO"), OrganicInorganic::Organic);
613    }
614
615    #[test]
616    fn benzene_is_organic() {
617        assert_eq!(classify_organic("c1ccccc1"), OrganicInorganic::Organic);
618    }
619
620    // ── Functional group detection ────────────────────────────────────────
621
622    #[test]
623    fn acetic_acid_detected() {
624        // CC(=O)O — acetic acid (PubChem canonical)
625        assert!(has("CC(=O)O", FunctionalGroup::CarboxylicAcid));
626        assert!(!has("CC(=O)O", FunctionalGroup::Ester));
627    }
628
629    #[test]
630    fn ethyl_acetate_detected_as_ester() {
631        // CCOC(C)=O — ethyl acetate (PubChem canonical)
632        assert!(has("CCOC(C)=O", FunctionalGroup::Ester));
633        assert!(!has("CCOC(C)=O", FunctionalGroup::CarboxylicAcid));
634    }
635
636    #[test]
637    fn phthalic_anhydride_detected() {
638        // O=C1OC(=O)c2ccccc21
639        let groups = fg("O=C1OC(=O)c2ccccc21");
640        assert!(groups.contains(&FunctionalGroup::Anhydride));
641        assert!(!groups.contains(&FunctionalGroup::Ester));
642    }
643
644    #[test]
645    fn acetaldehyde_detected() {
646        // CC=O
647        assert!(has("CC=O", FunctionalGroup::Aldehyde));
648        assert!(!has("CC=O", FunctionalGroup::Ketone));
649    }
650
651    /// Regression test: "CC=O" (acetaldehyde) must NOT be classified as Alcohol.
652    /// The terminal "O" in "CC=O" was previously caught by the generic
653    /// `smiles.ends_with("O")` check in the alcohol branch.
654    #[test]
655    fn acetaldehyde_not_classified_as_alcohol() {
656        assert!(!has("CC=O", FunctionalGroup::Alcohol),
657            "aldehyde SMILES 'CC=O' must not produce Alcohol group");
658    }
659
660    #[test]
661    fn acetone_detected_as_ketone() {
662        // CC(C)=O — PubChem canonical
663        assert!(has("CC(C)=O", FunctionalGroup::Ketone));
664        assert!(!has("CC(C)=O", FunctionalGroup::Aldehyde));
665    }
666
667    #[test]
668    fn ethanol_detected_as_alcohol() {
669        // CCO
670        assert!(has("CCO", FunctionalGroup::Alcohol));
671        assert!(!has("CCO", FunctionalGroup::Ether));
672    }
673
674    #[test]
675    fn dimethyl_ether_detected() {
676        // COC
677        assert!(has("COC", FunctionalGroup::Ether));
678        assert!(!has("COC", FunctionalGroup::Alcohol));
679    }
680
681    #[test]
682    fn methylamine_detected() {
683        // CN — methylamine
684        assert!(has("CN", FunctionalGroup::Amine));
685    }
686
687    #[test]
688    fn acetamide_detected() {
689        // CC(N)=O — acetamide (PubChem canonical)
690        assert!(has("CC(N)=O", FunctionalGroup::Amide));
691        assert!(!has("CC(N)=O", FunctionalGroup::Ketone));
692    }
693
694    #[test]
695    fn acetonitrile_detected() {
696        // CC#N
697        assert!(has("CC#N", FunctionalGroup::Nitrile));
698    }
699
700    #[test]
701    fn chloromethane_detected() {
702        // CCl
703        assert!(has("CCl", FunctionalGroup::Halide));
704    }
705
706    #[test]
707    fn ethylene_oxide_detected() {
708        // C1CO1 — ethylene oxide (PubChem canonical)
709        assert!(has("C1CO1", FunctionalGroup::Epoxide));
710    }
711
712    #[test]
713    fn benzene_detected_as_aromatic() {
714        assert!(has("c1ccccc1", FunctionalGroup::AromaticRing));
715    }
716
717    #[test]
718    fn phenol_detected() {
719        // Oc1ccccc1
720        assert!(has("Oc1ccccc1", FunctionalGroup::Phenol));
721    }
722
723    #[test]
724    fn nitrobenzene_detected() {
725        // O=[N+]([O-])c1ccccc1
726        assert!(has("O=[N+]([O-])c1ccccc1", FunctionalGroup::Nitro));
727    }
728
729    #[test]
730    fn ethanesulfonic_acid_detected() {
731        // CCS(=O)(=O)O
732        assert!(has("CCS(=O)(=O)O", FunctionalGroup::SulphonicAcid));
733    }
734
735    #[test]
736    fn dimethyl_sulfide_detected() {
737        // CSC
738        assert!(has("CSC", FunctionalGroup::Sulphide));
739    }
740
741    #[test]
742    fn methanethiol_detected() {
743        // C[SH]
744        assert!(has("C[SH]", FunctionalGroup::Thiol));
745    }
746
747    #[test]
748    fn isocyanate_detected() {
749        // CN=C=O — methyl isocyanate
750        assert!(has("CN=C=O", FunctionalGroup::Isocyanate));
751    }
752
753    #[test]
754    fn trimethyl_phosphate_detected() {
755        // COP(=O)(OC)OC
756        assert!(has("COP(=O)(OC)OC", FunctionalGroup::Phosphate));
757    }
758
759    // ── StructuralFeatures ────────────────────────────────────────────────
760
761    fn sf(smiles: &str) -> StructuralFeatures {
762        detect_structural_features(smiles)
763    }
764
765    #[test]
766    fn acetone_carbon_count_3() {
767        // CC(C)=O — 3 carbons, no ring, no aromatic, no C=C
768        let f = sf("CC(C)=O");
769        assert_eq!(f.carbon_count, 3);
770        assert!(!f.has_ring);
771        assert!(!f.has_aromatic_ring);
772        assert!(!f.has_cc_double_bond);
773        assert_eq!(f.carbonyl_count, 1);
774    }
775
776    #[test]
777    fn ethanol_hydroxyl_count_1() {
778        // CCO — 2 carbons, 1 OH
779        let f = sf("CCO");
780        assert_eq!(f.carbon_count, 2);
781        assert_eq!(f.hydroxyl_count, 1);
782    }
783
784    #[test]
785    fn ethylene_glycol_hydroxyl_count_2() {
786        // OCCO — 2 carbons, 2 OH
787        let f = sf("OCCO");
788        assert_eq!(f.carbon_count, 2);
789        assert_eq!(f.hydroxyl_count, 2);
790    }
791
792    #[test]
793    fn glycerol_hydroxyl_count_3() {
794        // OCC(O)CO — 3 carbons, 3 OH
795        let f = sf("OCC(O)CO");
796        assert_eq!(f.carbon_count, 3);
797        assert_eq!(f.hydroxyl_count, 3);
798    }
799
800    #[test]
801    fn ether_oxygen_not_counted_as_oh() {
802        // COC — dimethyl ether, 0 OH
803        let f = sf("COC");
804        assert_eq!(f.hydroxyl_count, 0);
805    }
806
807    #[test]
808    fn acetic_acid_one_oh() {
809        // CC(=O)O — acetic acid: 1 carbonyl + 1 acid OH
810        let f = sf("CC(=O)O");
811        assert_eq!(f.carbon_count, 2);
812        assert_eq!(f.hydroxyl_count, 1);
813        assert_eq!(f.carbonyl_count, 1);
814    }
815
816    #[test]
817    fn acrylic_acid_has_cc_double_bond() {
818        // C=CC(=O)O — acrylic acid: C=C present
819        let f = sf("C=CC(=O)O");
820        assert!(f.has_cc_double_bond);
821        assert_eq!(f.carbon_count, 3);
822    }
823
824    #[test]
825    fn methacrylic_acid_has_cc_double_bond() {
826        // CC(=C)C(=O)O — methacrylic acid: branch C=C
827        let f = sf("CC(=C)C(=O)O");
828        assert!(f.has_cc_double_bond);
829        assert_eq!(f.carbon_count, 4);
830    }
831
832    #[test]
833    fn benzene_has_aromatic_ring() {
834        let f = sf("c1ccccc1");
835        assert!(f.has_ring);
836        assert!(f.has_aromatic_ring);
837        assert_eq!(f.carbon_count, 6);
838    }
839
840    #[test]
841    fn cyclohexanone_is_ring_no_aromatic() {
842        // O=C1CCCCC1 — cyclohexanone: 6C, ring, no aromatic
843        let f = sf("O=C1CCCCC1");
844        assert!(f.has_ring);
845        assert!(!f.has_aromatic_ring);
846        assert_eq!(f.carbon_count, 6);
847    }
848
849    #[test]
850    fn chlorobenzene_has_halogen() {
851        let f = sf("Clc1ccccc1");
852        assert!(f.has_halogen);
853        assert_eq!(f.carbon_count, 6);
854    }
855
856    #[test]
857    fn methanol_carbon_count_1() {
858        let f = sf("CO");
859        assert_eq!(f.carbon_count, 1);
860        assert_eq!(f.hydroxyl_count, 1);
861    }
862}