Compare commits
1 Commits
| Author | SHA1 | Date | |
|---|---|---|---|
| c5317eb2b4 |
+47
-1
@@ -1,6 +1,6 @@
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// mavend/patterns.go — the shared detect+propose step of pattern inference
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// (Vikunja #43). Event *extraction* (fact -> action/object) happens at fact-
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// write time in voice.go's detectPattern, tied to whichever channel wrote the
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// write time in detectPattern below, tied to whichever channel wrote the
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// fact. Detection — turning a run of events into a proposed routine — is
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// channel-agnostic: it only needs what's already in the events table, so it
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// runs both right after a voice fact-write (for the immediate "напоминать?"
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@@ -13,6 +13,7 @@ import (
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"context"
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"errors"
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"fmt"
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"log"
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"time"
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"github.com/kami/maven/internal/pattern"
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@@ -72,3 +73,48 @@ func detectAndPropose(ctx context.Context, ds *store.Store, action, object strin
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}
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return r, id, nil
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}
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// detectPattern extracts an event from the written fact and runs the pattern
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// detector. If a stable recurring pattern is found and no proposed routine
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// exists for this action+object yet, one is created and the user is prompted
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// to confirm via the park() mechanism. Returns the suggestion phrase when a
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// new proposal was created and parked; "" otherwise.
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func (h *reactiveHandler) detectPattern(ctx context.Context, factID int64, key, value string, ts time.Time) string {
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ev := pattern.Extract(factID, key, value, ts)
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if ev == nil {
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return "" // not an actionable event
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}
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if _, err := h.dataStore.CreateEvent(ctx, factID, ev.Action, ev.Object, ts); err != nil {
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log.Printf("voice: create event: %v", err)
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return ""
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}
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// Detect+propose (Vikunja #43) is shared with the digestion tick's
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// proactive scan — see detectAndPropose above. Event *extraction* stays
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// here, tied to this fact write; detection over the accumulated history does
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// not need to happen right now for the voice path to have already done
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// its job — it's dedupe-safe to also let the next tick find the same
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// pattern independently.
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r, id, err := detectAndPropose(ctx, h.dataStore, ev.Action, ev.Object, ts)
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if err != nil {
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log.Printf("voice: detect pattern %s/%s: %v", ev.Action, ev.Object, err)
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return ""
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}
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if r == nil {
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return "" // not enough data, too irregular, or already proposed/decided
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}
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log.Printf("voice: proposed routine: %s/%s every %.1f days", r.Action, r.Object, r.IntervalDays)
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// Park the proposal for voice confirmation.
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phrase := pattern.PhraseRoutine(r)
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h.mu.Lock()
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h.pendingRoutine = &pendingRoutineConfirm{
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routineID: id,
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action: r.Action,
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object: r.Object,
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interval: r.IntervalDays,
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phrase: phrase,
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expiry: ts.Add(confirmTTL),
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}
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h.mu.Unlock()
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return phrase
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}
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@@ -0,0 +1,144 @@
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// Quiet-mode toggle recognition — the pre-route keyword check that lets
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// "тихий режим" flip the daemon-wide quiet_hours config without going through
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// the router. Moved out of voice.go unchanged (Vikunja #321); the tests live in
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// quiet_toggle_test.go.
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package main
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import (
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"context"
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"log"
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"strings"
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"unicode"
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"github.com/kami/maven/internal/ipc"
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)
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// resolveQuietToggle — pre-route keyword check. Returns (reply, true) when
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// the utterance is a quiet-on/off command; ("", false) otherwise. Called from
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// runTurn BEFORE the router so a classifier miscue can't drop it — which means
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// both the voice path and the text path (mavweb /api/chat, telegram) reach it,
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// so a false positive here is a network-reachable way to flip a daemon-wide
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// setting. See classifyQuietToggle for the matching rule.
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func (h *reactiveHandler) resolveQuietToggle(ctx context.Context, text string) (string, bool) {
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on, off := classifyQuietToggle(text)
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if !on && !off {
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return "", false
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}
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val := "false"
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reply := "тихий режим выключен."
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if on {
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val = "true"
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reply = "тихий режим включён. буду реже напоминать."
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}
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if _, err := h.api.WriteFact(ctx, ipc.WriteFactReq{
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Ts: h.now(),
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Kind: "config",
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Key: "quiet_hours",
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Value: val,
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Source: "tap:voice",
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Confidence: 1.0,
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}); err != nil {
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log.Printf("voice: write quiet_hours: %v", err)
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return "не получилось переключить тихий режим.", true
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}
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return reply, true
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}
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// quietInflections — the inflectional endings a stem may carry and still be
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// the same word. Adjective/adverb/noun/verb endings, all ≤3 letters. This is
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// what separates "тихий"/"тихом"/"тихо" (stem "тих" + a real ending) from
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// "тихонько"/"потихоньку", which are different words: "онько" is not an
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// ending, and "потихоньку" doesn't start with the stem at all.
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var quietInflections = []string{
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"", "а", "е", "и", "й", "о", "у", "ы", "ю", "я",
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"ая", "ее", "ей", "ем", "ие", "ий", "им", "их", "ия", "ию", "ое", "ой", "ом", "ую", "ые", "ый", "ым", "ых", "ья",
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"ами", "ого", "ому", "ыми", "ать", "ить", "ять",
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}
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// quietStem reports whether tok is the given stem carrying at most one
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// inflectional ending. Word boundaries come from tokenisation (see
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// quietTokens), not from a regexp — Go's \b is ASCII-oriented and treats every
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// Cyrillic letter as a non-word character, so `\bтих\b` would happily match
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// inside "тихонько". Comparing whole tokens sidesteps that entirely.
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func quietStem(tok, stem string) bool {
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if !strings.HasPrefix(tok, stem) {
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return false
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}
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suffix := tok[len(stem):]
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for _, e := range quietInflections {
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if suffix == e {
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return true
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}
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}
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return false
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}
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// quietTokens splits an utterance into lowercase word tokens, dropping
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// punctuation and spacing. Unicode-aware, so Cyrillic words tokenise the same
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// way ASCII ones do.
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func quietTokens(text string) []string {
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return strings.FieldsFunc(strings.ToLower(strings.TrimSpace(text)), func(r rune) bool {
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return !unicode.IsLetter(r) && !unicode.IsDigit(r)
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})
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}
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// quietPhrase matches a pattern (a sequence of stems) against the token list.
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// Multi-word patterns match any contiguous run of tokens — "включи тихий
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// режим" carries "тихий режим". Single-word patterns match ONLY when they are
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// the whole utterance: bare "тихо" is a command, but "в комнате тихо" is a
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// remark about the room and must not flip a daemon-wide setting.
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func quietPhrase(tokens, pattern []string) bool {
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if len(pattern) == 0 || len(tokens) < len(pattern) {
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return false
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}
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if len(pattern) == 1 {
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return len(tokens) == 1 && quietStem(tokens[0], pattern[0])
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}
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for i := 0; i+len(pattern) <= len(tokens); i++ {
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hit := true
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for j, stem := range pattern {
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if !quietStem(tokens[i+j], stem) {
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hit = false
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break
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}
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}
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if hit {
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return true
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}
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}
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return false
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}
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// quietOffPhrases / quietOnPhrases — the toggle vocabulary, as stem sequences.
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var (
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quietOffPhrases = [][]string{
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{"quiet", "off"}, {"quiet", "end"},
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{"громк", "режим"}, {"шумн", "режим"},
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{"отмен", "тих"}, {"выключ", "тих"}, {"не", "тих"},
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}
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quietOnPhrases = [][]string{
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{"quiet", "on"}, {"quiet", "mode"},
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{"тих", "режим"}, {"не", "шум"}, {"не", "беспоко"},
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{"тих"},
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}
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)
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// classifyQuietToggle reads an utterance as a quiet-mode command. OFF is
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// resolved before ON for the same reason classifyConfirm checks negatives
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// first: the OFF phrases are built out of the ON words ("выключи тихий"
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// contains "тихий"), so scanning ON first would shadow them and "выключи
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// тихий режим" would turn quiet mode on. Negation wins.
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func classifyQuietToggle(text string) (on, off bool) {
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tokens := quietTokens(text)
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for _, p := range quietOffPhrases {
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if quietPhrase(tokens, p) {
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return false, true
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}
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}
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for _, p := range quietOnPhrases {
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if quietPhrase(tokens, p) {
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return true, false
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}
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}
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return false, false
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}
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@@ -50,13 +50,11 @@ import (
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"strings"
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"sync"
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"time"
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"unicode"
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"github.com/kami/maven/internal/audio"
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"github.com/kami/maven/internal/dialogue"
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"github.com/kami/maven/internal/ipc"
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"github.com/kami/maven/internal/memory"
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"github.com/kami/maven/internal/pattern"
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"github.com/kami/maven/internal/phraser"
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"github.com/kami/maven/internal/router"
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"github.com/kami/maven/internal/store"
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@@ -277,181 +275,6 @@ func (h *reactiveHandler) applyAction(ctx context.Context, dec router.Decision)
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return ""
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}
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// detectPattern extracts an event from the written fact and runs the pattern
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// detector. If a stable recurring pattern is found and no proposed routine
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// exists for this action+object yet, one is created and the user is prompted
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// to confirm via the park() mechanism. Returns the suggestion phrase when a
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// new proposal was created and parked; "" otherwise.
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func (h *reactiveHandler) detectPattern(ctx context.Context, factID int64, key, value string, ts time.Time) string {
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ev := pattern.Extract(factID, key, value, ts)
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if ev == nil {
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return "" // not an actionable event
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}
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if _, err := h.dataStore.CreateEvent(ctx, factID, ev.Action, ev.Object, ts); err != nil {
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log.Printf("voice: create event: %v", err)
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return ""
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}
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// Detect+propose (Vikunja #43) is shared with the digestion tick's
|
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// proactive scan — see patterns.go. Event *extraction* above stays here,
|
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// tied to this fact write; detection over the accumulated history does
|
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// not need to happen right now for the voice path to have already done
|
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// its job — it's dedupe-safe to also let the next tick find the same
|
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// pattern independently.
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r, id, err := detectAndPropose(ctx, h.dataStore, ev.Action, ev.Object, ts)
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if err != nil {
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log.Printf("voice: detect pattern %s/%s: %v", ev.Action, ev.Object, err)
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return ""
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}
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if r == nil {
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return "" // not enough data, too irregular, or already proposed/decided
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}
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log.Printf("voice: proposed routine: %s/%s every %.1f days", r.Action, r.Object, r.IntervalDays)
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// Park the proposal for voice confirmation.
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phrase := pattern.PhraseRoutine(r)
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h.mu.Lock()
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h.pendingRoutine = &pendingRoutineConfirm{
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routineID: id,
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action: r.Action,
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object: r.Object,
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interval: r.IntervalDays,
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phrase: phrase,
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expiry: ts.Add(confirmTTL),
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}
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h.mu.Unlock()
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return phrase
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}
|
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|
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// resolveQuietToggle — pre-route keyword check. Returns (reply, true) when
|
||||
// the utterance is a quiet-on/off command; ("", false) otherwise. Called from
|
||||
// runTurn BEFORE the router so a classifier miscue can't drop it — which means
|
||||
// both the voice path and the text path (mavweb /api/chat, telegram) reach it,
|
||||
// so a false positive here is a network-reachable way to flip a daemon-wide
|
||||
// setting. See classifyQuietToggle for the matching rule.
|
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func (h *reactiveHandler) resolveQuietToggle(ctx context.Context, text string) (string, bool) {
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on, off := classifyQuietToggle(text)
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if !on && !off {
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return "", false
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}
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val := "false"
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reply := "тихий режим выключен."
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if on {
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val = "true"
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reply = "тихий режим включён. буду реже напоминать."
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}
|
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if _, err := h.api.WriteFact(ctx, ipc.WriteFactReq{
|
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Ts: h.now(),
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Kind: "config",
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Key: "quiet_hours",
|
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Value: val,
|
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Source: "tap:voice",
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Confidence: 1.0,
|
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}); err != nil {
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log.Printf("voice: write quiet_hours: %v", err)
|
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return "не получилось переключить тихий режим.", true
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}
|
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return reply, true
|
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}
|
||||
|
||||
// quietInflections — the inflectional endings a stem may carry and still be
|
||||
// the same word. Adjective/adverb/noun/verb endings, all ≤3 letters. This is
|
||||
// what separates "тихий"/"тихом"/"тихо" (stem "тих" + a real ending) from
|
||||
// "тихонько"/"потихоньку", which are different words: "онько" is not an
|
||||
// ending, and "потихоньку" doesn't start with the stem at all.
|
||||
var quietInflections = []string{
|
||||
"", "а", "е", "и", "й", "о", "у", "ы", "ю", "я",
|
||||
"ая", "ее", "ей", "ем", "ие", "ий", "им", "их", "ия", "ию", "ое", "ой", "ом", "ую", "ые", "ый", "ым", "ых", "ья",
|
||||
"ами", "ого", "ому", "ыми", "ать", "ить", "ять",
|
||||
}
|
||||
|
||||
// quietStem reports whether tok is the given stem carrying at most one
|
||||
// inflectional ending. Word boundaries come from tokenisation (see
|
||||
// quietTokens), not from a regexp — Go's \b is ASCII-oriented and treats every
|
||||
// Cyrillic letter as a non-word character, so `\bтих\b` would happily match
|
||||
// inside "тихонько". Comparing whole tokens sidesteps that entirely.
|
||||
func quietStem(tok, stem string) bool {
|
||||
if !strings.HasPrefix(tok, stem) {
|
||||
return false
|
||||
}
|
||||
suffix := tok[len(stem):]
|
||||
for _, e := range quietInflections {
|
||||
if suffix == e {
|
||||
return true
|
||||
}
|
||||
}
|
||||
return false
|
||||
}
|
||||
|
||||
// quietTokens splits an utterance into lowercase word tokens, dropping
|
||||
// punctuation and spacing. Unicode-aware, so Cyrillic words tokenise the same
|
||||
// way ASCII ones do.
|
||||
func quietTokens(text string) []string {
|
||||
return strings.FieldsFunc(strings.ToLower(strings.TrimSpace(text)), func(r rune) bool {
|
||||
return !unicode.IsLetter(r) && !unicode.IsDigit(r)
|
||||
})
|
||||
}
|
||||
|
||||
// quietPhrase matches a pattern (a sequence of stems) against the token list.
|
||||
// Multi-word patterns match any contiguous run of tokens — "включи тихий
|
||||
// режим" carries "тихий режим". Single-word patterns match ONLY when they are
|
||||
// the whole utterance: bare "тихо" is a command, but "в комнате тихо" is a
|
||||
// remark about the room and must not flip a daemon-wide setting.
|
||||
func quietPhrase(tokens, pattern []string) bool {
|
||||
if len(pattern) == 0 || len(tokens) < len(pattern) {
|
||||
return false
|
||||
}
|
||||
if len(pattern) == 1 {
|
||||
return len(tokens) == 1 && quietStem(tokens[0], pattern[0])
|
||||
}
|
||||
for i := 0; i+len(pattern) <= len(tokens); i++ {
|
||||
hit := true
|
||||
for j, stem := range pattern {
|
||||
if !quietStem(tokens[i+j], stem) {
|
||||
hit = false
|
||||
break
|
||||
}
|
||||
}
|
||||
if hit {
|
||||
return true
|
||||
}
|
||||
}
|
||||
return false
|
||||
}
|
||||
|
||||
// quietOffPhrases / quietOnPhrases — the toggle vocabulary, as stem sequences.
|
||||
var (
|
||||
quietOffPhrases = [][]string{
|
||||
{"quiet", "off"}, {"quiet", "end"},
|
||||
{"громк", "режим"}, {"шумн", "режим"},
|
||||
{"отмен", "тих"}, {"выключ", "тих"}, {"не", "тих"},
|
||||
}
|
||||
quietOnPhrases = [][]string{
|
||||
{"quiet", "on"}, {"quiet", "mode"},
|
||||
{"тих", "режим"}, {"не", "шум"}, {"не", "беспоко"},
|
||||
{"тих"},
|
||||
}
|
||||
)
|
||||
|
||||
// classifyQuietToggle reads an utterance as a quiet-mode command. OFF is
|
||||
// resolved before ON for the same reason classifyConfirm checks negatives
|
||||
// first: the OFF phrases are built out of the ON words ("выключи тихий"
|
||||
// contains "тихий"), so scanning ON first would shadow them and "выключи
|
||||
// тихий режим" would turn quiet mode on. Negation wins.
|
||||
func classifyQuietToggle(text string) (on, off bool) {
|
||||
tokens := quietTokens(text)
|
||||
for _, p := range quietOffPhrases {
|
||||
if quietPhrase(tokens, p) {
|
||||
return false, true
|
||||
}
|
||||
}
|
||||
for _, p := range quietOnPhrases {
|
||||
if quietPhrase(tokens, p) {
|
||||
return true, false
|
||||
}
|
||||
}
|
||||
return false, false
|
||||
}
|
||||
|
||||
// replySystem answers system-observable queries using the handler's clock
|
||||
// and (in future) system interfaces. The decision's utterance is parsed
|
||||
// for keywords to determine what the user is asking about.
|
||||
|
||||
Reference in New Issue
Block a user