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@@ -820,45 +820,38 @@ ls data/cases/$CASE_NUMBER/documents/research/analysis-and-research.md
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---
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**תבנית issue לכותב ההחלטה — חובה בכל issue שמוקצה לכותב:**
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**מסמך-ההכוונה לכותב — הפק את התדריך שהיית רוצה לקבל, לא טופס למילוי:**
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כל issue לכותב חייב לכלול את **כל** הסעיפים הבאים. אסור לשלוח issue עם משפט כמו "הועבר לכתיבה" — זה חסר תועלת. הכותב צריך הכל מוכן מראש.
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כשאתה מעביר תיק לכותב אתה מבצע את **פעולת-ההיסק המרכזית שלך**: להמיר את ניתוח-המנתח + הכרעות-היו"ר למסמך שמאפשר לכותב לנסח החלטה חדה בסגנון דפנה **בלי לחזור אליך**. אל תמלא טופס — הפעל שיפוט משפטי. תדריך טוב:
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- **מוביל בהכרעה ובסוגיה המכריעה** — קבע איזו סוגיה נושאת את התוצאה ומה מייתר את מה, והצב אותה ראשונה.
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- **בונה כל סוגיה כסילוגיזם** (כלל → עובדות → מסקנה) עם התקדים והמסמך הספציפיים.
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- **מזהה אדנים עצמאיים** — אם יותר מנימוק אחד מספיק לבדו לתוצאה, אמור זאת מפורשות, כך שנפילת אדן בערעור לא תפיל את ההחלטה.
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- **בודק עקביות פנימית** — אם שתי הכרעות עלולות להיראות סותרות (למשל דחיית טענה פרשנית אחת וקבלת אחרת), סמן את המתח והסבר את האבחנה לפני שעורך-דין יטען לו.
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- **עונה לנקודה החזקה של הצד המפסיד** — לא מתעלם ממנה.
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- **משקלל את הכרעות-היו"ר** ומעביר אותן מילולית.
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**מה התדריך חייב להכיל** (החוזה מול הכותב — אל תשמיט אף רכיב; אל תשלח issue עם "הועבר לכתיבה"):
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```markdown
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## הנחיות כתיבה — ערר {case_number}
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### 1. תוצאה ומצב
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- **תוצאה:** {דחייה / קבלה חלקית / קבלה מלאה}
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- **טיוטה קיימת:** {כן/לא}. אם כן: נתיב מלא לקובץ + הנחיה "קרא את הטיוטה, השתמש בה כבסיס, אל תכתוב מאפס"
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- **הוראות עריכה מתוך הטיוטה:** {רשימה מדויקת של מה חיים ביקש לשנות — פסקאות, תוכן, placeholders}
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- **תוצאה:** {דחייה / קבלה חלקית / קבלה מלאה} — עם נימוק קצר ומהי הראיה הניצחת.
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- **טיוטה קיימת:** {כן/לא}. אם כן: נתיב מלא + "קרא, השתמש כבסיס, אל תכתוב מאפס".
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- **הוראות עריכה מהטיוטה:** {מה חיים ביקש לשנות — פסקאות, תוכן, placeholders}.
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### 2. סדר סוגיות + מבנה סילוגיסטי
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לכל סוגיה שצריך לכתוב/לערוך — מבנה סילוגיסטי מלא:
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**סוגיה N: {כותרת}**
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- סוג ניתוח: {כלל ברור / איזון אינטרסים / מידתיות / שיקול דעת}
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- כלל (הנחה עליונה): {הוראת תכנית / סעיף חוק / הלכה — ציטוט מדויק}
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- עובדות (הנחה תחתונה): {העובדות הספציפיות שצריך להחיל — הפנייה למסמך מקור ספציפי}
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- מסקנה: {מה נובע מהחלת הכלל על העובדות}
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- תקדימים: {שם פסק דין + מה הוא קובע + למה רלוונטי}
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- מסמכי מקור: {שמות קבצים ספציפיים ב-data/cases/{case_number}/documents/originals/}
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### 2. סוגיות — סדר סילוגיסטי, המכריעה מובילה
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לכל סוגיה: סוג-ניתוח (כלל ברור / איזון / מידתיות / שיקול-דעת) · כלל (ציטוט מדויק של הוראת-תכנית/חוק/הלכה) · עובדות (בהפניה למסמך-מקור ספציפי) · מסקנה · תקדימים (שם + מה קובע + רלוונטיות) · מסמכי-מקור (ב-data/cases/{case_number}/documents/originals/). סמן אדנים עצמאיים, מוקשי-עקביות ומענה לצד המפסיד היכן שהם קיימים.
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### 3. טיפול בטענות
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| # | טענה | טיפול | סוגיה |
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|---|------|-------|-------|
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| 1 | {טענה} | דיון מלא / קיבוץ / דילוג | {באיזו סוגיה} |
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...
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טבלה: # | טענה | טיפול (דיון מלא / קיבוץ / דילוג) | סוגיה.
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### 4. chair directions
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- העתק מלא של עמדות הוועדה מ-analysis-and-research.md (או הפנייה: "קרא get_chair_directions").
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- **עטוף את ההעתק המילולי בתגית `<chair_directions>…</chair_directions>`** — כך הכותב מבחין בין הוראות-היו"ר המילוליות לבין הערות ה-CEO, ואינו דורס אותן. בתוך התגית: טקסט מילולי בלבד, בלי פרפרזה.
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### 4. הנחיות-היו"ר
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העתק מילולי של עמדות-הוועדה מ-analysis-and-research.md (או "קרא get_chair_directions"), **עטוף ב-`<chair_directions>…</chair_directions>`** — טקסט מילולי בלבד בלי פרפרזה, כדי שהכותב לא ידרוס אותן.
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### 5. הנחיות סגנון
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- ניטרליות: בלוק ו = עובדות בלבד, בלי ציטוטים מצדדים
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- ללא כפילות: בלוק י מפנה לבלוקים קודמים
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- טענות מקוריות: בלוק ז = כתבי טענות מקוריים
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- אורך מינימלי לדיון: 1,500 מילים לבלוק י
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- פסיקה: חובה לצטט לפחות 3 תקדימים בדיון
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ניטרליות (בלוק ו = עובדות בלבד, בלי ציטוטי-צדדים) · ללא כפילות (בלוק י מפנה לקודמים) · טענות מקוריות (בלוק ז) · דיון ≥ 1,500 מילים · ≥ 3 תקדימים בדיון.
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```
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---
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@@ -23,8 +23,10 @@ from pathlib import Path
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from legal_mcp import config
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from legal_mcp.services import db, embeddings, claude_session, audit, storage
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from legal_mcp.services.lessons import (
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ANTI_PATTERNS as _ANTI_PATTERNS,
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OUTCOME_LABELS_HE,
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PRACTICE_AREA_OVERRIDES,
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anti_pattern_directive,
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canonical_outcome,
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get_content_checklist,
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get_methodology_summary,
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@@ -369,6 +371,7 @@ async def write_block(
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block_id: str,
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instructions: str = "",
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effort_override: str | None = None,
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model_override: str | None = None,
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) -> dict:
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"""כתיבת בלוק יחיד בהחלטה.
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@@ -381,6 +384,12 @@ async def write_block(
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THIS call only — used by the #208 model/effort calibration harness
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to A/B efforts without mutating the pinned defaults. Production
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callers leave it None and get the deterministic per-block effort.
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model_override: optional per-call generation model id (e.g.
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"claude-opus-5"). Same contract as effort_override — the #208
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harness A/Bs MODELS without mutating the pinned GENERATION_MODEL.
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Pass the BASE id only: the 1M-context escalation (#216) is applied
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on top automatically for large prompts, so an override never
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silently loses the 1M window. Production callers leave it None.
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Returns:
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dict עם content, word_count, block_id, generation_type
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@@ -468,6 +477,12 @@ async def write_block(
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if instructions:
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prompt += f"\n\n## הנחיות נוספות:\n{instructions}"
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# LAST in the prompt, deliberately (see lessons.anti_pattern_directive): the
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# same canonical rule already appears inside style_context, but ~47K chars
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# deep, where it measurably fails to bind. Restating it here is the only
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# change the A/B isolated as effective — so nothing may be appended after it.
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prompt += "\n\n" + anti_pattern_directive()
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# Block י requires approved direction
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if block_id == "block-yod":
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dir_doc = (decision or {}).get("direction_doc") or {}
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@@ -478,7 +493,12 @@ async def write_block(
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# escalate to the 1M-context build (`[1m]`) instead of failing the block —
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# block-yod legitimately carries the whole case as source-context. The 400K
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# ceiling was an artifact of the old 200K-only build, NOT a model limit.
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gen_model = GENERATION_MODEL_1M if len(prompt) > _CTX_1M_THRESHOLD_CHARS else GENERATION_MODEL
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# model_override (#208 harness) swaps the BASE id only — the 1M decision below
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# still applies, so an A/B'd model keeps the same context-window behaviour as
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# the pinned default instead of silently falling back to the 200K build.
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_base_model = model_override or GENERATION_MODEL
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_model_1m = GENERATION_MODEL_1M if _base_model == GENERATION_MODEL else f"{_base_model}[1m]"
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gen_model = _model_1m if len(prompt) > _CTX_1M_THRESHOLD_CHARS else _base_model
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# Final guard: even the 1M build is finite (~2M Hebrew chars of input). Cap at
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# 1.5M chars (~750K tokens) to leave room for output + a safety margin under 1M.
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@@ -1107,6 +1127,16 @@ async def _build_style_context(practice_area: str = "") -> str:
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# ── למידה מצטברת (T15) — עריכות היו"ר ב-/methodology + לקחי /training ──
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# גובר על ברירות-המחדל לעיל. כך כל מה שלמדנו עד היום מגיע לכותב.
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learned: list[str] = []
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# The canonical anti-patterns are rendered UNCONDITIONALLY, before any DB
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# call. They used to be produced inside the overrides loop below — so a
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# failure on an EARLIER category (e.g. golden_ratios) aborted the loop and
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# dropped the style invariants from the prompt silently, with only a generic
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# "overrides not loaded" warning to show for it (§6). A chair-override
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# outage must not be able to un-teach Dafna's structural style.
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learned.append("\n**אנטי-דפוסים (להימנע) — כתוב נרטיב משפטי רציף; הימנע מ:**")
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for ap in _ANTI_PATTERNS:
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learned.append(f"- {ap['note']}")
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try:
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for cat, label in (
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("golden_ratios", "יחסי-זהב (אחוזי-סעיפים)"),
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@@ -1125,10 +1155,8 @@ async def _build_style_context(practice_area: str = "") -> str:
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# corrects them, and drafts keep emitting them (the gap that left
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# 8137 with 28 hits). Chair additions layer on top; they never
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# remove the canonical ones.
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from legal_mcp.services.lessons import ANTI_PATTERNS as _ANTI
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learned.append(f"\n**{label} — כתוב נרטיב משפטי רציף; הימנע מ:**")
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for ap in _ANTI:
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learned.append(f"- {ap['note']}")
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# The canonical list is already rendered above, outside this try —
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# here we only layer the chair's ADDITIONS on top of it.
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for k, v in (ov or {}).items():
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learned.append(f"- (יו\"ר) {k}: {json.dumps(v, ensure_ascii=False)}")
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continue
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@@ -1264,6 +1292,12 @@ async def get_block_context(case_id: UUID, block_id: str, instructions: str = ""
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if instructions:
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formatted_prompt += f"\n\n## הנחיות נוספות:\n{instructions}"
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# Same closing directive, same position, same canonical source as write_block.
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# This is the EXTERNAL-writer path (legal-writer agent) — if the rule were
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# applied only in write_block, agent-written blocks would keep emitting the
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# anti-patterns and the two writers would drift apart (G2).
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formatted_prompt += "\n\n" + anti_pattern_directive()
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# Block י requires approved direction
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if block_id == "block-yod":
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dir_doc = (decision or {}).get("direction_doc") or {}
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@@ -59,6 +59,28 @@ ANTI_PATTERNS: list[dict] = [
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"note": "רשימות תבליטים באנליזה — דפנה כותבת נרטיב רציף"},
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]
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def anti_pattern_directive() -> str:
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"""The closing style directive, rendered from ANTI_PATTERNS (the same list
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style_distance scores against — one source, two renderings, not two rules).
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WHY THIS EXISTS SEPARATELY FROM the style-context rendering: the rule was
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already reaching the writer, buried ~47K chars deep inside style_context,
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and drafts kept emitting the very patterns it forbids. A measured A/B over
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the signed finals (9 cases, 60 generations, 2026-07-28) showed that the SAME
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rule restated at the END of the assembled prompt cuts anti-pattern hits by
|
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72–93% on both blocks and both models:
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|
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block-vav opus-4-8 1.75 → 0.12 | opus-5 2.25 → 0.62
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block-zayin opus-4-8 4.57 → 0.43 | opus-5 4.43 → 0.43
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|
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So this is a POSITION fix, not a new instruction. Keep it last in the prompt.
|
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"""
|
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lines = ["## כלל-סגנון מחייב (גובר על כל דוגמה בהקשר שלמעלה)",
|
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"כתוב נרטיב משפטי רציף בלבד — פסקאות שלמות. אסור:"]
|
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lines += [f"- {ap['note']}" for ap in ANTI_PATTERNS]
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return "\n".join(lines)
|
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|
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# ── Paragraph length guidance (word counts) ────────────────────────
|
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|
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PARAGRAPH_LENGTHS = {
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|
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@@ -176,7 +176,13 @@ def block_distance_to_final(
|
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outcome = canonical_outcome(outcome)
|
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diff = compute_diff_stats(regenerated_text or "", final_section_text or "")
|
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change_percent = diff["change_percent"]
|
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anti_total = count_anti_patterns(regenerated_text or "")["total"]
|
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anti = count_anti_patterns(regenerated_text or "")
|
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anti_total = anti["total"]
|
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# Per-pattern breakdown, not just the total: a calibration run that only
|
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# reports "anti=4" cannot tell you WHICH rule was broken, so it cannot say
|
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# what to fix. (Diagnosing the 2026-07-28 model A/B needed exactly this and
|
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# had to fall back on inference.)
|
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anti_by_pattern = {name: h["count"] for name, h in anti["by_pattern"].items()}
|
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|
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section = _BLOCK_TO_SECTION.get(block_id)
|
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regen_words = len((regenerated_text or "").split())
|
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@@ -205,6 +211,7 @@ def block_distance_to_final(
|
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"final_words": final_words,
|
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"change_percent": change_percent,
|
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"anti_pattern_total": anti_total,
|
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"anti_by_pattern": anti_by_pattern,
|
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"golden_ratio_deviation_pp": ratio_dev,
|
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"distance": distance,
|
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}
|
||||
|
||||
60
mcp-server/tests/test_anti_pattern_directive.py
Normal file
60
mcp-server/tests/test_anti_pattern_directive.py
Normal file
@@ -0,0 +1,60 @@
|
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"""The style invariants must actually REACH the writer.
|
||||
|
||||
Both tests here cover defects found by the 2026-07-28 model×prompt A/B over the
|
||||
signed finals: the canonical anti-patterns were present in the prompt but buried
|
||||
~47K chars into style_context (where they measurably failed to bind), and they
|
||||
were rendered inside a try/except that an unrelated DB failure could abort.
|
||||
"""
|
||||
import pytest
|
||||
|
||||
from legal_mcp.services import block_writer
|
||||
from legal_mcp.services.lessons import ANTI_PATTERNS, anti_pattern_directive
|
||||
|
||||
|
||||
def test_directive_renders_every_canonical_anti_pattern():
|
||||
"""One source, two renderings — the directive may not drift from the list
|
||||
style_distance scores against."""
|
||||
text = anti_pattern_directive()
|
||||
for ap in ANTI_PATTERNS:
|
||||
assert ap["note"] in text, f"missing anti-pattern in directive: {ap['name']}"
|
||||
|
||||
|
||||
def test_both_writer_paths_append_the_directive_last():
|
||||
"""write_block (in-process) and get_block_context (legal-writer agent) must
|
||||
both close with the directive — otherwise the two writers drift (G2)."""
|
||||
import inspect
|
||||
src = inspect.getsource(block_writer)
|
||||
for fn in ("async def write_block(", "async def get_block_context("):
|
||||
start = src.index(fn)
|
||||
# bound the search to this function: up to the next top-level def
|
||||
rest = src[start + len(fn):]
|
||||
nxt = rest.find("\nasync def ")
|
||||
body = rest[: nxt if nxt != -1 else len(rest)]
|
||||
assert "anti_pattern_directive()" in body, f"{fn} does not append the style directive"
|
||||
|
||||
|
||||
@pytest.mark.asyncio
|
||||
async def test_style_context_keeps_anti_patterns_when_overrides_fail(monkeypatch):
|
||||
"""A chair-override outage must not silently un-teach the structural style.
|
||||
|
||||
Regression: the canonical list used to be emitted inside the overrides loop,
|
||||
so a throw on an EARLIER category (golden_ratios) dropped it entirely.
|
||||
"""
|
||||
async def _boom(*a, **k):
|
||||
raise RuntimeError("methodology table unavailable")
|
||||
|
||||
async def _empty(*a, **k):
|
||||
return []
|
||||
|
||||
# Every DB accessor this function touches is stubbed — the test must not open
|
||||
# a real connection (a live pool here leaks across the shared event loop and
|
||||
# breaks unrelated tests later in the run).
|
||||
monkeypatch.setattr(block_writer.db, "get_style_patterns", _empty)
|
||||
monkeypatch.setattr(block_writer.db, "get_methodology_overrides", _boom)
|
||||
monkeypatch.setattr(block_writer.db, "get_recent_decision_lessons", _empty)
|
||||
|
||||
ctx = await block_writer._build_style_context("היטל השבחה")
|
||||
|
||||
assert "נרטיב משפטי רציף" in ctx
|
||||
for ap in ANTI_PATTERNS:
|
||||
assert ap["note"] in ctx, f"anti-pattern dropped on override failure: {ap['name']}"
|
||||
@@ -166,17 +166,33 @@ def aggregate_cell(per_run: list[dict]) -> dict:
|
||||
"""Mean each metric across repeated generations of the same (case, block, effort)."""
|
||||
if not per_run:
|
||||
return {"distance": 1.0, "anti_pattern_total": 0.0, "change_percent": 100.0,
|
||||
"golden_ratio_deviation_pp": None, "n": 0}
|
||||
"golden_ratio_deviation_pp": None, "anti_by_pattern": {}, "n": 0}
|
||||
ratios = [r["golden_ratio_deviation_pp"] for r in per_run if r.get("golden_ratio_deviation_pp") is not None]
|
||||
return {
|
||||
"distance": round(mean(r["distance"] for r in per_run), 4),
|
||||
"anti_pattern_total": round(mean(r["anti_pattern_total"] for r in per_run), 2),
|
||||
"change_percent": round(mean(r["change_percent"] for r in per_run), 2),
|
||||
"golden_ratio_deviation_pp": round(mean(ratios), 2) if ratios else None,
|
||||
"anti_by_pattern": _mean_by_pattern(per_run),
|
||||
"n": len(per_run),
|
||||
}
|
||||
|
||||
|
||||
def _mean_by_pattern(per_run: list[dict]) -> dict:
|
||||
"""Mean hits PER anti-pattern name across runs — the 'which rule broke' view.
|
||||
|
||||
A pattern absent from a run counts as 0 (count_anti_patterns omits zero-hit
|
||||
keys), so the mean is over ALL runs, not only the ones that tripped it.
|
||||
"""
|
||||
names: set[str] = set()
|
||||
for r in per_run:
|
||||
names |= set((r.get("anti_by_pattern") or {}).keys())
|
||||
return {
|
||||
name: round(mean((r.get("anti_by_pattern") or {}).get(name, 0) for r in per_run), 2)
|
||||
for name in sorted(names)
|
||||
}
|
||||
|
||||
|
||||
def _current_default(block_id: str) -> str | None:
|
||||
from legal_mcp.services.block_writer import BLOCK_CONFIG, DEFAULT_EFFORT
|
||||
cfg = BLOCK_CONFIG.get(block_id, {})
|
||||
@@ -420,13 +436,30 @@ async def _finals_for_calibration(case_filter: str | None) -> list[dict]:
|
||||
|
||||
|
||||
async def _score_cell(case_id, block_id: str, effort: str, final_section: str,
|
||||
final_total_words: int, outcome: str, repeats: int) -> dict:
|
||||
"""Generate `block_id` at `effort` `repeats` times; score each vs the final section."""
|
||||
final_total_words: int, outcome: str, repeats: int,
|
||||
model: str | None = None, instructions: str = "") -> dict:
|
||||
"""Generate `block_id` at `effort` `repeats` times; score each vs the final section.
|
||||
|
||||
`model` (optional) A/Bs the generation model via write_block(model_override=…).
|
||||
None ⇒ the pinned GENERATION_MODEL, i.e. the production path unchanged.
|
||||
|
||||
`instructions` (optional) is appended to the block prompt for EVERY cell in
|
||||
the run — a prompt-variant A/B (e.g. an explicit formatting rule). It is
|
||||
applied to all models so the comparison stays a model comparison rather
|
||||
than silently becoming a prompt comparison.
|
||||
"""
|
||||
from legal_mcp.services import block_writer
|
||||
from legal_mcp.services.style_distance import block_distance_to_final
|
||||
runs: list[dict] = []
|
||||
models_used: list[str] = []
|
||||
for _ in range(repeats):
|
||||
res = await block_writer.write_block(case_id, block_id, effort_override=effort)
|
||||
res = await block_writer.write_block(
|
||||
case_id, block_id, instructions=instructions,
|
||||
effort_override=effort, model_override=model,
|
||||
)
|
||||
# Record what the CLI was actually asked to run, so a silent fallback to
|
||||
# a different build is visible in the report rather than mis-attributed.
|
||||
models_used.append(res.get("model_used") or "?")
|
||||
scored = block_distance_to_final(
|
||||
block_id, res.get("content", ""), final_section, outcome,
|
||||
section_target_total_words=final_total_words,
|
||||
@@ -434,6 +467,8 @@ async def _score_cell(case_id, block_id: str, effort: str, final_section: str,
|
||||
runs.append(scored)
|
||||
agg = aggregate_cell(runs)
|
||||
agg["effort"] = effort
|
||||
agg["model"] = model
|
||||
agg["models_used"] = sorted(set(models_used))
|
||||
agg["runs"] = runs
|
||||
return agg
|
||||
|
||||
@@ -446,6 +481,7 @@ async def _run(args, ts: str) -> dict:
|
||||
|
||||
efforts = args.efforts
|
||||
blocks = args.blocks
|
||||
models = args.models
|
||||
finals = await _finals_for_calibration(args.case)
|
||||
|
||||
cases_meta = []
|
||||
@@ -468,11 +504,15 @@ async def _run(args, ts: str) -> dict:
|
||||
section = _BLOCK_TO_SECTION.get(block_id)
|
||||
plan[block_id] = [c for c in cases_meta if section and c["sections"].get(section)]
|
||||
|
||||
total_cells = sum(len(plan[b]) for b in blocks) * len(efforts) * args.repeats
|
||||
total_cells = sum(len(plan[b]) for b in blocks) * len(efforts) * args.repeats * len(models)
|
||||
grid_summary = {
|
||||
"n_finals": len(cases_meta),
|
||||
"finals": [c["case_number"] for c in cases_meta],
|
||||
"blocks": blocks, "efforts": efforts, "repeats": args.repeats,
|
||||
"models": models,
|
||||
# Provenance: a prompt-variant run is NOT comparable to a baseline run,
|
||||
# so the instruction text is recorded in the report, not just the shell.
|
||||
"instructions": getattr(args, "instructions", "") or "",
|
||||
"total_generations": total_cells,
|
||||
"per_block_n": {b: len(plan[b]) for b in blocks},
|
||||
}
|
||||
@@ -480,6 +520,27 @@ async def _run(args, ts: str) -> dict:
|
||||
if args.dry_run:
|
||||
return {"dry_run": True, "grid": grid_summary, "by_block": {}}
|
||||
|
||||
by_model: dict[str, dict] = {}
|
||||
for model in models:
|
||||
by_block = await _run_blocks_for_model(
|
||||
model, blocks, efforts, plan, args, ts, grid_summary, by_model, _BLOCK_TO_SECTION,
|
||||
)
|
||||
by_model[model] = by_block
|
||||
|
||||
# `by_block` stays the single-model shape (first model) so --rerank and the
|
||||
# existing per-block report path keep working unchanged (G2 — no second
|
||||
# result schema); multi-model runs additionally carry by_model.
|
||||
out = {"dry_run": False, "grid": grid_summary, "by_block": by_model[models[0]]}
|
||||
if len(models) > 1:
|
||||
out["by_model"] = by_model
|
||||
return out
|
||||
|
||||
|
||||
async def _run_blocks_for_model(model, blocks, efforts, plan, args, ts, grid_summary,
|
||||
by_model_so_far, _BLOCK_TO_SECTION) -> dict:
|
||||
"""The per-block × per-effort grid for ONE generation model."""
|
||||
from uuid import UUID
|
||||
|
||||
by_block: dict[str, dict] = {}
|
||||
for block_id in blocks:
|
||||
section = _BLOCK_TO_SECTION.get(block_id)
|
||||
@@ -497,11 +558,12 @@ async def _run(args, ts: str) -> dict:
|
||||
cell = await _score_cell(
|
||||
UUID(c["case_id"]), block_id, effort, final_section,
|
||||
c["final_total_words"], c["outcome"], args.repeats,
|
||||
model=model, instructions=getattr(args, "instructions", "") or "",
|
||||
)
|
||||
except Exception as exc: # noqa: BLE001 — harness must survive any cell failure
|
||||
logger.warning(
|
||||
"calibration cell skipped: case=%s block=%s effort=%s — %s",
|
||||
c["case_number"], block_id, effort, exc,
|
||||
"calibration cell skipped: case=%s block=%s effort=%s model=%s — %s",
|
||||
c["case_number"], block_id, effort, model, exc,
|
||||
)
|
||||
continue
|
||||
per_effort_runs[effort].append(cell)
|
||||
@@ -523,6 +585,7 @@ async def _run(args, ts: str) -> dict:
|
||||
"anti_pattern_total": round(mean(r["anti_pattern_total"] for r in rows), 2),
|
||||
"change_percent": round(mean(r["change_percent"] for r in rows), 2),
|
||||
"golden_ratio_deviation_pp": round(mean(ratios), 2) if ratios else None,
|
||||
"anti_by_pattern": _mean_by_pattern(rows),
|
||||
"n": len(rows),
|
||||
})
|
||||
rec = recommend_effort(effort_rows)
|
||||
@@ -532,6 +595,11 @@ async def _run(args, ts: str) -> dict:
|
||||
"recommended": rec["effort"] if rec else None,
|
||||
"confidence": rec["confidence"] if rec else None,
|
||||
"confidence_margin": rec.get("confidence_margin") if rec else None,
|
||||
"model": model,
|
||||
# Model builds the CLI actually reported across this block's cells —
|
||||
# a mismatch vs `model` means a silent fallback, not a real A/B.
|
||||
"models_used": sorted({m for e in per_effort_runs.values()
|
||||
for cell in e for m in cell.get("models_used", [])}),
|
||||
"efforts": effort_rows,
|
||||
"per_case": per_case,
|
||||
}
|
||||
@@ -541,11 +609,15 @@ async def _run(args, ts: str) -> dict:
|
||||
# Blocks not yet done are simply absent from by_block; _write_report tolerates
|
||||
# partial results. main() does the final flush once the loop finishes.
|
||||
try:
|
||||
_write_report({"dry_run": False, "grid": grid_summary, "by_block": by_block}, ts)
|
||||
snap = {"dry_run": False, "grid": grid_summary, "by_block": by_block}
|
||||
if by_model_so_far or len(grid_summary.get("models", [])) > 1:
|
||||
snap["by_model"] = {**by_model_so_far, model: by_block}
|
||||
_write_report(snap, ts)
|
||||
except Exception as exc: # noqa: BLE001 — a write hiccup must not abort the run
|
||||
logger.warning("incremental report write failed after block=%s — %s", block_id, exc)
|
||||
logger.warning("incremental report write failed after block=%s model=%s — %s",
|
||||
block_id, model, exc)
|
||||
|
||||
return {"dry_run": False, "grid": grid_summary, "by_block": by_block}
|
||||
return by_block
|
||||
|
||||
|
||||
IL_TZ = ZoneInfo("Asia/Jerusalem")
|
||||
@@ -578,7 +650,10 @@ def _write_report(result: dict, ts: str) -> tuple[Path, Path]:
|
||||
"ההמלצה אדוויזורית; ההכרעה בידי היו\"ר/המפעיל.\n",
|
||||
f"- בלוקים: {', '.join(g['blocks'])}",
|
||||
f"- efforts: {', '.join(g['efforts'])} · repeats/cell: {g['repeats']}",
|
||||
f"- models: {', '.join(m or 'pinned-default' for m in g.get('models', [None]))}",
|
||||
f"- סך ייצורי-מודל: {g['total_generations']}",
|
||||
(f"- ⚠️ **וריאנט-פרומפט** (לא בר-השוואה לריצת-בסיס): `{g['instructions']}`"
|
||||
if g.get("instructions") else "- וריאנט-פרומפט: — (פרומפט ייצור כפי-שהוא)"),
|
||||
"",
|
||||
]
|
||||
if result.get("dry_run"):
|
||||
@@ -613,6 +688,54 @@ def _write_report(result: dict, ts: str) -> tuple[Path, Path]:
|
||||
f"| {r['effort']}{star} | {r['distance']:.4f} | {r['anti_pattern_total']} | "
|
||||
f"{r['change_percent']} | {ratio if ratio is not None else '—'} | {r['n']} |")
|
||||
lines.append("")
|
||||
by_model = result.get("by_model") or {}
|
||||
if len(by_model) > 1:
|
||||
lines += ["## השוואת-מודלים (אותו block, אותו effort, אותם סופיים)\n",
|
||||
"| block | effort | model | anti_total | change% | ratioΔpp | distance | n |",
|
||||
"|---|---|---|---|---|---|---|---|"]
|
||||
for b in g["blocks"]:
|
||||
for eff in g["efforts"]:
|
||||
rows = []
|
||||
for m, bb in by_model.items():
|
||||
for r in (bb.get(b) or {}).get("efforts", []):
|
||||
if r["effort"] == eff:
|
||||
rows.append((m, r))
|
||||
if len(rows) < 2:
|
||||
continue # nothing to compare for this cell — don't fake a row
|
||||
best = min(rows, key=lambda mr: (mr[1]["anti_pattern_total"],
|
||||
mr[1]["golden_ratio_deviation_pp"] or 0,
|
||||
mr[1]["distance"]))[0]
|
||||
for m, r in rows:
|
||||
ratio = r["golden_ratio_deviation_pp"]
|
||||
star = " ⭐" if m == best else ""
|
||||
lines.append(
|
||||
f"| {b} | {eff} | {m}{star} | {r['anti_pattern_total']} | "
|
||||
f"{r['change_percent']} | {ratio if ratio is not None else '—'} | "
|
||||
f"{r['distance']:.4f} | {r['n']} |")
|
||||
lines.append("")
|
||||
|
||||
# WHICH rule broke — a total alone can't tell you what to fix.
|
||||
bd_rows = [(b, eff, m, r) for b in g["blocks"] for eff in g["efforts"]
|
||||
for m, bb in by_model.items()
|
||||
for r in (bb.get(b) or {}).get("efforts", []) if r["effort"] == eff]
|
||||
if any(r.get("anti_by_pattern") for *_, r in bd_rows):
|
||||
names = sorted({n for *_, r in bd_rows for n in (r.get("anti_by_pattern") or {})})
|
||||
lines += ["### פילוח אנטי-דפוסים (איזה כלל הופר)\n",
|
||||
"| block | effort | model | " + " | ".join(names) + " |",
|
||||
"|---|---|---|" + "---|" * len(names)]
|
||||
for b, eff, m, r in bd_rows:
|
||||
cells = " | ".join(str((r.get("anti_by_pattern") or {}).get(n, 0)) for n in names)
|
||||
lines.append(f"| {b} | {eff} | {m} | {cells} |")
|
||||
lines.append("")
|
||||
# A silent CLI fallback would make the whole comparison meaningless — surface it.
|
||||
for m, bb in by_model.items():
|
||||
for b, bd in bb.items():
|
||||
used = bd.get("models_used") or []
|
||||
if used and any(not u.startswith(str(m)) for u in used):
|
||||
lines.append(f"> ⚠️ **{b} / {m}**: ה-CLI דיווח `{', '.join(used)}` — "
|
||||
"ייתכן fallback שקט; ההשוואה לתא זה אינה תקפה.\n")
|
||||
lines.append("")
|
||||
|
||||
lines.append("> דירוג-ההמלצה **style-clean** (#213): anti_total ראשי → ratioΔ → distance (tiebreak). "
|
||||
"**change% מדווח-לא-מדורג** — מערבב סגנון עם שלמות-תוכן (07-learning §0.7), "
|
||||
"anti_total הוא הסיגנל הנקי-לסגנון. confidence=⚠️weak ⇒ הבחירה בתוך-הרעש "
|
||||
@@ -633,6 +756,12 @@ async def main() -> int:
|
||||
help="comma block ids to calibrate")
|
||||
ap.add_argument("--case", default=None, help="restrict to a single case_number")
|
||||
ap.add_argument("--repeats", type=int, default=1, help="generations per cell (avg out gen noise)")
|
||||
ap.add_argument("--models", default="",
|
||||
help="comma generation-model ids to A/B (e.g. claude-opus-4-8,claude-opus-5). "
|
||||
"Empty (default) = the pinned GENERATION_MODEL, i.e. production unchanged.")
|
||||
ap.add_argument("--instructions", default="",
|
||||
help="extra prompt instruction appended to EVERY cell (prompt-variant A/B). "
|
||||
"Applied to all models — the run stays a model comparison. Recorded in the report.")
|
||||
args = ap.parse_args()
|
||||
|
||||
logging.basicConfig(level=logging.INFO, format="%(asctime)s %(levelname)s %(message)s")
|
||||
@@ -653,6 +782,9 @@ async def main() -> int:
|
||||
if bad_b:
|
||||
print(f"non-calibratable block(s): {bad_b}. valid: {VALID_BLOCKS}", file=sys.stderr)
|
||||
return 2
|
||||
# [None] = "use the pinned GENERATION_MODEL" — keeps the default run byte-identical
|
||||
# to the pre-#models behaviour instead of hard-coding the id in a second place (G2).
|
||||
args.models = [m.strip() for m in args.models.split(",") if m.strip()] or [None]
|
||||
|
||||
ts = _ts()
|
||||
result = await _run(args, ts)
|
||||
|
||||
Reference in New Issue
Block a user