feat: Phase 2 complete — 13 Phases of COBOL type classification and test benchmark

P0.6: gcov infrastructure
P1: extract_structure output expansion (11 new feature fields)
P2: Confusion group rule engine (8 pairs + contradiction + backtrack)
P3: 4-factor confidence calculation + quality gate update
P4: 33+2 COBOL program type test samples (22 files, 7 categories)
P5: parametrized/ test data generation engine
P6: japanese_data.py lookup tables
P7-10: Type-specific test suites (~159 parametrized tests)
P11: Full classification pipeline (classify_program) + orchestrator integration
P12: Documentation (module-interfaces, test-plan v3.0, coverage-matrix)

Architecture decisions:
- classification_pipeline/ merged to hina/pipeline/
- parametrized/ as independent module
- japanese_data.py as root-level file
- hina/__all__ only exports classify_program()

Co-Authored-By: Claude <noreply@anthropic.com>
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hangshuo652
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"""对比引擎包
公开 API:
align_records() — COBOL ↔ Java 记录对齐
compare_field() — 字段级比较(decimal/string/date
CobolBinaryReader — 二进制 COBOL 输出解析
Normalizer — COMP-3/EBCDIC 解码
detect_rounding() — 舍入检测
"""
from __future__ import annotations
from .aligner import align_records
from .field_compare import compare_field
from .cobol_binary_reader import CobolBinaryReader
from .normalizer import Normalizer
from .rounding_detect import detect_rounding
__all__ = [
"align_records", # (cobol, java, key_field) → list[tuple]
"compare_field", # (name, c, j, field_type, tolerance) → FieldResult
"CobolBinaryReader", # class
"Normalizer", # class
"detect_rounding", # (c, j) → RoundingResult
]