528 lines
6.1 KiB
Markdown
528 lines
6.1 KiB
Markdown
# NavSea Data Classification & Validation Pipeline
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Version: v1.0
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Goal:
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从当前数据库中的 PBF 数据自动:
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1. 解析 at 字段
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2. 构建语义属性表
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3. 构建对象目录
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4. 自动推导对象类型
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5. 验证分类正确性
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6. 统计 tile 密度
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7. 输出 NavSea 分类报告
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所有中间结果写入 MySQL 表。
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数据库在 192.168.200.184. root/2chi9ks2
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可以建立数据库,也可以使用python代码,必要的时候可以下载所需的包。
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---
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# TASK 1
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Parse AT Attributes
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Goal:
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解析 properties 表中 k='at' 的 JSON 字符串。
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Create Table:
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```sql
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CREATE TABLE IF NOT EXISTS at_attributes (
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feature_id BIGINT,
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k VARCHAR(100),
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v TEXT
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);
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```
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Logic:
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1. 查询
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```sql
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SELECT feature_id, v
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FROM properties
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WHERE k='at';
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```
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2. v 是 JSON array
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Example:
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```
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[["レイヤ","航路標識点"],["形状分類","シーバース灯"],["灯色","W (白)"]]
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```
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3. 解析后写入:
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```
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feature_id | k | v
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--------------------
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2682088 | レイヤ | 航路標識点
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2682088 | 形状分類 | シーバース灯
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2682088 | 灯色 | W (白)
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```
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Implementation:
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Python
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Libraries:
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```
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pymysql
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json
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```
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Output:
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```
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table: at_attributes
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```
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---
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# TASK 2
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Build Feature Semantic Table
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Goal:
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将 feature + vt_layer + at 属性合并。
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Create Table:
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```sql
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CREATE TABLE feature_semantic AS
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SELECT
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f.id AS feature_id,
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f.vt_layer,
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f.geom_type,
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MAX(CASE WHEN a.k='分類' THEN a.v END) AS class_name,
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MAX(CASE WHEN a.k='形状分類' THEN a.v END) AS shape_name,
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MAX(CASE WHEN a.k='レイヤ' THEN a.v END) AS layer_name
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FROM features f
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LEFT JOIN at_attributes a
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ON f.id = a.feature_id
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GROUP BY f.id;
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```
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Output table:
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```
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feature_semantic
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```
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Columns:
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```
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feature_id
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vt_layer
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geom_type
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class_name
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shape_name
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layer_name
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```
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---
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# TASK 3
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Generate Object Catalog
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Goal:
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统计所有语义对象。
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Create Table:
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```sql
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CREATE TABLE object_catalog AS
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SELECT
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layer_name,
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class_name,
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shape_name,
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vt_layer,
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geom_type,
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COUNT(*) AS feature_count
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FROM feature_semantic
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GROUP BY
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layer_name,
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class_name,
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shape_name,
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vt_layer,
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geom_type;
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```
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Output:
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```
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object_catalog
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```
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Purpose:
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得到完整对象目录。
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Example:
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```
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魚礁 | p施設 | Point | 24683
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灯台 | p航路標識群 | Point | 18000
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等深線 | L等深線 | Line | 440000
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```
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---
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# TASK 4
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Geometry Consistency Check
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Goal:
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检查对象是否使用一致 geometry。
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Create Table:
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```sql
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CREATE TABLE geometry_consistency AS
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SELECT
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class_name,
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geom_type,
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COUNT(*) AS feature_count
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FROM feature_semantic
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GROUP BY class_name, geom_type;
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```
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Output:
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```
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geometry_consistency
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```
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Purpose:
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发现异常对象。
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Example anomaly:
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```
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灯台 | Polygon
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```
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---
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# TASK 5
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Candidate Object Type Detection
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Goal:
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自动推导 object_type。
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规则优先级:
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1 class_name
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2 shape_name
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3 vt_layer
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Create Table:
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```sql
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CREATE TABLE object_type_candidates AS
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SELECT
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feature_id,
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COALESCE(class_name, shape_name, vt_layer) AS object_type,
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geom_type
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FROM feature_semantic;
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```
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Output:
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```
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object_type_candidates
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```
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---
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# TASK 6
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Object Type Statistics
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Goal:
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统计对象数量。
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Create Table:
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```sql
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CREATE TABLE object_type_stats AS
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SELECT
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object_type,
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geom_type,
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COUNT(*) AS feature_count
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FROM object_type_candidates
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GROUP BY object_type, geom_type;
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```
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Output:
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```
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object_type_stats
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```
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Purpose:
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识别主要对象。
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---
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# TASK 7
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Style Cross Reference
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Goal:
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分析 style.json。
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Extract:
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```
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layer_id
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source-layer
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icon-image
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line-color
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fill-color
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```
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Create Table:
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```sql
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CREATE TABLE style_layers (
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layer_id VARCHAR(200),
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source_layer VARCHAR(200),
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icon VARCHAR(200),
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line_color VARCHAR(200),
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fill_color VARCHAR(200)
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);
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```
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Join:
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```sql
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CREATE TABLE style_mapping AS
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SELECT
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s.layer_id,
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s.icon,
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o.object_type,
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o.geom_type
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FROM style_layers s
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JOIN object_type_candidates o
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ON s.source_layer = o.object_type;
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```
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Output:
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```
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style_mapping
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```
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Purpose:
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确认对象 → 图标关系。
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---
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# TASK 8
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Tile Density Analysis
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Goal:
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统计 tile feature 密度。
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Create Table:
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```sql
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CREATE TABLE tile_density AS
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SELECT
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z,
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x,
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y,
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COUNT(*) AS feature_count
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FROM features
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GROUP BY z,x,y;
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```
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Output:
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```
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tile_density
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```
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---
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# TASK 9
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Tile Density Top 100
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Create Table:
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```sql
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CREATE TABLE tile_density_top100 AS
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SELECT *
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FROM tile_density
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ORDER BY feature_count DESC
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LIMIT 100;
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```
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Purpose:
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识别高密度 tile。
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---
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# TASK 10
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Spatial Sanity Checks
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Goal:
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发现明显错误。
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Examples:
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Navigation lights not point:
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```sql
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CREATE TABLE anomaly_navigation_geom AS
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SELECT *
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FROM feature_semantic
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WHERE class_name='灯台'
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AND geom_type!='Point';
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```
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Reef not point/polygon:
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```sql
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CREATE TABLE anomaly_reef_geom AS
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SELECT *
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FROM feature_semantic
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WHERE class_name='魚礁'
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AND geom_type NOT IN ('Point','Polygon');
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```
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---
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# TASK 11
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NavSea Classification Report
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Generate markdown:
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```
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navsea_classification_report.md
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```
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Content:
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## Dataset Summary
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Total features:
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```sql
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SELECT COUNT(*) FROM features;
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```
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Total object types:
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```sql
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SELECT COUNT(DISTINCT object_type)
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FROM object_type_candidates;
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```
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---
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## Top Object Types
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```sql
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SELECT *
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FROM object_type_stats
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ORDER BY feature_count DESC
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LIMIT 50;
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```
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---
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## Geometry Consistency
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```
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geometry_consistency
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```
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---
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## Style Mapping
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```
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style_mapping
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```
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---
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## Tile Density
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```
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tile_density_top100
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```
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---
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# Final Deliverables
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Database Tables:
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```
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at_attributes
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feature_semantic
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object_catalog
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geometry_consistency
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object_type_candidates
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object_type_stats
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style_layers
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style_mapping
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tile_density
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tile_density_top100
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anomaly_navigation_geom
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anomaly_reef_geom
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```
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Final Document:
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```
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navsea_classification_report.md
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```
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---
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# Execution
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Single command:
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```
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python navsea_audit.py
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```
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Pipeline:
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```
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parse_at
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→ semantic_table
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→ object_catalog
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→ classification
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→ validation
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→ report
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```
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---
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# Success Criteria
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The system must allow answering:
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1 What objects exist
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2 How many features each object has
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3 What geometry they use
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4 How they are styled
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5 Whether classification is consistent
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6 Whether tile density is reasonable |