b18f8b4d1c
- 移除 MindMapNode.sessionNum、filterBySession、getTaskSessions
- 新增 MindMapTreeTool.extractSubtree() 按路径提取子树作为对比基准
- 新增 findClosestNode/getPath/similarityScore 支持节点匹配
- 新增 POST /review/standard-mind-map/{taskNum}/find-node
- recallCompare 使用 focusPath 替代 sessionNum
- ReviewRecallRecordEntity.focusPath 替代 sessionNum
- Flyway V20260706_1: review_recall_records 加 focus_path 列
557 lines
24 KiB
Java
557 lines
24 KiB
Java
package com.guo.learningprogresstracker.service.impl;
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import com.baomidou.mybatisplus.core.toolkit.Wrappers;
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import com.fasterxml.jackson.databind.JsonNode;
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import com.fasterxml.jackson.databind.ObjectMapper;
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import com.guo.learningprogresstracker.entity.*;
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import com.guo.learningprogresstracker.exception.NotFindEntitiesException;
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import com.guo.learningprogresstracker.exception.OperationFailedException;
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import com.guo.learningprogresstracker.mapper.*;
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import com.guo.learningprogresstracker.service.MindMapAiClient;
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import com.guo.learningprogresstracker.service.StandardMindMapService;
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import com.guo.learningprogresstracker.utils.CompareResult;
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import com.guo.learningprogresstracker.utils.MindMapNode;
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import com.guo.learningprogresstracker.utils.MindMapTreeTool;
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import lombok.RequiredArgsConstructor;
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import lombok.extern.slf4j.Slf4j;
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import org.springframework.stereotype.Service;
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import org.springframework.transaction.annotation.Transactional;
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import org.springframework.util.StringUtils;
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import java.time.LocalDateTime;
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import java.util.*;
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import java.util.concurrent.ConcurrentHashMap;
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import java.util.concurrent.atomic.AtomicBoolean;
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import java.util.stream.Collectors;
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/**
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* 标准思维导图服务实现
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*/
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@Slf4j
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@Service
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@RequiredArgsConstructor
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public class StandardMindMapServiceImpl implements StandardMindMapService {
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private final ReviewStandardMindMapMapper standardMindMapMapper;
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private final ReviewRecallRecordMapper recallRecordMapper;
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private final TasksMapper tasksMapper;
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private final StudyReportsMapper studyReportsMapper;
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private final StudyReportFragmentsMapper studyReportFragmentsMapper;
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private final TaskApplicationMapper taskApplicationMapper;
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private final StudySessionsMapper studySessionsMapper;
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private final List<MindMapAiClient> aiClients;
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private final ObjectMapper objectMapper;
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private final AiServiceClient aiServiceClient;
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private static final String GENERATOR_BUILTIN = "BUILTIN";
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private static final String GENERATOR_USER = "USER";
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private static final String GENERATOR_USER_MERGE = "USER_MERGE";
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private static final String MATCH_STATUS_MATCHED = "MATCHED";
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private static final String MATCH_STATUS_MISSED = "MISSED";
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/** 防并发生成:taskNum → 是否正在生成中 */
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private final ConcurrentHashMap<String, AtomicBoolean> generatingTasks = new ConcurrentHashMap<>();
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// ============ 查询与生成 ============
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@Override
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public ReviewStandardMindMapEntity getOrGenerate(String taskNum) throws NotFindEntitiesException, OperationFailedException {
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ensureTaskExists(taskNum);
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ReviewStandardMindMapEntity existing = queryByTaskNum(taskNum);
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return existing != null ? existing : doGenerate(taskNum);
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}
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@Override
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public ReviewStandardMindMapEntity regenerate(String taskNum) throws NotFindEntitiesException, OperationFailedException {
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ensureTaskExists(taskNum);
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// 防并发生成:同一任务正在生成时直接返回当前实体
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AtomicBoolean lock = generatingTasks.computeIfAbsent(taskNum, k -> new AtomicBoolean(false));
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if (!lock.compareAndSet(false, true)) {
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ReviewStandardMindMapEntity existing = queryByTaskNum(taskNum);
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log.warn("任务[{}]正在生成中,跳过重复请求", taskNum);
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return existing;
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}
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try {
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return doGenerate(taskNum);
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} finally {
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lock.set(false);
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generatingTasks.remove(taskNum);
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}
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}
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@Override
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@Transactional
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public ReviewStandardMindMapEntity incrementalGenerate(String taskNum) throws NotFindEntitiesException, OperationFailedException {
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ensureTaskExists(taskNum);
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ReviewStandardMindMapEntity existing = queryByTaskNum(taskNum);
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if (existing == null) {
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throw new NotFindEntitiesException("标准思维导图尚不存在,无法增量更新");
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}
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// 防并发生成
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AtomicBoolean lock = generatingTasks.computeIfAbsent(taskNum, k -> new AtomicBoolean(false));
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if (!lock.compareAndSet(false, true)) {
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log.warn("任务[{}]正在生成中,跳过重复增量请求", taskNum);
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return existing;
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}
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try {
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ReviewStandardMindMapEntity fresh = doGenerate(taskNum);
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// 合并新旧树:保留用户编辑过的节点,追加新节点
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MindMapNode oldRoot = MindMapTreeTool.fromJson(existing.getContent(), objectMapper);
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MindMapNode newRoot = MindMapTreeTool.fromJson(fresh.getContent(), objectMapper);
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MindMapNode merged = MindMapTreeTool.mergeTrees(oldRoot, newRoot);
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String mergedJson = MindMapTreeTool.toJson(merged, objectMapper);
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String mergedOutline = MindMapTreeTool.toFullOutline(merged);
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existing.setContent(mergedJson);
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existing.setOutline(mergedOutline);
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existing.setTitle(merged.getTitle() != null ? merged.getTitle() : "思维导图");
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existing.setGenerator(GENERATOR_USER_MERGE);
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existing.setGeneratorVersion(fresh.getGeneratorVersion());
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existing.setSummary("增量更新,共 " + MindMapTreeTool.countNodes(merged) + " 个节点");
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existing.setGeneratedTime(LocalDateTime.now());
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standardMindMapMapper.updateById(existing);
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return existing;
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} finally {
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lock.set(false);
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generatingTasks.remove(taskNum);
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}
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}
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@Override
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@Transactional
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public ReviewStandardMindMapEntity updateByOutline(String taskNum, String outline) throws NotFindEntitiesException {
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ensureTaskExists(taskNum);
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ReviewStandardMindMapEntity existing = queryByTaskNum(taskNum);
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if (existing == null) {
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existing = new ReviewStandardMindMapEntity();
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existing.setTaskNum(taskNum);
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}
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// 解析大纲为树节点
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MindMapNode root = MindMapTreeTool.parseOutline(outline);
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String contentJson = MindMapTreeTool.toJson(root, objectMapper);
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existing.setTitle(root.getTitle() != null ? root.getTitle() : "思维导图");
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existing.setContent(contentJson);
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existing.setOutline(outline);
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existing.setGenerator(GENERATOR_USER);
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existing.setGeneratorVersion(null);
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existing.setSummary("用户编辑,共 " + MindMapTreeTool.countNodes(root) + " 个节点");
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existing.setGeneratedTime(LocalDateTime.now());
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if (existing.getId() == null) {
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standardMindMapMapper.insert(existing);
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} else {
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standardMindMapMapper.updateById(existing);
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}
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return existing;
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}
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// ============ 回忆对比 ============
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@Override
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@Transactional
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public ReviewStandardMindMapEntity recallCompare(String taskNum, String recallOutline, String focusPath)
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throws NotFindEntitiesException, OperationFailedException {
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ensureTaskExists(taskNum);
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// 1. 获取标准导图(自动生成)
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ReviewStandardMindMapEntity standard = getOrGenerate(taskNum);
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// 2. 解析标准树和用户回忆树
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MindMapNode standardRoot = MindMapTreeTool.fromJson(standard.getContent(), objectMapper);
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MindMapNode recallRoot = MindMapTreeTool.parseOutline(recallOutline);
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// 2b. 若指定了起点节点路径,提取该子树作为对比基准
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MindMapNode compareRoot = standardRoot;
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if (focusPath != null && !focusPath.isBlank()) {
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compareRoot = MindMapTreeTool.extractSubtree(standardRoot, focusPath);
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if (compareRoot == null) {
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log.warn("focusPath 未匹配到节点,使用全量标准导图: path={}", focusPath);
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compareRoot = standardRoot;
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}
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}
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// 3. 执行对比(优先 AI 语义对比,失败时降级为内置算法)
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CompareResult result;
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if (aiServiceClient.isConfigured()) {
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String taskName = tasksMapper.selectOne(
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Wrappers.<TaskEntity>lambdaQuery().eq(TaskEntity::getTaskNum, taskNum).last("LIMIT 1"))
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.getTaskName();
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var optJson = aiServiceClient.compareRecall(
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taskName,
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MindMapTreeTool.toFullOutline(compareRoot),
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recallOutline
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);
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if (optJson.isPresent()) {
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result = buildCompareResultFromAI(optJson.get(), compareRoot);
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log.info("AI 回忆对比: taskNum={}, recallRatio={}, evaluation={}",
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taskNum, result.getRecallRatio(),
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result.getEvaluation() != null ? result.getEvaluation().substring(0, Math.min(50, result.getEvaluation().length())) : "");
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} else {
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result = compareTrees(compareRoot, recallRoot);
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}
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} else {
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result = compareTrees(compareRoot, recallRoot);
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}
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// 4. 序列化对比结果
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String resultJson;
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try {
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resultJson = objectMapper.writeValueAsString(result);
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} catch (Exception e) {
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throw new OperationFailedException("对比结果序列化失败");
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}
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// 5. 保存回忆记录
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ReviewRecallRecordEntity record = new ReviewRecallRecordEntity();
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record.setTaskNum(taskNum);
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record.setStandardMapId(standard.getId());
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record.setFocusPath(focusPath != null && !focusPath.isBlank() ? focusPath : null);
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record.setRecallContent(recallOutline);
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record.setCompareResult(resultJson);
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record.setRecallRatio(result.getRecallRatio());
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record.setMatchedCount(result.getMatchedCount());
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record.setMissedCount(result.getMissedCount());
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record.setExtraCount(result.getExtraCount());
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recallRecordMapper.insert(record);
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log.info("回忆对比: taskNum={}, recallRatio={}, matched={}, missed={}, extra={}",
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taskNum, result.getRecallRatio(), result.getMatchedCount(),
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result.getMissedCount(), result.getExtraCount());
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return standard;
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}
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// ============ 节点查找 ============
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@Override
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public Map<String, Object> findNode(String taskNum, String content) throws NotFindEntitiesException, OperationFailedException {
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ensureTaskExists(taskNum);
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ReviewStandardMindMapEntity standard = getOrGenerate(taskNum);
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MindMapNode root = MindMapTreeTool.fromJson(standard.getContent(), objectMapper);
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MindMapNode closest = MindMapTreeTool.findClosestNode(root, content);
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Map<String, Object> result = new LinkedHashMap<>();
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if (closest != null) {
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String path = MindMapTreeTool.getPath(root, closest.getTitle());
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result.put("path", path);
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result.put("nodeTitle", closest.getTitle());
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result.put("score", MindMapTreeTool.similarityScore(closest.getTitle(), content));
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} else {
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result.put("path", "");
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result.put("nodeTitle", "");
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result.put("score", 0.0);
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}
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return result;
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}
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// ============ 对比算法核心 ============
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/**
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* 两颗树的节点级对比算法。
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*/
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CompareResult compareTrees(MindMapNode standardRoot, MindMapNode recallRoot) {
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CompareResult result = new CompareResult();
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// 展平标准树
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List<MindMapNode> standardFlat = MindMapTreeTool.flatten(standardRoot);
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// 展平回忆树(排除根节点本身)
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List<MindMapNode> recallFlat = MindMapTreeTool.flatten(recallRoot).stream()
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.filter(n -> n != recallRoot)
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.collect(Collectors.toList());
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// 构建回忆节点标题 → 节点映射(标准化后)
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Map<String, MindMapNode> recallTitleMap = new LinkedHashMap<>();
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for (MindMapNode node : recallFlat) {
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recallTitleMap.merge(normalize(node.getTitle()), node, (a, b) -> a);
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}
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// 标注标准树
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int matched = 0, missed = 0;
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for (MindMapNode node : standardFlat) {
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if (node == standardRoot) continue; // 跳过根节点
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String key = normalize(node.getTitle());
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boolean found = recallTitleMap.containsKey(key);
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if (found) {
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node.setNotes(MATCH_STATUS_MATCHED + "|" + (node.getNotes() != null ? node.getNotes() : ""));
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matched++;
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} else {
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// 尝试模糊匹配
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found = fuzzyMatch(node.getTitle(), recallTitleMap);
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if (found) {
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node.setNotes(MATCH_STATUS_MATCHED + "|" + (node.getNotes() != null ? node.getNotes() : ""));
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matched++;
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} else {
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node.setNotes(MATCH_STATUS_MISSED + "|" + (node.getNotes() != null ? node.getNotes() : ""));
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missed++;
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}
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}
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}
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// 找出额外节点(用户在回忆中新增的、标准树中没有的)
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Set<String> standardNormTitles = standardFlat.stream()
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.map(n -> normalize(n.getTitle()))
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.collect(Collectors.toSet());
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List<CompareResult.FlatNode> extraNodes = new ArrayList<>();
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for (MindMapNode node : recallFlat) {
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String key = normalize(node.getTitle());
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if (!standardNormTitles.contains(key)) {
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CompareResult.FlatNode flat = new CompareResult.FlatNode();
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flat.setTitle(node.getTitle());
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flat.setPath(node.getTitle()); // 简化路径
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extraNodes.add(flat);
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}
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}
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int total = matched + missed;
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result.setMatchedTree(standardRoot);
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result.setExtraNodes(extraNodes);
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result.setMatchedCount(matched);
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result.setMissedCount(missed);
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result.setExtraCount(extraNodes.size());
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result.setRecallRatio(total > 0 ? (double) matched / total : 0);
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return result;
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}
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/**
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* 从 AI 返回的平铺匹配列表构建 CompareResult,并将 MATCHED/MISSED 标注回标准树。
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* <p>AI 只输出哪些节点匹配/遗漏,树结构标注由本方法确定性完成,避免 LLM 输出不可靠的嵌套 JSON。</p>
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*/
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private CompareResult buildCompareResultFromAI(JsonNode aiJson, MindMapNode standardRoot) {
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CompareResult result = new CompareResult();
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// 1. 读取 AI 返回的匹配对 → 构建 standardNorm → matchFlag
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Set<String> matchedStandardTitles = new HashSet<>();
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JsonNode matchesArr = aiJson.path("matches");
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if (matchesArr.isArray()) {
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for (JsonNode m : matchesArr) {
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String stdTitle = m.path("standardTitle").asText(null);
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if (stdTitle != null) {
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matchedStandardTitles.add(normalize(stdTitle));
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}
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}
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}
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// 2. 读取遗漏列表
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Set<String> missedTitles = new HashSet<>();
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JsonNode missedArr = aiJson.path("missedTitles");
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if (missedArr.isArray()) {
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for (JsonNode t : missedArr) {
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String title = t.asText(null);
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if (title != null) missedTitles.add(normalize(title));
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}
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}
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// 3. 标注标准树的每个非根节点
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List<MindMapNode> standardFlat = MindMapTreeTool.flatten(standardRoot);
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int matched = 0, missed = 0;
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for (MindMapNode node : standardFlat) {
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if (node == standardRoot) continue;
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String key = normalize(node.getTitle());
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if (matchedStandardTitles.contains(key)) {
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node.setNotes(MATCH_STATUS_MATCHED + "|" + (node.getNotes() != null ? node.getNotes() : ""));
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matched++;
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} else {
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node.setNotes(MATCH_STATUS_MISSED + "|" + (node.getNotes() != null ? node.getNotes() : ""));
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missed++;
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}
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}
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// 4. 读取 extraNodes(兼容字符串数组和对象数组两种格式)
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List<CompareResult.FlatNode> extras = new ArrayList<>();
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JsonNode extrasArr = aiJson.path("extraNodes");
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if (extrasArr.isArray()) {
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for (JsonNode e : extrasArr) {
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CompareResult.FlatNode fn = new CompareResult.FlatNode();
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if (e.isTextual()) {
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// 字符串格式 ["知识点D1", "知识点D2"]
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fn.setTitle(e.asText(""));
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fn.setPath("");
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} else {
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// 对象格式 [{ title: "...", path: "..." }]
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fn.setTitle(e.path("title").asText(""));
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fn.setPath(e.path("path").asText(""));
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}
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extras.add(fn);
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}
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}
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// 5. 组装结果
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result.setMatchedTree(standardRoot);
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result.setExtraNodes(extras);
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result.setMatchedCount(matched);
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result.setMissedCount(missed);
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result.setExtraCount(extras.size());
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int total = matched + missed;
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result.setRecallRatio(total > 0 ? (double) matched / total : 0);
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result.setEvaluation(aiJson.path("evaluation").asText(null));
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return result;
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}
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// ============ 回忆记录查询 ============
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@Override
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public List<ReviewRecallRecordEntity> listRecallRecords(String taskNum) throws NotFindEntitiesException {
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ensureTaskExists(taskNum);
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return recallRecordMapper.selectList(
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Wrappers.<ReviewRecallRecordEntity>lambdaQuery()
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.eq(ReviewRecallRecordEntity::getTaskNum, taskNum)
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.orderByDesc(ReviewRecallRecordEntity::getCreatedTime));
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}
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@Override
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public ReviewRecallRecordEntity getRecallRecord(Integer recordId) throws NotFindEntitiesException {
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return Optional.ofNullable(recallRecordMapper.selectById(recordId))
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.orElseThrow(() -> new NotFindEntitiesException("回忆记录[" + recordId + "]不存在"));
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}
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// ============ 内部方法 ============
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private ReviewStandardMindMapEntity doGenerate(String taskNum) throws OperationFailedException {
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TaskEntity task = tasksMapper.selectOne(
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Wrappers.<TaskEntity>lambdaQuery().eq(TaskEntity::getTaskNum, taskNum).last("LIMIT 1"));
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if (task == null) {
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throw new OperationFailedException("任务[" + taskNum + "]不存在");
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}
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// 收集学习数据
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List<String> sessionNums = studySessionsMapper.selectList(
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Wrappers.<StudySessionsEntity>lambdaQuery()
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.eq(StudySessionsEntity::getTaskNum, taskNum)
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.select(StudySessionsEntity::getSessionNum))
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.stream().map(StudySessionsEntity::getSessionNum).collect(Collectors.toList());
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List<StudyReportsEntity> reports = sessionNums.isEmpty() ? List.of()
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: studyReportsMapper.selectList(Wrappers.<StudyReportsEntity>lambdaQuery()
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.in(StudyReportsEntity::getSessionNum, sessionNums));
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List<StudyReportFragmentsEntity> fragments = sessionNums.isEmpty() ? List.of()
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: studyReportFragmentsMapper.selectList(Wrappers.<StudyReportFragmentsEntity>lambdaQuery()
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.in(StudyReportFragmentsEntity::getSessionNum, sessionNums));
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List<TaskApplicationEntity> applications = taskApplicationMapper.selectList(
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Wrappers.<TaskApplicationEntity>lambdaQuery().eq(TaskApplicationEntity::getTaskNum, taskNum));
|
|
|
|
if (reports.isEmpty() && fragments.isEmpty()) {
|
|
throw new OperationFailedException("任务[" + taskNum + "]没有学习报告或残片,无法生成思维导图");
|
|
}
|
|
|
|
// 优先选 AI 客户端(非 BUILTIN),其次内置生成器
|
|
MindMapAiClient client = aiClients.stream()
|
|
.filter(MindMapAiClient::isAvailable)
|
|
.min(Comparator.comparing(c -> "BUILTIN".equals(c.generatorName()) ? 1 : 0))
|
|
.orElse(null);
|
|
|
|
if (client == null) {
|
|
throw new OperationFailedException("没有可用的思维导图生成器");
|
|
}
|
|
|
|
Optional<MindMapNode> optRoot = client.generate(task, reports, fragments, applications, null);
|
|
// AI 生成失败时尝试降级到内置生成器
|
|
if (optRoot.isEmpty() && !"BUILTIN".equals(client.generatorName())) {
|
|
log.info("AI 思维导图生成失败,降级到内置生成器");
|
|
MindMapAiClient fallback = aiClients.stream()
|
|
.filter(c -> "BUILTIN".equals(c.generatorName()) && c.isAvailable())
|
|
.findFirst().orElse(null);
|
|
if (fallback != null) {
|
|
optRoot = fallback.generate(task, reports, fragments, applications, null);
|
|
}
|
|
}
|
|
if (optRoot.isEmpty()) {
|
|
throw new OperationFailedException("思维导图生成失败");
|
|
}
|
|
|
|
MindMapNode root = optRoot.get();
|
|
String contentJson = MindMapTreeTool.toJson(root, objectMapper);
|
|
String outline = MindMapTreeTool.toFullOutline(root);
|
|
int nodeCount = MindMapTreeTool.countNodes(root);
|
|
int depth = MindMapTreeTool.maxDepth(root);
|
|
|
|
ReviewStandardMindMapEntity entity = queryByTaskNum(taskNum);
|
|
boolean create = entity == null;
|
|
if (create) {
|
|
entity = new ReviewStandardMindMapEntity();
|
|
entity.setTaskNum(taskNum);
|
|
}
|
|
|
|
entity.setTitle(root.getTitle() != null ? root.getTitle() : "思维导图");
|
|
entity.setContent(contentJson);
|
|
entity.setOutline(outline);
|
|
entity.setSummary("共 " + nodeCount + " 个节点,最大层级 " + depth);
|
|
entity.setGenerator(client.generatorName());
|
|
entity.setGeneratorVersion("1.0");
|
|
entity.setSourceReportCount(reports.size());
|
|
entity.setSourceFragmentCount(fragments.size());
|
|
entity.setGeneratedTime(LocalDateTime.now());
|
|
|
|
if (create) {
|
|
standardMindMapMapper.insert(entity);
|
|
} else {
|
|
standardMindMapMapper.updateById(entity);
|
|
}
|
|
return entity;
|
|
}
|
|
|
|
private void ensureTaskExists(String taskNum) throws NotFindEntitiesException {
|
|
if (!StringUtils.hasText(taskNum) || !tasksMapper.exists(
|
|
Wrappers.<TaskEntity>lambdaQuery().eq(TaskEntity::getTaskNum, taskNum))) {
|
|
throw new NotFindEntitiesException("任务[" + taskNum + "]不存在");
|
|
}
|
|
}
|
|
|
|
private ReviewStandardMindMapEntity queryByTaskNum(String taskNum) {
|
|
return standardMindMapMapper.selectOne(
|
|
Wrappers.<ReviewStandardMindMapEntity>lambdaQuery()
|
|
.eq(ReviewStandardMindMapEntity::getTaskNum, taskNum)
|
|
.last("LIMIT 1"));
|
|
}
|
|
|
|
// ============ 标题归一化 ============
|
|
|
|
/**
|
|
* 标准化标题用于对比:去空格、去标点、转小写。
|
|
*/
|
|
static String normalize(String s) {
|
|
if (s == null) return "";
|
|
// 先移除内部对比标记前缀,再清理标点
|
|
String result = s.replaceAll("^(?:MATCHED|MISSED)\\|", "");
|
|
result = result.replaceAll("[\\s 、,。!?:;()\\[\\]{},.!?:;()\\-—/\\\\|]", "");
|
|
return result.toLowerCase(Locale.ROOT).trim();
|
|
}
|
|
|
|
/**
|
|
* 模糊匹配:计算字符 bigram Jaccard 相似度
|
|
*/
|
|
static boolean fuzzyMatch(String title, Map<String, MindMapNode> recallTitleMap) {
|
|
if (title == null || title.isBlank()) return false;
|
|
String norm = normalize(title);
|
|
Set<String> bigrams = bigramSet(norm);
|
|
if (bigrams.isEmpty()) return false;
|
|
|
|
for (String recallKey : recallTitleMap.keySet()) {
|
|
Set<String> recallBigrams = bigramSet(recallKey);
|
|
if (recallBigrams.isEmpty()) continue;
|
|
// Jaccard
|
|
Set<String> intersection = new HashSet<>(bigrams);
|
|
intersection.retainAll(recallBigrams);
|
|
Set<String> union = new HashSet<>(bigrams);
|
|
union.addAll(recallBigrams);
|
|
double similarity = (double) intersection.size() / union.size();
|
|
if (similarity >= 0.6) {
|
|
return true;
|
|
}
|
|
}
|
|
return false;
|
|
}
|
|
|
|
static Set<String> bigramSet(String s) {
|
|
Set<String> set = new HashSet<>();
|
|
for (int i = 0; i < s.length() - 1; i++) {
|
|
set.add(s.substring(i, i + 2));
|
|
}
|
|
return set;
|
|
}
|
|
}
|