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[序列生成器 Sequence Gener...]的搜索结果
这里是文章列表。热门标签的颜色随机变换,标签颜色没有特殊含义。
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Apache Pig
...等新技术的发展,时间序列数据的生成速度和规模正以前所未有的态势增长。例如,在智慧城市项目中,实时交通流量监控产生的海量数据就需要Apache Pig这样的平台进行快速分析,以优化城市交通规划和管理。 实际上,Apache Pig不仅限于对历史数据进行统计分析,还能够与实时流处理框架如Apache Flink或Apache Spark Streaming结合使用,实现对实时时间序列数据的即时分析和预测。此外,随着机器学习库(如Mahout、TensorFlow on Spark)与大数据平台的深度融合,用户可以借助Apache Pig进行复杂的时间序列预测模型训练,为商业决策提供更精准的支持。 不仅如此,Apache Pig也正在响应社区需求,持续更新和完善功能。最新的版本中,Pig Latin增加了更多针对时间序列处理的功能模块,使得用户能更加便捷地完成窗口聚合、滑动平均等多种高级统计分析操作。 综上所述,Apache Pig在未来的大数据处理尤其是时间序列数据分析方面,将持续发挥关键作用,并且随着技术生态的不断进化,其应用场景将更为丰富多元。对于致力于挖掘时间序列数据价值的数据科学家而言,深入掌握并灵活运用Apache Pig将成为一项重要的技能要求。
2023-04-09 14:18:20
609
灵动之光-t
Golang
...obra(命令行工具生成器)等,这些库大大丰富了Golang的应用场景并提升了开发效率。与此同时,遵循良好的包设计原则,比如单一职责原则,也成为优秀Go程序员的重要素养之一。 综上所述,在Golang的世界里,库和包的概念不仅体现在语言设计层面,更是通过不断发展的生态系统和实践来展现其价值,值得广大开发者关注和深入研究。
2023-01-22 13:27:31
497
时光倒流-t
Flink
...数据源收集数据并实时生成业务洞察。这一实践展示了Flink在数据源定义上的强大扩展性和在流处理领域的卓越性能。 综上所述,随着Apache Flink功能的不断完善以及行业应用的深入拓展,理解和掌握如何定义和优化数据源已经成为现代大数据工程师不可或缺的技能之一。对于希望深入了解Flink数据源特性的读者来说,除了官方文档外,还可以关注相关的技术博客、开源项目以及最新的学术研究成果,以便紧跟行业发展动态,提升自身技术水平。
2023-01-01 13:52:18
405
月影清风-t
Beego
...现UUID和自增ID生成之后,我们可以进一步探索数据库主键设计的深度实践以及分布式系统中的全局唯一ID生成策略。 近期,在数据库领域,针对云原生环境下的全局唯一ID生成方案持续受到关注。例如,Twitter开源的Snowflake算法因其高性能、高可用和可扩展性,被广泛应用在分布式系统中生成唯一ID。该算法结合了时间戳、工作机器ID和序列号三部分信息,既满足了全局唯一性,又能保证生成效率,并能很好地适应云环境的动态伸缩需求。 同时,对于数据库表设计,除了自增ID外,还出现了如哈希ID、ULID(Univeral Unique Lexicographically Sortable Identifier)等新型标识符方案,这些方案各具优势,如ULID结合了时间和随机性,既能保持唯一性,又具有良好的排序特性,适用于日志记录、事件溯源等场景。 此外,随着微服务架构和分布式事务的发展,诸如Sequencer服务的设计与实现也成为热点话题。这类服务专门负责为各个微服务提供全局有序且唯一的ID,有效解决了分布式环境下数据一致性的问题。 综上所述,在实际开发中,选择何种唯一ID生成策略应充分考虑系统的具体应用场景、性能要求、扩展性和维护成本等因素,以达到最优的技术选型和架构设计。不断跟踪最新的技术动态和解决方案,有助于我们在实践中做出更科学、合理的决策。
2023-11-17 22:27:26
589
翡翠梦境-t
转载文章
...景的拓展,如静态网站生成器(如Hugo、Gatsby)、服务端渲染框架(Next.js)等都深度依赖于文件系统的操作,深入学习和掌握Node.js的文件系统API,将有助于开发者更好地应对实际开发需求,提升工作效率。 在安全方面,Node.js文件系统操作也需注意权限管理和异常处理机制,以防止潜在的安全风险,确保数据安全和系统稳定性。因此,理解并遵循最佳实践来执行文件操作是每个Node.js开发者必备技能之一。
2023-12-30 19:15:04
67
转载
转载文章
...0版本的发布,新增了序列(SEQUENCE)对象,提供了一种更为灵活的方式来生成唯一的序列号,可用于解决自增主键不连续的问题。 此外,在数据库优化方面,对于高并发环境下的插入操作,如何确保自增主键的连续性和唯一性变得更加复杂。一些大型互联网公司采用了分布式ID生成策略,如雪花算法(Snowflake),能够在分布式环境下实现高效且有序的ID生成,从而避免因单点故障或并发写入导致的自增主键断层。 值得注意的是,无论采取何种解决方案,都需要根据实际应用场景、数据量大小、并发访问量及性能需求等因素综合考虑。同时,理解并遵循数据库设计范式,合理规划表结构,也有助于从根本上减少此类问题的发生。总之,面对MySQL或其他数据库系统中的自增主键连续性挑战,持续关注最新的数据库技术和最佳实践,结合自身项目特点选择最优方案,才能确保系统的稳定、高效运行。
2023-08-26 08:19:54
92
转载
Oracle
...cle开发者,我深感序列化事务处理的重要性。在有多个用户同时使用的情况下,保证数据的准确性、靠谱度和安全性是我们绝对绕不开的大问题。而Oracle数据库事务处理正是我们解决这一问题的重要手段之一。在这篇文章中,我将深入探讨如何使用Oracle的序列化事务处理。 二、什么是序列化事务处理? 在数据库领域,序列化是指在同一时间只有一个用户可以访问数据库资源,即一次只能有一个用户操作数据库,直到他们的操作完成。这就好比大家一起编辑同一份文档,如果都同时动手改,很容易弄得一团糟,对吧?所以,我们采取了措施,确保大家伙儿不能同时修改相同的数据,这样一来,就能有效避免数据出现“你改过来、我改过去”的混乱情况啦。而在Oracle中,序列化可以通过一系列的命令和设置来实现。 三、序列化事务处理的实现 首先,我们需要创建一个序列。创建序列的主要语法是: sql CREATE SEQUENCE [schema_name.]sequence_name [MINVALUE value] [MAXVALUE value] [INCREMENT BY increment_value] [START WITH start_with_value] [NOCACHE] [CACHE value] [ORDER]; 这里需要注意的是,我们在创建序列时需要指定序列的名字、最小值、最大值、增量值、起始值以及是否缓存等参数。其中,MINVALUE、MAXVALUE和INCREMENT BY参数用于控制序列的取值范围,START WITH参数用于设定序列的初始值,NOCACHE参数用于关闭序列的缓存功能,CACHE value参数用于设定序列的缓存大小,ORDER参数用于控制序列的排序规则。 接下来,我们需要启用序列化。在Oracle中,我们可以使用以下命令来开启序列化: sql ALTER SESSION SET TRANSACTION SERIALIZABLE; 通过这条命令,我们可以使当前用户的事务处于序列化状态。这意味着在执行任何操作之前,都需要获取对该资源的排他锁。这样可以确保在同一时间内只有一个用户能够修改同一份数据。 四、序列化事务处理的应用 序列化事务处理在许多场景下都有着广泛的应用。比如,在网上购物平台里,假如说有两个顾客恰好同时看中了同一件商品准备下单购买。如果没有采取同步机制,这两位顾客看到的库存数都可能显示是充足的。不过,当他们都完成支付,正开心地等着收货时,却发现商品居然已经售罄,这就尴尬了。这是因为,第一个用户下单成功后,库存还没来得及喘口气更新数量,第二个用户就唰地一下看到了还显示充足的库存,然后也跟着下单了。结果呢,就像抢购大甩卖一样,东西就被订完了,造成了库存突然告急的情况。 而如果使用序列化,那么这种情况就不会出现。因为两个用户的请求都会被阻塞,直到第一个用户成功支付并释放锁。这样一来,咱们就能稳稳地保证库存量绝对不会跌到负数去,这样一来,系统的稳定性和可靠性都妥妥地提升了,就像给系统吃了颗定心丸一样。 五、结论 总的来说,序列化事务处理是一种强大的工具,可以帮助我们保证数据的一致性、可靠性和安全性。在Oracle数据库里,我们其实可以动手创建一个序列,再开启序列化功能,这样一来,就能轻松实现这种独特的处理方式啦。就像是在玩乐高积木一样,先搭建好序列这个组件,再激活它的序列化能力,一切就都搞定了!虽然这种方式可能会让效果稍微打点折扣,但是为了确保数据的安全无损,这个牺牲绝对是物超所值的。 在未来的工作中,我会继续深入研究Oracle数据库事务处理的相关知识,并尝试将其应用于实际项目中。我相信,通过不断的学习和实践,我可以成为一名更优秀的Oracle开发者。
2023-12-05 11:51:53
136
海阔天空-t
SpringCloud
...一个全局唯一的锁ID生成器 String lockId1 = generateUniqueLockId("ServiceA", "Resource1"); String lockId2 = generateUniqueLockId("ServiceB", "Resource2"); // 获取锁按照全局排序规则 RLock lock1 = redissonClient.getFairLock(lockId1); RLock lock2 = redissonClient.getFairLock(lockId2); (2)超时与重试机制:为获取锁的操作设置合理的超时时间,一旦超时则释放已获得的锁并重新尝试,可以有效防止死锁长期存在。 java if (lock.tryLock(10, TimeUnit.SECONDS)) { try { // 处理业务逻辑 } finally { lock.unlock(); } } else { log.warn("Failed to acquire the lock within the timeout, will retry later..."); // 重新尝试或其他补偿措施 } (3)死锁检测与解除:某些高级的分布式锁实现,如Redlock算法,提供了内置的死锁检测和自动解锁机制,能够及时发现并解开死锁,从而保障系统的一致性。 5. 结语 在运用SpringCloud构建分布式系统的过程中,理解并妥善处理分布式锁的死锁问题以及由此引发的状态不一致问题是至关重要的。经过对这些策略的认真学习和动手实践,我们就能更溜地掌握分布式锁,确保不同服务之间能够既麻利又安全地协同工作,就像一个默契十足的团队一样。虽然技术难题时不时会让人头疼得抓狂,但正是这些挑战,让我们在攻克它们的过程中,技术水平像打怪升级一样蹭蹭提升。同时,对分布式系统的搭建和运维也有了越来越深入、接地气的理解,就像亲手种下一棵树,慢慢了解它的根茎叶脉一样。让我们共同面对挑战,让SpringCloud发挥出它应有的强大效能!
2023-03-19 23:46:57
89
青春印记
SpringBoot
...chetype功能来生成一个新的SpringBoot项目,该项目的组ID为com.example, artifactID为springboot-mongoapp,父依赖为spring-boot-starter-parent。这个命令会自动为你创建好所有的项目文件和目录结构,包括pom.xml和src/main/java/com/example/springbootmongoapp等文件。 4. 配置SpringBoot和MongoDB 在创建好项目之后,我们需要进行一些配置工作。首先,我们需要在pom.xml文件中添加SpringDataMongoDB的依赖: xml org.springframework.boot spring-boot-starter-data-mongodb 这行代码的意思是我们需要使用SpringDataMongoDB来处理MongoDB的相关操作。然后,我们需要在application.properties文件中添加MongoDB的连接信息: properties spring.data.mongodb.uri=mongodb://localhost:27017/mydb 这行代码的意思是我们的MongoDB服务器位于本地主机的27017端口上,且数据库名为mydb。 5. 使用MongoTemplate操作MongoDB 在配置完成后,我们就可以开始使用MongoTemplate来操作MongoDB了。MongoTemplate是SpringDataMongoDB提供的一个类,它可以帮助我们执行各种数据库操作。下面是一些基本的操作示例: java @Autowired private MongoTemplate mongoTemplate; public void insert(String collectionName, String id, Object entity) { mongoTemplate.insert(entity, collectionName); } public List find(String collectionName, Query query) { return mongoTemplate.find(query, Object.class, collectionName); } 6. 使用Repository操作MongoDB 除了MongoTemplate之外,SpringDataMongoDB还提供了Repository接口,它可以帮助我们更加方便地进行数据库操作。我们完全可以把这个接口“继承”下来,然后自己动手编写几个核心的方法,就像是插入数据、查找信息、更新记录、删除项目这些基本操作,让它们各司其职,活跃在我们的程序里。下面是一个简单的示例: java @Repository public interface UserRepository extends MongoRepository { User findByUsername(String username); void deleteByUsername(String username); default void save(User user) { if (user.getId() == null) { user.setId(UUID.randomUUID().toString()); } super.save(user); } @Query(value = "{'username':?0}") List findByUsername(String username); } 7. 总结 总的来说,SpringBoot与MongoDB的集成是非常简单和便捷的。只需要几步简单的配置,我们就可以使用SpringBoot的强大功能来操作MongoDB。而且你知道吗,SpringDataMongoDB这家伙还藏着不少好东西嘞,像数据映射、查询、聚合这些高级功能,全都是它的拿手好戏。这样一来,我们开发应用程序就能又快又高效,简直像是插上了小翅膀一样飞速前进!所以,如果你正在琢磨着用NoSQL数据库来搭建你的数据存储方案,那我真心实意地拍胸脯推荐你试试SpringBoot配上MongoDB这个黄金组合,准保不会让你失望!
2023-04-09 13:34:32
76
岁月如歌-t
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...e深度学习框架,训练序列标注(双向GRU)网络模型实现分词。同时支持词性标注。paddle模式使用需安装paddlepaddle-tiny,pip install paddlepaddle-tiny==1.6.1。目前paddle模式支持jieba v0.40及以上版本。jieba v0.40以下版本,请升级jieba,pip install jieba --upgrade 。PaddlePaddle官网 支持繁体分词 支持自定义词典 MIT 授权协议 安装说明 代码对 Python 2/3 均兼容 全自动安装:easy_install jieba 或者 pip install jieba / pip3 install jieba 半自动安装:先下载 http://pypi.python.org/pypi/jieba/ ,解压后运行 python setup.py install 手动安装:将 jieba 目录放置于当前目录或者 site-packages 目录 通过 import jieba 来引用 如果需要使用paddle模式下的分词和词性标注功能,请先安装paddlepaddle-tiny,pip install paddlepaddle-tiny==1.6.1。 算法 基于前缀词典实现高效的词图扫描,生成句子中汉字所有可能成词情况所构成的有向无环图 (DAG) 采用了动态规划查找最大概率路径, 找出基于词频的最大切分组合 对于未登录词,采用了基于汉字成词能力的 HMM 模型,使用了 Viterbi 算法 主要功能 分词 jieba.cut 方法接受四个输入参数: 需要分词的字符串;cut_all 参数用来控制是否采用全模式;HMM 参数用来控制是否使用 HMM 模型;use_paddle 参数用来控制是否使用paddle模式下的分词模式,paddle模式采用延迟加载方式,通过enable_paddle接口安装paddlepaddle-tiny,并且import相关代码; jieba.cut_for_search 方法接受两个参数:需要分词的字符串;是否使用 HMM 模型。该方法适合用于搜索引擎构建倒排索引的分词,粒度比较细 待分词的字符串可以是 unicode 或 UTF-8 字符串、GBK 字符串。注意:不建议直接输入 GBK 字符串,可能无法预料地错误解码成 UTF-8 jieba.cut 以及 jieba.cut_for_search 返回的结构都是一个可迭代的 generator,可以使用 for 循环来获得分词后得到的每一个词语(unicode),或者用 jieba.lcut 以及 jieba.lcut_for_search 直接返回 list jieba.Tokenizer(dictionary=DEFAULT_DICT) 新建自定义分词器,可用于同时使用不同词典。jieba.dt 为默认分词器,所有全局分词相关函数都是该分词器的映射。 代码示例 encoding=utf-8import jiebajieba.enable_paddle() 启动paddle模式。 0.40版之后开始支持,早期版本不支持strs=["我来到北京清华大学","乒乓球拍卖完了","中国科学技术大学"]for str in strs:seg_list = jieba.cut(str,use_paddle=True) 使用paddle模式print("Paddle Mode: " + '/'.join(list(seg_list)))seg_list = jieba.cut("我来到北京清华大学", cut_all=True)print("Full Mode: " + "/ ".join(seg_list)) 全模式seg_list = jieba.cut("我来到北京清华大学", cut_all=False)print("Default Mode: " + "/ ".join(seg_list)) 精确模式seg_list = jieba.cut("他来到了网易杭研大厦") 默认是精确模式print(", ".join(seg_list))seg_list = jieba.cut_for_search("小明硕士毕业于中国科学院计算所,后在日本京都大学深造") 搜索引擎模式print(", ".join(seg_list)) 输出: 【全模式】: 我/ 来到/ 北京/ 清华/ 清华大学/ 华大/ 大学【精确模式】: 我/ 来到/ 北京/ 清华大学【新词识别】:他, 来到, 了, 网易, 杭研, 大厦 (此处,“杭研”并没有在词典中,但是也被Viterbi算法识别出来了)【搜索引擎模式】: 小明, 硕士, 毕业, 于, 中国, 科学, 学院, 科学院, 中国科学院, 计算, 计算所, 后, 在, 日本, 京都, 大学, 日本京都大学, 深造 添加自定义词典 载入词典 开发者可以指定自己自定义的词典,以便包含 jieba 词库里没有的词。虽然 jieba 有新词识别能力,但是自行添加新词可以保证更高的正确率 用法: jieba.load_userdict(file_name) file_name 为文件类对象或自定义词典的路径 词典格式和 dict.txt 一样,一个词占一行;每一行分三部分:词语、词频(可省略)、词性(可省略),用空格隔开,顺序不可颠倒。file_name 若为路径或二进制方式打开的文件,则文件必须为 UTF-8 编码。 词频省略时使用自动计算的能保证分出该词的词频。 例如: 创新办 3 i云计算 5凱特琳 nz台中 更改分词器(默认为 jieba.dt)的 tmp_dir 和 cache_file 属性,可分别指定缓存文件所在的文件夹及其文件名,用于受限的文件系统。 范例: 自定义词典:https://github.com/fxsjy/jieba/blob/master/test/userdict.txt 用法示例:https://github.com/fxsjy/jieba/blob/master/test/test_userdict.py 之前: 李小福 / 是 / 创新 / 办 / 主任 / 也 / 是 / 云 / 计算 / 方面 / 的 / 专家 / 加载自定义词库后: 李小福 / 是 / 创新办 / 主任 / 也 / 是 / 云计算 / 方面 / 的 / 专家 / 调整词典 使用 add_word(word, freq=None, tag=None) 和 del_word(word) 可在程序中动态修改词典。 使用 suggest_freq(segment, tune=True) 可调节单个词语的词频,使其能(或不能)被分出来。 注意:自动计算的词频在使用 HMM 新词发现功能时可能无效。 代码示例: >>> print('/'.join(jieba.cut('如果放到post中将出错。', HMM=False)))如果/放到/post/中将/出错/。>>> jieba.suggest_freq(('中', '将'), True)494>>> print('/'.join(jieba.cut('如果放到post中将出错。', HMM=False)))如果/放到/post/中/将/出错/。>>> print('/'.join(jieba.cut('「台中」正确应该不会被切开', HMM=False)))「/台/中/」/正确/应该/不会/被/切开>>> jieba.suggest_freq('台中', True)69>>> print('/'.join(jieba.cut('「台中」正确应该不会被切开', HMM=False)))「/台中/」/正确/应该/不会/被/切开 “通过用户自定义词典来增强歧义纠错能力” — https://github.com/fxsjy/jieba/issues/14 关键词提取 基于 TF-IDF 算法的关键词抽取 import jieba.analyse jieba.analyse.extract_tags(sentence, topK=20, withWeight=False, allowPOS=()) sentence 为待提取的文本 topK 为返回几个 TF/IDF 权重最大的关键词,默认值为 20 withWeight 为是否一并返回关键词权重值,默认值为 False allowPOS 仅包括指定词性的词,默认值为空,即不筛选 jieba.analyse.TFIDF(idf_path=None) 新建 TFIDF 实例,idf_path 为 IDF 频率文件 代码示例 (关键词提取) https://github.com/fxsjy/jieba/blob/master/test/extract_tags.py 关键词提取所使用逆向文件频率(IDF)文本语料库可以切换成自定义语料库的路径 用法: jieba.analyse.set_idf_path(file_name) file_name为自定义语料库的路径 自定义语料库示例:https://github.com/fxsjy/jieba/blob/master/extra_dict/idf.txt.big 用法示例:https://github.com/fxsjy/jieba/blob/master/test/extract_tags_idfpath.py 关键词提取所使用停止词(Stop Words)文本语料库可以切换成自定义语料库的路径 用法: jieba.analyse.set_stop_words(file_name) file_name为自定义语料库的路径 自定义语料库示例:https://github.com/fxsjy/jieba/blob/master/extra_dict/stop_words.txt 用法示例:https://github.com/fxsjy/jieba/blob/master/test/extract_tags_stop_words.py 关键词一并返回关键词权重值示例 用法示例:https://github.com/fxsjy/jieba/blob/master/test/extract_tags_with_weight.py 基于 TextRank 算法的关键词抽取 jieba.analyse.textrank(sentence, topK=20, withWeight=False, allowPOS=(‘ns’, ‘n’, ‘vn’, ‘v’)) 直接使用,接口相同,注意默认过滤词性。 jieba.analyse.TextRank() 新建自定义 TextRank 实例 算法论文: TextRank: Bringing Order into Texts 基本思想: 将待抽取关键词的文本进行分词 以固定窗口大小(默认为5,通过span属性调整),词之间的共现关系,构建图 计算图中节点的PageRank,注意是无向带权图 使用示例: 见 test/demo.py 词性标注 jieba.posseg.POSTokenizer(tokenizer=None) 新建自定义分词器,tokenizer 参数可指定内部使用的 jieba.Tokenizer 分词器。jieba.posseg.dt 为默认词性标注分词器。 标注句子分词后每个词的词性,采用和 ictclas 兼容的标记法。 除了jieba默认分词模式,提供paddle模式下的词性标注功能。paddle模式采用延迟加载方式,通过enable_paddle()安装paddlepaddle-tiny,并且import相关代码; 用法示例 >>> import jieba>>> import jieba.posseg as pseg>>> words = pseg.cut("我爱北京天安门") jieba默认模式>>> jieba.enable_paddle() 启动paddle模式。 0.40版之后开始支持,早期版本不支持>>> words = pseg.cut("我爱北京天安门",use_paddle=True) paddle模式>>> for word, flag in words:... print('%s %s' % (word, flag))...我 r爱 v北京 ns天安门 ns paddle模式词性标注对应表如下: paddle模式词性和专名类别标签集合如下表,其中词性标签 24 个(小写字母),专名类别标签 4 个(大写字母)。 标签 含义 标签 含义 标签 含义 标签 含义 n 普通名词 f 方位名词 s 处所名词 t 时间 nr 人名 ns 地名 nt 机构名 nw 作品名 nz 其他专名 v 普通动词 vd 动副词 vn 名动词 a 形容词 ad 副形词 an 名形词 d 副词 m 数量词 q 量词 r 代词 p 介词 c 连词 u 助词 xc 其他虚词 w 标点符号 PER 人名 LOC 地名 ORG 机构名 TIME 时间 并行分词 原理:将目标文本按行分隔后,把各行文本分配到多个 Python 进程并行分词,然后归并结果,从而获得分词速度的可观提升 基于 python 自带的 multiprocessing 模块,目前暂不支持 Windows 用法: jieba.enable_parallel(4) 开启并行分词模式,参数为并行进程数 jieba.disable_parallel() 关闭并行分词模式 例子:https://github.com/fxsjy/jieba/blob/master/test/parallel/test_file.py 实验结果:在 4 核 3.4GHz Linux 机器上,对金庸全集进行精确分词,获得了 1MB/s 的速度,是单进程版的 3.3 倍。 注意:并行分词仅支持默认分词器 jieba.dt 和 jieba.posseg.dt。 Tokenize:返回词语在原文的起止位置 注意,输入参数只接受 unicode 默认模式 result = jieba.tokenize(u'永和服装饰品有限公司')for tk in result:print("word %s\t\t start: %d \t\t end:%d" % (tk[0],tk[1],tk[2])) word 永和 start: 0 end:2word 服装 start: 2 end:4word 饰品 start: 4 end:6word 有限公司 start: 6 end:10 搜索模式 result = jieba.tokenize(u'永和服装饰品有限公司', mode='search')for tk in result:print("word %s\t\t start: %d \t\t end:%d" % (tk[0],tk[1],tk[2])) word 永和 start: 0 end:2word 服装 start: 2 end:4word 饰品 start: 4 end:6word 有限 start: 6 end:8word 公司 start: 8 end:10word 有限公司 start: 6 end:10 ChineseAnalyzer for Whoosh 搜索引擎 引用: from jieba.analyse import ChineseAnalyzer 用法示例:https://github.com/fxsjy/jieba/blob/master/test/test_whoosh.py 命令行分词 使用示例:python -m jieba news.txt > cut_result.txt 命令行选项(翻译): 使用: python -m jieba [options] filename结巴命令行界面。固定参数:filename 输入文件可选参数:-h, --help 显示此帮助信息并退出-d [DELIM], --delimiter [DELIM]使用 DELIM 分隔词语,而不是用默认的' / '。若不指定 DELIM,则使用一个空格分隔。-p [DELIM], --pos [DELIM]启用词性标注;如果指定 DELIM,词语和词性之间用它分隔,否则用 _ 分隔-D DICT, --dict DICT 使用 DICT 代替默认词典-u USER_DICT, --user-dict USER_DICT使用 USER_DICT 作为附加词典,与默认词典或自定义词典配合使用-a, --cut-all 全模式分词(不支持词性标注)-n, --no-hmm 不使用隐含马尔可夫模型-q, --quiet 不输出载入信息到 STDERR-V, --version 显示版本信息并退出如果没有指定文件名,则使用标准输入。 --help 选项输出: $> python -m jieba --helpJieba command line interface.positional arguments:filename input fileoptional arguments:-h, --help show this help message and exit-d [DELIM], --delimiter [DELIM]use DELIM instead of ' / ' for word delimiter; or aspace if it is used without DELIM-p [DELIM], --pos [DELIM]enable POS tagging; if DELIM is specified, use DELIMinstead of '_' for POS delimiter-D DICT, --dict DICT use DICT as dictionary-u USER_DICT, --user-dict USER_DICTuse USER_DICT together with the default dictionary orDICT (if specified)-a, --cut-all full pattern cutting (ignored with POS tagging)-n, --no-hmm don't use the Hidden Markov Model-q, --quiet don't print loading messages to stderr-V, --version show program's version number and exitIf no filename specified, use STDIN instead. 延迟加载机制 jieba 采用延迟加载,import jieba 和 jieba.Tokenizer() 不会立即触发词典的加载,一旦有必要才开始加载词典构建前缀字典。如果你想手工初始 jieba,也可以手动初始化。 import jiebajieba.initialize() 手动初始化(可选) 在 0.28 之前的版本是不能指定主词典的路径的,有了延迟加载机制后,你可以改变主词典的路径: jieba.set_dictionary('data/dict.txt.big') 例子: https://github.com/fxsjy/jieba/blob/master/test/test_change_dictpath.py 其他词典 占用内存较小的词典文件 https://github.com/fxsjy/jieba/raw/master/extra_dict/dict.txt.small 支持繁体分词更好的词典文件 https://github.com/fxsjy/jieba/raw/master/extra_dict/dict.txt.big 下载你所需要的词典,然后覆盖 jieba/dict.txt 即可;或者用 jieba.set_dictionary('data/dict.txt.big') 其他语言实现 结巴分词 Java 版本 作者:piaolingxue 地址:https://github.com/huaban/jieba-analysis 结巴分词 C++ 版本 作者:yanyiwu 地址:https://github.com/yanyiwu/cppjieba 结巴分词 Rust 版本 作者:messense, MnO2 地址:https://github.com/messense/jieba-rs 结巴分词 Node.js 版本 作者:yanyiwu 地址:https://github.com/yanyiwu/nodejieba 结巴分词 Erlang 版本 作者:falood 地址:https://github.com/falood/exjieba 结巴分词 R 版本 作者:qinwf 地址:https://github.com/qinwf/jiebaR 结巴分词 iOS 版本 作者:yanyiwu 地址:https://github.com/yanyiwu/iosjieba 结巴分词 PHP 版本 作者:fukuball 地址:https://github.com/fukuball/jieba-php 结巴分词 .NET(C) 版本 作者:anderscui 地址:https://github.com/anderscui/jieba.NET/ 结巴分词 Go 版本 作者: wangbin 地址: https://github.com/wangbin/jiebago 作者: yanyiwu 地址: https://github.com/yanyiwu/gojieba 结巴分词Android版本 作者 Dongliang.W 地址:https://github.com/452896915/jieba-android 友情链接 https://github.com/baidu/lac 百度中文词法分析(分词+词性+专名)系统 https://github.com/baidu/AnyQ 百度FAQ自动问答系统 https://github.com/baidu/Senta 百度情感识别系统 系统集成 Solr: https://github.com/sing1ee/jieba-solr 分词速度 1.5 MB / Second in Full Mode 400 KB / Second in Default Mode 测试环境: Intel® Core™ i7-2600 CPU @ 3.4GHz;《围城》.txt 常见问题 1. 模型的数据是如何生成的? 详见: https://github.com/fxsjy/jieba/issues/7 2. “台中”总是被切成“台 中”?(以及类似情况) P(台中) < P(台)×P(中),“台中”词频不够导致其成词概率较低 解决方法:强制调高词频 jieba.add_word('台中') 或者 jieba.suggest_freq('台中', True) 3. “今天天气 不错”应该被切成“今天 天气 不错”?(以及类似情况) 解决方法:强制调低词频 jieba.suggest_freq(('今天', '天气'), True) 或者直接删除该词 jieba.del_word('今天天气') 4. 切出了词典中没有的词语,效果不理想? 解决方法:关闭新词发现 jieba.cut('丰田太省了', HMM=False) jieba.cut('我们中出了一个叛徒', HMM=False) 更多问题请点击:https://github.com/fxsjy/jieba/issues?sort=updated&state=closed 修订历史 https://github.com/fxsjy/jieba/blob/master/Changelog jieba “Jieba” (Chinese for “to stutter”) Chinese text segmentation: built to be the best Python Chinese word segmentation module. Features Support three types of segmentation mode: Accurate Mode attempts to cut the sentence into the most accurate segmentations, which is suitable for text analysis. Full Mode gets all the possible words from the sentence. Fast but not accurate. Search Engine Mode, based on the Accurate Mode, attempts to cut long words into several short words, which can raise the recall rate. Suitable for search engines. Supports Traditional Chinese Supports customized dictionaries MIT License Online demo http://jiebademo.ap01.aws.af.cm/ (Powered by Appfog) Usage Fully automatic installation: easy_install jieba or pip install jieba Semi-automatic installation: Download http://pypi.python.org/pypi/jieba/ , run python setup.py install after extracting. Manual installation: place the jieba directory in the current directory or python site-packages directory. import jieba. Algorithm Based on a prefix dictionary structure to achieve efficient word graph scanning. Build a directed acyclic graph (DAG) for all possible word combinations. Use dynamic programming to find the most probable combination based on the word frequency. For unknown words, a HMM-based model is used with the Viterbi algorithm. Main Functions Cut The jieba.cut function accepts three input parameters: the first parameter is the string to be cut; the second parameter is cut_all, controlling the cut mode; the third parameter is to control whether to use the Hidden Markov Model. jieba.cut_for_search accepts two parameter: the string to be cut; whether to use the Hidden Markov Model. This will cut the sentence into short words suitable for search engines. The input string can be an unicode/str object, or a str/bytes object which is encoded in UTF-8 or GBK. Note that using GBK encoding is not recommended because it may be unexpectly decoded as UTF-8. jieba.cut and jieba.cut_for_search returns an generator, from which you can use a for loop to get the segmentation result (in unicode). jieba.lcut and jieba.lcut_for_search returns a list. jieba.Tokenizer(dictionary=DEFAULT_DICT) creates a new customized Tokenizer, which enables you to use different dictionaries at the same time. jieba.dt is the default Tokenizer, to which almost all global functions are mapped. Code example: segmentation encoding=utf-8import jiebaseg_list = jieba.cut("我来到北京清华大学", cut_all=True)print("Full Mode: " + "/ ".join(seg_list)) 全模式seg_list = jieba.cut("我来到北京清华大学", cut_all=False)print("Default Mode: " + "/ ".join(seg_list)) 默认模式seg_list = jieba.cut("他来到了网易杭研大厦")print(", ".join(seg_list))seg_list = jieba.cut_for_search("小明硕士毕业于中国科学院计算所,后在日本京都大学深造") 搜索引擎模式print(", ".join(seg_list)) Output: [Full Mode]: 我/ 来到/ 北京/ 清华/ 清华大学/ 华大/ 大学[Accurate Mode]: 我/ 来到/ 北京/ 清华大学[Unknown Words Recognize] 他, 来到, 了, 网易, 杭研, 大厦 (In this case, "杭研" is not in the dictionary, but is identified by the Viterbi algorithm)[Search Engine Mode]: 小明, 硕士, 毕业, 于, 中国, 科学, 学院, 科学院, 中国科学院, 计算, 计算所, 后, 在, 日本, 京都, 大学, 日本京都大学, 深造 Add a custom dictionary Load dictionary Developers can specify their own custom dictionary to be included in the jieba default dictionary. Jieba is able to identify new words, but you can add your own new words can ensure a higher accuracy. Usage: jieba.load_userdict(file_name) file_name is a file-like object or the path of the custom dictionary The dictionary format is the same as that of dict.txt: one word per line; each line is divided into three parts separated by a space: word, word frequency, POS tag. If file_name is a path or a file opened in binary mode, the dictionary must be UTF-8 encoded. The word frequency and POS tag can be omitted respectively. The word frequency will be filled with a suitable value if omitted. For example: 创新办 3 i云计算 5凱特琳 nz台中 Change a Tokenizer’s tmp_dir and cache_file to specify the path of the cache file, for using on a restricted file system. Example: 云计算 5李小福 2创新办 3[Before]: 李小福 / 是 / 创新 / 办 / 主任 / 也 / 是 / 云 / 计算 / 方面 / 的 / 专家 /[After]: 李小福 / 是 / 创新办 / 主任 / 也 / 是 / 云计算 / 方面 / 的 / 专家 / Modify dictionary Use add_word(word, freq=None, tag=None) and del_word(word) to modify the dictionary dynamically in programs. Use suggest_freq(segment, tune=True) to adjust the frequency of a single word so that it can (or cannot) be segmented. Note that HMM may affect the final result. Example: >>> print('/'.join(jieba.cut('如果放到post中将出错。', HMM=False)))如果/放到/post/中将/出错/。>>> jieba.suggest_freq(('中', '将'), True)494>>> print('/'.join(jieba.cut('如果放到post中将出错。', HMM=False)))如果/放到/post/中/将/出错/。>>> print('/'.join(jieba.cut('「台中」正确应该不会被切开', HMM=False)))「/台/中/」/正确/应该/不会/被/切开>>> jieba.suggest_freq('台中', True)69>>> print('/'.join(jieba.cut('「台中」正确应该不会被切开', HMM=False)))「/台中/」/正确/应该/不会/被/切开 Keyword Extraction import jieba.analyse jieba.analyse.extract_tags(sentence, topK=20, withWeight=False, allowPOS=()) sentence: the text to be extracted topK: return how many keywords with the highest TF/IDF weights. The default value is 20 withWeight: whether return TF/IDF weights with the keywords. The default value is False allowPOS: filter words with which POSs are included. Empty for no filtering. jieba.analyse.TFIDF(idf_path=None) creates a new TFIDF instance, idf_path specifies IDF file path. Example (keyword extraction) https://github.com/fxsjy/jieba/blob/master/test/extract_tags.py Developers can specify their own custom IDF corpus in jieba keyword extraction Usage: jieba.analyse.set_idf_path(file_name) file_name is the path for the custom corpus Custom Corpus Sample:https://github.com/fxsjy/jieba/blob/master/extra_dict/idf.txt.big Sample Code:https://github.com/fxsjy/jieba/blob/master/test/extract_tags_idfpath.py Developers can specify their own custom stop words corpus in jieba keyword extraction Usage: jieba.analyse.set_stop_words(file_name) file_name is the path for the custom corpus Custom Corpus Sample:https://github.com/fxsjy/jieba/blob/master/extra_dict/stop_words.txt Sample Code:https://github.com/fxsjy/jieba/blob/master/test/extract_tags_stop_words.py There’s also a TextRank implementation available. Use: jieba.analyse.textrank(sentence, topK=20, withWeight=False, allowPOS=('ns', 'n', 'vn', 'v')) Note that it filters POS by default. jieba.analyse.TextRank() creates a new TextRank instance. Part of Speech Tagging jieba.posseg.POSTokenizer(tokenizer=None) creates a new customized Tokenizer. tokenizer specifies the jieba.Tokenizer to internally use. jieba.posseg.dt is the default POSTokenizer. Tags the POS of each word after segmentation, using labels compatible with ictclas. Example: >>> import jieba.posseg as pseg>>> words = pseg.cut("我爱北京天安门")>>> for w in words:... print('%s %s' % (w.word, w.flag))...我 r爱 v北京 ns天安门 ns Parallel Processing Principle: Split target text by line, assign the lines into multiple Python processes, and then merge the results, which is considerably faster. Based on the multiprocessing module of Python. Usage: jieba.enable_parallel(4) Enable parallel processing. The parameter is the number of processes. jieba.disable_parallel() Disable parallel processing. Example: https://github.com/fxsjy/jieba/blob/master/test/parallel/test_file.py Result: On a four-core 3.4GHz Linux machine, do accurate word segmentation on Complete Works of Jin Yong, and the speed reaches 1MB/s, which is 3.3 times faster than the single-process version. Note that parallel processing supports only default tokenizers, jieba.dt and jieba.posseg.dt. Tokenize: return words with position The input must be unicode Default mode result = jieba.tokenize(u'永和服装饰品有限公司')for tk in result:print("word %s\t\t start: %d \t\t end:%d" % (tk[0],tk[1],tk[2])) word 永和 start: 0 end:2word 服装 start: 2 end:4word 饰品 start: 4 end:6word 有限公司 start: 6 end:10 Search mode result = jieba.tokenize(u'永和服装饰品有限公司',mode='search')for tk in result:print("word %s\t\t start: %d \t\t end:%d" % (tk[0],tk[1],tk[2])) word 永和 start: 0 end:2word 服装 start: 2 end:4word 饰品 start: 4 end:6word 有限 start: 6 end:8word 公司 start: 8 end:10word 有限公司 start: 6 end:10 ChineseAnalyzer for Whoosh from jieba.analyse import ChineseAnalyzer Example: https://github.com/fxsjy/jieba/blob/master/test/test_whoosh.py Command Line Interface $> python -m jieba --helpJieba command line interface.positional arguments:filename input fileoptional arguments:-h, --help show this help message and exit-d [DELIM], --delimiter [DELIM]use DELIM instead of ' / ' for word delimiter; or aspace if it is used without DELIM-p [DELIM], --pos [DELIM]enable POS tagging; if DELIM is specified, use DELIMinstead of '_' for POS delimiter-D DICT, --dict DICT use DICT as dictionary-u USER_DICT, --user-dict USER_DICTuse USER_DICT together with the default dictionary orDICT (if specified)-a, --cut-all full pattern cutting (ignored with POS tagging)-n, --no-hmm don't use the Hidden Markov Model-q, --quiet don't print loading messages to stderr-V, --version show program's version number and exitIf no filename specified, use STDIN instead. Initialization By default, Jieba don’t build the prefix dictionary unless it’s necessary. This takes 1-3 seconds, after which it is not initialized again. If you want to initialize Jieba manually, you can call: import jiebajieba.initialize() (optional) You can also specify the dictionary (not supported before version 0.28) : jieba.set_dictionary('data/dict.txt.big') Using Other Dictionaries It is possible to use your own dictionary with Jieba, and there are also two dictionaries ready for download: A smaller dictionary for a smaller memory footprint: https://github.com/fxsjy/jieba/raw/master/extra_dict/dict.txt.small There is also a bigger dictionary that has better support for traditional Chinese (繁體): https://github.com/fxsjy/jieba/raw/master/extra_dict/dict.txt.big By default, an in-between dictionary is used, called dict.txt and included in the distribution. In either case, download the file you want, and then call jieba.set_dictionary('data/dict.txt.big') or just replace the existing dict.txt. Segmentation speed 1.5 MB / Second in Full Mode 400 KB / Second in Default Mode Test Env: Intel® Core™ i7-2600 CPU @ 3.4GHz;《围城》.txt 本篇文章为转载内容。原文链接:https://blog.csdn.net/yegeli/article/details/107246661。 该文由互联网用户投稿提供,文中观点代表作者本人意见,并不代表本站的立场。 作为信息平台,本站仅提供文章转载服务,并不拥有其所有权,也不对文章内容的真实性、准确性和合法性承担责任。 如发现本文存在侵权、违法、违规或事实不符的情况,请及时联系我们,我们将第一时间进行核实并删除相应内容。
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...e: 剩下的事情只是生成并运用迁移了。首先,在“Package Manager Console(包管理器控制台)”中执行以下命令: Add-Migration CityProperty This creates a new migration called CityProperty (I like my migration names to reflect the changes I made). A class new file will be added to the Migrations folder, and its name reflects the time at which the command was run and the name of the migration. My file is called 201402262244036_CityProperty.cs, for example. The contents of this file contain the details of how Entity Framework will change the database during the migration, as shown in Listing 15-7. 这创建了一个名称为CityProperty的新迁移(我比较喜欢让迁移的名称反映出我所做的修改)。这会在文件夹中添加一个新的类文件,而且其命名会反映出该命令执行的时间以及迁移名称,例如,我的这个文件名称为201402262244036_CityProperty.cs。该文件的内容含有迁移期间Entity Framework修改数据库的细节,如清单15-7所示。 Listing 15-7. The Contents of the 201402262244036_CityProperty.cs File 清单15-7. 201402262244036_CityProperty.cs文件的内容 namespace Users.Migrations {using System;using System.Data.Entity.Migrations; public partial class Init : DbMigration {public override void Up() {AddColumn("dbo.AspNetUsers", "City", c => c.Int(nullable: false));}public override void Down() {DropColumn("dbo.AspNetUsers", "City");} }} The Up method describes the changes that have to be made to the schema when the database is upgraded, which in this case means adding a City column to the AspNetUsers table, which is the one that is used to store user records in the ASP.NET Identity database. Up方法描述了在数据库升级时,需要对架构所做的修改,在这个例子中,意味着要在AspNetUsers数据表中添加City数据列,该数据表是ASP.NET Identity数据库用来存储用户记录的。 The final step is to perform the migration. Without starting the application, run the following command in the Package Manager Console: 最后一步是执行迁移。无需启动应用程序,只需在“Package Manager Console(包管理器控制台)”中运行以下命令即可: Update-Database –TargetMigration CityProperty The database schema will be modified, and the code in the Configuration.Seed method will be executed. The existing user accounts will have been preserved and enhanced with a City property (which I set to Paris in the Seed method). 这会修改数据库架构,并执行Configuration.Seed方法中的代码。已有用户账号会被保留,且增强了City属性(我在Seed方法中已将其设置为“Paris”)。 15.2.4 Testing the Migration 15.2.4 测试迁移 To test the effect of the migration, start the application, navigate to the /Home/UserProps URL, and authenticate as one of the Identity users (for example, as Alice with the password MySecret). Once authenticated, you will see the current value of the City property for the user and have the opportunity to change it, as shown in Figure 15-3. 为了测试迁移的效果,启动应用程序,导航到/Home/UserProps URL,并以Identity中的用户(例如Alice,口令MySecret)进行认证。一旦已被认证,便会看到该用户City属性的当前值,并可以对其进行修改,如图15-3所示。 Figure 15-3. Displaying and changing a custom user property 图15-3. 显示和个性自定义用户属性 15.2.5 Defining an Additional Property 15.2.5 定义附加属性 Now that database migrations are set up, I am going to define a further property just to demonstrate how subsequent changes are handled and to show a more useful (and less dangerous) example of using the Configuration.Seed method. Listing 15-8 shows how I added a Country property to the AppUser class. 现在,已经建立了数据库迁移,我打算再定义一个属性,这恰恰演示了如何处理持续不断的修改,也为了演示Configuration.Seed方法更有用(至少无害)的示例。清单15-8显示了我在AppUser类上添加了一个Country属性。 Listing 15-8. Adding Another Property in the AppUserModels.cs File 清单15-8. 在AppUserModels.cs文件中添加另一个属性 using System;using Microsoft.AspNet.Identity.EntityFramework; namespace Users.Models {public enum Cities {LONDON, PARIS, CHICAGO} public enum Countries {NONE, UK, FRANCE, USA}public class AppUser : IdentityUser {public Cities City { get; set; }public Countries Country { get; set; }public void SetCountryFromCity(Cities city) {switch (city) {case Cities.LONDON:Country = Countries.UK;break;case Cities.PARIS:Country = Countries.FRANCE;break;case Cities.CHICAGO:Country = Countries.USA;break;default:Country = Countries.NONE;break;} }} } I have added an enumeration to define the country names and a helper method that selects a country value based on the City property. Listing 15-9 shows the change I made to the Configuration class so that the Seed method sets the Country property based on the City, but only if the value of Country is NONE (which it will be for all users when the database is migrated because the Entity Framework sets enumeration columns to the first value). 我已经添加了一个枚举,它定义了国家名称。还添加了一个辅助器方法,它可以根据City属性选择一个国家。清单15-9显示了对Configuration类所做的修改,以使Seed方法根据City设置Country属性,但只当Country为NONE时才进行设置(在迁移数据库时,所有用户都是NONE,因为Entity Framework会将枚举列设置为枚举的第一个值)。 Listing 15-9. Modifying the Database Seed in the Configuration.cs File 清单15-9. 在Configuration.cs文件中修改数据库种子 using System.Data.Entity.Migrations;using Microsoft.AspNet.Identity;using Microsoft.AspNet.Identity.EntityFramework;using Users.Infrastructure;using Users.Models; namespace Users.Migrations {internal sealed class Configuration: DbMigrationsConfiguration<AppIdentityDbContext> {public Configuration() {AutomaticMigrationsEnabled = true;ContextKey = "Users.Infrastructure.AppIdentityDbContext";}protected override void Seed(AppIdentityDbContext context) {AppUserManager userMgr = new AppUserManager(new UserStore<AppUser>(context));AppRoleManager roleMgr = new AppRoleManager(new RoleStore<AppRole>(context)); string roleName = "Administrators";string userName = "Admin";string password = "MySecret";string email = "admin@example.com";if (!roleMgr.RoleExists(roleName)) {roleMgr.Create(new AppRole(roleName));}AppUser user = userMgr.FindByName(userName);if (user == null) {userMgr.Create(new AppUser { UserName = userName, Email = email },password);user = userMgr.FindByName(userName);}if (!userMgr.IsInRole(user.Id, roleName)) {userMgr.AddToRole(user.Id, roleName);} foreach (AppUser dbUser in userMgr.Users) {if (dbUser.Country == Countries.NONE) {dbUser.SetCountryFromCity(dbUser.City);} }context.SaveChanges();} }} This kind of seeding is more useful in a real project because it will set a value for the Country property only if one has not already been set—subsequent migrations won’t be affected, and user selections won’t be lost. 这种种植在实际项目中会更有用,因为它只会在Country属性未设置时,才会设置Country属性的值——后继的迁移不会受到影响,因此不会失去用户的选择。 1. Adding Application Support 1. 添加应用程序支持 There is no point defining additional user properties if they are not available in the application, so Listing 15-10 shows the change I made to the Views/Home/UserProps.cshtml file to display the value of the Country property. 应用程序中如果没有定义附加属性的地方,则附加属性就无法使用了,因此,清单15-10显示了我对Views/Home/UserProps.cshtml文件的修改,以显示Country属性的值。 Listing 15-10. Displaying an Additional Property in the UserProps.cshtml File 清单15-10. 在UserProps.cshtml文件中显示附加属性 @using Users.Models@model AppUser@{ ViewBag.Title = "UserProps";} <div class="panel panel-primary"><div class="panel-heading">Custom User Properties</div><table class="table table-striped"><tr><th>City</th><td>@Model.City</td></tr> <tr><th>Country</th><td>@Model.Country</td></tr></table></div>@using (Html.BeginForm()) {<div class="form-group"><label>City</label>@Html.DropDownListFor(x => x.City, new SelectList(Enum.GetNames(typeof(Cities))))</div><button class="btn btn-primary" type="submit">Save</button>} Listing 15-11 shows the corresponding change I made to the Home controller to update the Country property when the City value changes. 为了在City值变化时能够更新Country属性,清单15-11显示了我对Home控制器所做的相应修改。 Listing 15-11. Setting Custom Properties in the HomeController.cs File 清单15-11. 在HomeController.cs文件中设置自定义属性 using System.Web.Mvc;using System.Collections.Generic;using System.Web;using System.Security.Principal;using System.Threading.Tasks;using Users.Infrastructure;using Microsoft.AspNet.Identity;using Microsoft.AspNet.Identity.Owin;using Users.Models; namespace Users.Controllers {public class HomeController : Controller {// ...other action methods omitted for brevity...// ...出于简化,这里忽略了其他动作方法... [Authorize]public ActionResult UserProps() {return View(CurrentUser);}[Authorize][HttpPost]public async Task<ActionResult> UserProps(Cities city) {AppUser user = CurrentUser;user.City = city;user.SetCountryFromCity(city);await UserManager.UpdateAsync(user);return View(user);}// ...properties omitted for brevity...// ...出于简化,这里忽略了一些属性...} } 2. Performing the Migration 2. 准备迁移 All that remains is to create and apply a new migration. Enter the following command into the Package Manager Console: 剩下的事情就是创建和运用新的迁移了。在“Package Manager Console(包管理器控制台)”中输入以下命令: Add-Migration CountryProperty This will generate another file in the Migrations folder that contains the instruction to add the Country column. To apply the migration, execute the following command: 这将在Migrations文件夹中生成另一个文件,它含有添加Country数据表列的指令。为了运用迁移,可执行以下命令: Update-Database –TargetMigration CountryProperty The migration will be performed, and the value of the Country property will be set based on the value of the existing City property for each user. You can check the new user property by starting the application and authenticating and navigating to the /Home/UserProps URL, as shown in Figure 15-4. 这将执行迁移,Country属性的值将根据每个用户当前的City属性进行设置。通过启动应用程序,认证并导航到/Home/UserProps URL,便可以查看新的用户属性,如图15-4所示。 Figure 15-4. Creating an additional user property 图15-4. 创建附加用户属性 Tip Although I am focused on the process of upgrading the database, you can also migrate back to a previous version by specifying an earlier migration. Use the –Force argument make changes that cause data loss, such as removing a column. 提示:虽然我们关注了升级数据库的过程,但你也可以回退到以前的版本,只需指定一个早期的迁移即可。使用-Force参数进行修改,会引起数据丢失,例如删除数据表列。 15.3 Working with Claims 15.3 使用声明(Claims) In older user-management systems, such as ASP.NET Membership, the application was assumed to be the authoritative source of all information about the user, essentially treating the application as a closed world and trusting the data that is contained within it. 在旧的用户管理系统中,例如ASP.NET Membership,应用程序被假设成是用户所有信息的权威来源,本质上将应用程序视为是一个封闭的世界,并且只信任其中所包含的数据。 This is such an ingrained approach to software development that it can be hard to recognize that’s what is happening, but you saw an example of the closed-world technique in Chapter 14 when I authenticated users against the credentials stored in the database and granted access based on the roles associated with those credentials. I did the same thing again in this chapter when I added properties to the user class. Every piece of information that I needed to manage user authentication and authorization came from within my application—and that is a perfectly satisfactory approach for many web applications, which is why I demonstrated these techniques in such depth. 这是软件开发的一种根深蒂固的方法,使人很难认识到这到底意味着什么,第14章你已看到了这种封闭世界技术的例子,根据存储在数据库中的凭据来认证用户,并根据与凭据关联在一起的角色来授权访问。本章前述在用户类上添加属性,也做了同样的事情。我管理用户认证与授权所需的每一个数据片段都来自于我的应用程序——而且这是许多Web应用程序都相当满意的一种方法,这也是我如此深入地演示这些技术的原因。 ASP.NET Identity also supports an alternative approach for dealing with users, which works well when the MVC framework application isn’t the sole source of information about users and which can be used to authorize users in more flexible and fluid ways than traditional roles allow. ASP.NET Identity还支持另一种处理用户的办法,当MVC框架的应用程序不是有关用户的唯一信息源时,这种办法会工作得很好,而且能够比传统的角色授权更为灵活且流畅的方式进行授权。 This alternative approach uses claims, and in this section I’ll describe how ASP.NET Identity supports claims-based authorization. Table 15-4 puts claims in context. 这种可选的办法使用了“Claims(声明)”,因此在本小节中,我将描述ASP.NET Identity如何支持“Claims-Based Authorization(基于声明的授权)”。表15-4描述了声明(Claims)的情形。 提示:“Claim”在英文字典中不完全是“声明”的意思,根据本文的描述,感觉把它说成“声明”也不一定合适,所以在之后的译文中基本都写成中英文并用的形式,即“声明(Claims)”。根据表15-4中的声明(Claims)的定义:声明(Claims)是关于用户的一些信息片段。一个用户的信息片段当然有很多,每一个信息片段就是一项声明(Claim),用户的所有信息片段合起来就是该用户的声明(Claims)。请读者注意该单词的单复数形式——译者注 Table 15-4. Putting Claims in Context 表15-4. 声明(Claims)的情形 Question 问题 Answer 答案 What is it? 什么是声明(Claims)? Claims are pieces of information about users that you can use to make authorization decisions. Claims can be obtained from external systems as well as from the local Identity database. 声明(Claims)是关于用户的一些信息片段,可以用它们做出授权决定。声明(Claims)可以从外部系统获取,也可以从本地的Identity数据库获取。 Why should I care? 为何要关心它? Claims can be used to flexibly authorize access to action methods. Unlike conventional roles, claims allow access to be driven by the information that describes the user. 声明(Claims)可以用来对动作方法进行灵活的授权访问。与传统的角色不同,声明(Claims)让访问能够由描述用户的信息进行驱动。 How is it used by the MVC framework? 如何在MVC框架中使用它? This feature isn’t used directly by the MVC framework, but it is integrated into the standard authorization features, such as the Authorize attribute. 这不是直接由MVC框架使用的特性,但它集成到了标准的授权特性之中,例如Authorize注解属性。 Tip you don’t have to use claims in your applications, and as Chapter 14 showed, ASP.NET Identity is perfectly happy providing an application with the authentication and authorization services without any need to understand claims at all. 提示:你在应用程序中不一定要使用声明(Claims),正如第14章所展示的那样,ASP.NET Identity能够为应用程序提供充分的认证与授权服务,而根本不需要理解声明(Claims)。 15.3.1 Understanding Claims 15.3.1 理解声明(Claims) A claim is a piece of information about the user, along with some information about where the information came from. The easiest way to unpack claims is through some practical demonstrations, without which any discussion becomes too abstract to be truly useful. To get started, I added a Claims controller to the example project, the definition of which you can see in Listing 15-12. 一项声明(Claim)是关于用户的一个信息片段(请注意这个英文单词的单复数形式——译者注),并伴有该片段出自何处的某种信息。揭开声明(Claims)含义最容易的方式是做一些实际演示,任何讨论都会过于抽象根本没有真正的用处。为此,我在示例项目中添加了一个Claims控制器,其定义如清单15-12所示。 Listing 15-12. The Contents of the ClaimsController.cs File 清单15-12. ClaimsController.cs文件的内容 using System.Security.Claims;using System.Web;using System.Web.Mvc; namespace Users.Controllers {public class ClaimsController : Controller {[Authorize]public ActionResult Index() {ClaimsIdentity ident = HttpContext.User.Identity as ClaimsIdentity;if (ident == null) {return View("Error", new string[] { "No claims available" });} else {return View(ident.Claims);} }} } Tip You may feel a little lost as I define the code for this example. Don’t worry about the details for the moment—just stick with it until you see the output from the action method and view that I define. More than anything else, that will help put claims into perspective. 提示:你或许会对我为此例定义的代码感到有点失望。此刻对此细节不必着急——只要稍事忍耐,当看到该动作方法和视图的输出便会明白。尤为重要的是,这有助于洞察声明(Claims)。 You can get the claims associated with a user in different ways. One approach is to use the Claims property defined by the user class, but in this example, I have used the HttpContext.User.Identity property to demonstrate the way that ASP.NET Identity is integrated with the rest of the ASP.NET platform. As I explained in Chapter 13, the HttpContext.User.Identity property returns an implementation of the IIdentity interface, which is a ClaimsIdentity object when working using ASP.NET Identity. The ClaimsIdentity class is defined in the System.Security.Claims namespace, and Table 15-5 shows the members it defines that are relevant to this chapter. 可以通过不同的方式获得与用户相关联的声明(Claims)。方法之一就是使用由用户类定义的Claims属性,但在这个例子中,我使用了HttpContext.User.Identity属性,目的是演示ASP.NET Identity与ASP.NET平台集成的方式(请注意这句话所表示的含义:用户类的Claims属性属于ASP.NET Identity,而HttpContext.User.Identity属性则属于ASP.NET平台。由此可见,ASP.NET Identity已经融合到了ASP.NET平台之中——译者注)。正如第13章所解释的那样,HttpContext.User.Identity属性返回IIdentity的接口实现,当使用ASP.NET Identity时,该实现是一个ClaimsIdentity对象。ClaimsIdentity类是在System.Security.Claims命名空间中定义的,表15-5显示了它所定义的与本章有关的成员。 Table 15-5. The Members Defined by the ClaimsIdentity Class 表15-5. ClaimsIdentity类所定义的成员 Name 名称 Description 描述 Claims Returns an enumeration of Claim objects representing the claims for the user. 返回表示用户声明(Claims)的Claim对象枚举 AddClaim(claim) Adds a claim to the user identity. 给用户添加一个声明(Claim) AddClaims(claims) Adds an enumeration of Claim objects to the user identity. 给用户添加Claim对象的枚举。 HasClaim(predicate) Returns true if the user identity contains a claim that matches the specified predicate. See the “Applying Claims” section for an example predicate. 如果用户含有与指定谓词匹配的声明(Claim)时,返回true。参见“运用声明(Claims)”中的示例谓词 RemoveClaim(claim) Removes a claim from the user identity. 删除用户的声明(Claim)。 Other members are available, but the ones in the table are those that are used most often in web applications, for reason that will become obvious as I demonstrate how claims fit into the wider ASP.NET platform. 还有一些可用的其它成员,但表中的这些是在Web应用程序中最常用的,随着我演示如何将声明(Claims)融入更宽泛的ASP.NET平台,它们为什么最常用就很显然了。 In Listing 15-12, I cast the IIdentity implementation to the ClaimsIdentity type and pass the enumeration of Claim objects returned by the ClaimsIdentity.Claims property to the View method. A Claim object represents a single piece of data about the user, and the Claim class defines the properties shown in Table 15-6. 在清单15-12中,我将IIdentity实现转换成了ClaimsIdentity类型,并且给View方法传递了ClaimsIdentity.Claims属性所返回的Claim对象的枚举。Claim对象所示表示的是关于用户的一个单一的数据片段,Claim类定义的属性如表15-6所示。 Table 15-6. The Properties Defined by the Claim Class 表15-6. Claim类定义的属性 Name 名称 Description 描述 Issuer Returns the name of the system that provided the claim 返回提供声明(Claim)的系统名称 Subject Returns the ClaimsIdentity object for the user who the claim refers to 返回声明(Claim)所指用户的ClaimsIdentity对象 Type Returns the type of information that the claim represents 返回声明(Claim)所表示的信息类型 Value Returns the piece of information that the claim represents 返回声明(Claim)所表示的信息片段 Listing 15-13 shows the contents of the Index.cshtml file that I created in the Views/Claims folder and that is rendered by the Index action of the Claims controller. The view adds a row to a table for each claim about the user. 清单15-13显示了我在Views/Claims文件夹中创建的Index.cshtml文件的内容,它由Claims控制器中的Index动作方法进行渲染。该视图为用户的每项声明(Claim)添加了一个表格行。 Listing 15-13. The Contents of the Index.cshtml File in the Views/Claims Folder 清单15-13. Views/Claims文件夹中Index.cshtml文件的内容 @using System.Security.Claims@using Users.Infrastructure@model IEnumerable<Claim>@{ ViewBag.Title = "Claims"; }<div class="panel panel-primary"><div class="panel-heading">Claims</div><table class="table table-striped"><tr><th>Subject</th><th>Issuer</th><th>Type</th><th>Value</th></tr>@foreach (Claim claim in Model.OrderBy(x => x.Type)) {<tr><td>@claim.Subject.Name</td><td>@claim.Issuer</td><td>@Html.ClaimType(claim.Type)</td><td>@claim.Value</td></tr>}</table></div> The value of the Claim.Type property is a URI for a Microsoft schema, which isn’t especially useful. The popular schemas are used as the values for fields in the System.Security.Claims.ClaimTypes class, so to make the output from the Index.cshtml view easier to read, I added an HTML helper to the IdentityHelpers.cs file, as shown in Listing 15-14. It is this helper that I use in the Index.cshtml file to format the value of the Claim.Type property. Claim.Type属性的值是一个微软模式(Microsoft Schema)的URI(统一资源标识符),这是特别有用的。System.Security.Claims.ClaimTypes类中字段的值使用的是流行模式(Popular Schema),因此为了使Index.cshtml视图的输出更易于阅读,我在IdentityHelpers.cs文件中添加了一个HTML辅助器,如清单15-14所示。Index.cshtml文件正是使用这个辅助器格式化了Claim.Type属性的值。 Listing 15-14. Adding a Helper to the IdentityHelpers.cs File 清单15-14. 在IdentityHelpers.cs文件中添加辅助器 using System.Web;using System.Web.Mvc;using Microsoft.AspNet.Identity.Owin;using System;using System.Linq;using System.Reflection;using System.Security.Claims;namespace Users.Infrastructure {public static class IdentityHelpers {public static MvcHtmlString GetUserName(this HtmlHelper html, string id) {AppUserManager mgr= HttpContext.Current.GetOwinContext().GetUserManager<AppUserManager>();return new MvcHtmlString(mgr.FindByIdAsync(id).Result.UserName);} public static MvcHtmlString ClaimType(this HtmlHelper html, string claimType) {FieldInfo[] fields = typeof(ClaimTypes).GetFields();foreach (FieldInfo field in fields) {if (field.GetValue(null).ToString() == claimType) {return new MvcHtmlString(field.Name);} }return new MvcHtmlString(string.Format("{0}",claimType.Split('/', '.').Last()));} }} Note The helper method isn’t at all efficient because it reflects on the fields of the ClaimType class for each claim that is displayed, but it is sufficient for my purposes in this chapter. You won’t often need to display the claim type in real applications. 注:该辅助器并非十分有效,因为它只是针对每个要显示的声明(Claim)映射出ClaimType类的字段,但对我要的目的已经足够了。在实际项目中不会经常需要显示声明(Claim)的类型。 To see why I have created a controller that uses claims without really explaining what they are, start the application, authenticate as the user Alice (with the password MySecret), and request the /Claims/Index URL. Figure 15-5 shows the content that is generated. 为了弄明白我为何要先创建一个使用声明(Claims)的控制器,而没有真正解释声明(Claims)是什么的原因,可以启动应用程序,以用户Alice进行认证(其口令是MySecret),并请求/Claims/Index URL。图15-5显示了生成的内容。 Figure 15-5. The output from the Index action of the Claims controller 图15-5. Claims控制器中Index动作的输出 It can be hard to make out the detail in the figure, so I have reproduced the content in Table 15-7. 这可能还难以认识到此图的细节,为此我在表15-7中重列了其内容。 Table 15-7. The Data Shown in Figure 15-5 表15-7. 图15-5中显示的数据 Subject(科目) Issuer(发行者) Type(类型) Value(值) Alice LOCAL AUTHORITY SecurityStamp Unique ID Alice LOCAL AUTHORITY IdentityProvider ASP.NET Identity Alice LOCAL AUTHORITY Role Employees Alice LOCAL AUTHORITY Role Users Alice LOCAL AUTHORITY Name Alice Alice LOCAL AUTHORITY NameIdentifier Alice’s user ID The table shows the most important aspect of claims, which is that I have already been using them when I implemented the traditional authentication and authorization features in Chapter 14. You can see that some of the claims relate to user identity (the Name claim is Alice, and the NameIdentifier claim is Alice’s unique user ID in my ASP.NET Identity database). 此表展示了声明(Claims)最重要的方面,这些是我在第14章中实现传统的认证和授权特性时,一直在使用的信息。可以看出,有些声明(Claims)与用户标识有关(Name声明是Alice,NameIdentifier声明是Alice在ASP.NET Identity数据库中的唯一用户ID号)。 Other claims show membership of roles—there are two Role claims in the table, reflecting the fact that Alice is assigned to both the Users and Employees roles. There is also a claim about how Alice has been authenticated: The IdentityProvider is set to ASP.NET Identity. 其他声明(Claims)显示了角色成员——表中有两个Role声明(Claim),体现出Alice被赋予了Users和Employees两个角色这一事实。还有一个是Alice已被认证的声明(Claim):IdentityProvider被设置到了ASP.NET Identity。 The difference when this information is expressed as a set of claims is that you can determine where the data came from. The Issuer property for all the claims shown in the table is set to LOCAL AUTHORITY, which indicates that the user’s identity has been established by the application. 当这种信息被表示成一组声明(Claims)时的差别是,你能够确定这些数据是从哪里来的。表中所显示的所有声明的Issuer属性(发布者)都被设置到了LOACL AUTHORITY(本地授权),这说明该用户的标识是由应用程序建立的。 So, now that you have seen some example claims, I can more easily describe what a claim is. A claim is any piece of information about a user that is available to the application, including the user’s identity and role memberships. And, as you have seen, the information I have been defining about my users in earlier chapters is automatically made available as claims by ASP.NET Identity. 因此,现在你已经看到了一些声明(Claims)示例,我可以更容易地描述声明(Claim)是什么了。一项声明(Claim)是可用于应用程序中的有关用户的一个信息片段,包括用户的标识以及角色成员等。而且,正如你所看到的,我在前几章定义的关于用户的信息,被ASP.NET Identity自动地作为声明(Claims)了。 15.3.2 Creating and Using Claims 15.3.2 创建和使用声明(Claims) Claims are interesting for two reasons. The first reason is that an application can obtain claims from multiple sources, rather than just relying on a local database for information about the user. You will see a real example of this when I show you how to authenticate users through a third-party system in the “Using Third-Party Authentication” section, but for the moment I am going to add a class to the example project that simulates a system that provides claims information. Listing 15-15 shows the contents of the LocationClaimsProvider.cs file that I added to the Infrastructure folder. 声明(Claims)比较有意思的原因有两个。第一个原因是应用程序可以从多个来源获取声明(Claims),而不是只能依靠本地数据库关于用户的信息。你将会看到一个实际的示例,在“使用第三方认证”小节中,将演示如何通过第三方系统来认证用户。不过,此刻我只打算在示例项目中添加一个类,用以模拟一个提供声明(Claims)信息的系统。清单15-15显示了我添加到Infrastructure文件夹中LocationClaimsProvider.cs文件的内容。 Listing 15-15. The Contents of the LocationClaimsProvider.cs File 清单15-15. LocationClaimsProvider.cs文件的内容 using System.Collections.Generic;using System.Security.Claims; namespace Users.Infrastructure {public static class LocationClaimsProvider {public static IEnumerable<Claim> GetClaims(ClaimsIdentity user) {List<Claim> claims = new List<Claim>();if (user.Name.ToLower() == "alice") {claims.Add(CreateClaim(ClaimTypes.PostalCode, "DC 20500"));claims.Add(CreateClaim(ClaimTypes.StateOrProvince, "DC"));} else {claims.Add(CreateClaim(ClaimTypes.PostalCode, "NY 10036"));claims.Add(CreateClaim(ClaimTypes.StateOrProvince, "NY"));}return claims;}private static Claim CreateClaim(string type, string value) {return new Claim(type, value, ClaimValueTypes.String, "RemoteClaims");} }} The GetClaims method takes a ClaimsIdentity argument and uses the Name property to create claims about the user’s ZIP code and state. This class allows me to simulate a system such as a central HR database, which would be the authoritative source of location information about staff, for example. GetClaims方法以ClaimsIdentity为参数,并使用Name属性创建了关于用户ZIP码(邮政编码)和州府的声明(Claims)。上述这个类使我能够模拟一个诸如中心化的HR数据库(人力资源数据库)之类的系统,它可能会成为全体职员的地点信息的权威数据源。 Claims are associated with the user’s identity during the authentication process, and Listing 15-16 shows the changes I made to the Login action method of the Account controller to call the LocationClaimsProvider class. 在认证过程期间,声明(Claims)是与用户标识关联在一起的,清单15-16显示了我对Account控制器中Login动作方法所做的修改,以便调用LocationClaimsProvider类。 Listing 15-16. Associating Claims with a User in the AccountController.cs File 清单15-16. AccountController.cs文件中用户用声明的关联 ...[HttpPost][AllowAnonymous][ValidateAntiForgeryToken]public async Task<ActionResult> Login(LoginModel details, string returnUrl) {if (ModelState.IsValid) {AppUser user = await UserManager.FindAsync(details.Name,details.Password);if (user == null) {ModelState.AddModelError("", "Invalid name or password.");} else {ClaimsIdentity ident = await UserManager.CreateIdentityAsync(user,DefaultAuthenticationTypes.ApplicationCookie); ident.AddClaims(LocationClaimsProvider.GetClaims(ident));AuthManager.SignOut();AuthManager.SignIn(new AuthenticationProperties {IsPersistent = false}, ident);return Redirect(returnUrl);} }ViewBag.returnUrl = returnUrl;return View(details);}... You can see the effect of the location claims by starting the application, authenticating as a user, and requesting the /Claim/Index URL. Figure 15-6 shows the claims for Alice. You may have to sign out and sign back in again to see the change. 为了看看这个地点声明(Claims)的效果,可以启动应用程序,以一个用户进行认证,并请求/Claim/Index URL。图15-6显示了Alice的声明(Claims)。你可能需要退出,然后再次登录才会看到发生的变化。 Figure 15-6. Defining additional claims for users 图15-6. 定义用户的附加声明 Obtaining claims from multiple locations means that the application doesn’t have to duplicate data that is held elsewhere and allows integration of data from external parties. The Claim.Issuer property tells you where a claim originated from, which helps you judge how accurate the data is likely to be and how much weight you should give the data in your application. Location data obtained from a central HR database is likely to be more accurate and trustworthy than data obtained from an external mailing list provider, for example. 从多个地点获取声明(Claims)意味着应用程序不必复制其他地方保持的数据,并且能够与外部的数据集成。Claim.Issuer属性(图15-6中的Issuer数据列——译者注)能够告诉你一个声明(Claim)的发源地,这有助于让你判断数据的精确程度,也有助于让你决定这类数据在应用程序中的权重。例如,从中心化的HR数据库获取的地点数据可能要比外部邮件列表提供器获取的数据更为精确和可信。 1. Applying Claims 1. 运用声明(Claims) The second reason that claims are interesting is that you can use them to manage user access to your application more flexibly than with standard roles. The problem with roles is that they are static, and once a user has been assigned to a role, the user remains a member until explicitly removed. This is, for example, how long-term employees of big corporations end up with incredible access to internal systems: They are assigned the roles they require for each new job they get, but the old roles are rarely removed. (The unexpectedly broad systems access sometimes becomes apparent during the investigation into how someone was able to ship the contents of the warehouse to their home address—true story.) 声明(Claims)有意思的第二个原因是,你可以用它们来管理用户对应用程序的访问,这要比标准的角色管理更为灵活。角色的问题在于它们是静态的,而且一旦用户已经被赋予了一个角色,该用户便是一个成员,直到明确地删除为止。例如,这意味着大公司的长期雇员,对内部系统的访问会十分惊人:他们每次在获得新工作时,都会赋予所需的角色,但旧角色很少被删除。(在调查某人为何能够将仓库里的东西发往他的家庭地址过程中发现,有时会出现异常宽泛的系统访问——真实的故事) Claims can be used to authorize users based directly on the information that is known about them, which ensures that the authorization changes when the data changes. The simplest way to do this is to generate Role claims based on user data that are then used by controllers to restrict access to action methods. Listing 15-17 shows the contents of the ClaimsRoles.cs file that I added to the Infrastructure. 声明(Claims)可以直接根据用户已知的信息对用户进行授权,这能够保证当数据发生变化时,授权也随之而变。此事最简单的做法是根据用户数据来生成Role声明(Claim),然后由控制器用来限制对动作方法的访问。清单15-17显示了我添加到Infrastructure中的ClaimsRoles.cs文件的内容。 Listing 15-17. The Contents of the ClaimsRoles.cs File 清单15-17. ClaimsRoles.cs文件的内容 using System.Collections.Generic;using System.Security.Claims; namespace Users.Infrastructure {public class ClaimsRoles {public static IEnumerable<Claim> CreateRolesFromClaims(ClaimsIdentity user) {List<Claim> claims = new List<Claim>();if (user.HasClaim(x => x.Type == ClaimTypes.StateOrProvince&& x.Issuer == "RemoteClaims" && x.Value == "DC")&& user.HasClaim(x => x.Type == ClaimTypes.Role&& x.Value == "Employees")) {claims.Add(new Claim(ClaimTypes.Role, "DCStaff"));}return claims;} }} The gnarly looking CreateRolesFromClaims method uses lambda expressions to determine whether the user has a StateOrProvince claim from the RemoteClaims issuer with a value of DC and a Role claim with a value of Employees. If the user has both claims, then a Role claim is returned for the DCStaff role. Listing 15-18 shows how I call the CreateRolesFromClaims method from the Login action in the Account controller. CreateRolesFromClaims是一个粗糙的考察方法,它使用了Lambda表达式,以检查用户是否具有StateOrProvince声明(Claim),该声明来自于RemoteClaims发行者(Issuer),值为DC。也检查用户是否具有Role声明(Claim),其值为Employees。如果用户这两个声明都有,那么便返回一个DCStaff角色的Role声明。清单15-18显示了如何在Account控制器中的Login动作中调用CreateRolesFromClaims方法。 Listing 15-18. Generating Roles Based on Claims in the AccountController.cs File 清单15-18. 在AccountController.cs中根据声明生成角色 ...[HttpPost][AllowAnonymous][ValidateAntiForgeryToken]public async Task<ActionResult> Login(LoginModel details, string returnUrl) {if (ModelState.IsValid) {AppUser user = await UserManager.FindAsync(details.Name,details.Password);if (user == null) {ModelState.AddModelError("", "Invalid name or password.");} else {ClaimsIdentity ident = await UserManager.CreateIdentityAsync(user,DefaultAuthenticationTypes.ApplicationCookie);ident.AddClaims(LocationClaimsProvider.GetClaims(ident)); ident.AddClaims(ClaimsRoles.CreateRolesFromClaims(ident));AuthManager.SignOut();AuthManager.SignIn(new AuthenticationProperties {IsPersistent = false}, ident);return Redirect(returnUrl);} }ViewBag.returnUrl = returnUrl;return View(details);}... I can then restrict access to an action method based on membership of the DCStaff role. Listing 15-19 shows a new action method I added to the Claims controller to which I have applied the Authorize attribute. 然后我可以根据DCStaff角色的成员,来限制对一个动作方法的访问。清单15-19显示了在Claims控制器中添加的一个新的动作方法,在该方法上已经运用了Authorize注解属性。 Listing 15-19. Adding a New Action Method to the ClaimsController.cs File 清单15-19. 在ClaimsController.cs文件中添加一个新的动作方法 using System.Security.Claims;using System.Web;using System.Web.Mvc;namespace Users.Controllers {public class ClaimsController : Controller {[Authorize]public ActionResult Index() {ClaimsIdentity ident = HttpContext.User.Identity as ClaimsIdentity;if (ident == null) {return View("Error", new string[] { "No claims available" });} else {return View(ident.Claims);} } [Authorize(Roles="DCStaff")]public string OtherAction() {return "This is the protected action";} }} Users will be able to access OtherAction only if their claims grant them membership to the DCStaff role. Membership of this role is generated dynamically, so a change to the user’s employment status or location information will change their authorization level. 只要用户的声明(Claims)承认他们是DCStaff角色的成员,那么他们便能访问OtherAction动作。该角色的成员是动态生成的,因此,若是用户的雇用状态或地点信息发生变化,也会改变他们的授权等级。 提示:请读者从这个例子中吸取其中的思想精髓。对于读物的理解程度,仁者见仁,智者见智,能领悟多少,全凭各人,译者感觉这里的思想有无数的可能。举例说明:(1)可以根据用户的身份进行授权,比如学生在校时是“学生”,毕业后便是“校友”;(2)可以根据用户所处的部门进行授权,人事部用户属于人事团队,销售部用户属于销售团队,各团队有其自己的应用;(3)下一小节的示例是根据用户的地点授权。简言之:一方面用户的各种声明(Claim)都可以用来进行授权;另一方面用户的声明(Claim)又是可以自定义的。于是可能的运用就无法估计了。总之一句话,这种基于声明的授权(Claims-Based Authorization)有无限可能!要是没有我这里的提示,是否所有读者在此处都会有所体会?——译者注 15.3.3 Authorizing Access Using Claims 15.3.3 使用声明(Claims)授权访问 The previous example is an effective demonstration of how claims can be used to keep authorizations fresh and accurate, but it is a little indirect because I generate roles based on claims data and then enforce my authorization policy based on the membership of that role. A more direct and flexible approach is to enforce authorization directly by creating a custom authorization filter attribute. Listing 15-20 shows the contents of the ClaimsAccessAttribute.cs file, which I added to the Infrastructure folder and used to create such a filter. 前面的示例有效地演示了如何用声明(Claims)来保持新鲜和准确的授权,但有点不太直接,因为我要根据声明(Claims)数据来生成了角色,然后强制我的授权策略基于角色成员。一个更直接且灵活的办法是直接强制授权,其做法是创建一个自定义的授权过滤器注解属性。清单15-20演示了ClaimsAccessAttribute.cs文件的内容,我将它添加在Infrastructure文件夹中,并用它创建了这种过滤器。 Listing 15-20. The Contents of the ClaimsAccessAttribute.cs File 清单15-20. ClaimsAccessAttribute.cs文件的内容 using System.Security.Claims;using System.Web;using System.Web.Mvc; namespace Users.Infrastructure {public class ClaimsAccessAttribute : AuthorizeAttribute {public string Issuer { get; set; }public string ClaimType { get; set; }public string Value { get; set; }protected override bool AuthorizeCore(HttpContextBase context) {return context.User.Identity.IsAuthenticated&& context.User.Identity is ClaimsIdentity&& ((ClaimsIdentity)context.User.Identity).HasClaim(x =>x.Issuer == Issuer && x.Type == ClaimType && x.Value == Value);} }} The attribute I have defined is derived from the AuthorizeAttribute class, which makes it easy to create custom authorization policies in MVC framework applications by overriding the AuthorizeCore method. My implementation grants access if the user is authenticated, the IIdentity implementation is an instance of ClaimsIdentity, and the user has a claim with the issuer, type, and value matching the class properties. Listing 15-21 shows how I applied the attribute to the Claims controller to authorize access to the OtherAction method based on one of the location claims created by the LocationClaimsProvider class. 我所定义的这个注解属性派生于AuthorizeAttribute类,通过重写AuthorizeCore方法,很容易在MVC框架应用程序中创建自定义的授权策略。在这个实现中,若用户是已认证的、其IIdentity实现是一个ClaimsIdentity实例,而且该用户有一个带有issuer、type以及value的声明(Claim),它们与这个类的属性是匹配的,则该用户便是允许访问的。清单15-21显示了如何将这个注解属性运用于Claims控制器,以便根据LocationClaimsProvider类创建的地点声明(Claim),对OtherAction方法进行授权访问。 Listing 15-21. Performing Authorization on Claims in the ClaimsController.cs File 清单15-21. 在ClaimsController.cs文件中执行基于声明的授权 using System.Security.Claims;using System.Web;using System.Web.Mvc;using Users.Infrastructure;namespace Users.Controllers {public class ClaimsController : Controller {[Authorize]public ActionResult Index() {ClaimsIdentity ident = HttpContext.User.Identity as ClaimsIdentity;if (ident == null) {return View("Error", new string[] { "No claims available" });} else {return View(ident.Claims);} } [ClaimsAccess(Issuer="RemoteClaims", ClaimType=ClaimTypes.PostalCode,Value="DC 20500")]public string OtherAction() {return "This is the protected action";} }} My authorization filter ensures that only users whose location claims specify a ZIP code of DC 20500 can invoke the OtherAction method. 这个授权过滤器能够确保只有地点声明(Claim)的邮编为DC 20500的用户才能请求OtherAction方法。 15.4 Using Third-Party Authentication 15.4 使用第三方认证 One of the benefits of a claims-based system such as ASP.NET Identity is that any of the claims can come from an external system, even those that identify the user to the application. This means that other systems can authenticate users on behalf of the application, and ASP.NET Identity builds on this idea to make it simple and easy to add support for authenticating users through third parties such as Microsoft, Google, Facebook, and Twitter. 基于声明的系统,如ASP.NET Identity,的好处之一是任何声明都可以来自于外部系统,即使是将用户标识到应用程序的那些声明。这意味着其他系统可以代表应用程序来认证用户,而ASP.NET Identity就建立在这样的思想之上,使之能够简单而方便地添加第三方认证用户的支持,如微软、Google、Facebook、Twitter等。 There are some substantial benefits of using third-party authentication: Many users will already have an account, users can elect to use two-factor authentication, and you don’t have to manage user credentials in the application. In the sections that follow, I’ll show you how to set up and use third-party authentication for Google users, which Table 15-8 puts into context. 使用第三方认证有一些实际的好处:许多用户已经有了账号、用户可以选择使用双因子认证、你不必在应用程序中管理用户凭据等等。在以下小节中,我将演示如何为Google用户建立并使用第三方认证,表15-8描述了事情的情形。 Table 15-8. Putting Third-Party Authentication in Context 表15-8. 第三方认证情形 Question 问题 Answer 回答 What is it? 什么是第三方认证? Authenticating with third parties lets you take advantage of the popularity of companies such as Google and Facebook. 第三方认证使你能够利用流行公司,如Google和Facebook,的优势。 Why should I care? 为何要关心它? Users don’t like having to remember passwords for many different sites. Using a provider with large-scale adoption can make your application more appealing to users of the provider’s services. 用户不喜欢记住许多不同网站的口令。使用大范围适应的提供器可使你的应用程序更吸引有提供器服务的用户。 How is it used by the MVC framework? 如何在MVC框架中使用它? This feature isn’t used directly by the MVC framework. 这不是一个直接由MVC框架使用的特性。 Note The reason I have chosen to demonstrate Google authentication is that it is the only option that doesn’t require me to register my application with the authentication service. You can get details of the registration processes required at http://bit.ly/1cqLTrE. 提示:我选择演示Google认证的原因是,它是唯一不需要在其认证服务中注册我应用程序的公司。有关认证服务注册过程的细节,请参阅http://bit.ly/1cqLTrE。 15.4.1 Enabling Google Authentication 15.4.1 启用Google认证 ASP.NET Identity comes with built-in support for authenticating users through their Microsoft, Google, Facebook, and Twitter accounts as well more general support for any authentication service that supports OAuth. The first step is to add the NuGet package that includes the Google-specific additions for ASP.NET Identity. Enter the following command into the Package Manager Console: ASP.NET Identity带有通过Microsoft、Google、Facebook以及Twitter账号认证用户的内建支持,并且对于支持OAuth的认证服务具有更普遍的支持。第一个步骤是添加NuGet包,包中含有用于ASP.NET Identity的Google专用附件。请在“Package Manager Console(包管理器控制台)”中输入以下命令: Install-Package Microsoft.Owin.Security.Google -version 2.0.2 There are NuGet packages for each of the services that ASP.NET Identity supports, as described in Table 15-9. 对于ASP.NET Identity支持的每一种服务都有相应的NuGet包,如表15-9所示。 Table 15-9. The NuGet Authenticaton Packages 表15-9. NuGet认证包 Name 名称 Description 描述 Microsoft.Owin.Security.Google Authenticates users with Google accounts 用Google账号认证用户 Microsoft.Owin.Security.Facebook Authenticates users with Facebook accounts 用Facebook账号认证用户 Microsoft.Owin.Security.Twitter Authenticates users with Twitter accounts 用Twitter账号认证用户 Microsoft.Owin.Security.MicrosoftAccount Authenticates users with Microsoft accounts 用Microsoft账号认证用户 Microsoft.Owin.Security.OAuth Authenticates users against any OAuth 2.0 service 根据任一OAuth 2.0服务认证用户 Once the package is installed, I enable support for the authentication service in the OWIN startup class, which is defined in the App_Start/IdentityConfig.cs file in the example project. Listing 15-22 shows the change that I have made. 一旦安装了这个包,便可以在OWIN启动类中启用此项认证服务的支持,启动类的定义在示例项目的App_Start/IdentityConfig.cs文件中。清单15-22显示了所做的修改。 Listing 15-22. Enabling Google Authentication in the IdentityConfig.cs File 清单15-22. 在IdentityConfig.cs文件中启用Google认证 using Microsoft.AspNet.Identity;using Microsoft.Owin;using Microsoft.Owin.Security.Cookies;using Owin;using Users.Infrastructure;using Microsoft.Owin.Security.Google;namespace Users {public class IdentityConfig {public void Configuration(IAppBuilder app) {app.CreatePerOwinContext<AppIdentityDbContext>(AppIdentityDbContext.Create);app.CreatePerOwinContext<AppUserManager>(AppUserManager.Create);app.CreatePerOwinContext<AppRoleManager>(AppRoleManager.Create); app.UseCookieAuthentication(new CookieAuthenticationOptions {AuthenticationType = DefaultAuthenticationTypes.ApplicationCookie,LoginPath = new PathString("/Account/Login"),}); app.UseExternalSignInCookie(DefaultAuthenticationTypes.ExternalCookie);app.UseGoogleAuthentication();} }} Each of the packages that I listed in Table 15-9 contains an extension method that enables the corresponding service. The extension method for the Google service is called UseGoogleAuthentication, and it is called on the IAppBuilder implementation that is passed to the Configuration method. 表15-9所列的每个包都含有启用相应服务的扩展方法。用于Google服务的扩展方法名称为UseGoogleAuthentication,它通过传递给Configuration方法的IAppBuilder实现进行调用。 Next I added a button to the Views/Account/Login.cshtml file, which allows users to log in via Google. You can see the change in Listing 15-23. 下一步骤是在Views/Account/Login.cshtml文件中添加一个按钮,让用户能够通过Google进行登录。所做的修改如清单15-23所示。 Listing 15-23. Adding a Google Login Button to the Login.cshtml File 清单15-23. 在Login.cshtml文件中添加Google登录按钮 @model Users.Models.LoginModel@{ ViewBag.Title = "Login";}<h2>Log In</h2> @Html.ValidationSummary()@using (Html.BeginForm()) {@Html.AntiForgeryToken();<input type="hidden" name="returnUrl" value="@ViewBag.returnUrl" /><div class="form-group"><label>Name</label>@Html.TextBoxFor(x => x.Name, new { @class = "form-control" })</div><div class="form-group"><label>Password</label>@Html.PasswordFor(x => x.Password, new { @class = "form-control" })</div><button class="btn btn-primary" type="submit">Log In</button>}@using (Html.BeginForm("GoogleLogin", "Account")) {<input type="hidden" name="returnUrl" value="@ViewBag.returnUrl" /><button class="btn btn-primary" type="submit">Log In via Google</button>} The new button submits a form that targets the GoogleLogin action on the Account controller. You can see this method—and the other changes I made the controller—in Listing 15-24. 新按钮递交一个表单,目标是Account控制器中的GoogleLogin动作。可从清单15-24中看到该方法,以及在控制器中所做的其他修改。 Listing 15-24. Adding Support for Google Authentication to the AccountController.cs File 清单15-24. 在AccountController.cs文件中添加Google认证支持 using System.Threading.Tasks;using System.Web.Mvc;using Users.Models;using Microsoft.Owin.Security;using System.Security.Claims;using Microsoft.AspNet.Identity;using Microsoft.AspNet.Identity.Owin;using Users.Infrastructure;using System.Web; namespace Users.Controllers {[Authorize]public class AccountController : Controller {[AllowAnonymous]public ActionResult Login(string returnUrl) {if (HttpContext.User.Identity.IsAuthenticated) {return View("Error", new string[] { "Access Denied" });}ViewBag.returnUrl = returnUrl;return View();}[HttpPost][AllowAnonymous][ValidateAntiForgeryToken]public async Task<ActionResult> Login(LoginModel details, string returnUrl) {if (ModelState.IsValid) {AppUser user = await UserManager.FindAsync(details.Name,details.Password);if (user == null) {ModelState.AddModelError("", "Invalid name or password.");} else {ClaimsIdentity ident = await UserManager.CreateIdentityAsync(user,DefaultAuthenticationTypes.ApplicationCookie); ident.AddClaims(LocationClaimsProvider.GetClaims(ident));ident.AddClaims(ClaimsRoles.CreateRolesFromClaims(ident)); AuthManager.SignOut();AuthManager.SignIn(new AuthenticationProperties {IsPersistent = false}, ident);return Redirect(returnUrl);} }ViewBag.returnUrl = returnUrl;return View(details);} [HttpPost][AllowAnonymous]public ActionResult GoogleLogin(string returnUrl) {var properties = new AuthenticationProperties {RedirectUri = Url.Action("GoogleLoginCallback",new { returnUrl = returnUrl})};HttpContext.GetOwinContext().Authentication.Challenge(properties, "Google");return new HttpUnauthorizedResult();}[AllowAnonymous]public async Task<ActionResult> GoogleLoginCallback(string returnUrl) {ExternalLoginInfo loginInfo = await AuthManager.GetExternalLoginInfoAsync();AppUser user = await UserManager.FindAsync(loginInfo.Login);if (user == null) {user = new AppUser {Email = loginInfo.Email,UserName = loginInfo.DefaultUserName,City = Cities.LONDON, Country = Countries.UK};IdentityResult result = await UserManager.CreateAsync(user);if (!result.Succeeded) {return View("Error", result.Errors);} else {result = await UserManager.AddLoginAsync(user.Id, loginInfo.Login);if (!result.Succeeded) {return View("Error", result.Errors);} }}ClaimsIdentity ident = await UserManager.CreateIdentityAsync(user,DefaultAuthenticationTypes.ApplicationCookie);ident.AddClaims(loginInfo.ExternalIdentity.Claims);AuthManager.SignIn(new AuthenticationProperties {IsPersistent = false }, ident);return Redirect(returnUrl ?? "/");}[Authorize]public ActionResult Logout() {AuthManager.SignOut();return RedirectToAction("Index", "Home");}private IAuthenticationManager AuthManager {get {return HttpContext.GetOwinContext().Authentication;} }private AppUserManager UserManager {get {return HttpContext.GetOwinContext().GetUserManager<AppUserManager>();} }} } The GoogleLogin method creates an instance of the AuthenticationProperties class and sets the RedirectUri property to a URL that targets the GoogleLoginCallback action in the same controller. The next part is a magic phrase that causes ASP.NET Identity to respond to an unauthorized error by redirecting the user to the Google authentication page, rather than the one defined by the application: GoogleLogin方法创建了AuthenticationProperties类的一个实例,并为RedirectUri属性设置了一个URL,其目标为同一控制器中的GoogleLoginCallback动作。下一个部分是一个神奇阶段,通过将用户重定向到Google认证页面,而不是应用程序所定义的认证页面,让ASP.NET Identity对未授权的错误进行响应: ...HttpContext.GetOwinContext().Authentication.Challenge(properties, "Google");return new HttpUnauthorizedResult();... This means that when the user clicks the Log In via Google button, their browser is redirected to the Google authentication service and then redirected back to the GoogleLoginCallback action method once they are authenticated. 这意味着,当用户通过点击Google按钮进行登录时,浏览器被重定向到Google的认证服务,一旦在那里认证之后,便被重定向回GoogleLoginCallback动作方法。 I get details of the external login by calling the GetExternalLoginInfoAsync of the IAuthenticationManager implementation, like this: 我通过调用IAuthenticationManager实现的GetExternalLoginInfoAsync方法,我获得了外部登录的细节,如下所示: ...ExternalLoginInfo loginInfo = await AuthManager.GetExternalLoginInfoAsync();... The ExternalLoginInfo class defines the properties shown in Table 15-10. ExternalLoginInfo类定义的属性如表15-10所示: Table 15-10. The Properties Defined by the ExternalLoginInfo Class 表15-10. ExternalLoginInfo类所定义的属性 Name 名称 Description 描述 DefaultUserName Returns the username 返回用户名 Email Returns the e-mail address 返回E-mail地址 ExternalIdentity Returns a ClaimsIdentity that identities the user 返回标识该用户的ClaimsIdentity Login Returns a UserLoginInfo that describes the external login 返回描述外部登录的UserLoginInfo I use the FindAsync method defined by the user manager class to locate the user based on the value of the ExternalLoginInfo.Login property, which returns an AppUser object if the user has been authenticated with the application before: 我使用了由用户管理器类所定义的FindAsync方法,以便根据ExternalLoginInfo.Login属性的值对用户进行定位,如果用户之前在应用程序中已经认证,该属性会返回一个AppUser对象: ...AppUser user = await UserManager.FindAsync(loginInfo.Login);... If the FindAsync method doesn’t return an AppUser object, then I know that this is the first time that this user has logged into the application, so I create a new AppUser object, populate it with values, and save it to the database. I also save details of how the user logged in so that I can find them next time: 如果FindAsync方法返回的不是AppUser对象,那么我便知道这是用户首次登录应用程序,于是便创建了一个新的AppUser对象,填充该对象的值,并将其保存到数据库。我还保存了用户如何登录的细节,以便下次能够找到他们: ...result = await UserManager.AddLoginAsync(user.Id, loginInfo.Login);... All that remains is to generate an identity the user, copy the claims provided by Google, and create an authentication cookie so that the application knows the user has been authenticated: 剩下的事情只是生成该用户的标识了,拷贝Google提供的声明(Claims),并创建一个认证Cookie,以使应用程序知道此用户已认证: ...ClaimsIdentity ident = await UserManager.CreateIdentityAsync(user,DefaultAuthenticationTypes.ApplicationCookie);ident.AddClaims(loginInfo.ExternalIdentity.Claims);AuthManager.SignIn(new AuthenticationProperties { IsPersistent = false }, ident);... 15.4.2 Testing Google Authentication 15.4.2 测试Google认证 There is one further change that I need to make before I can test Google authentication: I need to change the account verification I set up in Chapter 13 because it prevents accounts from being created with e-mail addresses that are not within the example.com domain. Listing 15-25 shows how I removed the verification from the AppUserManager class. 在测试Google认证之前还需要一处修改:需要修改第13章所建立的账号验证,因为它不允许example.com域之外的E-mail地址创建账号。清单15-25显示了如何在AppUserManager类中删除这种验证。 Listing 15-25. Disabling Account Validation in the AppUserManager.cs File 清单15-25. 在AppUserManager.cs文件中取消账号验证 using Microsoft.AspNet.Identity;using Microsoft.AspNet.Identity.EntityFramework;using Microsoft.AspNet.Identity.Owin;using Microsoft.Owin;using Users.Models; namespace Users.Infrastructure {public class AppUserManager : UserManager<AppUser> {public AppUserManager(IUserStore<AppUser> store): base(store) {}public static AppUserManager Create(IdentityFactoryOptions<AppUserManager> options,IOwinContext context) {AppIdentityDbContext db = context.Get<AppIdentityDbContext>();AppUserManager manager = new AppUserManager(new UserStore<AppUser>(db)); manager.PasswordValidator = new CustomPasswordValidator {RequiredLength = 6,RequireNonLetterOrDigit = false,RequireDigit = false,RequireLowercase = true,RequireUppercase = true}; //manager.UserValidator = new CustomUserValidator(manager) {// AllowOnlyAlphanumericUserNames = true,// RequireUniqueEmail = true//};return manager;} }} Tip you can use validation for externally authenticated accounts, but I am just going to disable the feature for simplicity. 提示:也可以使用外部已认证账号的验证,但这里出于简化,取消了这一特性。 To test authentication, start the application, click the Log In via Google button, and provide the credentials for a valid Google account. When you have completed the authentication process, your browser will be redirected back to the application. If you navigate to the /Claims/Index URL, you will be able to see how claims from the Google system have been added to the user’s identity, as shown in Figure 15-7. 为了测试认证,启动应用程序,通过点击“Log In via Google(通过Google登录)”按钮,并提供有效的Google账号凭据。当你完成了认证过程时,浏览器将被重定向回应用程序。如果导航到/Claims/Index URL,便能够看到来自Google系统的声明(Claims),已被添加到用户的标识中了,如图15-7所示。 Figure 15-7. Claims from Google 图15-7. 来自Google的声明(Claims) 15.5 Summary 15.5 小结 In this chapter, I showed you some of the advanced features that ASP.NET Identity supports. I demonstrated the use of custom user properties and how to use database migrations to preserve data when you upgrade the schema to support them. I explained how claims work and how they can be used to create more flexible ways of authorizing users. I finished the chapter by showing you how to authenticate users via Google, which builds on the ideas behind the use of claims. 本章向你演示了ASP.NET Identity所支持的一些高级特性。演示了自定义用户属性的使用,还演示了在升级数据架构时,如何使用数据库迁移保护数据。我解释了声明(Claims)的工作机制,以及如何将它们用于创建更灵活的用户授权方式。最后演示了如何通过Google进行认证结束了本章,这是建立在使用声明(Claims)的思想基础之上的。 本篇文章为转载内容。原文链接:https://blog.csdn.net/gz19871113/article/details/108591802。 该文由互联网用户投稿提供,文中观点代表作者本人意见,并不代表本站的立场。 作为信息平台,本站仅提供文章转载服务,并不拥有其所有权,也不对文章内容的真实性、准确性和合法性承担责任。 如发现本文存在侵权、违法、违规或事实不符的情况,请及时联系我们,我们将第一时间进行核实并删除相应内容。
2023-10-28 08:49:21
283
转载
MyBatis
...使用MyBatis-Generator工具进行代码自动生成时,可以设置相关配置确保生成的Mapper接口方法参数与SQL映射文件严格对应,从源头上降低错误发生的概率。 同时,业界提倡的领域驱动设计(DDD)理念也提示我们,在模型设计和数据库操作逻辑封装层面应当遵循严谨的原则,如明确每个方法所需的业务参数,并通过清晰的方法签名体现出来。这不仅可以帮助防止参数缺失引发的异常,还有利于提升代码可读性和团队协作效率。 综上所述,除了基础的编码规范和单元测试之外,紧跟技术发展趋势,充分利用框架新特性以及先进的软件设计理念,也是我们在日常开发中有效规避StatementParameterIndexOutOfRange异常等类似问题的重要手段。
2024-01-24 12:47:10
114
烟雨江南
Maven
...器,它能帮我们嗖嗖地生成项目模板,工作效率那可是蹭蹭地往上涨啊!嘿,伙计们,这篇内容将手把手地带你们畅游在Maven archetype的神奇天地中,用超级详细的步骤和鲜活的实例代码,教大家如何巧妙地运用这个工具去搭建一个崭新的项目模板,让你彻底玩转这个领域! 1. 理解Maven Archetype 首先,让我们对Maven archetype有个基本的认识。Maven archetype可以理解为一种项目模板,它预先定义了一组特定项目的目录结构和基本文件配置。当我们要捣鼓新项目的时候,完全可以省去从零开始的繁琐步骤,直接拿这些现成的模板来用就OK啦!这样一来,不仅能够告别枯燥无味的手动创建过程,还能让咱们的项目启动变得超级轻松快捷,效率嗖嗖地往上涨! 2. 安装与配置Maven环境 在开始使用archetype插件前,请确保你的系统已安装并配置好Maven环境。这里假设你已经完成了这一基础工作,接下来就可以直接进入实战环节了。 3. 使用archetype:generate命令创建项目模板 3.1 初始化一个新的Maven项目模板 打开命令行界面,输入以下命令: shell mvn archetype:generate \ -DarchetypeGroupId=org.apache.maven.archetypes \ -DarchetypeArtifactId=maven-archetype-quickstart \ -DarchetypeVersion=1.4 \ -DgroupId=com.example \ -DartifactId=my-new-project \ -Dversion=1.0-SNAPSHOT 上述命令的作用是使用Maven内置的maven-archetype-quickstart模板创建一个新项目。其中: - -DarchetypeGroupId,-DarchetypeArtifactId和-DarchetypeVersion分别指定了要使用的模板的Group ID,Artifact ID和版本。 - -DgroupId,-DartifactId和-Dversion则是用于定义新项目的基本信息。 执行完该命令后,Maven会提示你确认一些参数,并在指定目录下生成新的项目结构。 3.2 创建自定义的archetype项目模板 当然,你也可以创建自己的项目模板,供后续多次复用。首先,咱先来新建一个普普通通的Maven项目,接着就可以按照你的小心思,尽情地设计和调整目录结构,别忘了把初始文件内容也填充得妥妥当当的哈。接着,在pom.xml中添加archetype相关的配置: xml 4.0.0 com.example my-custom-archetype 1.0-SNAPSHOT maven-archetype org.apache.maven.archetype archetype-packaging 3.2.0 org.apache.maven.plugins maven-archetype-plugin 3.2.0 generate-resources generate-resources 最后,通过mvn clean install命令打包并发布到本地仓库,这样就创建了一个自定义的archetype模板。 3.3 使用自定义的archetype创建新项目 有了自定义的archetype模板后,创建新项目的方式同上,只需替换相关参数即可: shell mvn archetype:generate \ -DarchetypeGroupId=com.example \ -DarchetypeArtifactId=my-custom-archetype \ -DarchetypeVersion=1.0-SNAPSHOT \ -DgroupId=com.new.example \ -DartifactId=my-new-project-from-custom-template \ -Dversion=1.0-SNAPSHOT 在这个过程中,我深感Maven archetype的强大之处,它就像一位贴心助手,帮我们在繁杂的项目初始化工作中解脱出来,专注于更重要的业务逻辑开发。而且,我们能够通过定制自己的archetype,把团队里那些最牛掰的工作模式给固定下来,这样一来,不仅能让整个团队的开发速度嗖嗖提升,还能让大伙儿干活儿时更有默契,一致性蹭蹭上涨,就像乐队排练久了,配合起来那叫一个天衣无缝! 总结一下,Maven archetype插件为我们提供了一种快速创建项目模板的机制,无论是内置的模板还是自定义模板,都能极大地简化项目创建流程。只要我们把这个工具玩得溜溜的,再灵活巧妙地运用起来,就能在Java开发这条路上走得更顺溜,轻松应对各种挑战,简直如有神助。所以,不妨现在就动手试试吧,感受一下Maven archetype带来的便利与高效!
2024-03-20 10:55:20
109
断桥残雪
转载文章
...npdef get_generator():global operation_seed_counter 全局变量 在局部变量可以引用全局变量并修改operation_seed_counter += 1g_cuda_generator = torch.Generator(device="cuda")g_cuda_generator.manual_seed(operation_seed_counter)return g_cuda_generatorclass AugmentNoise(object): 添加噪声的类def __init__(self, style):print(style)if style.startswith('gauss'):self.params = [float(p) / 255.0 for p in style.replace('gauss', '').split('_')]if len(self.params) == 1:self.style = "gauss_fix"elif len(self.params) == 2:self.style = "gauss_range"elif style.startswith('poisson'):self.params = [float(p) for p in style.replace('poisson', '').split('_')]if len(self.params) == 1:self.style = "poisson_fix"elif len(self.params) == 2:self.style = "poisson_range"def add_train_noise(self, x):shape = x.shapeif self.style == "gauss_fix":std = self.params[0]std = std torch.ones((shape[0], 1, 1, 1), device=x.device)noise = torch.cuda.FloatTensor(shape, device=x.device)torch.normal(mean=0.0,std=std,generator=get_generator(),out=noise)return x + noiseelif self.style == "gauss_range":min_std, max_std = self.paramsstd = torch.rand(size=(shape[0], 1, 1, 1),device=x.device) (max_std - min_std) + min_stdnoise = torch.cuda.FloatTensor(shape, device=x.device)torch.normal(mean=0, std=std, generator=get_generator(), out=noise)return x + noiseelif self.style == "poisson_fix":lam = self.params[0]lam = lam torch.ones((shape[0], 1, 1, 1), device=x.device)noised = torch.poisson(lam x, generator=get_generator()) / lamreturn noisedelif self.style == "poisson_range":min_lam, max_lam = self.paramslam = torch.rand(size=(shape[0], 1, 1, 1),device=x.device) (max_lam - min_lam) + min_lamnoised = torch.poisson(lam x, generator=get_generator()) / lamreturn noiseddef add_valid_noise(self, x):shape = x.shapeif self.style == "gauss_fix":std = self.params[0]return np.array(x + np.random.normal(size=shape) std,dtype=np.float32)elif self.style == "gauss_range":min_std, max_std = self.paramsstd = np.random.uniform(low=min_std, high=max_std, size=(1, 1, 1))return np.array(x + np.random.normal(size=shape) std,dtype=np.float32)elif self.style == "poisson_fix":lam = self.params[0]return np.array(np.random.poisson(lam x) / lam, dtype=np.float32)elif self.style == "poisson_range":min_lam, max_lam = self.paramslam = np.random.uniform(low=min_lam, high=max_lam, size=(1, 1, 1))return np.array(np.random.poisson(lam x) / lam, dtype=np.float32)model_path = 'test_dir/unet_gauss25_b4e100r02/2022-03-02-22-24/epoch_model_040.pth' 导入训练的模型文件device = torch.device('cuda' if torch.cuda.is_available() else 'cpu')net = UNet().to(device)net.load_state_dict(torch.load(model_path, map_location=device))net.eval()noise_adder = AugmentNoise(style='gauss25')img = Image.open('validation/Kodak/000014.jpg')im = np.array(img, dtype=np.float32) / 255.0origin255 = im.copy()origin255 = origin255.astype(np.uint8)noisy_im = noise_adder.add_valid_noise(im)H = noisy_im.shape[0]W = noisy_im.shape[1]val_size = (max(H, W) + 31) // 32 32noisy_im = np.pad(noisy_im,[[0, val_size - H], [0, val_size - W], [0, 0]],'reflect')transformer = transforms.Compose([transforms.ToTensor()])noisy_im = transformer(noisy_im)noisy_im = torch.unsqueeze(noisy_im, 0)noisy_im = noisy_im.cuda()with torch.no_grad():prediction = net(noisy_im)prediction = prediction[:, :, :H, :W]prediction = prediction.permute(0, 2, 3, 1)prediction = prediction.cpu().data.clamp(0, 1).numpy()prediction = prediction.squeeze()pred255 = np.clip(prediction 255.0 + 0.5, 0, 255).astype(np.uint8)Image.fromarray(pred255).convert('RGB').save('test1.png') 输入图像 尺寸大小为(408, 310),PIL读入后进行归一化处理。 img = Image.open('validation/Kodak/00001.jpg')print('img', img.size) img (408, 310)im = np.array(img, dtype=np.float32) / 255.0print('im', im.shape) im (310, 408, 3) 先对不规则图像进行填充,要求填充的尺寸是32的倍数,否则输入到网络中会报错。在训练的时候是随机裁剪256256的切片的。 b = torch.rand(1, 3, 255, 255).to('cuda')a = net(b)print(a.shape) 在卷积神经网络中,为了避免因为卷积运算导致输出图像缩小和图像边缘信息丢失,常常采用图像边缘填充技术,即在图像四周边缘填充0,使得卷积运算后图像大小不会缩小,同时也不会丢失边缘和角落的信息。在Python的numpy库中,常常采用numpy.pad()进行填充操作。 val_size = (max(H, W) + 31) // 32 32noisy_im = np.pad(noisy_im,[[0, val_size - H], [0, val_size - W], [0, 0]],'reflect') ‘reflect’, 表示对称填充。 上图转自 http://t.zoukankan.com/shuaishuaidefeizhu-p-14179038.html >>> a = [1, 2, 3, 4, 5]>>> np.pad(a, (2, 3), 'reflect')array([3, 2, 1, 2, 3, 4, 5, 4, 3, 2]) 个人感觉使用reflect操作,而不是之间的填充0是为了在边缘去噪的时候更平滑一些。镜像填充后的图如下: 输入网络后,得到预测结果。最后进行裁剪,得到去噪后的图像。 prediction = prediction[:, :, :H, :W] 本篇文章为转载内容。原文链接:https://blog.csdn.net/qq_42948594/article/details/124712116。 该文由互联网用户投稿提供,文中观点代表作者本人意见,并不代表本站的立场。 作为信息平台,本站仅提供文章转载服务,并不拥有其所有权,也不对文章内容的真实性、准确性和合法性承担责任。 如发现本文存在侵权、违法、违规或事实不符的情况,请及时联系我们,我们将第一时间进行核实并删除相应内容。
2023-06-13 14:44:26
128
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... output A sequence of brackets is called balanced if one can turn it into a valid math expression by adding characters ‘+’ and ‘1’. For example, sequences ‘(())()’, ‘()’, and ‘(()(()))’ are balanced, while ‘)(’, ‘(()’, and ‘(()))(’ are not. You are given a binary string s of length n. Construct two balanced bracket sequences a and b of length n such that for all 1≤i≤n if si=1, then ai=bi if si=0, then ai≠bi If it is impossible, you should report about it. Input The first line contains a single integer t (1≤t≤104) — the number of test cases. The first line of each test case contains a single integer n (2≤n≤2⋅105, nis even). The next line contains a string sof length n, consisting of characters 0 and 1.The sum of nacross all test cases does not exceed 2⋅105. Output If such two balanced bracked sequences exist, output “YES” on the first line, otherwise output “NO”. You can print each letter in any case (upper or lower). If the answer is “YES”, output the balanced bracket sequences a and b satisfying the conditions on the next two lines.If there are multiple solutions, you may print any. Example Input Copy 3 6 101101 10 1001101101 4 1100 Output Copy YES ()()() ((())) YES ()()((())) (())()()() NO Note In the first test case, a= “()()()” and b="((()))". The characters are equal in positions 1, 3, 4, and 6, which are the exact same positions where si=1 .In the second test case, a= “()()((()))” and b="(())()()()". The characters are equal in positions 1, 4, 5, 7, 8, 10, which are the exact same positions where si=1 In the third test case, there is no solution. 题意: 一个n代表01串的长度,构造两个长度为n的括号序列,给你一个01串,代表着a,b两个序列串字符不相同。然后你来判断是否有合理的a,b串。有的话输出。 思路: 这题想了很久想不明白,看了大佬的题解,迷迷糊糊差不多理解吧。这题是这样的,就是: (1)第一步得合法的字符串,所以首尾得是相同的且都为1 (2)第二步,因为01串长度为偶数,所以如果合法的话,得( 的个数= ) 的个数,然后你想呀,假如为 ()()()()吧,然后你有一个0破坏了一个括号,但如果合法的话,是不是得还有一个0再破坏一个括号,然后被破坏的这俩个进行分配才能合理,所以如果合法的话,01串得0的个数为偶数,1的个数自然而然为偶数吧。 (3)最后一步构造,既然1的个数为偶数,首尾又都为1,所以1的个数前sum1/2个1构造为‘( ’,后sum1/2个构造为‘)’,然后我们1的所有的目前是合法的,然后剩下的0也是偶数的,然后如果让他们合法进行分配就( )间接进行就可以了,然后我们根据01串将b构造出来。合法的核心就是当前位的(个数大于等于),所以我们在循环进行判断一下a,b串是否都满足,(其实我觉得这么构造出来,a必然合理呀,其实就判b就行了,我保险起见都判了)。 代码: include<bits/stdc++.h>using namespace std;const int N=3e5+7;char a[N],b[N];int main (){int t;cin>>t;while(t--){int n;cin>>n;string s;cin>>s;if(s[0]!=s[n-1]&&s[0]!='1'){cout<<"NO"<<endl;}else{int sum1=0,sum0=0;for(int i=0;i<s.size();i++){if(s[i]=='1') sum1++;else sum0++;}if(sum1%2!=0||sum0%2!=0){cout<<"NO"<<endl;}else{int cnt1=0,cnt0=1;for(int i=0;i<n;i++){if(s[i]=='1'&&cnt1<sum1/2){a[i]='(';cnt1++;}else if(s[i]=='1'&&cnt1>=sum1/2){a[i]=')';cnt1++;}else if(s[i]=='0'&&cnt0%2==1){a[i]='(';cnt0++;}else if(s[i]=='0'&&cnt0%2==0){a[i]=')';cnt0++;}//cout<<a[i]<<endl;}for(int i=0;i<n;i++){if(s[i]=='0'){if(a[i]=='(') b[i]=')';else b[i]='(';}else{b[i]=a[i];}//cout<<b[i]<<endl;}// cout<<"YES"<<endl;int f=0;int s0=0,s1=0;for(int i=0;i<n;i++){if(a[i]=='(') s0++;else if(a[i]==')') s1++;if(s0<s1) {f=1;break;} }s0=0,s1=0;for(int i=0;i<n;i++){if(b[i]=='(') s0++;else if(b[i]==')') s1++;if(s0<s1) {f=1;break;} }if(f==0){cout<<"YES"<<endl;for(int i=0;i<n;i++) cout<<a[i];cout<<endl;for(int i=0;i<n;i++) cout<<b[i];cout<<endl;}else{cout<<"NO"<<endl;} }} }return 0;}/01 01 01 01 01 0110 01 10 01 10 10100101010101011010101010100101011010011001011010100110011010Select the length 12prefix to get.Select the length 8prefix to get.Select the length 4prefix to get.Select the length 6prefix to get01 110100 0001 001011 00/ 本篇文章为转载内容。原文链接:https://blog.csdn.net/lvy_yu_ET/article/details/115575091。 该文由互联网用户投稿提供,文中观点代表作者本人意见,并不代表本站的立场。 作为信息平台,本站仅提供文章转载服务,并不拥有其所有权,也不对文章内容的真实性、准确性和合法性承担责任。 如发现本文存在侵权、违法、违规或事实不符的情况,请及时联系我们,我们将第一时间进行核实并删除相应内容。
2023-10-05 13:54:12
228
转载
转载文章
...ig;/ 数据生成代码,Kafka Producer产生数据/public class MockAdClickedStat {/ @param args/public static void main(String[] args) {final Random random = new Random();final String[] provinces = new String[]{"Guangdong", "Zhejiang", "Jiangsu", "Fujian"};final Map<String, String[]> cities = new HashMap<String, String[]>();cities.put("Guangdong", new String[]{"Guangzhou", "Shenzhen", "Dongguan"});cities.put("Zhejiang", new String[]{"Hangzhou", "Wenzhou", "Ningbo"});cities.put("Jiangsu", new String[]{"Nanjing", "Suzhou", "Wuxi"});cities.put("Fujian", new String[]{"Fuzhou", "Xiamen", "Sanming"});final String[] ips = new String[] {"192.168.112.240","192.168.112.239","192.168.112.245","192.168.112.246","192.168.112.247","192.168.112.248","192.168.112.249","192.168.112.250","192.168.112.251","192.168.112.252","192.168.112.253","192.168.112.254",};/ Kafka相关的基本配置信息/Properties kafkaConf = new Properties();kafkaConf.put("serializer.class", "kafka.serializer.StringEncoder");kafkaConf.put("metadeta.broker.list", "Master:9092,Worker1:9092,Worker2:9092");ProducerConfig producerConfig = new ProducerConfig(kafkaConf);final Producer<Integer, String> producer = new Producer<Integer, String>(producerConfig);new Thread(new Runnable() {public void run() {while(true) {//在线处理广告点击流的基本数据格式:timestamp、ip、userID、adID、province、cityLong timestamp = new Date().getTime();String ip = ips[random.nextInt(12)]; //可以采用网络上免费提供的ip库int userID = random.nextInt(10000);int adID = random.nextInt(100);String province = provinces[random.nextInt(4)];String city = cities.get(province)[random.nextInt(3)];String clickedAd = timestamp + "\t" + ip + "\t" + userID + "\t" + adID + "\t" + province + "\t" + city;producer.send(new KeyedMessage<Integer, String>("AdClicked", clickedAd));try {Thread.sleep(50);} catch (InterruptedException e) {// TODO Auto-generated catch blocke.printStackTrace();} }} }).start();} } package com.tom.spark.SparkApps.sparkstreaming;import java.sql.Connection;import java.sql.DriverManager;import java.sql.PreparedStatement;import java.sql.ResultSet;import java.sql.SQLException;import java.util.ArrayList;import java.util.Arrays;import java.util.HashMap;import java.util.HashSet;import java.util.Iterator;import java.util.List;import java.util.Map;import java.util.Set;import java.util.concurrent.LinkedBlockingQueue;import kafka.serializer.StringDecoder;import org.apache.spark.SparkConf;import org.apache.spark.api.java.JavaPairRDD;import org.apache.spark.api.java.JavaRDD;import org.apache.spark.api.java.JavaSparkContext;import org.apache.spark.api.java.function.Function;import org.apache.spark.api.java.function.Function2;import org.apache.spark.api.java.function.PairFunction;import org.apache.spark.api.java.function.VoidFunction;import org.apache.spark.sql.DataFrame;import org.apache.spark.sql.Row;import org.apache.spark.sql.RowFactory;import org.apache.spark.sql.hive.HiveContext;import org.apache.spark.sql.types.DataTypes;import org.apache.spark.sql.types.StructType;import org.apache.spark.streaming.Durations;import org.apache.spark.streaming.api.java.JavaDStream;import org.apache.spark.streaming.api.java.JavaPairDStream;import org.apache.spark.streaming.api.java.JavaPairInputDStream;import org.apache.spark.streaming.api.java.JavaStreamingContext;import org.apache.spark.streaming.api.java.JavaStreamingContextFactory;import org.apache.spark.streaming.kafka.KafkaUtils;import com.google.common.base.Optional;import scala.Tuple2;/ 数据处理,Kafka消费者/public class AdClickedStreamingStats {/ @param args/public static void main(String[] args) {// TODO Auto-generated method stub//好处:1、checkpoint 2、工厂final SparkConf conf = new SparkConf().setAppName("SparkStreamingOnKafkaDirect").setMaster("hdfs://Master:7077/");final String checkpointDirectory = "hdfs://Master:9000/library/SparkStreaming/CheckPoint_Data";JavaStreamingContextFactory factory = new JavaStreamingContextFactory() {public JavaStreamingContext create() {// TODO Auto-generated method stubreturn createContext(checkpointDirectory, conf);} };/ 可以从失败中恢复Driver,不过还需要指定Driver这个进程运行在Cluster,并且在提交应用程序的时候制定--supervise;/JavaStreamingContext javassc = JavaStreamingContext.getOrCreate(checkpointDirectory, factory);/ 第三步:创建Spark Streaming输入数据来源input Stream: 1、数据输入来源可以基于File、HDFS、Flume、Kafka、Socket等 2、在这里我们指定数据来源于网络Socket端口,Spark Streaming连接上该端口并在运行的时候一直监听该端口的数据 (当然该端口服务首先必须存在),并且在后续会根据业务需要不断有数据产生(当然对于Spark Streaming 应用程序的运行而言,有无数据其处理流程都是一样的) 3、如果经常在每间隔5秒钟没有数据的话不断启动空的Job其实会造成调度资源的浪费,因为并没有数据需要发生计算;所以 实际的企业级生成环境的代码在具体提交Job前会判断是否有数据,如果没有的话就不再提交Job;///创建Kafka元数据来让Spark Streaming这个Kafka Consumer利用Map<String, String> kafkaParameters = new HashMap<String, String>();kafkaParameters.put("metadata.broker.list", "Master:9092,Worker1:9092,Worker2:9092");Set<String> topics = new HashSet<String>();topics.add("SparkStreamingDirected");JavaPairInputDStream<String, String> adClickedStreaming = KafkaUtils.createDirectStream(javassc, String.class, String.class, StringDecoder.class, StringDecoder.class,kafkaParameters, topics);/因为要对黑名单进行过滤,而数据是在RDD中的,所以必然使用transform这个函数; 但是在这里我们必须使用transformToPair,原因是读取进来的Kafka的数据是Pair<String,String>类型, 另一个原因是过滤后的数据要进行进一步处理,所以必须是读进的Kafka数据的原始类型 在此再次说明,每个Batch Duration中实际上讲输入的数据就是被一个且仅被一个RDD封装的,你可以有多个 InputDStream,但其实在产生job的时候,这些不同的InputDStream在Batch Duration中就相当于Spark基于HDFS 数据操作的不同文件来源而已罢了。/JavaPairDStream<String, String> filteredadClickedStreaming = adClickedStreaming.transformToPair(new Function<JavaPairRDD<String,String>, JavaPairRDD<String,String>>() {public JavaPairRDD<String, String> call(JavaPairRDD<String, String> rdd) throws Exception {/ 在线黑名单过滤思路步骤: 1、从数据库中获取黑名单转换成RDD,即新的RDD实例封装黑名单数据; 2、然后把代表黑名单的RDD的实例和Batch Duration产生的RDD进行Join操作, 准确的说是进行leftOuterJoin操作,也就是说使用Batch Duration产生的RDD和代表黑名单的RDD实例进行 leftOuterJoin操作,如果两者都有内容的话,就会是true,否则的话就是false 我们要留下的是leftOuterJoin结果为false; /final List<String> blackListNames = new ArrayList<String>();JDBCWrapper jdbcWrapper = JDBCWrapper.getJDBCInstance();jdbcWrapper.doQuery("SELECT FROM blacklisttable", null, new ExecuteCallBack() {public void resultCallBack(ResultSet result) throws Exception {while(result.next()){blackListNames.add(result.getString(1));} }});List<Tuple2<String, Boolean>> blackListTuple = new ArrayList<Tuple2<String,Boolean>>();for(String name : blackListNames) {blackListTuple.add(new Tuple2<String, Boolean>(name, true));}List<Tuple2<String, Boolean>> blacklistFromListDB = blackListTuple; //数据来自于查询的黑名单表并且映射成为<String, Boolean>JavaSparkContext jsc = new JavaSparkContext(rdd.context());/ 黑名单的表中只有userID,但是如果要进行join操作的话就必须是Key-Value,所以在这里我们需要 基于数据表中的数据产生Key-Value类型的数据集合/JavaPairRDD<String, Boolean> blackListRDD = jsc.parallelizePairs(blacklistFromListDB);/ 进行操作的时候肯定是基于userID进行join,所以必须把传入的rdd进行mapToPair操作转化成为符合格式的RDD/JavaPairRDD<String, Tuple2<String, String>> rdd2Pair = rdd.mapToPair(new PairFunction<Tuple2<String,String>, String, Tuple2<String, String>>() {public Tuple2<String, Tuple2<String, String>> call(Tuple2<String, String> t) throws Exception {// TODO Auto-generated method stubString userID = t._2.split("\t")[2];return new Tuple2<String, Tuple2<String,String>>(userID, t);} });JavaPairRDD<String, Tuple2<Tuple2<String, String>, Optional<Boolean>>> joined = rdd2Pair.leftOuterJoin(blackListRDD);JavaPairRDD<String, String> result = joined.filter(new Function<Tuple2<String,Tuple2<Tuple2<String,String>,Optional<Boolean>>>, Boolean>() {public Boolean call(Tuple2<String, Tuple2<Tuple2<String, String>, Optional<Boolean>>> tuple)throws Exception {// TODO Auto-generated method stubOptional<Boolean> optional = tuple._2._2;if(optional.isPresent() && optional.get()){return false;} else {return true;} }}).mapToPair(new PairFunction<Tuple2<String,Tuple2<Tuple2<String,String>,Optional<Boolean>>>, String, String>() {public Tuple2<String, String> call(Tuple2<String, Tuple2<Tuple2<String, String>, Optional<Boolean>>> t)throws Exception {// TODO Auto-generated method stubreturn t._2._1;} });return result;} });//广告点击的基本数据格式:timestamp、ip、userID、adID、province、cityJavaPairDStream<String, Long> pairs = filteredadClickedStreaming.mapToPair(new PairFunction<Tuple2<String,String>, String, Long>() {public Tuple2<String, Long> call(Tuple2<String, String> t) throws Exception {String[] splited=t._2.split("\t");String timestamp = splited[0]; //YYYY-MM-DDString ip = splited[1];String userID = splited[2];String adID = splited[3];String province = splited[4];String city = splited[5]; String clickedRecord = timestamp + "_" +ip + "_"+userID+"_"+adID+"_"+province +"_"+city;return new Tuple2<String, Long>(clickedRecord, 1L);} });/ 第4.3步:在单词实例计数为1基础上,统计每个单词在文件中出现的总次数/JavaPairDStream<String, Long> adClickedUsers= pairs.reduceByKey(new Function2<Long, Long, Long>() {public Long call(Long i1, Long i2) throws Exception{return i1 + i2;} });/判断有效的点击,复杂化的采用机器学习训练模型进行在线过滤 简单的根据ip判断1天不超过100次;也可以通过一个batch duration的点击次数判断是否非法广告点击,通过一个batch来判断是不完整的,还需要一天的数据也可以每一个小时来判断。/JavaPairDStream<String, Long> filterClickedBatch = adClickedUsers.filter(new Function<Tuple2<String,Long>, Boolean>() {public Boolean call(Tuple2<String, Long> v1) throws Exception {if (1 < v1._2){//更新一些黑名单的数据库表return false;} else { return true;} }});//filterClickedBatch.print();//写入数据库filterClickedBatch.foreachRDD(new Function<JavaPairRDD<String,Long>, Void>() {public Void call(JavaPairRDD<String, Long> rdd) throws Exception {rdd.foreachPartition(new VoidFunction<Iterator<Tuple2<String,Long>>>() {public void call(Iterator<Tuple2<String, Long>> partition) throws Exception {//使用数据库连接池的高效读写数据库的方式将数据写入数据库mysql//例如一次插入 1000条 records,使用insertBatch 或 updateBatch//插入的用户数据信息:userID,adID,clickedCount,time//这里面有一个问题,可能出现两条记录的key是一样的,此时需要更新累加操作List<UserAdClicked> userAdClickedList = new ArrayList<UserAdClicked>();while(partition.hasNext()) {Tuple2<String, Long> record = partition.next();String[] splited = record._1.split("\t");UserAdClicked userClicked = new UserAdClicked();userClicked.setTimestamp(splited[0]);userClicked.setIp(splited[1]);userClicked.setUserID(splited[2]);userClicked.setAdID(splited[3]);userClicked.setProvince(splited[4]);userClicked.setCity(splited[5]);userAdClickedList.add(userClicked);}final List<UserAdClicked> inserting = new ArrayList<UserAdClicked>();final List<UserAdClicked> updating = new ArrayList<UserAdClicked>();JDBCWrapper jdbcWrapper = JDBCWrapper.getJDBCInstance();//表的字段timestamp、ip、userID、adID、province、city、clickedCountfor(final UserAdClicked clicked : userAdClickedList) {jdbcWrapper.doQuery("SELECT clickedCount FROM adclicked WHERE"+ " timestamp =? AND userID = ? AND adID = ?",new Object[]{clicked.getTimestamp(), clicked.getUserID(),clicked.getAdID()}, new ExecuteCallBack() {public void resultCallBack(ResultSet result) throws Exception {// TODO Auto-generated method stubif(result.next()) {long count = result.getLong(1);clicked.setClickedCount(count);updating.add(clicked);} else {inserting.add(clicked);clicked.setClickedCount(1L);} }});}//表的字段timestamp、ip、userID、adID、province、city、clickedCountList<Object[]> insertParametersList = new ArrayList<Object[]>();for(UserAdClicked insertRecord : inserting) {insertParametersList.add(new Object[] {insertRecord.getTimestamp(),insertRecord.getIp(),insertRecord.getUserID(),insertRecord.getAdID(),insertRecord.getProvince(),insertRecord.getCity(),insertRecord.getClickedCount()});}jdbcWrapper.doBatch("INSERT INTO adclicked VALUES(?, ?, ?, ?, ?, ?, ?)", insertParametersList);//表的字段timestamp、ip、userID、adID、province、city、clickedCountList<Object[]> updateParametersList = new ArrayList<Object[]>();for(UserAdClicked updateRecord : updating) {updateParametersList.add(new Object[] {updateRecord.getTimestamp(),updateRecord.getIp(),updateRecord.getUserID(),updateRecord.getAdID(),updateRecord.getProvince(),updateRecord.getCity(),updateRecord.getClickedCount() + 1});}jdbcWrapper.doBatch("UPDATE adclicked SET clickedCount = ? WHERE"+ " timestamp =? AND ip = ? AND userID = ? AND adID = ? "+ "AND province = ? AND city = ?", updateParametersList);} });return null;} });//再次过滤,从数据库中读取数据过滤黑名单JavaPairDStream<String, Long> blackListBasedOnHistory = filterClickedBatch.filter(new Function<Tuple2<String,Long>, Boolean>() {public Boolean call(Tuple2<String, Long> v1) throws Exception {//广告点击的基本数据格式:timestamp,ip,userID,adID,province,cityString[] splited = v1._1.split("\t"); //提取key值String date =splited[0];String userID =splited[2];String adID =splited[3];//查询一下数据库同一个用户同一个广告id点击量超过50次列入黑名单//接下来 根据date、userID、adID条件去查询用户点击广告的数据表,获得总的点击次数//这个时候基于点击次数判断是否属于黑名单点击int clickedCountTotalToday = 81 ;if (clickedCountTotalToday > 50) {return true;}else {return false ;} }});//map操作,找出用户的idJavaDStream<String> blackListuserIDBasedInBatchOnhistroy =blackListBasedOnHistory.map(new Function<Tuple2<String,Long>, String>() {public String call(Tuple2<String, Long> v1) throws Exception {// TODO Auto-generated method stubreturn v1._1.split("\t")[2];} });//有一个问题,数据可能重复,在一个partition里面重复,这个好办;//但多个partition不能保证一个用户重复,需要对黑名单的整个rdd进行去重操作。//rdd去重了,partition也就去重了,一石二鸟,一箭双雕// 找出了黑名单,下一步就写入黑名单数据库表中JavaDStream<String> blackListUniqueuserBasedInBatchOnhistroy = blackListuserIDBasedInBatchOnhistroy.transform(new Function<JavaRDD<String>, JavaRDD<String>>() {public JavaRDD<String> call(JavaRDD<String> rdd) throws Exception {// TODO Auto-generated method stubreturn rdd.distinct();} });// 下一步写入到数据表中blackListUniqueuserBasedInBatchOnhistroy.foreachRDD(new Function<JavaRDD<String>, Void>() {public Void call(JavaRDD<String> rdd) throws Exception {rdd.foreachPartition(new VoidFunction<Iterator<String>>() {public void call(Iterator<String> t) throws Exception {// TODO Auto-generated method stub//插入的用户信息可以只包含:useID//此时直接插入黑名单数据表即可。//写入数据库List<Object[]> blackList = new ArrayList<Object[]>();while(t.hasNext()) {blackList.add(new Object[]{t.next()});}JDBCWrapper jdbcWrapper = JDBCWrapper.getJDBCInstance();jdbcWrapper.doBatch("INSERT INTO blacklisttable values (?)", blackList);} });return null;} });/广告点击累计动态更新,每个updateStateByKey都会在Batch Duration的时间间隔的基础上进行广告点击次数的更新, 更新之后我们一般都会持久化到外部存储设备上,在这里我们存储到MySQL数据库中/JavaPairDStream<String, Long> updateStateByKeyDSteam = filteredadClickedStreaming.mapToPair(new PairFunction<Tuple2<String,String>, String, Long>() {public Tuple2<String, Long> call(Tuple2<String, String> t)throws Exception {String[] splited=t._2.split("\t");String timestamp = splited[0]; //YYYY-MM-DDString ip = splited[1];String userID = splited[2];String adID = splited[3];String province = splited[4];String city = splited[5]; String clickedRecord = timestamp + "_" +ip + "_"+userID+"_"+adID+"_"+province +"_"+city;return new Tuple2<String, Long>(clickedRecord, 1L);} }).updateStateByKey(new Function2<List<Long>, Optional<Long>, Optional<Long>>() {public Optional<Long> call(List<Long> v1, Optional<Long> v2)throws Exception {// v1:当前的Key在当前的Batch Duration中出现的次数的集合,例如{1,1,1,。。。,1}// v2:当前的Key在以前的Batch Duration中积累下来的结果;Long clickedTotalHistory = 0L; if(v2.isPresent()){clickedTotalHistory = v2.get();}for(Long one : v1) {clickedTotalHistory += one;}return Optional.of(clickedTotalHistory);} });updateStateByKeyDSteam.foreachRDD(new Function<JavaPairRDD<String,Long>, Void>() {public Void call(JavaPairRDD<String, Long> rdd) throws Exception {rdd.foreachPartition(new VoidFunction<Iterator<Tuple2<String,Long>>>() {public void call(Iterator<Tuple2<String, Long>> partition) throws Exception {//使用数据库连接池的高效读写数据库的方式将数据写入数据库mysql//例如一次插入 1000条 records,使用insertBatch 或 updateBatch//插入的用户数据信息:timestamp、adID、province、city//这里面有一个问题,可能出现两条记录的key是一样的,此时需要更新累加操作List<AdClicked> AdClickedList = new ArrayList<AdClicked>();while(partition.hasNext()) {Tuple2<String, Long> record = partition.next();String[] splited = record._1.split("\t");AdClicked adClicked = new AdClicked();adClicked.setTimestamp(splited[0]);adClicked.setAdID(splited[1]);adClicked.setProvince(splited[2]);adClicked.setCity(splited[3]);adClicked.setClickedCount(record._2);AdClickedList.add(adClicked);}final List<AdClicked> inserting = new ArrayList<AdClicked>();final List<AdClicked> updating = new ArrayList<AdClicked>();JDBCWrapper jdbcWrapper = JDBCWrapper.getJDBCInstance();//表的字段timestamp、ip、userID、adID、province、city、clickedCountfor(final AdClicked clicked : AdClickedList) {jdbcWrapper.doQuery("SELECT clickedCount FROM adclickedcount WHERE"+ " timestamp = ? AND adID = ? AND province = ? AND city = ?",new Object[]{clicked.getTimestamp(), clicked.getAdID(),clicked.getProvince(), clicked.getCity()}, new ExecuteCallBack() {public void resultCallBack(ResultSet result) throws Exception {// TODO Auto-generated method stubif(result.next()) {long count = result.getLong(1);clicked.setClickedCount(count);updating.add(clicked);} else {inserting.add(clicked);clicked.setClickedCount(1L);} }});}//表的字段timestamp、ip、userID、adID、province、city、clickedCountList<Object[]> insertParametersList = new ArrayList<Object[]>();for(AdClicked insertRecord : inserting) {insertParametersList.add(new Object[] {insertRecord.getTimestamp(),insertRecord.getAdID(),insertRecord.getProvince(),insertRecord.getCity(),insertRecord.getClickedCount()});}jdbcWrapper.doBatch("INSERT INTO adclickedcount VALUES(?, ?, ?, ?, ?)", insertParametersList);//表的字段timestamp、ip、userID、adID、province、city、clickedCountList<Object[]> updateParametersList = new ArrayList<Object[]>();for(AdClicked updateRecord : updating) {updateParametersList.add(new Object[] {updateRecord.getClickedCount(),updateRecord.getTimestamp(),updateRecord.getAdID(),updateRecord.getProvince(),updateRecord.getCity()});}jdbcWrapper.doBatch("UPDATE adclickedcount SET clickedCount = ? WHERE"+ " timestamp =? AND adID = ? AND province = ? AND city = ?", updateParametersList);} });return null;} });/ 对广告点击进行TopN计算,计算出每天每个省份Top5排名的广告 因为我们直接对RDD进行操作,所以使用了transfomr算子;/updateStateByKeyDSteam.transform(new Function<JavaPairRDD<String,Long>, JavaRDD<Row>>() {public JavaRDD<Row> call(JavaPairRDD<String, Long> rdd) throws Exception {JavaRDD<Row> rowRDD = rdd.mapToPair(new PairFunction<Tuple2<String,Long>, String, Long>() {public Tuple2<String, Long> call(Tuple2<String, Long> t)throws Exception {// TODO Auto-generated method stubString[] splited=t._1.split("_");String timestamp = splited[0]; //YYYY-MM-DDString adID = splited[3];String province = splited[4];String clickedRecord = timestamp + "_" + adID + "_" + province;return new Tuple2<String, Long>(clickedRecord, t._2);} }).reduceByKey(new Function2<Long, Long, Long>() {public Long call(Long v1, Long v2) throws Exception {// TODO Auto-generated method stubreturn v1 + v2;} }).map(new Function<Tuple2<String,Long>, Row>() {public Row call(Tuple2<String, Long> v1) throws Exception {// TODO Auto-generated method stubString[] splited=v1._1.split("_");String timestamp = splited[0]; //YYYY-MM-DDString adID = splited[3];String province = splited[4];return RowFactory.create(timestamp, adID, province, v1._2);} });StructType structType = DataTypes.createStructType(Arrays.asList(DataTypes.createStructField("timestamp", DataTypes.StringType, true),DataTypes.createStructField("adID", DataTypes.StringType, true),DataTypes.createStructField("province", DataTypes.StringType, true),DataTypes.createStructField("clickedCount", DataTypes.LongType, true)));HiveContext hiveContext = new HiveContext(rdd.context());DataFrame df = hiveContext.createDataFrame(rowRDD, structType);df.registerTempTable("topNTableSource");DataFrame result = hiveContext.sql("SELECT timestamp, adID, province, clickedCount, FROM"+ " (SELECT timestamp, adID, province,clickedCount, "+ "ROW_NUMBER() OVER(PARTITION BY province ORDER BY clickeCount DESC) rank "+ "FROM topNTableSource) subquery "+ "WHERE rank <= 5");return result.toJavaRDD();} }).foreachRDD(new Function<JavaRDD<Row>, Void>() {public Void call(JavaRDD<Row> rdd) throws Exception {// TODO Auto-generated method stubrdd.foreachPartition(new VoidFunction<Iterator<Row>>() {public void call(Iterator<Row> t) throws Exception {// TODO Auto-generated method stubList<AdProvinceTopN> adProvinceTopN = new ArrayList<AdProvinceTopN>();while(t.hasNext()) {Row row = t.next();AdProvinceTopN item = new AdProvinceTopN();item.setTimestamp(row.getString(0));item.setAdID(row.getString(1));item.setProvince(row.getString(2));item.setClickedCount(row.getLong(3));adProvinceTopN.add(item);}// final List<AdProvinceTopN> inserting = new ArrayList<AdProvinceTopN>();// final List<AdProvinceTopN> updating = new ArrayList<AdProvinceTopN>();JDBCWrapper jdbcWrapper = JDBCWrapper.getJDBCInstance();Set<String> set = new HashSet<String>();for(AdProvinceTopN item: adProvinceTopN){set.add(item.getTimestamp() + "_" + item.getProvince());}//表的字段timestamp、adID、province、clickedCountArrayList<Object[]> deleteParametersList = new ArrayList<Object[]>();for(String deleteRecord : set) {String[] splited = deleteRecord.split("_");deleteParametersList.add(new Object[]{splited[0],splited[1]});}jdbcWrapper.doBatch("DELETE FROM adprovincetopn WHERE timestamp = ? AND province = ?", deleteParametersList);//表的字段timestamp、ip、userID、adID、province、city、clickedCountList<Object[]> insertParametersList = new ArrayList<Object[]>();for(AdProvinceTopN insertRecord : adProvinceTopN) {insertParametersList.add(new Object[] {insertRecord.getClickedCount(),insertRecord.getTimestamp(),insertRecord.getAdID(),insertRecord.getProvince()});}jdbcWrapper.doBatch("INSERT INTO adprovincetopn VALUES (?, ?, ?, ?)", insertParametersList);} });return null;} });/ 计算过去半个小时内广告点击的趋势 广告点击的基本数据格式:timestamp、ip、userID、adID、province、city/filteredadClickedStreaming.mapToPair(new PairFunction<Tuple2<String,String>, String, Long>() {public Tuple2<String, Long> call(Tuple2<String, String> t)throws Exception {String splited[] = t._2.split("\t");String adID = splited[3];String time = splited[0]; //Todo:后续需要重构代码实现时间戳和分钟的转换提取。此处需要提取出该广告的点击分钟单位return new Tuple2<String, Long>(time + "_" + adID, 1L);} }).reduceByKeyAndWindow(new Function2<Long, Long, Long>() {public Long call(Long v1, Long v2) throws Exception {// TODO Auto-generated method stubreturn v1 + v2;} }, new Function2<Long, Long, Long>() {public Long call(Long v1, Long v2) throws Exception {// TODO Auto-generated method stubreturn v1 - v2;} }, Durations.minutes(30), Durations.milliseconds(5)).foreachRDD(new Function<JavaPairRDD<String,Long>, Void>() {public Void call(JavaPairRDD<String, Long> rdd) throws Exception {// TODO Auto-generated method stubrdd.foreachPartition(new VoidFunction<Iterator<Tuple2<String,Long>>>() {public void call(Iterator<Tuple2<String, Long>> partition)throws Exception {List<AdTrendStat> adTrend = new ArrayList<AdTrendStat>();// TODO Auto-generated method stubwhile(partition.hasNext()) {Tuple2<String, Long> record = partition.next();String[] splited = record._1.split("_");String time = splited[0];String adID = splited[1];Long clickedCount = record._2;/ 在插入数据到数据库的时候具体需要哪些字段?time、adID、clickedCount; 而我们通过J2EE技术进行趋势绘图的时候肯定是需要年、月、日、时、分这个维度的,所以我们在这里需要 年月日、小时、分钟这些时间维度;/AdTrendStat adTrendStat = new AdTrendStat();adTrendStat.setAdID(adID);adTrendStat.setClickedCount(clickedCount);adTrendStat.set_date(time); //Todo:获取年月日adTrendStat.set_hour(time); //Todo:获取小时adTrendStat.set_minute(time);//Todo:获取分钟adTrend.add(adTrendStat);}final List<AdTrendStat> inserting = new ArrayList<AdTrendStat>();final List<AdTrendStat> updating = new ArrayList<AdTrendStat>();JDBCWrapper jdbcWrapper = JDBCWrapper.getJDBCInstance();//表的字段timestamp、ip、userID、adID、province、city、clickedCountfor(final AdTrendStat trend : adTrend) {final AdTrendCountHistory adTrendhistory = new AdTrendCountHistory();jdbcWrapper.doQuery("SELECT clickedCount FROM adclickedtrend WHERE"+ " date =? AND hour = ? AND minute = ? AND AdID = ?",new Object[]{trend.get_date(), trend.get_hour(), trend.get_minute(),trend.getAdID()}, new ExecuteCallBack() {public void resultCallBack(ResultSet result) throws Exception {// TODO Auto-generated method stubif(result.next()) {long count = result.getLong(1);adTrendhistory.setClickedCountHistoryLong(count);updating.add(trend);} else { inserting.add(trend);} }});}//表的字段date、hour、minute、adID、clickedCountList<Object[]> insertParametersList = new ArrayList<Object[]>();for(AdTrendStat insertRecord : inserting) {insertParametersList.add(new Object[] {insertRecord.get_date(),insertRecord.get_hour(),insertRecord.get_minute(),insertRecord.getAdID(),insertRecord.getClickedCount()});}jdbcWrapper.doBatch("INSERT INTO adclickedtrend VALUES(?, ?, ?, ?, ?)", insertParametersList);//表的字段date、hour、minute、adID、clickedCountList<Object[]> updateParametersList = new ArrayList<Object[]>();for(AdTrendStat updateRecord : updating) {updateParametersList.add(new Object[] {updateRecord.getClickedCount(),updateRecord.get_date(),updateRecord.get_hour(),updateRecord.get_minute(),updateRecord.getAdID()});}jdbcWrapper.doBatch("UPDATE adclickedtrend SET clickedCount = ? WHERE"+ " date =? AND hour = ? AND minute = ? AND AdID = ?", updateParametersList);} });return null;} });;/ Spark Streaming 执行引擎也就是Driver开始运行,Driver启动的时候是位于一条新的线程中的,当然其内部有消息循环体,用于 接收应用程序本身或者Executor中的消息,/javassc.start();javassc.awaitTermination();javassc.close();}private static JavaStreamingContext createContext(String checkpointDirectory, SparkConf conf) {// If you do not see this printed, that means the StreamingContext has been loaded// from the new checkpointSystem.out.println("Creating new context");// Create the context with a 5 second batch sizeJavaStreamingContext ssc = new JavaStreamingContext(conf, Durations.seconds(10));ssc.checkpoint(checkpointDirectory);return ssc;} }class JDBCWrapper {private static JDBCWrapper jdbcInstance = null;private static LinkedBlockingQueue<Connection> dbConnectionPool = new LinkedBlockingQueue<Connection>();static {try {Class.forName("com.mysql.jdbc.Driver");} catch (ClassNotFoundException e) {// TODO Auto-generated catch blocke.printStackTrace();} }public static JDBCWrapper getJDBCInstance() {if(jdbcInstance == null) {synchronized (JDBCWrapper.class) {if(jdbcInstance == null) {jdbcInstance = new JDBCWrapper();} }}return jdbcInstance; }private JDBCWrapper() {for(int i = 0; i < 10; i++){try {Connection conn = DriverManager.getConnection("jdbc:mysql://Master:3306/sparkstreaming","root", "root");dbConnectionPool.put(conn);} catch (Exception e) {// TODO Auto-generated catch blocke.printStackTrace();} } }public synchronized Connection getConnection() {while(0 == dbConnectionPool.size()){try {Thread.sleep(20);} catch (InterruptedException e) {// TODO Auto-generated catch blocke.printStackTrace();} }return dbConnectionPool.poll();}public int[] doBatch(String sqlText, List<Object[]> paramsList){Connection conn = getConnection();PreparedStatement preparedStatement = null;int[] result = null;try {conn.setAutoCommit(false);preparedStatement = conn.prepareStatement(sqlText);for(Object[] parameters: paramsList) {for(int i = 0; i < parameters.length; i++){preparedStatement.setObject(i + 1, parameters[i]);} preparedStatement.addBatch();}result = preparedStatement.executeBatch();conn.commit();} catch (SQLException e) {// TODO Auto-generated catch blocke.printStackTrace();} finally {if(preparedStatement != null) {try {preparedStatement.close();} catch (SQLException e) {// TODO Auto-generated catch blocke.printStackTrace();} }if(conn != null) {try {dbConnectionPool.put(conn);} catch (InterruptedException e) {// TODO Auto-generated catch blocke.printStackTrace();} }}return result; }public void doQuery(String sqlText, Object[] paramsList, ExecuteCallBack callback){Connection conn = getConnection();PreparedStatement preparedStatement = null;ResultSet result = null;try {preparedStatement = conn.prepareStatement(sqlText);for(int i = 0; i < paramsList.length; i++){preparedStatement.setObject(i + 1, paramsList[i]);} result = preparedStatement.executeQuery();try {callback.resultCallBack(result);} catch (Exception e) {// TODO Auto-generated catch blocke.printStackTrace();} } catch (SQLException e) {// TODO Auto-generated catch blocke.printStackTrace();} finally {if(preparedStatement != null) {try {preparedStatement.close();} catch (SQLException e) {// TODO Auto-generated catch blocke.printStackTrace();} }if(conn != null) {try {dbConnectionPool.put(conn);} catch (InterruptedException e) {// TODO Auto-generated catch blocke.printStackTrace();} }} }}interface ExecuteCallBack {void resultCallBack(ResultSet result) throws Exception;}class UserAdClicked {private String timestamp;private String ip;private String userID;private String adID;private String province;private String city;private Long clickedCount;public String getTimestamp() {return timestamp;}public void setTimestamp(String timestamp) {this.timestamp = timestamp;}public String getIp() {return ip;}public void setIp(String ip) {this.ip = ip;}public String getUserID() {return userID;}public void setUserID(String userID) {this.userID = userID;}public String getAdID() {return adID;}public void setAdID(String adID) {this.adID = adID;}public String getProvince() {return province;}public void setProvince(String province) {this.province = province;}public String getCity() {return city;}public void setCity(String city) {this.city = city;}public Long getClickedCount() {return clickedCount;}public void setClickedCount(Long clickedCount) {this.clickedCount = clickedCount;} }class AdClicked {private String timestamp;private String adID;private String province;private String city;private Long clickedCount;public String getTimestamp() {return timestamp;}public void setTimestamp(String timestamp) {this.timestamp = timestamp;}public String getAdID() {return adID;}public void setAdID(String adID) {this.adID = adID;}public String getProvince() {return province;}public void setProvince(String province) {this.province = province;}public String getCity() {return city;}public void setCity(String city) {this.city = city;}public Long getClickedCount() {return clickedCount;}public void setClickedCount(Long clickedCount) {this.clickedCount = clickedCount;} }class AdProvinceTopN {private String timestamp;private String adID;private String province;private Long clickedCount;public String getTimestamp() {return timestamp;}public void setTimestamp(String timestamp) {this.timestamp = timestamp;}public String getAdID() {return adID;}public void setAdID(String adID) {this.adID = adID;}public String getProvince() {return province;}public void setProvince(String province) {this.province = province;}public Long getClickedCount() {return clickedCount;}public void setClickedCount(Long clickedCount) {this.clickedCount = clickedCount;} }class AdTrendStat {private String _date;private String _hour;private String _minute;private String adID;private Long clickedCount;public String get_date() {return _date;}public void set_date(String _date) {this._date = _date;}public String get_hour() {return _hour;}public void set_hour(String _hour) {this._hour = _hour;}public String get_minute() {return _minute;}public void set_minute(String _minute) {this._minute = _minute;}public String getAdID() {return adID;}public void setAdID(String adID) {this.adID = adID;}public Long getClickedCount() {return clickedCount;}public void setClickedCount(Long clickedCount) {this.clickedCount = clickedCount;} }class AdTrendCountHistory{private Long clickedCountHistoryLong;public Long getClickedCountHistoryLong() {return clickedCountHistoryLong;}public void setClickedCountHistoryLong(Long clickedCountHistoryLong) {this.clickedCountHistoryLong = clickedCountHistoryLong;} } 本篇文章为转载内容。原文链接:https://blog.csdn.net/tom_8899_li/article/details/71194434。 该文由互联网用户投稿提供,文中观点代表作者本人意见,并不代表本站的立场。 作为信息平台,本站仅提供文章转载服务,并不拥有其所有权,也不对文章内容的真实性、准确性和合法性承担责任。 如发现本文存在侵权、违法、违规或事实不符的情况,请及时联系我们,我们将第一时间进行核实并删除相应内容。
2023-02-14 19:16:35
297
转载
JQuery插件下载
...stopping)、序列化多个动画(sequencing)等功能,从而在不同场景下创建更为复杂且流畅的动画序列。通过使用tram.js,开发者无需顾虑浏览器兼容性问题,能够确保其CSS3过渡效果在所有主流浏览器上表现一致且高效,极大地提升了用户体验并简化了前端动画开发的工作流程。 点我下载 文件大小:180.83 KB 您将下载一个JQuery插件资源包,该资源包内部文件的目录结构如下: 本网站提供JQuery插件下载功能,旨在帮助广大用户在工作学习中提升效率、节约时间。 本网站的下载内容来自于互联网。如您发现任何侵犯您权益的内容,请立即告知我们,我们将迅速响应并删除相关内容。 免责声明:站内所有资源仅供个人学习研究及参考之用,严禁将这些资源应用于商业场景。 若擅自商用导致的一切后果,由使用者承担责任。
2023-02-17 10:24:14
72
本站
JQuery插件下载
...的图片集合,能够自动生成一个无限循环播放的旋转木马效果,让访客在浏览网页时可以以新颖、流畅的方式查看图片内容。作为一款响应式的工具,tekitizy_carousel能确保在不同屏幕尺寸和设备类型上提供一致的表现,无论是桌面端、平板还是移动手机用户都能获得良好的视觉体验。其特色在于,当用户点击或触发特定元素时,会弹出一个全屏或半屏的图片画廊视图,展示经过优化布局和缩放处理后的图片序列。此外,插件支持将图片以优雅的过渡动画衔接起来,形成连续不断的视觉盛宴,既提升了网站的专业感,也增强了用户互动性。开发者还可以根据需求灵活配置插件参数,以满足不同的设计风格与功能需求,使tekitizy_carousel成为现代Web项目中构建专业级图片展示和轮播效果的理想选择。 点我下载 文件大小:202.77 KB 您将下载一个JQuery插件资源包,该资源包内部文件的目录结构如下: 本网站提供JQuery插件下载功能,旨在帮助广大用户在工作学习中提升效率、节约时间。 本网站的下载内容来自于互联网。如您发现任何侵犯您权益的内容,请立即告知我们,我们将迅速响应并删除相关内容。 免责声明:站内所有资源仅供个人学习研究及参考之用,严禁将这些资源应用于商业场景。 若擅自商用导致的一切后果,由使用者承担责任。
2023-02-23 21:22:38
109
本站
JQuery插件下载
...数,如动画速度、字符序列和显示时间等,即可生成所需的动画效果。这使得即便是非技术背景的用户也能轻松上手,创造出个性化的控制台展示效果。此外,DomAnimator还支持定制化,允许开发者根据自己的需求调整动画细节,从色彩、字体到动画风格,几乎一切都可以自定义。这种高度的可定制性意味着用户可以根据不同的应用场景和审美偏好,创造出独一无二的动画效果。总之,DomAnimator为开发者提供了一种全新的方式来展示和分享代码,不仅能够提升代码的可读性和趣味性,还能够增强团队合作和代码交流的氛围。无论是在技术演示、代码审查还是日常开发过程中,它都是一个既实用又有趣的工具,值得广大开发者尝试和探索。 点我下载 文件大小:12.44 KB 您将下载一个JQuery插件资源包,该资源包内部文件的目录结构如下: 本网站提供JQuery插件下载功能,旨在帮助广大用户在工作学习中提升效率、节约时间。 本网站的下载内容来自于互联网。如您发现任何侵犯您权益的内容,请立即告知我们,我们将迅速响应并删除相关内容。 免责声明:站内所有资源仅供个人学习研究及参考之用,严禁将这些资源应用于商业场景。 若擅自商用导致的一切后果,由使用者承担责任。
2024-09-14 11:10:18
74
本站
Maven
...法进行创造性的写作或生成含有情感化和主观化的表达的文章。
2023-12-17 20:55:11
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HTML
...lement函数调用序列,最终生成HTML字符串。这种将模板与逻辑紧密耦合的方式有利于提升代码的可维护性和复用性。 深入研究,还可以发现诸如lit-html这样的轻量级库,它利用模板字面量和HTML模板化功能,结合高效的差异更新算法,在保证性能的同时简化了将JavaScript转为HTML字符串的过程。 总之,在当前前端开发领域,将JavaScript转换为HTML字符串不仅停留在原始的字符串拼接或模板字符串阶段,而是融入到各类现代框架的核心机制之中,以更高效、便捷的方式服务于复杂的Web应用开发实践。不断跟进和掌握这些新方法和技术趋势,有助于开发者提升项目质量和开发效率。
2023-11-22 11:28:15
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JSON
...ialize以增强序列化功能,并改进了json_decode错误处理机制,使开发者能够更准确地捕获并解决JSON解析问题。同时,PHP官方文档也提供了更多关于如何安全、高效地处理JSON数据的最佳实践指南。 此外,随着RESTful API设计规范的推广,JSON Schema作为一种用于描述JSON数据结构的标准格式,正在逐步成为主流。它允许开发者为JSON数据定义严格的模式约束,从而确保在数据传输过程中满足预设规则,减少因数据格式错误导致的问题。 因此,对于PHP开发者而言,除了掌握基础的JSON编码解码操作之外,了解并紧跟相关领域的最新动态和技术发展,如PHP 8.1对JSON处理的改进以及JSON Schema的应用,无疑将有助于提升开发效率和代码质量,更好地适应现代Web开发的需求。
2023-01-18 13:53:09
461
算法侠
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