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配置ELK添加marvel插件

【参考】: https://www.elastic.co/guide/en/marvel/current/installing-marvel.html 实施步骤(安装elk前一定要规划好,marvel是对ELK的elasticsearch和kinaba有版本要求的) 【我的安装版本是】我的elasticsearch是rpm包安装的 Marvel 2.2.1 requires: Elasticsearch 2.2.1. Kibana 4.4.0. A modern web browser - Supported Browsers. 【步骤】 cd /usr/share/elasticsearch bin/plugin installfile:///path/to/file/license-2.2.1.zip bin/plugin installfile:///path/to/file/marvel-agent-2.2.1.zip bin/kibana plugin --install marvel --urlfile:///path/to/file/marvel-2.2.1.tar.gz 实际步骤:(主节点上含有kinaba的节点操作) cd /usr/share/elasticsearch/ 1 2 3 . /bin/plugin install file : ///data1/elk/license-2 .2.1.zip . /bin/plugin install file : ///data1/elk/marvel-agent-2 .2.1.zip . /data1/elk/kibana/bin/kibana plugin-- install marvel--url file : ///data1/elk/marvel-2 .2.1. tar .gz 实际步骤:(其他ES节点上的操作) 1 2 . /bin/plugin install file : ///data1/elk/license-2 .2.1.zip . /bin/plugin install file : ///data1/elk/marvel-agent-2 .2.1.zip 安装成功后: 重启kinaba ES的各个节点都要重启 /etc/init.d/elasticsearch restart 【结果】 【安装过程中可能遇到的错误及解决方法】 1版本不对 解决方法,参考官网安装对于适合marvel的ELK版本 2 没有任何数据,解决方法,你没有重启elasticsearch 和其他所有节点的elasticsearch 本文转自残剑博客51CTO博客,原文链接http://blog.51cto.com/cuidehua/1774052如需转载请自行联系原作者 cuizhiliang

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cassandra的全文检索插件

https://github.com/Stratio/cassandra-lucene-index Stratio’s Cassandra Lucene Index Stratio’s Cassandra Lucene Index, derived fromStratio Cassandra, is a plugin forApache Cassandrathat extends its index functionality to provide near real time search such as ElasticSearch or Solr, includingfull text searchcapabilities and free multivariable, geospatial and bitemporal search. It is achieved through anApache Lucenebased implementation of Cassandra secondary indexes, where each node of the cluster indexes its own data. Stratio’s Cassandra indexes are one of the core modules on whichStratio’s BigData platformis based. Indexrelevance searchesallow you to retrieve thenmore relevant results satisfying a search. The coordinator node sends the search to each node in the cluster, each node returns itsnbest results and then the coordinator combines these partial results and gives you thenbest of them, avoiding full scan. You can also base the sorting in a combination of fields. Any cell in the tables can be indexed, including those in the primary key as well as collections. Wide rows are also supported. You can scan token/key ranges, apply additional CQL3 clauses and page on the filtered results. Index filtered searches are a powerful help when analyzing the data stored in Cassandra withMapReduceframeworks asApache Hadoopor, even better,Apache Spark. Adding Lucene filters in the jobs input can dramatically reduce the amount of data to be processed, avoiding full scan. The following benchmark result can give you an idea about the expected performance when combining Lucene indexes with Spark. We do successive queries requesting from the 1% to 100% of the stored data. We can see a high performance for the index for the queries requesting strongly filtered data. However, the performance decays in less restrictive queries. As the number of records returned by the query increases, we reach a point where the index becomes slower than the full scan. So, the decision to use indexes in your Spark jobs depends on the query selectivity. The trade-off between both approaches depends on the particular use case. Generally, combining Lucene indexes with Spark is recommended for jobs retrieving no more than the 25% of the stored data. This project is not intended to replace Apache Cassandra denormalized tables, inverted indexes, and/or secondary indexes. It is just a tool to perform some kind of queries which are really hard to be addressed using Apache Cassandra out of the box features, filling the gap between real-time and analytics. More detailed information is available atStratio’s Cassandra Lucene Index documentation. Features Lucene search technology integration into Cassandra provides: Stratio’s Cassandra Lucene Index and its integration with Lucene search technology provides: Full text search (language-aware analysis, wildcard, fuzzy, regexp) Boolean search (and, or, not) Sorting by relevance, column value, and distance Geospatial indexing (points, lines, polygons and their multiparts) Geospatial transformations (bounding box, buffer, centroid, convex hull, union, difference, intersection) Geospatial operations (intersects, contains, is within) Bitemporal search (valid and transaction time durations) CQL complex types (list, set, map, tuple and UDT) CQL user defined functions (UDF) CQL paging, even with sorted searches Columns with TTL Third-party CQL-based drivers compatibility Spark and Hadoop compatibility Not yet supported: Thrift API Legacy compact storage option Indexingcountercolumns Indexing static columns Other partitioners than Murmur3 Requirements Cassandra (identified by the three first numbers of the plugin version) Java >= 1.8 (OpenJDK and Sun have been tested) Maven >= 3.0 本文转自张昺华-sky博客园博客,原文链接:http://www.cnblogs.com/bonelee/p/6757830.html,如需转载请自行联系原作者

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