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Elasticsearch is a popular distributed full-text search engine. By centrally storing data, you can perform ultra-fast searches, fine-tuning relevance, and powerful analytics with ease. Elasticsearch has a pipeline tool for loading data called "Logstash". You can use CData JDBC Drivers to easily import data from any data source into Elasticsearch for search and analysis.
This article explains how to use the CData JDBC Driver for Spark to load data from Spark into Elasticsearch via Logstash.
Now, let's create a configuration file for Logstash to transfer Spark data to Elasticsearch.
Set the Server, Database, User, and Password connection properties to connect to SparkSQL.
Now let's run Logstash using the created "logstash.conf" file.
logstash-7.8.0\bin\logstash -f logstash.conf
A log indicating success will appear. This means the Spark data has been loaded into Elasticsearch.
For example, let's view the data transferred to Elasticsearch in Kibana.
GET sparksql_table/_search
{
"query": {
"match_all": {}
}
}
👁 Querying the Spark data loaded into ElasticsearchWe have confirmed that the data is stored in Elasticsearch.
👁 Confirming the Spark data loaded into ElasticsearchBy using the CData JDBC Driver for Spark with Logstash, it functions as a Spark connector, making it easy to load data into Elasticsearch. Please try the 30-day free trial.
Download a free trial of the Apache Spark Driver to get started:
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