实时分析
为交互式应用和仪表盘提供动力,实时分析并聚合海量数据。复杂的内部分析只需毫秒级即可完成,而非数分钟或数小时。
全球众多公司依靠 ClickHouse 每天处理数百亿条新增事件。
解锁更快的查询速度与更强的并发处理能力。无论数据量多大,皆可应对。
为交互式应用和仪表盘提供动力,实时分析并聚合海量数据。复杂的内部分析只需毫秒级即可完成,而非数分钟或数小时。
全球众多公司依靠 ClickHouse 每天处理数百亿条新增事件。
放心监控您的日志、事件、追踪及其他时间序列数据。检测异常、欺诈、网络或基础设施问题等。
作为值得信赖的基于 SQL 的可观测性存储,被大规模用于每秒摄取数百万条记录。
以交互方式多维切分数据,用于分析、报表和构建内部应用。帮助您更好地了解业务使用情况、用户行为、广告效果、市场动态等。将工作负载从传统数据仓库和数据湖中卸载,实现大规模场景下的速度与效率。
执行快速高效的向量搜索。即插即用地接入任意提供商的生成式 AI 模型。借助极速聚合,为 PB 级模型训练提供动力。
您的机器学习工作负载的中央数据存储。
ClickHouse 擅长承载同时基于实时数据与历史数据运行的工作负载。
相比之下,传统数据仓库和事务型数据库在性能与成本效益方面难以满足大规模分析工作负载的需求。
借助 ClickHouse,您能以极低的成本获得无与伦比的性能和数据可视化能力。
2x
查询更快
38%
压缩率提升
3-5x
成本降低
"Over time, those queries had become painfully slow in Snowflake and Postgres. Some took over a minute. Others timed out entirely...The payoff [of migrating to ClickHouse] came right away. Queries that once failed now ran in six seconds, with no caching required."
1000x
查询更快
-50%
磁盘空间
5x
成本节约
"It is instant in ClickHouse vs forever in Postgres."
10x
性能更强
30x
压缩比
10x
运营成本降低
"We simply don't want the hassle of trying to figure out in advance how many BQ slots to purchase - what a headache!"
5x
查询性能
75%
成本降低
20x
并发能力
"Moving over to ClickHouse we were basically able to cut that (Redshift) bill in half."
When we moved into the LLM observability and analytics space, we decided to back LangSmith with ClickHouse instead of Postgres. Ankush, CTO of LangChain
ClickHouse helps us efficiently and reliably analyze logs across trillions of Internet requests to identify malicious traffic and provide customers with rich analytics.
Now, our customers can search through months of browser and server-side log data in under a second thanks to the tech behind ClickHouse.
ClickHouse was perfect as Big Data Storage for our ML models
We store approximately 3 billion events (rows) per day at a rate of approximately 2 million events per minute. We also have to serve some pretty complex data visualizations that depend heavily on filtering very large amounts of data and calculating complex aggregations in a reasonably fast time frame for the sake of the user experience.
At Sony Entertainment Television, we ingest tens of millions of CDN records into ClickHouse Cloud and run millions of queries against them daily. This allows our operations team to monitor the delivery of our content in real-time, and analyze/investigate potential issues the moment they arise. ClickHouse Cloud has helped us to optimize costs and ensure the high availability and resilience of our services.
QRadar Log Insights uses a modern open-source OLAP data warehouse, ClickHouse, which ingests, automatically indexes, searches and analyzes large datasets at sub-second speed. You get near real-time visibility and insights from your ingested data.
The platform is ingesting millions of logs per second from thousands of services across regions, storing several PBs worth, and serving hundreds of queries per second from both dashboards and programs.
ClickHouse is a fast and highly performant analytical database, widely used across Instacart to power other use-cases such as critical retailer and ads dashboards, calculating results for A/B testing, and machine learning signals.
We evaluated more than a dozen different big data systems before settling on ClickHouse.
ClickHouse’s performance exceeds all other column-oriented database management systems.
We collect tens of thousands of data points from customers’ phones and other more traditional sources. ClickHouse is used as a way to process all of these SMS messages and extract valuable information used for the scoring and fraud models.
Moving from Elasticsearch to ClickHouse was a long journey, but this is one of the best tech decisions we ever took.
At Lyft, we ingest tens of millions of rows and execute millions of read queries in ClickHouse daily with volume continuing to increase. On a monthly basis, this means reading and writing more than 25TB of data.
Cognitiv uses ClickHouse to power their ML offline feature store for its blazing speed and resource efficiency.
“Training these models requires immense computational power and the ability to handle and analyze vast quantities of data quickly and efficiently.
As a smaller company with large datasets, cost is important to us,” explains Jason from Cognitiv. “ClickHouse is fast, but its real value is in letting us better utilize our resources. Basically, we don’t need to spend as much money to solve the same problem.”
“By utilizing expert models and embeddings, we detect substantive changes in web pages and identify connections between pages that share similar characteristics.”
ClickHouse has proved to be a game-changer, propelling us towards greater efficiency and effectiveness in managing our data infrastructure.
Ved Surtani, VP, Engineering, Platform & Architecture at Tekion
We had a billion rows to store...
Adopting ClickHouse has enhanced our data analytics capabilities, supporting the growing demands of our internal teams efficiently and cost-effectively. Frank Chen, Expert OLAP Engineer at Shopee
Switching to a Kafka and ClickHouse-based architecture simplified our operations and reduced costs by enhancing performance and enabling real-time, large-scale data processing
We have saved costs, savings not to be sniffed at, but that was not the driving factor. This was a qualitative step. We just could not do the things we wanted until we had ClickHouse and that is why we’re so excited about it.
In the post-evaluation of each database against our criteria (with metrics ranging from query performance to cost), ClickHouse emerged as the unrivaled frontrunner. It excelled across the board, even astonishingly so in certain domains, and proved more cost-efficient.
With ClickHouse, the data pipeline logic is simplified, and is only dealing with the “streaming” aspect of the write as opposed to all of these complexities. ClickHouse thus enables a simpler write design pattern just like any other new age data lake systems like Hudi etc. but with a more simplistic developer experience.
At DeepL, we use ClickHouse as our central data warehouse.
Best technical decision we ever made
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