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What is Exasol?

A database designed with an in-memory, columnar structure and a Massively Parallel Processing (MPP) framework allows for the swift execution of queries on billions of records in just seconds. By distributing query loads across all nodes within a cluster, it provides linear scalability, which supports an increasing number of users while enabling advanced analytics capabilities. The combination of MPP architecture, in-memory processing, and columnar storage results in a system that is finely tuned for outstanding performance in data analytics. With various deployment models such as SaaS, cloud, on-premises, and hybrid, organizations can perform data analysis in a range of environments that suit their needs. The automatic query tuning feature not only lessens the required maintenance but also diminishes operational costs. Furthermore, the integration and performance efficiency of this database present enhanced capabilities at a cost significantly lower than traditional setups. Remarkably, innovative in-memory query processing has allowed a social networking firm to improve its performance, processing an astounding 10 billion data sets each year. This unified data repository, coupled with a high-speed processing engine, accelerates vital analytics, ultimately contributing to better patient outcomes and enhanced financial performance for the organization. Thus, organizations can harness this technology for more timely, data-driven decision-making, leading to greater success and a competitive edge in the market. Moreover, such advancements in technology are setting new benchmarks for efficiency and effectiveness in various industries.

What is Citus?

Citus enriches the widely appreciated Postgres experience by offering distributed table capabilities while being entirely open source. It now accommodates both schema-based and row-based sharding, ensuring compatibility with Postgres 16. You can effectively scale Postgres by distributing data and queries, starting with a single Citus node and smoothly incorporating additional nodes and rebalancing shards as your requirements grow. By leveraging parallelism, keeping a larger dataset in memory, boosting I/O bandwidth, and using columnar compression, query performance can be significantly enhanced, achieving speeds up to 300 times or even more. As an extension rather than a separate fork, Citus remains compatible with the latest Postgres versions, allowing you to leverage your existing SQL expertise and tools. Furthermore, it enables you to address infrastructure challenges by managing both transactional and analytical workloads within one database system. Available for free as open source, Citus allows for self-management while also inviting contributions to its development via GitHub. Transitioning your focus from database management to application development becomes easier as you run your applications on Citus within the Azure Cosmos DB for PostgreSQL environment, thus streamlining your workflow. This integration not only boosts efficiency but also empowers developers to harness the full potential of scalable, high-performance database solutions.

Media

Media

Integrations Supported

Astro by Astronomer
CONVAYR
DataClarity Unlimited Analytics
DataGrip
DbVisualizer
Emgage
Gravity Data
Onfinity ERP
Preset
Pyramid Analytics
Sqitch
TIMi
Zoho DataPrep

Integrations Supported

Algolia
Azure Cosmos DB
Fedora
GitHub
PostgreSQL
Salesloft
Ubuntu

API Availability

API Availability

Pricing Information

Pricing not provided

Pricing Information

$0.27 per hour
Free Version

Supported Platforms

SaaS
Mac

Supported Platforms

SaaS
On-Prem

Customer Service / Support

Web-Based Support

Customer Service / Support

Standard Support
24 Hour Support
Web-Based Support

Training Options

Documentation Hub

Training Options

Documentation Hub
Webinars
On-Site Training

Company Facts

Organization Name

Exasol

Company Location

Germany

Company Website

www.exasol.com

Company Facts

Organization Name

Citus Data

Company Location

United States

Company Website

www.citusdata.com

Categories and Features

Big Data

Data Cleansing
Data Visualization
Data Warehousing
High Volume Processing
No-Code Sandbox
Templates

In-Memory Databases

Not specified

OLAP Databases

Not specified

Categories and Features

Distributed Databases

Not specified

OLAP Databases

Not specified

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