Best IoT Database       
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     Scalable Storage      Scales instantly on demand and handles big data volumes
     Scalable Writes      Writes data simultaneously with an all-master architecture
     Scalable Reads      Fast indexed search and range searches in space and time

Horizontal scaling means adding more servers in a data cloud to accommodate steady or accelerated growth of data that an enterprise generates or collects. It is considered the highest priority in selecting a database system in today's data platform and cloud environment. Traditionally, in the process of horizontal scaling, large amounts of data are moved among computer servers. It is slow and risky. It is considered the horrifying nightmare of distributed data systems. JaguarDB has overcome this challenge with an innovative solution. With JaguarDB, a database cluster can scale horizontally to any size instantly.



With JaguarDB, users can create tables and time tick tables optimized for time series data analysis. Not only fast data ingestion is achieved, but also data are aggregated automatically according to user-defined multiple time windows represented as tick tables. For example, a user can create tick tables for every 15 seconds, 60 seconds, 5 minutes, 15 minutes, 1 hour, 1 day, 10 days, 3 months, and 1 year. When the user wants to retrieve the aggregated data (including sum, average, minimum, maximum, etc.) of some columns, one select query is enough to get the data with only a point query. No table scan for calculation is required. Realtime analysis of time series data is extremely fast in JaguarDB. Multiple indexes can also be automatically built for fast query of various data columns.

In other databases that support geo-location data, only one tag data is supported at a location. In JaguarDB, unlimited number of tags are supported for tracking all types of data at a location and at all locations. Other databases support 6 geospatial shapes (e.g. point, line, polygon) while JaguarDB supports 18 geospatial shapes (e.g. line, polygon, circle, square, rectangle, cube, sphere, ellipse, triangle, ellipsoid, etc). Spatial relationship (e.g. distance, within, intersect, etc) are easily obtained by using a simplistic query statement. Indexing of spatial data and metrics data are integrated for all applications using geolocation data.

In typical IoT applications, time series data and geolocation data are inherently combined. All events generated by mobile objects, sensors, and devices contain both time and location. JaguarDB stores time series data and location data in one database or in one table so that data locality is maximized for fast data retrieval.

Keep in mind, in additon to all the above advangtages, JaguarDB stores all data in a distributed architecture so that it ensures high scalability for large volumes of data. At anytime on demand, JaguarDB can be scaled out instantly to any number of nodes.


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