Analytics helps us make better decisions and streaming analytics helps us make better decisions faster. Any time you are dealing with scenarios where data is coming to you fast and furious like IoT, app logs, web traffic, social media, well almost anything, streaming analytics can add real value. Given that and the fact that we just launched the new version of the SAS Event Stream Processing (ESP as we call it) free trial, it shouldn’t require any analytics to make a quick decision to give it a try.
This article provides a quick overview of the 30-day free trial of SAS Event Stream Processing. Highlights include drag-and-drop interfaces for Studio and Streamviewer.
SAS ESP is a Streaming Analytics platform that can analyze fast-moving data (up to millions of events / second), detecting patterns of interest as they occur and thus supporting real-time decision making.
For starters, it’s easy to get your trial. You start at www.sas.com/esp and hit the “Get free trial” button, logon with a SAS profile or create one and in a couple of minutes you should be ready to go. You should be receiving two emails, the second one has a link for a tenant created on our SAS Analytics Cloud just for YOU!
Once you log in, you will see a main SAS Event Stream Processing tile under the “Apps” menu option on the left:
This right here is a pretty useful tile as the three dots on the right have links to the following supporting tasks:
The “Data” menu option on the left provides visibility to data usage for the tenant – each starts with 75 GB of storage allowing you to upload your own data as you begin to experiment.
The “Team” option is for managing the team of folks whom you may want to participate in this trial along with you. You can invite up to four more people. Each team gets a tenant shared by the users in the team.
Clicking on the main tile starts the journey and shows you three options to choose from:
For each of these environments, we’ve included pre-built scenarios. They represent some basic concepts of building out “streaming analytics projects” and a sprinkling of some simple use cases across different industry verticals. Below is a sneak peek into some use case examples:
ESPPy (Python interface) based
Smart Infrastructure |
Anomaly detection in Floodlights in a parking lot based on energy consumption |
Connected Vehicle |
Geo-fencing based real-time alerts for a connected car |
Image Analytics |
Real-time detection of object of interest in an image |
Retail |
Sentiment analysis on Product reviews |
ESP Studio (UI drag-and-drop) based
Smart Infrastructure |
Anomaly detection in Floodlights in a parking lot based on energy consumption |
Healthcare |
Minimizing false positives |
Industrial |
Using Vibration data to identify emerging issues with a rotary motor |
Retail |
Identify shelf inventory conditions such as stock-outs using Computer Vision |
Utilities |
Anomaly detection on a smart grid |
You can use these examples just to get familiar with the type of use cases streaming analytics can be applied to or enhance/edit as needed to make them your own – all the necessary ingredients like the datasets, the analytics files are accessible from the trial environment.
The idea behind each of these examples is to present a common use case and illustrate the power of streaming analytics to shift the decision making towards “real-time.”
Now it’s over to you to explore where you can apply faster decisioning in your organizations! Get your 30-day trial of SAS Event Stream Processing.
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