Azure Anomaly Detector vs. IBM Streams (discontinued)

Overview
ProductRatingMost Used ByProduct SummaryStarting Price
Azure Anomaly Detector
Score 8.9 out of 10
N/A
Anomaly Detector on Microsoft's Azure is an AI service that helps foresee problems. Users can embed time-series anomaly detection capabilities into apps to help users identify problems quickly. Anomaly Detector ingests time-series data of all types and selects the best anomaly detection algorithm for the data to support high accuracy. Detect spikes, dips, deviations from cyclic patterns, and trend changes through both univariate and multivariate APIs. The service can be customized to detect any…N/A
IBM Streams (discontinued)
Score 9.0 out of 10
N/A
A real-time analytics solution that turns fast-moving volumes and varieties into insights. Streams evaluates a broad range of streaming data — unstructured text, video, audio, geospatial and sensor. The product was sunsetted in 2024.N/A
Pricing
Azure Anomaly DetectorIBM Streams (discontinued)
Editions & Modules
No answers on this topic
No answers on this topic
Offerings
Pricing Offerings
Azure Anomaly DetectorIBM Streams (discontinued)
Free Trial
YesNo
Free/Freemium Version
NoNo
Premium Consulting/Integration Services
NoNo
Entry-level Setup FeeNo setup feeNo setup fee
Additional Details
More Pricing Information
Community Pulse
Azure Anomaly DetectorIBM Streams (discontinued)
Features
Azure Anomaly DetectorIBM Streams (discontinued)
Streaming Analytics
Comparison of Streaming Analytics features of Product A and Product B
Azure Anomaly Detector
-
Ratings
IBM Streams (discontinued)
8.3
Ratings
3% above category average
Real-Time Data Analysis00 Ratings8.00 Ratings
Visualization Dashboards00 Ratings10.00 Ratings
Data Ingestion from Multiple Data Sources00 Ratings9.00 Ratings
Low Latency00 Ratings7.90 Ratings
Integrated Development Tools00 Ratings8.00 Ratings
Data wrangling and preparation00 Ratings8.00 Ratings
Linear Scale-Out00 Ratings7.70 Ratings
Machine Learning Automation00 Ratings9.00 Ratings
Data Enrichment00 Ratings7.00 Ratings
Best Alternatives
Azure Anomaly DetectorIBM Streams (discontinued)
Small Businesses
IBM Streams (discontinued)
IBM Streams (discontinued)
Score 9.0 out of 10
Amazon Kinesis
Amazon Kinesis
Score 9.7 out of 10
Medium-sized Companies
Confluent
Confluent
Score 9.9 out of 10
Confluent
Confluent
Score 9.9 out of 10
Enterprises
Spotfire Streaming
Spotfire Streaming
Score 6.6 out of 10
Spotfire Streaming
Spotfire Streaming
Score 6.6 out of 10
All AlternativesView all alternativesView all alternatives
User Ratings
Azure Anomaly DetectorIBM Streams (discontinued)
Likelihood to Recommend
-
(0 ratings)
9.0
(0 ratings)
User Testimonials
Azure Anomaly DetectorIBM Streams (discontinued)
Likelihood to Recommend
No answers on this topic
Streams is a good fit for situations requiring low end-to-end latency, have complex real-time analytical processing needs on large fast data, or where the reduction of operational costs is important. However, it is very much a data-in-motion technology and not well suited for situations such as some forms of machine learning where the entire historical data set needs to be operated on. Note that it's fairly common to use Streams to perform online scoring using models that were trained offline using other technologies.
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Pros
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  • Query analysis of real time streaming data
  • Filter out events based on time windows
  • Scalability for large scale data, production tested
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Cons
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  • Documentation could be more extensive, with more examples, although overall this is not too bad compared to some of the alternative solutions.
  • Seems expensive to use in production.
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Alternatives Considered
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We are using Spark streaming as well as Storm for streaming options. Currently streams provides a better way of building applications easier faster and run efficiently. Also like the flexibility it provides with both us and SPL.
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Return on Investment
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  • Ability to do more with less
  • Admins and data analyst can now focus on more thinking tasks
  • No negative impacts yet
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ScreenShots