Cohere vs. H2O.ai

Overview
ProductRatingMost Used ByProduct SummaryStarting Price
Cohere
Score 0.0 out of 10
N/A
Cohere's language models helps businesses explore, generate, search for, and act upon information. Cohere can be used to power an enterprise chat agent that answers questions grounded in company knowledge, and that can take actions and drive processes. Or Cohere's multilingual embedding model enables semantic search, classification and sentiment analysis across 109 languages.N/A
H2O.ai
Score 6.4 out of 10
N/A
An open-source end-to-end GenAI platform for air-gapped, on-premises or cloud VPC deployments. Users can Query and summarize documents or just chat with local private GPT LLMs using h2oGPT, an Apache V2 open-source project. And the commercially available Enterprise h2oGPTe provides information retrieval on internal data, privately hosts LLMs, and secures data.N/A
Pricing
CohereH2O.ai
Editions & Modules
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Offerings
Pricing Offerings
CohereH2O.ai
Free Trial
NoNo
Free/Freemium Version
NoYes
Premium Consulting/Integration Services
NoNo
Entry-level Setup FeeNo setup feeNo setup fee
Additional Details
More Pricing Information
Community Pulse
CohereH2O.ai
Considered Both Products
Cohere

No answer on this topic

H2O.ai
Chose H2O.ai
I have used Knime, RapidMiner, and Weka before I heard about H2O, but amongst all I really liked H2O. However, nowadays Googles AutoML and AWS SageMaker AutoML platform are really competitive, but more costly than H2O.
Chose H2O.ai
Both are open source (though H2O only up to some level). Both comprise of deep learning, but H2O is not focused directly on deep learning, while Tensor Flow has a "laser" focus on deep learning. H2O is also more focused on scalability. H2O should be looked at not as a …
Chose H2O.ai
H2O provided all the needed features such as Linear Modeling, Targeted Learning, Predictive Analytics including GLM, Trees, Neural networks and ensemble with ease. We are also able to pick and choose what we want without deploying all the bulky tools unlike others. Able to …
Best Alternatives
CohereH2O.ai
Small Businesses

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Medium-sized Companies

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Enterprises
Oracle Digital Assistant
Oracle Digital Assistant
Score 7.9 out of 10
Oracle Digital Assistant
Oracle Digital Assistant
Score 7.9 out of 10
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User Ratings
CohereH2O.ai
Likelihood to Recommend
-
(0 ratings)
8.1
(0 ratings)
Support Rating
-
(0 ratings)
9.0
(0 ratings)
User Testimonials
CohereH2O.ai
Likelihood to Recommend
No answers on this topic
Use H2O.ai whenever you need easy to use tool, when you must be cost efficient (you can not charge the client extra money for software licenses used), need a tool with lots of algorithms that are normally used in data analytics, or need to work on one machine (it is either not allowed to move data to cloud storage or simply not necessary to connect to Hadoop, etc.). Also, you can call H2O directly from Python which makes analysis more efficient.
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Pros
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  • AutoML
  • Bigdata support with H2O's Sparkling Water
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Cons
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  • No weaknesses found yet
  • This is not really a drawback, but rather a warning - the Drivereless AI is not a replacement for a data scientist yet, and will not replace data scientists in the next decade neither. The Driverless AI feature delivers reliable results only if the analyst is sure about the meaning of input data. The data quality is usually a major issue and no tool can detect the meaning of data in the input. Data scientists are also required for business interpretation of the findings. So be careful, and do not rely on this feature without a good understanding of what it really does in each step.
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Support Rating
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The overall experience I have with H2O is really awesome, even with its cost effectiveness.
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Alternatives Considered
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I have used Knime, RapidMiner, and Weka before I heard about H2O, but amongst all I really liked H2O. However, nowadays Googles AutoML and AWS SageMaker AutoML platform are really competitive, but more costly than H2O.
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Return on Investment
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  • Positive impact: saving in infrastructure expenses - compared to other bulky tools this costs a fraction
  • Positive impact: ability to get quick fixes from H2O when problems arise - compared to waiting for several months/years for new releases from other vendors
  • Positive impact: Access to H2O core team and able to get features that are needed for our business quickly added to the core H2O product
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