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Caffe Deep Learning Framework vs. Vertica Analytics Database

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    Overview
    ProductRatingMost Used ByProduct SummaryStarting Price

    Caffe Deep Learning Framework

    Score7 out of 10
    N/ACaffe is a deep learning framework made with expression, speed, and modularity in mind. It is developed by Berkeley AI Research and by community contributors.N/A

    Vertica Analytics Database

    Score10 out of 10
    N/AThe Vertica Analytics Platform supplies enterprise data warehouses with big data analytics capabilities and modernization. Vertica was acquired and supported by OpenText, then sold to Rocket Software in 2026.N/A
    Pricing
    Caffe Deep Learning FrameworkVertica Analytics Database
    Editions & Modules
    No answers on this topic
    No answers on this topic
    Offerings
    Pricing Offerings
    Caffe Deep Learning FrameworkVertica Analytics Database
    Free Trial
    NoNo
    Free/Freemium Version
    NoNo
    Premium Consulting/Integration Services
    NoNo
    Entry-level Setup FeeNo setup feeNo setup fee
    Additional Details——
    More Pricing Information
    Best Alternatives
    Caffe Deep Learning FrameworkVertica Analytics Database
    Small Businesses
    TensorFlow
    Score7.6 out of 10
    No answers on this topic
    Medium-sized Companies
    Google Cloud AI
    Score8.7 out of 10
    Snowflake
    Score8.7 out of 10
    Enterprises
    Google Cloud AI
    Score8.7 out of 10
    Snowflake
    Score8.7 out of 10
    All AlternativesView all alternativesView all alternatives
    User Ratings
    Caffe Deep Learning FrameworkVertica Analytics Database
    Likelihood to Recommend
    4.0
    (1 ratings)
    8.0
    (7 ratings)
    Support Rating
    -
    (0 ratings)
    7.9
    (2 ratings)
    User Testimonials
    Caffe Deep Learning FrameworkVertica Analytics Database
    Likelihood to Recommend
    Open Source
    Caffe is only appropriate for some new beginners who don't want to write any lines of code, just want to use existing models for image recognition, or have some taste of the so-called Deep Learning.
    Incentivized
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    Rocket Software
    Vertica as a data warehouse to deliver analytics in-house and even to your client base on scale is not rivaled anywhere in the market. Frankly, in my experience it is not even close to equaled. Because it is such a powerful data warehouse, some people attempt to use it as a transactional database. It certainly is not one of those. Individual row inserts are slow and do not perform well. Deletes are a whole other story. RDBMS it is definitely not. OLAP it rocks.
    Incentivized
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    Pros
    Open Source
    • Caffe is good for traditional image-based CNN as this was its original purpose.
    Incentivized
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    Rocket Software
    • Extremely fast query performance - Vertica is one of the fastest query engines out there.
    • Scales to TBs - Scales reasonably well up to 10-20 nodes and 10 - 100s of TB of data.
    • Easy to Use - Fairly easy to user, we made quite some headway with just 1 person running it for a while.
    Incentivized
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    Cons
    Open Source
    • Caffe's model definition - static configuration files are really painful. Maintaining big configuration files with so many parameters and details of many layers can be a really challenging task.
    • Besides imagine and vision (CNN), Caffe also gradually adds some other NN architecture support. It doesn't play well in a recurrent domain, so we have to say variety is a problem.
    • Caffe's deployment for production is not easy. The community support and project development all mean it is almost fading out of the market.
    • The learning curve is quite steep. Although TensorFlow's is not easy to master either, the reward for Caffe is much less than the TensorFlow can offer.
    Incentivized
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    Rocket Software
    • Could use some work on better integrating with cloud providers and open source technologies. For AWS you will find an AMI in the marketplace and recently a connector for loading data from S3 directly was created. With last release, integration with Kafka was added that can help.
    • Managing large workloads (concurrent queries) is a bit challenging.
    • Having a way to provide an estimate on the duration for currently executing queries / etc. can be helpful. Vertica provides some counters for the query execution engine that are helpful but some may find confusing.
    • Unloading data over JDBC is very slow. We've had to come up with alternatives based on vsql, etc. Not a very clean, official on how to unload data.
    Incentivized
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    Support Rating
    Open Source
    No answers on this topic
    Rocket Software
    I haven't had any recent opportunity to reach out to Vertica support. From what I remember, I believe whenever I reached out to them the experience was smooth.
    Incentivized
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    Alternatives Considered
    Open Source
    TensorFlow is kind of low-level API most suited for those developers who like to control the details, while Keras provides some kind of high-level API for those users who want to boost their project or experiment by reusing most of the existing architecture or models and the accumulated best practice. However, Caffe isn't like either of them so the position for the user is kind of embarrassing.
    Incentivized
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    Rocket Software
    Vertica performs well when the query has good stats and is tuned well. Options for GUI clients are ugly and outdated. IO optimized: it's a columnar store with no indexing structures to maintain like traditional databases. The indexing is achieved by storing the data sorted on disk, which itself is run transparently as a background process.
    Incentivized
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    Return on Investment
    Open Source
    • Since we stopped using Caffe before it can reach the production phase, there is no clear ROI that can be defined.
    Incentivized
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    Rocket Software
    • Positive impact on ROI by being able to get customer insights in real-time.
    • Positive ROI through reduced time to set-up and maintain Vertica instances.
    Incentivized
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