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    Overview
    ProductRatingMost Used ByProduct SummaryStarting Price

    TensorFlow

    Score7.6 out of 10
    N/ATensorFlow is an open-source machine learning software library for numerical computation using data flow graphs. It was originally developed by Google.N/A

    Toad Data Point

    Score8.4 out of 10
    N/AToad Data Point is a cross-platform, self-service, data-integration tool that simplifies data access, preparation and provisioning. It provides data connectivity and desktop data integration, and with the Workbook interface for business users, it provides simple-to-use visual query building and workflow automation.

    $365

    Pricing
    TensorFlowToad Data Point
    Editions & Modules
    No answers on this topic
    Base Edition
    $365
    Pro Edition
    $528
    Offerings
    Pricing Offerings
    TensorFlowToad Data Point
    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
    TensorFlowToad Data Point
    Small Businesses
    Google Cloud AI
    Score8.7 out of 10
    No answers on this topic
    Medium-sized Companies
    Google Cloud AI
    Score8.7 out of 10
    AWS Glue
    Score8.8 out of 10
    Enterprises
    Google Cloud AI
    Score8.7 out of 10
    Datameer
    Score8.4 out of 10
    All AlternativesView all alternativesView all alternatives
    User Ratings
    TensorFlowToad Data Point
    Likelihood to Recommend
    6.0
    (15 ratings)
    7.0
    (10 ratings)
    Usability
    9.0
    (1 ratings)
    10.0
    (2 ratings)
    Support Rating
    9.1
    (2 ratings)
    -
    (0 ratings)
    Implementation Rating
    8.0
    (1 ratings)
    -
    (0 ratings)
    Data Sharing and Collaboration
    -
    (0 ratings)
    7.9
    (9 ratings)
    Data Sources
    -
    (0 ratings)
    9.8
    (9 ratings)
    User Testimonials
    TensorFlowToad Data Point
    Likelihood to Recommend
    Open Source
    TensorFlow is great for most deep learning purposes. This is especially true in two domains: 1. Computer vision: image classification, object detection and image generation via generative adversarial networks 2. Natural language processing: text classification and generation. The good community support often means that a lot of off-the-shelf models can be used to prove a concept or test an idea quickly. That, and Google's promotion of Colab means that ideas can be shared quite freely. Training, visualizing and debugging models is very easy in TensorFlow, compared to other platforms (especially the good old Caffe days). In terms of productionizing, it's a bit of a mixed bag. In our case, most of our feature building is performed via Apache Spark. This means having to convert Parquet (columnar optimized) files to a TensorFlow friendly format i.e., protobufs. The lack of good JVM bindings mean that our projects end up being a mix of Python and Scala. This makes it hard to reuse some of the tooling and support we wrote in Scala. This is where MXNet shines better (though its Scala API could do with more work).
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    Quest Software
    Appropriate for general querying and some DBA work. It's the universal least-offensive solution for most environments - not best of breed, but not subject to unusual/extensive requirements. It just works. On the other hand, some functionality (e.g. data import/export, snippets) are perfunctory and minimal and seem to be either difficult or impossible to automate. If you need to streamline those operations, you'll be forced to rely on third-party solutions that mostly work on top of (instead of with) TOAD.
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    Pros
    Open Source
    • A vast library of functions for all kinds of tasks - Text, Images, Tabular, Video etc.
    • Amazing community helps developers obtain knowledge faster and get unblocked in this active development space.
    • Integration of high-level libraries like Keras and Estimators make it really simple for a beginner to get started with neural network based models.
    Incentivized
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    Quest Software
    • Export data into excel.
    • Export data into excel using a pivot table functionality.
    • Navigation between windows is intuitive and easy to understand.
    • Good for SQL novices and experts alike.
    Incentivized
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    Cons
    Open Source
    • RNNs are still a bit lacking, compared to Theano.
    • Cannot handle sequence inputs
    • Theano is perhaps a bit faster and eats up less memory than TensorFlow on a given GPU, perhaps due to element-wise ops. Tensorflow wins for multi-GPU and “compilation” time.
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    Quest Software
    • The workflow is a relatively new feature. Quest is adding additional functionality and the workflows are useful now.
    • Would be nice if the 'Automate' feature was a bit easier to use.
    • Would be nice if some of the SQL Editor features in the traditional interface worked better in the new workflow interface (although, these are being fixed with each release).
    • Would be nice if there were fewer releases.
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    Usability
    Open Source
    Support of multiple components and ease of development.
    Incentivized
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    Quest Software
    I find Toad Data Point easy to use for both the novice and the experienced business analyst. If all you desire is to access data and create spreadsheets...this is a snap. Toad Data Point actually has cool data analysis features built into it. The newer workflow interface makes automating steps a snap
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    Support Rating
    Open Source
    Community support for TensorFlow is great. There's a huge community that truly loves the platform and there are many examples of development in TensorFlow. Often, when a new good technique is published, there will be a TensorFlow implementation not long after. This makes it quick to ally the latest techniques from academia straight to production-grade systems. Tooling around TensorFlow is also good. TensorBoard has been such a useful tool, I can't imagine how hard it would be to debug a deep neural network gone wrong without TensorBoard.
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    Quest Software
    No answers on this topic
    Implementation Rating
    Open Source
    Use of cloud for better execution power is recommended.
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    Quest Software
    No answers on this topic
    Alternatives Considered
    Open Source
    Keras is built on top of TensorFlow, but it is much simpler to use and more Python style friendly, so if you don't want to focus on too many details or control and not focus on some advanced features, Keras is one of the best options, but as far as if you want to dig into more, for sure TensorFlow is the right choice
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    Quest Software
    Although Toad and UltraEdit are both great products, from an SQL standpoint Toad is a much better editor and troubleshooter.
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    Return on Investment
    Open Source
    • Learning is s bit difficult takes lot of time.
    • Developing or implementing the whole neural network is time consuming with this, as you have to write everything.
    • Once you have learned this, it make your job very easy of getting the good result.
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    Quest Software
    • It is the least common denominator - not particularly optimized for our environment or workflows.
    • Hangs or slowdowns add anywhere from 5% - 7% for projects utilizing large/complicated data setts. (This could be due to other IT-imposed constraints and not entirely due to TOAD.)
    • Trying to perform some operations requires reading documentation and experimenting in order to figure out the TOAD-specific approaches and commands.
    • It just works (when we understand it). Updates don't break things and things don't suddenly start behaving differently. Best of all, we don't mysteriously lose functionality.
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