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    Overview
    ProductRatingMost Used ByProduct SummaryStarting Price

    Tableau Public

    Score9.9 out of 10
    N/ATableau Public is a free edition of the Desktop product. With this edition, data can only be published to the Tableau public website and does not allow work to be saved or exported locally.

    $0

    per month

    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
    Pricing
    Tableau PublicTensorFlow
    Editions & Modules
    No answers on this topic
    No answers on this topic
    Offerings
    Pricing Offerings
    Tableau PublicTensorFlow
    Free Trial
    NoNo
    Free/Freemium Version
    YesNo
    Premium Consulting/Integration Services
    NoNo
    Entry-level Setup FeeNo setup feeNo setup fee
    Additional Details——
    More Pricing Information
    Features
    Tableau PublicTensorFlow
    BI Standard Reporting
    Comparison of BI Standard Reporting features of Tableau Public and TensorFlow
    Feature
    Tableau Public
    9.8
    12 Ratings
    19% above category average
    TensorFlow
    -
    Ratings
    Pixel Perfect reports9.710 Ratings00 Ratings
    Customizable dashboards10.012 Ratings00 Ratings
    Report Formatting Templates9.712 Ratings00 Ratings
    Ad-hoc Reporting
    Comparison of Ad-hoc Reporting features of Tableau Public and TensorFlow
    Feature
    Tableau Public
    9.7
    12 Ratings
    21% above category average
    TensorFlow
    -
    Ratings
    Drill-down analysis9.812 Ratings00 Ratings
    Formatting capabilities9.712 Ratings00 Ratings
    Integration with R or other statistical packages9.59 Ratings00 Ratings
    Report sharing and collaboration9.811 Ratings00 Ratings
    Report Output and Scheduling
    Comparison of Report Output and Scheduling features of Tableau Public and TensorFlow
    Feature
    Tableau Public
    9.5
    11 Ratings
    15% above category average
    TensorFlow
    -
    Ratings
    Publish to Web10.011 Ratings00 Ratings
    Publish to PDF10.09 Ratings00 Ratings
    Report Versioning9.89 Ratings00 Ratings
    Report Delivery Scheduling9.69 Ratings00 Ratings
    Delivery to Remote Servers8.17 Ratings00 Ratings
    Data Discovery and Visualization
    Comparison of Data Discovery and Visualization features of Tableau Public and TensorFlow
    Feature
    Tableau Public
    9.8
    11 Ratings
    23% above category average
    TensorFlow
    -
    Ratings
    Pre-built visualization formats (heatmaps, scatter plots etc.)9.811 Ratings00 Ratings
    Location Analytics / Geographic Visualization9.811 Ratings00 Ratings
    Predictive Analytics9.79 Ratings00 Ratings
    Best Alternatives
    Tableau PublicTensorFlow
    Small Businesses
    Chartio (discontinued)
    Score7.5 out of 10
    Google Cloud AI
    Score8.7 out of 10
    Medium-sized Companies
    Jet Reports
    Score9.5 out of 10
    Google Cloud AI
    Score8.7 out of 10
    Enterprises
    Kibana
    Score8.4 out of 10
    Google Cloud AI
    Score8.7 out of 10
    All AlternativesView all alternativesView all alternatives
    User Ratings
    Tableau PublicTensorFlow
    Likelihood to Recommend
    8.5
    (14 ratings)
    6.0
    (15 ratings)
    Likelihood to Renew
    9.1
    (2 ratings)
    -
    (0 ratings)
    Usability
    10.0
    (5 ratings)
    9.0
    (1 ratings)
    Support Rating
    9.6
    (6 ratings)
    9.1
    (2 ratings)
    Online Training
    9.0
    (1 ratings)
    -
    (0 ratings)
    Implementation Rating
    9.1
    (2 ratings)
    8.0
    (1 ratings)
    Data Sharing and Collaboration
    8.2
    (9 ratings)
    -
    (0 ratings)
    Data Sources
    8.8
    (9 ratings)
    -
    (0 ratings)
    User Testimonials
    Tableau PublicTensorFlow
    Likelihood to Recommend
    Tableau
    Tableau public is the best platform to build dashboards for your personal profile and share with recruiters. It's always good to keep ourselves updated on the latest features, create sample dashboards and save them to a personal profile. Tableau public is free and doesn't need any subscription. anyone can create an account and start building reports.
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    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).
    Incentivized
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    Pros
    Tableau
    • Data visualization: lots of different options, including bar, scatter, pie, waterfall charts to explore relationships between variables, and to present findings/trends to different teams
    • Integrates readily with limited, though different data sources: TXT, CSV, TDE, Access
    • Exports reports for review of different dashboards: client-ready/team-ready, with a clean and tidy presentation in PDF format (or hardcopy)
    Incentivized
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    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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    Cons
    Tableau
    • Tableau Public (both Desktop and Server) like their "for a fee" counterparts offer very easy to learn and use tools to transform data into pictures and gain insights into your data. Most organizations report a reduction in development time of 10x vs. other similar tools, due to the intuitive user interface. That said, with Tableau Public, published workbooks are "disconnected" from the underlying data sources and require periodic updates when the data changes. Users are limited to 1 Gb of storage space per user ID and password as well.
    • I would like to see better options for public sharing of visualizations and data from within the "for a fee" products as more and more organizations are moving in the direction of data sharing with partners and their communities.
    Incentivized
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    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.
    Read full review
    Likelihood to Renew
    Tableau
    It's free, right? I'll keep using the free version. So the real question to ask is this? Will I pay $999 for the Personal version or $1,999 for the Professional? Yikes! That is a big stretch. I'm not sure about that. The product comparison chart is at: http://www.tableausoftware.com/public/comparison
    Read full review
    Open Source
    No answers on this topic
    Usability
    Tableau
    Tableau public is a great training tool to understand the basics of Tableau before buying it. A great tool to extend Excel's visualization and to publish data for others. Not useful for anything you need secure. No ability to access databases. Static information only.
    Read full review
    Open Source
    Support of multiple components and ease of development.
    Incentivized
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    Support Rating
    Tableau
    I have not yet required to contact support as the documentation and help i found online has always worked so far
    Incentivized
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    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.
    Incentivized
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    Online Training
    Tableau
    I found it sufficient, and fast. I could easily "kick the tires" with Tableau on my data so I got up and running fast.
    Read full review
    Open Source
    No answers on this topic
    Implementation Rating
    Tableau
    Start at the end and work backward. Identify the business case / issue and questions the end users have, then identify the data needed, and where to get it.
    Incentivized
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    Open Source
    Use of cloud for better execution power is recommended.
    Incentivized
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    Alternatives Considered
    Tableau
    Google Charts/Drive is sufficient for simpler data sets, but it does not integrate with other web platforms and the visualization does not look as professional. I'm not aware of any other competitors that offer the same package as Microsoft.
    Incentivized
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    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
    Incentivized
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    Return on Investment
    Tableau
    • Tableau Public visualizations have helped drive traffic to our content and sites
    • The lack of cost means it's easy to demonstrate our experience to attract paying clients
    Incentivized
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    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.
    Incentivized
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    ScreenShots