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    Overview
    ProductRatingMost Used ByProduct SummaryStarting Price

    JMP

    Score9.8 out of 10
    N/AJMP® is statistical analysis software with capabilities that span from data access to advanced statistical techniques, with click of a button sharing. The software is interactive and visual, and statistically deep enough to allow users to see and explore data.

    $1,320

    per year per user

    Pentaho

    Score6 out of 10
    N/APentaho is a suite of open source business intelligence and analytics products, now offered and supported by Hitachi Data Systems since the June 2015 acquisition.N/A
    Pricing
    JMPPentaho
    Editions & Modules
    JMP
    $1320
    per year per user
    No answers on this topic
    Offerings
    Pricing Offerings
    JMPPentaho
    Free Trial
    YesNo
    Free/Freemium Version
    NoNo
    Premium Consulting/Integration Services
    NoNo
    Entry-level Setup FeeNo setup feeNo setup fee
    Additional DetailsBulk discounts available.—
    More Pricing Information
    Community Pulse
    JMPPentaho
    Considered Both Products
    JMP Statistical Discovery
    No answer on this topic
    Hitachi Vantara
    No answer on this topic
    Key User Insights
    Would buy again
    100%
    Would buy again
    9 Answers
    100%
    Would buy again
    5 Answers
    Delivers good value for the price
    100%
    Delivers good value for the price
    9 Answers
    100%
    Delivers good value for the price
    5 Answers
    Happy with the feature set
    89%
    Happy with the feature set
    8 Answers
    100%
    Happy with the feature set
    5 Answers
    Lived up to sales and marketing promises
    100%
    Lived up to sales and marketing promises
    6 Answers
    No answers on this topic
    Implementation went as expected
    100%
    Implementation went as expected
    6 Answers
    80%
    Implementation went as expected
    4 Answers
    Features
    JMPPentaho
    BI Standard Reporting
    Comparison of BI Standard Reporting features of JMP and Pentaho
    Feature
    JMP
    -
    Ratings
    Pentaho
    9.0
    20 Ratings
    10% above category average
    Pixel Perfect reports00 Ratings8.618 Ratings
    Customizable dashboards00 Ratings9.918 Ratings
    Report Formatting Templates00 Ratings8.718 Ratings
    Ad-hoc Reporting
    Comparison of Ad-hoc Reporting features of JMP and Pentaho
    Feature
    JMP
    -
    Ratings
    Pentaho
    8.7
    19 Ratings
    8% above category average
    Drill-down analysis00 Ratings7.618 Ratings
    Formatting capabilities00 Ratings8.319 Ratings
    Integration with R or other statistical packages00 Ratings9.312 Ratings
    Report sharing and collaboration00 Ratings9.717 Ratings
    Report Output and Scheduling
    Comparison of Report Output and Scheduling features of JMP and Pentaho
    Feature
    JMP
    -
    Ratings
    Pentaho
    9.7
    20 Ratings
    17% above category average
    Publish to Web00 Ratings9.618 Ratings
    Publish to PDF00 Ratings9.819 Ratings
    Report Versioning00 Ratings9.713 Ratings
    Report Delivery Scheduling00 Ratings9.917 Ratings
    Delivery to Remote Servers00 Ratings9.310 Ratings
    Data Discovery and Visualization
    Comparison of Data Discovery and Visualization features of JMP and Pentaho
    Feature
    JMP
    -
    Ratings
    Pentaho
    8.1
    17 Ratings
    1% above category average
    Pre-built visualization formats (heatmaps, scatter plots etc.)00 Ratings7.916 Ratings
    Location Analytics / Geographic Visualization00 Ratings8.216 Ratings
    Predictive Analytics00 Ratings8.314 Ratings
    Access Control and Security
    Comparison of Access Control and Security features of JMP and Pentaho
    Feature
    JMP
    -
    Ratings
    Pentaho
    9.1
    20 Ratings
    7% above category average
    Multi-User Support (named login)00 Ratings9.320 Ratings
    Role-Based Security Model00 Ratings9.619 Ratings
    Multiple Access Permission Levels (Create, Read, Delete)00 Ratings9.918 Ratings
    Single Sign-On (SSO)00 Ratings7.610 Ratings
    Mobile Capabilities
    Comparison of Mobile Capabilities features of JMP and Pentaho
    Feature
    JMP
    -
    Ratings
    Pentaho
    8.3
    11 Ratings
    7% above category average
    Responsive Design for Web Access00 Ratings9.710 Ratings
    Mobile Application00 Ratings6.97 Ratings
    Dashboard / Report / Visualization Interactivity on Mobile00 Ratings8.711 Ratings
    Application Program Interfaces (APIs) / Embedding
    Comparison of Application Program Interfaces (APIs) / Embedding features of JMP and Pentaho
    Feature
    JMP
    -
    Ratings
    Pentaho
    8.6
    10 Ratings
    10% above category average
    REST API00 Ratings8.310 Ratings
    Javascript API00 Ratings9.09 Ratings
    iFrames00 Ratings7.39 Ratings
    Java API00 Ratings8.79 Ratings
    Themeable User Interface (UI)00 Ratings8.910 Ratings
    Customizable Platform (Open Source)00 Ratings9.610 Ratings
    Best Alternatives
    JMPPentaho
    Small Businesses
    IBM SPSS Statistics
    Score8 out of 10
    Cyfe
    Score4 out of 10
    Medium-sized Companies
    Alteryx Platform
    Score9 out of 10
    Qlik Cloud Analytics (Qlik Sense)
    Score8.1 out of 10
    Enterprises
    Alteryx Platform
    Score9 out of 10
    Sisense
    Score6.9 out of 10
    All AlternativesView all alternativesView all alternatives
    User Ratings
    JMPPentaho
    Likelihood to Recommend
    9.8
    (30 ratings)
    9.1
    (31 ratings)
    Likelihood to Renew
    10.0
    (16 ratings)
    8.8
    (11 ratings)
    Usability
    8.8
    (7 ratings)
    9.3
    (6 ratings)
    Availability
    10.0
    (1 ratings)
    -
    (0 ratings)
    Performance
    10.0
    (1 ratings)
    -
    (0 ratings)
    Support Rating
    9.2
    (7 ratings)
    9.3
    (7 ratings)
    Online Training
    7.9
    (3 ratings)
    9.5
    (2 ratings)
    Implementation Rating
    9.6
    (2 ratings)
    5.0
    (1 ratings)
    Data Sharing and Collaboration
    4.0
    (1 ratings)
    8.4
    (16 ratings)
    Data Sources
    5.0
    (1 ratings)
    8.6
    (16 ratings)
    Product Scalability
    10.0
    (1 ratings)
    -
    (0 ratings)
    User Testimonials
    JMPPentaho
    Likelihood to Recommend
    JMP Statistical Discovery
    It is perfectly suited for statistical analyses, but I would not recommend JMP for users who do not have a statistical background. As previously stated, the learning curve is exceptionally steep, and I think that it would prove to be too steep for those without statistical background/knowledge
    Read full review
    Hitachi Vantara
    Pentaho is very well suited to perform data extraction & data mining from various cloud storage & transform that data using various available data models. However, the software struggles when it comes to visualizing the extracted data in an appealing manner & can be difficult for end-users to get an understanding of data tables created using those models.
    Incentivized
    Read full review
    Pros
    JMP Statistical Discovery
    • JMP is designed from the ground-up to be a tool for analysts who do not have PhDs in Statistics without in anyway "dumbing down" the level of statistical analysis applied. In fact, JMP operationalizes the most advanced statistical methods. JMP's design is centred on the JMP data table and dialog boxes. It is data focused not jargon-focussed. So, unlike other software where you must choose the correct statistical method (eg. contingency, ANOVA, linear regression, etc.), with JMP you simply assign the columns in a dialog into roles in the analysis and it chooses the correct statistical method. It's a small thing but it reflects the thinking of the developers: analysts know their data and should only have to think about their data. Analyses should flow from there.
    • JMP makes most things interactive and visual. This makes analyses dynamic and engaging and obviates the complete dependence on understanding p-values and other statistical concepts(though they are all there) that are often found to be foreign or intimidating.
    • One of the best examples of this is JMP's profiler. Rather than looking at static figures in a spreadsheet, or a series of formulas, JMP profiles the formulas interactively. You can monitor the effect of changing factors (Xs) and see how they interact with other factors and the responses. You can also specify desirability (maximize, maximize, match-target) and their relative importances to find factor settings that are optimal. I have spent many lengthy meetings working with the profiler to review design and process options with never a dull moment.
    • The design of experiments (DOE) platform is simply outstanding and, in fact, the principal developers of it have won several awards. Over the last 15 years, using methods broadly known as an "exchange algorithm," JMP can create designs that are far more flexible than conventional designs. This means, for example, that you can create a design with just the interactions that are of interest; you can selectively choose those interactions that are not of interest and drop collecting their associated combinations.
    • Classical designs are rigid. For example, a Box-Benhken or other response surface design can have only continuous factors. What if you want to investigate these continuous factors along with other categorical factors such as different categorical variables such as materials or different furnace designs and look at the interaction among all factors? This common scenario cannot be handled with conventional designs but are easily accommodated with JMP's Custom DOE platform.
    • The whole point of DOE is to be able to look at multiple effects comprehensively but determine each one's influence in near or complete isolation. The custom design platform, because it produces uniques designs, provides the means to evaluate just how isolated the effects are. This can be done before collecting data because this important property of the DOE is a function of the design, not the data. By evaluating these graphical reports of the quality of the design, the analyst can make adjustments, adding or reducing runs, to optimize cost, effort and expected learnings.
    • Over the last number of releases of JMP, which appear about every 18 months now, they have skipped the dialog boxes to direct, drag-and-drop analyses for building graphs and tables as well as Statistical Process Control Charts. Interactivity such as this allows analysts to "be in the moment." As with all aspects of JMP, they are thinking of their subject matter without the cumbersomeness associated with having to think about statistical methods. It's rather like a CEO thinking about growing the business without having to think about every nuance and intricacy of accounting. The statistical thinking is burned into the design of JMP.
    • Without data analysis is not possible. Getting data into a situation where it can be analyzed can be a major hassle. JMP can pull data from a variety of sources including Excel spreadsheets, CSV, direct data feeds and databases via ODBC. Once the data is in JMP it has all the expected data manipulation capabilities to form it for analysis.
    • Back in 2000 JMP added a scripting language (JMP Scripting Language or JSL for short) to JMP. With JSL you can automate routine analyses without any coding, you can add specific analyses that JMP does not do out of the box and you can create entire analytical systems and workflows. We have done all three. For example, one consumer products company we are working with now has a need for a variant of a popular non-parametric analysis that they have employed for years. This method will be found in one of the menus and appear as if it were part of JMP to begin with. As for large systems, we have written some that are tens of thousands of lines that take the form of virtual labs and process control systems among others.
    • JSL applications can be bundled and distributed as JMP Add-ins which make it really easy for users to add to their JMP installation. All they need to do is double-click on the add-in file and it's installed. Pharmaceutical companies and others who are regulated or simply want to control the JMP environment can lock-down JMP's installation and prevent users from adding or changing functionality. Here, add-ins can be distributed from a central location that is authorized and protected to users world-wide.
    • JMP's technical support is second to none. They take questions by phone and email. I usually send email knowing that I'll get an informed response within 24 hours and if they cannot resolve a problem they proactively keep you informed about what is being done to resolve the issue or answer your question.
    Read full review
    Hitachi Vantara
    • Integrate and synchronize with big data easily
    • Import data from any sources and different databases
    • Managing data in on-premise, hybrid and cloud environments.
    • Compatibility and flexibility of the platform with any type of scenario and any business or industry
    • Various tools in the software suite to transformation of data
    • Simple interface appearance and creative UI graphics
    Read full review
    Cons
    JMP Statistical Discovery
    • In general JMP is much better fit for a general "data mining" type application. If you want a specific statistics based toolbox, (meaning you just want to run some predetermined test, like testing for a different proportion) then JMP works, but is not the best. JMP is much more suited to taking a data set and starting from "square 1" and exploring it through a range of analytics.
    • The CPK (process capability) module output is shockingly poor in JMP. This sticks out because, while as a rule everything in JMP is very visual and presentable, the CPK graph is a single-line-on-grey-background drawing. It is not intuitive, and really doesn't tell the story. (This is in contrast with a capability graph in Minitab, which is intuitive and tells a story right off.) This is also the case with the "guage study" output, used for mulivary analysis in a Six Sigma project. It is not intuitive and you need to do a lot of tweaking to make the graph tell you the story right off. I have given this feedback to JMP, and it is possible that it will be addressed in future versions.
    • I've never heard of JMP allowing floating licenses in a company. This will ALWAYS be a huge sticking point for small to middle size companies, that don't have teams people dedicated to analytics all day. If every person that would do problem solving needs his/her own seat, the cost can be prohibitive. (It gets cheaper by the seat as you add licenses, but for a small company that might get no more than 5 users, it is still a hard sell.)
    Read full review
    Hitachi Vantara
    • I think the relative obscurity of the tool is a downside, not as many developers, consultants or peers you can tap into.
    • Lack of a solid user community held us back, looking at Power BI and Qlik, they have huge user communities that help each other out. Would have liked that here.
    • Smaller company means smaller sales force, and the lack of a local presence made it hard to only interact online with the account rep. Other companies have someone local who often stops by with pre-sales developers to just pitch in free of charge when they have time.
    Incentivized
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    Likelihood to Renew
    JMP Statistical Discovery
    JMP has been good at releasing updates and adding new features and their support is good. Analytics is quick and you don't need scripting/programming experience. It has been used organization wide, and works well in that respect. Open source means that there are concerns regarding timely support. Cheap licensing and easy to maintain.
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    Hitachi Vantara
    I will use Pentaho until I find a better tool with a better, easier to use report designer client. For now, Pentaho has been the most powerful reporting tool for our clients because of its ability to connect to Odoo, integrate in Odoo (reports are accessible in Odoo) and the flexibility in report design and parameter integration
    Incentivized
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    Usability
    JMP Statistical Discovery
    The GUI interface makes it easier to generate plots and find statistics without having to write code. The JSL scripting is a bit of a steep learning curve but does give you more ability to customize your analysis. Overall, I would recommend JMP as a good product for overall usability.
    Incentivized
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    Hitachi Vantara
    The Pentaho tools are designed so you can start playing around on your own. Of course, you will need guidance at some point, but the training teams are good at guiding new users, and the online documentation is usually pretty up-to-date.
    Some of the tools, such as the Pentaho Data Integration tool and the Pentaho Server, are pretty self-explanatory. The other tools maybe are not so quickly and obvious to use, but again, with some documentation and some customer support, you can find your way around them.
    Incentivized
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    Support Rating
    JMP Statistical Discovery
    Support is great and give ease of contact, rapid response, and willingness to 'stick to the task' until resolution or acknowledgement that the problem would have to be resolved in a future build. Basically, one gets the very real sense that another human being is sensitive to your problems - great or small.
    Incentivized
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    Hitachi Vantara
    They were responsive to our questions when we raised issues. They gave us workarounds when required. They were quite knowledgeable when it came to issue analysis and providing fixes. They were forthright in informing us if a bug was not due for release soon.
    Incentivized
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    Online Training
    JMP Statistical Discovery
    I have not used your online training. I use JMP manuals and SAS direct help.
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    Hitachi Vantara
    Course Taken: DI1000 Pentaho Data Integration Fundamentals Setup A week before your class started, the instructor will start sending out class material and lab setup instructions. This is helpful so that you understand how the environment is laid out and can start reviewing the content. Ultimately it saved about a 1/2 day trying to setup with 10 other people online which was great! The Course The 3-day course was laid out like many other technical classes with 15-30 minutes instruction and 15-60 minutes of lab exercises. The instructor was very knowledgeable with the functionality from version to version and answered questions as we went along. I was amazed at some of the functionality that was available that I was not using at the time and quickly implemented changes to many existing transformations and jobs. The novice users seemed to catch on quickly and more experienced users explained how some of the functionality was used in their home environments. Towards the end there was enough time so that we were able to ask very directed questions about our own environments. Overall, I really found the class to be informative and deliver enough information to be dangerous. My skills improved and I was able to design better and efficient transformations for the HIE. Course Description: https://training.pentaho.com/instructor-led-training/pentaho-data-integration-fundamentals-di1000
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    Implementation Rating
    JMP Statistical Discovery
    No answers on this topic
    Hitachi Vantara
    Get the right people in before starting implementation. Start small and build as you go approach is time consuming and involves lot of rework. Evangalize within the organization the capabilities and limitations equally so that correct delivery expectations are set. Set expectations with the Customer that the tool cannot replace proprietary software in terms of stability/usability and that timelines could change given the new ness of the product.
    Incentivized
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    Alternatives Considered
    JMP Statistical Discovery
    MS Excel with AnalysisToolPak provides a home-grown solution, but requires a high degree of upkeep and is difficult to hand off. Minitab is the closes competitor, but JMP is better suited to the production environment, roughly equivalent in price, and has superior support.
    Incentivized
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    Hitachi Vantara
    Since the Pentaho platform offers a range of broad functionality across data preparation and advanced analytics, it also can be easily integrated to support many data sources and machine-learning frameworks. Based on that fact, we selected Pentaho to be used in our internal department. It also supports many of our BI use cases as required by company management or the business user. Last but not least, the Pentaho license is cheaper than their competitor.
    Incentivized
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    Return on Investment
    JMP Statistical Discovery
    • ROI: Even if the cost can be high, the insights you get out of the tool would definitely be much more valuable than the actual cost of the software. In my case, most of the results of your analysis were shown to the client, who was blown away, making the money spent well worth for us.
    • Potential negative: If you are not sure your team will use it, there's a chance you will just waste money. Sometimes the IT department (usually) tries to deploy a better tool for the entire organization but they keep using the old tool they are used too (most likely MS Excel).
    Incentivized
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    Hitachi Vantara
    • Pentaho has improved our overall business process.
    • Pentaho has helped the Managers and Directors to analyze the numbers going up and down from time to time.
    • We have a started a big project using Pentaho that is going to include all the business processes in the organization.
    Incentivized
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    ScreenShots

    JMP Screenshots

    Screenshot of in JMP, how all graphical displays and the data table are linked.Screenshot of a few designed experiments, for more understanding and maximum impact. Users can understand cause and effect using statistically designed experiments — even with limited resources.Screenshot of an example of Predictive Modeling in JMP Pro's Prediction Profiler, used to build better models for more confident decision making.Screenshot of example outputs, built with tools designed for quality and reliability.