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    Overview
    ProductRatingMost Used ByProduct SummaryStarting Price

    pandas

    Score10 out of 10
    N/Apandas is an open source, BSD-licensed library providing high-performance data structures and data analysis tools for the Python programming language. pandas is a Python package providing expressive data structures designed to make working with “relational” or “labeled” data both easier. It aims to be the fundamental high-level building block for doing practical, real-world data analysis in Python.N/A

    RapidMiner

    Score8.9 out of 10
    N/ARapidMiner is a data science and data mining platform, from Altair since the late 2022 acquisition. RapidMiner offers full automation for non-coding domain experts, an integrated JupyterLab environment for seasoned data scientists, and a visual drag-and-drop designer. RapidMiner’s project-based framework helps to ensure that others can build off their work using visual workflows or automated data science.

    $7,500

    Per User Per Month

    Pricing
    pandasRapidMiner
    Editions & Modules
    No answers on this topic
    Professional
    $7,500.00
    Per User Per Month
    Enterprise
    $15,000.00
    Per User Per Month
    AI Hub
    $54,000.00
    Per User Per Month
    Offerings
    Pricing Offerings
    pandasRapidMiner
    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
    Features
    pandasRapidMiner
    Platform Connectivity
    Comparison of Platform Connectivity features of pandas and RapidMiner
    Feature
    pandas
    -
    Ratings
    RapidMiner
    9.5
    2 Ratings
    13% above category average
    Connect to Multiple Data Sources00 Ratings10.02 Ratings
    Extend Existing Data Sources00 Ratings10.02 Ratings
    Automatic Data Format Detection00 Ratings9.02 Ratings
    MDM Integration00 Ratings9.01 Ratings
    Data Exploration
    Comparison of Data Exploration features of pandas and RapidMiner
    Feature
    pandas
    -
    Ratings
    RapidMiner
    9.0
    2 Ratings
    7% above category average
    Visualization00 Ratings9.02 Ratings
    Interactive Data Analysis00 Ratings9.02 Ratings
    Data Preparation
    Comparison of Data Preparation features of pandas and RapidMiner
    Feature
    pandas
    -
    Ratings
    RapidMiner
    8.8
    2 Ratings
    8% above category average
    Interactive Data Cleaning and Enrichment00 Ratings9.02 Ratings
    Data Transformations00 Ratings7.02 Ratings
    Data Encryption00 Ratings9.02 Ratings
    Built-in Processors00 Ratings10.02 Ratings
    Platform Data Modeling
    Comparison of Platform Data Modeling features of pandas and RapidMiner
    Feature
    pandas
    -
    Ratings
    RapidMiner
    9.0
    2 Ratings
    7% above category average
    Multiple Model Development Languages and Tools00 Ratings9.02 Ratings
    Automated Machine Learning00 Ratings9.02 Ratings
    Single platform for multiple model development00 Ratings9.02 Ratings
    Self-Service Model Delivery00 Ratings9.02 Ratings
    Model Deployment
    Comparison of Model Deployment features of pandas and RapidMiner
    Feature
    pandas
    -
    Ratings
    RapidMiner
    9.0
    2 Ratings
    5% above category average
    Flexible Model Publishing Options00 Ratings9.02 Ratings
    Security, Governance, and Cost Controls00 Ratings9.01 Ratings
    Best Alternatives
    pandasRapidMiner
    Small Businesses
    RapidMiner
    Score8.9 out of 10
    Jupyter Notebook
    Score9.4 out of 10
    Medium-sized Companies
    Anaconda
    Score8.1 out of 10
    Anaconda
    Score8.1 out of 10
    Enterprises
    IBM Watson Studio
    Score10 out of 10
    IBM Watson Studio
    Score10 out of 10
    All AlternativesView all alternativesView all alternatives
    User Ratings
    pandasRapidMiner
    Likelihood to Recommend
    -
    (0 ratings)
    10.0
    (18 ratings)
    Likelihood to Renew
    -
    (0 ratings)
    9.0
    (1 ratings)
    Usability
    -
    (0 ratings)
    9.0
    (1 ratings)
    User Testimonials
    pandasRapidMiner
    Likelihood to Recommend
    Open Source
    Pandas are great for quick and relatively simple analytics and visualizations
    Pandas work well for exploratory ad-hoc analytic work
    But , We had little success in implementing complicated predictive analytics. And large data sizes can be a problem.
    Incentivized
    Read full review
    Altair Engineering, Inc.
    RapidMiner is really fantastic to perform fast ETL processes and work on your data as you want, no matter what is the source. You will really save a lot of time when you learn how to use it. You can create mining analysis with several algorithms, and thanks to add-ons, you can apply a lot of techniques. It will not replace a business intelligence dashboard but it allows to create great datamarts for your BI tools. One negative thing is that It's no easy to share your outputs.
    Incentivized
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    Pros
    Open Source
    • It is easy to do statistical analysis
    • It is easy to clean the data
    • It is easy to produce graphs and charts to visualize
    Incentivized
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    Altair Engineering, Inc.
    • I am very impressed at how easily you can work within RapidMiner without much data analytics training. Plus with the help of the crowd, you can see what steps others have taken with their data analytics projects.
    • Text mining was simple and clean. We used this for our call transcription problem where we didn't have the resources to listen to each call. We needed to qualify each call based on some key phrases.
    • Our direct mail program was large and not very targeted. Using RapidMiner, we were able to isolate a predictive level we felt comfortable with and decided not to send to anyone below that level. We saved quite a bit of money.
    Incentivized
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    Cons
    Open Source
    • There are a lot of libraries and ways to do visualization. Sometimes it is very confusing.
    • Error handling can be a challenge. Sometimes the error messages do not provide valuable clues for the debugging.
    • In our case, there are a bunch of different frameworks and libraries working together. I would rather work with one framework, well tuned for my use case
    Incentivized
    Read full review
    Altair Engineering, Inc.
    • I hope RapidMiner would be the first data science platform that allows data scientists to change the behaviour of a machine learning algorithm that already exists in the repository. For example, I want to be able to change the way a genetic algorithm mutates.
    • Automatic programming: One day, I hope RapidMiner can automatically generate codes in any 4th generation programming language based on the developed model.
    • More tutorials/samples needed: Why doesn't RapidMiner becomes the next 'UC Irvine Machine Learning Repository'? Provide real examples and real cases for users to study and understand the best practices in modelling. RapidMiner already has some datasets for a tutorial. Besides the existing samples, I hope RapidMiner can provide more sample data and examples.
    Incentivized
    Read full review
    Likelihood to Renew
    Open Source
    No answers on this topic
    Altair Engineering, Inc.
    Very fast and user-friendly tool
    Incentivized
    Read full review
    Usability
    Open Source
    Over the years, we tried a lot of different frameworks and tools, homegrown and commercial. Pandas provide the best results.
    It is lightweight, flexible and easy to implement.
    Incentivized
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    Altair Engineering, Inc.
    Very use to use and learn
    Incentivized
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    Alternatives Considered
    Open Source
    All these frameworks are great for gathering data and providing some initial analysis. But for real performance debugging work one needs more than tools provided by this tools. That's where the pandas excel.
    Incentivized
    Read full review
    Altair Engineering, Inc.
    We tried different data tools and we figured we give RapidMinder Studio a shot as one of our employees had experience with it, and when compared to some of the other tools that we used it was the best fit among the test group that we used. Overall it was a little more fluid and user-friendly.
    Incentivized
    Read full review
    Return on Investment
    Open Source
    • Performance debugging was time consuming and mostly poorly automated exploratory process. Once we started use pandas for these tasks, it really moved the needle. Pandas are instrumental to provide actionable insights. As a result we were able to improve notably cloud software resource utilization and performance
    • Analytics implemented with pandas allow us to detect and. address problems in our APIs before they are notable to our customers
    Incentivized
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    Altair Engineering, Inc.
    • Thanks to the patters that RapidMiner has detected, we have been able to follow clues in the right direction, both for the Protein Interaction Network Analysis and for the Epilepsy Research
    • Students and participants of the machine learning workshops have learned about this technology and about the tool
    Incentivized
    Read full review
    ScreenShots