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    Overview
    ProductRatingMost Used ByProduct SummaryStarting Price

    Hive

    Score9 out of 10
    N/AHive Technology offers their eponymous project management and process management application, providing integrations with many popularly used applications for productivity, cloud storage, and collaboration.

    $24

    per month per user

    HPE Data Fabric

    Score9.4 out of 10
    N/AHPE Data Fabric (formerly MapR, acquired by HPE in 2019) is a software-defined datastore and file system that simplifies data management and analytics by unifying data across core, edge, and multicloud sources into a single platform.N/A
    Pricing
    HiveHPE Data Fabric
    Editions & Modules
    Free
    $0
    Lite
    $24
    per month per user
    Growth
    $34
    per month per user
    Pro
    $59
    per month per user
    Elite
    Contact Sales
    No answers on this topic
    Offerings
    Pricing Offerings
    HiveHPE Data Fabric
    Free Trial
    YesNo
    Free/Freemium Version
    YesNo
    Premium Consulting/Integration Services
    NoNo
    Entry-level Setup FeeNo setup feeNo setup fee
    Additional DetailsA discount is offered for annual pricing.—
    More Pricing Information
    Community Pulse
    HiveHPE Data Fabric
    Considered Both Products
    Hive Technology
    No answer on this topic
    Hewlett Packard Enterprise (HPE)
    No answer on this topic
    Key User Insights
    Would buy again
    92%
    Would buy again
    11 Answers
    No answers on this topic
    Delivers good value for the price
    91%
    Delivers good value for the price
    10 Answers
    No answers on this topic
    Happy with the feature set
    92%
    Happy with the feature set
    11 Answers
    No answers on this topic
    Lived up to sales and marketing promises
    78%
    Lived up to sales and marketing promises
    7 Answers
    No answers on this topic
    Implementation went as expected
    75%
    Implementation went as expected
    6 Answers
    No answers on this topic
    Features
    HiveHPE Data Fabric
    Project Management
    Comparison of Project Management features of Hive and HPE Data Fabric
    Feature
    Hive
    9.1
    15 Ratings
    17% above category average
    HPE Data Fabric
    -
    Ratings
    Task Management9.015 Ratings00 Ratings
    Resource Management9.015 Ratings00 Ratings
    Gantt Charts10.014 Ratings00 Ratings
    Scheduling7.014 Ratings00 Ratings
    Workflow Automation9.014 Ratings00 Ratings
    Team Collaboration10.015 Ratings00 Ratings
    Support for Agile Methodology10.012 Ratings00 Ratings
    Support for Waterfall Methodology8.011 Ratings00 Ratings
    Document Management10.013 Ratings00 Ratings
    Email integration10.013 Ratings00 Ratings
    Mobile Access8.011 Ratings00 Ratings
    Timesheet Tracking10.09 Ratings00 Ratings
    Change request and Case Management10.011 Ratings00 Ratings
    Budget and Expense Management7.09 Ratings00 Ratings
    Professional Services Automation
    Comparison of Professional Services Automation features of Hive and HPE Data Fabric
    Feature
    Hive
    7.0
    12 Ratings
    9% below category average
    HPE Data Fabric
    -
    Ratings
    Quotes/estimates7.010 Ratings00 Ratings
    Invoicing7.07 Ratings00 Ratings
    Project & financial reporting7.010 Ratings00 Ratings
    Integration with accounting software7.09 Ratings00 Ratings
    Best Alternatives
    HiveHPE Data Fabric
    Small Businesses
    Any.do
    Score8 out of 10
    No answers on this topic
    Medium-sized Companies
    KanbanFlow
    Score7.3 out of 10
    HBase
    Score7.3 out of 10
    Enterprises
    Microsoft To Do
    Score7.9 out of 10
    Cassandra
    Score9 out of 10
    All AlternativesView all alternativesView all alternatives
    User Ratings
    HiveHPE Data Fabric
    Likelihood to Recommend
    9.0
    (15 ratings)
    7.2
    (4 ratings)
    Usability
    8.0
    (1 ratings)
    -
    (0 ratings)
    Support Rating
    9.4
    (2 ratings)
    -
    (0 ratings)
    User Testimonials
    HiveHPE Data Fabric
    Likelihood to Recommend
    Hive Technology
    Hive is a powerful tool for data analysis and management that is well-suited for a wide range of scenarios. Here are some specific examples of scenarios where Hive might be particularly well-suited: Data warehousing: Hive is often used as a data warehousing platform, allowing users to store and analyze large amounts of structured and semi-structured data. It is especially good at handling data that is too large to be stored and analyzed on a single machine, and supports a wide variety of data formats. Batch processing: Hive is designed for batch processing of large datasets, making it well-suited for tasks such as data ETL (extract, transform, load), data cleansing, and data aggregation.Simple queries on large datasets: Hive is optimized for simple queries on large datasets, making it a good choice for tasks such as data exploration and summary statistics. Data transformation: Hive allows users to perform data transformations and manipulations using custom scripts written in Java, Python, or other programming languages. This can be useful for tasks such as data cleansing, data aggregation, and data transformation. On the other hand, here are some specific examples of scenarios where Hive might be less appropriate: Real-time queries: Hive is a batch-oriented system, which means that it is designed to process large amounts of data in a batch mode rather than in real-time. While it is possible to use Hive for real-time queries, it may not be the most efficient choice for this type of workload. Complex queries: Hive is optimized for simple queries on large datasets, but may struggle with more complex queries or queries that require multiple joins or subqueries.Very large datasets: While Hive is designed to scale horizontally and can handle large amounts of data, it may not scale as well as some other tools for very large datasets or complex workloads.
    Incentivized
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    Hewlett Packard Enterprise (HPE)
    MapR is more well-suited for people who know what they are doing. I consider MapR the Hadoop distribution professionals use.
    Incentivized
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    Pros
    Hive Technology
    • Simplicity, it offers a clean environment without risking the outcome. An example of this are the timesheets that allow a fast way to keep track of progress
    • Interaction, the different options make it faster and easier to interact and collaborate in the development of a product. An example of this would be Hive Notes for meetings
    • The different visualisations it offers allow to explore the best ways to affront your projects. I really like the Gantt mappings view to understand who can be contacted at each point
    Incentivized
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    Hewlett Packard Enterprise (HPE)
    • MapR had very fast I/O throughput. The write speed was several times faster than what we could achieve with the other Hadoop vendors (Cloudera and Hortonworks). This is because MapR does not use HDFS, which is essentially a "meta filesystem". HDFS is built on top of the filesystem provided by the OS. MapR has their filesystem called MapR-FS, which is a true filesystem and accesses the raw disk drives.
    • The MapR filesystem is very easy to integrate with other Linux filesystems. When working with HDFS from Apache Hadoop, you usually have to use either the HDFS API or various Hadoop/HDFS command line utilities to interact with HDFS. You cannot use command line utilities native to the host operation system, which is usually Linux. At least, it is not easily done without setting up NFS, gateways, etc. With MapR-FS, you can mount the filesystem within Linux and use the standard Unix commands to manipulate files.
    • The HBase distribution provided by MapR is very similar to the Apache HBase distribution. Cloudera and Hortonworks add GUIs and other various tools on top of their HBase distributions. The MapR HBase distribution is very similar to the Apache distribution, which is nice if you are more accustomed to using Apache HBase.
    Incentivized
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    Cons
    Hive Technology
    • Organizing tasks by assignees could be better. It's a little cumbersome to check off each person you want. Can you group these?
    • I don't really use any view besides task view. Is there something better I could be using?
    • It would be nice if attachments showed up in a nicer format, maybe with a preview?
    Incentivized
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    Hewlett Packard Enterprise (HPE)
    • It takes time to get latest versions of Apache ecosystem tools released as it has to be adapted.
    • When you have issues related to Mapr-FS or Mapr Tables, its hard to figure them out by ourselves.
    • Sometime new ecosystem tools versions are released without proper QA.
    Incentivized
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    Usability
    Hive Technology
    Its a easy tool, the best way to organize the workflow but has room for more improvements.
    Read full review
    Hewlett Packard Enterprise (HPE)
    No answers on this topic
    Support Rating
    Hive Technology
    Our CSR is easily accessible and they have support built into the app itself. They also have a pretty robust support site. We also took advantage of the free trial and learned so much by putting Hive through the paces and figuring out the best way to mold it to our needs.
    Incentivized
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    Hewlett Packard Enterprise (HPE)
    No answers on this topic
    Alternatives Considered
    Hive Technology
    Hive is a bit different than Jira and Monday, which I used mostly. Overall does a great job managing project and helps with team communication. Removes dependency of asking team members for updates by going to conference rooms. With Hive, the team updates the status, and we can easily track it.
    Incentivized
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    Hewlett Packard Enterprise (HPE)
    I don't believe there is as much support for MapR yet compared to other more widely known products.
    Incentivized
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    Return on Investment
    Hive Technology
    • Workflow Management will help you better move your projects along which saves time and money.
    • Time tracking will allow you to better manage the hours and keep your contractors accountable.
    • Overall visibility of projects allow you to keep your margins down and combat "bleeding" and hidden costs or surprises.
    Incentivized
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    Hewlett Packard Enterprise (HPE)
    • Increased employee efficiency for sure. Our clients have various levels of expertise in their deployment and user teams, and we never receive complaints about MapR.
    • MapR is used by one of our financial services clients who uses it for fraud detection and user pattern analysis. They are able to turn around data much faster than they previously had with in-house applications
    Incentivized
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    ScreenShots

    Hive Screenshots

    Screenshot of HIver Technology