IBM watsonx.data intelligence vs. Informatica Cloud Data Quality

Overview
ProductRatingMost Used ByProduct SummaryStarting Price
IBM watsonx.data intelligence
Score 9.2 out of 10
N/A
IBM® watsonx.data intelligence provides data governance software (formerly IBM Knowledge Catalog) that provides a data catalog to automate data discovery, data quality management and data protection - for both structured and unstructured data.N/A
Informatica Cloud Data Quality
Score 6.8 out of 10
N/A
The vendor states that Informatica Data Quality empowers companies to take a holistic approach to managing data quality across the entire organization, and that with Informatica Data Quality, users are able to ensure the success of data-driven digital transformation initiatives and projects across users, types, and scale, while also automating mission-critical tasks.N/A
Pricing
IBM watsonx.data intelligenceInformatica Cloud Data Quality
Editions & Modules
No answers on this topic
No answers on this topic
Offerings
Pricing Offerings
IBM watsonx.data intelligenceInformatica Cloud Data Quality
Free Trial
YesNo
Free/Freemium Version
NoNo
Premium Consulting/Integration Services
NoNo
Entry-level Setup FeeNo setup feeNo setup fee
Additional DetailsIBM watsonx.data intelligence's pricing that scales with usage and functionality. watsonx.data intelligence can be deployed in various environments such as cloud, hybrid, or on-premises. The on-premises offering is available via subscription or perpetual licenses, charged with a consumption-based Resource Unit model. The SaaS offering is available via Resource Units or Instances, with the ability to upgrade to higher tiers as needed.
More Pricing Information
Community Pulse
IBM watsonx.data intelligenceInformatica Cloud Data Quality
Features
IBM watsonx.data intelligenceInformatica Cloud Data Quality
Data Quality
Comparison of Data Quality features of Product A and Product B
IBM watsonx.data intelligence
-
Ratings
Informatica Cloud Data Quality
8.2
4 Ratings
3% below category average
Data source connectivity00 Ratings8.94 Ratings
Data profiling00 Ratings8.74 Ratings
Master data management (MDM) integration00 Ratings8.24 Ratings
Data element standardization00 Ratings7.14 Ratings
Match and merge00 Ratings7.94 Ratings
Address verification00 Ratings8.44 Ratings
Best Alternatives
IBM watsonx.data intelligenceInformatica Cloud Data Quality
Small Businesses

No answers on this topic

HubSpot Data Hub
HubSpot Data Hub
Score 8.3 out of 10
Medium-sized Companies
ER/Studio
ER/Studio
Score 9.9 out of 10
IBM InfoSphere Information Server
IBM InfoSphere Information Server
Score 8.0 out of 10
Enterprises
ER/Studio
ER/Studio
Score 9.9 out of 10
IBM InfoSphere Information Server
IBM InfoSphere Information Server
Score 8.0 out of 10
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User Ratings
IBM watsonx.data intelligenceInformatica Cloud Data Quality
Likelihood to Recommend
8.7
(3 ratings)
9.0
(19 ratings)
Likelihood to Renew
-
(0 ratings)
6.6
(14 ratings)
Usability
-
(0 ratings)
8.0
(1 ratings)
Availability
-
(0 ratings)
9.0
(2 ratings)
Performance
-
(0 ratings)
9.0
(1 ratings)
Online Training
-
(0 ratings)
10.0
(1 ratings)
Implementation Rating
-
(0 ratings)
10.0
(1 ratings)
Product Scalability
-
(0 ratings)
9.0
(1 ratings)
User Testimonials
IBM watsonx.data intelligenceInformatica Cloud Data Quality
Likelihood to Recommend
IBM
The IBM Watson Knowledge Catalog is most well suited for large companies. With large companies storing data for a long amount of time, this can be helpful to allow all team members to find documents with ease. It would be less appropriate for storage that is deleted very often or does not needs to be saved for long amounts of time.
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Informatica
For effective data collaboration, systematic verification of customer information, and address, among others, Informatica Data Quality is a fruitful application to consider. Besides, Informatica Data Quality controls quality through a cleansing process, giving the company a professional outline of candid data profiling and reputable analytics. Finally, Informatica Data Quality allows the simplistic navigation of content, with a dashboard that supports predictability.
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Pros
IBM
  • Data discovery.
  • Technical Data Lineage.
  • Business Data Lineage.
  • Data .
  • Multiple Data Catalog Management.
  • Creation of Governance Rules.
  • Data Masking.
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Informatica
  • The matching algorithms in IDQ are very powerful if you understand the different types that they offer (e.g., Hamming Distance, Jaro, Bigram, etc..). We had to play around with it to see which best suit our own needs of identifying and eliminating duplicate customers. Setting up the whole process (e.g., creating the KeyGenerator Transformation, setting up the matching threshold, etc..) can be somewhat time consuming and a challenge if you don't first standardize your data.
  • The integration with PowerCenter is great if you have both. You can either import your mappings directly to PowerCenter or to an XML file. The only downside is that some of the transformations are unique to IDQ, so you are not really able to edit them once in PowerCenter.
  • The standardizer transformation was key in helping us standardize our customer data (e.g., names, addresses, etc..). It was helpful due to having create a reference table containing the standardized value and the associated unstandardized values. What was great was that if you used Informatica Analyst, a business analyst could login and correct any of the values.
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Cons
IBM
  • I think an industry-specific data catalog service will be good.
  • Effective alignment of IBM consulting services and bringing in an Industry point of view will be great.
  • Effective reach out like roadshows, etc. will be good.
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Informatica
  • Several partnerships diminishing the value of technologies
  • Unable to get list of objects from Repository (like sources & targets) that don't have any dependency
  • Scheduling: The built-in scheduling tool has many constraints such as handling Unix/VB scripts etc. Most enterprises use third party tools for this.
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Likelihood to Renew
IBM
No answers on this topic
Informatica
As pointed out earlier, due all the robust features IDQ has, our use f the product is successful and stable. IDQ is being used in multiple sources (from CRM application and in batch mode). As this is an iterative process, we are looking to improve our system efficiency using IDQ.
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Usability
IBM
It is very easy to use and very intuitive Es muy sencilla de utilizar y muy intuitiva
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Informatica
Easy to use not only for developers but also business users
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Reliability and Availability
IBM
No answers on this topic
Informatica
The application works well except an occasional error out while using the system. It usually gets fixed when restarting the Infa server
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Performance
IBM
No answers on this topic
Informatica
Performance works just fine. It was able to load 200+ business terms, 150+ DQ automation, etc. very well.
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Alternatives Considered
IBM
The IBM Watson Knowledge Catalog is a great amount of storage for the price. It is easily accessed by all users in the company. It provides great search features and clear pathways to locate documents. This is great for the team and our client when needing access to a specific document.
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Informatica
IDQ is used by a department at my organisation to ensure and enhance the data quality.
The usage was started with address standardization and now it had been brought to altogether a next level of quality check where it fixes duplicates, junk characters, standardize the names, streets, product descriptions.
In the past we had issues mainly with duplicate customers and products and this were affecting the sales projection and estimates.
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Scalability
IBM
No answers on this topic
Informatica
Scalability works as expected and it is truly an enterprise system.
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Return on Investment
IBM
  • The negative note: is that it needs to have a very secure cloud infrastructure and with its data well defined for integration with other databases.
  • The positive point: allows for quick data discoveries aiding a quick implementation of privacy programs.
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Informatica
  • Integration with tools like PowerCenter helped faster delivery of product, and at the same time conversion
  • Reduce overall project cost due to bad data , bad quality, exceptions identified nearing go-live and post production
  • Employee efficiency is increased exponentially due to more automated, customized tool
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ScreenShots