IBM ILOG CPLEX Optimization Studio vs. NVIDIA RAPIDS

Overview
ProductRatingMost Used ByProduct SummaryStarting Price
IBM ILOG CPLEX Optimization Studio
Score 9.7 out of 10
N/A
IBM® ILOG® CPLEX® Optimization Studio is a prescriptive analytics solution that enables rapid development and deployment of decision optimization models using mathematical and constraint programming.N/A
NVIDIA RAPIDS
Score 9.1 out of 10
N/A
NVIDIA RAPIDS is an open source software library for data science and analytics performed across GPUs. Users can run data science workflows with high-speed GPU compute and parallelize data loading, data manipulation, and machine learning for 50X faster end-to-end data science pipelines.N/A
Pricing
IBM ILOG CPLEX Optimization StudioNVIDIA RAPIDS
Editions & Modules
No answers on this topic
No answers on this topic
Offerings
Pricing Offerings
IBM ILOG CPLEX Optimization StudioNVIDIA RAPIDS
Free Trial
YesNo
Free/Freemium Version
NoNo
Premium Consulting/Integration Services
NoNo
Entry-level Setup FeeNo setup feeNo setup fee
Additional Details
More Pricing Information
Community Pulse
IBM ILOG CPLEX Optimization StudioNVIDIA RAPIDS
Features
IBM ILOG CPLEX Optimization StudioNVIDIA RAPIDS
Platform Connectivity
Comparison of Platform Connectivity features of Product A and Product B
IBM ILOG CPLEX Optimization Studio
8.0
Ratings
4% below category average
NVIDIA RAPIDS
9.1
Ratings
8% above category average
Connect to Multiple Data Sources9.00 Ratings9.60 Ratings
Extend Existing Data Sources7.00 Ratings8.80 Ratings
Automatic Data Format Detection8.00 Ratings9.00 Ratings
MDM Integration8.00 Ratings9.00 Ratings
Data Exploration
Comparison of Data Exploration features of Product A and Product B
IBM ILOG CPLEX Optimization Studio
10.0
Ratings
18% above category average
NVIDIA RAPIDS
9.4
Ratings
12% above category average
Visualization10.00 Ratings9.40 Ratings
Interactive Data Analysis10.00 Ratings9.40 Ratings
Data Preparation
Comparison of Data Preparation features of Product A and Product B
IBM ILOG CPLEX Optimization Studio
7.3
Ratings
11% below category average
NVIDIA RAPIDS
8.9
Ratings
9% above category average
Interactive Data Cleaning and Enrichment5.00 Ratings7.80 Ratings
Data Transformations7.00 Ratings9.40 Ratings
Data Encryption8.00 Ratings9.00 Ratings
Built-in Processors9.00 Ratings9.40 Ratings
Platform Data Modeling
Comparison of Platform Data Modeling features of Product A and Product B
IBM ILOG CPLEX Optimization Studio
8.0
Ratings
5% below category average
NVIDIA RAPIDS
9.2
Ratings
9% above category average
Multiple Model Development Languages and Tools10.00 Ratings9.00 Ratings
Automated Machine Learning5.00 Ratings9.40 Ratings
Single platform for multiple model development8.00 Ratings9.40 Ratings
Self-Service Model Delivery9.00 Ratings9.00 Ratings
Model Deployment
Comparison of Model Deployment features of Product A and Product B
IBM ILOG CPLEX Optimization Studio
10.0
Ratings
16% above category average
NVIDIA RAPIDS
9.2
Ratings
8% above category average
Flexible Model Publishing Options10.00 Ratings9.40 Ratings
Security, Governance, and Cost Controls10.00 Ratings9.00 Ratings
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User Ratings
IBM ILOG CPLEX Optimization StudioNVIDIA RAPIDS
Likelihood to Recommend
9.0
(0 ratings)
10.0
(0 ratings)
Usability
9.0
(0 ratings)
-
(0 ratings)
Support Rating
7.0
(0 ratings)
-
(0 ratings)
User Testimonials
IBM ILOG CPLEX Optimization StudioNVIDIA RAPIDS
Likelihood to Recommend
In my opinon, if the problem is less than 5000 variables, one should try to solve with free available solver rather than directly going for a commercial license of IBM CPLEX Optimization Studio. In my opinion, if the priority is not in terms of solving time with higher number of variables, even then one can go for free solvers like CBC, IPOPT, SCIP. In my opinion, if priority is solving time and number of variables is also high, only in that case one should prefer going for a commercial license.
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NVIDIA RAPIDS is great for integrated and planned machine learning and deep learning journey. It is excellent if you have big data with defined processes to be improved and monitored. It is less effective if the project is continuously changed and the data are to be prepared and cleaned a lot and [in] many different ways.
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Pros
  • Linear Programming
  • Mixed-Integer Linear Programming
  • Non-Linear Convex-Optimization
  • Visualization
  • Shadow Price Analysis
  • Parameter Tuning
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  • Visualization
  • Deep learning pipeline
  • State of the art libraries
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Cons
  • Data handling from different sources like Note Pad, etc.
  • Large size of MILP problems.
  • Various parameters to set.
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  • Its not flexible and cost effective for all sizes of organizations.
  • I appreciate it has hassle-free integration.
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Usability
It's nice to use and with good optimization.
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No answers on this topic
Support Rating
Honestly, to say, I never contacted CPLEX but used its forum to know/clarify any issues I faced.
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No answers on this topic
Alternatives Considered
Compared with MATLAB, CPLEX is a more user-friendly and simpler structure for writing models. This one also has a good return on investment.
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RAPIDS GPU accelerates machine learning to make the entire data science and analytics workflows run faster, also helps build databases and machine learning applications effectively. It also allows faster model deployment and iterations to increase machine learning model accuracy. The great value of money.
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Return on Investment
  • Better for price.
  • Many model parameters/features.
  • No visualization.
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  • Hassle free integration.
  • Top model accuracy.
  • Reduce training time.
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ScreenShots