Re-posting interesting article from
R-vs.-Python-for-Data-Science
R vs. Python for Data Science
Norm Matloff, Prof. of Computer Science, UC Davis; my bio
Hello! This Web page is aimed at shedding some light on the perennial R-vs.-Python debates in the Data Science community. As a professional computer scientist and statistician, I hope to shed some useful light on the topic. I have potential bias — I've written 4 R-related books, and currently serve as Editor-in-Chief of the R Journal — but I hope this analysis will be considered fair and helpful.
Elegance
Clear win for Python.
This is subjective, of course, but having written (and taught) in many different programming languages, I really appreciate Python's greatly reduced use of parentheses and braces:
if x > y:
z = 5
w = 8
vs.
if (x > y)
{
z = 5
w = 8
}
Python is sleek!
Learning curve
Huge win for R.
To even get started in Data Science with Python, one must learn a lot of material not in base Python, e.g., NumPy, Pandas and matplotlib.
By contrast, matrix types and basic graphics are built-in to base R. The novice can be doing simple data analyses within minutes. Python libraries can be tricky to configure, even for the systems-savvy, while most R packages run right out of the box.
Available libraries
Call it a tie.
For example, I once needed code to do fast calculation of nearest-neighbors of a given data point. (NOT code using that to do classification.) I was able to immediately find not one but two packages to do this. By contrast, just now I tried to find nearest-neighbor code for Python and at least with my cursory search, came up empty-handed; there was just one implementation that described itself as simple and straightforward, nothing fast.
The following searches in PyPI turned up nothing: log-linear model; Poisson regression; instrumental variables; spatial data; familywise error rate; etc.
Machine learning
Slight edge to Python here.
The Pythonistas would point to a number of very finely-tuned libraries, e.g. AlexNet, for image recognition. Good, but R versions easily could be developed. The Python libraries' power comes from setting certain image-smoothing ops, which easily could be implemented in R's Keras wrapper, and for that matter, a pure-R version of TensorFlow could be developed. Meanwhile, I would claim that R's package availabity for random forests and gradient boosting are outstandng.
Statisical correctness
Big win for R.
In my book, the Art of R Programming, I made the statement, "R is written by statisticians, for statisticians," which I'm pleased to see pop up here and there on occasion. It's important!
To be blunt, I find the machine learning people, who mostly advocate Python, often have a poor understanding of, and in some cases even a disdain for, the statistical issues in ML. I was shocked recently, for instance, to see one of the most prominent ML people, state in his otherwise outstanding book that standardizing the data to mean-0, variance-1 means one is assuming the data are Gaussian — absolutely false and misleading.
Parallel computation
Let's call it a tie.
Neither the base version of R nor Python have good support for multicore computation. Threads in Python are nice for I/O, but parallel computation using them is impossible, due to the infamous Global Interpreter Lock. Python's multiprocessing package is not a good workaround, nor is R's 'parallel' package. External libraries supporting cluster computation are OK in both languages.
Currently Python has better interfaces to GPUs.
C/C++ interface
Slight win for R.
Though there are tools like swig etc. for interfacing Python to C/C++, as far is I know there is nothing remotely as powerful as R's Rcpp for this at present. The Pybind11 package is being developed.
In addition, R's new ALTREP idea has great potential for enhancing performance and usability.
On the other hand, the Cython and PyPy variants of Python can in some cases obviate the need for explicit C/C++ interface in the first place.
Object orientation, metaprogramming
Slight win for R.
For instance, though functions are objects in both languages, R takes that more seriously than does Python. Whenever I work in Python, I'm annoyed by the fact that I cannot print a function to the terminal, which I do a lot in R.
Python has just one OOP paradigm. In R, you have your choice of several, though some may debate that this is a good thing.
Given R's magic metaprogramming features (code that produces code), computer scientists ought to be drooling over R.
Language unity
Horrible loss for R.
Python is currently undergoing a transition from version 2.7 to 3.x. This will cause some disruption, but nothing too elaborate.
By contrast, R is rapidly devolving into two mutually unintelligible dialects, ordinary R and the Tidyverse. Sadly, this is a conscious effort by a commercial entity that has come to dominate the R world, RStudio. I know and admire the people at RStudio, but a commercial entity should not have such undue influence on an open-source project.
It might be more acceptable if the Tidyverse were superior to ordinary R, but in my opinion it is not. It makes things more difficult for beginners. E.g. the Tidyverse has so many functions, some complex, that must be learned to do what are very simple operations in base R. Pipes, apparently meant to help beginners learn R, actually make it more difficult, I believe. And the Tidyverse is of questionable value for advanced users.
Linked data structures
Likely win for Python.
Classical computer science data structures, e.g. binary trees, are easy to implement in Python. While this can be done in R using its 'list' class, I'd guess that it is slow.
R/Python interoperability
RStudio is to be commended for developing the reticulate package, to serve as a bridge between Python and R. It's an outstanding effort, and works well for pure computation. But as far as I can tell, it does not solve the knotty problems that arise in Python, e.g. virtual environments and the like.
At present, I do not recommend writing mixed Python/R code.


498 comments:
«Oldest ‹Older 401 – 498 of 498Hello This Article I find the machine learning people, who mostly advocate Python, often have a poor understanding of, and in some cases even a disdain for, the statistical issues in ML. this analysis will be considered fair and helpful. Thank You !
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Thanks for the info The R vs. Python debate is common in Data Science. The author, an R expert, shares insights while aiming to be fair.
For elegance, Python wins because it uses fewer parentheses and braces, making the code cleaner and easier to read. However, this is subjective and depends on personal preference.
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"Great read! 👏 I appreciate the in-depth comparison between R and Python for data science. The pros and cons laid out for each language are very clear and helpful for someone deciding which path to take. Thanks for sharing such valuable insights!"
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Its about programming languages R vs Python.
For instance, though functions are objects in both languages, R takes that more seriously than does Python. Whenever I work in Python, I cannot print a function to the terminal, which I do a lot in R.
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This post is all about Which is more better in using Data science
In data science Python and R language There is 2 options They added But When it comes to Python is not that much Effective as compere to R language R language is more effective as compere to Python
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Great comparison! I found this article really helpful in understanding the key differences between R and Python for data science. You've done a good job highlighting the strengths of each language—especially how R excels in statistical analysis and data visualization, while Python offers more flexibility for machine learning and integration. This balanced view is exactly what beginners need when deciding which tool to start with. Thanks for the insights!
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Great comparison! I’ve worked with both R and Python, and this article does a good job highlighting their strengths. R definitely shines in statistical analysis and visualization, while Python’s versatility and broader ecosystem make it ideal for end-to-end projects.
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This article gives a clear and balanced view of the R vs. Python debate in data science. It highlights the strengths and weaknesses of both languages well and helps readers understand which tool might suit their needs better. Very insightful!Medical Coding Courses in Delhi
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Thank you for this well-balanced and deeply informed comparison, Prof. Matloff. It’s refreshing to see a nuanced take from someone with a strong foundation in both computer science and statistics. Your points on statistical correctness and R’s suitability for rapid prototyping in data analysis are particularly resonant—especially for those of us who prioritize model interpretability and statistical rigor.
I also appreciate the candid observations on Python's elegance and industry momentum, especially in machine learning and GPU computing. The section on language fragmentation in R (re: Tidyverse) raises some important concerns I’ve seen echoed in both academic and industry circles.
Overall, this comparison doesn't fall into the usual one-sided argument trap—it's a genuinely useful reference for anyone deciding which language to prioritize for their data science journey.
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This is a very insightful comparison between R and Python for Data Science! As someone who has worked with both languages, I appreciate the balanced perspective you've provided—highlighting strengths like R's statistical correctness and beginner-friendliness, as well as Python's elegance and machine learning ecosystem. The breakdown of key areas (parallel computation, C/C++ interfaces, object orientation) is especially useful for professionals deciding which tool to adopt for specific projects.
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Great, balanced overview of R vs. Python for data science! I like how it points out Python’s clean syntax and R’s strong statistical focus. The notes on learning curve and the Tidyverse challenges are especially helpful for beginners. A thoughtful read for anyone choosing between the two!
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Really enjoyed this in-depth comparison—your post highlights how R shines in statistical analysis and visualization, while Python offers unmatched versatility in production and machine learning. Loved how you balanced the strengths of each and showed when combining both can be a smart approach. Very practical and insightful!
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Excellent breakdown of the R vs. Python debate—balanced, technical, and experience-driven! Especially appreciate the clarity on statistical rigor and learning curves.
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A well-reasoned and deeply informed take on the R vs. Python debate — refreshingly nuanced. Loved the clarity around use cases, especially highlighting R’s statistical strengths and Python’s elegance. The Tidyverse critique is bold and important for the community to reflect on. Great read for data science practitioners deciding where to lean in!
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Great comparison! Really appreciate the balanced perspective, especially around statistical correctness and the learning curve for beginners. For those interested in tech-related career pivots, here’s a helpful list of Medical Coding Courses in Delhi—a field where data plays an increasing role too!
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R is great for deep statistical work, while Python is preferred for machine learning and integration with production systems. The choice often depends on the project needs and the team's expertise. For many data scientists, learning both is the best approach.
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Classic debate, and this post captures both sides really well! Whether you go with R or Python, both can be powerful tools in industries like healthcare. Speaking of which, here’s a great entry point into the field: Medical Coding Courses in Delhi
Really insightful comparison between R and Python for Data Science! I appreciate the honest breakdown of pros and cons, especially around learning curve, libraries, and statistical correctness. As someone interested in healthcare tech too, I’d also recommend checking out these Medical Coding Courses in Delhi for more career pathways.
This post provides a well-rounded and insightful comparison between R and Python for data science. It thoughtfully addresses key factors such as ease of learning, library support, statistical accuracy, machine learning capabilities, and parallel computing. A valuable resource for anyone evaluating the pros and cons of each language.
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"Really enjoyed this R vs Python comparison! The points about R’s built-in functionality for statistical modeling and Python’s dominance in production ML setups were well balanced. Norm Matloff’s insights on package ecosystems and learning curves gave valuable context. Posts like this help shape a nuanced learning strategy—thanks for writing it!"
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"Really enjoyed this R vs Python comparison! The points about R’s built-in functionality for statistical modeling and Python’s dominance in production ML setups were well balanced. Norm Matloff’s insights on package ecosystems and learning curves gave valuable context. Posts like this help shape a nuanced learning strategy—thanks for writing it!"\
Really enjoyed reading this—clear, informative, and well‑structured!
Appreciate the effort that went into explaining everything so simply.
It definitely added value and gave me a fresh perspective on the topic.
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A very fair comparison! You covered both strengths and trade-offs of R and Python without sounding biased — that’s rare. I liked how you emphasized community support and use-case alignment. Helpful read for beginners choosing their first language.
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Really enjoyed this comparative overview of R and Python in the data science space! It hits many of the core points practitioners often weigh when choosing between them.👍 What I especially appreciated:
Strengths of R
Power of Python
Tradeoffs & Contextual Fit
This is a really balanced, thoughtful breakdown. Kudos for offering such clarity for anyone navigating the R vs. Python decision in data science!
Norm Matloff’s balanced yet insightful breakdown highlights R's strengths in statistical correctness, ease of learning, and elegant C/C++ integration, while noting Python’s advantages in coding elegance, language unity, and modern data structures. His skepticism of the Tidyverse underscores a principled stance on simplicity and consistency
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This is a fantastic and timeless analysis by Norm Matloff. The R vs. Python debate often dominates the data science conversation, and I appreciate how this post breaks down the strengths of each based on specific criteria like statistical correctness and language elegance.
It's interesting to add a third, often-overlooked tool to this analytics ecosystem, especially in the context of corporate finance: Microsoft Excel. While it's not a programming language like R or Python, for specific business-critical tasks like company valuation, M&A analysis, and budget forecasting, its power and ubiquity are unmatched.
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Great comparison between R and Python for data science tasks!
Appreciated the balanced view on R’s statistical power vs Python’s versatility.
Helps beginners make informed decisions based on project needs.
Would love to see tool-specific use case examples next time!
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I really like how you’ve framed the R vs. Python discussion around real-world applications. Many articles just compare syntax and libraries, but you’ve tied each language’s strengths to specific project needs—whether it’s deep statistical modeling with R or scalable machine learning solutions with Python. That context makes all the difference.
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This comparison gives real value by linking each language to actual project needs. Instead of listing code differences, it shows where R works best—like in deep data studies—and where Python fits—like in building machine learning systems that scale. This makes the choice clear for people working on data projects. The focus stays on what each tool helps you do, not just how it looks. That keeps the message clear and useful.
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This article gives a balanced, side-by-side breakdown of R vs Python in Data Science, highlighting strengths like Python’s elegance and machine learning libraries versus R’s statistical correctness and beginner-friendly setup. It’s insightful for both newcomers deciding where to start and experienced practitioners weighing tool choices. The author’s perspective as both a computer scientist and statistician adds depth to the comparison.
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Great comparison! Both R and Python have their unique strengths—R shines with its rich statistical packages and visualization tools, while Python offers incredible versatility and ease of integration in production environments. Choosing between them often depends on the specific project needs and team expertise. This blog does a nice job breaking down the key factors to consider when deciding which language to use for data science
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