How legit is R considered in industry and labwork?

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In summary, there are alternatives to SAS for analyzing data, such as R. However, if your school requires you to use SAS, you will need to purchase it. R is highly regarded and commonly used in various fields, including at a national nuclear lab and in the Applied Math department at a well-known math and science university.
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WatermelonPig
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Especially in comparison to SAS? I really don't have the money to buy SAS and I can't get it from my school so I'm looking for alternatives.
 
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It is very well regarded, but if your school requires you to have SAS you need to buy SAS.
 
  • #3
I know that this is anecdotal, but I know a few people working at a giant national nuclear lab, and they say that they all use R to analyze experimental data. It's also the standard in the Applied Math department at my school(which is a somewhat well-known math/science university). So I hope that's encouraging.
 

1. How widely is R used in industry and labwork?

R is widely used in both industry and labwork, particularly in fields such as data analysis, statistics, and machine learning. Many companies and research institutions use R as their primary programming language for data analysis and modeling.

2. Is R considered a legitimate language for scientific research?

Yes, R is considered a legitimate language for scientific research. It has a robust set of statistical and data analysis packages and is widely used in academia for scientific research in various fields.

3. How does R compare to other programming languages in terms of speed and efficiency?

R is generally slower than languages like Python or C++ due to its interpreted nature. However, with the use of efficient packages and techniques such as parallel processing, R can achieve comparable speeds to other languages for data analysis and modeling tasks.

4. Are there any limitations to using R in industry and labwork?

One limitation of using R in industry and labwork is its lack of support for large, complex datasets. R is not as scalable as other programming languages, which can make it challenging to handle big data. Additionally, R may not be the best choice for tasks that require real-time processing or interaction with other software systems.

5. Is it necessary to have a strong background in statistics to use R in industry and labwork?

While a strong background in statistics can be helpful when using R, it is not a requirement. R has a vast and supportive community, and there are many online resources available for learning and using R for data analysis and modeling. Additionally, there are packages and functions in R that make statistical analysis more intuitive and accessible for those without a strong statistics background.

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