Comment by thom
4 days ago
I think this expectation that data science code is a thing you write basically top to bottom to get some answers out, put them in a graph and move on with your life is not a useful lens through which to evaluate two programming languages. R definitely is an efficient DSL for doing stats this way, but it’s a painful way to build a durable piece of software. Python is nowhere near perfect but I’ve seen fewer codebases that made my eyes bleed, however pretty the graphs might look.
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