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Steves Data and R channel

Steves Data and R channel

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Talk mainly about data, R, SQL etc.

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频道帖子
In the next month or so, I'm going to "close" the channel. I won't be posting anymore. If you are looking for a good channel I suggest you follow https://t.me/ramikrispinds

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I'm not yet back to writing my blog because I'm not feeling it at the moment, still on break. Here, though is a basic usage article for using my #RandomWalker #RStats library. https://www.spsanderson.com/RandomWalker/articles/basic-concepts.html
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Here is today's #R #Blog #Post on using the unname() function. Post: https://www.spsanderson.com/steveondata/posts/2025-12-01/
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Here I am using my #RandomWalker #RStats package to graph possible animal foraging paths. Many things can be done with some i+1
Here I am using my #RandomWalker #RStats package to graph possible animal foraging paths. Many things can be done with some imagination :) Reference Link: https://www.spsanderson.com/RandomWalker/articles/multi-dimensional-walks.html#use-cases
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Got some documentation vignettes going up. Starting with #RandomWalker Home Wiki: https://www.spsanderson.com/RandomWalker/articles/home.html #RStats #R #Random
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Today's blog post is about for loops with a range in R Post: https://www.spsanderson.com/steveondata/posts/2025-11-17/ #R #RStats #ForLoop #Range
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I most likely will not post this week, I’ll see how my back is next week
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Today's Python article, remember, I'm learning so be kind or rewind :) Post: https://www.spsanderson.com/steveondata/posts/2025-11-06/ #Python #TextMessage #Email #Gmail #Twillio #Text
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Loops in R? Got you covered. Here is today's post regarding nested for loops. Post: https://www.spsanderson.com/steveondata/posts/2025-11-03/
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Here is this weeks R post, it deals with using ollama for RAG. Post: https://www.spsanderson.com/steveondata/posts/2025-10-29/
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For today's article here are: Audio Overview: https://app.dotadda.io/teams/ab732481-52f3-4388-896c-23d34e828b35/dots/c381844d-1ce0-4501-a099-7e1772a17f8d Video Overview: https://app.dotadda.io/teams/ab732481-52f3-4388-896c-23d34e828b35/dots/000c92f3-e2f2-4299-8e64-7c7bab1b9ac5 Overviews generated by Gemini from my article.
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Today's Python post is about time, datetime, and schedule. import time # Measure how long code takes to run start_time = time.time() # Your code here end_time = time.time() print(f"Execution time: {end_time - start_time} seconds") # Pause execution for 3 seconds time.sleep(3) print("This prints after 3 seconds!") Post: https://www.spsanderson.com/steveondata/posts/2025-10-23/
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My new course with LinkedIn for Learning - Build with AI: SQL Agents with Large Language Models is out! 🚀 Here is what it covers 👇🏼 https://open.substack.com/pub/ramikrispin/p/new-course-build-sql-ai-agent-from?r=1x99er&utm_medium=ios
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Today's blog post is a simple one, but still important to your data. Looking at dropping NA values. Post: https://www.spsanderson.com/steveondata/posts/2025-10-20/
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Looking at the AIC of my global package downloads using all available util_*_aic functions in my TidyDensity package #R #RSta
Looking at the AIC of my global package downloads using all available util_*_aic functions in my TidyDensity package #R #RStats
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I came across a problem yesterday where I wanted to combine .md files from sub directories and place the combined file in each respective directory, so I wrote this: # Libraries ---- library(tidyverse) # Directory ---- ## Make a list of input directories ---- base_path <- "C:/file/path/" input_dirs <- list.dirs(base_path)[-1] input_dir_tbl <- tibble( input_dir = input_dirs ) |> mutate(output_dir = paste0(input_dir, "/", basename(input_dir), "_combined_files.md")) input_dir_tbl |> group_split(input_dir) |> imap( .f = function(obj, id){ input_dir = obj$input_dir output_dir = obj$output_dir # Check if the directory exists if (!dir.exists(input_dir)) { stop(paste("Error: Directory", input_dir, "does not exist.")) } # List all .md files in the directory ---- cat("Searching for .md files in:", input_dir, "\n") md_files <- list.files(path = input_dir, pattern = "\\.md$", full.names = TRUE) # Check if any .md files were found if (length(md_files) == 0) { stop("No .md files found in the specified directory.") } cat("Found", length(md_files), ".md files:\n") for (file in md_files) { cat("-", basename(file), "\n") } # Read and combine the contents of all .md files cat("\nReading and combining files...\n") combined_content <- character(0) for (file in md_files) { cat("Processing:", basename(file), "\n") # Add a header separator for each file (optional) file_header <- paste("\n<!-- Content from:", basename(file), "-->\n") combined_content <- c(combined_content, file_header) # Read the file content file_content <- readLines(file, warn = FALSE) combined_content <- c(combined_content, file_content) # Add some spacing between files combined_content <- c(combined_content, "\n") } # Write the combined content to the output file cat("Writing combined content to:", output_dir, "\n") writeLines(combined_content, output_dir) cat("Successfully combined", length(md_files), ".md files into", output_dir, "\n") cat("Total lines written:", length(combined_content), "\n") } ) Link: https://github.com/spsanderson/random_r_projects/blob/main/combine_md_files.R
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I forgot to post my latest Python blog post. So here it is: Post: https://www.spsanderson.com/steveondata/posts/2025-10-01/ Here is a link to audio and video both generated by NotebookLM from Google/Gemini, look on September 30 Dots: https://app.dotadda.io/teams/ab732481-52f3-4388-896c-23d34e828b35/dots?date=2025-09-08&timespan=month #Python
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I had shown how to use different imputation methods with healthyR.ai and so now I made a blogpost using that and hai_scale_data() Post: https://www.spsanderson.com/steveondata/posts/2025-09-29/
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Visualizing a few different method of imputation using my healthyR.ai package. I'm using the hai_impute_data() function. Refe+3
Visualizing a few different method of imputation using my healthyR.ai package. I'm using the hai_impute_data() function. Reference: https://www.spsanderson.com/healthyR.ai/reference/hai_data_impute.html
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TL;DR: Today I learned how to use Python to work with PDF and Word documents. I shared some simple code and tips for beginners. 🐍📄📝 In today's article, I talk about how you can use Python to handle PDF and Word files. I tried out some beginner-friendly code to pull text from PDFs, combine files, and even make new Word documents. For example, I used the PyPDF2 library to read text from a PDF file: import PyPDF2 with open('document.pdf', 'rb') as pdf: reader = PyPDF2.PdfFileReader(pdf) text = reader.getPage(0).extractText() print(text) I also used python-docx to create a Word document with just a few lines of code: from docx import Document doc = Document() doc.add_heading('Hello, Python!', 0) doc.add_paragraph('This was created automatically.') doc.save('hello.docx') I want to mention that I am still learning as I write this series. There might be mistakes or things I could do better. If you notice anything or have advice, please let me know. I appreciate any feedback and hope these examples help you get started with Python and document automation. Thanks for reading. If you have questions or suggestions, feel free to share. #Python #Automation #LearningTogether 🔗 Read more: https://www.spsanderson.com/steveondata/posts/2025-09-24/ My main source of learning: https://automatetheboringstuff.com/2e/chapter15/
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