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| # Function to set all vector items to blank except for every nth item | |
| everyn <- function(myvec, n){ | |
| myvec <- sort(unique(myvec)) | |
| for(i in 1:length(myvec)) { | |
| if( i %% n != 1) { | |
| myvec[i] <- "" | |
| } | |
| } | |
| return(myvec) |
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| library(rvest) | |
| library(rio) | |
| library(dplyr) | |
| library(xml2) | |
| # If your spreadsheet is named "data.xlsx" and the column with submitter names is named "submitting_lab" | |
| data <- rio::import("data.xlsx") %>% | |
| dplyr::pull(submitting_lab) %>% | |
| unique() |
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| snippet mygis_dt_merge_districts_2_precincts | |
| ${1:my_geography} <- as.data.table(${1:my_geography}) | |
| ${2:my_new_geography} <- fram2[, .(geometry = st_union(geometry)), by = ${3:larger_district}] | |
| ${2:my_new_geography} <- sf::st_sf(${2:my_new_geography}) | |
| # test plot | |
| # ggplot(${2:my_new_geography}, aes(geometry=geometry)) + | |
| # geom_sf() |
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| State | TotalDistributed | TotalAdministered | ReportDate | Used | PctUsed | color | |
|---|---|---|---|---|---|---|---|
| CT | 740300 | 542414 | 2021-02-08 | 0.732694853437796 | 73.3 | #3366CC | |
| MA | 1247600 | 806376 | 2021-02-08 | 0.646341776210324 | 64.6 | #003399 | |
| ME | 254550 | 178449 | 2021-02-08 | 0.701037124337065 | 70.1 | #3366CC | |
| NH | 257700 | 166603 | 2021-02-08 | 0.646499805975941 | 64.6 | #3366CC | |
| NY | 3378300 | 2418074 | 2021-02-08 | 0.715766509783027 | 71.6 | #3366CC | |
| RI | 192300 | 120484 | 2021-02-08 | 0.626541861674467 | 62.7 | #3366CC | |
| VT | 116075 | 90328 | 2021-02-08 | 0.778186517337928 | 77.8 | #3366CC | |
| CT | 740300 | 533941 | 2021-02-07 | 0.721249493448602 | 72.1 | #3366CC | |
| MA | 1247600 | 780268 | 2021-02-07 | 0.625415197178583 | 62.5 | #003399 |
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| #' Description | |
| #' This file runs a live election-night forecast based on The Economist's pre-election forecasting model | |
| #' available at projects.economist.com/us-2020-forecast/president. | |
| #' It is resampling model based on https://pkremp.github.io/update_prob.html. | |
| #' This script does not input any real election results! You will have to enter your picks/constraints manually (scroll to the bottom of the script). | |
| #' | |
| #' Licence | |
| #' This software is published by *[The Economist](https://www.economist.com)* under the [MIT licence](https://opensource.org/licenses/MIT). The data generated by *The Economist* are available under the [Creative Commons Attribution 4.0 International License](https://creativecommons.org/licenses/by/4.0/). | |
| #' The licences include only the data and the software authored by *The Economist*, and do not cover any *Economist* content or third-party data or content made available using the software. More information about licensing, syndication and the copyright of *Economist* content can be fou |
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| library(reactable) | |
| library(dplyr) | |
| red_pal <- function(x) rgb(colorRamp(c("#FFCDD2FF", "#C62828FF"))(x), maxColorValue = 255) | |
| blue_pal <- function(x) rgb(colorRamp(c("#BBDEFBFF", "#1565C0FF"))(x), maxColorValue = 255) | |
| mtcars %>% | |
| select(cyl, mpg) %>% | |
| reactable( | |
| pagination = FALSE, |
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| # 1. Scrape tables. You can do that with the Table Capture Chrome extension, or you can do it with R. | |
| # Download the entire html document so I don't need to keep hammering the Wikipedia server | |
| library(htmltab) | |
| library(rvest) | |
| library(purrr) | |
| library(dplyr) |
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| library(dplyr) | |
| library(tidyr) | |
| library(janitor) | |
| library(stringr) | |
| starwars_garbage_data1 <- data.frame( | |
| stringsAsFactors = FALSE, | |
| v1 = c( | |
| "Character Name", "C-3PO", "Person-film ID", "2218529825", "7731900678", | |
| "123598423", "238952395", "6232048034", "3036308047", |
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| price_median1 <- readr::read_csv("https://raw.githubusercontent.com/smach/BU-dataviz-workshop-2019/master/data/zillow_data_median_sf_price.csv") | |
| str(price_median1) | |
| price_median2 <- read.csv("https://raw.githubusercontent.com/smach/BU-dataviz-workshop-2019/master/data/zillow_data_median_sf_price.csv") | |
| str(price_median2) |
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| if(!require(pacman)){ | |
| install.packages("pacman") | |
| } | |
| p_load(ggplot2, dplyr, janitor) | |
| district <-c("A","B","C","A","B", "C") | |
| money <-c(500,324,245,654,234, 232) | |
| year <- c("2001", "2001", "2001", "2002", "2002", "2002") | |
| df <- data.frame(district, money, year, stringsAsFactors = FALSE) | |
| total_by_year <- df %>% | |
| group_by(year) %>% |