#' Retrieve archived DISPATCH_FCAS_REQ data
#'
#' This function returns one month of DISPATCH_FCAS_REQ data from AEMO's NEMWeb as specified by the datestring argument
#'
#' DISPATCH_FCAS_REQ data contains historical 5-minute generation quantities for all scheduled and non-scheduled generators in the NEM.
#'
#' Archive data is available from July 2009 to approximately one month ago. In order to retrieve newer data you will need to use the nemwebR_current_DISPATCH_FCAS_REQ function.
#'
#'
#' @param datestring integer of the form YYYYMM
#'
#' @return A data frame
#' @export
#'
#' @examples
#' nemwebR_archive_dispatch_fcas_req(202101)
#'
nemwebR_archive_dispatch_fcas_req <- function(datestring) {
temp <- tempfile()
utils::download.file(url = stringr::str_c(
"https://nemweb.com.au/Data_Archive/Wholesale_Electricity/MMSDM/",
stringr::str_sub(datestring, start = 1, end = 4),
"/MMSDM_",
stringr::str_sub(datestring, start = 1, end = 4),
"_",
stringr::str_sub(datestring, start = 5, end = 6),
"/MMSDM_Historical_Data_SQLLoader/DATA/",
"PUBLIC_DVD_DISPATCH_FCAS_REQ_",
datestring,
"010000.zip"),
destfile = temp, mode = "wb", quiet = TRUE)
data_file <- utils::read.csv(utils::unzip(temp), header = FALSE)
## Dump the files from the hard drive
unlink(temp)
unlink(stringr::str_c(
"PUBLIC_DVD_DISPATCH_FCAS_REQ_",
datestring,
"010000.csv")
)
colnames(data_file) <- data_file[2, ]
data_file <- data_file[-c(1:2), -c(1:4)]
data_file <- utils::head(data_file, -1)
data_file$SETTLEMENTDATE <- as.POSIXct(data_file$SETTLEMENTDATE,
tz = "Australia/Brisbane",
format = "%Y/%m/%d %H:%M:%S")
data_file$GENCONEFFECTIVEDATE <- as.POSIXct(data_file$GENCONEFFECTIVEDATE,
tz = "Australia/Brisbane",
format = "%Y/%m/%d %H:%M:%S")
data_file$LASTCHANGED <- as.POSIXct(data_file$LASTCHANGED,
tz = "Australia/Brisbane",
format = "%Y/%m/%d %H:%M:%S")
data_file <- data_file %>% dplyr::mutate(dplyr::across(.cols = c(2:3, 8:9, 11:16), .fns = as.numeric))
# Select for the physical run (intervention = 1)
data_file <- data_file %>% dplyr::group_by(SETTLEMENTDATE, REGIONID) %>%
dplyr::slice(which.max(INTERVENTION))
return(data_file)
}
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