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56 lines
1.6 KiB
R
56 lines
1.6 KiB
R
pqc_to_grid <- function(pqc_in, grid) {
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# Convert the input DataFrame to a matrix
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pqc_in <- as.matrix(pqc_in)
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# Flatten the matrix into a vector
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id_vector <- as.numeric(t(grid))
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# Find the matching rows in the matrix
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row_indices <- match(id_vector, pqc_in[, "ID"])
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# Extract the matching rows from pqc_in to size of grid matrix
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result_mat <- pqc_in[row_indices, ]
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# Convert the result matrix to a data frame
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res_df <- as.data.frame(result_mat)
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# Remove all columns which only contain NaN
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res_df <- res_df[, colSums(is.na(res_df)) != nrow(res_df)]
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# Remove row names
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rownames(res_df) <- NULL
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return(res_df)
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}
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resolve_pqc_bound <- function(pqc_mat, transport_spec, id) {
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df <- as.data.frame(pqc_mat, check.names = FALSE)
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value <- df[df$ID == id, transport_spec]
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if (is.nan(value)) {
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value <- 0
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}
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return(value)
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}
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add_missing_transport_species <- function(init_grid, new_names) {
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# add 'ID' to new_names front, as it is not a transport species but required
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new_names <- c("ID", new_names)
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sol_length <- length(new_names)
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new_grid <- data.frame(matrix(0, nrow = nrow(init_grid), ncol = sol_length))
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names(new_grid) <- new_names
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matching_cols <- intersect(names(init_grid), new_names)
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# Copy matching columns from init_grid to new_grid
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new_grid[, matching_cols] <- init_grid[, matching_cols]
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# Add missing columns to new_grid
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append_df <- init_grid[, !(names(init_grid) %in% new_names)]
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new_grid <- cbind(new_grid, append_df)
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return(new_grid)
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} |