krackhardt_datasets
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| krackhardt_datasets [2019/12/13 09:47] – hkimscil | krackhardt_datasets [2019/12/13 14:11] (current) – hkimscil | ||
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| < | < | ||
| - | # Next, we'll use the same procedure to add social-interaction | + | # Next, we'll use the same procedure to add advice |
| # information. | # information. | ||
| krack_advice_matrix_row_to_col <- get.adjacency(krack_advice, | krack_advice_matrix_row_to_col <- get.adjacency(krack_advice, | ||
| Line 226: | Line 226: | ||
| krack_advice_matrix <- rbind(krack_advice_matrix_row_to_col, | krack_advice_matrix <- rbind(krack_advice_matrix_row_to_col, | ||
| krack_advice_matrix | krack_advice_matrix | ||
| - | + | </ | |
| + | |||
| + | |||
| + | < | ||
| + | krack_friend_matrix_row_to_col <- get.adjacency(krack_friend, | ||
| + | krack_friend_matrix_row_to_col | ||
| + | |||
| + | # To operate on a binary graph, simply leave off the " | ||
| + | # parameter: | ||
| + | krack_friend_matrix_row_to_col_bin <- get.adjacency(krack_friend) | ||
| + | krack_friend_matrix_row_to_col_bin | ||
| + | |||
| + | # For this lab, we'll use the valued graph. The next step is to | ||
| + | # concatenate it with its transpose in order to capture both | ||
| + | # incoming and outgoing task interactions. | ||
| + | krack_friend_matrix_col_to_row <- t(as.matrix(krack_friend_matrix_row_to_col)) | ||
| + | krack_friend_matrix_col_to_row | ||
| + | |||
| + | krack_friend_matrix <- rbind(krack_friend_matrix_row_to_col, | ||
| + | krack_friend_matrix | ||
| + | </ | ||
| + | |||
| + | |||
| + | < | ||
| + | # ra (ar) | ||
| krack_reports_to_advice_matrix <- rbind(krack_reports_to_matrix, | krack_reports_to_advice_matrix <- rbind(krack_reports_to_matrix, | ||
| krack_reports_to_advice_matrix | krack_reports_to_advice_matrix | ||
| + | |||
| + | # fa | ||
| + | krack_friend_advice_matrix <- rbind(krack_friend_matrix, | ||
| + | krack_friend_advice_matrix | ||
| + | |||
| + | # fr | ||
| + | krack_friend_reports_to_matrix <- rbind(krack_friend_matrix, | ||
| + | krack_friend_reports_to_matrix | ||
| + | |||
| + | |||
| + | # far | ||
| + | krack_friend_advice_reports_to_matrix <- rbind(krack_friend_advice_matrix, | ||
| + | krack_friend_advice_reports_to_matrix | ||
| </ | </ | ||
| + | |||
| < | < | ||
| Line 238: | Line 276: | ||
| krack_reports_to_advice_cors <- cor(as.matrix(krack_reports_to_advice_matrix)) | krack_reports_to_advice_cors <- cor(as.matrix(krack_reports_to_advice_matrix)) | ||
| krack_reports_to_advice_cors | krack_reports_to_advice_cors | ||
| + | |||
| + | krack_friend_advice_cors <- cor(as.matrix(krack_friend_advice_matrix)) | ||
| + | krack_friend_advice_cors | ||
| + | |||
| + | krack_friend_reports_to_cors <- cor(as.matrix(krack_friend_reports_to_matrix)) | ||
| + | krack_friend_reports_to_cors | ||
| + | |||
| + | krack_friend_advice_reports_to_cors <- cor(as.matrix(krack_friend_advice_reports_to_matrix)) | ||
| + | krack_friend_advice_reports_to_cors | ||
| + | |||
| + | |||
| </ | </ | ||
| Line 246: | Line 295: | ||
| # or equal to 0; thus, highly dissimilar (i.e., negatively | # or equal to 0; thus, highly dissimilar (i.e., negatively | ||
| # correlated) actors have higher values. | # correlated) actors have higher values. | ||
| - | dissimilarity | + | dissimilarity_ra |
| - | krack_reports_to_dist | + | krack_reports_to_advice_dist |
| - | krack_reports_to_dist | + | krack_reports_to_advice_dist |
| + | dissimilarity_fa <- 1 - krack_friend_advice_cors | ||
| + | krack_friend_advice_dist <- as.dist(dissimilarity_fa) | ||
| + | krack_friend_advice_dist | ||
| + | |||
| + | dissimilarity_rf <- 1 - krack_reports_to_friend_cors | ||
| + | krack_reports_to_friend_dist <- as.dist(dissimilarity_rf) | ||
| + | krack_reports_to_friend_dist | ||
| + | |||
| + | dissimilarity_far <- 1 - krack_friend_advice_reports_to_cors | ||
| + | krack_friend_advice_reports_to_dist <- as.dist(dissimilarity_far) | ||
| + | krack_friend_advice_reports_to_dist | ||
| + | |||
| + | |||
| + | |||
| # Note that it is also possible to use dist() directly on the | # Note that it is also possible to use dist() directly on the | ||
| # matrix. However, since cor() looks at associations between | # matrix. However, since cor() looks at associations between | ||
krackhardt_datasets.1576198076.txt.gz · Last modified: by hkimscil
