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A toolbox

My own toolbox in my small workshop is a mix of some old, worn, well proven tools and some newcomers. This package should be seen as something like that.

I have tried to collect tools and functions from other packages that I use regularly in addition to functions that I have written myself to fill use cases, that I have not been able to find solutions to elsewhere.

In documenting and testing the package, I have used OpenAI’s chatgpt with gpttools. The chatgpt is an interesting tool, that is in no way perfect, but it helps with tedious tasks. Both gpttools and gptstudio are interesting implementations in R and RStudio.

CPR manipulations

Note that, if handled, CPR numbers (social security numbers) should be handled with care as they a considered highly sensitive data.

The CPR number is structured as DDMMYY-XXXX, with the 1st X designating decade of birth, the last X designate binary gender (not biological sex) dependent on even/uneven as female/male, and the last for digits are used in a modulus calculation to verify the validity of the CPR number. Foreigners and unidentified persons are given temporary CPR numbers including letters.

More information can be found on cpr.dk.

Note, that all CPR numbers used in examples are publicly known or non-organic.

age_calc()

The age_calc() function was created as a learning exercise and functions similarly to lubridate::time_length().

(age <- age_calc(as.Date("1945-10-23"), as.Date("2018-09-30")))
#> [1] 72.93699
trunc(age)
#> [1] 72

cpr_check()

Checks validity of CPR numbers according to the modulus 11 rule. Note that due to limitations in the possible available CPR numbers, this rule does not apply to all CPR numbers after 2007.

cpr_check(
  c(
    "2310450637",
    "010190-2000",
    "010115-4000",
    "300450-1030",
    "010150-4021",
    "010150-4AA1"
  )
)
#> OBS: as per 2007 not all valid CPR numbers apply to modulus 11 rule.
#>     
#> See the vignette 'Toolbox'
#> Warning in matrix(as.numeric(unlist(strsplit(cpr_short, ""))), nrow = 10): NAs
#> introduced by coercion
#> [1]  TRUE FALSE FALSE FALSE FALSE    NA

Including CPR numbers with letters gives a warning and NA, as it can not be checked by the modulus 11 function. Should be used with care, see the message.

cpr_dob()

Extracts date of birth (DOB) from a CPR number. Accounts for the decade of birth. See earlier.

cpr_dob(c(
  "2310450637",
  "010190-2000",
  "010115-4000",
  "300450-1030",
  "010150-4021"
))
#> [1] "23-10-1945" "01-01-1990" "01-01-2015" "30-04-1950" "01-01-1950"

cpr_female()

Gives logical vector of whether female gender from last digit of CPR.

table(cpr_female(stRoke::cprs[, 1]))
#> 
#> FALSE  TRUE 
#>    98   102

Plotting

ci_plot()

Plots odds ratios with 95 % confidence intervals. Performs binary logistic regression for outcome factors with two (2) levels and ordinal logistic regression for outcome factors with more than two levels. Mind relevant assumptions.

Outputs ggplot element for further manipulation.

data(talos)
talos[, "mrs_1"] <- factor(talos[, "mrs_1"], ordered = TRUE)
ci_plot(
  ds = talos,
  x = "rtreat",
  y = "mrs_1",
  vars = c("hypertension", "diabetes")
)
#> Waiting for profiling to be done...

generic_stroke()

For learning purposes. Uses annonymized data from the TALOS trial to output a Table 1 (with gtsummary::tbl_summary()), plotting the so-called grotta-bars based on mRS scores (with rankinPlot::grottaBar()) and a ordinal logistic regression model plot (with stRoke::ci_plot()).

generic_stroke(stRoke::talos,
               "rtreat",
               "mrs_6",
               variables = c("hypertension", "diabetes", "civil"))
#> Waiting for profiling to be done...
#> $`Table 1`
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#> </style>
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#>   
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#>     <tr>
#>       <th class="gt_col_heading gt_columns_bottom_border gt_left" rowspan="1" colspan="1" scope="col" id="&lt;strong&gt;Characteristic&lt;/strong&gt;"><strong>Characteristic</strong></th>
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#>       <th class="gt_col_heading gt_columns_bottom_border gt_center" rowspan="1" colspan="1" scope="col" id="&lt;strong&gt;Active&lt;/strong&gt;, N = 79&lt;sup class=&quot;gt_footnote_marks&quot;&gt;1&lt;/sup&gt;"><strong>Active</strong>, N = 79<sup class="gt_footnote_marks">1</sup></th>
#>       <th class="gt_col_heading gt_columns_bottom_border gt_center" rowspan="1" colspan="1" scope="col" id="&lt;strong&gt;Placebo&lt;/strong&gt;, N = 121&lt;sup class=&quot;gt_footnote_marks&quot;&gt;1&lt;/sup&gt;"><strong>Placebo</strong>, N = 121<sup class="gt_footnote_marks">1</sup></th>
#>     </tr>
#>   </thead>
#>   <tbody class="gt_table_body">
#>     <tr><td headers="label" class="gt_row gt_left">hypertension</td>
#> <td headers="stat_0" class="gt_row gt_center">101 (50%)</td>
#> <td headers="stat_1" class="gt_row gt_center">38 (48%)</td>
#> <td headers="stat_2" class="gt_row gt_center">63 (52%)</td></tr>
#>     <tr><td headers="label" class="gt_row gt_left">diabetes</td>
#> <td headers="stat_0" class="gt_row gt_center">23 (12%)</td>
#> <td headers="stat_1" class="gt_row gt_center">9 (11%)</td>
#> <td headers="stat_2" class="gt_row gt_center">14 (12%)</td></tr>
#>     <tr><td headers="label" class="gt_row gt_left">civil</td>
#> <td headers="stat_0" class="gt_row gt_center"></td>
#> <td headers="stat_1" class="gt_row gt_center"></td>
#> <td headers="stat_2" class="gt_row gt_center"></td></tr>
#>     <tr><td headers="label" class="gt_row gt_left">    alone</td>
#> <td headers="stat_0" class="gt_row gt_center">59 (30%)</td>
#> <td headers="stat_1" class="gt_row gt_center">22 (28%)</td>
#> <td headers="stat_2" class="gt_row gt_center">37 (31%)</td></tr>
#>     <tr><td headers="label" class="gt_row gt_left">    partner</td>
#> <td headers="stat_0" class="gt_row gt_center">141 (70%)</td>
#> <td headers="stat_1" class="gt_row gt_center">57 (72%)</td>
#> <td headers="stat_2" class="gt_row gt_center">84 (69%)</td></tr>
#>   </tbody>
#>   
#>   <tfoot class="gt_footnotes">
#>     <tr>
#>       <td class="gt_footnote" colspan="4"><sup class="gt_footnote_marks">1</sup> n (%)</td>
#>     </tr>
#>   </tfoot>
#> </table>
#> </div>
#> 
#> $`Figure 1`

#> 
#> $`Figure 2`

index_plot()

Used for plotting scores from a multi dimensional patient test.

index_plot(stRoke::score[score$event == "A", ])

win_prob()

The win_prob() is an implementation of the Tournament Method for calculating the probability of winning as suggested by Zou et al 2022. The authors has included a spreadsheet as supplementary materials. This function aims to mimic that functionality. The function also includes a print() extension for nice printing.

win_prob(
  data = stRoke::talos,
  response = "mrs_6",
  group = "rtreat",
  sample.size = TRUE,
  print.tables = TRUE
)
#> $list_cum
#> $list_cum$Active
#>   mrs_6 rtreat Freq       prop overall_rank rank    win_frac
#> 1     0 Active   14 0.17721519        175.0 72.5 0.847107438
#> 2     1 Active   29 0.36708861        113.5 51.0 0.516528926
#> 3     2 Active   22 0.27848101         49.0 25.5 0.194214876
#> 4     3 Active    9 0.11392405         15.0 10.0 0.041322314
#> 5     4 Active    3 0.03797468          7.0  4.0 0.024793388
#> 6     6 Active    2 0.02531646          2.5  1.5 0.008264463
#> 
#> $list_cum$Placebo
#>    mrs_6  rtreat Freq       prop overall_rank  rank   win_frac
#> 7      0 Placebo   37 0.30578512        175.0 103.0 0.91139241
#> 8      1 Placebo   43 0.35537190        113.5  63.0 0.63924051
#> 9      2 Placebo   35 0.28925620         49.0  24.0 0.31645570
#> 10     3 Placebo    2 0.01652893         15.0   5.5 0.12025316
#> 11     4 Placebo    2 0.01652893          7.0   3.5 0.04430380
#> 12     6 Placebo    2 0.01652893          2.5   1.5 0.01265823
#> 
#> 
#> $group_levels
#> [1] "Active"  "Placebo"
#> 
#> $sum_a
#> [1] 79
#> 
#> $sum_b
#> [1] 121
#> 
#> $winP_a
#> [1] 0.3996757
#> 
#> $winP_b
#> [1] 0.6003243
#> 
#> $var_win_frac_a
#> [1] 0.07609113
#> 
#> $var_win_frac_b
#> [1] 0.06806341
#> 
#> $var_win_prob
#> [1] 0.001525686
#> 
#> $se_win_prob
#> [1] 0.03906004
#> 
#> $conf.int
#> [1] 0.6124886 0.3724300
#> 
#> $test_stat
#> [1] 2.498962
#> 
#> $p_val
#> [1] 0.01245577
#> 
#> $nnt
#> [1] -9.967675
#> 
#> $ss_n
#> [1] 238
#> 
#> $param.record
#> $param.record$data
#>      rtreat mrs_1 mrs_6 hypertension diabetes   civil
#> 38   Active     1     1           no       no partner
#> 434  Active     1     1          yes       no partner
#> 588  Active     2     2          yes       no partner
#> 42   Active     0     0          yes       no partner
#> 160 Placebo     1     1          yes       no partner
#> 174  Active     0     1          yes       no   alone
#> 11  Placebo     2     1          yes      yes   alone
#> 601 Placebo     1     1           no       no partner
#> 412  Active     0     0          yes       no partner
#> 88  Placebo     1     1          yes      yes partner
#> 56  Placebo     0     0           no       no   alone
#> 235 Placebo     2     1          yes      yes   alone
#> 205  Active     3     3           no       no partner
#> 62   Active     2     2          yes       no   alone
#> 593 Placebo     2     2           no       no   alone
#> 143  Active     2     1          yes       no partner
#> 520  Active     2     2           no      yes partner
#> 144 Placebo     1     0          yes       no partner
#> 383  Active     2     3           no       no   alone
#> 347 Placebo     1     0          yes      yes partner
#> 346  Active     1     2          yes       no partner
#> 318 Placebo     2     2           no       no partner
#> 231 Placebo     2     2           no       no partner
#> 190  Active     1     1          yes       no partner
#> 287 Placebo     2     2          yes       no partner
#> 633 Placebo     1     1           no       no partner
#> 228 Placebo     4     3          yes       no partner
#> 409  Active     1     2          yes       no partner
#> 603 Placebo     2     1           no       no   alone
#> 628 Placebo     1     2           no       no partner
#> 91   Active     1     0          yes       no partner
#> 537 Placebo     4     4           no       no partner
#> 75  Placebo     1     2          yes       no partner
#> 282 Placebo     1     0           no       no partner
#> 249  Active     1     1           no       no   alone
#> 72   Active     2     3          yes       no partner
#> 222  Active     2     2          yes       no partner
#> 258 Placebo     0     1           no       no partner
#> 134  Active     4     4           no       no partner
#> 117  Active     1     1           no      yes partner
#> 377  Active     2     1           no       no partner
#> 583 Placebo     3     2          yes       no partner
#> 552  Active     3     1          yes       no   alone
#> 124 Placebo     2     2          yes      yes partner
#> 189 Placebo     1     0           no      yes partner
#> 521 Placebo     1     2          yes      yes   alone
#> 429  Active     2     1           no       no partner
#> 203 Placebo     1     1          yes       no partner
#> 172  Active     1     2           no       no partner
#> 402 Placebo     2     2          yes       no partner
#> 574 Placebo     1     1          yes       no partner
#> 271  Active     4     3           no       no partner
#> 50  Placebo     3     2           no       no   alone
#> 264  Active     4     2           no       no   alone
#> 571  Active     2     0          yes       no partner
#> 239  Active     3     3          yes       no   alone
#> 262 Placebo     2     1          yes       no partner
#> 236 Placebo     1     1           no       no partner
#> 94  Placebo     1     1           no       no partner
#> 275 Placebo     0     0           no       no partner
#> 26  Placebo     2     4           no       no   alone
#> 476 Placebo     1     1           no       no   alone
#> 427  Active     2     3          yes       no   alone
#> 359 Placebo     1     2          yes       no   alone
#> 341  Active     4     3          yes       no   alone
#> 457  Active     1     1          yes      yes partner
#> 485 Placebo     0     0           no       no partner
#> 171 Placebo     2     2           no       no partner
#> 97  Placebo     2     1          yes       no partner
#> 635 Placebo     1     2           no       no   alone
#> 472 Placebo     1     0          yes       no partner
#> 408  Active     1     1          yes      yes partner
#> 158 Placebo     0     0           no       no partner
#> 63  Placebo     1     0           no      yes   alone
#> 557  Active     2     2           no       no partner
#> 73   Active     1     1          yes       no partner
#> 425 Placebo     2     0          yes       no partner
#> 423 Placebo     2     2          yes      yes partner
#> 272  Active     2     1          yes       no   alone
#> 122  Active     1     0           no       no partner
#> 370  Active     0     1           no       no partner
#> 274 Placebo     0     0           no       no partner
#> 407  Active     0     0           no       no partner
#> 482 Placebo     1     1           no       no partner
#> 586  Active     6     6          yes      yes partner
#> 20  Placebo     1     2           no       no   alone
#> 568  Active     1     0           no       no partner
#> 331 Placebo     1     1           no       no   alone
#> 133 Placebo     1     1           no       no partner
#> 563  Active     4     4          yes       no partner
#> 349 Placebo     1     2          yes      yes   alone
#> 381 Placebo     1     1          yes       no partner
#> 549 Placebo     1     1           no       no   alone
#> 34   Active     1     1           no       no   alone
#> 33  Placebo     0     0          yes       no   alone
#> 531 Placebo     2     2          yes       no   alone
#> 389  Active     1     0           no       no   alone
#> 64   Active     1     1          yes      yes   alone
#> 428  Active     2     1          yes       no partner
#> 403 Placebo     2     2          yes       no   alone
#> 343 Placebo     1     0           no       no partner
#> 294  Active     2     2           no       no   alone
#> 76  Placebo     3     1           no       no   alone
#> 166 Placebo     1     0          yes       no partner
#> 209 Placebo     0     1          yes       no partner
#> 626  Active     2     2          yes       no   alone
#> 481  Active     5     3           no       no partner
#> 376  Active     2     2          yes      yes partner
#> 67   Active     3     2           no       no partner
#> 130 Placebo     2     1           no       no partner
#> 250  Active     2     1          yes       no partner
#> 609  Active     2     2           no       no partner
#> 545 Placebo     3     2          yes       no partner
#> 226 Placebo     2     1           no       no partner
#> 276 Placebo     1     2           no       no partner
#> 305 Placebo     0     0          yes       no partner
#> 202 Placebo     1     0          yes       no   alone
#> 245 Placebo     1     1           no       no partner
#> 131  Active     3     1           no       no partner
#> 505  Active     2     1           no       no partner
#> 546 Placebo     2     2          yes       no   alone
#> 639 Placebo     1     1          yes      yes partner
#> 219  Active     2     1          yes       no partner
#> 244 Placebo     2     2          yes       no   alone
#> 348 Placebo     0     0           no       no partner
#> 280 Placebo     0     0          yes       no partner
#> 504 Placebo     2     2          yes       no partner
#> 51  Placebo     1     1           no       no   alone
#> 493  Active     6     6           no       no   alone
#> 167 Placebo     0     1          yes       no partner
#> 58  Placebo     1     0           no       no partner
#> 169  Active     0     0           no       no partner
#> 293  Active     1     0           no       no partner
#> 334 Placebo     6     6           no       no partner
#> 28   Active     2     2          yes       no partner
#> 1   Placebo     0     0          yes       no partner
#> 463  Active     2     1          yes       no   alone
#> 445 Placebo     1     2          yes       no   alone
#> 320 Placebo     1     2          yes      yes   alone
#> 500 Placebo     0     0           no       no   alone
#> 175 Placebo     1     2          yes       no partner
#> 201 Placebo     0     0          yes       no partner
#> 142  Active     2     0           no       no partner
#> 278  Active     0     1          yes       no   alone
#> 181 Placebo     0     0           no       no partner
#> 193 Placebo     2     1          yes       no   alone
#> 321  Active     2     0           no       no partner
#> 598  Active     0     1           no       no partner
#> 217 Placebo     0     0          yes       no partner
#> 13   Active     1     1          yes       no partner
#> 242 Placebo     2     0          yes       no partner
#> 513 Placebo     1     1           no       no partner
#> 518 Placebo     2     2          yes       no partner
#> 304 Placebo     2     2           no       no partner
#> 587 Placebo     1     2           no       no   alone
#> 497 Placebo     0     1          yes       no partner
#> 296 Placebo     0     0          yes       no partner
#> 526  Active     1     1           no       no partner
#> 2   Placebo     2     1           no       no partner
#> 627  Active     2     2           no      yes partner
#> 126 Placebo     2     1          yes       no partner
#> 420 Placebo     2     0          yes       no partner
#> 392  Active     2     2          yes       no partner
#> 522 Placebo     3     2          yes       no   alone
#> 312  Active     4     4           no      yes partner
#> 9   Placebo     1     1           no       no partner
#> 29  Placebo     2     2           no       no   alone
#> 7   Placebo     1     1          yes       no partner
#> 49  Placebo     2     1           no      yes partner
#> 439 Placebo     3     2           no       no   alone
#> 46   Active     0     0          yes       no   alone
#> 80   Active     1     1           no       no partner
#> 237 Placebo     0     0          yes       no partner
#> 306 Placebo     2     0           no       no   alone
#> 345 Placebo     0     0          yes       no partner
#> 153  Active     2     2           no       no partner
#> 98  Placebo     1     0          yes       no partner
#> 44  Placebo     2     1          yes       no partner
#> 458  Active     3     2           no       no partner
#> 585 Placebo     1     1          yes       no partner
#> 211 Placebo     3     2           no      yes partner
#> 610  Active     1     1           no       no   alone
#> 310 Placebo     0     0           no       no   alone
#> 541  Active     4     2          yes       no partner
#> 161 Placebo     1     1           no       no partner
#> 641 Placebo     1     1           no       no partner
#> 538 Placebo     1     1           no       no partner
#> 281 Placebo     1     0           no       no partner
#> 301  Active     3     2          yes       no partner
#> 356  Active     3     2           no       no   alone
#> 59   Active     3     3           no       no   alone
#> 302 Placebo     1     0          yes       no partner
#> 116  Active     1     0           no       no partner
#> 547 Placebo     2     2           no       no partner
#> 22  Placebo     2     1           no       no partner
#> 517 Placebo     4     3          yes       no partner
#> 344 Placebo     1     1          yes       no partner
#> 48  Placebo     2     0          yes       no   alone
#> 100 Placebo     1     0          yes       no   alone
#> 93  Placebo     6     6          yes       no   alone
#> 
#> $param.record$response
#> [1] "mrs_6"
#> 
#> $param.record$group
#> [1] "rtreat"
#> 
#> $param.record$alpha
#> [1] 0.05
#> 
#> $param.record$beta
#> [1] 0.2
#> 
#> $param.record$group.ratio
#> [1] 1
#> 
#> $param.record$sample.size
#> [1] TRUE
#> 
#> $param.record$print.tables
#> [1] TRUE
#> 
#> $param.record$dec
#> [1] 3
#> 
#> 
#> attr(,"class")
#> [1] "win_Prop" "list"