Identify and count spells (Distinctive events within each group)












6















I'm looking for an efficient way to identify spells/runs in a time series. In the image below, the first three columns is what I have, the fourth column, spell is what I'm trying to compute. I've tried using dplyr's lead and lag, but that gets too complicated. I've tried rle but got nowhere.



enter image description here



ReprEx



df <- structure(list(time = structure(c(1538876340, 1538876400, 
1538876460,1538876520, 1538876580, 1538876640, 1538876700, 1538876760, 1526824800,
1526824860, 1526824920, 1526824980, 1526825040, 1526825100), class = c("POSIXct",
"POSIXt"), tzone = "UTC"), group = c("A", "A", "A", "A", "A", "A", "A", "A", "B",
"B", "B", "B", "B", "B"), is.5 = c(0, 1, 1, 0, 1, 0, 0, 1, 0, 0, 1, 1, 0, 1)),
class = c("tbl_df", "tbl", "data.frame"), row.names = c(NA, -14L))


I prefer a tidyverse solution.



Assumptions




  1. Data is sorted by group and then by time


  2. There are no gaps in time within each group






Update



Thanks for the contributions. I've timed some of the proposed approaches on the full data (n=2,583,360)




  1. the rle approach by @markus took 0.53 seconds

  2. the cumsum approach by @M-M took 2.85 seconds

  3. the function approach by @MrFlick took 0.66 seconds

  4. the rle and dense_rank by @tmfmnk took 0.89










share|improve this question




















  • 3





    For someone who is not familiar with how the spell is computed, can you share a formula or description?

    – nsinghs
    8 hours ago











  • @nsinghs I think they mean "hospital spell"

    – zx8754
    7 hours ago
















6















I'm looking for an efficient way to identify spells/runs in a time series. In the image below, the first three columns is what I have, the fourth column, spell is what I'm trying to compute. I've tried using dplyr's lead and lag, but that gets too complicated. I've tried rle but got nowhere.



enter image description here



ReprEx



df <- structure(list(time = structure(c(1538876340, 1538876400, 
1538876460,1538876520, 1538876580, 1538876640, 1538876700, 1538876760, 1526824800,
1526824860, 1526824920, 1526824980, 1526825040, 1526825100), class = c("POSIXct",
"POSIXt"), tzone = "UTC"), group = c("A", "A", "A", "A", "A", "A", "A", "A", "B",
"B", "B", "B", "B", "B"), is.5 = c(0, 1, 1, 0, 1, 0, 0, 1, 0, 0, 1, 1, 0, 1)),
class = c("tbl_df", "tbl", "data.frame"), row.names = c(NA, -14L))


I prefer a tidyverse solution.



Assumptions




  1. Data is sorted by group and then by time


  2. There are no gaps in time within each group






Update



Thanks for the contributions. I've timed some of the proposed approaches on the full data (n=2,583,360)




  1. the rle approach by @markus took 0.53 seconds

  2. the cumsum approach by @M-M took 2.85 seconds

  3. the function approach by @MrFlick took 0.66 seconds

  4. the rle and dense_rank by @tmfmnk took 0.89










share|improve this question




















  • 3





    For someone who is not familiar with how the spell is computed, can you share a formula or description?

    – nsinghs
    8 hours ago











  • @nsinghs I think they mean "hospital spell"

    – zx8754
    7 hours ago














6












6








6


1






I'm looking for an efficient way to identify spells/runs in a time series. In the image below, the first three columns is what I have, the fourth column, spell is what I'm trying to compute. I've tried using dplyr's lead and lag, but that gets too complicated. I've tried rle but got nowhere.



enter image description here



ReprEx



df <- structure(list(time = structure(c(1538876340, 1538876400, 
1538876460,1538876520, 1538876580, 1538876640, 1538876700, 1538876760, 1526824800,
1526824860, 1526824920, 1526824980, 1526825040, 1526825100), class = c("POSIXct",
"POSIXt"), tzone = "UTC"), group = c("A", "A", "A", "A", "A", "A", "A", "A", "B",
"B", "B", "B", "B", "B"), is.5 = c(0, 1, 1, 0, 1, 0, 0, 1, 0, 0, 1, 1, 0, 1)),
class = c("tbl_df", "tbl", "data.frame"), row.names = c(NA, -14L))


I prefer a tidyverse solution.



Assumptions




  1. Data is sorted by group and then by time


  2. There are no gaps in time within each group






Update



Thanks for the contributions. I've timed some of the proposed approaches on the full data (n=2,583,360)




  1. the rle approach by @markus took 0.53 seconds

  2. the cumsum approach by @M-M took 2.85 seconds

  3. the function approach by @MrFlick took 0.66 seconds

  4. the rle and dense_rank by @tmfmnk took 0.89










share|improve this question
















I'm looking for an efficient way to identify spells/runs in a time series. In the image below, the first three columns is what I have, the fourth column, spell is what I'm trying to compute. I've tried using dplyr's lead and lag, but that gets too complicated. I've tried rle but got nowhere.



enter image description here



ReprEx



df <- structure(list(time = structure(c(1538876340, 1538876400, 
1538876460,1538876520, 1538876580, 1538876640, 1538876700, 1538876760, 1526824800,
1526824860, 1526824920, 1526824980, 1526825040, 1526825100), class = c("POSIXct",
"POSIXt"), tzone = "UTC"), group = c("A", "A", "A", "A", "A", "A", "A", "A", "B",
"B", "B", "B", "B", "B"), is.5 = c(0, 1, 1, 0, 1, 0, 0, 1, 0, 0, 1, 1, 0, 1)),
class = c("tbl_df", "tbl", "data.frame"), row.names = c(NA, -14L))


I prefer a tidyverse solution.



Assumptions




  1. Data is sorted by group and then by time


  2. There are no gaps in time within each group






Update



Thanks for the contributions. I've timed some of the proposed approaches on the full data (n=2,583,360)




  1. the rle approach by @markus took 0.53 seconds

  2. the cumsum approach by @M-M took 2.85 seconds

  3. the function approach by @MrFlick took 0.66 seconds

  4. the rle and dense_rank by @tmfmnk took 0.89







r dataframe dplyr time-series tidyverse






share|improve this question















share|improve this question













share|improve this question




share|improve this question








edited 2 hours ago







Thomas Speidel

















asked 8 hours ago









Thomas SpeidelThomas Speidel

359216




359216








  • 3





    For someone who is not familiar with how the spell is computed, can you share a formula or description?

    – nsinghs
    8 hours ago











  • @nsinghs I think they mean "hospital spell"

    – zx8754
    7 hours ago














  • 3





    For someone who is not familiar with how the spell is computed, can you share a formula or description?

    – nsinghs
    8 hours ago











  • @nsinghs I think they mean "hospital spell"

    – zx8754
    7 hours ago








3




3





For someone who is not familiar with how the spell is computed, can you share a formula or description?

– nsinghs
8 hours ago





For someone who is not familiar with how the spell is computed, can you share a formula or description?

– nsinghs
8 hours ago













@nsinghs I think they mean "hospital spell"

– zx8754
7 hours ago





@nsinghs I think they mean "hospital spell"

– zx8754
7 hours ago












6 Answers
6






active

oldest

votes


















5














One option using rle



library(dplyr)
df %>%
group_by(group) %>%
mutate(
spell = {
r <- rle(is.5)
r$values <- cumsum(r$values) * r$values
inverse.rle(r)
}
)
# A tibble: 14 x 4
# Groups: group [2]
# time group is.5 spell
# <dttm> <chr> <dbl> <dbl>
# 1 2018-10-07 01:39:00 A 0 0
# 2 2018-10-07 01:40:00 A 1 1
# 3 2018-10-07 01:41:00 A 1 1
# 4 2018-10-07 01:42:00 A 0 0
# 5 2018-10-07 01:43:00 A 1 2
# 6 2018-10-07 01:44:00 A 0 0
# 7 2018-10-07 01:45:00 A 0 0
# 8 2018-10-07 01:46:00 A 1 3
# 9 2018-05-20 14:00:00 B 0 0
#10 2018-05-20 14:01:00 B 0 0
#11 2018-05-20 14:02:00 B 1 1
#12 2018-05-20 14:03:00 B 1 1
#13 2018-05-20 14:04:00 B 0 0
#14 2018-05-20 14:05:00 B 1 2


explanation



When we call



r <- rle(df$is.5)


the result we get is



r
#Run Length Encoding
# lengths: int [1:10] 1 2 1 1 2 1 2 2 1 1
# values : num [1:10] 0 1 0 1 0 1 0 1 0 1


We need to replace values with the cumulative sum where values == 1 while values should remain zero otherwise.



We can achieve this when we multiple cumsum(r$values) with r$values; where the latter is a vector of 0s and 1s.



r$values <- cumsum(r$values) * r$values
r$values
# [1] 0 1 0 2 0 3 0 4 0 5


Finally we call inverse.rle to get back a vector of the same length as is.5.



inverse.rle(r)
# [1] 0 1 1 0 2 0 0 3 0 0 4 4 0 5


We do this for every group.






share|improve this answer





















  • 1





    I understand why and how that works, but it'd be nice if you could draw your line of thoughts into the logic. Cheers.

    – M-M
    6 hours ago






  • 1





    @M-M Added some explanation. Thanks for the comment.

    – markus
    5 hours ago



















4














Here's a helper function that can return what you are after



spell_index <- function(time, flag) {
change <- time-lag(time)==1 & flag==1 & lag(flag)!=1
cumsum(change) * (flag==1)+0
}


And you can use it with your data like



library(dplyr)
df %>%
group_by(group) %>%
mutate(
spell = spell_index(time, is.5)
)


Basically the helper functions uses lag() to look for changes. We use cumsum() to increment the number of changes. Then we multiply by a boolean value so zero-out the values you want to be zeroed out.






share|improve this answer































    1














    This works,



    The data,



    df <- structure(list(time = structure(c(1538876340, 1538876400, 1538876460,1538876520, 1538876580, 1538876640, 1538876700, 1538876760, 1526824800, 1526824860, 1526824920, 1526824980, 1526825040, 1526825100), class = c("POSIXct", "POSIXt"), tzone = "UTC"), group = c("A", "A", "A", "A", "A", "A", "A", "A", "B", "B", "B", "B", "B", "B"), is.5 = c(0, 1, 1, 0, 1, 0, 0, 1, 0, 0, 1, 1, 0, 1)), class = c("tbl_df", "tbl", "data.frame"), row.names = c(NA, -14L))


    We split our data by group,



    df2 <- split(df, df$group)


    Build a function we can apply to the list,



    my_func <- function(dat){
    rst <- dat %>%
    mutate(change = diff(c(0,is.5))) %>%
    mutate(flag = change*abs(is.5)) %>%
    mutate(spell = ifelse(is.5 == 0 | change == -1, 0, cumsum(flag))) %>%
    dplyr::select(time, group, is.5, spell)
    return(rst)
    }


    Then apply it,



    l <- lapply(df2, my_func)


    We can now turn this list back into a data frame:



    do.call(rbind.data.frame, l)





    share|improve this answer

































      1














      A somehow different possibility could be:



      df %>%
      group_by(group) %>%
      mutate(spell = with(rle(is.5), rep(seq_along(lengths), lengths))) %>%
      group_by(group, is.5) %>%
      mutate(spell = dense_rank(spell)) %>%
      ungroup() %>%
      mutate(spell = ifelse(is.5 == 0, 0, spell))

      time group is.5 spell
      <dttm> <chr> <dbl> <dbl>
      1 2018-10-07 01:39:00 A 0 0
      2 2018-10-07 01:40:00 A 1 1
      3 2018-10-07 01:41:00 A 1 1
      4 2018-10-07 01:42:00 A 0 0
      5 2018-10-07 01:43:00 A 1 2
      6 2018-10-07 01:44:00 A 0 0
      7 2018-10-07 01:45:00 A 0 0
      8 2018-10-07 01:46:00 A 1 3
      9 2018-05-20 14:00:00 B 0 0
      10 2018-05-20 14:01:00 B 0 0
      11 2018-05-20 14:02:00 B 1 1
      12 2018-05-20 14:03:00 B 1 1
      13 2018-05-20 14:04:00 B 0 0
      14 2018-05-20 14:05:00 B 1 2





      share|improve this answer































        1














        One options is using cumsum:



        library(dplyr)
        df %>% group_by(group) %>% arrange(group, time) %>%
        mutate(spell = is.5 * cumsum( c(0,lag(is.5)[-1]) != is.5 & is.5!=0) )


        # # A tibble: 14 x 4
        # # Groups: group [2]
        # time group is.5 spell
        # <dttm> <chr> <dbl> <dbl>
        # 1 2018-10-07 01:39:00 A 0 0
        # 2 2018-10-07 01:40:00 A 1 1
        # 3 2018-10-07 01:41:00 A 1 1
        # 4 2018-10-07 01:42:00 A 0 0
        # 5 2018-10-07 01:43:00 A 1 2
        # 6 2018-10-07 01:44:00 A 0 0
        # 7 2018-10-07 01:45:00 A 0 0
        # 8 2018-10-07 01:46:00 A 1 3
        # 9 2018-05-20 14:00:00 B 0 0
        # 10 2018-05-20 14:01:00 B 0 0
        # 11 2018-05-20 14:02:00 B 1 1
        # 12 2018-05-20 14:03:00 B 1 1
        # 13 2018-05-20 14:04:00 B 0 0
        # 14 2018-05-20 14:05:00 B 1 2


        c(0,lag(is.5)[-1]) != is.5 this takes care of assigning a new id (i.e. spell) whenever is.5 changes; but we want to avoid assigning new ones to those rows is.5 equal to 0 and that's why I have the second rule in cumsum function (i.e. (is.5!=0)).



        However, that second rule only prevents assigning a new id (adding 1 to the previous id) but it won't set the id to 0. That's why I have multiplied the answer by is.5.






        share|improve this answer































          1














          Here is one option with rleid from data.table. Convert the 'data.frame' to 'data.table' (setDT(df)), grouped by 'group', get the run-length-id (rleid) of 'is.5' and multiply with the values of 'is.5' so as to replace the ids corresponding to 0s in is.5 to 0, assign it to 'spell', then specify the i with a logical vector to select rows that have 'spell' values not zero, match those values of 'spell' with unique 'spell' and assign it to 'spell'



          library(data.table)
          setDT(df)[, spell := rleid(is.5) * as.integer(is.5), group
          ][!!spell, spell := match(spell, unique(spell))]
          # time group is.5 spell
          # 1: 2018-10-07 01:39:00 A 0 0
          # 2: 2018-10-07 01:40:00 A 1 1
          # 3: 2018-10-07 01:41:00 A 1 1
          # 4: 2018-10-07 01:42:00 A 0 0
          # 5: 2018-10-07 01:43:00 A 1 2
          # 6: 2018-10-07 01:44:00 A 0 0
          # 7: 2018-10-07 01:45:00 A 0 0
          # 8: 2018-10-07 01:46:00 A 1 3
          # 9: 2018-05-20 14:00:00 B 0 0
          #10: 2018-05-20 14:01:00 B 0 0
          #11: 2018-05-20 14:02:00 B 1 1
          #12: 2018-05-20 14:03:00 B 1 1
          #13: 2018-05-20 14:04:00 B 0 0
          #14: 2018-05-20 14:05:00 B 1 2




          Or after the first step, use .GRP



          df[!!spell, spell := .GRP, spell]





          share|improve this answer


























            Your Answer






            StackExchange.ifUsing("editor", function () {
            StackExchange.using("externalEditor", function () {
            StackExchange.using("snippets", function () {
            StackExchange.snippets.init();
            });
            });
            }, "code-snippets");

            StackExchange.ready(function() {
            var channelOptions = {
            tags: "".split(" "),
            id: "1"
            };
            initTagRenderer("".split(" "), "".split(" "), channelOptions);

            StackExchange.using("externalEditor", function() {
            // Have to fire editor after snippets, if snippets enabled
            if (StackExchange.settings.snippets.snippetsEnabled) {
            StackExchange.using("snippets", function() {
            createEditor();
            });
            }
            else {
            createEditor();
            }
            });

            function createEditor() {
            StackExchange.prepareEditor({
            heartbeatType: 'answer',
            autoActivateHeartbeat: false,
            convertImagesToLinks: true,
            noModals: true,
            showLowRepImageUploadWarning: true,
            reputationToPostImages: 10,
            bindNavPrevention: true,
            postfix: "",
            imageUploader: {
            brandingHtml: "Powered by u003ca class="icon-imgur-white" href="https://imgur.com/"u003eu003c/au003e",
            contentPolicyHtml: "User contributions licensed under u003ca href="https://creativecommons.org/licenses/by-sa/3.0/"u003ecc by-sa 3.0 with attribution requiredu003c/au003e u003ca href="https://stackoverflow.com/legal/content-policy"u003e(content policy)u003c/au003e",
            allowUrls: true
            },
            onDemand: true,
            discardSelector: ".discard-answer"
            ,immediatelyShowMarkdownHelp:true
            });


            }
            });














            draft saved

            draft discarded


















            StackExchange.ready(
            function () {
            StackExchange.openid.initPostLogin('.new-post-login', 'https%3a%2f%2fstackoverflow.com%2fquestions%2f55463310%2fidentify-and-count-spells-distinctive-events-within-each-group%23new-answer', 'question_page');
            }
            );

            Post as a guest















            Required, but never shown

























            6 Answers
            6






            active

            oldest

            votes








            6 Answers
            6






            active

            oldest

            votes









            active

            oldest

            votes






            active

            oldest

            votes









            5














            One option using rle



            library(dplyr)
            df %>%
            group_by(group) %>%
            mutate(
            spell = {
            r <- rle(is.5)
            r$values <- cumsum(r$values) * r$values
            inverse.rle(r)
            }
            )
            # A tibble: 14 x 4
            # Groups: group [2]
            # time group is.5 spell
            # <dttm> <chr> <dbl> <dbl>
            # 1 2018-10-07 01:39:00 A 0 0
            # 2 2018-10-07 01:40:00 A 1 1
            # 3 2018-10-07 01:41:00 A 1 1
            # 4 2018-10-07 01:42:00 A 0 0
            # 5 2018-10-07 01:43:00 A 1 2
            # 6 2018-10-07 01:44:00 A 0 0
            # 7 2018-10-07 01:45:00 A 0 0
            # 8 2018-10-07 01:46:00 A 1 3
            # 9 2018-05-20 14:00:00 B 0 0
            #10 2018-05-20 14:01:00 B 0 0
            #11 2018-05-20 14:02:00 B 1 1
            #12 2018-05-20 14:03:00 B 1 1
            #13 2018-05-20 14:04:00 B 0 0
            #14 2018-05-20 14:05:00 B 1 2


            explanation



            When we call



            r <- rle(df$is.5)


            the result we get is



            r
            #Run Length Encoding
            # lengths: int [1:10] 1 2 1 1 2 1 2 2 1 1
            # values : num [1:10] 0 1 0 1 0 1 0 1 0 1


            We need to replace values with the cumulative sum where values == 1 while values should remain zero otherwise.



            We can achieve this when we multiple cumsum(r$values) with r$values; where the latter is a vector of 0s and 1s.



            r$values <- cumsum(r$values) * r$values
            r$values
            # [1] 0 1 0 2 0 3 0 4 0 5


            Finally we call inverse.rle to get back a vector of the same length as is.5.



            inverse.rle(r)
            # [1] 0 1 1 0 2 0 0 3 0 0 4 4 0 5


            We do this for every group.






            share|improve this answer





















            • 1





              I understand why and how that works, but it'd be nice if you could draw your line of thoughts into the logic. Cheers.

              – M-M
              6 hours ago






            • 1





              @M-M Added some explanation. Thanks for the comment.

              – markus
              5 hours ago
















            5














            One option using rle



            library(dplyr)
            df %>%
            group_by(group) %>%
            mutate(
            spell = {
            r <- rle(is.5)
            r$values <- cumsum(r$values) * r$values
            inverse.rle(r)
            }
            )
            # A tibble: 14 x 4
            # Groups: group [2]
            # time group is.5 spell
            # <dttm> <chr> <dbl> <dbl>
            # 1 2018-10-07 01:39:00 A 0 0
            # 2 2018-10-07 01:40:00 A 1 1
            # 3 2018-10-07 01:41:00 A 1 1
            # 4 2018-10-07 01:42:00 A 0 0
            # 5 2018-10-07 01:43:00 A 1 2
            # 6 2018-10-07 01:44:00 A 0 0
            # 7 2018-10-07 01:45:00 A 0 0
            # 8 2018-10-07 01:46:00 A 1 3
            # 9 2018-05-20 14:00:00 B 0 0
            #10 2018-05-20 14:01:00 B 0 0
            #11 2018-05-20 14:02:00 B 1 1
            #12 2018-05-20 14:03:00 B 1 1
            #13 2018-05-20 14:04:00 B 0 0
            #14 2018-05-20 14:05:00 B 1 2


            explanation



            When we call



            r <- rle(df$is.5)


            the result we get is



            r
            #Run Length Encoding
            # lengths: int [1:10] 1 2 1 1 2 1 2 2 1 1
            # values : num [1:10] 0 1 0 1 0 1 0 1 0 1


            We need to replace values with the cumulative sum where values == 1 while values should remain zero otherwise.



            We can achieve this when we multiple cumsum(r$values) with r$values; where the latter is a vector of 0s and 1s.



            r$values <- cumsum(r$values) * r$values
            r$values
            # [1] 0 1 0 2 0 3 0 4 0 5


            Finally we call inverse.rle to get back a vector of the same length as is.5.



            inverse.rle(r)
            # [1] 0 1 1 0 2 0 0 3 0 0 4 4 0 5


            We do this for every group.






            share|improve this answer





















            • 1





              I understand why and how that works, but it'd be nice if you could draw your line of thoughts into the logic. Cheers.

              – M-M
              6 hours ago






            • 1





              @M-M Added some explanation. Thanks for the comment.

              – markus
              5 hours ago














            5












            5








            5







            One option using rle



            library(dplyr)
            df %>%
            group_by(group) %>%
            mutate(
            spell = {
            r <- rle(is.5)
            r$values <- cumsum(r$values) * r$values
            inverse.rle(r)
            }
            )
            # A tibble: 14 x 4
            # Groups: group [2]
            # time group is.5 spell
            # <dttm> <chr> <dbl> <dbl>
            # 1 2018-10-07 01:39:00 A 0 0
            # 2 2018-10-07 01:40:00 A 1 1
            # 3 2018-10-07 01:41:00 A 1 1
            # 4 2018-10-07 01:42:00 A 0 0
            # 5 2018-10-07 01:43:00 A 1 2
            # 6 2018-10-07 01:44:00 A 0 0
            # 7 2018-10-07 01:45:00 A 0 0
            # 8 2018-10-07 01:46:00 A 1 3
            # 9 2018-05-20 14:00:00 B 0 0
            #10 2018-05-20 14:01:00 B 0 0
            #11 2018-05-20 14:02:00 B 1 1
            #12 2018-05-20 14:03:00 B 1 1
            #13 2018-05-20 14:04:00 B 0 0
            #14 2018-05-20 14:05:00 B 1 2


            explanation



            When we call



            r <- rle(df$is.5)


            the result we get is



            r
            #Run Length Encoding
            # lengths: int [1:10] 1 2 1 1 2 1 2 2 1 1
            # values : num [1:10] 0 1 0 1 0 1 0 1 0 1


            We need to replace values with the cumulative sum where values == 1 while values should remain zero otherwise.



            We can achieve this when we multiple cumsum(r$values) with r$values; where the latter is a vector of 0s and 1s.



            r$values <- cumsum(r$values) * r$values
            r$values
            # [1] 0 1 0 2 0 3 0 4 0 5


            Finally we call inverse.rle to get back a vector of the same length as is.5.



            inverse.rle(r)
            # [1] 0 1 1 0 2 0 0 3 0 0 4 4 0 5


            We do this for every group.






            share|improve this answer















            One option using rle



            library(dplyr)
            df %>%
            group_by(group) %>%
            mutate(
            spell = {
            r <- rle(is.5)
            r$values <- cumsum(r$values) * r$values
            inverse.rle(r)
            }
            )
            # A tibble: 14 x 4
            # Groups: group [2]
            # time group is.5 spell
            # <dttm> <chr> <dbl> <dbl>
            # 1 2018-10-07 01:39:00 A 0 0
            # 2 2018-10-07 01:40:00 A 1 1
            # 3 2018-10-07 01:41:00 A 1 1
            # 4 2018-10-07 01:42:00 A 0 0
            # 5 2018-10-07 01:43:00 A 1 2
            # 6 2018-10-07 01:44:00 A 0 0
            # 7 2018-10-07 01:45:00 A 0 0
            # 8 2018-10-07 01:46:00 A 1 3
            # 9 2018-05-20 14:00:00 B 0 0
            #10 2018-05-20 14:01:00 B 0 0
            #11 2018-05-20 14:02:00 B 1 1
            #12 2018-05-20 14:03:00 B 1 1
            #13 2018-05-20 14:04:00 B 0 0
            #14 2018-05-20 14:05:00 B 1 2


            explanation



            When we call



            r <- rle(df$is.5)


            the result we get is



            r
            #Run Length Encoding
            # lengths: int [1:10] 1 2 1 1 2 1 2 2 1 1
            # values : num [1:10] 0 1 0 1 0 1 0 1 0 1


            We need to replace values with the cumulative sum where values == 1 while values should remain zero otherwise.



            We can achieve this when we multiple cumsum(r$values) with r$values; where the latter is a vector of 0s and 1s.



            r$values <- cumsum(r$values) * r$values
            r$values
            # [1] 0 1 0 2 0 3 0 4 0 5


            Finally we call inverse.rle to get back a vector of the same length as is.5.



            inverse.rle(r)
            # [1] 0 1 1 0 2 0 0 3 0 0 4 4 0 5


            We do this for every group.







            share|improve this answer














            share|improve this answer



            share|improve this answer








            edited 5 hours ago

























            answered 7 hours ago









            markusmarkus

            15k11336




            15k11336








            • 1





              I understand why and how that works, but it'd be nice if you could draw your line of thoughts into the logic. Cheers.

              – M-M
              6 hours ago






            • 1





              @M-M Added some explanation. Thanks for the comment.

              – markus
              5 hours ago














            • 1





              I understand why and how that works, but it'd be nice if you could draw your line of thoughts into the logic. Cheers.

              – M-M
              6 hours ago






            • 1





              @M-M Added some explanation. Thanks for the comment.

              – markus
              5 hours ago








            1




            1





            I understand why and how that works, but it'd be nice if you could draw your line of thoughts into the logic. Cheers.

            – M-M
            6 hours ago





            I understand why and how that works, but it'd be nice if you could draw your line of thoughts into the logic. Cheers.

            – M-M
            6 hours ago




            1




            1





            @M-M Added some explanation. Thanks for the comment.

            – markus
            5 hours ago





            @M-M Added some explanation. Thanks for the comment.

            – markus
            5 hours ago













            4














            Here's a helper function that can return what you are after



            spell_index <- function(time, flag) {
            change <- time-lag(time)==1 & flag==1 & lag(flag)!=1
            cumsum(change) * (flag==1)+0
            }


            And you can use it with your data like



            library(dplyr)
            df %>%
            group_by(group) %>%
            mutate(
            spell = spell_index(time, is.5)
            )


            Basically the helper functions uses lag() to look for changes. We use cumsum() to increment the number of changes. Then we multiply by a boolean value so zero-out the values you want to be zeroed out.






            share|improve this answer




























              4














              Here's a helper function that can return what you are after



              spell_index <- function(time, flag) {
              change <- time-lag(time)==1 & flag==1 & lag(flag)!=1
              cumsum(change) * (flag==1)+0
              }


              And you can use it with your data like



              library(dplyr)
              df %>%
              group_by(group) %>%
              mutate(
              spell = spell_index(time, is.5)
              )


              Basically the helper functions uses lag() to look for changes. We use cumsum() to increment the number of changes. Then we multiply by a boolean value so zero-out the values you want to be zeroed out.






              share|improve this answer


























                4












                4








                4







                Here's a helper function that can return what you are after



                spell_index <- function(time, flag) {
                change <- time-lag(time)==1 & flag==1 & lag(flag)!=1
                cumsum(change) * (flag==1)+0
                }


                And you can use it with your data like



                library(dplyr)
                df %>%
                group_by(group) %>%
                mutate(
                spell = spell_index(time, is.5)
                )


                Basically the helper functions uses lag() to look for changes. We use cumsum() to increment the number of changes. Then we multiply by a boolean value so zero-out the values you want to be zeroed out.






                share|improve this answer













                Here's a helper function that can return what you are after



                spell_index <- function(time, flag) {
                change <- time-lag(time)==1 & flag==1 & lag(flag)!=1
                cumsum(change) * (flag==1)+0
                }


                And you can use it with your data like



                library(dplyr)
                df %>%
                group_by(group) %>%
                mutate(
                spell = spell_index(time, is.5)
                )


                Basically the helper functions uses lag() to look for changes. We use cumsum() to increment the number of changes. Then we multiply by a boolean value so zero-out the values you want to be zeroed out.







                share|improve this answer












                share|improve this answer



                share|improve this answer










                answered 8 hours ago









                MrFlickMrFlick

                124k11141173




                124k11141173























                    1














                    This works,



                    The data,



                    df <- structure(list(time = structure(c(1538876340, 1538876400, 1538876460,1538876520, 1538876580, 1538876640, 1538876700, 1538876760, 1526824800, 1526824860, 1526824920, 1526824980, 1526825040, 1526825100), class = c("POSIXct", "POSIXt"), tzone = "UTC"), group = c("A", "A", "A", "A", "A", "A", "A", "A", "B", "B", "B", "B", "B", "B"), is.5 = c(0, 1, 1, 0, 1, 0, 0, 1, 0, 0, 1, 1, 0, 1)), class = c("tbl_df", "tbl", "data.frame"), row.names = c(NA, -14L))


                    We split our data by group,



                    df2 <- split(df, df$group)


                    Build a function we can apply to the list,



                    my_func <- function(dat){
                    rst <- dat %>%
                    mutate(change = diff(c(0,is.5))) %>%
                    mutate(flag = change*abs(is.5)) %>%
                    mutate(spell = ifelse(is.5 == 0 | change == -1, 0, cumsum(flag))) %>%
                    dplyr::select(time, group, is.5, spell)
                    return(rst)
                    }


                    Then apply it,



                    l <- lapply(df2, my_func)


                    We can now turn this list back into a data frame:



                    do.call(rbind.data.frame, l)





                    share|improve this answer






























                      1














                      This works,



                      The data,



                      df <- structure(list(time = structure(c(1538876340, 1538876400, 1538876460,1538876520, 1538876580, 1538876640, 1538876700, 1538876760, 1526824800, 1526824860, 1526824920, 1526824980, 1526825040, 1526825100), class = c("POSIXct", "POSIXt"), tzone = "UTC"), group = c("A", "A", "A", "A", "A", "A", "A", "A", "B", "B", "B", "B", "B", "B"), is.5 = c(0, 1, 1, 0, 1, 0, 0, 1, 0, 0, 1, 1, 0, 1)), class = c("tbl_df", "tbl", "data.frame"), row.names = c(NA, -14L))


                      We split our data by group,



                      df2 <- split(df, df$group)


                      Build a function we can apply to the list,



                      my_func <- function(dat){
                      rst <- dat %>%
                      mutate(change = diff(c(0,is.5))) %>%
                      mutate(flag = change*abs(is.5)) %>%
                      mutate(spell = ifelse(is.5 == 0 | change == -1, 0, cumsum(flag))) %>%
                      dplyr::select(time, group, is.5, spell)
                      return(rst)
                      }


                      Then apply it,



                      l <- lapply(df2, my_func)


                      We can now turn this list back into a data frame:



                      do.call(rbind.data.frame, l)





                      share|improve this answer




























                        1












                        1








                        1







                        This works,



                        The data,



                        df <- structure(list(time = structure(c(1538876340, 1538876400, 1538876460,1538876520, 1538876580, 1538876640, 1538876700, 1538876760, 1526824800, 1526824860, 1526824920, 1526824980, 1526825040, 1526825100), class = c("POSIXct", "POSIXt"), tzone = "UTC"), group = c("A", "A", "A", "A", "A", "A", "A", "A", "B", "B", "B", "B", "B", "B"), is.5 = c(0, 1, 1, 0, 1, 0, 0, 1, 0, 0, 1, 1, 0, 1)), class = c("tbl_df", "tbl", "data.frame"), row.names = c(NA, -14L))


                        We split our data by group,



                        df2 <- split(df, df$group)


                        Build a function we can apply to the list,



                        my_func <- function(dat){
                        rst <- dat %>%
                        mutate(change = diff(c(0,is.5))) %>%
                        mutate(flag = change*abs(is.5)) %>%
                        mutate(spell = ifelse(is.5 == 0 | change == -1, 0, cumsum(flag))) %>%
                        dplyr::select(time, group, is.5, spell)
                        return(rst)
                        }


                        Then apply it,



                        l <- lapply(df2, my_func)


                        We can now turn this list back into a data frame:



                        do.call(rbind.data.frame, l)





                        share|improve this answer















                        This works,



                        The data,



                        df <- structure(list(time = structure(c(1538876340, 1538876400, 1538876460,1538876520, 1538876580, 1538876640, 1538876700, 1538876760, 1526824800, 1526824860, 1526824920, 1526824980, 1526825040, 1526825100), class = c("POSIXct", "POSIXt"), tzone = "UTC"), group = c("A", "A", "A", "A", "A", "A", "A", "A", "B", "B", "B", "B", "B", "B"), is.5 = c(0, 1, 1, 0, 1, 0, 0, 1, 0, 0, 1, 1, 0, 1)), class = c("tbl_df", "tbl", "data.frame"), row.names = c(NA, -14L))


                        We split our data by group,



                        df2 <- split(df, df$group)


                        Build a function we can apply to the list,



                        my_func <- function(dat){
                        rst <- dat %>%
                        mutate(change = diff(c(0,is.5))) %>%
                        mutate(flag = change*abs(is.5)) %>%
                        mutate(spell = ifelse(is.5 == 0 | change == -1, 0, cumsum(flag))) %>%
                        dplyr::select(time, group, is.5, spell)
                        return(rst)
                        }


                        Then apply it,



                        l <- lapply(df2, my_func)


                        We can now turn this list back into a data frame:



                        do.call(rbind.data.frame, l)






                        share|improve this answer














                        share|improve this answer



                        share|improve this answer








                        edited 7 hours ago

























                        answered 7 hours ago









                        Hector HaffendenHector Haffenden

                        579216




                        579216























                            1














                            A somehow different possibility could be:



                            df %>%
                            group_by(group) %>%
                            mutate(spell = with(rle(is.5), rep(seq_along(lengths), lengths))) %>%
                            group_by(group, is.5) %>%
                            mutate(spell = dense_rank(spell)) %>%
                            ungroup() %>%
                            mutate(spell = ifelse(is.5 == 0, 0, spell))

                            time group is.5 spell
                            <dttm> <chr> <dbl> <dbl>
                            1 2018-10-07 01:39:00 A 0 0
                            2 2018-10-07 01:40:00 A 1 1
                            3 2018-10-07 01:41:00 A 1 1
                            4 2018-10-07 01:42:00 A 0 0
                            5 2018-10-07 01:43:00 A 1 2
                            6 2018-10-07 01:44:00 A 0 0
                            7 2018-10-07 01:45:00 A 0 0
                            8 2018-10-07 01:46:00 A 1 3
                            9 2018-05-20 14:00:00 B 0 0
                            10 2018-05-20 14:01:00 B 0 0
                            11 2018-05-20 14:02:00 B 1 1
                            12 2018-05-20 14:03:00 B 1 1
                            13 2018-05-20 14:04:00 B 0 0
                            14 2018-05-20 14:05:00 B 1 2





                            share|improve this answer




























                              1














                              A somehow different possibility could be:



                              df %>%
                              group_by(group) %>%
                              mutate(spell = with(rle(is.5), rep(seq_along(lengths), lengths))) %>%
                              group_by(group, is.5) %>%
                              mutate(spell = dense_rank(spell)) %>%
                              ungroup() %>%
                              mutate(spell = ifelse(is.5 == 0, 0, spell))

                              time group is.5 spell
                              <dttm> <chr> <dbl> <dbl>
                              1 2018-10-07 01:39:00 A 0 0
                              2 2018-10-07 01:40:00 A 1 1
                              3 2018-10-07 01:41:00 A 1 1
                              4 2018-10-07 01:42:00 A 0 0
                              5 2018-10-07 01:43:00 A 1 2
                              6 2018-10-07 01:44:00 A 0 0
                              7 2018-10-07 01:45:00 A 0 0
                              8 2018-10-07 01:46:00 A 1 3
                              9 2018-05-20 14:00:00 B 0 0
                              10 2018-05-20 14:01:00 B 0 0
                              11 2018-05-20 14:02:00 B 1 1
                              12 2018-05-20 14:03:00 B 1 1
                              13 2018-05-20 14:04:00 B 0 0
                              14 2018-05-20 14:05:00 B 1 2





                              share|improve this answer


























                                1












                                1








                                1







                                A somehow different possibility could be:



                                df %>%
                                group_by(group) %>%
                                mutate(spell = with(rle(is.5), rep(seq_along(lengths), lengths))) %>%
                                group_by(group, is.5) %>%
                                mutate(spell = dense_rank(spell)) %>%
                                ungroup() %>%
                                mutate(spell = ifelse(is.5 == 0, 0, spell))

                                time group is.5 spell
                                <dttm> <chr> <dbl> <dbl>
                                1 2018-10-07 01:39:00 A 0 0
                                2 2018-10-07 01:40:00 A 1 1
                                3 2018-10-07 01:41:00 A 1 1
                                4 2018-10-07 01:42:00 A 0 0
                                5 2018-10-07 01:43:00 A 1 2
                                6 2018-10-07 01:44:00 A 0 0
                                7 2018-10-07 01:45:00 A 0 0
                                8 2018-10-07 01:46:00 A 1 3
                                9 2018-05-20 14:00:00 B 0 0
                                10 2018-05-20 14:01:00 B 0 0
                                11 2018-05-20 14:02:00 B 1 1
                                12 2018-05-20 14:03:00 B 1 1
                                13 2018-05-20 14:04:00 B 0 0
                                14 2018-05-20 14:05:00 B 1 2





                                share|improve this answer













                                A somehow different possibility could be:



                                df %>%
                                group_by(group) %>%
                                mutate(spell = with(rle(is.5), rep(seq_along(lengths), lengths))) %>%
                                group_by(group, is.5) %>%
                                mutate(spell = dense_rank(spell)) %>%
                                ungroup() %>%
                                mutate(spell = ifelse(is.5 == 0, 0, spell))

                                time group is.5 spell
                                <dttm> <chr> <dbl> <dbl>
                                1 2018-10-07 01:39:00 A 0 0
                                2 2018-10-07 01:40:00 A 1 1
                                3 2018-10-07 01:41:00 A 1 1
                                4 2018-10-07 01:42:00 A 0 0
                                5 2018-10-07 01:43:00 A 1 2
                                6 2018-10-07 01:44:00 A 0 0
                                7 2018-10-07 01:45:00 A 0 0
                                8 2018-10-07 01:46:00 A 1 3
                                9 2018-05-20 14:00:00 B 0 0
                                10 2018-05-20 14:01:00 B 0 0
                                11 2018-05-20 14:02:00 B 1 1
                                12 2018-05-20 14:03:00 B 1 1
                                13 2018-05-20 14:04:00 B 0 0
                                14 2018-05-20 14:05:00 B 1 2






                                share|improve this answer












                                share|improve this answer



                                share|improve this answer










                                answered 7 hours ago









                                tmfmnktmfmnk

                                3,6211516




                                3,6211516























                                    1














                                    One options is using cumsum:



                                    library(dplyr)
                                    df %>% group_by(group) %>% arrange(group, time) %>%
                                    mutate(spell = is.5 * cumsum( c(0,lag(is.5)[-1]) != is.5 & is.5!=0) )


                                    # # A tibble: 14 x 4
                                    # # Groups: group [2]
                                    # time group is.5 spell
                                    # <dttm> <chr> <dbl> <dbl>
                                    # 1 2018-10-07 01:39:00 A 0 0
                                    # 2 2018-10-07 01:40:00 A 1 1
                                    # 3 2018-10-07 01:41:00 A 1 1
                                    # 4 2018-10-07 01:42:00 A 0 0
                                    # 5 2018-10-07 01:43:00 A 1 2
                                    # 6 2018-10-07 01:44:00 A 0 0
                                    # 7 2018-10-07 01:45:00 A 0 0
                                    # 8 2018-10-07 01:46:00 A 1 3
                                    # 9 2018-05-20 14:00:00 B 0 0
                                    # 10 2018-05-20 14:01:00 B 0 0
                                    # 11 2018-05-20 14:02:00 B 1 1
                                    # 12 2018-05-20 14:03:00 B 1 1
                                    # 13 2018-05-20 14:04:00 B 0 0
                                    # 14 2018-05-20 14:05:00 B 1 2


                                    c(0,lag(is.5)[-1]) != is.5 this takes care of assigning a new id (i.e. spell) whenever is.5 changes; but we want to avoid assigning new ones to those rows is.5 equal to 0 and that's why I have the second rule in cumsum function (i.e. (is.5!=0)).



                                    However, that second rule only prevents assigning a new id (adding 1 to the previous id) but it won't set the id to 0. That's why I have multiplied the answer by is.5.






                                    share|improve this answer




























                                      1














                                      One options is using cumsum:



                                      library(dplyr)
                                      df %>% group_by(group) %>% arrange(group, time) %>%
                                      mutate(spell = is.5 * cumsum( c(0,lag(is.5)[-1]) != is.5 & is.5!=0) )


                                      # # A tibble: 14 x 4
                                      # # Groups: group [2]
                                      # time group is.5 spell
                                      # <dttm> <chr> <dbl> <dbl>
                                      # 1 2018-10-07 01:39:00 A 0 0
                                      # 2 2018-10-07 01:40:00 A 1 1
                                      # 3 2018-10-07 01:41:00 A 1 1
                                      # 4 2018-10-07 01:42:00 A 0 0
                                      # 5 2018-10-07 01:43:00 A 1 2
                                      # 6 2018-10-07 01:44:00 A 0 0
                                      # 7 2018-10-07 01:45:00 A 0 0
                                      # 8 2018-10-07 01:46:00 A 1 3
                                      # 9 2018-05-20 14:00:00 B 0 0
                                      # 10 2018-05-20 14:01:00 B 0 0
                                      # 11 2018-05-20 14:02:00 B 1 1
                                      # 12 2018-05-20 14:03:00 B 1 1
                                      # 13 2018-05-20 14:04:00 B 0 0
                                      # 14 2018-05-20 14:05:00 B 1 2


                                      c(0,lag(is.5)[-1]) != is.5 this takes care of assigning a new id (i.e. spell) whenever is.5 changes; but we want to avoid assigning new ones to those rows is.5 equal to 0 and that's why I have the second rule in cumsum function (i.e. (is.5!=0)).



                                      However, that second rule only prevents assigning a new id (adding 1 to the previous id) but it won't set the id to 0. That's why I have multiplied the answer by is.5.






                                      share|improve this answer


























                                        1












                                        1








                                        1







                                        One options is using cumsum:



                                        library(dplyr)
                                        df %>% group_by(group) %>% arrange(group, time) %>%
                                        mutate(spell = is.5 * cumsum( c(0,lag(is.5)[-1]) != is.5 & is.5!=0) )


                                        # # A tibble: 14 x 4
                                        # # Groups: group [2]
                                        # time group is.5 spell
                                        # <dttm> <chr> <dbl> <dbl>
                                        # 1 2018-10-07 01:39:00 A 0 0
                                        # 2 2018-10-07 01:40:00 A 1 1
                                        # 3 2018-10-07 01:41:00 A 1 1
                                        # 4 2018-10-07 01:42:00 A 0 0
                                        # 5 2018-10-07 01:43:00 A 1 2
                                        # 6 2018-10-07 01:44:00 A 0 0
                                        # 7 2018-10-07 01:45:00 A 0 0
                                        # 8 2018-10-07 01:46:00 A 1 3
                                        # 9 2018-05-20 14:00:00 B 0 0
                                        # 10 2018-05-20 14:01:00 B 0 0
                                        # 11 2018-05-20 14:02:00 B 1 1
                                        # 12 2018-05-20 14:03:00 B 1 1
                                        # 13 2018-05-20 14:04:00 B 0 0
                                        # 14 2018-05-20 14:05:00 B 1 2


                                        c(0,lag(is.5)[-1]) != is.5 this takes care of assigning a new id (i.e. spell) whenever is.5 changes; but we want to avoid assigning new ones to those rows is.5 equal to 0 and that's why I have the second rule in cumsum function (i.e. (is.5!=0)).



                                        However, that second rule only prevents assigning a new id (adding 1 to the previous id) but it won't set the id to 0. That's why I have multiplied the answer by is.5.






                                        share|improve this answer













                                        One options is using cumsum:



                                        library(dplyr)
                                        df %>% group_by(group) %>% arrange(group, time) %>%
                                        mutate(spell = is.5 * cumsum( c(0,lag(is.5)[-1]) != is.5 & is.5!=0) )


                                        # # A tibble: 14 x 4
                                        # # Groups: group [2]
                                        # time group is.5 spell
                                        # <dttm> <chr> <dbl> <dbl>
                                        # 1 2018-10-07 01:39:00 A 0 0
                                        # 2 2018-10-07 01:40:00 A 1 1
                                        # 3 2018-10-07 01:41:00 A 1 1
                                        # 4 2018-10-07 01:42:00 A 0 0
                                        # 5 2018-10-07 01:43:00 A 1 2
                                        # 6 2018-10-07 01:44:00 A 0 0
                                        # 7 2018-10-07 01:45:00 A 0 0
                                        # 8 2018-10-07 01:46:00 A 1 3
                                        # 9 2018-05-20 14:00:00 B 0 0
                                        # 10 2018-05-20 14:01:00 B 0 0
                                        # 11 2018-05-20 14:02:00 B 1 1
                                        # 12 2018-05-20 14:03:00 B 1 1
                                        # 13 2018-05-20 14:04:00 B 0 0
                                        # 14 2018-05-20 14:05:00 B 1 2


                                        c(0,lag(is.5)[-1]) != is.5 this takes care of assigning a new id (i.e. spell) whenever is.5 changes; but we want to avoid assigning new ones to those rows is.5 equal to 0 and that's why I have the second rule in cumsum function (i.e. (is.5!=0)).



                                        However, that second rule only prevents assigning a new id (adding 1 to the previous id) but it won't set the id to 0. That's why I have multiplied the answer by is.5.







                                        share|improve this answer












                                        share|improve this answer



                                        share|improve this answer










                                        answered 6 hours ago









                                        M-MM-M

                                        7,17962146




                                        7,17962146























                                            1














                                            Here is one option with rleid from data.table. Convert the 'data.frame' to 'data.table' (setDT(df)), grouped by 'group', get the run-length-id (rleid) of 'is.5' and multiply with the values of 'is.5' so as to replace the ids corresponding to 0s in is.5 to 0, assign it to 'spell', then specify the i with a logical vector to select rows that have 'spell' values not zero, match those values of 'spell' with unique 'spell' and assign it to 'spell'



                                            library(data.table)
                                            setDT(df)[, spell := rleid(is.5) * as.integer(is.5), group
                                            ][!!spell, spell := match(spell, unique(spell))]
                                            # time group is.5 spell
                                            # 1: 2018-10-07 01:39:00 A 0 0
                                            # 2: 2018-10-07 01:40:00 A 1 1
                                            # 3: 2018-10-07 01:41:00 A 1 1
                                            # 4: 2018-10-07 01:42:00 A 0 0
                                            # 5: 2018-10-07 01:43:00 A 1 2
                                            # 6: 2018-10-07 01:44:00 A 0 0
                                            # 7: 2018-10-07 01:45:00 A 0 0
                                            # 8: 2018-10-07 01:46:00 A 1 3
                                            # 9: 2018-05-20 14:00:00 B 0 0
                                            #10: 2018-05-20 14:01:00 B 0 0
                                            #11: 2018-05-20 14:02:00 B 1 1
                                            #12: 2018-05-20 14:03:00 B 1 1
                                            #13: 2018-05-20 14:04:00 B 0 0
                                            #14: 2018-05-20 14:05:00 B 1 2




                                            Or after the first step, use .GRP



                                            df[!!spell, spell := .GRP, spell]





                                            share|improve this answer






























                                              1














                                              Here is one option with rleid from data.table. Convert the 'data.frame' to 'data.table' (setDT(df)), grouped by 'group', get the run-length-id (rleid) of 'is.5' and multiply with the values of 'is.5' so as to replace the ids corresponding to 0s in is.5 to 0, assign it to 'spell', then specify the i with a logical vector to select rows that have 'spell' values not zero, match those values of 'spell' with unique 'spell' and assign it to 'spell'



                                              library(data.table)
                                              setDT(df)[, spell := rleid(is.5) * as.integer(is.5), group
                                              ][!!spell, spell := match(spell, unique(spell))]
                                              # time group is.5 spell
                                              # 1: 2018-10-07 01:39:00 A 0 0
                                              # 2: 2018-10-07 01:40:00 A 1 1
                                              # 3: 2018-10-07 01:41:00 A 1 1
                                              # 4: 2018-10-07 01:42:00 A 0 0
                                              # 5: 2018-10-07 01:43:00 A 1 2
                                              # 6: 2018-10-07 01:44:00 A 0 0
                                              # 7: 2018-10-07 01:45:00 A 0 0
                                              # 8: 2018-10-07 01:46:00 A 1 3
                                              # 9: 2018-05-20 14:00:00 B 0 0
                                              #10: 2018-05-20 14:01:00 B 0 0
                                              #11: 2018-05-20 14:02:00 B 1 1
                                              #12: 2018-05-20 14:03:00 B 1 1
                                              #13: 2018-05-20 14:04:00 B 0 0
                                              #14: 2018-05-20 14:05:00 B 1 2




                                              Or after the first step, use .GRP



                                              df[!!spell, spell := .GRP, spell]





                                              share|improve this answer




























                                                1












                                                1








                                                1







                                                Here is one option with rleid from data.table. Convert the 'data.frame' to 'data.table' (setDT(df)), grouped by 'group', get the run-length-id (rleid) of 'is.5' and multiply with the values of 'is.5' so as to replace the ids corresponding to 0s in is.5 to 0, assign it to 'spell', then specify the i with a logical vector to select rows that have 'spell' values not zero, match those values of 'spell' with unique 'spell' and assign it to 'spell'



                                                library(data.table)
                                                setDT(df)[, spell := rleid(is.5) * as.integer(is.5), group
                                                ][!!spell, spell := match(spell, unique(spell))]
                                                # time group is.5 spell
                                                # 1: 2018-10-07 01:39:00 A 0 0
                                                # 2: 2018-10-07 01:40:00 A 1 1
                                                # 3: 2018-10-07 01:41:00 A 1 1
                                                # 4: 2018-10-07 01:42:00 A 0 0
                                                # 5: 2018-10-07 01:43:00 A 1 2
                                                # 6: 2018-10-07 01:44:00 A 0 0
                                                # 7: 2018-10-07 01:45:00 A 0 0
                                                # 8: 2018-10-07 01:46:00 A 1 3
                                                # 9: 2018-05-20 14:00:00 B 0 0
                                                #10: 2018-05-20 14:01:00 B 0 0
                                                #11: 2018-05-20 14:02:00 B 1 1
                                                #12: 2018-05-20 14:03:00 B 1 1
                                                #13: 2018-05-20 14:04:00 B 0 0
                                                #14: 2018-05-20 14:05:00 B 1 2




                                                Or after the first step, use .GRP



                                                df[!!spell, spell := .GRP, spell]





                                                share|improve this answer















                                                Here is one option with rleid from data.table. Convert the 'data.frame' to 'data.table' (setDT(df)), grouped by 'group', get the run-length-id (rleid) of 'is.5' and multiply with the values of 'is.5' so as to replace the ids corresponding to 0s in is.5 to 0, assign it to 'spell', then specify the i with a logical vector to select rows that have 'spell' values not zero, match those values of 'spell' with unique 'spell' and assign it to 'spell'



                                                library(data.table)
                                                setDT(df)[, spell := rleid(is.5) * as.integer(is.5), group
                                                ][!!spell, spell := match(spell, unique(spell))]
                                                # time group is.5 spell
                                                # 1: 2018-10-07 01:39:00 A 0 0
                                                # 2: 2018-10-07 01:40:00 A 1 1
                                                # 3: 2018-10-07 01:41:00 A 1 1
                                                # 4: 2018-10-07 01:42:00 A 0 0
                                                # 5: 2018-10-07 01:43:00 A 1 2
                                                # 6: 2018-10-07 01:44:00 A 0 0
                                                # 7: 2018-10-07 01:45:00 A 0 0
                                                # 8: 2018-10-07 01:46:00 A 1 3
                                                # 9: 2018-05-20 14:00:00 B 0 0
                                                #10: 2018-05-20 14:01:00 B 0 0
                                                #11: 2018-05-20 14:02:00 B 1 1
                                                #12: 2018-05-20 14:03:00 B 1 1
                                                #13: 2018-05-20 14:04:00 B 0 0
                                                #14: 2018-05-20 14:05:00 B 1 2




                                                Or after the first step, use .GRP



                                                df[!!spell, spell := .GRP, spell]






                                                share|improve this answer














                                                share|improve this answer



                                                share|improve this answer








                                                edited 2 hours ago

























                                                answered 2 hours ago









                                                akrunakrun

                                                418k13207282




                                                418k13207282






























                                                    draft saved

                                                    draft discarded




















































                                                    Thanks for contributing an answer to Stack Overflow!


                                                    • Please be sure to answer the question. Provide details and share your research!

                                                    But avoid



                                                    • Asking for help, clarification, or responding to other answers.

                                                    • Making statements based on opinion; back them up with references or personal experience.


                                                    To learn more, see our tips on writing great answers.




                                                    draft saved


                                                    draft discarded














                                                    StackExchange.ready(
                                                    function () {
                                                    StackExchange.openid.initPostLogin('.new-post-login', 'https%3a%2f%2fstackoverflow.com%2fquestions%2f55463310%2fidentify-and-count-spells-distinctive-events-within-each-group%23new-answer', 'question_page');
                                                    }
                                                    );

                                                    Post as a guest















                                                    Required, but never shown





















































                                                    Required, but never shown














                                                    Required, but never shown












                                                    Required, but never shown







                                                    Required, but never shown

































                                                    Required, but never shown














                                                    Required, but never shown












                                                    Required, but never shown







                                                    Required, but never shown







                                                    Popular posts from this blog

                                                    Сан-Квентин

                                                    8-я гвардейская общевойсковая армия

                                                    Алькесар