Displaying 20 results from an estimated 23997 matches for "monthe".
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months
2007 Jun 13
5
Confusion with sapply
Hi,
I have some confusion in applying a function over a column.
Here's my function. I just need to shift non-March month-ends to March
month-ends. Initially I tried seq.dates, but one cannot give a negative
increment (decrement) here.
return(as.Date(seq.dates(format(xdate,"%m/%d/%Y"),by="months",len=4)[4])
)
Hence this simple function:
> mydate <-
2010 Mar 26
3
Help with assigning a value based on existing numbers
Hi All
I have a column/variable called time difference. It has a whole list of
numbers from 0 through to the hundreds eg 236. I want to assign a
corresponding "name" to each variable from a predefined list: Month or
less, 1 -2 months, 2-3 months etc
So the result would look something like:
Time Difference Month
1 Month or
2011 Jun 02
2
shading in overlap between two ranges
I have 2 datafiles 'target' and 'observed' as shown below (I will gladly
email these 2 small files to whomever). X25. And X75. Indicate the
value of 25th and 75th-percentile of the target ('what should be') and
the observed ('what is'). The i.value is simply the month.
> target
X i.value X25. X75.
1 one.month 1 10.845225 17.87237
2
2010 Jul 23
1
Error produced by read.zoo: "bad entries"
Hello!
I have a data set similar to the data set "monthly" in the example below:
monthly<-data.frame(month=c(20090301,20090401,20090501,20100301,20100401,20090301,20090401,20090501,20100301,20100401),monthly.value=c(100,200,300,101,201,10,20,30,11,21),market=c("Market
A","Market A", "Market A","Market A", "Market A","Market
2009 Mar 04
10
total per user
so I am trying to sum month over month the amount that a user has
posted. So for example:
User 1: Jan $3000 Feb $4000 March $1500, etc. I can get this to work
if I sum totals (aggregate of all users) but just not by user.
Here is my code in the controller:
def index
@users = User.find :all, :order => ''name ASC''
@deal_groups = Deal.find(:all).group_by {|t|
2010 Oct 13
3
Matrix subscripting to wrap around from end to start of row
Perhaps it is just that I don't even know the correct term to search for,
but I can find nothing that explains how to wrap around from the end to a
start of a row in a matrix.
For example, you have a matrix of 2 years of data, where rows are years, and
columns are months.
month.data = matrix(c(3,4,6,8,12,90,5,14,22, 8), nrow = 2, ncol=5)
I would like to take the average of months 5:1 for
2012 Dec 17
3
mean of each month in data
Dear R users,
[in case the format of email is changed or you dont finf it easy to understand, i have attached a text file of my question]
i have the data in the following format and i want to convert it in the
format given at the end.
Ta ans Sa are the names of certain cities. there are 69 cities in my
data.
column 1 is representing station name (i am writing the data of only
two cities for
2007 Sep 11
2
Function to get a sequence of months
Hi all,
I am looking for a function for following calculation.
start.month = "July"
end.month = "January"
months = f(start.month, end.month, by=1)
* f is the function that I am looking for.
Actually I want to get months = c("July", "August",.............."January")
If start.month = 6 and end.month = 1 then I could use (not properly) seq()
2009 Jun 02
3
montly mean temp plot
Dear all
i got a problem in monthly mean temperature. here i am attaching the data set as well as the plot i got with the following command
plot(month,type='n')
plot(month,X1999)
this command gave the plot where the month names are in alphabetic order, i want the plot in monthly sequence
could you please suggest me how can i solve my problem?
thanking you
regard
madan
2017 Apr 12
3
"table(droplevels(aq)$Month)" in manual page of droplevels
The last line of the example in droplevels' manual page seems to be incorrect to me. I think it should read: "table(droplevels(aq$Month))". Amazingly (I don't understand) both variants seem to produce the same result (R 3.3.3):
---
> aq <- transform(airquality, Month = factor(Month, labels = month.abb[5:9]))
> aq <- subset(aq, Month != "Jul")
>
2010 Apr 12
1
N'th of month working day problem
Dear Gabor,
Thanks for your reply. however:
> tail(DJd)
^DJI.Close
2010-04-01 10927.07
2010-04-05 10973.55
2010-04-06 10969.99
2010-04-07 10897.52
2010-04-08 10927.07
*2010-04-09 10997.35*
> tail(ag)
2009-11-30 10344.84
2009-12-31 10428.05
2010-01-31 10067.33
2010-02-28 10325.26
2010-03-31 10856.63
*2010-04-30 10997.35
*
It seems the script "makes up"
2011 May 27
2
help with barplot
Hi,
I'm really struggling with barplot
I have a data.frame with 3 columns. The first column represents an
"incident" type
The second column represents a "month"
The third column represents a "time"
Code for a sample data.frame
incidents <- rep(c('a','b','d','e'), each =25)
months <- rep(c(1,2), each =10)
times
2013 Jun 15
2
Plotting two y-axis vs non-numeric x-axis
Hi dear all, the following code is correct. but I want to use non-numeric
x-axis, for example
if I replace time <- seq(0,72,6) by
month <-
c("Jan","Feb","Mar","Apr","May","Jun","Jul","Aug","Sep","Oct","Nov","Dec","Pag")
Ofcourse I use factor(month) instead of
2009 Jun 25
4
Using by() and stacking back sub-data frames to one data frame
Dear all,
I have a code where I subset a data frame to match entries within
levels of an factor (actually, the full script uses three difference
factors do do that). I'm very happy with the precision with which I can
work with R, but since I loop over factor levels, and the data frame is
big, the process is slow. So I've been trying to speed up the process
using by(), but I got stuck at
2006 Feb 28
5
Getting number of days in a month
In PHP, there was an argument you could pass to the Date function to
get the number of days in the current month:
echo date("t"); // Outputs "28" for February
I don''t see anything like this in Ruby/Rails. Right now, I''m using a
very ugly line to pull the last day of the month:
@number_of_days = (Date.strptime(Date.today.strftime("%Y-%m-01"))
2008 Dec 01
3
Failure to subset in R v 2.8.0
Hello,
I've been using a pre-release version of R v 2.8.0 for Windows for the last couple months. I think that there have been consistent problems with subsetting data sets, but I had usually been able to find work-arounds or was unable to confirm this as a bug. I think now I have, and would love advice on what to do if I've made some error.
The data set in question ("c") has
2006 Jan 16
8
[newbie] This Month / Next Month / The One After That
What I want to do is simple.
I''d like code that prints out the name of this month (January) the next
month (February) and the one after that (March)
I''ve been able to print this month:
<% t = Time.now %>
<%= t.strftime(" This Month is: %B") %>
But I can''t figure out how to get the next months to print out!
--
Posted via
2005 Oct 11
6
adding 1 month to a date
Within an R dataset, I have a date field called “date_”. (The dates are in the format “YYYY-MM-DD”, e.g. “1995-12-01”.)
How can I add or subtract “1 month” from this date, to get “1996-01-01” or “ “1995-11-01”.
---------------------------------
[[alternative HTML version deleted]]
2007 May 10
3
Getting the last day of the month.
Hi,
Given a date, how do I get the last date of that month? I have
data in the form YYYYMM, that I've read as a date using
> x$Date <-
as.Date(ISOdate(substr(x$YearEnd,1,4),substr(x$YearEnd,5,6),1))
But this gives the first day of the month. To get the last day of the
month, I tried
> as.Date(as.yearmon(x$Date,frac=0))
But I don't get the last day of the month here. (Tried
2007 May 08
3
plotting a point graph with data in X-axis
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