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I am new in R (statistic packet) programming and I would like to make an 1way anova.

My frame of data is like that

     q1 sex
1    N   M
2    Y   F
3    U   F
   ...
1000 Y   M

Could you help me please ?

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1  
But you do not have a continuous variable to be used as an outcome??? – 42- Apr 29 '11 at 18:09
    
Could you give a bit more information? Did you manage to import your data and get it as a data.fram in R? If so, could you just give us the output of head(yourdataframe) and str(yourdataframe)? – Thilo Apr 29 '11 at 18:09
    
Just curious, could one map the alphabet in lexographic order, and M/F to 1/2 in order to do this? Or does that not apply because q1 is not necessarily related in that order? Maybe you would analyze the M/F variance for each q1 value, and then combine it into a chi-square distribution? – bdares Apr 29 '11 at 18:11
1  
A cite from wikipedia: "In statistics, one-way analysis of variance (abbreviated one-way ANOVA) is a technique used to compare means of two or more samples (using the F distribution). This technique can be used only for numerical data[1]." You only have factorial data. Is there any numerical relation between you data? If so you can fit on this. But be careful not to introduce some meaningless scale as the lexicographic order - there is nothing that guarantees you that the distance between N and M is the same as between M and Q. – Thilo Apr 29 '11 at 18:22
    
tinyurl.com/67vgml3 – Roman Luštrik Apr 29 '11 at 18:49

Following up on @Thilo's and @DWin's comments above: if you really want to analyze the relationship between two categorical variables, you might try something like this:

## make up random data (no real pattern)
dat <- data.frame(q1=sample(c("N","Y","U"),size=1000,replace=TRUE),
                  sex=sample(c("M","F"),size=1000,replace=TRUE))
dtab <- with(dat,table(q1,sex))
chisq.test(dtab)
mosaicplot(dtab)

It would be really helpful from the point of view of answering your questions to have some more context: what question are you trying to answer? Also, as always, it's nice to have a reproducible example (just to save the time of coming up with my own way of generating some fake data to play with).

One small point is that the Pearson chi-square test is testing for association; it doesn't distinguish between response and predictor variables as the ANOVA framework does.

Of course, if you really have a continuous response variable that you're neglecting to tell us about, then this won't be too useful ...

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This link might be useful. It seems ot give an example of how you can do this.

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Thanks for your help But I do something wrong frameq7 = data.frame(q7,sex) frameq7 <- frameq7[order(sex),] r <- lm(q7~sex, data=frameq7) Error in storage.mode(y) <- "double" : invalid to change the storage mode of a factor In addition: Warning message: In model.response(mf, "numeric") : using type="numeric" with a factor response will be ignored anova(r) – user494766 Apr 29 '11 at 19:12
    
This looks very similiar: stackoverflow.com/questions/5799111/factors-in-aov – John Kane Apr 29 '11 at 19:21
    
It looks even more similar to: stat.ethz.ch/pipermail/r-help/2011-April/276692.html Apparently user494766 is not understanding what she is being told here. – 42- Apr 29 '11 at 20:23
    
I did not take an answer so I wrote in two forums the same question. is it so bad ? my problem still exists :( – user494766 Apr 29 '11 at 20:32
    
@John: not that similar since in that question there at least existed a continuous variable that could be used as the response ... this questioner is either confused or has a different sort of question – Ben Bolker Apr 29 '11 at 21:06

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