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I have a routine that the goal will always be the same; Every day it should read a file xlsx with all prices (historical series), pull from a given site the prices referring to the last update date, put together these two data in a single data.frame (in order to update the last data) and later turn it into an excel file. Although the webscrappe part is ready, I’m having a hard time putting the two dates together..
My tables are like this:
head(df.temp)
Data 2 3
<NA> codigo codigo
<NA> nome1 nome2
2012-01-01 480 330
... ... ...
2017-10-03 480 330
And:
itens2
Data 2 3
2017-04-10 400 300
When I use the function df.melt <- bind_rows(df.temp, itens2) the R returns:
Error in bind_rows_(x, .id) :
Can not automatically convert from character to numeric in column "2".
the two tables are data.frames. How to solve?
the ultimate goal would be a table like this:
Data 2 3
<NA> codigo codigo
<NA> nome1 nome2
2012-01-01 480 330
... ... ...
2017-10-03 480 330
2017-04-10 400 300
Whenever possible, share a part of your database with us. Choose a few lines from it and enter the result of the command
dput(MeuBancoDeDados). This will make life much easier for those who are willing to help, as it will not be necessary to create a special data set to try to solve the problem. Maybe this is why Gabe was unable to answer this question.– Marcus Nunes