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Level IV

Iteratively Create Columns Containing All Permutations of Subtraction from an Initial List of Columns

A month ago (402 views)

I have a list of columns and I need to create a new series of columns with every permutation of the difference between the listed columns.  The number of the columns in the list can vary and the non-iterative example below covers 3 columns (12 to 14).

 

Current  Data Table() << New Column(Head Name( As Namespace( Column( 12 ) ) )||" - "||Head Name( As Namespace( Column( 13 ) ) )||" HSD Threshold Matrix", Numeric, "Continuous", Format("Best", 10), Formula(Col Maximum(If(Contains(:Level, Head Name(As Namespace(Column(13))), 1), As Column(12)), :Group, :Size)));

Current  Data Table() << New Column(Head Name( As Namespace( Column( 12 ) ) )||" - "||Head Name( As Namespace( Column( 14 ) ) )||" HSD Threshold Matrix", Numeric, "Continuous", Format("Best", 10), Formula(Col Maximum(If(Contains(:Level, Head Name(As Namespace(Column(14))), 1), As Column(12)), :Group, :Size)));

Current  Data Table() << New Column(Head Name( As Namespace( Column( 13 ) ) )||" - "||Head Name( As Namespace( Column( 14 ) ) )||" HSD Threshold Matrix", Numeric, "Continuous", Format("Best", 10), Formula(Col Maximum(If(Contains(:Level, Head Name(As Namespace(Column(14))), 1), As Column(13)), :Group, :Size)));

 

 


Slán



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2 ACCEPTED SOLUTIONS

Accepted Solutions
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Level IV
Solution

Re: Iteratively Create Columns Containing All Permutations of Subtraction from an Initial List of Columns

Created: Oct 29, 2024 03:31 PM  |  Last Modified: Oct 31, 2024 12:46 PM (267 views)  |  Posted in reply to message from jthi 10-29-2024

Not sure if this is what you meant but I found something here that works.  What's even better about this is that it doesn't rely on column numbers.

Names Default to Here(1);
dt = Current Data Table();

//Select X Variable ____________________________________________________________________________________________________________________________________________

cdb = Column Dialog("Add continuous variables you want to plot as X" ,
	colxx = ColList( "X", Min Col( 1 ) ),
);
show(cdb);
Eval List(cdb[1::N Items(cdb)-1]);

Summarize(dt, uniqNames = by(colxx[1]));
Show(uniqNames);
Num = NItems(uniqNames);


For( k = 1, k <= N Items( uniqNames )-1, k++,
For( i = k+1, i <= N Items( uniqNames ), i++,
if (i > k, Eval(EvalExpr(Current Data Table() << New Column(Char(uniqNames[k])||" - "||Char(uniqNames[i])||" Matrix", Numeric, "Continuous", Format("Best", 10), Formula(Col Maximum(If(Contains(:Level, Expr(Char(uniqNames[i])), 1), As Column(Expr(Char(uniqNames[k])))), :Group, :Size)));
);
)
)))
;

Solved: Get column values using Loop - JMP User Community

 

 


Slán



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jthi
Super User jthi
Super User
Solution

Re: Iteratively Create Columns Containing All Permutations of Subtraction from an Initial List of Columns

4 weeks ago (264 views)  |  Posted in reply to message from jthi 10-29-2024 
Names Default To Here(1);
dt = Open("$SAMPLE_DATA/Cities.jmp");

mycols = {"OZONE", "CO", "SO2", "NO", "PM10"};

possible_group_idx = NChooseK Matrix(N Items(mycols), 2);
my_groups = Transform Each({idx}, As List(possible_group_idx), Output("List"),
	mycols[idx]
);

For Each({cols}, my_groups,
	Eval(Substitute(
		Expr(dt << New Column(cols[1] ||"_"||cols[2], Numeric, Continuous,
			Formula(_col1_ + _col2_)
		)),
		Expr(_col1_), Name Expr(AsColumn(dt, cols[1])),
		Expr(_col2_), Name Expr(AsColumn(dt, cols[2]))
	));
);

Write();
-Jarmo

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5 REPLIES 5
jthi
Super User jthi
Super User

Re: Iteratively Create Columns Containing All Permutations of Subtraction from an Initial List of Columns

A month ago (398 views)  |  Posted in reply to message from SpannerHead 10-25-2024

You can for example use NChooseK Matrix() to create the combinations (or DoE)

 

Names Default To Here(1);

mylist = {12, 13, 14};
possible_group_idx = NChooseK Matrix(3,2);

my_groups = Transform Each({idx}, possible_group_idx,
	mylist[idx]
);

[12 13, 12 14, 13 14]

 

 

-Jarmo
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Level IV

Re: Iteratively Create Columns Containing All Permutations of Subtraction from an Initial List of Columns

4 weeks ago (284 views)  |  Posted in reply to message from jthi 10-25-2024

Jarmo

 

Thanks, looks like it will work.  Haven't had time to study the details but wondering if there's an example of how it can be employed?


Slán



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jthi
Super User jthi
Super User

Re: Iteratively Create Columns Containing All Permutations of Subtraction from an Initial List of Columns

4 weeks ago (278 views)  |  Posted in reply to message from SpannerHead 10-29-2024

Loop over the matrix (or turn it into list of lists) and create the columns as you do that.

-Jarmo
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Level IV
Solution

Re: Iteratively Create Columns Containing All Permutations of Subtraction from an Initial List of Columns

Created: Oct 29, 2024 03:31 PM  |  Last Modified: Oct 31, 2024 12:46 PM (268 views)  |  Posted in reply to message from jthi 10-29-2024

Not sure if this is what you meant but I found something here that works.  What's even better about this is that it doesn't rely on column numbers.

Names Default to Here(1);
dt = Current Data Table();

//Select X Variable ____________________________________________________________________________________________________________________________________________

cdb = Column Dialog("Add continuous variables you want to plot as X" ,
	colxx = ColList( "X", Min Col( 1 ) ),
);
show(cdb);
Eval List(cdb[1::N Items(cdb)-1]);

Summarize(dt, uniqNames = by(colxx[1]));
Show(uniqNames);
Num = NItems(uniqNames);


For( k = 1, k <= N Items( uniqNames )-1, k++,
For( i = k+1, i <= N Items( uniqNames ), i++,
if (i > k, Eval(EvalExpr(Current Data Table() << New Column(Char(uniqNames[k])||" - "||Char(uniqNames[i])||" Matrix", Numeric, "Continuous", Format("Best", 10), Formula(Col Maximum(If(Contains(:Level, Expr(Char(uniqNames[i])), 1), As Column(Expr(Char(uniqNames[k])))), :Group, :Size)));
);
)
)))
;

Solved: Get column values using Loop - JMP User Community

 

 


Slán



SpannerHead
0 Kudos
jthi
Super User jthi
Super User
Solution

Re: Iteratively Create Columns Containing All Permutations of Subtraction from an Initial List of Columns

4 weeks ago (265 views)  |  Posted in reply to message from jthi 10-29-2024 
Names Default To Here(1);
dt = Open("$SAMPLE_DATA/Cities.jmp");

mycols = {"OZONE", "CO", "SO2", "NO", "PM10"};

possible_group_idx = NChooseK Matrix(N Items(mycols), 2);
my_groups = Transform Each({idx}, As List(possible_group_idx), Output("List"),
	mycols[idx]
);

For Each({cols}, my_groups,
	Eval(Substitute(
		Expr(dt << New Column(cols[1] ||"_"||cols[2], Numeric, Continuous,
			Formula(_col1_ + _col2_)
		)),
		Expr(_col1_), Name Expr(AsColumn(dt, cols[1])),
		Expr(_col2_), Name Expr(AsColumn(dt, cols[2]))
	));
);

Write();
-Jarmo