Efficient way to split a vector into Matrix

14 Abr. 2011
3 Respuestas
Respuesta aceptada
6 Visualizaciones (30 días)

1 voto

Hi,
I am looking for an efficient way to do the following:
Take an input vector, e.g B = [2;5;8;11;3;6;9;15]
and return the array
D = [2 5 8 11 3;5 8 11 3 6;8 11 3 6 9]
, ie each column is a rolling subvector of B
My attempt below works but it causes a bottleneck in my programme. I have been trying to vectorize it but am finding it difficult.
If somebody has thoughts I would appreciate a pointer.
Thanks!
function ret = MakeMatrix(inputVector, inputLookbackPeriod, numPeriodsToCalculate)
m_Array = zeros(inputLookbackPeriod, numPeriodsToCalculate);
for i=1:numPeriodsToCalculate
m_Array(:,i) = inputVector(i:i+inputLookbackPeriod-1,1);
end
end

Iniciar sesión para responder a esta pregunta.

 Respuesta aceptada

the cyclist
the cyclist el 14 de Abr. de 2011

0 votos

Here is an obscure way, using a Hilbert matrix. It is semi-coincidental that the indexing you need is exactly the (element-by-element inverse of the) Hilbert matrix.
For something less esoteric, you could probably use the filter command.
function m_Array = MakeMatrixFast(inputVector, inputLookbackPeriod, numPeriodsToCalculate)
H = 1./hilb(max(inputLookbackPeriod,numPeriodsToCalculate));
H = H(1:inputLookbackPeriod,1:numPeriodsToCalculate);
m_Array = inputVector(H);
end

2 comentarios
Mostrar Ninguno Ocultar Ninguno

RoJo
RoJo el 14 de Abr. de 2011
Thanks. This does what I was asking. One point is that as I increase the argument to hilb, e.g 1./hilb(30) the resulting matrix contains 49.000.. which fails inputVector(H). So just needs a conversion before that line.
the cyclist
the cyclist el 14 de Abr. de 2011
Yeah, I should have anticipated that. Can you just put in a rounding command?

Iniciar sesión para comentar.

Más respuestas (2)

Andrei Bobrov
Andrei Bobrov el 14 de Abr. de 2011

1 voto

variant
D0 = buffer(B,5,4);
D = D0(2:end-1,4:end)

2 comentarios
Mostrar Ninguno Ocultar Ninguno

RoJo
RoJo el 14 de Abr. de 2011
Thanks for the reply. I don't have the Signal Processing Toolbox to use the buffer function however.
Teja Muppirala
Teja Muppirala el 14 de Abr. de 2011
You learn something new every day...

Iniciar sesión para comentar.

Matt Fig
Matt Fig el 14 de Abr. de 2011

1 voto

IDX = ones(3,5,'single');
IDX(:,1) = 1:3;
D = B(cumsum(IDX,2))
Or, to match your functional form:
function m_Array = MakeMatrixFast2(inputVector, inputLookbackPeriod, numPeriodsToCalculate)
IDX = ones(inputLookbackPeriod,numPeriodsToCalculate,'single');
IDX(:,1) = 1:inputLookbackPeriod;
m_Array = inputVector(cumsum(IDX,2));

2 comentarios
Mostrar Ninguno Ocultar Ninguno

RoJo
RoJo el 14 de Abr. de 2011
Sorry, I didn't refresh the page and see this answer. It works well and is efficient for large/small vectors and lookbacks. Thanks.
Matt Fig
Matt Fig el 14 de Abr. de 2011
That's o.k.! I tested all three algorithms and yours is actually faster than the cyclist's. Mine is somewhat faster than yours for certain inputs.

Iniciar sesión para comentar.

Categorías

Más información sobre Resizing and Reshaping Matrices en Centro de ayuda y File Exchange.

Etiquetas

Preguntada:

RoJo
RoJo
el 14 de Abr. de 2011

Community Treasure Hunt

Find the treasures in MATLAB Central and discover how the community can help you!

Start Hunting!

Translated by