Can finite difference method can be expressed with diff function?

2 visualizaciones (últimos 30 días)
mathango
mathango el 8 de Mayo de 2016
Comentada: Roger Stafford el 9 de Mayo de 2016
Hi, Here is the finite difference example
i=2:n-1;
j=2:n-1;
B(i,j) = A(i+1,j) - 2*A(i,j) + A(i-1,j) + A(i,j+1) - 2*A(i,j) + A(i,j-1)
expanding it yields
B(i,j) = A(i+1,j) - *A(i,j)- *A(i,j) + A(i-1,j) + A(i,j+1)- *A(i,j)- *A(i,j) + A(i,j-1)
rearranging,
B(i,j) = {A(i+1,j) - *A(i,j)}- {*A(i,j) - A(i-1,j)} + {A(i,j+1)- *A(i,j)} - {*A(i,j) - A(i,j-1)}
then,
B = diff(A,?,?) - diff(A,?,?) + diff(A,?,?) - diff(A,?,?)
Can this arrangement be possible? if yes, then what are the values in the question marks.

Iniciar sesión para responder a esta pregunta.

Respuestas (1)

Roger Stafford
Roger Stafford el 8 de Mayo de 2016
Editada: Roger Stafford el 8 de Mayo de 2016
Assuming A is n x n,
B = diff(A,2,1)+diff(A,2,2);
The array B would be of n-2 x n-2 size. The second argument of 2 in each 'diff' indicates a "second" difference.
  2 comentarios
mathango
mathango el 9 de Mayo de 2016
The equation does not work. Each diff result has different matrix size ( 3 x 5 and 5 x 3 for n=5) therefore sum of each diff does not work.
Roger Stafford
Roger Stafford el 9 de Mayo de 2016
I'm sorry. I have corrected it to be what I think you asked for. The second difference operation shrinks the size down by two in the direction in which it is performed. Your expression did second differencing in two directions.

Iniciar sesión para comentar.

Categorías

Más información sobre Loops and Conditional Statements en Help Center y File Exchange.

Etiquetas

Community Treasure Hunt

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

Start Hunting!

Translated by