How can I multiply a vector by a scaling value with a loop?

18 Feb. 2022
1 Respuesta
Actualizado a las 18 Feb. 2022
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Hi I have a vector A (1x200) and I want to multiply it for a scaling factor of 0.2 for 10 times. I would like to obtain a matrix B(10x200) where each row is the scaled vector?
thanks

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Respuestas (1)

Jan
Jan el 18 de Feb. de 2022
Editada: Jan el 18 de Feb. de 2022
Ran in:

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Ran in:
A = rand(1, 100);
S = 0.2 .^ (1:10).';
B = S .* A;
A smaler example:
A = rand(1, 4)
A = 1×4
0.3654 0.1529 0.0723 0.4163
S = 0.2 .^ (1:3).'
S = 3×1
0.2000 0.0400 0.0080
B = S .* A
B = 3×4
0.0731 0.0306 0.0145 0.0833 0.0146 0.0061 0.0029 0.0167 0.0029 0.0012 0.0006 0.0033

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Paola
Paola el 18 de Feb. de 2022
thanks Jan,
it doesn't work because I have multiply the new vector for 0.2 up to ten times to obtain a matrix with 10 rows. Basically I have to scale my vector per 0.2 for 10 times.
Voss
Voss el 18 de Feb. de 2022
Editada: Voss el 18 de Feb. de 2022
Ran in:
Ran in:
I believe that is what @Jan's answer does (using 5 elements here instead of 100 for ease of display):
A = rand(1, 5);
S = 0.2 .^ (1:10).';
B = S .* A;
format long
disp(A);
0.928773205480852 0.372047849369982 0.597515763533504 0.191352119560953 0.541467764860118
disp(B);
0.185754641096170 0.074409569873996 0.119503152706701 0.038270423912191 0.108293552972024 0.037150928219234 0.014881913974799 0.023900630541340 0.007654084782438 0.021658710594405 0.007430185643847 0.002976382794960 0.004780126108268 0.001530816956488 0.004331742118881 0.001486037128769 0.000595276558992 0.000956025221654 0.000306163391298 0.000866348423776 0.000297207425754 0.000119055311798 0.000191205044331 0.000061232678260 0.000173269684755 0.000059441485151 0.000023811062360 0.000038241008866 0.000012246535652 0.000034653936951 0.000011888297030 0.000004762212472 0.000007648201773 0.000002449307130 0.000006930787390 0.000002377659406 0.000000952442494 0.000001529640355 0.000000489861426 0.000001386157478 0.000000475531881 0.000000190488499 0.000000305928071 0.000000097972285 0.000000277231496 0.000000095106376 0.000000038097700 0.000000061185614 0.000000019594457 0.000000055446299
The first row of B is 0.2*A, and each successive row is 0.2 times the previous row.
If you want 10 copies of 0.2*A instead, you can say:
B = repmat(0.2*A,10,1);
disp(B);
0.185754641096170 0.074409569873996 0.119503152706701 0.038270423912191 0.108293552972024 0.185754641096170 0.074409569873996 0.119503152706701 0.038270423912191 0.108293552972024 0.185754641096170 0.074409569873996 0.119503152706701 0.038270423912191 0.108293552972024 0.185754641096170 0.074409569873996 0.119503152706701 0.038270423912191 0.108293552972024 0.185754641096170 0.074409569873996 0.119503152706701 0.038270423912191 0.108293552972024 0.185754641096170 0.074409569873996 0.119503152706701 0.038270423912191 0.108293552972024 0.185754641096170 0.074409569873996 0.119503152706701 0.038270423912191 0.108293552972024 0.185754641096170 0.074409569873996 0.119503152706701 0.038270423912191 0.108293552972024 0.185754641096170 0.074409569873996 0.119503152706701 0.038270423912191 0.108293552972024 0.185754641096170 0.074409569873996 0.119503152706701 0.038270423912191 0.108293552972024
Jan
Jan el 18 de Feb. de 2022
@Paola : I've inserted a small example. If this does not do, what you need, explain the difference. Give e.g. a small example of what you need instead.
What exactly does this mean: "multiply it for a scaling factor of 0.2 for 10 times"?

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Paola
Paola
el 18 de Feb. de 2022

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Jan
Jan
el 18 de Feb. de 2022

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