Azzera filtri
Azzera filtri

when i run the following code its showing an error that dimensions must agree

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vaishnavi potharaju
vaishnavi potharaju il 11 Dic 2018
Modificato: madhan ravi il 12 Dic 2018
w=(2.3.^-u.*log(1.+(0.5615./u)-0.4385*(((1.0421.*u))+(1/(1.+u.^1.5))+(1.0801./(1.+(2.35.*u.^(-1.0919))))))^-2./(0.5616+(0.4385+2.35.*2.3^(-2.283.*u))))
i want to calculate 'w' for a set of 'u' values.i'm confused while arranging '.' when i run this i get "error usin + and matrix dimensions must agree".

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madhan ravi
madhan ravi il 11 Dic 2018
Modificato: madhan ravi il 11 Dic 2018
If you still have problem then use bsxfun() with mtimes and rdivide appropriately if your usig version prior to 2016b
w=(2.3.^-u.*log(1.+(0.5615./u)-0.4385.*(((1.0421.*u))+(1/(1.+u.^1.5))+(1.0801./(1.+(2.35.*u.^(-1.0919))))))^-2./(0.5616+(0.4385+2.35.*2.3^(-2.283.*u))))
^---dot missed
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vaishnavi potharaju
vaishnavi potharaju il 12 Dic 2018
Modificato: madhan ravi il 12 Dic 2018
sir i tried to run my code with bsxfnc but as it is a very complex equation i couldnt do it.so i split the equation into small parts as follows and now im able to run it.
w=((2.3).^-u.*log(1.+(0.5615./u)-0.4385.*(((1.0421.*u))+(1./(1.+u.^1.5))+(1.0801./(1.+(2.35.*u^(-1.0919)))))).^-2./(0.5616+(0.4385*2.3.^(-2.2803.*u))))
w1=1.+(0.5615./u)
w2=1.0801./(1.+(2.35.*u.^(-1.0919)))
w3=1./(1.+u.^1.5)
w4=1.0421.*u
w5=2.3.^-u
w6=0.4385.*2.3.^(-2.2803.*u)
w7=0.4385.*(w4+w3+w2).^-2
w8=log(1+w1-w7)
w9=w8.*w5
w10=0.5616+w6
wu=w9./w10

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