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I have a vector of solar radiation measurements for a water body, I would like to calculate the radiation that reaches certain depths in the water column. This can be calculated from Beer's law, which I have applied for the second depth of my measurements:

rad = 1+(30-1).*rand(365,1);
depth = 1:10;

kz = 0.4;
rad(:,2) = rad(:,1).*exp(-kz.*depth(2));

How would I apply this to all of the depths specified in the vector 'depth'? i.e. how would I generate a matrix which has 365 rows and 10 columns where each column refers to the radiation that reaches that particular depth.

share|improve this question
    
is the formula: a(n) = a(n-1)*exp(k*b(n)) or is it a(n) = a(0)*exp(k*b(n)) ? – Rasman Nov 14 '12 at 15:41
2  
because if it's the latter, you just need to do rad2 = rad*exp(-kz*depth); – Rasman Nov 14 '12 at 15:44
    
a(n) = a(0)*exp(k*b(n)) where a(0) is the original vector i.e. 'rad'. – KatyB Nov 14 '12 at 15:45
    
@Rasman: correct, except that you have to use bsxfun for the multiplication. – Jonas Nov 14 '12 at 15:52
    
@Jonas: why? 365x1 matrix multiplied by 1x10 matrix, gives 365x10. Maybe worry about the transverse – Rasman Nov 14 '12 at 16:01
up vote 3 down vote accepted

Since the decay of radiation due to scattering and absorption is a simple %-loss per depth, you can calculate the result very easily from the initial radiation:

initialRad = 1+(30-1).*rand(365,1);
depth = 0:10; %# start with zero so that the first column is your initial radiation

kz = 0.4;
rad = bsxfun(@times, initialRad, exp(-kz*depth) );

Note that as @Rasman points out, you can use vector multiplication instead of bsxfun, since multiplying a m-by-1 array with a 1-by-n array results in a m-by-n array. The bsxfun solution can be more robust, since it also works when the arrays have additional dimensions (e.g. m-by-1-by-k and 1-by-n-by-k if you do multiple tests), or if the vectors are transposed (e.g. 1-by-m and n-by-1). The solution below is a nice demonstration of good linear algebra skills, though you may want to add a note why you don't use dot multiplication with the two vectors initialRad and the exp-statement.

rad = initialRad * exp(-kz * depth);
share|improve this answer
    
you need to add exp to your solution... and I still think bsxfun is overkill – Rasman Nov 14 '12 at 16:02
    
@Rasman: you're right, of course, on both accounts. – Jonas Nov 14 '12 at 16:14

You should use loops,

here you can read a tutorial about them, and how to use them,

http://www.mathworks.com/help/distcomp/for.html

basically what you need is, a for loop that contains i as main parameter. Which should run for

i=1 .. 9

and your main assignment would become

rad(:,i+1) = rad(:,i).*exp(-kz.*depth(2));

to be more precise

for i = drange(1:9)
   rad(:,i+1) = rad(:,i).*exp(-kz.*depth(2));
end

I do not know the subject but this function will sweep your matrix, column by column, starts assigning column 2 using column 1 and goes on till column 10.

share|improve this answer
    
Matlab's sole aim should not be just not to write loops, In fact in iterative recursive solutions there is no other way than using loops. – Kemal Dağ Nov 14 '12 at 15:47
    
Loops in general are a poor idea for problems where you don't need them. Worse is when you don't preallocate your arrays if you do use a loop, then cause the array to grow in size. That is quite inefficient. Learn to preallocate those arrays. And learn how to solve problems without use of loops. Your code will improve. – user85109 Nov 14 '12 at 15:49
    
I'd also note that your "solution" is actually incorrect, since it refers explicitly to depth(2). – user85109 Nov 14 '12 at 15:51
    
My solution is not a solution, is just a way of how she can use loops, BTW, everything is a poor idea, when you dont need them. I worked with matlab for a long time, I know there are a lot of situations where you cannot escape using loops. In fact, escaping a great asset that a programming language gives you, is just stupidity. I hope it helped clarifying some points. – Kemal Dağ Nov 14 '12 at 15:54
    
The point is that this does NOT require the use of loops, and that your answer suggests that it does. In fact, the use of a loop here as you show it (without preallocation) can be quite inefficient for larger arrays. Sorry, but that is foolishness, pure and simple. Claiming that you have used MATLAB for a long time is irrelevant. Many people have used a tool without ever learning to use it well. – user85109 Nov 14 '12 at 15:59

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