How to define a cumulative distribution function with variable in it

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Nutthanond
Nutthanond 2013년 2월 3일
댓글: Hui 2024년 11월 8일
Hi everyone, I'm having problem trying to solve for the integral of the cumulative distribution function for my thesis. I want to hold x as variable for F(x) and solve it later to optimize it. The problem is the function normcdf(x,mu,sigma) doesn't allow me to define x as symbol, it require x to be a double value instead. So my question is, is there anyway to define x as "syms x" and then use normcdf(x,mu,sigma)?
With the uniform distribution I write the function straightforward in the program like this:
gamma = 0; n = 150; syms e Q_sc Q_r X Pi_sc Pi_r S_Q S_Q2 x h t; S_Q = Q_sc - int(((e-gamma+n)/(2*n)),e,0,Q_sc - D_r); S_Q2 = Q_r - int(((e-gamma+n)/(2*n)),e,0,Q_r - D_r); Pi_sc = (S_Q*(p-c_m-s+g_r+g_m+(G1*(s_return-l_m-l_r-r)))) + ((s-c_r)*Q_sc) - ((g_r+g_m)*D_r); Diff_Pi_sc = diff(Pi_sc,'Q_sc'); Q_sc = solve(Diff_Pi_sc); Q_sc = vpa(Q_sc);
So instead of writing unifcdf(...), I use ((e-gamma+n)/(2*n)) instead, because I want to keep "e" as variable, I don't want the program to calculate in right away. Is there anyway I can achieve this task using unifcdf function provided by the program?
Thank you very much in advance

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채택된 답변

bym
bym 2013년 2월 3일
f = @(x) normcdf(x,mu,sigma);
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Tom Lane
Tom Lane 2013년 2월 4일
It's not clear to me what you tried. Your post mentions integrating the cdf. I don't know the integral of the cdf, but here's the cdf itself:
>> mu = 0; sigma = 1; f = @(x) normcdf(x,mu,sigma);
I would expect the cdf to be close to 1 over this interval of length 5, so I'd expect the integral to be about 5:
>> integral(f,10,15)
ans =
5
I'd expect the cdf to average to 0.5 over this symmetric interval of length 2, so I'd expect the answer to be about 1:
>> integral(f,-1,1)
ans =
1
Hui
Hui 2024년 11월 8일
Hi, Tom!
Could I ask a question? why the cdf is close to 1 over the interval [10, 15], while the cdf is expected to 0.5 over the interval [-1, 1]? If we choose another integral interval, for example, the interval [8, 10], what would the cdf to be expected? Thank you for your attention!

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추가 답변 (3개)

Tom Lane
Tom Lane 2013년 2월 4일
If you need to use Symbolic Toolbox sym variables, then you may want to use the erfc function in place of normcdf. Consider this:
>> mu = 10; sigma = 2;
>> normcdf(10:13,mu,sigma)
ans =
0.5000 0.6915 0.8413 0.9332
Here's how to get to get that answer using a sym:
>> syms x
>> y = .5*erfc(-(x-mu)/(sigma*sqrt(2)));
>> subs(y,x,10:13)
ans =
[ 1/2, 1 - erfc(2^(1/2)/4)/2, 1 - erfc(2^(1/2)/2)/2, 1 - erfc((3*2^(1/2))/4)/2]
>> double(ans)
ans =
0.5000 0.6915 0.8413 0.9332
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Nutthanond
Nutthanond 2013년 2월 9일
Thank you very much, this is exactly what I need. ^___^ ah, by the way I accept the wrong answer, actually I want to accept this one but wrong pressing

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Pritee Ray
Pritee Ray 2015년 3월 20일
Dear Tom Lane, I want to integrate a cdf function, however getting error "??? Undefined function or method 'erfc' for input arguments of type 'sym'." The Matlab code is given below.Please suggest me what to do? sym x f1(i) =int(normcdf(x,mu,sigma),0,1000); f2(i) =int(normcdf(x,mu,sigma),1600,2000); G(i) = double(f1(i)+f2(i));
Mohammad Wamique
Mohammad Wamique 2020년 2월 21일
편집: Mohammad Wamique 2020년 2월 21일
Use an equivalent 'complementary error function' instead. For example:
''normcdf(x)'' is equivalent to "0.5*erfc(-x/(sqrt(2)))''.
Try: [normcdf(.5); 0.5*erfc(-.5/(sqrt(2)))] in command window

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