Area under a curve
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Hi,
I want to calculate the area of this curve. y = [0 1 3 -1 -2 -3 -1 0];
I know a portion of the curve has negative value, so my solution is make all the y values absolute. But then the area of absolute y will be higher. Can anyone help me?
Thanks.
回答 (3 件)
Walter Roberson
2016 年 7 月 4 日
0 投票
Star Strider
2016 年 7 月 4 日
The problem wasn’t immediately obvious to me. You need to find the zero-crossing, and then add the two separate areas:
y = [0 1 3 -1 -2 -3 -1 0];
x = 1:length(y);
zci = @(v) find(v(:).*circshift(v(:), [-1 0]) < 0); % Returns Approximate Zero-Crossing Indices Of Argument Vector
yzxi = zci(y); % Zero-Crossing Index
x0 = interp1(y(yzxi:yzxi+1), x(yzxi:yzxi+1), 0); % Interpolate To Find Zero-Crossing
AUC = polyarea([x(1:yzxi) x0], [y(1:yzxi) 0]) + polyarea([x0 x(yzxi+1:end)], [0 y(yzxi+1:end)]);
INT = trapz(x, abs(y)) % Compare (Optional)
AUC =
10.2500
INT =
11.0000
I used the polyarea function rather than the integration functions. If you have a more complicated function, this will work as well, but you will have to make the appropriate changes to the code. (I included the trapz function integration of the absolute value for comparison.)
2 件のコメント
Q TRAN
2016 年 7 月 5 日
Star Strider
2016 年 7 月 5 日
Yes.
You simply have to find each one, calculate the zero-crossing, and do polyarea for each segment.
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