IF statement with multiple logical OR

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George Holt
George Holt il 25 Dic 2015
Commentato: George Holt il 25 Dic 2015
I'm running a function that solves a given PDE using Euler's method
I attempt to plot the numerical solutions to the PDE at specific times (0.1, 0.5, 1.0 and 2.0) by testing equalities for t in an IF statement
However, only plots for t == 0.1 and t == 0.5 are plotted for some reason
I've tried debugging with breakpoints and the IF statement tests true when t == 0.1 and 0.5, but false when t == 1 and 2, even though the variable t in the workspace == 1 and 2
The relevant code is:
t = 0;
dt = 0.1;
for a = 1 : timesteps
for b = 1 : nodes
u = %solve PDE;
end
t = t + dt;
round(t,1);
if t == 0.1 || t ==0.5 || t == 1.0 || t == 2.0
figure
plot(t,u)
end
end
  2 Commenti
John D'Errico
John D'Errico il 25 Dic 2015
NEVER test for exact equality of a floating point number. That test will fail most of the time. Note that 0.1 is not representable exactly in a binary arithmetic.
George Holt
George Holt il 25 Dic 2015
Many thanks! I tested for inequalities instead and that works

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Jan
Jan il 25 Dic 2015
This line does not perform ynathing, because theoutput is not stored:
round(t,1);
You cannot expect, that 0.1+0.1+0.1 is exactly 0.3, because the most decimal floating point values do not have an exact representation in the binary system, such that rounding errors occur.
Better use an arbitrary, but matching threshold:
if any(abs(t - [0.1, 0.5, 1.0. 2.0]) < 1e8)
figure
plot(t,u)
end
Add a meaningful comment to explain the size of the threshold.
Since R2015a:
if ismembertol(t, [0.1, 0.5, 1.0. 2.0])
  1 Commento
George Holt
George Holt il 25 Dic 2015
I used
if (0 < t) && (t < 0.2) || (0.4 < t) && (t < 0.6) %etc
but your solution is much nicer!
Thanks

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