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Why does the following give me errors about dividing by 0?

ParametricPlot[{1/Sin[t], t}, {t, 0, 3 Pi}, Exclusions -> Sin[t] == 0]
Power::infy: Infinite expression 1/0 encountered.

It does successfully exclude the points at Pi and 2 Pi, but not the points at 0 and 3 Pi. If I exclude the endpoints by changing the interval...

ParametricPlot[{1/Sin[t], t}, {t, 0.001, 2.999 Pi}, Exclusions -> Sin[t] == 0]

I get no errors.

How do you exclude the endpoints of a plot?

thanks,
Rob

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What version of Mathematica are you using? In 7.0 the endpoints are excluded without fudging the interval, but the errors are still emitted. –  Michael Pilat Oct 12 '10 at 15:11
    
I'm using 7.0 (student edition, OS X). –  Rob N Oct 12 '10 at 15:20
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1 Answer

up vote 2 down vote accepted

In this particular case, you can reformulate the plot with Csc[t] instead of 1/Sin[t] and things seem to work:

ParametricPlot[{Csc[t], t}, {t, 0, 3 Pi}, Exclusions -> {Sin[t] == 0}]

Mathematica graphics

I suspect the behavior with 1/Sin[t] is simply a bug and will report it as such.

As a more-general workaround, you can wrap your original expression with Quiet to surpress the error messages:

Quiet[ParametricPlot[{1/Sin[t], t}, {t, 0, 3 Pi}, 
    Exclusions -> Sin[t] == 0], Power::infy]
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Thanks! I didn't know about Quiet. –  Rob N Oct 12 '10 at 22:38
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