missing solutions for trig equation?? (1 Viewer)

get_back23

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say for 2 sin squared x = -sinx
i divide by sinx
becomes 2sinx = -1
but then i would miss a solution comparing to if i did 2sinsquared x + sinx =0 then factorise

... and how do i know when to use this method to not miss a solution?, or should i just ignore it

Thanks so much
 

nightweaver066

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say for 2 sin squared x = -sinx
i divide by sinx
becomes 2sinx = -1
but then i would miss a solution comparing to if i did 2sinsquared x + sinx =0 then factorise

... and how do i know when to use this method to not miss a solution?, or should i just ignore it

Thanks so much
Never do it.

If you divide both sides by sinx, you're assuming that sinx cannot equal to 0 (you cannot divide by 0) so you end up losing a solution (or multiple solutions depending on the domain).
 

Aesytic

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it's probably best to avoid dividing by an unknown when solving an equation, but if you wanted to, i suppose you could test the solution sinx=0, and if it didn't work, then you could divide the whole equation by sinx
 

Shadowdude

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Never do it.

If you divide both sides by sinx, you're assuming that sinx cannot equal to 0 (you cannot divide by 0) so you end up losing a solution (or multiple solutions depending on the domain).
^ That.

just factorise 'em out
 
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If you divide by sinx it's like dividing out x from but obviously as well!
 

get_back23

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oh i c

but then doesnt that mean its harder to solve those trig equations without powers, because what can i do now? factorise if its easy, but otherwise its t/2 and auxillary?
 

theind1996

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oh i c

but then doesnt that mean its harder to solve those trig equations without powers, because what can i do now? factorise if its easy, but otherwise its t/2 and auxillary?
Can you please give me a "harder trig equation without powers"?

Because this one can be easily factorised and treated like a Quadratic..
 

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