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trig representation
10-07-2017, 02:14 PM (This post was last modified: 10-07-2017 03:31 PM by Arno K.)
Post: #4
RE: trig representation
I made a plot of both, they seem to be the same, now I start trying by Hand.
Arno
P.S. If you want it quick and dirty: take the result from the Prime and yours and make an equation, use Binoms in the calc-result and get out the 2 from the exponents, multiply by 4 and take the resultimg two in the ln of your result, omit ln from both sides, you should now have \[abs(\frac{sin(z)+1}{sin(z)-1})=abs(\frac{(1+sin(z))^2}{(cos(z))^2})\] Put the abs on both sides on denominator as well as nominator, multiply crosswise and divide by \(abs(sin(z)+1)\), you have now \[abs((cos(z)^2)=abs((1+sin(z))*(sin(z)-1))\]Inside abs sin(z)-1 is the same as 1-sin(z) and because of \(sin(z)^2+cos(z)^2=1\) you are done. But how to make the calc show that, I don't know as I usually do things like that by hand.
Arno
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Messages In This Thread
trig representation - DrD - 10-06-2017, 11:19 AM
RE: trig representation - parisse - 10-06-2017, 03:43 PM
RE: trig representation - DrD - 10-07-2017, 11:05 AM
RE: trig representation - Arno K - 10-07-2017 02:14 PM
RE: trig representation - parisse - 10-07-2017, 06:10 PM
RE: trig representation - DrD - 10-08-2017, 11:15 AM
RE: trig representation - Arno K - 10-08-2017, 11:46 AM
RE: trig representation - parisse - 10-08-2017, 12:06 PM
RE: trig representation - DrD - 10-08-2017, 01:40 PM
RE: trig representation - toml_12953 - 10-10-2017, 02:33 PM
RE: trig representation - Tim Wessman - 10-10-2017, 04:13 PM
RE: trig representation - DrD - 10-10-2017, 07:43 PM



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