exp^[3/2](x) > sinh^[1/2](exp(x)) ?

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exp^[3/2](x) > sinh^[1/2](exp(x)) ?

sheldonison Offline

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04/24/2015, 02:59 PM

(04/24/2015, 02:07 PM)tommy1729 Wrote: Sheldon, that is exactly as expected.
The reason you get this result is because you used kneser instead of my 2sinh method.

I assumed Kneser's exp^[1/2](z), since it is analytic in the complex plane Smile

- Sheldon

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Messages In This Thread

exp^[3/2](x) > sinh^[1/2](exp(x)) ? - by tommy1729 - 04/21/2015, 12:09 PM

RE: exp^[3/2](x) > sinh^[1/2](exp(x)) ? - by tommy1729 - 04/21/2015, 01:21 PM

RE: exp^[3/2](x) > sinh^[1/2](exp(x)) ? - by tommy1729 - 04/23/2015, 04:38 PM

RE: exp^[3/2](x) > sinh^[1/2](exp(x)) ? - by sheldonison - 04/24/2015, 12:40 AM

RE: exp^[3/2](x) > sinh^[1/2](exp(x)) ? - by tommy1729 - 04/23/2015, 04:54 PM

RE: exp^[3/2](x) > sinh^[1/2](exp(x)) ? - by tommy1729 - 04/24/2015, 02:07 PM

RE: exp^[3/2](x) > sinh^[1/2](exp(x)) ? - by sheldonison - 04/24/2015, 02:59 PM

RE: exp^[3/2](x) > sinh^[1/2](exp(x)) ? - by tommy1729 - 10/26/2015, 01:07 AM

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