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**GNEP** · 12 March 2006, 04:38

IIRC you have to express them in terms of e^i*whatever (you should be able to find the equivalencies easily enough on the interweb) and then it should drop out...

**gt40** · 12 March 2006, 16:56

I would have certainly been able to help 25-30 yrs ago, but normal life/work have made my mind mush

might have something to do with the cosine law, possibly

**Mehen** · 12 March 2006, 19:27

use the identities found at the bottom of the page http://www.mathematicshelpcentral.co...n_Formulas.pdf
if you still cannot get it then I will try it - but I gotta crack open my psych text for my midterm tomorrow

**the main lobe** · 12 March 2006, 20:06

Piece of cake

First distribute and change the inverted sine and cosine functions to regular sine and cosines.
left hand side of the equation...

[1/(sinA*cosA)]-[cosA / sinA]-[sinA / cosA]+cosA*sinA

Next get a common denominator in the middle terms and this becomes

[1/{sinA*cosA)]-[(cos^2 A + sin^2 A)/sinA*cosA] +cosA*sinA

Since (cos^2 A + sin^2 A)=1 the left side of the equation becomes just

cosA*sinA

The right side:

get rid of tan and cot by replacing with (sin/cos) and (cos/sin) respectively. Do the same common denominator step as on the left and you end up with

cosA*sinA=cosA*sinA

**DukeP** · 13 March 2006, 00:36

What do you know: One actually DOES learn something in Grad School.

Nicely done, the_main_lobe.

~~DukeP~~

**ayoub_ibrahim** · 13 March 2006, 03:19

Originally posted by the main lobe

First distribute and change the inverted sine and cosine functions to regular sine and cosines.
left hand side of the equation...

[1/(sinA*cosA)]-[cosA / sinA]-[sinA / cosA]+cosA*sinA

Next get a common denominator in the middle terms and this becomes

[1/{sinA*cosA)]-[(cos^2 A + sin^2 A)/sinA*cosA] +cosA*sinA

Since (cos^2 A + sin^2 A)=1 the left side of the equation becomes just

cosA*sinA

The right side:

get rid of tan and cot by replacing with (sin/cos) and (cos/sin) respectively. Do the same common denominator step as on the left and you end up with

cosA*sinA=cosA*sinA

excellent stuff mate and thanks a bunch!

**Rakido** · 13 March 2006, 05:54

hope that helps ...

**GNEP** · 13 March 2006, 06:25

Nice one main lobe

Clearly I'm a little rusty...

**rylan** · 13 March 2006, 13:43

Originally posted by DukeP

What do you know: One actually DOES learn something in Grad School.

Nicely done, the_main_lobe.

~~DukeP~~

Learn something yes... learn something useful? No

**Lambo-Fan** · 14 March 2006, 03:18

LOL @Rakido

Somehow that picture reminds me of my maths classes in school

**KvHagedorn** · 14 March 2006, 05:20

What would remind me of my college math classes would be someone from China or Argentina with absolutely zero communication skills silently working problems on the board for the entire hour and expecting us to learn something from it.

VJ · 15 March 2006, 03:42

Don't forget to include the cases in which the calculation fails (due to division by zero and such).

(they found this extremely important at our university)

JÃ¶rg

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