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Question Number 225768 Answers: 0 Comments: 0

WeinGarten Equation r_u ∙r_u =E , r_u ∙r_v =F , r_v ∙r_v =G N^ ∙N^ =1 ((∂(N^ ∙N^ ))/∂u)=N_u ^ ∙N^ +N^ ∙N_u ^ =0 ((∂(N^ ∙N^ ))/∂v)=N_v ^ ∙N^ +N^ ∙N_v ^ =0 N_μ ^ ∙N^ =0 ⇋ N_μ ^ ⊥N^ N_u ^ ∙r_u ^ =(Ar_u ^ +Br_v ^ )∙r_u ^ → =Ar_u ^ ∙r_u ^ +Br_u ^ ∙r_v ^ =AE+BF N_u ^ ∙r_v ^ =(Ar_u ^ +Br_v ^ )∙r_v ^ → =Ar_u ^ ∙r_v ^ +Br_v ^ ∙r_v ^ =AF+BG N_v ^ ∙r_u ^ =(Cr_u ^ +Dr_v ^ )∙r_u ^ →=Cr_u ^ ∙r_u ^ +Dr_v ^ ∙r_u ^ =CE+DF N_u ^ ∙r_v ^ =(Cr_u ^ +Dr_v ^ )∙r_v ^ → =Cr_u ^ ∙r_v ^ +Dr_v ^ ∙r_v ^ =CF+DG N_u ^ ∙r_u ^ =−L N_u ^ ∙r_v ^ =−M N_v ^ ∙r_u ^ =−M N_v ^ ∙r_v ^ =−N −L=AE+BF −M=AF+BG −M=CE+DF −N=CF+DG (((−L)),((−M)) )= ((E,F),(F,G) ) ((A),(B) ) (((−M)),((−N)) )= ((E,F),(F,G) ) ((C),(D) ) n_u ^ =((M′F′−G′L′)/(E′G′−F′^2 )) r_u ^ +((L′F′−E′M′)/(E′G′−F′^2 )) r_v ^ n_v ^ =((N′F′−G′M′)/(E′G′−F′^2 )) r_u ^ +((M′F′−E′N′)/(E′G′−F′^2 )) r_v ^

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((−1))^(1/i)

$$\sqrt[{{i}}]{−\mathrm{1}} \\ $$

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Question Number 225664 Answers: 0 Comments: 0

If a(x)=1 and W_(n=−1) ^(Qw_(fr.) ((1/(x−1))×x)) a′′(ust^n x)=0; What value of Tk(x^2 )? (This is nonstandartmath exercise)

$${If}\:{a}\left({x}\right)=\mathrm{1}\:{and}\:\underset{{n}=−\mathrm{1}} {\overset{{Qw}_{{fr}.} \left(\frac{\mathrm{1}}{{x}−\mathrm{1}}×{x}\right)} {{W}}a}''\left({ust}^{{n}} {x}\right)=\mathrm{0}; \\ $$$${What}\:{value}\:{of}\:{Tk}\left({x}^{\mathrm{2}} \right)? \\ $$$$\left({This}\:{is}\:{nonstandartmath}\:{exercise}\right) \\ $$

Question Number 225661 Answers: 1 Comments: 5

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∫_0 ^(π/2) e^(iπx) dx

$$\int_{\mathrm{0}} ^{\frac{\pi}{\mathrm{2}}} {e}^{{i}\pi{x}} \:{dx} \\ $$

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Question Number 225625 Answers: 0 Comments: 4

quick short Q 2 things are mixed 1)both same volume 2)both same mass density⇒d_v and d_m d_v ? d_m [=,< or>]

$${quick}\:{short}\:{Q} \\ $$$$\mathrm{2}\:{things}\:{are}\:{mixed}\: \\ $$$$\left.\mathrm{1}\right){both}\:{same}\:{volume} \\ $$$$\left.\mathrm{2}\right){both}\:{same}\:{mass} \\ $$$${density}\Rightarrow{d}_{{v}} \:{and}\:{d}_{{m}} \\ $$$${d}_{{v}} \:?\:{d}_{{m}} \left[=,<\:{or}>\right] \\ $$

Question Number 225613 Answers: 7 Comments: 0

Question Number 225610 Answers: 0 Comments: 0

prove Gauss curvature K is intrinsic by showing K=(( determinant (((−(1/2)E_(vv) +F_(uv) −G_(uu) ),((1/2)E_u ),(F_u −(1/2)E_v )),(( F_v −(1/2)G_u ),( E),( F)),(( (1/2)G_v ),( F),( G)))− determinant ((( 0),((1/2)E_v ),((1/2)G_u )),(((1/2)E_v ),( E),( F)),(((1/2)G_v ),( F),( G))))/((EG−F^( 2) )^2 )) E,F,G is First Fundametal form of metric tensor.

Pg 1 Pg 2 Pg 3 Pg 4 Pg 5 Pg 6 Pg 7 Pg 8 Pg 9 Pg 10

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