let Z be open Subset of REAL; :: thesis: ( Z c= dom cot implies ( cot is_differentiable_on Z & ( for x being Real st x in Z holds
(cot `| Z) . x = - (1 / ((sin . x) ^2)) ) ) )

assume A1: Z c= dom cot ; :: thesis: ( cot is_differentiable_on Z & ( for x being Real st x in Z holds
(cot `| Z) . x = - (1 / ((sin . x) ^2)) ) )

A3: for x being Real st x in Z holds
cot is_differentiable_in x
proof end;
then A5: cot is_differentiable_on Z by A1, FDIFF_1:16;
for x being Real st x in Z holds
(cot `| Z) . x = - (1 / ((sin . x) ^2))
proof
let x be Real; :: thesis: ( x in Z implies (cot `| Z) . x = - (1 / ((sin . x) ^2)) )
A6: ( sin is_differentiable_in x & cos is_differentiable_in x ) by SIN_COS:68, SIN_COS:69;
assume A7: x in Z ; :: thesis: (cot `| Z) . x = - (1 / ((sin . x) ^2))
then x in dom cot by A1;
then sin . x <> 0 by FDIFF_8:2;
then diff (cot,x) = (((diff (cos,x)) * (sin . x)) - ((diff (sin,x)) * (cos . x))) / ((sin . x) ^2) by A6, FDIFF_2:14
.= (((- (sin . x)) * (sin . x)) - ((diff (sin,x)) * (cos . x))) / ((sin . x) ^2) by SIN_COS:68
.= ((- ((sin . x) * (sin . x))) - ((cos . x) * (cos . x))) / ((sin . x) ^2) by SIN_COS:69
.= (- (((sin . x) * (sin . x)) + ((cos . x) * (cos . x)))) / ((sin . x) ^2)
.= (- (((sin . x) * (sin . x)) + ((cos . x) ^2))) / ((sin . x) ^2)
.= (- (((sin . x) ^2) + ((cos . x) ^2))) / ((sin . x) ^2)
.= - ((((cos . x) ^2) + ((sin . x) ^2)) / ((sin . x) ^2)) by XCMPLX_1:188
.= - (1 / ((sin . x) ^2)) by SIN_COS:31 ;
hence (cot `| Z) . x = - (1 / ((sin . x) ^2)) by A5, A7, FDIFF_1:def 8; :: thesis: verum
end;
hence ( cot is_differentiable_on Z & ( for x being Real st x in Z holds
(cot `| Z) . x = - (1 / ((sin . x) ^2)) ) ) by A1, A3, FDIFF_1:16; :: thesis: verum