let A be closed-interval Subset of REAL ; :: thesis: for Z being open Subset of REAL
for f being PartFunc of REAL ,REAL st A c= Z & ( for x being Real st x in Z holds
( f . x = - (1 / ((sin . x) ^2 )) & sin . x <> 0 ) ) & dom cot = Z & Z = dom f & f | A is continuous holds
integral f,A = (cot . (sup A)) - (cot . (inf A))

let Z be open Subset of REAL ; :: thesis: for f being PartFunc of REAL ,REAL st A c= Z & ( for x being Real st x in Z holds
( f . x = - (1 / ((sin . x) ^2 )) & sin . x <> 0 ) ) & dom cot = Z & Z = dom f & f | A is continuous holds
integral f,A = (cot . (sup A)) - (cot . (inf A))

let f be PartFunc of REAL ,REAL ; :: thesis: ( A c= Z & ( for x being Real st x in Z holds
( f . x = - (1 / ((sin . x) ^2 )) & sin . x <> 0 ) ) & dom cot = Z & Z = dom f & f | A is continuous implies integral f,A = (cot . (sup A)) - (cot . (inf A)) )

assume A1: ( A c= Z & ( for x being Real st x in Z holds
( f . x = - (1 / ((sin . x) ^2 )) & sin . x <> 0 ) ) & dom cot = Z & Z = dom f & f | A is continuous ) ; :: thesis: integral f,A = (cot . (sup A)) - (cot . (inf A))
then A2: ( f is_integrable_on A & f | A is bounded ) by INTEGRA5:10, INTEGRA5:11;
A3: cot is_differentiable_on Z by A1, INTEGRA8:34;
A4: for x being Real st x in dom (cot `| Z) holds
(cot `| Z) . x = f . x
proof
let x be Real; :: thesis: ( x in dom (cot `| Z) implies (cot `| Z) . x = f . x )
assume x in dom (cot `| Z) ; :: thesis: (cot `| Z) . x = f . x
then A5: x in Z by A3, FDIFF_1:def 8;
then (cot `| Z) . x = - (1 / ((sin . x) ^2 )) by A1, INTEGRA8:34
.= f . x by A1, A5 ;
hence (cot `| Z) . x = f . x ; :: thesis: verum
end;
dom (cot `| Z) = dom f by A1, A3, FDIFF_1:def 8;
then cot `| Z = f by A4, PARTFUN1:34;
hence integral f,A = (cot . (sup A)) - (cot . (inf A)) by A1, A2, A3, INTEGRA5:13; :: thesis: verum