let x0 be Element of COMPLEX ; :: thesis: for f being PartFunc of COMPLEX,COMPLEX holds
( f is_continuous_in x0 iff ( x0 in dom f & ( for r being Real st 0 < r holds
ex s being Real st
( 0 < s & ( for x1 being Element of COMPLEX st x1 in dom f & |.(x1 - x0).| < s holds
|.((f /. x1) - (f /. x0)).| < r ) ) ) ) )

let f be PartFunc of COMPLEX,COMPLEX; :: thesis: ( f is_continuous_in x0 iff ( x0 in dom f & ( for r being Real st 0 < r holds
ex s being Real st
( 0 < s & ( for x1 being Element of COMPLEX st x1 in dom f & |.(x1 - x0).| < s holds
|.((f /. x1) - (f /. x0)).| < r ) ) ) ) )

thus ( f is_continuous_in x0 implies ( x0 in dom f & ( for r being Real st 0 < r holds
ex s being Real st
( 0 < s & ( for x1 being Element of COMPLEX st x1 in dom f & |.(x1 - x0).| < s holds
|.((f /. x1) - (f /. x0)).| < r ) ) ) ) ) :: thesis: ( x0 in dom f & ( for r being Real st 0 < r holds
ex s being Real st
( 0 < s & ( for x1 being Element of COMPLEX st x1 in dom f & |.(x1 - x0).| < s holds
|.((f /. x1) - (f /. x0)).| < r ) ) ) implies f is_continuous_in x0 )
proof
assume A1: f is_continuous_in x0 ; :: thesis: ( x0 in dom f & ( for r being Real st 0 < r holds
ex s being Real st
( 0 < s & ( for x1 being Element of COMPLEX st x1 in dom f & |.(x1 - x0).| < s holds
|.((f /. x1) - (f /. x0)).| < r ) ) ) )

hence x0 in dom f by Def2; :: thesis: for r being Real st 0 < r holds
ex s being Real st
( 0 < s & ( for x1 being Element of COMPLEX st x1 in dom f & |.(x1 - x0).| < s holds
|.((f /. x1) - (f /. x0)).| < r ) )

given r being Real such that A2: 0 < r and
A3: for s being Real holds
( not 0 < s or ex x1 being Element of COMPLEX st
( x1 in dom f & |.(x1 - x0).| < s & not |.((f /. x1) - (f /. x0)).| < r ) ) ; :: thesis: contradiction
defpred S1[ Element of NAT , Element of COMPLEX ] means ( $2 in dom f & |.($2 - x0).| < 1 / ($1 + 1) & not |.((f /. $2) - (f /. x0)).| < r );
A4: for n being Element of NAT ex g being Element of COMPLEX st S1[n,g]
proof
let n be Element of NAT ; :: thesis: ex g being Element of COMPLEX st S1[n,g]
0 < n + 1 by NAT_1:3;
then 0 < (n + 1) " by XREAL_1:122;
then 0 < 1 / (n + 1) by XCMPLX_1:215;
then consider g being Element of COMPLEX such that
A5: ( g in dom f & |.(g - x0).| < 1 / (n + 1) & not |.((f /. g) - (f /. x0)).| < r ) by A3;
take g ; :: thesis: S1[n,g]
thus S1[n,g] by A5; :: thesis: verum
end;
consider s1 being Complex_Sequence such that
A6: for n being Element of NAT holds S1[n,s1 . n] from CFCONT_1:sch 1(A4);
A7: rng s1 c= dom f
proof
let x be set ; :: according to TARSKI:def 3 :: thesis: ( not x in rng s1 or x in dom f )
assume x in rng s1 ; :: thesis: x in dom f
then ex n being Element of NAT st x = s1 . n by FUNCT_2:113;
hence x in dom f by A6; :: thesis: verum
end;
A8: now
let n be Element of NAT ; :: thesis: not |.(((f /* s1) . n) - (f /. x0)).| < r
not |.((f /. (s1 . n)) - (f /. x0)).| < r by A6;
hence not |.(((f /* s1) . n) - (f /. x0)).| < r by A7, FUNCT_2:109; :: thesis: verum
end;
A9: now
let s be Real; :: thesis: ( 0 < s implies ex k being Element of NAT st
for m being Element of NAT st k <= m holds
|.((s1 . m) - x0).| < s )

consider n being Element of NAT such that
A10: s " < n by SEQ_4:3;
assume 0 < s ; :: thesis: ex k being Element of NAT st
for m being Element of NAT st k <= m holds
|.((s1 . m) - x0).| < s

then A11: 0 < s " by XREAL_1:122;
(s ") + 0 < n + 1 by A10, XREAL_1:8;
then 1 / (n + 1) < 1 / (s ") by A11, XREAL_1:76;
then A12: 1 / (n + 1) < s by XCMPLX_1:216;
take k = n; :: thesis: for m being Element of NAT st k <= m holds
|.((s1 . m) - x0).| < s

let m be Element of NAT ; :: thesis: ( k <= m implies |.((s1 . m) - x0).| < s )
assume k <= m ; :: thesis: |.((s1 . m) - x0).| < s
then k + 1 <= m + 1 by XREAL_1:6;
then 1 / (m + 1) <= 1 / (k + 1) by NAT_1:3, XREAL_1:118;
then 1 / (m + 1) < s by A12, XXREAL_0:2;
hence |.((s1 . m) - x0).| < s by A6, XXREAL_0:2; :: thesis: verum
end;
then A13: s1 is convergent by COMSEQ_2:def 4;
then lim s1 = x0 by A9, COMSEQ_2:def 5;
then ( f /* s1 is convergent & f /. x0 = lim (f /* s1) ) by A1, A7, A13, Def2;
then consider n being Element of NAT such that
A14: for m being Element of NAT st n <= m holds
|.(((f /* s1) . m) - (f /. x0)).| < r by A2, COMSEQ_2:def 5;
|.(((f /* s1) . n) - (f /. x0)).| < r by A14;
hence contradiction by A8; :: thesis: verum
end;
assume that
A15: x0 in dom f and
A16: for r being Real st 0 < r holds
ex s being Real st
( 0 < s & ( for x1 being Element of COMPLEX st x1 in dom f & |.(x1 - x0).| < s holds
|.((f /. x1) - (f /. x0)).| < r ) ) ; :: thesis: f is_continuous_in x0
now
let s1 be Complex_Sequence; :: thesis: ( rng s1 c= dom f & s1 is convergent & lim s1 = x0 implies ( f /* s1 is convergent & f /. x0 = lim (f /* s1) ) )
assume that
A17: rng s1 c= dom f and
A18: ( s1 is convergent & lim s1 = x0 ) ; :: thesis: ( f /* s1 is convergent & f /. x0 = lim (f /* s1) )
A19: now
let p be Real; :: thesis: ( 0 < p implies ex k being Element of NAT st
for m being Element of NAT st k <= m holds
|.(((f /* s1) . m) - (f /. x0)).| < p )

assume 0 < p ; :: thesis: ex k being Element of NAT st
for m being Element of NAT st k <= m holds
|.(((f /* s1) . m) - (f /. x0)).| < p

then consider s being Real such that
A20: 0 < s and
A21: for x1 being Element of COMPLEX st x1 in dom f & |.(x1 - x0).| < s holds
|.((f /. x1) - (f /. x0)).| < p by A16;
consider n being Element of NAT such that
A22: for m being Element of NAT st n <= m holds
|.((s1 . m) - x0).| < s by A18, A20, COMSEQ_2:def 5;
take k = n; :: thesis: for m being Element of NAT st k <= m holds
|.(((f /* s1) . m) - (f /. x0)).| < p

let m be Element of NAT ; :: thesis: ( k <= m implies |.(((f /* s1) . m) - (f /. x0)).| < p )
assume k <= m ; :: thesis: |.(((f /* s1) . m) - (f /. x0)).| < p
then ( s1 . m in rng s1 & |.((s1 . m) - x0).| < s ) by A22, VALUED_0:28;
then |.((f /. (s1 . m)) - (f /. x0)).| < p by A17, A21;
hence |.(((f /* s1) . m) - (f /. x0)).| < p by A17, FUNCT_2:109; :: thesis: verum
end;
then f /* s1 is convergent by COMSEQ_2:def 4;
hence ( f /* s1 is convergent & f /. x0 = lim (f /* s1) ) by A19, COMSEQ_2:def 5; :: thesis: verum
end;
hence f is_continuous_in x0 by A15, Def2; :: thesis: verum