let A, B be set ; chi (A,B) = ((B \ A) --> 0) \/ ((A /\ B) --> 1)
set f = (B \ A) --> 0;
set g = (A /\ B) --> 1;
(B \ A) /\ (A /\ B) = {}
;
then
(B \ A) --> 0 tolerates (A /\ B) --> 1
by FUNCOP_1:87, XBOOLE_0:def 7;
then
((B \ A) --> 0) +* ((A /\ B) --> 1) = ((B \ A) --> 0) \/ ((A /\ B) --> 1)
by FUNCT_4:30;
hence
chi (A,B) = ((B \ A) --> 0) \/ ((A /\ B) --> 1)
by Lm39; verum