let X be BCI-algebra; :: thesis: for i, j, k being Element of NAT st X is BCI-algebra of i,j,j + k,i + k holds
X is BCK-algebra
let i, j, k be Element of NAT ; :: thesis: ( X is BCI-algebra of i,j,j + k,i + k implies X is BCK-algebra )
assume A1: X is BCI-algebra of i,j,j + k,i + k ; :: thesis: X is BCK-algebra
for y being Element of X holds (0. X) \ y = 0. X
proof
let y be Element of X; :: thesis: (0. X) \ y = 0. X
Polynom i,j,(0. X),y = Polynom (j + k),(i + k),y,(0. X) by A1, Def2;
then ((0. X),((0. X) \ y) to_power (i + 1)),y to_power j = (y,(y \ (0. X)) to_power ((j + k) + 1)),((0. X) \ y) to_power (i + k) by BCIALG_1:2;
then ((0. X),((0. X) \ y) to_power (i + 1)),y to_power j = (y,y to_power ((j + k) + 1)),((0. X) \ y) to_power (i + k) by BCIALG_1:2;
then A1: ((0. X),y to_power j),((0. X) \ y) to_power (i + 1) = (y,y to_power ((j + k) + 1)),((0. X) \ y) to_power (i + k) by BCIALG_2:11;
A2: ((0. X),y to_power j),((0. X) \ y) to_power (i + 1) = ((0. X),((0. X) \ y) to_power (i + 1)),y to_power j by BCIALG_2:11
.= (((0. X),(0. X) to_power (i + 1)) \ ((0. X),y to_power (i + 1))),y to_power j by BCIALG_2:18
.= ((0. X) \ ((0. X),y to_power (i + 1))),y to_power j by BCIALG_2:6
.= ((0. X),y to_power j) \ ((0. X),y to_power (i + 1)) by BCIALG_2:7 ;
A3: (y,y to_power ((j + k) + 1)),((0. X) \ y) to_power (i + k) = ((y,y to_power (j + k)) \ y),((0. X) \ y) to_power (i + k) by BCIALG_2:4
.= ((y \ y),y to_power (j + k)),((0. X) \ y) to_power (i + k) by BCIALG_2:7
.= ((0. X),y to_power (j + k)),((0. X) \ y) to_power (i + k) by BCIALG_1:def 5
.= ((0. X),((0. X) \ y) to_power (i + k)),y to_power (j + k) by BCIALG_2:11
.= (((0. X),(0. X) to_power (i + k)) \ ((0. X),y to_power (i + k))),y to_power (j + k) by BCIALG_2:18
.= ((0. X) \ ((0. X),y to_power (i + k))),y to_power (j + k) by BCIALG_2:6
.= ((0. X),y to_power (j + k)) \ ((0. X),y to_power (i + k)) by BCIALG_2:7
.= (((0. X),y to_power j),y to_power k) \ ((0. X),y to_power (i + k)) by BCIALG_2:10
.= (((0. X),y to_power j),y to_power k) \ (((0. X),y to_power i),y to_power k) by BCIALG_2:10 ;
(((0. X),y to_power j),y to_power k) \ (((0. X),y to_power i),y to_power k) <= ((0. X),y to_power j) \ ((0. X),y to_power i) by BCIALG_2:21;
then (((0. X),y to_power j) \ ((0. X),y to_power (i + 1))) \ (((0. X),y to_power j) \ ((0. X),y to_power i)) = 0. X by A1, A2, A3, BCIALG_1:def 11;
then (0. X) \ (((0. X),y to_power i) \ ((0. X),y to_power (i + 1))) = 0. X by BCIALG_1:11;
then A4: 0. X <= ((0. X),y to_power i) \ ((0. X),y to_power (i + 1)) by BCIALG_1:def 11;
((0. X),y to_power i) \ ((0. X),y to_power (i + 1)) = ((0. X),y to_power i) \ (((0. X),y to_power i) \ y) by BCIALG_2:4
.= ((0. X),y to_power i) \ (((0. X) \ y),y to_power i) by BCIALG_2:7 ;
then ((0. X),y to_power i) \ ((0. X),y to_power (i + 1)) <= (0. X) \ ((0. X) \ y) by BCIALG_2:21;
then 0. X <= (0. X) \ ((0. X) \ y) by A4, Th01;
then (0. X) \ ((0. X) \ ((0. X) \ y)) = 0. X by BCIALG_1:def 11;
hence (0. X) \ y = 0. X by BCIALG_1:8; :: thesis: verum
end;
then for x being Element of X holds x ` = 0. X ;
hence X is BCK-algebra by BCIALG_1:def 8; :: thesis: verum