We say that a Lie algebra
is the direct sum of a collection of ideals 
if it’s the direct sum as a vector space. In particular, this implies that ![[I_i,I_j]\subseteq I_i\cap I_j=0](http://s0.wp.com/latex.php?latex=%5BI_i%2CI_j%5D%5Csubseteq+I_i%5Ccap+I_j%3D0&bg=e6e6e6&fg=333333&s=0 "[I_i,I_j]\subseteq I_i\cap I_j=0")
, meaning that the bracket of any two elements from different ideals is zero.Now, if
is semisimple then there is a collection of ideals, each of which is simple as a Lie algebra in its own right, such that is the direct sum of these simple ideals. Further, every such simple ideal of is one in the collection — there’s no way to spread another simple ideal across two or more summands in this decomposition. And the Killing form of a summand is the restriction of the Killing form of to that summand, as we expect for any ideal of a Lie algebra.If
is any ideal then we can define the subspace 
of vectors in that are “orthogonal” to all the vectors in 
with respect to the Killing form 
. The associativity of shows that is also an ideal, just as we saw for the radical. Indeed, the radical of is just 
. Anyhow, Cartan’s criterion again shows that the intersection 
is solvable, but since is semisimple this means 
, and we can write 
.So now we can use an induction on the dimension of
; if has no nonzero proper ideal, it’s already simple. Otherwise we can pick some proper ideal to get , where each summand has a lower dimension than . Any ideal of is an ideal of — the bracket with anything from is zero — so and must be semisimple as well, or else there would be a nonzero solvable ideal of . By induction, each one can be decomposed into simple ideals, so can as well.Now, if
is any simple ideal of , then ![[I,L]](http://s0.wp.com/latex.php?latex=%5BI%2CL%5D&bg=e6e6e6&fg=333333&s=0 "[I,L]")
is an ideal of . It can’t be zero, since if it were would be contained in 
, which is zero. Thus, since is simple, we must have ![[I,L]=I](http://s0.wp.com/latex.php?latex=%5BI%2CL%5D%3DI&bg=e6e6e6&fg=333333&s=0 "[I,L]=I")
. But the direct-sum decomposition tells us that ![[I,L]=[I,L_1]\oplus\dots\oplus[I,L_n]](http://s0.wp.com/latex.php?latex=%5BI%2CL%5D%3D%5BI%2CL_1%5D%5Coplus%5Cdots%5Coplus%5BI%2CL_n%5D&bg=e6e6e6&fg=333333&s=0 "[I,L]=[I,L_1]\oplus\dots\oplus[I,L_n]")
, so all but one of these brackets ![[I,L_i]](http://s0.wp.com/latex.php?latex=%5BI%2CL_i%5D&bg=e6e6e6&fg=333333&s=0 "[I,L_i]")
must be zero, and that bracket must be itself. But this means 
for this simple summand, and — by the simplicity of 
— 
.From this decomposition we conclude that for all semisimple
we have ![[L,L]=L](http://s0.wp.com/latex.php?latex=%5BL%2CL%5D%3DL&bg=e6e6e6&fg=333333&s=0 "[L,L]=L")
. Every ideal and every quotient of must also be semisimple, since each must consist of some collection of the summands of .
DIGITAL JUICE
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