106 3. Tensor ProductsThen a perturbation argument (Lemma 3.9.7 plus Arveson's Extension The-
orem) would imply that we can find u.c.p. maps 'I/Jn: Ms(n) (C) -----+ JB(Ji) such
that
ll'l/Jn('Pn(x)) - <p~^1 1cpn(E)('Pn(x))ll = 11'1/Jn('Pn(x)) - xii-----+ 0
for all x E E. If this held for all finite-dimensional operator systems E c A,
then we could evidently conclude that A is exact.
The miraculous fact (Proposition 3.9.6) is that if A is @-exact, then the
completely bounded norms of <p~^1 1'Pn(E) really do tend to 1 for every finite-
dimensional operator system E c A. The bulk of the proof of Theorem
3.9.1 goes into showing this.
Let's first show that @-exactness is a local property. That is, a C*-
algebra A is @-exact if and only if all of its finite-dimensional operator
subsystems are @-exact. By definition, an operator system E is @-exact if
we have an isometric identification
E@ B ~ E @ (BI J)
E@J
for all C* -algebras B and ideals J <JB. Note that there is always a contractive
map
E@B
E @ J _____, E @ (BI J)'
since the kernel of the contraction E @ B -----+ E @ ( B / J) contains E @ J.Lemma 3.9.2. If EC A is an operator system and J <J B is an ideal, then
there is an isometric inclusion
E@B A@B
E@l c A@J"Proof. We must show that if x E E @ B, then its norm down in 1:~ is
equal to
inf{llx + yJI : y EE@ J}.
This, however, is easily seen since the norm in 1:~ is equal tolim llx(l@ (1-ei)) IJ,
where { ei} is an approximate unit for J. D
Proposition 3.9.3. A C* -algebra A is @-exact if and only if all its finite-
dimensional operator subsystems are @-exact.Proof. The "if' direction is not too hard, since the union of the subspaces
1i::~, where E C A is a finite-dimensional operator subsystem, is dense in
AOB
AOJ"