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	arXiv:1001.0004v1 [quant-ph] 31 Dec 2009The Lie Algebraic Signiﬁcance of
	Symmetric Informationally Complete Measurements
	D.M. Appleby, Steven T. Flammia and Christopher A. Fuchs
	Perimeter Institute for Theoretical Physics
	Waterloo, Ontario N2L 2Y5, Canada
	December 30, 2009
	Abstract
	Examplesofsymmetric informationallycomplete positiveoperatorva lued mea-
	sures (SIC-POVMs) have been constructed in every dimension ≤67. However,
	it remains an open question whether they exist in all ﬁnite dimensions. A SIC-
	POVM is usually thought of as a highly symmetric structure in quantum state
	space. However, its elements can equally well be regarded as a basis for the Lie
	algebra gl(d,C). In this paper we examine the resulting structure constants,
	which are calculated from the traces of the triple products of the S IC-POVM
	elements and which, it turns out, characterize the SIC-POVM up to unitary
	equivalence. We show that the structure constants have numero us remarkable
	properties. In particular we show that the existence of a SIC-POV M in di-
	mensiondis equivalent to the existence of a certain structure in the adjoint
	representation of gl( d,C). We hope that transforming the problem in this way,
	from a question about quantum state space to a question about Lie algebras,
	may help to make the existence problem tractable.
	Contents
	1. Introduction 1
	2. The Angle Tensors 7
	3. Spectral Decompositions 14
	4. TheQ-QTProperty 18
	5. Lie Algebraic Formulation of the Existence Problem 21
	6. The Algebra sl( d,C) 31
	7. Further Identities 33
	8. Geometrical Considerations 36
	9. TheP-PTProperty 49
	10. Conclusion 52
	11. Acknowledgements 53
	References 531
	1.Introduction
	Symmetric informationally complete positive operator-valued measu res (SIC-
	POVMs) present us with what is, simultaneously, one of the most inte resting, and
	one of the most diﬃcult and tantalizing problems in quantum informatio n [1–46].
	SIC-POVMs are important practically, with applications to quantum t omography
	and cryptography [ 4,8,12,15,20,29], and to classical signal processing [ 24,36].
	However, without in any way wishing to impugn the signiﬁcance of the a pplications
	which have so far been proposed, it appears to us that the interes t of SIC-POVMs
	stems less from these particular proposed uses than from rather broader, more gen-
	eral considerations: the sense one gets that SICs are telling us so mething deep,
	and hitherto unsuspected about the structure of quantum stat e space. In spite of
	its being the central object about which the rest of quantum mech anics rotates,
	and notwithstanding the eﬀorts of numerous investigators [ 47], the geometry of
	quantum state space continues to be surprisingly ill-understood. T he hope which
	inspires our eﬀorts is that a solution to the SIC problem will prove to b e the key,
	not just to SIC-POVMs narrowly conceived, but to the geometry o f state space in
	general. Such things are, by nature, unpredictable. However, it is not unreasonable
	to speculate that a better theoretical understanding of the geo metry of quantum
	state space might have important practical consequences: not o nly the applica-
	tions listed above, but perhaps other applications which have yet to be conceived.
	On a more foundational level one may hope that it will lead to a much imp roved
	understanding of the conceptual message of quantum mechanics [7,43,45,48].
	Having said why we describe the problem as interesting, let us now exp lain why
	we describe it as tantalizing. The trouble is that, although there is an abundance of
	reasons for suspecting that SIC-POVMs exist in every ﬁnite dimens ion (exact and
	high-precision numerical examples [ 1,2,5,11,16,19,28,39,46] having now been
	constructed in every dimension up to 67), and in spite of the intense eﬀorts of many
	people [1–46] extending over a period of more than ten years, a general existe nce
	proof continues to elude us. In their seminal paper on the subject , published in
	2004, Renes et al[5] say “A rigorous proof of existence of SIC-POVMs in all ﬁnite
	dimensions seems tantalizingly close, yet remains somehow distant.” T hey could
	have said the same if they were writing today.
	The purposeofthis paperis totryto takeourunderstandingofSI C mathematics
	(as it might be called) a little further forward. The research we repo rt began with
	a chance numerical discovery made while we were working on a diﬀeren t problem.
	Pursuing that initial numerical hint we uncovered a rich and interest ing set of
	connections between SIC-POVMs in dimension dand the Lie Algebra gl( d,C). The
	existence of these connections came as a surprise to us. However , in retrospect it
	is, perhaps, not so surprising. Interest in SIC-POVMs has, to dat e, focused on the
	fact that an arbitrary density matrix can be expanded in terms of a SIC-POVM.
	However, a SIC-POVM in dimension ddoes in fact provide a basis, not just for the
	space of density matrices, but for the space of all d×dcomplex matrices— i.e.the
	Liealgebragl( d,C). Boykin et al[49] haverecentlyshownthatthere isaconnection
	betweentheexistenceproblemformaximalsetsofMUBs(mutuallyu nbiasedbases)
	and the theory of Lie algebras. Since SIC-POVMs share with MUBs th e property
	of being highly symmetrical structures in quantum state space it mig ht have been
	anticipated that there are also some interesting connections betw een SIC-POVMs
	and Lie algebras.2
	Our main result (proved in Sections 3,4and5) is that the proposition, that a
	SIC-POVM exists in dimension d, is equivalent to a proposition about the adjoint
	representation of gl( d,C). Our hope is that transforming the problem in this way,
	from a question about quantum state space to a question about Lie algebras, may
	help to make the SIC-existence problem tractable. But even if this h ope fails to
	materialize we feel that this result, along with the many other result s we obtain,
	provides some additional insight into these structures.
	Inddimensional Hilbert space Hda SIC-POVM is a set of d2operatorsE1,
	...,Ed2of the form
	Er=1
	dΠr (1)
	where the Π rare rank-1 projectors with the property
	Tr(ΠrΠs) =/braceleftigg
	1r=s
	1
	d+1r/ne}ationslash=s(2)
	We will refer to the Π ras SIC projectors, and we will say that {Πr:r= 1,...,d2}
	is a SIC set.
	It follows from this deﬁnition that the Ersatisfy
	d2/summationdisplay
	r=1Er=I (3)
	(sotheyconstitute aPOVM),andthattheyarelinearlyindependen t (sothePOVM
	is informationally complete).
	It is an open question whether SIC-POVMs exist for all values of d. However,
	examples have been constructed analytically in dimensions 2–15 inclus ive [1,2,11,
	16,19,28,39,46], and in dimensions 19, 24, 35 and 48 [ 16,46]. Moreover, high
	precisionnumerical solutionshave been constructed in dimensions 2 –67inclusive [ 5,
	46]. Thislendssomeplausibilitytothe speculationthat theyexistinalldime nsions.
	For a comprehensive account of the current state of knowledge in this regard, and
	many new results, see the recent study by Scott and Grassl [ 46].
	All known SIC-POVMs have a group covariance property. In other words, there
	exists
	(1) a group Ghavingd2elements
	(2) a projective unitary representation of GonHd:i.e.a mapg→UgfromG
	to the set of unitaries such that Ug1Ug2∼Ug1g2for allg1,g2(where the
	notation “ ∼” means “equals up to a phase”)
	(3) a normalized vector \|ψ/an}bracketri}ht(the ﬁducial vector)
	such that the SIC-projectors are given by
	Πg=Ug\|ψ/an}bracketri}ht/an}bracketle{tψ\|U†
	g (4)
	(where we label the projector by the group element g, rather than the integer ras
	above).
	Most known SIC-POVMs are covariant under the action of the Weyl- Heisenberg
	group (though not all—see Renes et al[5] and, for an explicit example of a non
	Weyl-Heisenberg SIC-POVM, Grassl [ 19]). Here the group is Zd×Zd, and the
	projective representation is p→Dp, wherep= (p1,p2)∈Zd×ZdandDpis the3
	corresponding Weyl-Heisenberg displacement operator
	Dp=d−1/summationdisplay
	rτ(2r+p1)p2\|r+p1/an}bracketri}ht/an}bracketle{tr\| (5)
	In this expression τ=eiπ(d+1)
	d, the vectors \|0/an}bracketri}ht,...\|d−1/an}bracketri}htare an orthonormal basis,
	and the addition in \|r+p1/an}bracketri}htis modulod. For more details see, for example, ref. [ 16].
	One should not attach too much weight to the fact that all known SI C-POVMs
	have a group covariance property as this may only reﬂect the fact that group co-
	variant SIC-POVMs are much easier to construct. So in this paper w e will try to
	prove as much as we can without assuming such a property. One pot ential beneﬁt
	ofthis attitude is that, by accumulatingenough facts about SIC-P OVMsin general,
	we may eventually get to the point where we can answer the question , whether all
	SIC-POVMs actually do have a group covariance property.
	The fact that the d2operatorsΠ rare linearly independent means that they form
	a basis for the complex Lie algebra gl( d,C) (the set of all operators acting on Hd).
	Since the Π rare Hermitian, then iΠrforms a basis also for the real Lie algebra
	u(d) (the set of all anti-Hermitian operators acting on Hd). So for any operator
	A∈gl(d,C) there is a unique set of expansion coeﬃcients arsuch that
	A=d2/summationdisplay
	r=1arΠr (6)
	To ﬁnd the expansion coeﬃcients we can use the fact that
	d2/summationdisplay
	s=1Tr(ΠrΠs)/parenleftbiggd+1
	dδst−1
	d2/parenrightbigg
	=δrt (7)
	from which it follows
	ar=d+1
	dTr(ΠrA)−1
	dTr(A) (8)
	Specializing to the case A= ΠrΠswe ﬁnd
	ΠrΠs=d+1
	d
	d2/summationdisplay
	t=1TrstΠt
	−dδrs+1
	d+1I (9)
	where
	Trst= Tr(Π rΠsΠt) (10)
	To a large extent this paper consists in an exploration of the proper ties of these
	important quantities, which we will refer to as the triple products. T hey are inti-
	mately related to the geometric phase, in which context they are us ually referred
	to as 3-vertex Bargmann invariants (see Mukunda et al[50], and references cited
	therein). We have, as an immediate consequence of the deﬁnition,
	Trst=Ttrs=Tstr=T∗
	rts=T∗
	tsr=T∗
	srt (11)
	It is convenient to deﬁne
	Jrst=d+1
	d(Trst−T∗
	rst) (12)
	Rrst=d+1
	d(Trst+T∗
	rst) (13)4
	SoJrstis imaginary and completely anti-symmetric; Rrstis real and completely
	symmetric. Both these quantities play a signiﬁcant role in the theory . It follows
	from Eq. ( 9) that
	[Πr,Πs] =d2/summationdisplay
	t=1JrstΠt (14)
	So theJrstare structure constants for the Lie algebra gl( d,C). As an immediate
	consequence of this they satisfy the Jacobi identity:
	d2/summationdisplay
	b=1/parenleftbig
	JrsbJtba+JstbJrba+JtrbJsba/parenrightbig
	= 0 (15)
	for allr,s,t,a. The Jacobi identity holds for any representation of the structu re
	constants. In the following sections we will derive many other identit ies which are
	speciﬁc to this particular representation.
	Turning to the quantities Rrst, it follows from Eq. ( 9) that they feature in the
	expression for the anti-commutator
	{Πr,Πs}=/summationdisplay
	tRrstΠt−2(dδrs+1)
	d+1I (16)
	They also play an important role in the description of quantum state s pace. Let
	ρbe any density matrix and let pr=1
	dTr(Πrρ) be the probability of obtaining
	outcomerin the measurement described by the POVM with elements1
	dΠr. Then
	it follows from Eq. ( 8) thatρcan be reconstructed from the probabilities by
	ρ=d2/summationdisplay
	r=1/parenleftbigg
	(d+1)pr−1
	d/parenrightbigg
	Πr (17)
	Suppose, now, that the prareanyset ofd2real numbers. So we do not assume
	that theprare even probabilities, let alone the probabilities coming from a density
	matrix according to the prescription pr=1
	dTr(Πrρ). Then it is shown in ref. [ 34]
	that theprare in fact the probabilities coming from a pure state if and only if they
	satisfy the two conditions
	d2/summationdisplay
	r=1p2
	r=2
	d(d+1)(18)
	d2/summationdisplay
	r,s,t=1Rrstprpspt=2(d+7)
	d(d+1)2(19)
	Let us look at the quantities JrstandRrstin a little more detail. For each r
	choose a unit vector \|ψr/an}bracketri}htsuch that Π r=\|ψr/an}bracketri}ht/an}bracketle{tψr\|. Then the Gram matrix for these
	vectors is of the form
	Grs=/an}bracketle{tψr\|ψs/an}bracketri}ht=Krseiθrs(20)
	where the matrix θrsis anti-symmetric and
	Krs=/radicalbigg
	dδrs+1
	d+1(21)
	Note that the SIC-POVM does not determine the angles θrsuniquely since making
	the replacements \|ψr/an}bracketri}ht →eiφr\|ψr/an}bracketri}htleaves the SIC-POVM unaltered, but changes5
	the angles θrsaccording to the prescription θrs→θrs−φr+φs. This freedom
	to rephase the vectors \|ψr/an}bracketri}htis not usually important. However, it sometimes has
	interesting consequences (see Section 9). It can be thought of as a kind of gauge
	freedom.
	The Gram matrix satisﬁes an important identity. Every SIC-POVM ha s the
	2-design property [ 5,17]
	d2/summationdisplay
	r=1Πr⊗Πr=2d
	d+1Psym (22)
	wherePsymis the projector onto the symmetric subspace of Hd⊗Hd. Expressed
	in terms of the Gram matrix this becomes
	d2/summationdisplay
	r=1Gs1rGs2rGrt1Grt2=d
	d+1/parenleftbig
	Gs1t1Gs2t2+Gs1t2Gs2t1/parenrightbig
	(23)
	Turning to the triple products we have
	Trst=GrsGstGtr=KrsKstKtreiθrst(24)
	where
	θrst=θrs+θst+θtr (25)
	Note that the tensor θrstis completely anti-symmetric. In particular θrst= 0 if any
	two of the indices are the same. Note also that re-phasing the vect ors\|ψr/an}bracketri}htleaves
	the tensors Trstandθrstunchanged. They are in that sense gauge invariant.
	Finally, we have the following expressions for JrstandRrst:
	Jrst=2i
	d√
	d+1sinθrst (26)
	Rrst=2(d+1)
	dKrsKstKtrcosθrst (27)
	Like the triple products, JrstandRrstare gauge invariant.
	For later reference let us note that the matrix Jr, with matrix elements
	(Jr)st=Jrst (28)
	is the adjoint representative of Π rin the SIC-projector basis:
	adΠrΠs= [Πr,Πs] =d2/summationdisplay
	t=1JrstΠt (29)
	It can be seen that all the interesting features of the tensor Grs(respectively,
	the tensors Trst,JrstandRrst) are contained in the order-2 angle tensor θrs(re-
	spectively, the order-3 angle tensor θrst). It is also easy to see that, for any unitary
	U, the transformation
	Πr→UΠrU†(30)
	leaves the angle tensors invariant. This suggests that we shift our focus from indi-
	vidual SIC-POVMs to families of unitarily equivalent SIC-POVMs—SIC- families,
	as we will call them for short.
	We begin our investigation in Section 2by giving necessary and suﬃcient con-
	ditions for an arbitrary tensor θrs(respectively θrst) to be the rank-2 (respectively
	rank-3) angle tensor corresponding to a SIC-family. We also show t hat either angle
	tensor uniquely determines the corresponding SIC-family. Finally we describe a6
	method for reconstructing the SIC-family, starting from a knowle dge of either of
	the two angle tensors.
	In Sections 3,4and5we prove the central result of this paper: namely, that
	the existence of a SIC-POVM in dimension dis equivalent to the existence of a
	certain very special set of matrices in the adjoint representation of gl(d,C). In
	Section3we show that, for any SIC-POVM, the adjoint matrices Jrhave the
	spectral decomposition
	Jr=Qr−QT
	r (31)
	whereQris a rankd−1 projector which has the remarkable property of being
	orthogonal to its own transpose:
	QrQT
	r= 0 (32)
	We refer to this feature of the adjoint matrices as the Q-QTproperty. In Section 3
	we also show that from a knowledge of the Jmatrices it is possible to reconstruct
	the corresponding SIC-family. In Section 4we characterize the general class of
	projectors which have the property of being orthogonal to their own transpose.
	Then, in Section 5, we prove a converse of the result established in Section 3. The
	Q-QTproperty is not completely equivalent to the property of being a SIC set.
	However, it turns out that it is, in a certain sense, very nearly equiv alent. To be
	more speciﬁc: let Lrbe any set of d2Hermitian operators which constitute a basis
	for gl(d,C) and letCrbe the adjoint representative of Lrin this basis. Then the
	necessary and suﬃcient condition for the Crto have the spectral decomposition
	Cr=Qr−QT
	r (33)
	whereQris a rankd−1 projector such that QrQT
	r= 0 is that there exists a
	SIC set Π rsuch thatLr=ǫr(Πr+αI) for some ﬁxed number α∈Rand signs
	ǫr=±1. In particular, the existence of an Hermitian basis for gl( d,C) having the
	Q-QTproperty is both necesary and suﬃcient for the existence of a SIC -POVM in
	dimensiond.
	In Section 6we digress brieﬂy, and consider sl( d,C) (the Lie algebra consisting
	of all trace-zero d×dcomplex matrices). As we have explained, this paper is
	motivated by the hope that a Lie algebraic perspective will cast light o n the SIC-
	existence problem, rather than by an interest in Lie algebras as suc h. We focus on
	gl(d,C) because that is the casewherethe connection with SIC-POVMsse ems most
	straightforward. However a SIC-POVM also gives rise to an interes ting geometrical
	structure in sl( d,C), as we show in Section 6.
	In Section 7we derive a number of additional identities satisﬁed by the Jand
	Qmatrices.
	The complex projectors Qr,QT
	rand the real projector Qr+QT
	rdeﬁne three
	families of subspaces. It turns out that there are some interestin g geometrical
	relationships between these subspaces, which we study in Section 8.
	Finally, in Section 9we show that, with the appropriate choice of gauge, the
	Gram matrix corresponding to a Weyl-Heisenberg covariant SIC-fa mily has a fea-
	ture analogous to the Q-QTproperty, which we call the P-PTproperty. It is an
	open question whether this result generalizes to other SIC-families , not covariant
	with respect to the Weyl-Heisenberg group.7
	2.The Angle Tensors
	The purpose of this section is to establish the necessary and suﬃcie nt conditions
	for an arbitrary tensor θrs(respectively θrst) to be the order-2 (respectively order-
	3) angle tensor for a SIC-family. We will also show that either one of t he angle
	tensors is enough to uniquely determine the SIC-family. Moreover, we will describe
	explicit procedures for reconstructing the family, starting from a knowledge of one
	of the angle tensors.
	We begin by considering the general class of POVMs (not just SIC-P OVMs)
	which consist of d2rank-1 elements. A POVM of this type is thus deﬁned by a set
	ofd2vectors\|ξ1/an}bracketri}ht,...,\|ξd2/an}bracketri}htwith the property
	d2/summationdisplay
	r=1\|ξr/an}bracketri}ht/an}bracketle{tξr\|=I (34)
	Note that/summationtextd2
	r=1/vextenddouble/vextenddouble\|ξr/an}bracketri}ht/vextenddouble/vextenddouble2=d, so the vectors \|ξr/an}bracketri}htcannot all be normalized. In the
	particular case of a SIC-POVM the vectors all have the same norm/vextenddouble/vextenddouble\|ξr/an}bracketri}ht/vextenddouble/vextenddouble=1√
	d.
	However in the general case they may have diﬀerent norms.
	Given a set of such vectors consider the Gram matrix
	Prs=/an}bracketle{tξr\|ξs/an}bracketri}ht (35)
	Clearly the Gram matrix cannot determine the POVM uniquely since if Uis any
	unitary operator then the vectors U\|ξr/an}bracketri}htwill deﬁne another POVM having the same
	Gram matrix. However, the theorem we now prove shows that this is the only free-
	dom. In other words, the Gram matrix ﬁxes the POVM up to unitary e quivalence.
	The theorem also provides us with a criterion for deciding whether an arbitrary
	d2×d2matrixPis the Gram matrix corresponding to a POVM of the speciﬁed
	type. As a corollary this will give us a criterion for deciding whether an arbitrary
	tensorθrsis speciﬁcally the order-2 angle tensor for a SIC-family.
	Theorem 1. LetPbe anyd2×d2Hermitian matrix. Then the following conditions
	are equivalent:
	(1)Pis a rankdprojector.
	(2)Psatisﬁes the trace identities
	Tr(P) = Tr(P2) = Tr(P3) = Tr(P4) =d (36)
	(3)Pis the Gram matrix for a set of d2vectors\|ξr/an}bracketri}ht(not all normalized) such
	that\|ξr/an}bracketri}ht/an}bracketle{tξr\|is a POVM:
	/an}bracketle{tξr\|ξs/an}bracketri}ht=Prs (37)
	d2/summationdisplay
	r=1\|ξr/an}bracketri}ht/an}bracketle{tξr\|=I (38)
	SupposePsatisﬁes these conditions. To construct a POVM correspondi ng toP
	let thedcolumn vectors
	ξ11
	ξ12
	...
	ξ1d2
	,
	ξ21
	ξ22
	...
	ξ2d2
	,...,
	ξd1
	ξd2
	...
	ξdd2
	(39)8
	be any orthonormal basis for the subspace onto which Pprojects. Deﬁne
	\|ξr/an}bracketri}ht=d/summationdisplay
	a=1ξ∗
	ar\|a/an}bracketri}ht (40)
	where the vectors \|a/an}bracketri}htare any orthonormal basis for Hd. ThenPis the Gram matrix
	for the vectors \|ξ1/an}bracketri}ht,...,\|ξd2/an}bracketri}ht. Moreover, the necessary and suﬃcient condition for
	any other set of vectors \|η1/an}bracketri}ht,...,\|ηd2/an}bracketri}htto have Gram matrix Pis that there exist a
	unitary operator Usuch that
	\|ηr/an}bracketri}ht=U\|ξr/an}bracketri}ht (41)
	for allr.
	Proof.We begin by showing that (3) = ⇒(1). Suppose \|ξ1/an}bracketri}ht,...\|ξd2/an}bracketri}htis any set of
	d2vectors such that \|ξr/an}bracketri}ht/an}bracketle{tξr\|is a POVM. So
	d2/summationdisplay
	r=1\|ξr/an}bracketri}ht/an}bracketle{tξr\|=I (42)
	Let
	Prs=/an}bracketle{tξr\|ξs/an}bracketri}ht (43)
	be the Gram matrix. Then Pis Hermitian. Moreover, P2=Psince
	d2/summationdisplay
	t=1PrtPts=/an}bracketle{tξr\|
	d2/summationdisplay
	t=1\|ξt/an}bracketri}ht/an}bracketle{tξs\|
	\|ξr/an}bracketri}ht
	=/an}bracketle{tξr\|ξs/an}bracketri}ht
	=Prs (44)
	Also
	Tr(P) =d2/summationdisplay
	r=1/an}bracketle{tξr\|ξr/an}bracketri}ht=d (45)
	(as can be seen by taking the trace on both sides of Eq. ( 42)). SoPis a rank-d
	projector.
	We next show that (1) = ⇒(3). LetPbe a rank-dprojector, and let the d
	column vectors
	ξ11
	ξ12
	...
	ξ1d2
	,
	ξ21
	ξ22
	...
	ξ2d2
	,...,
	ξd1
	ξd2
	...
	ξdd2
	(46)
	be an orthonormal basis for the subspace onto which it projects. So
	d2/summationdisplay
	r=1ξ∗
	arξbr=δab (47)
	for alla,b, and
	d2/summationdisplay
	a=1ξarξ∗
	as=Prs (48)9
	for allr,s. Now let \|ξ1/an}bracketri}ht,...\|ξd2/an}bracketri}htbe the vectors deﬁned by Eq. ( 40). Then it follows
	from Eq. ( 47) that
	d2/summationdisplay
	r=1\|ξr/an}bracketri}ht/an}bracketle{tξr\|=d/summationdisplay
	a,b=1
	d2/summationdisplay
	r=1ξ∗
	arξbr
	\|a/an}bracketri}ht/an}bracketle{tb\|
	=d/summationdisplay
	a=1\|a/an}bracketri}ht/an}bracketle{ta\|
	=I (49)
	implying that \|ξr/an}bracketri}ht/an}bracketle{tξr\|is POVM. Also, it follows from Eq. ( 48) that
	/an}bracketle{tξr\|ξs/an}bracketri}ht=d/summationdisplay
	a=1ξarξ∗
	as=Prs (50)
	implying that the \|ξr/an}bracketri}hthave Gram matrix P.
	We next turn to condition (2). The fact that (1) = ⇒(2) is immediate. To
	prove the reverse implication observe that condition (2) implies
	Tr(P4)−2Tr(P3)+Tr(P2) = 0 (51)
	Letλ1,...,λ d2be the eigenvalues of P. Then Eq. ( 51) implies
	d2/summationdisplay
	r=1λ2
	r(λr−1)2= 0 (52)
	It follows that each eigenvalue is either 0 or 1. Since Tr( P) =dwe must have d
	eigenvalues = 1 and the rest all = 0. So Pis a rank-dprojector.
	It remains to show that the POVM corresponding to a given rank- dprojector
	is unique up to unitary equivalence. To prove this let Pbe a rank-dprojector, let
	\|ξr/an}bracketri}htbe the vectors deﬁned by Eq. ( 40), and let \|η1/an}bracketri}ht,...,\|ηd2/an}bracketri}htbe any other set of
	vectors such that
	/an}bracketle{tηr\|ηs/an}bracketri}ht=Prs (53)
	for allr,s. Deﬁne
	ηar=/an}bracketle{tηr\|a/an}bracketri}ht (54)
	Then
	d2/summationdisplay
	r=1η∗
	arηbr=/an}bracketle{ta\|
	d2/summationdisplay
	r=1\|ηr/an}bracketri}ht/an}bracketle{tηr\|
	\|b/an}bracketri}ht=δab (55)
	(because \|ηr/an}bracketri}ht/an}bracketle{tηr\|is a POVM) and
	d/summationdisplay
	a=1ηarη∗
	as=Prs (56)
	(because the \|ηr/an}bracketri}hthave Gram matrix P). So thedcolumn vectors
	
	η11
	η12
	...
	η1d2
	,
	η21
	η22
	...
	η2d2
	,...,
	ηd1
	ηd2
	...
	ηdd2
	(57)10
	are an orthonormal basis for the subspace onto which Pprojects. But the column
	vectors 
	ξ11
	ξ12
	...
	ξ1d2
	,
	ξ21
	ξ22
	...
	ξ2d2
	,...,
	ξd1
	ξd2
	...
	ξdd2
	(58)
	are also an orthonormal basis for this subspace. So there must ex ist ad×dunitary
	matrixUabsuch that
	ηar=d/summationdisplay
	b=1Uabξbr (59)
	for alla,r. Deﬁne
	U=d/summationdisplay
	a,b=1U∗
	ab\|a/an}bracketri}ht/an}bracketle{tb\| (60)
	Then
	\|ηr/an}bracketri}ht=U\|ξr/an}bracketri}ht (61)
	for allr. /square
	In the case of a SIC-POVM we have
	\|ξr/an}bracketri}ht=1√
	d\|ψr/an}bracketri}ht (62)
	where the vectors \|ψr/an}bracketri}htare normalized, and
	Prs=1
	dGrs=1
	dKrseiθrs(63)
	whereGis the Gram matrix of the vectors \|ψr/an}bracketri}htandθrsis the order-2 angle tensor.
	In the sequel we will distinguish these matrices by referring to Gas the Gram
	matrix and Pas the Gram projector.
	We have
	Corollary 2. Letθrsbe a real anti-symmetric tensor. Then the following state-
	ments are equivalent:
	(1)θrsis an order- 2angle tensor corresponding to a SIC-family.
	(2)θrssatisﬁes
	d2/summationdisplay
	t=1KrtKtsei(θrt+θts)=dKrseiθrs(64)
	for allr,s.
	(3)θrssatisﬁes
	d2/summationdisplay
	r,s,t=1KrsKstKtrei(θrs+θst+θtr)=d4(65)
	and
	d2/summationdisplay
	r,s,t,u=1KrsKstKtuKurei(θrs+θst+θtu+θur)=d5(66)11
	LetΠr,Π′
	rbe two diﬀerent SIC-sets, and let θrs,θ′
	rsbe corresponding order- 2
	angle tensors. Then there exists a unitary Usuch that
	Π′
	r=UΠrU†(67)
	for allrif and only if
	θ′
	rs=θrs−φr+φs (68)
	for some arbitrary set of phase angles φr(in other words two SIC-sets are unitarily
	equivalent if and only if their order- 2angle tensors are gauge equivalent).
	A SIC-family can be reconstructed from its order- 2angle tensor θrsby calculating
	an orthonormal basis for the subspace onto which the Gram pro jector
	Prs=1
	dKrseiθrs(69)
	projects, as described in Theorem 1.
	Remark. The sense in which we areusing the term “gaugeequivalence”is explain ed
	in the passage immediately following Eq. ( 21).
	Note that condition (2) imposes d2(d2−1)/2 independent constraints (taking
	account of the anti-symmetry of θrs). Condition (3), by contrast, only imposes 2
	independent constraints. It is to be observed, however, that th e price we pay for
	the reduction in the number of equations is that Eqs. ( 65) and (65) are respectively
	cubic and quartic in the phases, whereas Eq. ( 64) is only quadratic.
	Proof.Letθrsbe an arbitrary anti-symmetric tensor, and deﬁne
	Prs=1
	dKrseiθrs(70)
	The anti-symmetry of θrsmeans that Pis automatically Hermitian. So it follows
	from Theorem 1that a necessary and suﬃcient condition for Prsto be a rank- d
	projector, and for θrsto be the order-2 angle tensor of a SIC-family, is that
	d2/summationdisplay
	t=1KrtKtsei(θrt+θts)=dKrseiθrs(71)
	for allr,s.
	To prove the equivalence of conditions (1) and (3) note that the co nditions
	Tr(P) = Tr(P2) =dare an automatic consequence of Phaving the speciﬁed form.
	So it follows from Theorem 1thatθrsis the order-2 angle tensor of a SIC-family if
	and only if Eqs. ( 65) and (66) are satisﬁed.
	Now let Πr, Π′
	rbe two SIC-sets and let θrs,θ′
	rsbe order-2 angle tensors corre-
	sponding to them. Then there exist normalized vectors \|ψr/an}bracketri}ht,\|ψ′
	r/an}bracketri}htsuch that
	Πr=\|ψr/an}bracketri}ht/an}bracketle{tψr\| Π′
	r=\|ψ′
	r/an}bracketri}ht/an}bracketle{tψ′
	r\| (72)
	for allr, and
	/an}bracketle{tψr\|ψs/an}bracketri}ht=Krseiθrs/an}bracketle{tψ′
	r\|ψ′
	s/an}bracketri}ht=Krseiθ′
	rs (73)
	for allr,s.
	Suppose, ﬁrst of all, that there exists a unitary Usuch that
	Π′
	r=UΠrU†(74)12
	Then there exist phase angles φrsuch that
	\|ψ′
	r/an}bracketri}ht=eiφrU\|ψr/an}bracketri}ht (75)
	for allr, which is easily seen to imply that
	θ′
	rs=θrs−φr+φs (76)
	for allr,s. Soθrs,θ′
	rsare gauge equivalent.
	Conversely, suppose there exist phase angles φrsuch that
	θ′
	rs=θrs−φr+φs (77)
	Deﬁne
	\|ψ′′
	r/an}bracketri}ht=e−iφr\|ψ′
	r/an}bracketri}ht (78)
	Then
	/an}bracketle{tψ′′
	r\|ψ′′
	s/an}bracketri}ht=Krseiθrs=/an}bracketle{tψr\|ψs/an}bracketri}ht (79)
	for allr,s. So it follows from Theorem 1that there exists a unitary Usuch that
	\|ψ′′
	r/an}bracketri}ht=U\|ψr/an}bracketri}ht (80)
	for allr. Consequently
	Π′
	r=\|ψ′′
	r/an}bracketri}ht/an}bracketle{tψ′′
	r\|=UΠrU†(81)
	for allr. So Πrand Π′
	rare unitarily equivalent. /square
	We now turn to the order-3 angle tensors. We have
	Theorem 3. Letθrstbe a real completely anti-symmetric tensor. Then the follow -
	ing conditions are equivalent:
	(1)θrstis the order- 3angle tensor for a SIC-family
	(2)For some ﬁxed aand allr,s,t
	θars+θast+θatr=θrst (82)
	and for all r,s
	d2/summationdisplay
	t=1KrtKtseiθrst=dKrs (83)
	(3)For some ﬁxed aand allr,s,t
	θars+θast+θatr=θrst (84)
	and
	d2/summationdisplay
	r,s,t=1KrsKstKtreiθrst=d4(85)
	d2/summationdisplay
	r,s,t,u=1KrsKstKtuKurei(θrst+θtur)=d5(86)13
	LetΠr,Π′
	rbe two diﬀerent SIC-sets and let θrst,θ′
	rstbe the corresponding order-
	3angle tensors. Then the necessary and suﬃcient condition fo r there to exist a
	unitaryUsuch that
	Π′
	r=UΠrU†(87)
	for allris thatθ′
	rst=θrstfor allr,s,t(in other words two SIC-sets are unitarily
	equivalent if and only if their order- 3angle tensors are identical).
	Letθrstbe the order- 3angle tensor corresponding to a SIC-family. Then the
	order-2angle tensor is given by (up to gauge freedom)
	θrs=θars (88)
	for any ﬁxed a, from which the SIC-family can be reconstructed using the me thod
	described in Theorem 1.
	Remark. Unlike the order-2tensor, the order-3angletensoris gaugeinvar iant. This
	means that it provides what is, in many ways, a more useful charact erization of
	the SIC-family. For that reason we will be almost exclusively concern ed with the
	order-3 tensor in the remainder of this paper.
	Proof.The fact that (1) = ⇒(2) is an immediate consequence of the deﬁnition of
	theorder-3angletensorandcondition(2)ofCorollary 2. Toprovethat(2) = ⇒(1)
	letθrstbe a completely anti-symmetric tensor such that condition (2) holds . Deﬁne
	θrs=θars (89)
	for allr,s. Then Eq. ( 83) implies
	d2/summationdisplay
	t=1KrtKtsei(θrt+θts)=eiθrs
	d2/summationdisplay
	t=1KrtKtseiθrst
	∗
	=dKrseiθrs(90)
	for allr,s. It follows from Corollary 2thatθrsis the order-2 and θrstthe order-3
	angle tensor of a SIC-family.
	The equivalence of conditions (1) and (3) is proved similarly.
	It remains to show that two SIC-sets are unitarily equivalent if and o nly if
	their order-3 angle tensors are identical. To see this let Πr=\|ψr/an}bracketri}ht/an}bracketle{tψr\|and Π′
	r=
	\|ψ′
	r/an}bracketri}ht/an}bracketle{tψ′
	r\|be two diﬀerent SIC-sets having the same order-3 angle tensor θrst. Let
	θrs(respectively θ′
	rs) be the order-2 angle tensor corresponding to the vectors \|ψr/an}bracketri}ht
	(respectively \|ψ′
	r/an}bracketri}ht). Choose some ﬁxed index a. We have
	θ′
	ar+θ′
	sa+θ′
	rs=θar+θsa+θrs (91)
	for allr,s. Consequently
	θ′
	rs=θrs+φr−φs (92)
	for allr,s, where
	φr=θar−θ′
	ar (93)
	Soθ′
	rsandθrsare gauge equivalent. It follows from Corollary 2that Πrand Π′
	rare
	unitarily equivalent. Conversely, suppose that Πrand Π′
	rare unitarily equivalent,
	and letθrs,θ′
	rsbe order-2 angle tensors corresponding to them. It follows from
	Corollary 2thatθrsandθ′
	rsare gauge equivalent. It is then immediate that the
	order-3 angle tensors are identical. /square14
	Finally, let us note that when expressed in terms of the triple produc ts Eq. (83)
	reads
	d2/summationdisplay
	t=1Trst=dK2
	rs (94)
	while Eq. ( 85) reads
	d2/summationdisplay
	r,s,t=1Trst=d4(95)
	For Eq. ( 86) we have to work a little harder. We have
	d2/summationdisplay
	r,s,t,u=11
	K2
	rtTrstTtur=d5(96)
	from which it follows
	d5=d2/summationdisplay
	r,s,t,u=1/parenleftbig
	−dδrt+d+1/parenrightbig
	TrstTtur
	= (d+1)d2/summationdisplay
	r,s,t,u=1TrstTtur−dd2/summationdisplay
	r,s,u=1K2
	rsK2
	ru
	= (d+1)d2/summationdisplay
	r,s,t,u=1TrstTtur−d5(97)
	Consequently
	d2/summationdisplay
	s,u=1Tr/parenleftbig
	TsTu/parenrightbig
	=d2/summationdisplay
	r,s,t,u=1TrstTtur=2d5
	d+1(98)
	This equation be alternatively written
	d2/summationdisplay
	r,s=1Tr/parenleftbig
	TrTs/parenrightbig
	=2d5
	d+1(99)
	whereTris the matrix with matrix elements ( Tr)uv=Truv.
	When they are written like this, in terms of the triple products, the f act that
	Eq. (94) implies Eqs. ( 95) and (98) becomes almost obvious. The reverse implica-
	tion, by contrast, is rather less obvious.
	3.Spectral Decompositions
	LetTr,Jr,Rrbe thed2×d2matrices whose matrix elements are
	(Tr)st=Trst (Jr)st=Jrst (Rr)st=Rrst(100)
	whereJrst,RrstarethequantitiesdeﬁnedbyEqs.( 12)and(13). SoJristheadjoint
	representation matrix of Π r. In this section we derive the spectral decompositions
	of these matrices. To avoid confusion we will use the notation \|ψ/an}bracketri}htto denote a ket in
	ddimensional Hilbert space Hd, and/bardblψ/an}bracketri}ht/an}bracketri}htto denote a ket in d2dimensional Hilbert15
	spaceHd2. In terms of this notation the spectral decompositions will turn ou t to
	be:
	Tr=d
	d+1Qr+2d
	d+1/bardbler/an}bracketri}ht/an}bracketri}ht/an}bracketle{t/an}bracketle{ter/bardbl (101)
	Jr=Qr−QT
	r (102)
	Rr=Qr+QT
	r+4/bardbler/an}bracketri}ht/an}bracketri}ht/an}bracketle{t/an}bracketle{ter/bardbl (103)
	In these expressions the vector /bardbler/an}bracketri}ht/an}bracketri}htis normalized, and its components in the stan-
	dard basis are all real. Qris a rankd−1 projector such that
	Qr/bardbler/an}bracketri}ht/an}bracketri}ht=QT
	r/bardbler/an}bracketri}ht/an}bracketri}ht= 0 (104)
	and which has, in addition, the remarkable property of being orthog onal to its own
	transpose (also a rank d−1 projector):
	QrQT
	r= 0 (105)
	Explicit expressions for /bardbler/an}bracketri}ht/an}bracketri}htandQrwill be given below.
	It will be convenient to deﬁne the rank 2( d−1) projector
	¯Rr=Qr+QT
	r (106)
	We have
	¯Rr=J2
	r (107)
	and
	Rr=¯Rr+4/bardbler/an}bracketri}ht/an}bracketri}ht/an}bracketle{t/an}bracketle{ter/bardbl (108)
	SinceQris Hermitian we have
	QT
	r=Q∗
	r (109)
	whereQ∗
	ris the matrix whose elements are the complex conjugates of the cor re-
	sponding elements of Qr. So¯Rris twice the real part of Qrand−iJris twice the
	imaginary part.
	In Section 5we will show that Eq. ( 102) is essentially deﬁnitive of a SIC-POVM.
	To be more speciﬁc, let Lrbe any set of d2Hermitian matrices which constitute a
	basis for gl( d,C), and letCrbe the adjoint representative of Lrin that basis. Then
	we will show that Crhas the spectral decomposition
	Cr=Qr−QT
	r (110)
	whereQris a rankd−1 projector which is orthogonal to its own transpose if and
	only if the Lrare a family of SIC projectors up to multiplication by a sign and
	shifting by a multiple of the identity.
	Having stated our results let us now turn to the task of proving the m. We begin
	byderivingthespectraldecompositionof Tr. Multiplyingboth sidesoftheequation
	ΠrΠs=d+1
	dd2/summationdisplay
	t=1TrstΠt−K2
	rsI (111)
	by Πrwe ﬁnd
	ΠrΠs=d+1
	dd2/summationdisplay
	t=1TrstΠrΠt−K2
	rsΠr16
	=(d+1)2
	d2d2/summationdisplay
	t=1(Tr)2
	stΠt−d+1
	dd2/summationdisplay
	t=1TrstK2
	rtI−K2
	rsΠr(112)
	We have
	d2/summationdisplay
	t=1TrstK2
	rt=1
	d+1d2/summationdisplay
	t=1Trst(dδrt+1)
	=1
	d+1
	dTrsr+d2/summationdisplay
	t=1Trst
	
	=2d
	d+1Tsrr
	=2d
	d+1K2
	rs (113)
	Consequently
	ΠrΠs=d+1
	dd2/summationdisplay
	t=1/parenleftbiggd+1
	d(Tr)2
	st−K2
	rsK2
	rt/parenrightbigg
	Πt−K2
	rsI (114)
	Comparing with Eq. ( 111) we deduce
	(Tr)2
	rs=d
	d+1Trst+d
	d+1K2
	rsK2
	rt (115)
	Now deﬁne
	/bardbler/an}bracketri}ht/an}bracketri}ht=/radicalbigg
	d+1
	2dd2/summationdisplay
	s=1K2
	rs/bardbls/an}bracketri}ht/an}bracketri}ht (116)
	where the basis kets /bardbls/an}bracketri}ht/an}bracketri}htare given by (in column vector form)
	/bardbl1/an}bracketri}ht/an}bracketri}ht=
	1
	0
	...
	0
	,/bardbl2/an}bracketri}ht/an}bracketri}ht=
	0
	1
	...
	0
	,...,/bardbld2/an}bracketri}ht/an}bracketri}ht=
	0
	0
	...
	1
	(117)
	It is easily veriﬁed that /bardbler/an}bracketri}ht/an}bracketri}htis normalized. Eq. ( 115) then becomes
	T2
	r=d
	d+1Tr+2d2
	(d+1)2/bardbler/an}bracketri}ht/an}bracketri}ht/an}bracketle{t/an}bracketle{ter/bardbl (118)
	Using Eq. ( 113) we ﬁnd
	/an}bracketle{t/an}bracketle{ts/bardblTr/bardbler/an}bracketri}ht/an}bracketri}ht=/radicalbigg
	d+1
	2dd2/summationdisplay
	t=1TrstK2
	rt
	=/radicalbigg
	2d
	d+1K2
	rs
	=2d
	d+1/an}bracketle{t/an}bracketle{ts/bardbler/an}bracketri}ht/an}bracketri}ht (119)
	So/bardbler/an}bracketri}ht/an}bracketri}htis an eigenvector of Trwith eigenvalue2d
	d+1.17
	Also deﬁne
	Qr=d+1
	dTr−2/bardbler/an}bracketri}ht/an}bracketri}ht/an}bracketle{t/an}bracketle{ter/bardbl (120)
	So in terms of the order-3 angle tensor the matrix elements of Qrare
	Qrst=d+1
	dKrsKrt/parenleftbig
	Ksteiθrst−KrsKrt/parenrightbig
	(121)
	Qris Hermitian (because Tris Hermitian). Moreover
	Q2
	r=(d+1)2
	d2T2
	r−4/bardbler/an}bracketri}ht/an}bracketri}ht/an}bracketle{t/an}bracketle{ter/bardbl=Qr (122)
	SoQris a projection operator. Since
	Tr(Tr) =/summationdisplay
	uTruu=d2/summationdisplay
	u=1K2
	ru=d (123)
	we have
	Tr(Qr) =d−1 (124)
	We have thus proved that the spectral decomposition of Tris
	Tr=d
	d+1Qr+2d
	d+1/bardbler/an}bracketri}ht/an}bracketri}ht/an}bracketle{t/an}bracketle{ter/bardbl (125)
	whereQris a rankd−1 projector, as claimed.
	We next prove that QT
	r/bardbler/an}bracketri}ht/an}bracketri}ht= 0. The fact that the components of /bardbler/an}bracketri}ht/an}bracketri}htin the
	standard basis are all real means
	/an}bracketle{t/an}bracketle{ts/bardblTT
	r/bardbler/an}bracketri}ht/an}bracketri}ht=/an}bracketle{t/an}bracketle{ter/bardblTr/bardbls/an}bracketri}ht/an}bracketri}ht=2d
	d+1/an}bracketle{t/an}bracketle{ts/bardbler/an}bracketri}ht/an}bracketri}ht (126)
	So/bardbler/an}bracketri}ht/an}bracketri}htis an eigenvector of TT
	ras well asTr, again with the eigenvalue2d
	d+1. In
	view of Eq. ( 120) it follows that QT
	r/bardbler/an}bracketri}ht/an}bracketri}ht= 0.
	Turning to the problem of showing that Qris orthogonal to its own transpose.
	We have
	QrQT
	r=/parenleftbiggd+1
	dTr−2/bardbler/an}bracketri}ht/an}bracketri}ht/an}bracketle{t/an}bracketle{ter/bardbl/parenrightbigg/parenleftbiggd+1
	dTT
	r−2/bardbler/an}bracketri}ht/an}bracketri}ht/an}bracketle{t/an}bracketle{ter/bardbl/parenrightbigg
	=(d+1)2
	d2TrTT
	r−4/bardbler/an}bracketri}ht/an}bracketri}ht/an}bracketle{t/an}bracketle{ter/bardbl (127)
	It follows from Eq. ( 24) that
	/an}bracketle{t/an}bracketle{ts/bardblTrTT
	r/bardblt/an}bracketri}ht/an}bracketri}ht=d2/summationdisplay
	u=1TrsuTrtu
	=GrsGrtd2/summationdisplay
	u=1GsuGtuGurGur (128)
	In view of Eq. ( 23) (i.e.the fact that every SIC-POVM is a 2-design) this implies
	/an}bracketle{t/an}bracketle{ts/bardblTrTT
	r/bardblt/an}bracketri}ht/an}bracketri}ht=2d
	d+1\|Grs\|2\|Grt\|2
	=2d
	d+1K2
	rsK2
	rt18
	=4d2
	(d+1)2/an}bracketle{t/an}bracketle{ts/bardbler/an}bracketri}ht/an}bracketri}ht/an}bracketle{t/an}bracketle{ter/bardblt/an}bracketri}ht/an}bracketri}ht (129)
	So
	TrTT
	r=4d2
	(d+1)2/bardbler/an}bracketri}ht/an}bracketri}ht/an}bracketle{t/an}bracketle{ter/bardbl (130)
	and consequently
	QrQT
	r= 0 (131)
	Eqs. (102) and (103) are immediate consequences of the results already proved
	and the deﬁnitions of Jr,Rr.
	We deﬁnedthe Jmatricestobe theadjointrepresentativesofthe SIC-projecto rs,
	considered as a basis for the Lie algebra gl( d,C), and that is certainly a most
	important fact about them. However, the results of this section s how that, along
	with the vectors /bardbler/an}bracketri}ht/an}bracketri}ht, they actually determine the whole structure. Speciﬁcally,
	we have
	Qr=1
	2/parenleftbig
	Jr+J2
	r/parenrightbig
	(132)
	Rr=J2
	r+4/bardbler/an}bracketri}ht/an}bracketri}ht/an}bracketle{t/an}bracketle{ter/bardbl (133)
	Tr=d
	2(d+1)/parenleftig
	Jr+J2
	r+4/bardbler/an}bracketri}ht/an}bracketri}ht/an}bracketle{t/an}bracketle{ter/bardbl/parenrightig
	(134)
	Moreover, if we know the Tmatrices then we know the order-3 angle tensor, which
	in view of Theorem 3means we can reconstruct the SIC-projectors. Since the
	vectors/bardbler/an}bracketri}ht/an}bracketri}htare given, once and for all, this means that the problem of proving th e
	existenceofa SIC-POVMin dimension dis equivalent to the problem ofprovingthe
	existence of a certain remarkable structure in the adjoint repres entation of gl( d,C)
	(as we will see in more detail in Section 5).
	In the Introduction webegan with the concept ofa SIC-POVM,and then deﬁned
	theJmatrices in terms of it. However, one could, if one wished, go in the op posite
	direction, and take the Lie algebraic structure to be primary, with t he SIC-POVM
	being the secondary, derivative entity.
	4.TheQ-QTProperty
	The next ﬁve sections are devoted to a study of the Jmatrices which, as we will
	see, have numerous interesting properties. We begin our investiga tion by trying to
	get some additional insight into what we will call the Q-QTproperty: namely, the
	fact that the Jmatrices have the spectral decomposition
	Jr=Qr−QT
	r (135)
	whereQrisarankd−1projectorwhichisorthogonaltoits owntranspose. We wish
	to characterize the general class of matrices which are of this typ e. The following
	theorem provides one such characterization.
	Theorem 4. LetAbe a Hermitian matrix. Then the following statements are
	equivalent:19
	(1)Ahas the spectral decomposition
	A=P−PT(136)
	wherePis a projector which is orthogonal to its own transpose.
	(2)Ais pure imaginary and A2is a projector.
	Proof.To show that (1) = ⇒(2) observe that the fact that Pis Hermitian means
	PT=P∗(137)
	whereP∗is the matrix whose elements are the complex conjugates of the cor re-
	sponding elements of P. So Eq. ( 136) implies that the components of Aare pure
	imaginary. Since PPT= 0 it also implies that A2is a projector.
	To show that (2) = ⇒(1) observe that the fact that A2is a projector means
	that the eigenvalues of A=±1 or 0. So
	A=P−P′(138)
	whereP,P′are orthogonal projectors. Since Ais pure imaginary we must have
	PT−(P′)T=AT=A∗=−A=P′−P (139)
	PTand (P′)Tare also orthogonal projectors. So if PT\|ψ/an}bracketri}ht=\|ψ/an}bracketri}ht, and\|ψ/an}bracketri}htis nor-
	malized, we must have
	1 =/an}bracketle{tψ\|PT\|ψ/an}bracketri}ht
	=/angbracketleftbig
	ψ/vextendsingle/vextendsingle/parenleftbig
	PT−(P′)T/parenrightbig/vextendsingle/vextendsingleψ/angbracketrightbig
	=/an}bracketle{tψ\|P′\|ψ/an}bracketri}ht−/an}bracketle{tψ\|P\|ψ/an}bracketri}ht (140)
	Since
	0≤ /an}bracketle{tψ\|P′\|ψ/an}bracketri}ht ≤1 (141)
	0≤ /an}bracketle{tψ\|P\|ψ/an}bracketri}ht ≤1 (142)
	we must have /an}bracketle{tψ\|P′\|ψ/an}bracketri}ht= 1, implying P′\|ψ/an}bracketri}ht=\|ψ/an}bracketri}ht. Similarly P′\|ψ/an}bracketri}ht=\|ψ/an}bracketri}htimplies
	PT\|ψ/an}bracketri}ht=\|ψ/an}bracketri}ht. So
	P′=PT(143)
	/square
	We also have the following statement, inspired in part by Ref. [ 51],
	Theorem 5. The necessary and suﬃcient condition for a matrix Pto be a projector
	which is orthogonal to its own transpose is that
	P=SDST(144)
	whereSis an any real orthogonal matrix and Dhas the block-diagonal form
	D=
	σ ... 0 0...0
	............
	0... σ 0...0
	0...0 0...0
	............
	0...0 0...0
	(145)20
	with
	σ=1
	2/parenleftbigg
	1−i
	i1/parenrightbigg
	(146)
	In other words Dhasncopies ofσon the diagonal, where n= rank(P), and0
	everywhere else.
	Proof.Suﬃciency is an immediate consequence of the fact that σis a rank 1 pro-
	jector such that σσT= 0.
	To prove necessity let dbe the dimension of the space and nthe rank of P. It
	will be convenient to deﬁne
	\|1/an}bracketri}ht=
	1
	0
	...
	0
	,\|2/an}bracketri}ht=
	0
	1
	...
	0
	, ... \|d/an}bracketri}ht=
	0
	0
	...
	1
	(147)
	In terms of these basis vectors we have
	P=d/summationdisplay
	r,s=1Prs\|r/an}bracketri}ht/an}bracketle{ts\| (148)
	Now let \|a1/an}bracketri}ht,...,\|an/an}bracketri}htbe an orthonormal basis for the subspace onto which P
	projects, and let \|a∗
	r/an}bracketri}htbe the column vector which is obtained from \|ar/an}bracketri}htby tak-
	ing the complex conjugate of each of its components. Taking comple x conjugates
	on each side of the equation
	P\|ar/an}bracketri}ht=\|ar/an}bracketri}ht (149)
	gives
	P∗\|a∗
	r/an}bracketri}ht=\|a∗
	r/an}bracketri}ht (150)
	So\|a∗
	1/an}bracketri}ht,...,\|a∗
	n/an}bracketri}htis an orthonormal basis for the subspace onto which PT=P∗
	projects. Since PTis orthogonal to Pwe conclude that
	/an}bracketle{tar\|a∗
	s/an}bracketri}ht= 0 (151)
	for allr,s.
	Next deﬁne vectors \|b1/an}bracketri}ht,...,\|b2n/an}bracketri}htby
	\|b2r−1/an}bracketri}ht=1√
	2/parenleftbig
	\|a∗
	r/an}bracketri}ht−\|ar/an}bracketri}ht/parenrightbig
	(152)
	\|b2r/an}bracketri}ht=i√
	2/parenleftbig
	\|a∗
	r/an}bracketri}ht+\|ar/an}bracketri}ht/parenrightbig
	(153)
	By construction these vectors are orthonormal and real. So we c an extend them
	to an orthonormal basis for the full space by adding a further d−2nvectors
	\|b2n+1/an}bracketri}ht,...,\|bd/an}bracketri}ht, which can also be chosen to be real. We have
	P=n/summationdisplay
	r=1\|ar/an}bracketri}ht/an}bracketle{tar\|
	=1
	2n/summationdisplay
	r=1/parenleftig
	\|b2r−1/an}bracketri}ht/an}bracketle{tb2r−1\|−i\|b2r−1/an}bracketri}ht/an}bracketle{tb2r\|+i\|b2r/an}bracketri}ht/an}bracketle{tb2r−1\|+\|b2r/an}bracketri}ht/an}bracketle{tb2r\|/parenrightig
	(154)21
	So if we deﬁne
	S=d/summationdisplay
	r=1\|br/an}bracketri}ht/an}bracketle{tr\| (155)
	thenSis a real orthogonal matrix such that
	P=SDST(156)
	where
	D=1
	2n/summationdisplay
	r=1/parenleftig
	\|2r−1/an}bracketri}ht/an}bracketle{t2r−1\|−i\|2r−1/an}bracketri}ht/an}bracketle{t2r\|+i\|2r/an}bracketri}ht/an}bracketle{t2r−1\|+\|2r/an}bracketri}ht/an}bracketle{t2r\|/parenrightig
	(157)
	is the matrix deﬁned by Eq. ( 145). /square
	This result implies the following alternative characterization of the cla ss of ma-
	trices to which the Jmatrices belong
	Corollary 6. LetAbe a Hermitian matrix. Then the following statements are
	equivalent:
	(1)Ahas the spectral decomposition
	A=P−PT(158)
	wherePis a projector which is orthogonal to its own transpose.
	(2)There exists a real orthogonal matrix Ssuch that
	A=SDST(159)
	whereDhas the block diagonal form
	D=
	σy...0 0...0
	............
	0... σ y0...0
	0...0 0...0
	............
	0...0 0...0
	(160)
	σybeing the Pauli matrix
	σy=/parenleftbigg0−i
	i0/parenrightbigg
	(161)
	In other words Dhasncopies ofσyon the diagonal, where n=1
	2rank(A),
	and0everywhere else (note that a matrix of this type must have eve n rank).
	Proof.Immediate consequence of Theorem 5. /square
	5.Lie Algebraic Formulation of the Existence Problem
	This section is the core of the paper. We show that the problem of pr oving the
	existence of a SIC-POVM in dimension dis equivalent to the problem of proving
	the existence of an Hermitian basis for gl( d,C) all of whose elements have the Q-QT
	property. We hope that this new way of thinking will help make the SIC -existence
	problem more amenable to solution.
	The result we prove is the following:22
	Theorem 7. LetLrbe a set ofd2Hermitian matrices forming a basis for gl(d,C).
	LetCrstbe the structure constants relative to this basis, so that
	[Lr,Ls] =d2/summationdisplay
	t=1CrstLt (162)
	and letCrbe the matrix with matrix elements (Cr)st=Crst. Then the following
	statements are equivalent
	(1)EachCrhas the spectral decomposition
	Cr=Pr−PT
	r (163)
	wherePris a rankd−1projector which is orthogonal to its own transpose.
	(2)There exists a SIC-set Πr, a set of signs ǫr=±1and a real constant
	α/ne}ationslash=−1
	dsuch that
	Lr=ǫr(Πr+αI) (164)
	Remark. The restriction to values of α/ne}ationslash=−1
	dis needed to ensure that the matrices
	Lrare linearly independent, and therefore constitute a basis for gl( d,C) (otherwise
	they would all have trace = 0). The Q-QTproperty continues to hold even if α
	does =−1
	d.
	It will be seen that it is not only SIC-sets which have the Q-QTproperty, but
	also any set of operators obtained from a SIC-set by shifting by a c onstant and
	multiplying by an r-dependent sign. Sothe Q-QTpropertyis not strictly equivalent
	to the property of being a SIC-set. However, it could be said that t he properties
	are almost equivalent. In particular, the existence of an Hermitian b asis for gl(d,C)
	having the Q-QTproperty implies the existence of a SIC-POVM in dimension d,
	and conversely.
	Proof that (2) =⇒(1).Taking the trace on both sides of
	[Πr,Πs] =d2/summationdisplay
	t=1JrstΠt (165)
	we deduce that
	d2/summationdisplay
	t=1Jrst= 0 (166)
	Then from the deﬁnition of Lrin terms of Π rwe ﬁnd
	Crst=ǫrǫsǫtJrst (167)
	Consequently
	Cr=Pr−PT
	r (168)
	where
	Pr=ǫrSQrS (169)
	Sbeing the symmetric orthogonal matrix
	S=
	ǫ10...0
	0ǫ2...0
	.........
	0 0... ǫ d2
	(170)
	The claim is now immediate.23
	Proof that (1) =⇒(2).Forthis we need to workharder. Since the proofis rather
	lengthy we will break it into a number of lemmas. We ﬁrst collect a few ele mentary
	facts which will be needed in the sequel:
	Lemma 8. LetLrbe any Hermitian basis for gl(d,C), and letCrstandCrbe
	the structure constants and adjoint representatives as deﬁ ned in the statement of
	Theorem 7. Letlr= Tr(Lr). Then
	(1)Thelrare not all zero.
	(2)TheCrstare pure imaginary and antisymmetric in the ﬁrst pair of indi ces.
	(3)TheCrstare completely antisymmetric if and only if the Crare Hermitian.
	(4)In every case
	d2/summationdisplay
	t=1Crstlt= 0 (171)
	for allr,s.
	(5)In the special case that the Crare Hermitian
	d2/summationdisplay
	r=1lrLr=κI (172)
	where
	κ=1
	d
	d2/summationdisplay
	r=1l2
	r
	>0 (173)
	Proof.To prove (1) observe that if the lrwere all zero it would mean that the
	identity was not in the span of the Lr—contrary to the assumption that they form
	a basis.
	To prove(2) observethat taking Hermitian conjugates on both sid es of Eq. ( 162)
	gives
	−[Lr,Ls] =d2/summationdisplay
	t=1C∗
	rstLt (174)
	from which it follows that C∗
	rst=−Crst. The fact that Csrt=−Crstis an imme-
	diate consequence of the deﬁnition.
	(3) is now immediate.
	(4) is proved in the same way as Eq. ( 166).
	To prove (5) observe that if the Crare Hermitian it follows from (2) and (3) that
	d2/summationdisplay
	r=1lrCrst= 0 (175)
	for alls,t. Consequently the matrix
	d2/summationdisplay
	r=1lrLr (176)24
	commutes with everything. But the only matrices for which that is tr ue are multi-
	ples of the identity. It follows that
	d2/summationdisplay
	r=1lrLr=κI (177)
	for some real κ. Taking the trace on both sides of this equation we deduce
	d2/summationdisplay
	r=1l2
	r=dκ (178)
	The fact that κ>0 is a consequence of this and statement (1). /square
	We next observe that if the Crhave theQ-QTproperty they must, in particular,
	be Hermitian. It turns out that that is, by itself, already a very str ong constraint.
	Before stating the result it may be helpful if we explain the essential idea on
	which it depends. Although we have not done so before, and will not d o so again, it
	will be convenient to make use of the covariant/contravariantinde x notation which
	is often used to describe the structure constants. Deﬁne the me tric tensor
	Mrs= Tr(LrLs) (179)
	and letMrsbe its inverse. So
	d2/summationdisplay
	t=1MrtMts=Mr
	s=/braceleftigg
	1r=s
	0r/ne}ationslash=s(180)
	We can use these tensors to raise and lower indices (we use the Hilber t-Schmidt
	inner product for this purpose because the fact that gl( d,C) is not semi-simple
	means that its Killing form is degenerate [ 52–55]). In particular, the matrices
	Lr=d2/summationdisplay
	t=1MrsLs (181)
	are the basis dual to the Lr:
	Tr(LrLs) =Mr
	s (182)
	Suppose we now deﬁne structure constants ˜Crstby
	[Lr,Ls] =d2/summationdisplay
	t=1˜CrstLt(183)
	(so in terms of the Crstwe have ˜Ct
	rs=Crst). It follows from the relation
	˜Crst= Tr/parenleftbig
	[Lr,Ls]Lt/parenrightbig
	= Tr/parenleftbig
	Lr[Ls,Lt]/parenrightbig
	(184)
	that the ˜Crstare completely antisymmetric for any choice of the Lr. If we now
	require that the matrices Crbe Hermitian it means that, not only the ˜Crst, but
	also theCrstmust be completely antisymmetric. Since the two quantities are
	related by
	˜Crst=d2/summationdisplay
	u=1CrsuMut (185)25
	this is a very strong requirement. It means that the Lrmust, in a certain sense,
	be close to orthonormal (relative to the Hilbert-Schmidt inner prod uct). More
	precisely, it means we have the following lemma:
	Lemma 9. LetLr,CrstandCrbe deﬁned as in the statement of Theorem 7, and
	letlr= Tr(Lr). Then the Crare Hermitian if and only if
	Tr(LrLs) =βδrs+γlrls (186)
	whereβ,γare real constants such that β >0andγ <1
	d.
	If this condition is satisﬁed we also have
	d2/summationdisplay
	r=1lrLr=β
	1−dγI (187)
	d2/summationdisplay
	r=1l2
	r=dβ
	1−dγ(188)
	Proof.To prove suﬃciency observe that, in view of Eq. ( 185), the condition means
	˜Crst=βCrst+γltd2/summationdisplay
	u=1Crsulu (189)
	In view of Lemma 8, and the fact that β/ne}ationslash= 0, this implies
	Crst=1
	β˜Crst (190)
	Since the ˜Crstare completely antisymmetric we conclude that the Crstmust be
	also. It follows that the Crare Hermitian.
	To prove necessity let ˜Cr(respectively M) be the matrix whose matrix elements
	are˜Crst(respectively Mst). Then Eq. ( 185) can be written
	˜Cr=CrM (191)
	Taking the transpose (or, equivalently, the Hermitian conjugate) on both sides of
	this equation we ﬁnd
	˜Cr=MCr (192)
	implying
	[M,Cr] = 0 (193)
	for allr. Since the Lrare a basis for gl( d,C) we deduce
	[M,adA] = 0 (194)
	for allA∈gl(d,C). Eq. (186) is a straightforward consequence of this, the fact
	that gl(d,C) has the direct sum decomposition CI⊕sl(d,C), the fact that sl( d,C)
	is simple, and Schur’s lemma [ 52–55]. However, for the beneﬁt of the reader who is
	not so familiar with the theory of Lie algebras we will give the argument in a little
	more detail.26
	Given arbitrary A=/summationtextd2
	r=1arLr, let/bardblA/an}bracketri}ht/an}bracketri}htdenote the column vector
	/bardblA/an}bracketri}ht/an}bracketri}ht=
	a1
	a2
	...
	ad2
	(195)
	So
	/bardblLr/an}bracketri}ht/an}bracketri}ht=
	1
	0
	...
	0
	/bardblL2/an}bracketri}ht/an}bracketri}ht=
	0
	1
	...
	0
	/bardblLd2/an}bracketri}ht/an}bracketri}ht=
	0
	0
	...
	1
	(196)
	In view of Lemma 8we then have
	/bardblI/an}bracketri}ht/an}bracketri}ht=1
	κd2/summationdisplay
	r=1lr/bardblLr/an}bracketri}ht/an}bracketri}ht (197)
	Since
	Tr(A) =d2/summationdisplay
	r=1arlr=κ/an}bracketle{t/an}bracketle{tI/bardblA/an}bracketri}ht/an}bracketri}ht (198)
	we have that A∈sl(d,C) if and only if /an}bracketle{t/an}bracketle{tI/bardblA/an}bracketri}ht/an}bracketri}ht= 0.
	Now observe that it follows from Lemma 8and the deﬁnition of Mthat
	M/bardblI/an}bracketri}ht/an}bracketri}ht=κ/bardblI/an}bracketri}ht/an}bracketri}ht (199)
	IfMis a multiple of the identity we have Mrs=κδrsand the lemma is proved.
	OtherwiseMhas at least one more eigenvalue, βsay. Let Ebe the corresponding
	eigenspace. Since Eis orthogonal to /bardblI/an}bracketri}ht/an}bracketri}htit follows from Eq. ( 198) thatE⊆sl(d,C).
	SinceMcommutes with every adjoint representation matrix we have
	adAE⊆E (200)
	for allA∈sl(d,C). SoEis an ideal of sl( d,C). However sl( d,C) is a simple Lie
	algebra, meaning it has no proper ideals [ 52–55]. So we must have E= sl(d,C). It
	follows that if we deﬁne
	˜Lr=Lr−lr
	dI (201)
	then
	M/bardblLr/an}bracketri}ht/an}bracketri}ht=lr
	dM/bardblI/an}bracketri}ht/an}bracketri}ht+M/bardbl˜Lr/an}bracketri}ht/an}bracketri}ht (202)
	=κlr
	d/bardblI/an}bracketri}ht/an}bracketri}ht+β/bardbl˜Lr/an}bracketri}ht/an}bracketri}ht (203)
	=d2/summationdisplay
	s=1(βδrs+γlrls)/bardblLs/an}bracketri}ht/an}bracketri}ht (204)
	whereγ=1
	d/parenleftig
	1−β
	κ/parenrightig
	. Eqs. (186), (187) and (188) are now immediate (in view of
	Lemma8).27
	It remains to establish the bounds on β,γ. LetA=/summationtextd2
	r=1arLrbe any non-zero
	element of sl( d,C). Then/summationtextd2
	r=1arlr= 0, so in view of Eq. ( 186) we have
	0<Tr(A2) =βd2/summationdisplay
	r=1a2
	r (205)
	It follows that β >0. Also, using Lemma 8once more, we ﬁnd
	lr=1
	κd2/summationdisplay
	s=1lsTr(LrLs)
	=βlr
	κ+γlr
	κd2/summationdisplay
	s=1l2
	s
	=lr/parenleftbiggβ
	κ+dγ/parenrightbigg
	(206)
	Since thelrcannot all be zero this implies
	β
	κ= 1−dγ (207)
	Sinceβ
	κ>0 we deduce that γ <1
	d. /square
	Eq. (186) only depends on the Crbeing Hermitian. If we make the assumption
	that theCrhave theQ-QTproperty we get a stronger statement:
	Corollary 10. LetLr,CrstandCrbe as deﬁned in the statement of Theorem 7.
	Suppose that the Crhave the spectral decomposition
	Cr=Pr−PT
	r (208)
	wherePris a rankd−1projector which is orthogonal to its own transpose. Then
	(1)For allr
	Tr(Lr) =ǫ′
	rl (209)
	(2)For allr,s
	Tr(LrLs) =d
	d+1δrs+ǫ′
	rǫ′
	s
	d/parenleftbigg
	l2−1
	d+1/parenrightbigg
	(210)
	(3)
	d2/summationdisplay
	r=1ǫ′
	rLr=dlI (211)
	for some real constant l>0and signsǫ′
	r=±1.
	Proof.The proof relies on the fact that the Killing form for gl( d,C) is related to
	the Hilbert-Schmidt inner product by [ 55]
	Tr(adAadB) = 2dTr(AB)−2Tr(A)Tr(B) (212)
	Specializing to the case A=B=Lrand making use of the Q-QTproperty we ﬁnd
	d−1 =dTr(L2
	r)−l2
	r (213)
	Using Lemma 9we deduce
	l2
	r=dβ−d+1
	1−dγ(214)28
	It follows that
	lr=ǫ′
	rl (215)
	for some real constant l≥0 and signs ǫ′
	r=±1. The fact that the Lrare a basis
	for gl(d,C) means the lrcannot all be zero. So we must in fact have l>0. Using
	this result in Eq. ( 188) we ﬁnd
	β+d2l2γ=dl2(216)
	while Eq. ( 214) implies
	dβ+dl2γ=d−1+l2(217)
	This gives us a pair of simultaneous equations in βandγ. Solving them we obtain
	β=d
	d+1(218)
	γ=1
	dl2/parenleftbigg
	l2−1
	d+1/parenrightbigg
	(219)
	Substituting these expressions into Eqs. ( 186) and (187) we deduce Eqs. ( 210)
	and (211). /square
	The next lemma shows that each Lris a linear combination of a rank-1projector
	and the identity:
	Lemma 11. LetLbe any Hermitian matrix ∈gl(d,C)which is not a multiple of
	the identity. Then
	rank(ad L)≥2(d−1) (220)
	The lower bound is achieved if and only if Lis of the form
	L=ηI+ξP (221)
	wherePis a rank- 1projector and η,ξare any pair of real numbers. The eigenvalues
	ofadLare then ±ξ(each with multiplicity d−1) and0(with multiplicity d2−2d+2).
	Proof.Letλ1≥λ2≥ ··· ≥λdbe the eigenvalues of Larranged in decreasing
	order, and let \|b1/an}bracketri}ht,\|b2/an}bracketri}ht,...,\|bd/an}bracketri}htbe the correspondingeigenvectors. We mayassume,
	without loss of generality, that the \|br/an}bracketri}htare orthonormal. We have
	adL/parenleftbig
	\|br/an}bracketri}ht/an}bracketle{tbs\|/parenrightbig
	=/bracketleftbig
	L,\|br/an}bracketri}ht/an}bracketle{tbs\|/bracketrightbig
	= (λr−λs)\|br/an}bracketri}ht/an}bracketle{tbs\| (222)
	So the eigenvalues of ad Lareλr−λs. SinceLis not a multiple of the identity we
	must haveλr/ne}ationslash=λr+1for somerin the range 1 ≤r≤d−1. We then have that
	λs−λt/ne}ationslash= 0 if either s≤r<tort≤r<s. There are 2 r(d−r) such pairs s,t. So
	rank(ad L)≥2r(d−r)≥2(d−1) (223)
	Suppose, now that the lower bound is achieved. Then r(d−r) =d−1, implying
	thatr= 1 ord−1. Also we must have λs=λs+1for alls/ne}ationslash=r. So either
	L=λ2I+(λ1−λ2)\|b1/an}bracketri}ht/an}bracketle{tb1\| (224)
	or
	L=λd−1I−(λd−1−λd)\|bd/an}bracketri}ht/an}bracketle{tbd\| (225)
	Either way Land the spectrum of ad Lare as described. /square
	The ﬁnal ingredient needed to complete the proof is29
	Lemma 12. LetLr,CrstandCrbe as deﬁned in the statement of Theorem 7.
	Suppose that the Crhave the spectral decomposition
	Cr=Pr−PT
	r (226)
	wherePris a rankd−1projector which is orthogonal to its own transpose. Let l,
	ǫ′
	rbe as in the statement of Corollary 10. Then there is a ﬁxed sign ǫ=±1such
	that
	Πr=ǫǫ′
	rLr−ǫl−1
	dI (227)
	is a rank- 1projector for all r.
	Proof.Deﬁne
	L′
	r=ǫ′
	rLr−l−1
	dI (228)
	Then it follows from Corollary 10that
	Tr(L′
	r) = 1 (229)
	for allr,
	Tr(L′
	rL′
	s) =dδrs+1
	d+1(230)
	for allr,s, and
	d2/summationdisplay
	r=1L′
	r=dI (231)
	It is also easily seen that if we deﬁne C′
	rst=ǫ′
	rǫ′
	sǫ′
	tCrstthen
	[L′
	r,L′
	s] =d2/summationdisplay
	t=1C′
	rstL′
	t (232)
	and
	C′
	r=P′
	r−P′
	rT(233)
	whereP′
	ris a rank-1 projector which is orthogonal to its own transpose (se e the
	ﬁrst part of the proof of Theorem 7). In particular
	rank/parenleftbig
	adL′r/parenrightbig
	= 2(d−1) (234)
	and the eigenvalues of ad L′rall equal to ±1 or 0. So, taking account of the fact
	that Tr(L′
	r) = 1, we can use Lemma 11to deduce that there is a family of rank-1
	projectors Π′
	rand signsξr=±1 such that
	L′
	r=ξrΠ′
	r+1−ξr
	dI (235)
	Ifξr= +1 (respectively −1) for allrthen Eq. ( 227) holds with Π r= Π′
	randǫ= +1
	(respectively −1). Also, if d= 2 thenL′
	ris a rank-1 projector irrespective of the
	value ofξr, so Eq. ( 227) holds with Π r=L′
	randǫ= +1. The problem therefore
	reduces to showing that if d >2 it cannot happen that ξr= +1 for some values
	ofrand−1 for others. We will do this by assuming the contrary and deducing a
	contradiction.
	Letmbe the number of values of rfor whichξr= +1. We are assuming that
	mis in the range 1 ≤m≤d2−1. We may also assume, without loss of generality,30
	that the labelling is such that ξr= +1 for the ﬁrst mvalues ofr, and−1 for the
	rest. So
	L′
	r=/braceleftigg
	Π′
	r ifr≤m
	2
	dI−Π′
	rifr>m(236)
	Now deﬁne
	˜Trst= Tr/parenleftbig
	L′
	rL′
	sL′
	t/parenrightbig
	(237)
	Eqs. (230) and (231) mean that the same argument which led to Eq. ( 9) can be
	used to deduce
	L′
	rL′
	s=d+1
	d
	d2/summationdisplay
	t=1˜TrstL′
	t
	−K2
	rsI (238)
	SinceL′
	1is a projector it follows that
	L′
	1L′
	s=/parenleftbig
	L′
	1/parenrightbig2L′
	s=d+1
	d
	d2/summationdisplay
	t=1˜T1stL′
	1L′
	t
	−K2
	1sL′
	1 (239)
	By essentially the same argument which led to Eq. ( 118) we can use this to infer
	/parenleftbig˜T′
	1/parenrightbig2=d
	d+1˜T1+2d2
	(d+1)2/bardble1/an}bracketri}ht/an}bracketri}ht/an}bracketle{t/an}bracketle{te1/bardbl (240)
	where˜T′
	1is the matrix with matrix elements ˜T′
	1rsand/bardble1/an}bracketri}ht/an}bracketri}htis the vector deﬁned by
	Eq.(116). Asbefore /bardble1/an}bracketri}ht/an}bracketri}htisaneigenvectorof ˜T′
	1witheigenvalue2d
	d+1. Consequently
	the matrix
	˜Q1=d+1
	d˜T′
	1−2/bardble1/an}bracketri}ht/an}bracketri}ht/an}bracketle{t/an}bracketle{te1/bardbl (241)
	is a projector. But that means Tr( ˜Q1) must be an integer. We now use this to
	derive a contradiction.
	It follows from Eq. ( 236) that
	(L′
	r)2=/braceleftigg
	L′
	r r≤m
	2(d−2)
	d2I−d−4
	dL′
	rr>m(242)
	Consequently
	˜T1rr=/braceleftigg
	K2
	1r r≤m
	2(d−2)
	d2−d−4
	dK2
	1rr>m(243)
	and so
	Tr(˜Q1) =d+1
	dd2/summationdisplay
	r=1˜T1rr−2
	=d+1−4d2+2m(d−2)
	d3(244)
	So if Tr( ˜Q1) is an integer/parenleftbig
	4d2+2n(d−2)/parenrightbig
	/d3must also be an integer. But the
	fact that 1 ≤m<d2, together with the fact that d>2 means
	4
	d<4d2+2m(d−2)
	d3<2 (245)31
	Ifd= 3 or 4 there are no integers in this interval, which gives us a contrad iction
	straight away. If, on the other hand, d≥5 there is the possibility
	4d2+2m(d−2)
	d3= 1 (246)
	implying
	m=d2(d−4)
	2(d−2)(247)
	This equationhasthe solution d= 6,m= 9(this is in fact the only integersolution,
	ascanbe seenfrom ananalysisofthe possible primefactorizationso fthe numerator
	and denominator on the right hand side). To eliminate this possibility de ﬁne
	L′′
	r=2
	dI−L′
	d2+1−r (248)
	for allr. It is easily veriﬁed that
	Tr(L′′
	rL′′
	s) =dδrs+1
	d+1(249)
	d2/summationdisplay
	r=1L′′
	r=dI (250)
	and
	L′′
	r=/braceleftigg
	Πr r≤d2−m
	2
	dI−Πrr>d2−m(251)
	So we can go through the same argument as before to deduce
	d2−m=d2(d−4)
	2(d−2)(252)
	Eqs. (247) and (252) have no joint solutions at all with d/ne}ationslash= 0, integer or otherwise.
	/square
	To complete the proof of Theorem 7observe that Eqs. ( 210) and (227) imply
	Tr(ΠrΠs) =dδrs+1
	d+1(253)
	So the Π rare a SIC-set. Moreover
	Lr=ǫr(Πr+αI) (254)
	whereǫr=ǫǫ′
	randα= (ǫl−1)/d.
	6.The Algebra sl(d,C)
	The motivation for this paper is the hope that a Lie algebraic perspec tive may
	cast some light on the SIC-existence problem, and on the mathemat ics of SIC-
	POVMs generally. We have focused on gl( d,C) as that is the case where the con-
	nection with Lie algebras seems most straightforward. However, it may be worth
	mentioning that a SIC-POVM also gives rise to an interesting geometr ical structure
	in sl(d,C) (the Lie algebra consisting of all trace-zero d×dcomplex matrices).32
	Let Πrbe a SIC-set and deﬁne
	Br=/radicaligg
	d+1
	2(d2−1)/parenleftbigg
	Πr−1
	dI/parenrightbigg
	(255)
	SoBr∈sl(d,C). Let
	/an}bracketle{tA,A′/an}bracketri}ht= Tr(ad AadA′) = 2dTr(AA′) (256)
	be the Killing form [ 55] on sl(d,C). Then
	/an}bracketle{tBr,Bs/an}bracketri}ht=/braceleftigg
	1 r=s
	−1
	d2−1r/ne}ationslash=s(257)
	So theBrform a regular simplex in sl( d,C). Since sl( d,C) isd2−1 dimensional
	theBrare an overcomplete set. However, the fact that
	d2/summationdisplay
	r=1Br= 0 (258)
	means that for each A∈sl(d,C) there is a unique set of numbers arsuch that
	A=d2/summationdisplay
	r=1arBr (259)
	and
	d2/summationdisplay
	r=1ar= 0 (260)
	Thearcan be calculated using
	ar=d2−1
	d2/an}bracketle{tA,Br/an}bracketri}ht (261)
	Similarly, given any linear transformation M: sl(d,C)→sl(d,C), there is a unique
	set of numbers Mrssuch that
	MBr=d2/summationdisplay
	s=1MrsBs (262)
	and
	d2/summationdisplay
	s=1Mrs=d2/summationdisplay
	s=1Msr= 0 (263)
	for allr. TheMrscan be calculated using
	Mrs=d2−1
	d2/an}bracketle{tBs,MBr/an}bracketri}ht (264)
	In short, the Brretain many analogous properties of, and can be used in much the
	same way as, a basis. It could be said that they form a simplicial basis.33
	7.Further Identities
	In the preceding pages we have seen that there are ﬁve diﬀerent f amilies of ma-
	trices naturally associated with a SIC-POVM: namely, the projecto rsQrtogether
	with the matrices
	Jr=Qr−QT
	r (265)
	¯Rr=Qr+QT
	r (266)
	Rr=Qr+QT
	r+4/bardbler/an}bracketri}ht/an}bracketri}ht/an}bracketle{t/an}bracketle{ter/bardbl (267)
	Tr=d
	d+1Qr+2d
	d+1/bardbler/an}bracketri}ht/an}bracketri}ht/an}bracketle{t/an}bracketle{ter/bardbl (268)
	(see Section 3). As we noted previously, it is possible to deﬁne everything in terms
	of the adjoint representation matrices Jrand the rank-1 projectors /bardbler/an}bracketri}ht/an}bracketri}ht/an}bracketle{t/an}bracketle{ter/bardbl:
	Qr=1
	2Jr(Jr+I) (269)
	¯Rr=J2
	r (270)
	Rr=J2
	r+4/bardbler/an}bracketri}ht/an}bracketri}ht/an}bracketle{t/an}bracketle{ter/bardbl (271)
	Tr=d
	2(d+1)Jr(Jr+I)+2d
	d+1/bardbler/an}bracketri}ht/an}bracketri}ht/an}bracketle{t/an}bracketle{ter/bardbl (272)
	In that sense the structure constants of the Lie algebra, supple mented with the
	vectors/bardbler/an}bracketri}ht/an}bracketri}ht, determine everything else.
	In the next section we will show that there are some interesting geo metrical
	relationships between the hyperplanes onto which Qr,QT
	rand¯Rrproject. In this
	section, as a preliminary to that investigation, we prove a number of identities
	satisﬁed by the Q,Jand¯Rmatries. We start by computing their Hilbert-Schmidt
	inner products:
	Theorem 13. For allr,s
	Tr/parenleftbig
	QrQs/parenrightbig
	=d3δrs+d2−d−1
	(d+1)2(273)
	Tr/parenleftbig
	QrQT
	s/parenrightbig
	=d2(1−δrs)
	(d+1)2(274)
	Tr/parenleftbig
	JrJs/parenrightbig
	=2(d2δrs−1)
	d+1(275)
	Tr/parenleftbig¯Rr¯Rs/parenrightbig
	=2(d−1)(d2δrs+2d+1)
	(d+1)2(276)
	Tr/parenleftbig
	Jr¯Rs/parenrightbig
	= 0 (277)
	Proof.Let us ﬁrst calculate some auxiliary quantities. It follows from the de ﬁnition
	ofTr, andthe factthat the matrix P=1
	dGdeﬁned byEq.( 63) isarankdprojector,
	that
	Tr(TrTs) =d2/summationdisplay
	u,v=1TruvTsvu34
	=d2/summationdisplay
	u,v=1K2
	uvGruGusGsvGvr
	=d
	d+1d2/summationdisplay
	u=1K2
	ruK2
	su+d4
	d+1d2/summationdisplay
	u,v=1PruPusPsvPvr
	=d2(dδrs+d+2)
	(d+1)3+d4
	d+1/vextendsingle/vextendsinglePrs/vextendsingle/vextendsingle2
	=d2(dδrs+d+2)
	(d+1)3+d2
	d+1K2
	rs
	=d2/parenleftbig
	d(d+2)δrs+2d+3/parenrightbig
	(d+1)3(278)
	Also
	Tr/parenleftbig
	TrTT
	s/parenrightbig
	=d2/summationdisplay
	u,v=1TruvTsuv
	=d2/summationdisplay
	u=1GruGsu
	d2/summationdisplay
	v=1GuvGuvGvrGvs
	
	=2d
	d+1d2/summationdisplay
	u=1GruGsuGurGus
	=2d2
	(d+1)2/parenleftbig
	1+K2
	rs/parenrightbig
	=2d2(dδrs+d+2)
	(d+1)3(279)
	where we made two applications of Eq. ( 23) (i.e.the fact that every SIC-POVM is
	a 2-design). Finally, it is a straightforward consequence of the deﬁ nitions ofTr,TT
	r
	and/bardbler/an}bracketri}ht/an}bracketri}htthat
	/an}bracketle{t/an}bracketle{ter/bardblTs/bardbler/an}bracketri}ht/an}bracketri}ht=/an}bracketle{t/an}bracketle{ter/bardblTT
	s/bardbler/an}bracketri}ht/an}bracketri}ht
	=d+1
	2dd2/summationdisplay
	u,v=1TsuvK2
	ruK2
	rv
	=1
	2d(d+1)
	d2Tsrr+dd2/summationdisplay
	v=1Tsrv+dd2/summationdisplay
	u=1Tsur+d2/summationdisplay
	u,v=1Tsuv
	
	=d
	2(d+1)/parenleftbig
	3K2
	rs+1/parenrightbig
	=d(3dδrs+d+4)
	2(d+1)2(280)35
	and
	/an}bracketle{t/an}bracketle{ter/bardbles/an}bracketri}ht/an}bracketri}ht=d+1
	2dd2/summationdisplay
	u=1K2
	ruK2
	su
	=dδrs+d+2
	2(d+1)(281)
	Using these results in the expressions
	Tr/parenleftbig
	QrQs/parenrightbig
	= Tr/parenleftigg/parenleftbiggd+1
	dTr−2/bardbler/an}bracketri}ht/an}bracketri}ht/an}bracketle{t/an}bracketle{ter/bardbl/parenrightbigg/parenleftbiggd+1
	dTs−2/bardbles/an}bracketri}ht/an}bracketri}ht/an}bracketle{t/an}bracketle{tes/bardbl/parenrightbigg/parenrightigg
	(282)
	and
	Tr/parenleftbig
	QrQT
	s/parenrightbig
	= Tr/parenleftigg/parenleftbiggd+1
	dTr−2/bardbler/an}bracketri}ht/an}bracketri}ht/an}bracketle{t/an}bracketle{ter/bardbl/parenrightbigg/parenleftbiggd+1
	dTT
	s−2/bardbles/an}bracketri}ht/an}bracketri}ht/an}bracketle{t/an}bracketle{tes/bardbl/parenrightbigg/parenrightigg
	(283)
	the ﬁrst two statements follow. The remaining statements are imme diate conse-
	quences of these and the fact that
	Jr=Qr−QT
	r (284)
	¯Rr=Qr+QT
	r (285)
	/square
	Now deﬁne
	/bardblv0/an}bracketri}ht/an}bracketri}ht=1
	dd2/summationdisplay
	r=1/bardblr/an}bracketri}ht/an}bracketri}ht (286)
	where/bardblr/an}bracketri}ht/an}bracketri}htis the basis deﬁned in Eq. ( 117). The following result shows (among
	other things) that the subspaces onto which the Qr(respectively QT
	r,Rr) project
	span the orthogonal complement of /bardblv0/an}bracketri}ht/an}bracketri}ht.
	Theorem 14. For allr
	Qr/bardblv0/an}bracketri}ht/an}bracketri}ht=QT
	r/bardblv0/an}bracketri}ht/an}bracketri}ht=Jr/bardblv0/an}bracketri}ht/an}bracketri}ht=Rr/bardblv0/an}bracketri}ht/an}bracketri}ht= 0 (287)
	Moreover
	d2/summationdisplay
	r=1Qr=d2/summationdisplay
	r=1QT
	r=d2
	d+1/parenleftbig
	I−/bardblv0/an}bracketri}ht/an}bracketri}ht/an}bracketle{t/an}bracketle{tv0/bardbl/parenrightbig
	(288)
	d2/summationdisplay
	r=1Jr= 0 (289)
	d2/summationdisplay
	r=1¯Rr=2d2
	d+1/parenleftbig
	I−/bardblv0/an}bracketri}ht/an}bracketri}ht/an}bracketle{t/an}bracketle{tv0/bardbl/parenrightbig
	(290)
	Proof.Some of this is a straightforward consequence of the fact that Jris the
	adjoint representative of Π r. Since
	d2/summationdisplay
	s=1Πs=dI (291)36
	we must have
	d2/summationdisplay
	s,t=1JrstΠt=d2/summationdisplay
	s=1adΠrΠs= 0 (292)
	In view of the antisymmetry of the Jrstit follows that
	d2/summationdisplay
	r=1Jr= 0 (293)
	and
	Jr/bardblv0/an}bracketri}ht/an}bracketri}ht= 0 (294)
	Using the relations
	Qr=1
	2Jr(Jr+I) (295)
	QT
	r=1
	2Jr(Jr−I) (296)
	¯Rr=J2
	r (297)
	we deduce
	Qr/bardblv0/an}bracketri}ht/an}bracketri}ht=QT
	r/bardblv0/an}bracketri}ht/an}bracketri}ht=¯Rr/bardblv0/an}bracketri}ht/an}bracketri}ht= 0 (298)
	It remains to prove Eqs. ( 288) and (290). It follows from Eq. ( 120) that
	d2/summationdisplay
	r=1Qrst=d+1
	dd2/summationdisplay
	r=1Trst−2d2/summationdisplay
	r=1/an}bracketle{t/an}bracketle{ts/bardbler/an}bracketri}ht/an}bracketri}ht/an}bracketle{t/an}bracketle{ter/bardblt/an}bracketri}ht/an}bracketri}ht
	= (d+1)K2
	st−d+1
	dd2/summationdisplay
	r=1K2
	rsK2
	rt
	=d2δst−1
	d+1(299)
	from which it follows
	d2/summationdisplay
	r=1Qr=d2/summationdisplay
	r=1QT
	r=d2
	d+1/parenleftbig
	I−/bardblv0/an}bracketri}ht/an}bracketri}ht/an}bracketle{t/an}bracketle{tv0/bardbl/parenrightbig
	(300)
	Eq. (290) follows from this and the fact that Rr=Qr+QT
	r.
	/square
	8.Geometrical Considerations
	In this section we show that there are some interesting geometrica l relationships
	between the subspaces onto which the operators Qr,QT
	rand¯Rrproject. The
	original motivation for this work was an observation concerning the subspaces onto
	which the ¯Rrproject. ¯Rris a real matrix, and so it deﬁnes a 2( d−2) subspace
	inRd2, which we will denote Rr. We noticed that for each pair of distinct indices
	randsthe intersection Rr∩Rsis a 1-dimensional line. This led us to speculate
	that a set of hyperplanes parallel to the Rrmight be the edges of an interesting
	polytope. We continue to think that this could be the case. Unfortu nately we have
	not been able to prove it. However, it appears to us that the result s we obtained37
	while trying to prove it have an interest which is independent of the tr uth of the
	motivating speculation.
	We will begin with some terminology. Let Pbe any projector (on either RN
	orCN), letPbe the subspace onto which Pprojects, and let \|ψ/an}bracketri}htbe any non-zero
	vector. Then we deﬁne the angle between \|ψ/an}bracketri}htandPin the usual way, to be
	θ= cos−1/parenleftigg/vextenddouble/vextenddoubleP\|ψ/an}bracketri}ht/vextenddouble/vextenddouble
	/vextenddouble/vextenddouble\|ψ/an}bracketri}ht/vextenddouble/vextenddouble/parenrightigg
	(301)
	(soθis the smallest angle between \|ψ/an}bracketri}htand any of the vectors in P).
	Suppose, now, that P′is another projector, and let P′be the subspace onto
	whichP′projects. We will say that P′is uniformly inclined to Pif every vector in
	P′makes the same angle θwithP. Ifθ= 0 this means that P′⊆P, while ifθ=π
	2
	it means P′⊥P. Suppose, on the other hand, that 0 < θ <π
	2. Let\|u′
	1/an}bracketri}ht,...,\|u′
	n/an}bracketri}ht
	be any orthonormal basis for P′, and deﬁne \|ur/an}bracketri}ht= secθP\|u′
	r/an}bracketri}ht. Then/an}bracketle{tur\|ur/an}bracketri}ht= 1
	for allr. Moreover, if P,P′are complex projectors,
	/an}bracketle{tu′
	r+eiφu′
	s\|P\|u′
	r+eiφu′
	s/an}bracketri}ht= 2cos2θ/parenleftig
	1+Re/parenleftbig
	eiφ/an}bracketle{tur\|us/an}bracketri}ht/parenrightbig/parenrightig
	(302)
	for allφandr/ne}ationslash=s. On the other hand it follows from the assumption that P′is
	uniformly inclined to Pthat
	/an}bracketle{tu′
	r+eiφu′
	s\|P\|u′
	r+eiφu′
	s/an}bracketri}ht= 2cos2θ (303)
	for allφandr/ne}ationslash=s. Consequently
	/an}bracketle{tur\|us/an}bracketri}ht=δrs (304)
	for allr,s. It is easily seen that the same is true if P,P′are real projectors.
	Suppose we now make the further assumption that dim( P′) = dim( P) =n. Then
	\|u1/an}bracketri}ht,...,\|un/an}bracketri}htis an orthonormal basis for P, and we can write
	P=n/summationdisplay
	r=1\|ur/an}bracketri}ht/an}bracketle{tur\| (305)
	P′=n/summationdisplay
	r=1\|u′
	r/an}bracketri}ht/an}bracketle{tu′
	r\| (306)
	Observe that
	/an}bracketle{tu′
	r\|us/an}bracketri}ht=/an}bracketle{tu′
	r\|P\|us/an}bracketri}ht= cosθ/an}bracketle{tur\|us/an}bracketri}ht= cosθδrs (307)
	for allr,s. Consequently
	P′\|ur/an}bracketri}ht= cosθ\|ur/an}bracketri}ht (308)
	for allr. It follows that
	/vextenddouble/vextenddoubleP′\|ψ/an}bracketri}ht/vextenddouble/vextenddouble=/vextenddouble/vextenddouble/vextenddouble/vextenddouble/vextenddoublen/summationdisplay
	r=1cosθ/an}bracketle{tur\|ψ/an}bracketri}ht\|u′
	r/an}bracketri}ht/vextenddouble/vextenddouble/vextenddouble/vextenddouble/vextenddouble= cosθ/vextenddouble/vextenddouble\|ψ/an}bracketri}ht/vextenddouble/vextenddouble (309)
	for all\|ψ/an}bracketri}ht ∈P. SoPis uniformly inclined to P′at the same angle θ.
	It follows from Eqs. ( 305) and (306) that
	PP′P= cos2θP (310)
	P′PP′= cos2θP′(311)
	Eq. (310), or equivalently Eq. ( 311), is not only necessary but also suﬃcient for
	the subspaces to be uniformly inclined. In fact, let P,P′be any two subspaces38
	which have the same dimension n, but which are not assumed at the outset to be
	uniformly inclined, and let P,P′be the corresponding projectors. Suppose
	PP′P= cos2θP (312)
	for someθin the range 0 ≤θ≤π
	2. It is immediate that P=P′ifθ= 0, and
	P⊥P′ifθ=π
	2. Either way, the subspaces are uniformly inclined. Suppose, on
	the other hand, that 0 <θ<π
	2. Let\|u′
	1/an}bracketri}ht,...,\|u′
	n/an}bracketri}htbe any orthonormal basis for P′,
	and deﬁne \|ur/an}bracketri}ht= secθP\|u′
	r/an}bracketri}ht. Eq. (305) then implies
	P= sec2θn/summationdisplay
	r=1P\|u′
	r/an}bracketri}ht/an}bracketle{tu′
	r\|P=n/summationdisplay
	r=1\|ur/an}bracketri}ht/an}bracketle{tur\| (313)
	Given any \|ψ/an}bracketri}ht ∈Pwe have
	\|ψ/an}bracketri}ht=P\|ψ/an}bracketri}ht=n/summationdisplay
	r=1/an}bracketle{tur\|ψ/an}bracketri}ht\|ur/an}bracketri}ht (314)
	Since dim( P) =nit follows that the \|ur/an}bracketri}htare linearly independent. In particular
	\|ur/an}bracketri}ht=P\|ur/an}bracketri}ht=n/summationdisplay
	s=1/an}bracketle{tus\|ur/an}bracketri}ht\|us/an}bracketri}ht (315)
	Since the \|ur/an}bracketri}htare linearly independent this means
	/an}bracketle{tus\|ur/an}bracketri}ht=δrs (316)
	So the\|ur/an}bracketri}htare an orthonormal basis for P. It follows, that if \|ψ′/an}bracketri}htis any vector in
	P′, then
	/vextenddouble/vextenddoubleP\|ψ′/an}bracketri}ht/vextenddouble/vextenddouble=/vextenddouble/vextenddouble/vextenddouble/vextenddouble/vextenddoublen/summationdisplay
	r=1/an}bracketle{tu′
	r\|ψ′/an}bracketri}htP\|u′
	r/an}bracketri}ht/vextenddouble/vextenddouble/vextenddouble/vextenddouble/vextenddouble= cosθ/vextenddouble/vextenddouble/vextenddouble/vextenddouble/vextenddoublen/summationdisplay
	r=1/an}bracketle{tu′
	r\|ψ′/an}bracketri}ht\|ur/an}bracketri}ht/vextenddouble/vextenddouble/vextenddouble/vextenddouble/vextenddouble= cosθ/vextenddouble/vextenddouble\|ψ′/an}bracketri}ht/vextenddouble/vextenddouble(317)
	implying that P′is uniformly inclined to Pat angleθ.
	It will be convenient to summarise all this in the form of a lemma:
	Lemma 15. LetP,P′be any two subspaces, real or complex, having the same
	dimensionn. LetP,P′be the corresponding projectors. Then the following state-
	ments are equivalent:
	(a)P′is uniformly inclined to Pat angleθ.
	(b)Pis uniformly inclined to P′at angleθ.
	(c)
	PP′P= cos2θP (318)
	(d)
	P′PP′= cos2θP′(319)
	Suppose these conditions are satisﬁed for some θin the range 0< θ <π
	2, and
	let\|u1/an}bracketri}ht,...\|un/an}bracketri}htbe any orthonormal basis for P. Then there exists an orthonormal
	basis\|u′
	1/an}bracketri}ht,...,\|u′
	n/an}bracketri}htforP′such that
	P′\|ur/an}bracketri}ht= cosθ\|u′
	r/an}bracketri}ht (320)
	P\|u′
	r/an}bracketri}ht= cosθ\|ur/an}bracketri}ht (321)
	We are now in a position to state the main results of this section. Let Qr
	(respectively ¯Qr) be the subspace onto which Qr(respectively QT
	r) projects. We
	then have39
	Theorem 16. For each pair of distinct indices r,sthe subspaces Qr,¯Qrhave the
	orthogonal decomposition
	Qr=Q0
	rs⊕Qrs (322)
	¯Qr=¯Q0
	rs⊕¯Qrs (323)
	where
	Q0
	rs⊥Qrs dim(Q0
	rs) = 1 dim( Qrs) =d−2
	¯Q0
	rs⊥¯Qrs dim(¯Q0
	rs) = 1 dim( ¯Qrs) =d−2
	We have
	(a)Relation of the subspaces QrandQs:
	(1)Q0
	rs⊥QsrandQrs⊥Q0
	sr.
	(2)Q0
	rsandQ0
	srare inclined at angle cos−1/parenleftbig1
	d+1/parenrightbig
	.
	(3)QrsandQsrare uniformly inclined at angle cos−1/parenleftig
	1√d+1/parenrightig
	.
	(b)Relation of the subspaces ¯Qrand¯Qs:
	(1)¯Q0
	rs⊥¯Qsrand¯Qrs⊥¯Q0
	sr.
	(2)¯Q0
	rsand¯Q0
	srare inclined at angle cos−1/parenleftbig1
	d+1/parenrightbig
	.
	(3)¯Qrsand¯Qsrare uniformly inclined at angle cos−1/parenleftig
	1√d+1/parenrightig
	.
	(c)Relation of the subspaces Qrand¯Qs:
	(1)Q0
	rs⊥¯Qsr,Qrs⊥¯Q0
	srandQrs⊥¯Qsr.
	(2)Q0
	rsand¯Q0
	srare inclined at angle cos−1/parenleftbigd
	d+1/parenrightbig
	.
	The relations between these subspaces are, perhaps, easier to a ssimilate if pre-
	sented pictorially. In the following diagrams the line joining each pair of subspaces
	is labelled with the cosine of the angle between them. In particular a 0 o n the line
	joining two subspaces indicates that they are orthogonal.
	Q0
	rs Qrs
	Q0
	sr Qsr0
	01
	d+11√d+1

	0❅
	❅
	❅
	❅
	❅
	❅❅0¯Q0
	rs¯Qrs
	¯Q0
	sr¯Qsr0
	01
	d+11√d+1

	0❅
	❅
	❅
	❅
	❅
	❅❅0
	Q0
	rs Qrs
	¯Q0
	sr¯Qsr0
	0d
	d+10

	0❅
	❅
	❅
	❅
	❅
	❅❅040
	Wewillprovethistheorembelow. Beforedoingso,however,letusst atetheother
	mainresult ofthis section. Let Rrbe the subspace ontowhichthe ¯Rrproject. Since
	¯Rris a real matrix we regard Rras a subspace of Rd2. We have
	Theorem 17. For each pair of distinct indices r,sthe subspace Rrhas the decom-
	position
	Rr=R0
	rs⊕R1
	rs⊕Rrs (324)
	whereR0
	rs,R1
	rs,Rrsare pairwise orthogonal and
	dim(R0
	rs) = 1 dim( R1
	rs) = 1 dim( Rrs) = 2d−4 (325)
	We have
	(1)R0
	rs=R0
	sr.
	(2)R1
	rs⊥RsrandRrs⊥R1
	sr.
	(3)R1
	rsandR1
	srare inclined at angle cos−1/parenleftbigd−1
	d+1/parenrightbig
	.
	(4)RrsandRsrare uniformly inclined at angle cos−1/parenleftig/radicalig
	1
	d+1/parenrightig
	In particular, the subspaces ¯Rrand¯Rsintersect in a line.
	In diagrammatic form the relations between these subspaces are
	R0
	rs=R0
	srR1
	rs Rrs
	R1
	sr Rsr0
	0d−1
	d+1/radicalig
	1
	d+1

	0❅
	❅
	❅
	❅
	❅
	❅❅0✟✟✟✟✟0
	❍❍❍❍❍00
	0
	where, as before, each line is labelled with the cosine of the angle betw een the two
	subspaces it connects.
	Proof of Theorem 16.Let/bardbl1/an}bracketri}ht/an}bracketri}ht,...,/bardbld2/an}bracketri}ht/an}bracketri}htbethestandardbasisfor Hd2, asdeﬁned
	by Eq. (117). For each pair of distinct indices r,sdeﬁne
	/bardblfrs/an}bracketri}ht/an}bracketri}ht=i√
	d+1Qr/bardbls/an}bracketri}ht/an}bracketri}ht (326)
	/bardblf∗
	rs/an}bracketri}ht/an}bracketri}ht=−i√
	d+1QT
	r/bardbls/an}bracketri}ht/an}bracketri}ht (327)
	The signiﬁcance of these vectors is that /bardblfrs/an}bracketri}ht/an}bracketri}ht/an}bracketle{t/an}bracketle{tfrs/bardbl(respectively /bardblf∗
	rs/an}bracketri}ht/an}bracketri}ht/an}bracketle{t/an}bracketle{tf∗
	rs/bardbl) will
	turn out to be the projectoronto the 1-dimensionalsubspace Q0
	rs(respectively ¯Q0
	rs).41
	Note that the fact that Qris Hermitian means
	QT
	r=Q∗
	r (328)
	(whereQ∗
	ris the matrix whose elements are the complex conjugates of the cor re-
	sponding elements of Qr). Consequently
	/an}bracketle{t/an}bracketle{tt/bardblf∗
	rs/an}bracketri}ht/an}bracketri}ht=/parenleftig
	/an}bracketle{t/an}bracketle{tt/bardblfrs/an}bracketri}ht/an}bracketri}ht/parenrightig∗
	(329)
	for allr,s,t.
	It is easily seen that /bardblfrs/an}bracketri}ht/an}bracketri}ht,/bardblf∗
	rs/an}bracketri}ht/an}bracketri}htare normalized. In fact, it follows from
	Eqs. (116) and (120) that
	/an}bracketle{t/an}bracketle{tfrs/bardblfrs/an}bracketri}ht/an}bracketri}ht= (d+1)/an}bracketle{t/an}bracketle{ts/bardblQr/bardbls/an}bracketri}ht/an}bracketri}ht
	=(d+1)2
	dTrss−2(d+1)/an}bracketle{t/an}bracketle{ts/bardbler/an}bracketri}ht/an}bracketri}ht/an}bracketle{t/an}bracketle{ter/bardbls/an}bracketri}ht/an}bracketri}ht
	=(d+1)2
	d/parenleftbig
	K2
	rs−K4
	rs/parenrightbig
	= 1 (330)
	for allr/ne}ationslash=s. In view of Eq. ( 329) we then have
	/an}bracketle{t/an}bracketle{tf∗
	rs/bardblf∗
	rs/an}bracketri}ht/an}bracketri}ht=/parenleftig
	/an}bracketle{t/an}bracketle{tfrs/bardblfrs/an}bracketri}ht/an}bracketri}ht/parenrightig∗
	= 1 (331)
	for allr/ne}ationslash=s. The fact that QrQT
	r= 0 means we also have
	/an}bracketle{t/an}bracketle{tfrs/bardblf∗
	rs/an}bracketri}ht/an}bracketri}ht= 0 (332)
	for allr/ne}ationslash=s.
	Note that, although we required that r/ne}ationslash=sin the deﬁnitions of /bardblfrs/an}bracketri}ht/an}bracketri}ht,/bardblf∗
	rs/an}bracketri}ht/an}bracketri}ht,
	the deﬁnitions continue to make sense when r=s. However, the vectors are then
	zero (as can be seen by setting r=sin Eq. (121)).
	The vectors /bardblfrs/an}bracketri}ht/an}bracketri}ht,/bardblf∗
	rs/an}bracketri}ht/an}bracketri}htsatisfy a number of identities, which it will be conve-
	nient to collect in a lemma:
	Lemma 18. For allr/ne}ationslash=s
	/bardblfrs/an}bracketri}ht/an}bracketri}ht=−/bardblf∗
	sr/an}bracketri}ht/an}bracketri}ht+i/radicalbigg
	2
	d/parenleftig
	/bardbles/an}bracketri}ht/an}bracketri}ht−/bardbler/an}bracketri}ht/an}bracketri}ht/parenrightig
	(333)
	/bardblf∗
	rs/an}bracketri}ht/an}bracketri}ht=−/bardblfsr/an}bracketri}ht/an}bracketri}ht−i/radicalbigg
	2
	d/parenleftig
	/bardbles/an}bracketri}ht/an}bracketri}ht−/bardbler/an}bracketri}ht/an}bracketri}ht/parenrightig
	(334)
	(where/bardbler/an}bracketri}ht/an}bracketri}htis the vector deﬁned by Eq. ( 116))
	Qr/bardblfrs/an}bracketri}ht/an}bracketri}ht=/bardblfrs/an}bracketri}ht/an}bracketri}ht QT
	r/bardblf∗
	rs/an}bracketri}ht/an}bracketri}ht=/bardblf∗
	rs/an}bracketri}ht/an}bracketri}ht (335)
	QT
	r/bardblfrs/an}bracketri}ht/an}bracketri}ht= 0 Qr/bardblf∗
	rs/an}bracketri}ht/an}bracketri}ht= 0 (336)
	Qs/bardblfrs/an}bracketri}ht/an}bracketri}ht=−1
	d+1/bardblfsr/an}bracketri}ht/an}bracketri}ht QT
	s/bardblf∗
	rs/an}bracketri}ht/an}bracketri}ht=−1
	d+1/bardblf∗
	sr/an}bracketri}ht/an}bracketri}ht(337)
	QT
	s/bardblfrs/an}bracketri}ht/an}bracketri}ht=−d
	d+1/bardblf∗
	sr/an}bracketri}ht/an}bracketri}ht Qs/bardblf∗
	rs/an}bracketri}ht/an}bracketri}ht=−d
	d+1/bardblfsr/an}bracketri}ht/an}bracketri}ht(338)
	/an}bracketle{t/an}bracketle{tfrs/bardblfsr/an}bracketri}ht/an}bracketri}ht=/an}bracketle{t/an}bracketle{tf∗
	rs/bardblf∗
	sr/an}bracketri}ht/an}bracketri}ht=−1
	d+1(339)42
	/an}bracketle{t/an}bracketle{tfrs/bardblf∗
	sr/an}bracketri}ht/an}bracketri}ht=/an}bracketle{t/an}bracketle{tf∗
	rs/bardblfsr/an}bracketri}ht/an}bracketri}ht=−d
	d+1(340)
	Proof.It follows from Eqs. ( 116) and (120) that
	/an}bracketle{t/an}bracketle{tt/bardblfrs/an}bracketri}ht/an}bracketri}ht+/an}bracketle{t/an}bracketle{tt/bardblf∗
	sr/an}bracketri}ht/an}bracketri}ht=i√
	d+1/parenleftbig
	Qrts−Qsrt/parenrightbig
	=i√
	d+1/parenleftbiggd+1
	d/parenleftbig
	Trts−Tsrt/parenrightbig
	−2/parenleftbig
	/an}bracketle{t/an}bracketle{tt/bardbler/an}bracketri}ht/an}bracketri}ht/an}bracketle{t/an}bracketle{ter/bardbls/an}bracketri}ht/an}bracketri}ht−/an}bracketle{t/an}bracketle{tr/bardbles/an}bracketri}ht/an}bracketri}ht/an}bracketle{t/an}bracketle{tes/bardblt/an}bracketri}ht/an}bracketri}ht/parenrightbigg
	=i/radicalbigg
	2
	d/parenleftbig
	/an}bracketle{t/an}bracketle{tt/bardbles/an}bracketri}ht/an}bracketri}ht−/an}bracketle{t/an}bracketle{tt/bardbler/an}bracketri}ht/an}bracketri}ht/parenrightbig
	(341)
	where we used the fact that Trts=Tsrtin the third step, and the fact that /an}bracketle{t/an}bracketle{tt/bardbles/an}bracketri}ht/an}bracketri}htis
	real in the last. This establishes Eq. ( 333). Eq. (334) is obtained by taking complex
	conjugates on both sides, and using the fact that the vectors /bardbles/an}bracketri}ht/an}bracketri}htare real.
	Eqs. (335) and (336) are immediate consequences of the deﬁnitions, and the fact
	thatQrQT
	r= 0. Turning to the proof of Eqs. ( 337) and (338), it follows from
	Eqs. (119) and (120) that
	Qs/bardbles/an}bracketri}ht/an}bracketri}ht= 0 (342)
	Using this and the fact that Qs/bardblf∗
	sr/an}bracketri}ht/an}bracketri}ht= 0 in Eq. ( 333) we ﬁnd
	Qs/bardblfrs/an}bracketri}ht/an}bracketri}ht=−i/radicalbigg
	2
	dQs/bardbler/an}bracketri}ht/an}bracketri}ht (343)
	Since
	/bardbler/an}bracketri}ht/an}bracketri}ht=/radicaligg
	d
	2(d+1)/parenleftig
	/bardblr/an}bracketri}ht/an}bracketri}ht+/bardblv0/an}bracketri}ht/an}bracketri}ht/parenrightig
	(344)
	and taking account of the fact that Qs/bardblv0/an}bracketri}ht/an}bracketri}ht= 0 (see Eq. ( 287)) we deduce
	Qs/bardblfrs/an}bracketri}ht/an}bracketri}ht=−i/radicalbigg
	1
	d+1Qs/bardblr/an}bracketri}ht/an}bracketri}ht=−1
	d+1/bardblfsr/an}bracketri}ht/an}bracketri}ht (345)
	Taking complex conjugates on both sides of this equation we deduce the second
	identity in Eq. ( 337).
	In the same way, acting on both sides of Eq. ( 333) withQT
	swe ﬁnd
	QT
	s/bardblfrs/an}bracketri}ht/an}bracketri}ht=−/bardblf∗
	sr/an}bracketri}ht/an}bracketri}ht−i/radicalbigg
	2
	dQT
	s/bardbler/an}bracketri}ht/an}bracketri}ht
	=−/bardblf∗
	sr/an}bracketri}ht/an}bracketri}ht−i/radicalbigg
	1
	d+1QT
	s/bardblr/an}bracketri}ht/an}bracketri}ht
	=−d
	d+1/bardblf∗
	sr/an}bracketri}ht/an}bracketri}ht (346)
	Taking complex conjugates on both sides of this equation we deduce the second
	identity in Eq. ( 338).
	Turning to the last group of identities we have
	/an}bracketle{t/an}bracketle{tfrs/bardblfsr/an}bracketri}ht/an}bracketri}ht=/an}bracketle{t/an}bracketle{tfrs/bardblQr/bardblfsr/an}bracketri}ht/an}bracketri}ht=−1
	d+1/an}bracketle{t/an}bracketle{tfrs/bardblfrs/an}bracketri}ht/an}bracketri}ht=−1
	d+1(347)
	and
	/an}bracketle{t/an}bracketle{tfrs/bardblf∗
	sr/an}bracketri}ht/an}bracketri}ht=/an}bracketle{t/an}bracketle{tfrs/bardblQr/bardblf∗
	sr/an}bracketri}ht/an}bracketri}ht=−d
	d+1/an}bracketle{t/an}bracketle{tfrs/bardblfrs/an}bracketri}ht/an}bracketri}ht=−d
	d+1(348)43
	The other two identities are obtained by taking complex conjugates on both sides
	of the two just derived. /square
	This lemma provides a substantial part of what we need to prove the theorem.
	The remaining part is provided by
	Lemma 19. For allr/ne}ationslash=s
	QrQsQr=1
	d+1Qr−d
	(d+1)2/bardblfrs/an}bracketri}ht/an}bracketri}ht/an}bracketle{t/an}bracketle{tfrs/bardbl (349)
	QrQT
	sQr=d2
	(d+1)2/bardblfrs/an}bracketri}ht/an}bracketri}ht/an}bracketle{t/an}bracketle{tfrs/bardbl (350)
	Proof.It follows from Eq. ( 120) that
	QrQsQr=d+1
	dQrTsQr−2Qr/bardbles/an}bracketri}ht/an}bracketri}ht/an}bracketle{t/an}bracketle{tes/bardblQr (351)
	QrQT
	sQr=d+1
	dQrTT
	sQr−2Qr/bardbles/an}bracketri}ht/an}bracketri}ht/an}bracketle{t/an}bracketle{tes/bardblQr (352)
	In view of Eqs. ( 344), (287) and the deﬁnition of /bardblfrs/an}bracketri}ht/an}bracketri}htwe have
	Qr/bardbles/an}bracketri}ht/an}bracketri}ht=/radicaligg
	d
	2(d+1)Qr/bardbls/an}bracketri}ht/an}bracketri}ht=−i√
	d√
	2(d+1)/bardblfrs/an}bracketri}ht/an}bracketri}ht (353)
	Substituting this expression into Eqs. ( 351) and (352) we obtain
	QrQsQr=d+1
	dQrTsQr−d
	(d+1)2/bardblfrs/an}bracketri}ht/an}bracketri}ht/an}bracketle{t/an}bracketle{tfrs/bardbl (354)
	QrQT
	sQr=d+1
	dQrTT
	sQr−d
	(d+1)2/bardblfrs/an}bracketri}ht/an}bracketri}ht/an}bracketle{t/an}bracketle{tfrs/bardbl (355)
	The problem therefore reduces to showing
	QrTsQr=d
	(d+1)2Qr (356)
	QrTT
	sQr=d2
	(d+1)2/bardblfrs/an}bracketri}ht/an}bracketri}ht/an}bracketle{t/an}bracketle{tfrs/bardbl (357)
	Using Eq. ( 120) we ﬁnd
	/an}bracketle{t/an}bracketle{ta/bardblQrTsQr/bardblb/an}bracketri}ht/an}bracketri}ht=(d+1)2
	d2/an}bracketle{t/an}bracketle{ta/bardblTrTsTr/bardblb/an}bracketri}ht/an}bracketri}ht
	−1
	2/parenleftbigg2(d+1)
	d/parenrightbigg3
	2/parenleftig
	K2
	ra/an}bracketle{t/an}bracketle{ter/bardblTsTr/bardblb/an}bracketri}ht/an}bracketri}ht+K2
	rb/an}bracketle{t/an}bracketle{ta/bardblTrTs/bardbler/an}bracketri}ht/an}bracketri}ht/parenrightig
	+2(d+1)
	dK2
	raK2
	rb/an}bracketle{t/an}bracketle{ter/bardblTs/bardbler/an}bracketri}ht/an}bracketri}ht (358)
	/an}bracketle{t/an}bracketle{ta/bardblQrTT
	sQr/bardblb/an}bracketri}ht/an}bracketri}ht=(d+1)2
	d2/an}bracketle{t/an}bracketle{ta/bardblTrTT
	sTr/bardblb/an}bracketri}ht/an}bracketri}ht
	−1
	2/parenleftbigg2(d+1)
	d/parenrightbigg3
	2/parenleftig
	K2
	ra/an}bracketle{t/an}bracketle{ter/bardblTT
	sTr/bardblb/an}bracketri}ht/an}bracketri}ht+K2
	rb/an}bracketle{t/an}bracketle{ta/bardblTrTT
	s/bardbler/an}bracketri}ht/an}bracketri}ht/parenrightig
	+2(d+1)
	dK2
	raK2
	rb/an}bracketle{t/an}bracketle{ter/bardblTT
	s/bardbler/an}bracketri}ht/an}bracketri}ht (359)44
	Using the deﬁnitions of Tr,/bardbler/an}bracketri}ht/an}bracketri}htand Eq. ( 23) (the 2-design property) we ﬁnd, after
	some algebra,
	/an}bracketle{t/an}bracketle{ta/bardblTrTsTr/bardblb/an}bracketri}ht/an}bracketri}ht=d2
	(d+1)2/parenleftig
	K2
	raTrsb+K2
	rbTras+K2
	rsTrab+K2
	raK2
	rb/parenrightig
	(360)
	/an}bracketle{t/an}bracketle{ter/bardblTsTr/bardblb/an}bracketri}ht/an}bracketri}ht= 2/parenleftbiggd
	2(d+1)/parenrightbigg3
	2/parenleftig
	2K2
	rsK2
	rb+K2
	rb+Trsb/parenrightig
	(361)
	/an}bracketle{t/an}bracketle{ta/bardblTrTs/bardbler/an}bracketri}ht/an}bracketri}ht= 2/parenleftbiggd
	2(d+1)/parenrightbigg3
	2/parenleftig
	2K2
	rsK2
	ra+K2
	ra+Tras/parenrightig
	(362)
	/an}bracketle{t/an}bracketle{ter/bardblTs/bardbler/an}bracketri}ht/an}bracketri}ht=d
	2(d+1)/parenleftbig
	3K2
	rs+1/parenrightbig
	(363)
	and
	/an}bracketle{t/an}bracketle{ta/bardblTrTT
	sTr/bardblb/an}bracketri}ht/an}bracketri}ht=d2
	(d+1)2/parenleftig
	GraGasGsbGbr
	+K2
	raTrsb+K2
	rbTras+K2
	raK2
	rb/parenrightig
	=d2
	(d+1)2/parenleftig
	(d+1)TrasTrsb
	+K2
	raTrsb+K2
	rbTras+K2
	raK2
	rb/parenrightig
	(364)
	/an}bracketle{t/an}bracketle{ter/bardblTT
	sTr/bardblb/an}bracketri}ht/an}bracketri}ht= 2/parenleftbiggd
	2(d+1)/parenrightbigg3
	2/parenleftig
	K2
	rsK2
	rb+K2
	rb+2Trsb/parenrightig
	(365)
	/an}bracketle{t/an}bracketle{ta/bardblTrTT
	s/bardbler/an}bracketri}ht/an}bracketri}ht= 2/parenleftbiggd
	2(d+1)/parenrightbigg3
	2/parenleftig
	K2
	rsK2
	ra+K2
	ra+2Tras/parenrightig
	(366)
	/an}bracketle{t/an}bracketle{ter/bardblTT
	s/bardbler/an}bracketri}ht/an}bracketri}ht=d
	2(d+1)/parenleftbig
	3K2
	rs+1/parenrightbig
	(367)
	where in deriving Eq. ( 364) we used the fact that GraGasGsbGbr= (d+1)TrasTrsb
	(in view of the fact that r/ne}ationslash=s). Substituting these expressions into Eqs. ( 358)
	and (359) we deduce Eqs. ( 356) and (357). /square
	Now deﬁne the rank d−1 projectors
	Qrs=Qr−/bardblfrs/an}bracketri}ht/an}bracketri}ht/an}bracketle{t/an}bracketle{tfrs/bardbl (368)
	QT
	rs=QT
	r−/bardblf∗
	rs/an}bracketri}ht/an}bracketri}ht/an}bracketle{t/an}bracketle{tf∗
	rs/bardbl (369)
	andletQ0
	rs,Qrs,¯Q0
	rsand¯Qrsbe, respectively, the subspacesontowhich /bardblfrs/an}bracketri}ht/an}bracketri}ht/an}bracketle{t/an}bracketle{tfrs/bardbl,
	Qrs,/bardblf∗
	rs/an}bracketri}ht/an}bracketri}ht/an}bracketle{t/an}bracketle{tf∗
	rs/bardblandQ∗
	rsproject. It is immediate that we have the orthogonal
	decompositions
	Qr=Q0
	rs⊕Qrs (370)
	¯Qr=¯Q0
	rs⊕¯Qrs (371)
	Using Lemma 18we ﬁnd
	Qsr/bardblfrs/an}bracketri}ht/an}bracketri}ht=Qrs/bardblfsr/an}bracketri}ht/an}bracketri}ht= 0 (372)45
	implying that Q0
	rs⊥QsrandQrs⊥Q0
	sr, and
	/vextendsingle/vextendsingle/an}bracketle{t/an}bracketle{tfrs/bardblfsr/an}bracketri}ht/an}bracketri}ht/vextendsingle/vextendsingle=1
	d+1(373)
	implying that Q0
	rsandQ0
	srare inclined at angle cos−1/parenleftbig1
	d+1/parenrightbig
	. Using Lemma 18
	together with Lemma 19we ﬁnd
	QrsQsrQrs=QrsQsQrs
	=QrQsQr−/bardblfrs/an}bracketri}ht/an}bracketri}ht/an}bracketle{t/an}bracketle{tfrs/bardblQsQr−QrQs/bardblfrs/an}bracketri}ht/an}bracketri}ht/an}bracketle{t/an}bracketle{tfrs/bardbl
	+/an}bracketle{t/an}bracketle{tfrs/bardblQs/bardblfrs/an}bracketri}ht/an}bracketri}ht/bardblfrs/an}bracketri}ht/an}bracketri}ht/an}bracketle{t/an}bracketle{tfrs/bardbl
	=1
	d+1Qr−1
	d+1/bardblfrs/an}bracketri}ht/an}bracketri}ht/an}bracketle{t/an}bracketle{tfrs/bardbl
	=1
	d+1Qrs (374)
	which in view of Lemma 15implies that QrsandQsrare uniformly inclined at angle
	cos−1/parenleftbig1√d+1/parenrightbig
	. This proves part (a) of the theorem. Parts (b) and (c) are prov ed
	similarly.
	Proof of Theorem 17.Deﬁne
	/bardblgrs/an}bracketri}ht/an}bracketri}ht=1√
	2/parenleftbig
	/bardblf∗
	rs/an}bracketri}ht/an}bracketri}ht+/bardblfrs/an}bracketri}ht/an}bracketri}ht/parenrightbig
	(375)
	/bardbl¯grs/an}bracketri}ht/an}bracketri}ht=i√
	2/parenleftbig
	/bardblf∗
	rs/an}bracketri}ht/an}bracketri}ht−/bardblfrs/an}bracketri}ht/an}bracketri}ht/parenrightbig
	(376)
	By construction the components of /bardblgrs/an}bracketri}ht/an}bracketri}ht,/bardbl¯grs/an}bracketri}ht/an}bracketri}htin the standard basis are real, so
	we can regard them as ∈Rd2. They are orthonormal:
	/an}bracketle{t/an}bracketle{tgrs/bardblgrs/an}bracketri}ht/an}bracketri}ht=/an}bracketle{t/an}bracketle{t¯grs/bardbl¯grs/an}bracketri}ht/an}bracketri}ht= 1 and /an}bracketle{t/an}bracketle{tgrs/bardbl¯grs/an}bracketri}ht/an}bracketri}ht= 0 (377)
	It is also readily veriﬁed, using Lemma 18, that
	¯Rr/bardblgrs/an}bracketri}ht/an}bracketri}ht=/bardblgrs/an}bracketri}ht/an}bracketri}ht (378)
	¯Rr/bardbl¯grs/an}bracketri}ht/an}bracketri}ht=/bardbl¯grs/an}bracketri}ht/an}bracketri}ht (379)
	So
	Rrs=¯Rr−/bardblgrs/an}bracketri}ht/an}bracketri}ht/an}bracketle{t/an}bracketle{tgrs/bardbl−/bardbl¯grs/an}bracketri}ht/an}bracketri}ht/an}bracketle{t/an}bracketle{t¯grs/bardbl (380)
	is a rank 2 d−4 projector. If we deﬁne R0
	rs,R1
	rsandRrsto be, respectively,
	the subspaces onto which /bardblgrs/an}bracketri}ht/an}bracketri}ht/an}bracketle{t/an}bracketle{tgrs/bardbl,/bardbl¯grs/an}bracketri}ht/an}bracketri}ht/an}bracketle{t/an}bracketle{t¯grs/bardblandRrsproject we have the
	orthogonal decomposition
	Rr=R0
	rs⊕R1
	rs⊕Rrs (381)
	It follows from Eqs. ( 333) and (334) that
	/bardblgrs/an}bracketri}ht/an}bracketri}ht=−/bardblgsr/an}bracketri}ht/an}bracketri}ht (382)
	implying that R0
	rs=R0
	srfor allr/ne}ationslash=s. It is also easily veriﬁed, using Lemma 18,
	that/vextendsingle/vextendsingle/an}bracketle{t/an}bracketle{t¯grs/bardbl¯gsr/an}bracketri}ht/an}bracketri}ht/vextendsingle/vextendsingle=d−1
	d+1(383)
	from which it follows that R1
	rsandR1
	srare inclined at angle cos−1/parenleftbigd−1
	d+1/parenrightbig
	. We next
	observe that
	Rrs=Qrs+QT
	rs (384)46
	Using Lemma 18once again we deduce
	Rrs/bardbl¯gsr/an}bracketri}ht/an}bracketri}ht=Rsr/bardbl¯grs/an}bracketri}ht/an}bracketri}ht= 0 (385)
	from which it follows that R1
	rs⊥RsrandRrs⊥R1
	sr. Finally, we know from
	Theorem 16thatQT
	rsQsr=QrsQT
	sr= 0. Consequently
	RrsRsrRrs=QrsQsrQrs+QT
	rsQT
	srQT
	rs
	=d
	d+1Qrs+d
	d+1QT
	rs
	=1
	d+1Rrs (386)
	In view of Lemma 15it follows that RrsandRsrare uniformly inclined at angle
	cos−1/parenleftbig1√d+1/parenrightbig
	.
	Further Identities. We conclude this section with another set of identities in-
	volving the vectors /bardblfrs/an}bracketri}ht/an}bracketri}ht,/bardblf∗
	rs/an}bracketri}ht/an}bracketri}ht,/bardblgrs/an}bracketri}ht/an}bracketri}htand/bardbl¯grs/an}bracketri}ht/an}bracketri}ht.
	Deﬁne
	/bardbl¯er/an}bracketri}ht/an}bracketri}ht=/radicalbigg
	2d
	d−1/bardbler/an}bracketri}ht/an}bracketri}ht−/radicalbigg
	d+1
	d−1/bardblv0/an}bracketri}ht/an}bracketri}ht (387)
	where/bardblv0/an}bracketri}ht/an}bracketri}htis the vector deﬁned by Eq. ( 286). It is readily veriﬁed that
	/an}bracketle{t/an}bracketle{t¯er/bardbl¯er/an}bracketri}ht/an}bracketri}ht= 0 and /an}bracketle{t/an}bracketle{t¯er/bardblv0/an}bracketri}ht/an}bracketri}ht= 0 (388)
	So/bardbl¯er/an}bracketri}ht/an}bracketri}ht,/bardblv0/an}bracketri}ht/an}bracketri}htis an orthonormal basis for the 2-dimensional subspace spanned b y
	/bardbler/an}bracketri}ht/an}bracketri}ht,/bardblv0/an}bracketri}ht/an}bracketri}ht. Note that
	Qr/bardbl¯er/an}bracketri}ht/an}bracketri}ht=QT
	r/bardbl¯er/an}bracketri}ht/an}bracketri}ht=¯Rr/bardbl¯er/an}bracketri}ht/an}bracketri}ht= 0 (389)
	We then have
	Theorem 20. For allr
	1
	d+1d2/summationdisplay
	s=1
	(s/negationslash=r)/bardblfrs/an}bracketri}ht/an}bracketri}ht/an}bracketle{t/an}bracketle{tfrs/bardbl=Qr (390)
	1
	d+1d2/summationdisplay
	s=1
	(s/negationslash=r)/bardblf∗
	rs/an}bracketri}ht/an}bracketri}ht/an}bracketle{t/an}bracketle{tf∗
	rs/bardbl=QT
	r (391)
	2
	d+1d2/summationdisplay
	s=1
	(s/negationslash=r)/bardblgrs/an}bracketri}ht/an}bracketri}ht/an}bracketle{t/an}bracketle{tgrs/bardbl=¯Rr (392)
	2
	d+1d2/summationdisplay
	s=1
	(s/negationslash=r)/bardbl¯grs/an}bracketri}ht/an}bracketri}ht/an}bracketle{t/an}bracketle{t¯grs/bardbl=¯Rr (393)
	and
	1
	d−1d2/summationdisplay
	s=1
	(s/negationslash=r)/bardblfsr/an}bracketri}ht/an}bracketri}ht/an}bracketle{t/an}bracketle{tfsr/bardbl=QT
	r+/bardbl¯er/an}bracketri}ht/an}bracketri}ht/an}bracketle{t/an}bracketle{t¯er/bardbl+1
	d2−1/parenleftig
	I−/bardblv0/an}bracketri}ht/an}bracketri}ht/an}bracketle{t/an}bracketle{tv0/bardbl/parenrightig
	(394)47
	1
	d−1d2/summationdisplay
	s=1
	(s/negationslash=r)/bardblf∗
	sr/an}bracketri}ht/an}bracketri}ht/an}bracketle{t/an}bracketle{tf∗
	sr/bardbl=Qr+/bardbl¯er/an}bracketri}ht/an}bracketri}ht/an}bracketle{t/an}bracketle{t¯er/bardbl+1
	d2−1/parenleftig
	I−/bardblv0/an}bracketri}ht/an}bracketri}ht/an}bracketle{t/an}bracketle{tv0/bardbl/parenrightig
	(395)
	2
	d+1d2/summationdisplay
	s=1
	(s/negationslash=r)/bardblgsr/an}bracketri}ht/an}bracketri}ht/an}bracketle{t/an}bracketle{tgsr/bardbl=¯Rr (396)
	2
	d−3d2/summationdisplay
	s=1
	(s/negationslash=r)/bardbl¯gsr/an}bracketri}ht/an}bracketri}ht/an}bracketle{t/an}bracketle{t¯gsr/bardbl=¯Rr+4(d−1)
	d−3/bardbl¯er/an}bracketri}ht/an}bracketri}ht/an}bracketle{t/an}bracketle{t¯er/bardbl+4
	(d+1)(d−3)/parenleftig
	I−/bardblv0/an}bracketri}ht/an}bracketri}ht/an}bracketle{t/an}bracketle{tv0/bardbl/parenrightig
	(397)
	Proof.It follows from the deﬁnition of /bardblfrs/an}bracketri}ht/an}bracketri}htthat
	1
	d+1d2/summationdisplay
	s=1
	(s/negationslash=r)/bardblfrs/an}bracketri}ht/an}bracketri}ht/an}bracketle{t/an}bracketle{tfrs/bardbl=d2/summationdisplay
	s=1
	(s/negationslash=r)Qr/bardbls/an}bracketri}ht/an}bracketri}ht/an}bracketle{t/an}bracketle{ts/bardblQr
	=Qr
	d2/summationdisplay
	s=1/bardbls/an}bracketri}ht/an}bracketri}ht/an}bracketle{t/an}bracketle{ts/bardbl
	Qr
	=Qr (398)
	where in the second step we used the fact that Qr/bardblr/an}bracketri}ht/an}bracketri}ht= 0 (as can be seen by setting
	r=sin Eq. (121)). Eq. (391) is obtained by taking the complex conjugate on both
	sides.
	We also have
	1
	d+1d2/summationdisplay
	s=1
	(s/negationslash=r)/bardblfrs/an}bracketri}ht/an}bracketri}ht/an}bracketle{t/an}bracketle{tf∗
	rs/bardbl=−d2/summationdisplay
	s=1
	(s/negationslash=r)Qr/bardbls/an}bracketri}ht/an}bracketri}ht/an}bracketle{t/an}bracketle{ts/bardblQT
	r
	=−Qr
	d2/summationdisplay
	s=1/bardbls/an}bracketri}ht/an}bracketri}ht/an}bracketle{t/an}bracketle{ts/bardbl
	QT
	r
	=−QrQT
	r
	= 0 (399)
	Taking the complex conjugate on both sides we ﬁnd
	1
	d+1d2/summationdisplay
	s=1
	(s/negationslash=r)/bardblf∗
	rs/an}bracketri}ht/an}bracketri}ht/an}bracketle{t/an}bracketle{tfrs/bardbl= 0 (400)
	Consequently
	2
	d+1d2/summationdisplay
	s=1
	(s/negationslash=r)/bardblgrs/an}bracketri}ht/an}bracketri}ht/an}bracketle{t/an}bracketle{tgrs/bardbl=1
	d+1d2/summationdisplay
	s=1
	(s/negationslash=r)/parenleftig
	/bardblfrs/an}bracketri}ht/an}bracketri}ht/an}bracketle{t/an}bracketle{tfrs/bardbl+/bardblf∗
	rs/an}bracketri}ht/an}bracketri}ht/an}bracketle{t/an}bracketle{tf∗
	rs/bardbl
	+/bardblfrs/an}bracketri}ht/an}bracketri}ht/an}bracketle{t/an}bracketle{tf∗
	rs/bardbl+/bardblf∗
	rs/an}bracketri}ht/an}bracketri}ht/an}bracketle{t/an}bracketle{tfrs/bardbl/parenrightig
	=¯Rr (401)48
	Eq. (393) is proved similarly.
	To prove the second group of identities we have to work a little harde r. Using
	Eqs. (116) and (120) we ﬁnd
	1
	d−1d2/summationdisplay
	s=1
	(s/negationslash=r)/an}bracketle{t/an}bracketle{ta/bardblfsr/an}bracketri}ht/an}bracketri}ht/an}bracketle{t/an}bracketle{tfsr/bardblb/an}bracketri}ht/an}bracketri}ht=d+1
	d−1d2/summationdisplay
	s=1/an}bracketle{t/an}bracketle{ta/bardblQs/bardblr/an}bracketri}ht/an}bracketri}ht/an}bracketle{t/an}bracketle{tr/bardblQs/bardblb/an}bracketri}ht/an}bracketri}ht
	=(d+1)3
	d2(d−1)d2/summationdisplay
	s=1/parenleftig
	TsarTsrb−K2
	saK2
	srTsrb
	−K2
	srK2
	sbTsar+K2
	saK4
	srK2
	sb/parenrightig
	(402)
	(where we used the fact that Qs/bardbls/an}bracketri}ht/an}bracketri}ht= 0 in the ﬁrst step). After some algebra we
	ﬁnd
	d2/summationdisplay
	s=1TsarTsrb=d
	d+1/parenleftigg/parenleftigg/radicalbigg
	d−1
	d+1/an}bracketle{t/an}bracketle{ta/bardbl¯er/an}bracketri}ht/an}bracketri}ht+1
	d/parenrightigg/parenleftigg/radicalbigg
	d−1
	d+1/an}bracketle{t/an}bracketle{t¯er/bardblb/an}bracketri}ht/an}bracketri}ht+1
	d/parenrightigg
	+Trba/parenrightigg
	(403)
	d2/summationdisplay
	s=1K2
	saK2
	srTsrb=d
	d+1/parenleftigg/parenleftigg/radicalbigg
	d−1
	d+1/an}bracketle{t/an}bracketle{ta/bardbl¯er/an}bracketri}ht/an}bracketri}ht+2d+1
	d(d+1)/parenrightigg/parenleftigg/radicalbigg
	d−1
	d+1/an}bracketle{t/an}bracketle{t¯er/bardblb/an}bracketri}ht/an}bracketri}ht+1
	d/parenrightigg
	+1
	d+1Trba/parenrightigg
	(404)
	d2/summationdisplay
	s=1K2
	srK2
	sbTsar=d
	d+1/parenleftigg/parenleftigg/radicalbigg
	d−1
	d+1/an}bracketle{t/an}bracketle{ta/bardbl¯er/an}bracketri}ht/an}bracketri}ht+1
	d/parenrightigg/parenleftigg/radicalbigg
	d−1
	d+1/an}bracketle{t/an}bracketle{t¯er/bardblb/an}bracketri}ht/an}bracketri}ht+2d+1
	d(d+1)/parenrightigg
	+1
	d+1Trba/parenrightigg
	(405)
	d2/summationdisplay
	s=1K2
	saK4
	srK2
	sb=d
	(d+1)/parenleftigg
	d+2
	d+1/parenleftigg/radicalbigg
	d−1
	d+1/an}bracketle{t/an}bracketle{ta/bardbl¯er/an}bracketri}ht/an}bracketri}ht+1
	d/parenrightigg/parenleftigg/radicalbigg
	d−1
	d+1/an}bracketle{t/an}bracketle{t¯er/bardblb/an}bracketri}ht/an}bracketri}ht+1
	d/parenrightigg
	+d
	(d+1)3δab+d+2
	(d+1)3/parenrightigg
	(406)
	wherewe usedEq. ( 23) to derivethe ﬁrstexpression. Substituting these expressions
	into Eq. ( 402) and using
	/an}bracketle{t/an}bracketle{ta/bardblQT
	r/bardblb/an}bracketri}ht/an}bracketri}ht=d+1
	d/parenleftigg
	Trba−/parenleftigg/radicalbigg
	d−1
	d+1/an}bracketle{t/an}bracketle{ta/bardbl¯er/an}bracketri}ht/an}bracketri}ht+1
	d/parenrightigg/parenleftigg/radicalbigg
	d−1
	d+1/an}bracketle{t/an}bracketle{t¯er/bardblb/an}bracketri}ht/an}bracketri}ht+1
	d/parenrightigg/parenrightigg
	(407)
	we deduce Eq. ( 394). Taking complex conjugates on both sides we obtain Eq. ( 395).
	Eq. (396) is an immediate consequence of Eq. ( 392) and the fact that /bardblgsr/an}bracketri}ht/an}bracketri}ht=
	−/bardblgrs/an}bracketri}ht/an}bracketri}htfor allr,s.49
	To prove Eq. ( 397) observe that it follows from Eqs. ( 394)–(396) that
	d2/summationdisplay
	s=1
	(s/negationslash=r)/parenleftig
	/bardblfsr/an}bracketri}ht/an}bracketri}ht/an}bracketle{t/an}bracketle{tf∗
	sr/bardbl+/bardblf∗
	sr/an}bracketri}ht/an}bracketri}ht/an}bracketle{t/an}bracketle{tfsr/bardbl/parenrightig
	=d2/summationdisplay
	s=1
	(s/negationslash=r)/parenleftig
	2/bardblgsr/an}bracketri}ht/an}bracketri}ht/an}bracketle{t/an}bracketle{tgsr/bardbl−/bardblfsr/an}bracketri}ht/an}bracketri}ht/an}bracketle{t/an}bracketle{tfsr/bardbl−/bardblf∗
	sr/an}bracketri}ht/an}bracketri}ht/an}bracketle{t/an}bracketle{tf∗
	sr/bardbl/parenrightig
	= 2/parenleftig
	¯Rr−(d−1)/bardbl¯er/an}bracketri}ht/an}bracketri}ht/an}bracketle{t/an}bracketle{t¯er/bardbl
	−1
	d+1/parenleftig
	I−/bardblv0/an}bracketri}ht/an}bracketri}ht/an}bracketle{t/an}bracketle{tv0/bardbl/parenrightig/parenrightbigg
	(408)
	Hence
	2
	d−3d2/summationdisplay
	s=1
	(s/negationslash=r)/bardbl¯gsr/an}bracketri}ht/an}bracketri}ht/an}bracketle{t/an}bracketle{t¯gsr/bardbl=1
	d−3d2/summationdisplay
	s=1
	(s/negationslash=r)/parenleftig
	/bardblfsr/an}bracketri}ht/an}bracketri}ht/an}bracketle{t/an}bracketle{tfsr/bardbl+/bardblf∗
	sr/an}bracketri}ht/an}bracketri}ht/an}bracketle{t/an}bracketle{tf∗
	sr/bardbl
	−/bardblfsr/an}bracketri}ht/an}bracketri}ht/an}bracketle{t/an}bracketle{tf∗
	sr/bardbl−/bardblf∗
	sr/an}bracketri}ht/an}bracketri}ht/an}bracketle{t/an}bracketle{tf∗
	sr/bardbl/parenrightig
	=¯Rr+4(d−1)
	d−3/bardbl¯er/an}bracketri}ht/an}bracketri}ht/an}bracketle{t/an}bracketle{t¯er/bardbl+4
	(d+1)(d−3)/parenleftig
	I−/bardblv0/an}bracketri}ht/an}bracketri}ht/an}bracketle{t/an}bracketle{tv0/bardbl/parenrightig
	(409)
	/square
	9.TheP-PTProperty
	In the preceding sections the Q-QTproperty has played a prominent role. In
	this section we show that in the particular case ofa Weyl-Heisenberg covariantSIC-
	POVM, and with the appropriate choice of gauge, the Gram project or (deﬁned in
	Eq. (63)) has an analogous property, which we call the P-PTproperty. Speciﬁcally
	one has
	PPT=PTP=/bardblh/an}bracketri}ht/an}bracketri}ht/an}bracketle{t/an}bracketle{th/bardbl (410)
	where/bardblh/an}bracketri}ht/an}bracketri}htis a normalized vector whose components in the standard basis are a ll
	real. In odd dimensions the components of /bardblh/an}bracketri}ht/an}bracketri}htin the standard basis can be simply
	expressed in terms of the Wigner function of the ﬁducial vector. I t could be said
	thattheprojectors PandPTarealmostorthogonal(bycontrastwiththeprojectors
	QrandQT
	rwhich are completely orthogonal). More precisely Phas the spectral
	decomposition
	P=¯P+/bardblh/an}bracketri}ht/an}bracketri}ht/an}bracketle{t/an}bracketle{th/bardbl (411)
	where¯Pis a rank (d−1) projector with the property
	¯P¯PT= 0 (412)
	This means that the matrix
	JP=P−PT(413)
	is a pure imaginary Hermitian matrix with the property that J2
	Pis a real rank
	2d−2 projector ( c.f.the discussion in Section 4).
	Although we are mainly interested in the P-PTproperty as it applies to SIC-
	POVMs, itshould benoted that itactuallyholdsforanyWeyl-Heisenbe rgcovariant
	POVM (with the appropriate choice of gauge). So we will prove the ab ove propo-
	sitions for this more general case.50
	Let us begin by ﬁxing notation. Let \|0/an}bracketri}ht,...,\|d−1/an}bracketri}htbe an orthonormal basis for
	d-dimensional Hilbert space and let XandZbe the operators whose action on the
	\|r/an}bracketri}htis
	X\|a/an}bracketri}ht=\|a+1/an}bracketri}ht (414)
	Z\|a/an}bracketri}ht=ωa\|a/an}bracketri}ht (415)
	whereω=e2πi
	dand the addition of indices in the ﬁrst equation is modd. We then
	deﬁne the Weyl-Heisenberg displacement operators by (adopting t he convention
	used in, for example, ref. [ 16])
	Dp=τp1p2Xp1Zp2(416)
	wherepis the vector ( p1,p2) (p1,p2being integers) and τ=e(d+1)πi
	d. Generally
	speaking the decision to insert the phase τp1p2is a matter of convention, and many
	authors deﬁne it diﬀerently, or else omit altogether. However, for the purposes of
	this section it is essential, as a diﬀerent choice of phase at this stage would lead to a
	diﬀerent gauge in the class of POVMs to be deﬁned below, and the Gra m projector
	would then typically not have the P-PTproperty.
	Note thatτ2=τd2=ωin every dimension. If the dimension is odd we can write
	τ=ωd+1
	2. Soτis adthroot of unity. However, if the dimension is even τd=−1.
	This has the consequence that
	Dp+du= (−1)u1p2+u2p1Dp (417)
	Soin even dimension p=q(modd) does notnecessarilyimply Dp=Dq(although
	the operators are, of course, equal if p=q(mod 2d))
	In every dimension (even or odd) we have
	D†
	p=D−p (418)
	for allp
	(Dp)n=Dnp (419)
	for allp,nand
	DpDq=τ/angbracketleftp,q/angbracketrightDp+q (420)
	for allp,q. In the last expression /an}bracketle{tp,q/an}bracketri}htis the symplectic form
	/an}bracketle{tp,q/an}bracketri}ht=p2q1−p1q2 (421)
	Now let\|ψ/an}bracketri}htbe any normalized vector (not necessarily a SIC-ﬁducial vector), and
	deﬁne
	\|ψp/an}bracketri}ht=Dp\|ψ/an}bracketri}ht (422)
	Let
	L=/summationdisplay
	p∈Z2
	d\|ψp/an}bracketri}ht/an}bracketle{tψp\| (423)
	It is easily seen that/bracketleftbig
	Dp,L/bracketrightbig
	= 0 (424)
	for allp.51
	We now appeal to the fact that there is no non-trivial subspace of Hdwhich
	the displacement operators leave invariant. To see this assume the contrary. Then
	there would exist non-zero vectors \|φ/an}bracketri}ht,\|χ/an}bracketri}htsuch that
	/an}bracketle{tφ\|Dp\|χ/an}bracketri}ht= 0 (425)
	for allp. Writing the left-hand side out in full this gives
	d−1/summationdisplay
	a=0ωp2a/an}bracketle{tφ\|a+p1/an}bracketri}ht/an}bracketle{ta\|χ/an}bracketri}ht= 0 (426)
	for allp1,p2. Taking the discrete Fourier transform with respect to p2, we have
	/an}bracketle{tφ\|a+p1/an}bracketri}ht/an}bracketle{ta\|χ/an}bracketri}ht= 0 (427)
	for alla,p1, implying that either \|φ/an}bracketri}ht= 0 or\|χ/an}bracketri}ht= 0—contrary to assumption. We
	can therefore use Schur’s lemma [ 55] to deduce that
	L=kI (428)
	for some constant k. Taking the trace on both sides of this equation we infer
	thatk=d. We conclude that1
	d\|ψp/an}bracketri}ht/an}bracketle{tψp\|is a POVM. We refer to POVMs of this
	general class as Weyl-Heisenberg covariant POVMs. We refer to th e vector \|ψ/an}bracketri}ht
	which generates the POVM as the ﬁducial vector (with no implication t hat it is
	necessarily a SIC-ﬁducial).
	Now consider the Gram projector
	P=/summationdisplay
	p,q∈Z2
	dPp,q/bardblp/an}bracketri}ht/an}bracketri}ht/an}bracketle{t/an}bracketle{tq/bardbl (429)
	where
	Pp,q=1
	d/an}bracketle{tψp\|ψq/an}bracketri}ht (430)
	and where we label the matrix elements of Pand the standard basis kets with the
	vectorsp,qrather than with the single integer indices r,sas in the rest of this
	paper. We know from Theorem 1thatPis a rankdprojector.
	In view of Eqs. ( 418) and (420) we have
	/an}bracketle{t/an}bracketle{tp/bardblP/bardblq/an}bracketri}ht/an}bracketri}ht=Pp,q
	=1
	dτ−/angbracketleftp,q/angbracketright/an}bracketle{tψ\|Dq−p\|ψ/an}bracketri}ht
	=1
	dd−1/summationdisplay
	a=0τp1p2+q1q2ωaq2−(q1+a)p2/an}bracketle{tψ\|a+q1−p1/an}bracketri}ht/an}bracketle{ta\|ψ/an}bracketri}ht(431)
	Hence
	/an}bracketle{t/an}bracketle{tp/bardblPPT/bardblq/an}bracketri}ht/an}bracketri}ht=/summationdisplay
	u∈Zd/an}bracketle{t/an}bracketle{tp/bardblP/bardblu/an}bracketri}ht/an}bracketri}ht/an}bracketle{t/an}bracketle{tq/bardblP/bardblu/an}bracketri}ht/an}bracketri}ht
	=1
	d2d−1/summationdisplay
	a,b,u1,u2=0τp1p2+q1q2ωu2(u1+a+b)−(u1+a)p2−(u1+b)q2
	×/an}bracketle{tψ\|a+u1−p1/an}bracketri}ht/an}bracketle{tψ\|b+u1−q1/an}bracketri}ht/an}bracketle{ta\|ψ/an}bracketri}ht/an}bracketle{tb\|ψ/an}bracketri}ht52
	=1
	dd−1/summationdisplay
	a,b=0τp1p2+q1q2ωp2b+q2a/an}bracketle{tψ\|−b−p1/an}bracketri}ht/an}bracketle{tb\|ψ/an}bracketri}ht/an}bracketle{tψ\|−a−q1/an}bracketri}ht/an}bracketle{ta\|ψ/an}bracketri}ht
	=/an}bracketle{t/an}bracketle{tp/bardblh/an}bracketri}ht/an}bracketri}ht/an}bracketle{t/an}bracketle{th/bardblq/an}bracketri}ht/an}bracketri}ht (432)
	where/bardblh/an}bracketri}ht/an}bracketri}htis the vector with components
	/an}bracketle{t/an}bracketle{tp/bardblh/an}bracketri}ht/an}bracketri}ht=1√
	dd−1/summationdisplay
	a=0τp1p2ωp2a/an}bracketle{tψ\|−a−p1/an}bracketri}ht/an}bracketle{ta\|ψ/an}bracketri}ht (433)
	It is easily veriﬁed that /bardblh/an}bracketri}ht/an}bracketri}htis normalized, and that /an}bracketle{t/an}bracketle{tp/bardblh/an}bracketri}ht/an}bracketri}htis real.
	Finally, suppose that the dimension is odd. Then the Wigner function o f the
	state\|ψ/an}bracketri}htis [56,57]
	W(p) =1
	d/an}bracketle{tψ\|DpUPD†
	p\|ψ/an}bracketri}ht=1
	d/an}bracketle{tψ\|D2pUP\|ψ/an}bracketri}ht (434)
	whereUPistheparityoperator,whoseactiononthestandardbasisis UP\|a/an}bracketri}ht=\|−a/an}bracketri}ht.
	It is straightforward to show
	/an}bracketle{t/an}bracketle{tp/bardblh/an}bracketri}ht/an}bracketri}ht=√
	dW(−2−1p) (435)
	where 2−1= (d+1)/2 is the multiplicative inverse of 2 considered as an element of
	Zd:i.e.the unique integer 0 ≤m<dsuch that 2 m= 1 (modd).
	10.Conclusion
	A curious fact about SIC-POVMs is that, although they are charac terized by
	their being highly symmetric structures, they do not wear this prop erty on their
	sleeve (so to speak). If one casually inspects the components of a SIC-ﬁducial,
	without knowing in advance that that is what they are, there does n ot seem to be
	anything special about them at all. Indeed, so far from there being any obvious
	pattern to the components, they seem, to a casual inspection, lik e a completely
	random collection of numbers. Moreover, this is just as true of an e xact ﬁducial as
	it is of a numerical one (see, for instance, the tabulations in Scott a nd Grassl [ 46]).
	It is only when one looks at them through the right pair of spectacles , and takes the
	trouble to calculate the overlaps Tr(Π rΠs), that the symmetry becomes apparent.
	The situation is a little reminiscent of a hologram, which only takes on th e aspect of
	a meaningful image when it is viewed in the right way. If one wanted to s ummarize
	the content of this paper in a nutshell it could be said that we have ex hibited some
	other pairs of spectacles—other ways of looking at a SIC—which cau se its inner
	secrets (or at any rate some of its inner secrets) to become manif est.
	Rather than focusing on the SIC-vectors \|ψr/an}bracketri}ht, as is usually done, we havefocused
	on the angle tensors θrsandθrst, and on the T,JandRmatrices deﬁned in
	terms of them. This is an important change of emphasis because, ra ther than
	being tied to any particular SIC, these quantities characterize ent ire families of
	unitarily equivalent SICs. Like the components of a SIC-ﬁducial, the angle tensors
	appear, to a casual inspection, like a random collection of numbers. However, if
	one examines the spectra of the T,JandRmatrices one realizes that, underlying
	the appearance of randomness, there is a high degree of order. I f one then goes on
	to examine the geometrical relationships between the subspaces o nto which the Q,
	QTand¯Rmatrices project, as we did in Section 8, one ﬁnds yet more instances
	of structure and order. To our minds what is particularly interestin g about all of53
	this is that none of it is obviously suggested by the deﬁning property of a SIC, that
	Tr(ΠrΠs) = 1/(d+1) forr/ne}ationslash=s.
	In the course of this paper we have several times expressed the h ope that the
	Lie algebraic perspective on a SIC will lead to a solution to the existenc e problem.
	Of course, that is only a hope, and it may not be fulﬁlled. However, we feel on
	rather safer ground when we suggest that the solution is likely to co me, if not from
	this investigation, then from one which is like it to the extent that it fo cuses on a
	feature of a SIC which is not immediately apparent to the eye.
	Specializing to the case of a Weyl-Heisenberg covariant SIC, a ﬁducia l vector\|ψ/an}bracketri}ht
	is a solution to the equations
	/vextendsingle/vextendsingle/an}bracketle{tψ\|Dp\|ψ/an}bracketri}ht/vextendsingle/vextendsingle2=dδp,0+1
	d+1(436)
	Allowing for the arbitrariness of the overall phase of \|ψ/an}bracketri}ht, and taking \|ψ/an}bracketri}htto be nor-
	malized, this gives us d2−1 conditions on only 2 d−2 independent real parameters.
	The equations are thus over-determined, and very highly over-de termined when d
	is large. Nevertheless, they have turned out to be soluble in every c ase which has
	been investigated to date. It seems likely that progress will depend on ﬁnding the
	structural feature which is responsible for this remarkable fact. The motivation for
	this paper is the belief that it may be structural features of the Lie algebra gl(d,C)
	which are responsible. That suggestion may or may not be correct. But if it turns
	out to be incorrect, the amount of eﬀort which has been expended on this problem
	over a period of more than ten years, so far without fruit, sugges ts to us that the
	solution will depend on ﬁnding some other structural feature of a S IC, which is not
	obvious, and which has hitherto escaped attention.
	11.Acknowledgements
	The authors thank I. Bengtsson for discussions. Two authors, D MA and CAF,
	were supported in part by the U. S. Oﬃce of Naval Research (Gran t No. N00014-
	09-1-0247). Research at Perimeter Institute is supported by th e Government of
	Canada through Industry Canada and by the Province of Ontario t hrough the
	Ministry of Research & Innovation.
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