374 research outputs found
Lifting SU(2) Spin Networks to Projected Spin Networks
Projected spin network states are the canonical basis of quantum states of
geometry for the most recent EPR-FK spinfoam models for quantum gravity. They
are functionals of both the Lorentz connection and the time normal field. We
analyze in details the map from these projected spin networks to the standard
SU(2) spin networks of loop quantum gravity. We show that this map is not
one-to-one and that the corresponding ambiguity is parameterized by the Immirzi
parameter. We conclude with a comparison of the scalar products between
projected spin networks and SU(2) spin network states.Comment: 14 page
Some Remarks on the Semi-Classical Limit of Quantum Gravity
One of the most important issues in quantum gravity is to identify its
semi-classical regime. First the issue is to define for we mean by a
semi-classical theory of quantum gravity, then we would like to use it to
extract physical predictions. Writing an effective theory on a flat background
is a way to address this problem and I explain how the non-commutative
spacetime of deformed special relativity is the natural arena for such
considerations. On the other hand, I discuss how the definition of the
semi-classical regime can be formulated in a background independent fashion in
terms of quantum information and renormalisation of geometry.Comment: 5 pages, Proceedings of the Second International Workshop DICE2004
(Castello di Piombino, Tuscany) "From Decoherence and Emergent Classicality
to Emergent Quantum Mechanics
Bulk Entropy in Loop Quantum Gravity
In the framework of loop quantum gravity (LQG), having quantum black holes in
mind, we generalize the previous boundary state counting (gr-qc/0508085) to a
full bulk state counting. After a suitable gauge fixing we are able to compute
the bulk entropy of a bounded region (the "black hole") with fixed boundary.
This allows us to study the relationship between the entropy and the boundary
area in details and we identify a holographic regime of LQG where the leading
order of the entropy scales with the area. We show that in this regime we can
fine tune the factor between entropy and area without changing the Immirzi
parameter.Comment: 13 page
Quantum causal histories in the light of quantum information
We use techniques of quantum information theory to analyze the quantum causal
histories approach to quantum gravity. We show that while it is consistent to
introduce closed timelike curves (CTCs), they cannot generically carry
independent degrees of freedom. Moreover, if the effective dynamics of the
chronology-respecting part of the system is linear, it should be completely
decoupled from the CTCs. In the absence of a CTC not all causal structures
admit the introduction of quantum mechanics. It is possible for those and only
for those causal structures that can be represented as quantum computational
networks. The dynamics of the subsystems should not be unitary or even
completely positive. However, we show that other commonly maid assumptions
ensure the complete positivity of the reduced dynamics.Comment: 9 pages, 8 eps figure
U(N) Coherent States for Loop Quantum Gravity
We investigate the geometry of the space of N-valent SU(2)-intertwiners. We
propose a new set of holomorphic operators acting on this space and a new set
of coherent states which are covariant under U(N) transformations. These states
are labeled by elements of the Grassmannian Gr(N,2), they possess a direct
geometrical interpretation in terms of framed polyhedra and are shown to be
related to the well-known coherent intertwiners.Comment: 23 page
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