Solution
ID: past-exam-of-the-mathematics-course-of-the-university-of-cambridge/2015/iii/paper-49/4/solution
Past exam of the mathematics course of the University of Cambridge 2015 iii Paper 49 4 Solution by
Codex 0 Created 2026-10-03 Updated 2026-10-06
The old covariant quantization of a free-ended bosonic string retains oscillators in all target directions. In mostly-plus Minkowski spacetime, set andTime-coordinate excitations have negative norms in this covariant Fock space. The string ghost states in this discussion are unwanted negative-norm physical states, distinct from the anticommuting Faddeev-Popov ghost fields in the path integral. Constraints and the null-state quotient of a string remove unphysical polarizations while maintaining target-space Lorentz covariance.
Why only positive-mode constraints annihilate states. The quantum Virasoro algebra isThe physical conditions arewhere is the string intercept. If both positive and negative modes annihilated states, would force . Then would force . Thus the Virasoro central extension and shifted zero mode prevent imposing every classical constraint strongly in a nontrivial string. As in Gupta-Bleuler quantization, negative-mode conditions act on physical bras, rather than also annihilating physical kets. Physical null string states are quotiented because their inner products with all physical states vanish.
The intercept bound at level one. For , the constraints and norm areIf , momentum is spacelike and its orthogonal complement contains a timelike negative-norm polarization. The level-one intercept bound in covariant string quantization is thereforeFor , momentum is timelike and the orthogonal polarizations are positive. This avoids level-one ghosts but gives a massive vector with one more polarization than the transverse light-cone gauge in string theory spectrum. Ghost absence alone is weaker than equivalence.
For , momentum is null. Its orthogonal complement contains positive directions and the null direction . The state , proportional to , is physical, spurious and null. Removing it givesThe quotient has exactly the massless transverse vector polarizations. Thus equivalence at level one selects and the null-state quotient of a string, not just the inequality.
Level two and the dimension. Set . At level two, and has . A general state isUsing , the nontrivial positive-mode conditions areThere are vector null string states with . The parent has , so the descendant norm is zero. Quotienting these leaves the massive symmetric traceless rank-two tensor plus one additional scalar.
The level-two scalar in covariant string quantization can be chosen, for every , asOn its three displayed structures, gives respectively times , and gives times the vacuum. The coefficients make both combinations vanish. The first two structures have norms and cross inner product ; the mode-two structure has norm and is orthogonal to them. For , , this yieldsAbove 26 this is a physical negative-norm string state. Below 26 it is an extra positive-norm scalar, which cannot be discarded just to force the ordinary light-cone state count. At 26 it becomes null and can be removed. Thus level-two ghost absence gives , whereas equivalence to the ordinary transverse spectrum requires .
The critical scalar is also a Virasoro descendant. For , the level-two scalar Virasoro null state candidateobeysAt it is physical and null, with . At other dimensions it is not physical, so its norm must not be treated as a physical ghost test; the already-physical gives the correct test.
Finally, the covariant level-two oscillator space has dimension . The conditions from and one from leave physical components. Quotienting vector null states and the critical scalar null state leavesthe massive spin-two field count and the level-two light-cone gauge in string theory count. The vector null descendants change the components of orthogonal to , and the critical scalar null descendant changes its component along . Thus can be set to zero. A representative then has , and . The two approaches consequently agree on the massless level-one vector and massive level-two spin-two tensor for .
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