Gerstenhaber bracket 2026-10-05
Write for insertion of a degree- cochain into a degree- one. With the unsigned Hochschild cup product and the left graded Leibniz rule, take . It descends to Hochschild cohomology and gives a Gerstenhaber algebra. The alternative insertion bracket differs by the displayed degree sign and obeys the corresponding right rule. Degree-one brackets are commutators of derivations in either convention.
Graded commutative algebra 2026-10-05
A graded algebra is a graded commutative algebra if for homogeneous elements of a graded algebra of degrees . In characteristic not equal to two, every odd-degree element then squares to zero. The exterior algebra and Hochschild cohomology with the Hochschild cup product are examples.
Hochschild-Kostant-Rosenberg theorem 2026-10-05
For the polynomial ring in characteristic zero, antisymmetrization identifies with . The map on a wedge of derivations is . The Hochschild cup product becomes the exterior product, and the left Gerstenhaber bracket becomes the left Schouten-Nijenhuis bracket. This assertion requires a smoothness hypothesis when generalized beyond polynomial rings.
Past exam of the mathematics course of the University of Cambridge 2017 iii Paper 128 6 Solution Created 2026-10-03 Updated 2026-10-05
A derivation of an algebra is a -linear map satisfying . The commutator is again a derivation: expanding cancels the two mixed terms and leaves . The commutator on endomorphisms is bilinear, antisymmetric, and satisfies the Jacobi identity by cancellation of its twelve triple-composition terms. Therefore is a Lie algebra.
In degree zero of the Hochschild cochain complex, , so for commutative . In degree one, is precisely the derivation rule; the boundaries are inner derivations, which vanish for commutative . HenceFor cochains , , the Hochschild cup product isDefine the insertion operation byA degree-zero cochain is an element of , inserted with no arguments; for the sum is empty. For the Gerstenhaber bracket we use the left graded Leibniz rule convention, compatible with the unsigned Hochschild cup product just displayed:Both degree-zero inputs have bracket zero. Another common insertion convention writes ; the two brackets differ by . With an unsigned Hochschild cup product, that convention uses the corresponding right graded Leibniz rule. The distinction matters for a degree-two cochain bracketed with a function. Either consistent convention gives the same degree-one Lie bracket and the same derivation action on functions.
If , this convention gives . The shifted Jacobi identity and therefore show that the Gerstenhaber bracket respects Hochschild cocycles and the images of the coboundary map. The Hochschild cup product and Gerstenhaber bracket induce operations on Hochschild cohomology. A Gerstenhaber algebra is a graded algebra with an associative degree-zero product with the graded commutative algebra rule , and a degree-minus-one graded Lie bracket making the shifted degrees into a graded Lie algebra. In particular,for homogeneous elements of a graded algebra of degrees . The shifted Jacobi identity isThe Hochschild cup product does not make the cochains a graded commutative algebra in general, but does make their cohomology a graded commutative algebra; the insertion operation supplies the homotopy for this assertion and for the graded Leibniz rule. Thus these axioms describe the induced Gerstenhaber algebra, not a claim of a graded commutative algebra structure on the cochain multiplication itself.
For , the enveloping algebra is , andis a projective resolution. The first map is injective since is an integral domain, and its cokernel is . Applying gives a zero coboundary map. ConsequentlyThe Hochschild cup product is ordinary multiplication of functions and scalar multiplication of derivations, with the product of two derivations zero because . Every derivation is , since it is determined by its value on . The Gerstenhaber bracket iswith all other orders fixed by graded antisymmetry. These formulas fully determine the Gerstenhaber algebra.
For , the Hochschild-Kostant-Rosenberg theorem identifiesThus the degrees zero, one, and two are , , and , and all higher groups vanish. The Hochschild-Kostant-Rosenberg map sends a wedge of derivations to the cochainThe factorial is invertible in characteristic zero. Equivalently, the groups follow from the Koszul resolution on the regular sequence in , whose dual coboundary maps vanish on .
The Hochschild cup product becomes the exterior product, and our Gerstenhaber bracket becomes the left Schouten-Nijenhuis bracket. It is determined by the commutator of derivations, , zero brackets of functions, and the displayed graded antisymmetry and left graded Leibniz rule. For explicit signs, put and . ThenThe last bracket has degree three, whose exterior power is zero. For two derivations, the coefficient functions of their commutator give the remaining formula. This specifies the entire Gerstenhaber algebra; under the alternate insertion convention mentioned above, the first displayed bracket changes sign, together with the Leibniz convention. No smoothness of a general finitely generated commutative algebra was assumed: the Hochschild-Kostant-Rosenberg theorem is invoked here only for the smooth polynomial ring .