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Posted 4mo ago

Super-Constant Weight Dicke States in Constant Depth Without Fanout

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Lucas Gretta, Meghal Gupta, Malvika Raj Joshi (Apr 17 2026).
Abstract: An nnn-qubit Dicke state of weight kkk, is the uniform superposition over all nnn-bit strings of Hamming weight kkk. Dicke states are an entanglement resource with important practical applications in the NISQ era and, for instance, play a central role in Decoded Quantum Interferometry (DQI). Furthermore, any symmetric state can be expressed as a superposition of Dicke states. First, we give explicit constant-depth circuits that prepare nnn-qubit Dicke states for all k≤polylog(n)k \leq \text{polylog}(n)k≤polylog(n), using only multi-qubit Toffoli gates and single-qubit unitaries. This gives the first QAC0\text{QAC}^0QAC0 construction of super-constant weight Dicke states. Previous constant-depth constructions for any super-constant kkk required the FANOUTn_nn​ gate, while QAC0\text{QAC}^0QAC0 is only known to implement FANOUTk_kk​ for kkk up to polylog(n)\text{polylog}(n)polylog(n). Moreover, we show that any weight-kkk Dicke state can be constructed with access to FANOUTmin⁡(k,n−k)_{\min(k,n-k)}min(k,n−k)​, rather than FANOUTn_nn​. Combined with recent hardness results, this yields a tight characterization: for k≤n/2k \leq n/2k≤n/2, weight-kkk Dicke states can be prepared in QAC0\text{QAC}^0QAC0 if and only if FANOUTk∈QAC0_k \in \text{QAC}^0k​∈QAC0. We further extend our techniques to show that, in fact, \emphany superposition of nnn-qubit Dicke states of weight at most kkk can be prepared in QAC0\text{QAC}^0QAC0 with access to FANOUTk_kk​. Taking k=nk = nk=n, we obtain the first O(1)O(1)O(1)-depth unitary construction for arbitrary symmetric states. In particular, any symmetric state can be prepared in constant depth on quantum hardware architectures that support FANOUTn_nn​, such as trapped ions with native global entangling operations.
Arxiv: https://arxiv.org/abs/2604.15298

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