Quantum versus Classical Online Streaming Algorithms with Advice

February 13, 2018 Β· Declared Dead Β· + Add venue

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Authors Kamil Khadiev, Aliya Khadieva, Mansur Ziatdinov, Dmitry Kravchenko, Alexander Rivosh, Ramis Yamilov, Ilnaz Mannapov arXiv ID 1802.05134 Category cs.DS: Data Structures & Algorithms Cross-listed cs.CC, quant-ph Citations 0 Last Checked 5 months ago
Abstract
We consider online algorithms with respect to the competitive ratio. Here, we investigate quantum and classical one-way automata with non-constant size of memory (streaming algorithms) as a model for online algorithms. We construct problems that can be solved by quantum online streaming algorithms better than by classical ones in a case of logarithmic or sublogarithmic size of memory, even if classical online algorithms get advice bits. Furthermore, we show that a quantum online algorithm with a constant number of qubits can be better than any deterministic online algorithm with a constant number of advice bits and unlimited computational power.
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