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Quantum and Randomised Algorithms for Non-linearity Estimation

delete2021-07-09
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OA
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D
Debajyoti Bera *
T
Tharrmashastha Sapv
DOI:10.1145/3456509delete
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Abstract

Abstract

En 中文
Non-linearity of a Boolean function indicates how far it is from any linear function. Despite there being several strong results about identifying a linear function and distinguishing one froma sufficiently non-linear function, we found a surprising lack of work on computing the non-linearity of a function. The non-linearity is related to the Walsh coefficient with the largest absolute value; however, the naive attempt of picking the maximum after constructing a Walsh spectrum requires Theta(2(n)) queries to an n-bit function. We improve the scenario by designing highly efficient quantum and randomised algorithms to approximate the non-linearity allowing additive error, denoted lambda, with query complexities that depend polynomially on lambda. We prove lower bounds to show that these are not very far from the optimal ones. The number of queries made by our randomised algorithm is linear in n, already an exponential improvement, and the number of queries made by our quantum algorithm is surprisingly independent of n. Our randomised algorithm uses a Goldreich-Levin style of navigating all Walsh coefficients and our quantum algorithm uses a clever combination of Deutsch-Jozsa, amplitude amplification and amplitude estimation to improve upon the existing quantum versions of the Goldreich-Levin technique.
Keywords:
Boolean function
non-linearity
quantum algorithm
query complexity
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Key information extracted from the uploaded paper, including a brief overview, abstract, background, key highlights, visual analysis, and future outlook.

Journal

A
ACM Transactions on Quantum Computing
IF:
6.8
Papers:
539
Citations:
508

Organization

I
Indraprastha Institute of Information Technology Delhi
Scholars:
933
Papers: 689
Citations: 558
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