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Although powerful, quantum computing is not seamless. Noise is an inevitable phenomenon that is a result of inherent randomness and uncertainty that can lead to computation errors. Google's Quantum AI team is looking for ways to mitigate this and uncover new insights.

32,128 görüntüleme • 1 yıl önce •via X (Twitter)

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Quantum Quinn1 yıl önce

Exploring solutions for noise management in quantum computing could drive major advancements.

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SecBriefs | Making Cybersecurity Simple1 yıl önce

Quantum computers can break today’s encryption in seconds.🔑 Quantum tech will reshape our digital lives. Governments & hackers are preparing for the quantum era. How about you?🛡️ Don’t get left behind!🧠 Cybersecurity Dictionary for Everyone can help:

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Fabio Lauria1 yıl önce

@GoogleAI Quantum computing's challenges highlight the importance of resilience in tech advancement. Embracing noise may lead us to unexpected breakthroughs. Let’s keep pushing boundaries. #Innovation

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mATTHEW rYAN1 yıl önce

@GoogleAI have you tired turning it on and off a few times?

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Electe1 yıl önce

@GoogleAI @GoogleAI, quantum computing presents challenges, but tackling noise helps forge revolutionary paths. Innovation thrives in adversity. #InnovationJourney

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DataInsta1 yıl önce

@GoogleAI noise in quantum computing reminds us that perfection is an illusion!

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Dane Distributed1 yıl önce

It's essential to support quantum research's progress; understanding and handling noise will pave the way for more reliable computations.

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Deep funding test1 yıl önce

{ "user": "ProfundoFund", "text": "The challenges posed by noise and uncertainty in quantum computing, as highlighted by @GoogleQuantumAI, resonate deeply with the principles of deep funding.

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Takao Koizumi Physics1 yıl önce

Thank you for this important statement. I fully agree that noise and decoherence remain among the most pressing challenges in quantum computing. As an independent researcher, I’ve been developing the Entropy-Induced Collapse (EIC) model, which treats entropy gradients as triggers for wavefunction collapse, and offers a deterministic-stochastic formulation of decoherence, incorporating non-Markovian fractal noise. In my recent paper, I apply this model to large-scale QEC, demonstrating how the entropy threshold S₍crit₎ is dynamically shifted by QEC code distance d and the Hurst exponent H, yielding testable predictions such as: •d = 3 → ΔS ≈ 0.10 kB •d = 7 → ΔS ≈ 0.25 kB I also propose a 3-phase experimental roadmap using IBM Quantum and Google Sycamore systems, along with open-source simulation data (GitHub). I believe this framework may complement ongoing efforts in error mitigation by offering a deeper thermodynamic and information-theoretic interpretation of noise and collapse. I would be honored to contribute or exchange ideas, should there be mutual interest.

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