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1.
Nat Commun ; 15(1): 2439, 2024 Mar 18.
Artículo en Inglés | MEDLINE | ID: mdl-38499561

RESUMEN

Probabilistic inference in data-driven models is promising for predicting outputs and associated confidence levels, alleviating risks arising from overconfidence. However, implementing complex computations with minimal devices still remains challenging. Here, utilizing a heterojunction of p- and n-type semiconductors coupled with separate floating-gate configuration, a Gaussian-like memory transistor is proposed, where a programmable Gaussian-like current-voltage response is achieved within a single device. A separate floating-gate structure allows for exquisite control of the Gaussian-like current output to a significant extent through simple programming, with an over 10000 s retention performance and mechanical flexibility. This enables physical evaluation of complex distribution functions with the simplified circuit design and higher parallelism. Successful implementation for localization and obstacle avoidance tasks is demonstrated using Gaussian-like curves produced from Gaussian-like memory transistor. With its ultralow-power consumption, simplified design, and programmable Gaussian-like outputs, our 3-terminal Gaussian-like memory transistor holds potential as a hardware platform for probabilistic inference computing.

2.
Middle East J Dig Dis ; 13(3): 268-272, 2021 Jul.
Artículo en Inglés | MEDLINE | ID: mdl-36606225

RESUMEN

Liver hemangiomas are common. Giant liver hemangiomas are rare and symptomatic patients require treatment. Surgery is the curative procedure. Other options such as intra-arterial embolization may be used to decrease the volume and bleeding of these lesions. Three cases of giant liver hemangioma were treated with liver resection, one with left lateral hepatectomy and two with right lateral hepatectomy. All patients had made an uneventful recovery with no recurrence at 3-year follow-up. Most hemangiomas are small, asymptomatic, and do not require any treatment. Liver resection is a safe and effective treatment for giant hemangiomas.

3.
Nanotechnology ; 31(48): 484001, 2020 Nov 27.
Artículo en Inglés | MEDLINE | ID: mdl-32936787

RESUMEN

The recent trend in adapting ultra-energy-efficient (but error-prone) nanomagnetic devices to non-Boolean computing and information processing (e.g. stochastic/probabilistic computing, neuromorphic, belief networks, etc) has resulted in rapid strides in new computing modalities. Of particular interest are Bayesian networks (BN) which may see revolutionary advances when adapted to a specific type of nanomagnetic devices. Here, we develop a novel nanomagnet-based computing substrate for BN that allows high-speed sampling from an arbitrary Bayesian graph. We show that magneto-tunneling junctions (MTJs) can be used for electrically programmable 'sub-nanosecond' probability sample generation by co-optimizing voltage-controlled magnetic anisotropy and spin transfer torque. We also discuss that just by engineering local magnetostriction in the soft layers of MTJs, one can stochastically couple them for programmable conditional sample generation as well. This obviates the need for extensive energy-inefficient hardware like OP-AMPS, gates, shift-registers, etc to generate the correlations. Based on the above findings, we present an architectural design and computation flow of the MTJ network to map an arbitrary Bayesian graph where we develop circuits to program and induce switching and interactions among MTJs. Our discussed framework can lead to a new generation of stochastic computing hardware for various other computing models, such as stochastic programming and Bayesian deep learning. This can spawn a novel genre of ultra-energy-efficient, extremely powerful computing paradigms, which is a transformational advance.

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