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相关概念视频

System of Memory01:23

System of Memory

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Memory is categorized into three major systems: sensory memory, short-term memory (STM), and long-term memory (LTM). These systems differ in their capacity and the duration for which they can hold information. Sensory memory captures raw sensory input from the environment, holding it for just a few seconds or less. For example, on hearing a brief, loud sound, like a car horn honking, the sound seems to linger in the mind for a moment even after it stops. This is an instance of sensory memory...
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Working Memory01:24

Working Memory

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Working memory refers to a combination of components, including short-term memory and attention, that allow an individual to hold information temporarily as we perform cognitive tasks. It is an essential cognitive function that enables the execution of complex tasks such as problem-solving, comprehension, and reasoning. Unlike short-term memory, which simply involves the storage of information for a brief period, working memory involves the active manipulation and processing of this...
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Formulation and Manufacturing Process: Physical Attributes of Generic Tablets and Capsules01:18

Formulation and Manufacturing Process: Physical Attributes of Generic Tablets and Capsules

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Bioequivalence in generic drugs, such as tablets and capsules, refers to their pharmaceutical equivalence to the brand-name counterparts. However, for therapeutic equivalence, manufacturers must also consider physical attributes like size, shape, and weight (FDA Guidance for Industry, December 2003). Discrepancies in these aspects could impact patient compliance and cause medication errors. For instance, swallowing difficulties, often experienced with larger tablets or capsules, can lead to...
338
Long-Term Memory01:18

Long-Term Memory

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Long-term memory is a relatively permanent type of memory, capable of storing vast amounts of information over extended periods. Its storage capacity is generally considered unlimited.
Long-term memory can be categorized into two primary types: explicit and implicit memory. Explicit memory, also known as declarative memory, involves the conscious recollection of information that we deliberately try to remember, recall, and articulate. This type of memory encompasses specific facts, events, and...
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Traumatic Memory01:20

Traumatic Memory

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Emotionally traumatic events often lead to memories that are exceptionally vivid and enduring, sometimes persisting with remarkable clarity throughout an individual's life. A classic example of this phenomenon is a person who survives a car accident. Even years later, they may recall every detail of the event with startling accuracy — the screeching of the tires, the jarring impact, and the acrid smell of burning rubber. Such vividness contrasts sharply with how an individual...
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Repressed Memory01:16

Repressed Memory

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Repressed memories are a psychological phenomenon where memories of traumatic events are unconsciously blocked from a person's awareness. This process occurs as a defense mechanism, protecting the mind from the emotional impact of distressing or painful experiences. For example, a person who has experienced childhood trauma may grow up with no conscious recollection of the event. In such cases, the memories are thought to be buried deep within the subconscious, inaccessible to the conscious...
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Working Memory Training for Older Participants: A Control Group Training Regimen and Initial Intellectual Functioning Assessment
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在光子学中的通用SO的内存多层控制 (m) 整体学.

Youlve Chen1, Jiaxin Zhang2, Jinlong Xiang1

  • 1State Key Laboratory of Photonics and Communications, School of Information and Electronic Engineering, Shanghai Jiao Tong University, Shanghai, China.

Nature communications
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概括
此摘要是机器生成的。

本研究介绍了使用新平台进行光子量子计算的可调节几何相. 这一创新使得强大的,可重新配置的光学操作成为对容错量子信息处理至关重要的关键.

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科学领域:

  • 量子信息科学 量子信息科学
  • 光子学是指光子学的使用方法.
  • 材料科学 材料科学 材料科学

背景情况:

  • 非阿贝尔几何相对于容错全方位量子计算的关键.
  • 光子实现缺乏可调性,阻碍了先进的光学信息处理.

研究的目的:

  • 在光子平台上演示可调节的,非挥发的几何相.
  • 在集成光学系统中实现强大的,可重新配置的高维操作.

主要方法:

  • 使用了多层光子平台与Sb2Se3相变材料.
  • 通过在晶体和无形状态之间切换Sb2Se3来动态控制几何相.
  • 能够在不同的全方位路径和特殊直角 (SO) 几何变换之间切换.

主要成果:

  • 证明了非挥发性的多级可调整的通用SO几何相.
  • 实现了对全学变态数量的动态控制.
  • 成功地在不同的全学路径和SO (m) 几何转换之间切换.

结论:

  • 弥合了几何相控和可重新配置的光子学之间的差距.
  • 在集成光子学中建立了容错,高维运行的范式.
  • 在光子系统中为强大的量子信息处理铺平了道路.