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Recent progress of hafnium oxide-based ferroelectric devices for advanced circuit applications
Hafnium oxide-based ferroelectric field-effect-transistors (FeFET), which combine super-
steep logical switching and low power non-volatile memory functions, have significant …
steep logical switching and low power non-volatile memory functions, have significant …
Achieving software-equivalent accuracy for hyperdimensional computing with ferroelectric-based in-memory computing
Hyperdimensional computing (HDC) is a brain-inspired computational framework that relies
on long hypervectors (HVs) for learning. In HDC, computational operations consist of simple …
on long hypervectors (HVs) for learning. In HDC, computational operations consist of simple …
In-memory associative processors: Tutorial, potential, and challenges
In-memory computing is an emerging computing paradigm that overcomes the limitations of
exiting Von-Neumann computing architectures such as the memory-wall bottleneck. In such …
exiting Von-Neumann computing architectures such as the memory-wall bottleneck. In such …
A scalable design of multi-bit ferroelectric content addressable memory for data-centric computing
Content addressable memory (CAM) is widely used for data-centric computing for its
massive parallelism and pattern matching capability. Though the CAM density has been …
massive parallelism and pattern matching capability. Though the CAM density has been …
An Ultracompact Single‐Ferroelectric Field‐Effect Transistor Binary and Multibit Associative Search Engine
Content addressable memory (CAM) is widely used in associative search tasks due to its
parallel pattern matching capability. As more complex and data‐intensive tasks emerge, it is …
parallel pattern matching capability. As more complex and data‐intensive tasks emerge, it is …
A reconfigurable fefet content addressable memory for multi-state hamming distance
Pattern searches, a key operation in many data analytic applications, often deal with data
represented by multiple states per dimension. However, hash tables, a common software …
represented by multiple states per dimension. However, hash tables, a common software …
Fefet multi-bit content-addressable memories for in-memory nearest neighbor search
Nearest neighbor (NN) search computations are at the core of many applications such as
few-shot learning, classification, and hyperdimensional computing. As such, efficient …
few-shot learning, classification, and hyperdimensional computing. As such, efficient …
Dash-cam: Dynamic approximate search content addressable memory for genome classification
We propose a novel dynamic storage-based approximate search content addressable
memory (DASH-CAM) for computational genomics applications, particularly for identification …
memory (DASH-CAM) for computational genomics applications, particularly for identification …
Cosime: Fefet based associative memory for in-memory cosine similarity search
In a number of machine learning models, an input query is searched across the trained class
vectors to find the closest feature class vector in cosine similarity metric. However …
vectors to find the closest feature class vector in cosine similarity metric. However …
Ferroelectric ternary content addressable memories for energy-efficient associative search
A fast and efficient search function across the database has been a core component for a
number of data-intensive tasks in machine learning, IoT applications, and inference …
number of data-intensive tasks in machine learning, IoT applications, and inference …