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A survey of optimization techniques for thermal-aware 3D processors
Interconnect scaling has become a major design challenge for traditional planar (2D)
integrated circuits (ICs). Three-dimensional (3D) IC that stacks multiple device layers …
integrated circuits (ICs). Three-dimensional (3D) IC that stacks multiple device layers …
[HTML][HTML] A Comprehensive Review of Processing-in-Memory Architectures for Deep Neural Networks
This comprehensive review explores the advancements in processing-in-memory (PIM)
techniques and chiplet-based architectures for deep neural networks (DNNs). It addresses …
techniques and chiplet-based architectures for deep neural networks (DNNs). It addresses …
Heat transfer enhancement for 3D chip thermal simulation and prediction
C Wang, K Vafai - Applied Thermal Engineering, 2024 - Elsevier
Parameter changes in the complex internal structure of multi-layer 3D stacked chips will
greatly reduce the efficiency of modeling and thermal analysis. In this work, by combining …
greatly reduce the efficiency of modeling and thermal analysis. In this work, by combining …
Learning-based application-agnostic 3D NoC design for heterogeneous manycore systems
The rising use of deep learning and other big-data algorithms has led to an increasing
demand for hardware platforms that are computationally powerful, yet energy-efficient. Due …
demand for hardware platforms that are computationally powerful, yet energy-efficient. Due …
Machine learning for design space exploration and optimization of manycore systems
In the emerging data-driven science paradigm, computing systems ranging from IoT and
mobile to manycores and datacenters play distinct roles. These systems need to be …
mobile to manycores and datacenters play distinct roles. These systems need to be …
A heterogeneous chiplet architecture for accelerating end-to-end transformer models
Transformers have revolutionized deep learning and generative modeling, enabling
advancements in natural language processing tasks. However, the size of transformer …
advancements in natural language processing tasks. However, the size of transformer …
Flow map** on mesh-based deep learning accelerator
Convolutional neural networks have been proposed as an approach for classifying data
corresponding to a variety of datasets. Indeed, developments in data diversity and …
corresponding to a variety of datasets. Indeed, developments in data diversity and …
A Survey on Heterogeneous CPU–GPU Architectures and Simulators
M Alaei, F Yazdanpanah - Concurrency and Computation …, 2025 - Wiley Online Library
Heterogeneous architectures are vastly used in various high performance computing
systems from IoT‐based embedded architectures to edge and cloud systems. Although …
systems from IoT‐based embedded architectures to edge and cloud systems. Although …
Design and optimization of heterogeneous manycore systems enabled by emerging interconnect technologies: Promises and challenges
Due to the growing needs of Big Data applications (eg, deep learning, graph analytics, and
scientific computing) and the ending of Moore's law, there is a great need for low-cost, high …
scientific computing) and the ending of Moore's law, there is a great need for low-cost, high …
Hybrid on-chip communication architectures for heterogeneous manycore systems
The widespread adoption of big data has led to the search for highperformance and low-
power computational platforms. Emerging heterogeneous manycore processing platforms …
power computational platforms. Emerging heterogeneous manycore processing platforms …