Topic: model-acceleration Goto Github
Some thing interesting about model-acceleration
Some thing interesting about model-acceleration
model-acceleration,Vision-lanugage model example code.
User: bnabis93
model-acceleration,A list of papers, docs, codes about diffusion distillation.This repo collects various distillation methods for the Diffusion model. Welcome to PR the works (papers, repositories) missed by the repo.
User: cantbebetter2
model-acceleration,Papers for deep neural network compression and acceleration
User: chester256
model-acceleration, Reduce the model complexity by 612 times, and memory footprint by 19.5 times compared to base model, while achieving worst case accuracy threshold.
User: dhingratul
model-acceleration,A list of high-quality (newest) AutoML works and lightweight models including 1.) Neural Architecture Search, 2.) Lightweight Structures, 3.) Model Compression, Quantization and Acceleration, 4.) Hyperparameter Optimization, 5.) Automated Feature Engineering.
User: guan-yuan
model-acceleration,A curated list of neural network pruning resources.
User: he-y
model-acceleration,A list of papers, docs, codes about model quantization. This repo is aimed to provide the info for model quantization research, we are continuously improving the project. Welcome to PR the works (papers, repositories) that are missed by the repo.
User: htqin
model-acceleration,Learn the ins and outs of efficiently serving Large Language Models (LLMs). Dive into optimization techniques, including KV caching and Low Rank Adapters (LoRA), and gain hands-on experience with Predibase’s LoRAX framework inference server.
User: ksm26
Home Page: https://www.deeplearning.ai/short-courses/efficiently-serving-llms/
model-acceleration,(NeurIPS-2019 MicroNet Challenge - 3rd Winner) Open source code for "SIPA: A simple framework for efficient networks"
User: lee-gihun
model-acceleration,This sample shows how to convert TensorFlow model to OpenVINO IR model and how to quantize OpenVINO model.
User: likholat
model-acceleration,[IJCNN'19, IEEE JSTSP'19] Caffe code for our paper "Structured Pruning for Efficient ConvNets via Incremental Regularization"; [BMVC'18] "Structured Probabilistic Pruning for Convolutional Neural Network Acceleration"
User: mingsun-tse
model-acceleration,MUSCO: MUlti-Stage COmpression of neural networks
Organization: musco-ai
model-acceleration,[ICML 2024] CrossGET: Cross-Guided Ensemble of Tokens for Accelerating Vision-Language Transformers.
User: sdc17
Home Page: https://arxiv.org/pdf/2305.17455.pdf
model-acceleration,Deep Learning Compression and Acceleration SDK -- deep model compression for Edge and IoT embedded systems, and deep model acceleration for clouds and private servers
User: signalogic
model-acceleration,Bayesian Optimization-Based Global Optimal Rank Selection for Compression of Convolutional Neural Networks, IEEE Access
User: taehyeonkim-pyomu
model-acceleration,Resources of our survey paper "A Systematic Review of AI Deployment on Resource-Constrained Edge Devices: Challenges, Techniques, and Applications"
User: wangxb96
model-acceleration,Collection of awesome diffusion acceleration resources.
User: xuyang-liu16
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