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  1. DNN 基础之一 核心讲义

  2. CSE 5526: Introduction to Neural Networks Hopfield Network for Associative Memory 你懂的!OSU 内部权威讲义
  3. 所属分类:讲义

    • 发布日期:2015-01-16
    • 文件大小:667kb
    • 提供者:labilizations
  1. 斯坦福大学深度学习手册全集

  2. 斯坦福大学深度学习手册(全集),深度学习入门基础教程,简单易懂,上手快
  3. 所属分类:讲义

    • 发布日期:2015-11-12
    • 文件大小:4mb
    • 提供者:wojiushijava
  1. LSTM及其在语音识别中的应用

  2. 经过几十年的研究与发展,语音识别建立了以隐马尔可夫模型(Hidden Markov Models,HMM)为基础的框架。近几年,在HMM基础上深度神经网络(Deep Neural Network,DNN)的应用大幅度提升了语音识别系统的性能。DNN将每一帧语音及其前后的几帧语音拼接在一起作为网络的输入,从而利用语音序列中上下文的信息。DNN中每次输入的帧数是固定的,不同的窗长对最终的识别结果会有影响。递归神经网络(Recurrent neural network,RNN)通过递归来挖掘序列中的
  3. 所属分类:专业指导

    • 发布日期:2016-12-03
    • 文件大小:303kb
    • 提供者:u014780546
  1. cudnn-8.0-windows10-x64-v6.0

  2. NVIDIA® cuDNN is a GPU-accelerated library of primitives for deep neural networks. cuDNN是一个对DNN的GPU加速库。他提供高度可调整的在DNN中的常用的例程实现。 It provides highly tuned implementations of routines arising frequently in DNN applications: 常用语前向后向卷积网络,包括交叉相关。Convolutio
  3. 所属分类:其它

    • 发布日期:2017-10-30
    • 文件大小:101mb
    • 提供者:ziqjay
  1. Deep learning Methods and Applications

  2. 微软大佬邓力的关于深度学习及应用的力作,主要是在语音方向, Table of Contents Chapter 1 Introduction .................................................................................................................... 5 1.1 Definitions and Background.............................
  3. 所属分类:深度学习

    • 发布日期:2017-12-22
    • 文件大小:3mb
    • 提供者:wangdq_1989
  1. Deep Neural Networks in a Mathematical Framework-Springer(2018).pdf

  2. Over the past decade, Deep Neural Networks (DNNs) have become very popular models for problems involving massive amounts of data. The most successful DNNs tend to be characterized by several layers of parametrized linear and nonlinear transformation
  3. 所属分类:深度学习

    • 发布日期:2018-03-27
    • 文件大小:724kb
    • 提供者:windstand
  1. 源码+书TensorFlow 1.x Deep Learning Cookbook

  2. In this book, you will learn how to efficiently use TensorFlow, Google's open source framework for deep learning. You will implement different deep learning networks such as Convolutional Neural Networks (CNNs), Recurrent Neural Networks (RNNs), Dee
  3. 所属分类:深度学习

    • 发布日期:2018-07-29
    • 文件大小:88mb
    • 提供者:wang1062807258
  1. hot chip 2018 第二天会议材料

  2. 《NVSWITCH AND DGX-2 NVLINK-SWITCHING CHIP AND SCALE-UP COMPUTE SERVER》;《Analog Computation in Flash Memory for Datacenter-scale AI Inference in a Small Chip》;《Arm’s First-Generation Machine Learning Processor》;《THE NVIDIA DEEP LEARNING ACCELERATOR》;
  3. 所属分类:机器学习

    • 发布日期:2018-08-30
    • 文件大小:22mb
    • 提供者:xxxyyy114
  1. Multi-column deep neural network for traffic sign classification

  2. 交通信号灯识别We describe the approach that won the final phase of the German traffic sign recognition benchmark. Our method is the only one that achieved a better-than-human recognition rate of 99.46%. We use a fast, fully parameterizable GPU implementati
  3. 所属分类:机器学习

    • 发布日期:2018-03-04
    • 文件大小:1mb
    • 提供者:qq_35485928
  1. tensorflow 安装

  2. 官方版,In MMdnn, we focus on helping user handle their work better. Find model We provide a model collection to help you find some popular models. We provide a model visualizer to display the network architecture more intuitively. Conversion We impleme
  3. 所属分类:机器学习

    • 发布日期:2018-09-04
    • 文件大小:30mb
    • 提供者:u013795731
  1. CVPR2018_Oral_论文合集_人工智能_机器学习

  2. CVPR2018的oral论文合集。 包含以下论文: A Certifiably Globally Optimal Solution to the Non-Minimal Relative Pose Problem.pdf Accurate and Diverse Sampling of Sequences based on a “Best of Many” Sample Objective .pdf Actor and Action Video Segmentation from a Sent
  3. 所属分类:机器学习

    • 发布日期:2018-12-24
    • 文件大小:149mb
    • 提供者:bitorlee
  1. Deep Neural Network-Based Digital Predistorter for Doherty Power Amplifiers

  2. Abstract—In this letter, measured adjacent channel leakage ratio (ACLR) results using a GaN Doherty power amplifier will show that for less than 2000 coefficients, sigmoid activated deep neural network (DNN)-based digital predistorter (DPD) outperfo
  3. 所属分类:电信

    • 发布日期:2019-08-15
    • 文件大小:738kb
    • 提供者:happysheep2008
  1. SOUND SOURCE LOCALIZATION BASED ON DEEP NEURAL NETWORKS WITH DIRECTIONAL ACTIVATE FUNCTION EXPLOITING PHASE INFORMATION

  2. This paper describes sound source localization (SSL) based on deep neural networks (DNNs) using discriminative training. A na¨ıve DNNs for SSL can be configured as follows. Input is the frequency-domain feature used in other SSL methods, and the str
  3. 所属分类:深度学习

  1. LISTEN ATTEND AND SPELL A NEURAL NETWORK FOR SPEECH RECOGNITION.pdf

  2. 语音识别LAS结构where d and y, are MLP networks. After training, the a; distribution Table 1: WER comparison on the clean and noisy Google voice is typically very sharp and focuses on only a few frames of h; ci car search task. The CLDNN-hMM system is the s
  3. 所属分类:专业指导

    • 发布日期:2019-07-13
    • 文件大小:632kb
    • 提供者:weixin_41778389
  1. 【李宏毅机器学习笔记】8、Tips for Training DNN

  2. 【李宏毅机器学习笔记】1、回归问题(Regression) 【李宏毅机器学习笔记】2、error产生自哪里? 【李宏毅机器学习笔记】3、gradient descent 【李宏毅机器学习笔记】4、Classification 【李宏毅机器学习笔记】5、Logistic Regression 【李宏毅机器学习笔记】6、简短介绍Deep Learning 【李宏毅机器学习笔记】7、反向传播(Backpropagation) 【李宏毅机器学习笔记】8、Tips for Training DNN 【李宏
  3. 所属分类:其它

  1. AlphaTree-graphic-deep-neural-network:AI路线图-源码

  2. AlphaTree:DNN && GAN && NLP && BIG DATA从新手到深度学习应用工程师 从AI研究的角度来说,AI的学习和跟进是有偏向性的,更多的精英是优秀长相关的一到两个领域,在这个领域做到更好。而从AI应用工程师的角度来说,每一个工程都可能涉及很多个AI的方向,而他们需要了解掌握不同的方向才能更好的开发和设计。 但是每位研究人员写纸的风格都不一样,相似的模型,为了突出不同的改进点,他们对模型的描述和图示都可能大不相同。为了帮助更多的人在不同领域能够快速跟进前沿技术,我们构建
  3. 所属分类:其它

    • 发布日期:2021-03-23
    • 文件大小:64mb
    • 提供者:weixin_42103587
  1. Ground penetrating radar target recognition method for deep neural network based on Fisher criterion

  2. a method using deep neural network(DNN) ground penetrating radar(GPR) based on Fisher criterion to recognize and classify underground targets is proposed. First of all, the GPR echo signal is pre processed, including direct wave removal, background n
  3. 所属分类:其它

  1. Three-dimensional tomography of red blood cells using deep learning

  2. We accurately reconstruct three-dimensional (3-D) refractive index (RI) distributions from highly ill-posed two-dimensional (2-D) measurements using a deep neural network (DNN). Strong distortions are introduced on reconstructions obtained by the Wol
  3. 所属分类:其它

  1. 【李宏毅机器学习笔记】9、卷积神经网络(Convolutional Neural Network,CNN)

  2. 【李宏毅机器学习笔记】1、回归问题(Regression) 【李宏毅机器学习笔记】2、error产生自哪里? 【李宏毅机器学习笔记】3、gradient descent 【李宏毅机器学习笔记】4、Classification 【李宏毅机器学习笔记】5、Logistic Regression 【李宏毅机器学习笔记】6、简短介绍Deep Learning 【李宏毅机器学习笔记】7、反向传播(Backpropagation) 【李宏毅机器学习笔记】8、Tips for Training DNN 【李宏
  3. 所属分类:其它

  1. (七)OpenCV深度神经网络(DNN)模块_02_使用SSD模型实现(实时)对象检测、GOTURN模型实现对象跟踪

  2. SSD模型: 下载:https://github.com/weiliu89/caffe/tree/ssd#models Fast-R-CNN模型基础上延伸(在特征图上采用卷积核来预测) 刚开始的层使用图像分类模型中的层,称为base network,在此基础上,添加一些辅助结构: Mult-scale feature map for detection 在base network后,添加一些卷积层,这些层的大小逐渐减小,可以进行多尺度预测。 Convolutional predictors fo
  3. 所属分类:其它

    • 发布日期:2021-01-20
    • 文件大小:98kb
    • 提供者:weixin_38667849
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