Difference between revisions of "Winter 2018 CS291A Syllabus"
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**Ishani Gupta, Nidhi Hiremath | **Ishani Gupta, Nidhi Hiremath | ||
**Wenhu Chen, Zhiyu Chen | **Wenhu Chen, Zhiyu Chen | ||
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*03/13 Project: final presentation (2) | *03/13 Project: final presentation (2) | ||
**Ismet Burak Kadron | **Ismet Burak Kadron | ||
**Jiawei Wu, Jing Qian | **Jiawei Wu, Jing Qian | ||
− | ** | + | **XiyouZhou, JiangyueCai |
**Maohua Zhu, Liu Liu | **Maohua Zhu, Liu Liu | ||
**Pushkar Shukla, Richika Sharan | **Pushkar Shukla, Richika Sharan |
Revision as of 00:57, 28 February 2018
- 01/16 Introduction, logistics, NLP, and deep learning.
- 01/18 Tips for a successful class project
- 01/23 NLP Tasks
- 01/25 Word embeddings
- Conner : Efficient Non-parametric Estimation of Multiple Embeddings per Word in Vector Space, Neelakantan et al., EMNLP 2014
- Sanjana : Glove: Global Vectors for Word Representation, J Pennington, R Socher, CD Manning - EMNLP, 2014
- Wenhu : AutoExtend: Extending Word Embeddings to Embeddings for Synsets and Lexemes, Rothe and Schutze, ACL 2015
- 01/30 Neural network basics (Project proposal due to Grader: Ke Ni < ke00@ucsb.edu> , HW1 out)
- 02/01 Recursive Neural Networks
- 02/06 RNNs
- 02/08 LSTMs/GRUs
- 02/13 Sequence-to-sequence models and neural machine translation (HW1 due and HW2 out)
- Ryan : Learning Phrase Representations using RNN Encoder–Decoder for Statistical Machine Translation, Cho et al., EMNLP 2014
- Yanju : Sequence to Sequence Learning with Neural Networks, Sutskever et al., NIPS 2014
- Karthik : Achieving Open Vocabulary Neural Machine Translation with Hybrid Word-Character Models, Luong and Manning, ACL 2016
- 02/15 Attention mechanisms
- 02/20 Convolutional Neural Networks (Mid-term report due to Grader: Ke Ni <ke00@ucsb.edu>)
- Esther : Natural Language Processing (Almost) from Scratch, Collobert et al., JMLR 2011
- Maohua : A Sensitivity Analysis of (and Practitioners’ Guide to) Convolutional Neural Networks for Sentence Classification, Zhang and Wallace, Arxiv 2015
- Jiawei : Convolutional Neural Network Architectures for Matching Natural Language Sentences, Hu et al., NIPS 2014
- 02/22 Language and vision
- Sai : Show and Tell: A Neural Image Caption Generator, CVPR 2015
- Xiyou : Deep Visual-Semantic Alignments for Generating Image Descriptions, Andrej Karpathy and Li Fei-Fei, CVPR 2015
- Richika : Aligning Books and Movies: Towards Story-like Visual Explanations by Watching Movies and Reading Books, Zhu et al., ICCV 2015
- 02/27 Deep Reinforcement Learning 1 (HW2 due: 02/26 Monday 11:59pm)
- Sharon : Deep Reinforcement Learning for Dialogue Generation, Li et al., EMNLP 2016
- David : Improving Information Extraction by Acquiring External Evidence with Reinforcement Learning, Narasimh et al., EMNLP 2016
- Michael : Deep Reinforcement Learning with a Natural Language Action Space, He et al., ACL 2016
- 03/01 Deep Reinforcement Learning 2
- 03/06 Unsupervised Learning
- Hongmin : Generative Adversarial Nets, Goodfellow et al., NIPS 2014
- Burak : Auto-encoding variational Bayes, Kingma and Welling, ICLR 2014
- Pushkar : Unsupervised Representation Learning with Deep Convolutional Generative Adversarial Networks, Redford et al., 2015
- Liu : Semi-supervised Sequence Learning, Dai et al., NIPS 2015
- 03/08 Project: final presentation (1)
- Andy Chen
- Ashwini Patil, Sai Nikhil Maram
- David Bernadett
- Ishani Gupta, Nidhi Hiremath
- Wenhu Chen, Zhiyu Chen
- 03/13 Project: final presentation (2)
- Ismet Burak Kadron
- Jiawei Wu, Jing Qian
- XiyouZhou, JiangyueCai
- Maohua Zhu, Liu Liu
- Pushkar Shukla, Richika Sharan
- Sanjana Sahayaraj, Vivek Adarsh
- 03/15 Project: final presentation (3)
- Sharon Levy
- Conner Vercellino, Calvin Wang
- Trevor Morris, Chani Jindal
- Vivek Pradhan, Abhay Chennagiri
- Jashanvir Singh Taggar, Metehan Cekic
- Yanju Chen, Hongmin Wang
- 03/23 23:59PM PT Project Final Report Due. Grader: Ke Ni <ke00@ucsb.edu>