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Most implemented papers

ImageNet Training in Minutes

fuentesdt/livermask 14 Sep 2017

If we can make full use of the supercomputer for DNN training, we should be able to finish the 90-epoch ResNet-50 training in one minute.

Detecting Offensive Language in Tweets Using Deep Learning

gpitsilis/hate-speech 13 Jan 2018

This paper addresses the important problem of discerning hateful content in social media.

Deep Learning for Detecting Cyberbullying Across Multiple Social Media Platforms

sweta20/Detecting-Cyberbullying-Across-SMPs 19 Jan 2018

We show that deep learning based models can overcome all three bottlenecks.

Author Profiling for Abuse Detection

pushkarmishra/AuthorProfilingAbuseDetection COLING 2018

The rapid growth of social media in recent years has fed into some highly undesirable phenomena such as proliferation of hateful and offensive language on the Internet.

Nonlinear Conjugate Gradients For Scaling Synchronous Distributed DNN Training

apple/ml-ncg 7 Dec 2018

In this work, we propose and evaluate the stochastic preconditioned nonlinear conjugate gradient algorithm for large scale DNN training tasks.

Large-Scale Historical Watermark Recognition: dataset and a new consistency-based approach

XiSHEN0220/WatermarkReco 27 Aug 2019

Historical watermark recognition is a highly practical, yet unsolved challenge for archivists and historians.

TabFact: A Large-scale Dataset for Table-based Fact Verification

wenhuchen/Table-Fact-Checking ICLR 2020

To this end, we construct a large-scale dataset called TabFact with 16k Wikipedia tables as the evidence for 118k human-annotated natural language statements, which are labeled as either ENTAILED or REFUTED.

Classifying the classifier: dissecting the weight space of neural networks

gabrieleilertsen/nws 13 Feb 2020

of neural network classifiers, and train a large number of models to represent the weight space.

MorphoCluster: Efficient Annotation of Plankton images by Clustering

morphocluster/morphocluster 4 May 2020

By aggregating similar images into clusters, our novel approach to image annotation increases consistency, multiplies the throughput of an annotator and allows experts to adapt the granularity of their sorting scheme to the structure in the data.