From 532b024ec8c4a452fe8457ed1cfad2463cfafa18 Mon Sep 17 00:00:00 2001 From: "Jip J. Dekker" Date: Thu, 24 May 2018 16:52:39 +1000 Subject: [PATCH 1/6] New title and restructuring --- mini_proj/report/waldo.tex | 6 +++--- 1 file changed, 3 insertions(+), 3 deletions(-) diff --git a/mini_proj/report/waldo.tex b/mini_proj/report/waldo.tex index da620bb..1dbad7c 100644 --- a/mini_proj/report/waldo.tex +++ b/mini_proj/report/waldo.tex @@ -20,7 +20,7 @@ \usepackage{natbib} \begin{document} - \title{Waldo discovery using Neural Networks} + \title{What is waldo} \author{Kelvin Davis \and Jip J. Dekker\and Anthony Silvestere} \maketitle @@ -34,9 +34,9 @@ \section{Methods} - \section{Results} + \section{Results and Discussion} - \section{Discussion and Conclusion} + \section{Conclusion} \bibliographystyle{humannat} \bibliography{references} From b8596e9575ebf8f9de006f27a3ae140563e17804 Mon Sep 17 00:00:00 2001 From: "Jip J. 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--git a/mini_proj/report/waldo.tex b/mini_proj/report/waldo.tex index 1dbad7c..08e2e1d 100644 --- a/mini_proj/report/waldo.tex +++ b/mini_proj/report/waldo.tex @@ -20,7 +20,7 @@ \usepackage{natbib} \begin{document} - \title{What is waldo} + \title{What is Waldo?} \author{Kelvin Davis \and Jip J. Dekker\and Anthony Silvestere} \maketitle @@ -30,13 +30,55 @@ \section{Introduction} - \section{Background} + Almost every child around the world knows about ``Where's Waldo?'', also + known as ``Where's Wally?'' in some countries. This famous puzzle book has + spread its way across the world and is published in more than 25 different + languages. The idea behind the books is to find the character ``Waldo'', + shown in \Cref{fig:waldo}, in the different pictures in the book. This is, + however, not as easy as it sounds. Every picture in the book is full of tiny + details and Waldo is only one out of many. The puzzle is made even harder by + the fact that Waldo is not always fully depicted, sometimes it is just his + head or his torso popping out from behind something else. Lastly, the reason + that even adults will have trouble spotting Waldo is the fact that the + pictures are full of ``Red Herrings'': things that look like (or are colored + as) Waldo, but are not actually Waldo. - \section{Methods} + \begin{figure}[ht] + \includegraphics[scale=0.35]{waldo} + \centering + \caption{A headshot of the character ``Waldo'', or ``Wally''. Pictures of + Waldo copyrighted by Martin Handford used under the fair-use policy.} + \label{fig:waldo} + \end{figure} - \section{Results and Discussion} + The task of finding Waldo is something that relates to a lot of real life + image recognition tasks. Fields like mining, astronomy, surveillance, + radiology, and microbiology often have to analyse images (or scans) to find + the tiniest details, sometimes undetectable by the human eye. These tasks + are especially hard when the thing(s) you are looking for are similar to the + rest of the images. These tasks are thus generally performed using computers + to identify possible matches. - \section{Conclusion} + ``Where's Waldo?'' offers us a great tool to study this kind of problem in a + setting that is humanly tangible. In this report we will try to identify + Waldo in the puzzle images using different classification methods. Every + image will be split into different segments and every segment will have to + be classified as either being ``Waldo'' or ``not Waldo''. We will compare + various different classification methods from more classical machine + learning, like naive Bayes classifiers, to the currently state of the art, + Neural Networks. In \Cref{sec:background} we will introduce the different + classification methods, \Cref{sec:methods} will explain the way in which + these methods are trained and how they will be evaluated, in + \Cref{sec:results} will discuss the results, and \Cref{sec:conclusion} will + offer our final conclusions. + + \section{Background} \label{sec:background} + + \section{Methods} \label{sec:methods} + + \section{Results and Discussion} \label{sec:results} + + \section{Conclusion} \label{sec:conclusion} \bibliographystyle{humannat} \bibliography{references} From e888b93355a1c9c1ac64d71b16eac3d1184e67fb Mon Sep 17 00:00:00 2001 From: Kelvin Davis <273degreeskelvin@gmail.com> Date: Fri, 25 May 2018 10:58:21 +1000 Subject: [PATCH 3/6] Method Benchmarks and Measures --- mini_proj/report/references.bib | 17 +++++++++++ mini_proj/report/waldo.tex | 52 +++++++++++++++++++++++++++++++++ 2 files changed, 69 insertions(+) diff --git a/mini_proj/report/references.bib b/mini_proj/report/references.bib index e69de29..2229169 100644 --- a/mini_proj/report/references.bib +++ b/mini_proj/report/references.bib @@ -0,0 +1,17 @@ +@article{Kotsiantis2007, +abstract = {Supervised machine learning is the search for algorithms that reason from externally supplied instances to produce general hypotheses, which then make predictions about future instances. In other words, the goal of supervised learning is to build a concise model of the distribution of class labels in terms of predictor features. The resulting classifier is then used to assign class labels to the testing instances where the values of the predictor features are known, but the value of the class label is unknown. This paper describes various supervised machine learning classification techniques. Of course, a single article cannot be a complete review of all supervised machine learning classification algorithms (also known induction classification algorithms), yet we hope that the references cited will cover the major theoretical issues, guiding the researcher in interesting research directions and suggesting possible bias combinations that have yet to be explored.}, +author = {Kotsiantis, Sotiris B.}, +doi = {10.1115/1.1559160}, +file = {:home/kelvin/.local/share/data/Mendeley Ltd./Mendeley Desktop/Downloaded/Kotsiantis - 2007 - Supervised machine learning A review of classification techniques.pdf:pdf}, +isbn = {1586037803}, +issn = {09226389}, +journal = {Informatica}, +keywords = {algorithms analysis classifiers computational conn,classifiers,data mining techniques,intelligent data analysis,learning algorithms}, +mendeley-groups = {CS Proj/ML,CS Proj,Thesis,Thesis/ML}, +pages = {249--268}, +title = {{Supervised machine learning: A review of classification techniques}}, +url = {http://books.google.com/books?hl=en{\&}lr={\&}id=vLiTXDHr{\_}sYC{\&}oi=fnd{\&}pg=PA3{\&}dq=survey+machine+learning{\&}ots=CVsyuwYHjo{\&}sig=A6wYWvywU8XTc7Dzp8ZdKJaW7rc{\%}5Cnpapers://5e3e5e59-48a2-47c1-b6b1-a778137d3ec1/Paper/p800{\%}5Cnhttp://www.informatica.si/PDF/31-3/11{\_}Kotsiantis - S}, +volume = {31}, +year = {2007} +} + diff --git a/mini_proj/report/waldo.tex b/mini_proj/report/waldo.tex index da620bb..3b941f7 100644 --- a/mini_proj/report/waldo.tex +++ b/mini_proj/report/waldo.tex @@ -32,8 +32,60 @@ \section{Background} + This paper is mad \cite{Kotsiantis2007}. + \section{Methods} + % Kelvin Start + \subsection{Benchmarking}\label{benchmarking} + + In order to benchmark the Neural Networks, the performance of these + algorithms are evaluated against other Machine Learning algorithms. We + use Support Vector Machines, K-Nearest Neighbours (\(K=5\)), Gaussian + Naive Bayes and Random Forest classifiers, as provided in Scikit-Learn. + + \subsection{Performance Metrics}\label{performance-metrics} + + To evaluate the performance of the models, we record the time taken by + each model to train, based on the training data and statistics about the + predictions the models make on the test data. These prediction + statistics include: + + \begin{itemize} + \tightlist + \item + \textbf{Accuracy:} + \[a = \dfrac{|correct\ predictions|}{|predictions|} = \dfrac{tp + tn}{tp + tn + fp + fn}\] + \item + \textbf{Precision:} + \[p = \dfrac{|Waldo\ predicted\ as\ Waldo|}{|predicted\ as\ Waldo|} = \dfrac{tp}{tp + fp}\] + \item + \textbf{Recall:} + \[r = \dfrac{|Waldo\ predicted\ as\ Waldo|}{|actually\ Waldo|} = \dfrac{tp}{tp + fn}\] + \item + \textbf{F1 Measure:} \[f1 = \dfrac{2pr}{p + r}\] where \(tp\) is the + number of true positives, \(tn\) is the number of true negatives, + \(fp\) is the number of false positives, and \(tp\) is the number of + false negatives. + \end{itemize} + + Accuracy is a common performance metric used in Machine Learning, + however in classification problems where the training data is heavily + biased toward one category, sometimes a model will learn to optimize its + accuracy by classifying all instances as one category. I.e. the + classifier will classify all images that do not contain Waldo as not + containing Waldo, but will also classify all images containing Waldo as + not containing Waldo. Thus we use, other metrics to measure performance + as well. + + \emph{Precision} returns the percentage of classifications of Waldo that + are actually Waldo. \emph{Recall} returns the percentage of Waldos that + were actually predicted as Waldo. In the case of a classifier that + classifies all things as Waldo, the recall would be 0. \emph{F1-Measure} + returns a combination of precision and recall that heavily penalises + classifiers that perform poorly in either precision or recall. + % Kelvin End + \section{Results} \section{Discussion and Conclusion} From ca966cb12e56012a83eae8962441635bc548f71f Mon Sep 17 00:00:00 2001 From: "Jip J. Dekker" Date: Fri, 25 May 2018 11:31:55 +1000 Subject: [PATCH 4/6] Add intro and references to the background section --- mini_proj/report/references.bib | 35 ++++++++++++++++++++++++ mini_proj/report/waldo.tex | 47 ++++++++++++++++++++++++++++++--- 2 files changed, 79 insertions(+), 3 deletions(-) diff --git a/mini_proj/report/references.bib b/mini_proj/report/references.bib index e69de29..69700f7 100644 --- a/mini_proj/report/references.bib +++ b/mini_proj/report/references.bib @@ -0,0 +1,35 @@ +@techreport{knn, + title={Discriminatory analysis-nonparametric discrimination: consistency properties}, + author={Fix, Evelyn and Hodges Jr, Joseph L}, + year={1951}, + institution={California Univ Berkeley} +} +@article{svm, + title={Support-vector networks}, + author={Cortes, Corinna and Vapnik, Vladimir}, + journal={Machine learning}, + volume={20}, + number={3}, + pages={273--297}, + year={1995}, + publisher={Springer} +} +@article{naivebayes, + title={Idiot's Bayes—not so stupid after all?}, + author={Hand, David J and Yu, Keming}, + journal={International statistical review}, + volume={69}, + number={3}, + pages={385--398}, + year={2001}, + publisher={Wiley Online Library} +} +@article{randomforest, + title={Classification and regression by randomForest}, + author={Liaw, Andy and Wiener, Matthew and others}, + journal={R news}, + volume={2}, + number={3}, + pages={18--22}, + year={2002} +} diff --git a/mini_proj/report/waldo.tex b/mini_proj/report/waldo.tex index 08e2e1d..0cc2217 100644 --- a/mini_proj/report/waldo.tex +++ b/mini_proj/report/waldo.tex @@ -19,6 +19,9 @@ \usepackage{bookmark} \usepackage{natbib} + \usepackage{xcolor} + \newcommand{\todo}[1]{\marginpar{{\textsf{TODO}}}{\textbf{\color{red}[#1]}}} + \begin{document} \title{What is Waldo?} \author{Kelvin Davis \and Jip J. Dekker\and Anthony Silvestere} @@ -46,8 +49,10 @@ \begin{figure}[ht] \includegraphics[scale=0.35]{waldo} \centering - \caption{A headshot of the character ``Waldo'', or ``Wally''. Pictures of - Waldo copyrighted by Martin Handford used under the fair-use policy.} + \caption{ + A headshot of the character ``Waldo'', or ``Wally''. Pictures of Waldo + copyrighted by Martin Handford and are used under the fair-use policy. + } \label{fig:waldo} \end{figure} @@ -74,13 +79,49 @@ \section{Background} \label{sec:background} + The classification methods used can separated into two separate groups: + classical machine learning methods and neural network architectures. Many of + the classical machine learning algorithms have variations and improvements + for various purposes; however, for this report we will be using their only + their basic versions. In contrast, we will use different neural network + architectures, as this method is currently the most used for image + classification. + + \subsection{Classical Machine Learning Methods} + + \paragraph{Naive Bayes Classifier} + + \cite{naivebayes} + + \paragraph{$k$-Nearest Neighbors} + + ($k$-NN) \cite{knn} + + \paragraph{Support Vector Machine} + + \cite{svm} + + \paragraph{Random Forest} + + \cite{randomforest} + + \subsection{Neural Network Architectures} + \todo{Did we only do the three in the end? (Alexnet?)} + + \paragraph{Convolutional Neural Networks} + + \paragraph{LeNet} + + \paragraph{Fully Convolutional Neural Networks} + + \section{Methods} \label{sec:methods} \section{Results and Discussion} \label{sec:results} \section{Conclusion} \label{sec:conclusion} - \bibliographystyle{humannat} + \bibliographystyle{alpha} \bibliography{references} \end{document} From afb5b1d971af1f7c7b84ccd7db92b10a6b73c2fd Mon Sep 17 00:00:00 2001 From: "Jip J. Dekker" Date: Fri, 25 May 2018 11:36:49 +1000 Subject: [PATCH 5/6] Small fixes --- mini_proj/report/waldo.tex | 5 ++--- 1 file changed, 2 insertions(+), 3 deletions(-) diff --git a/mini_proj/report/waldo.tex b/mini_proj/report/waldo.tex index 25703ef..27416de 100644 --- a/mini_proj/report/waldo.tex +++ b/mini_proj/report/waldo.tex @@ -72,7 +72,7 @@ various different classification methods from more classical machine learning, like naive Bayes classifiers, to the currently state of the art, Neural Networks. In \Cref{sec:background} we will introduce the different - classification methods, \Cref{sec:methods} will explain the way in which + classification methods, \Cref{sec:method} will explain the way in which these methods are trained and how they will be evaluated, in \Cref{sec:results} will discuss the results, and \Cref{sec:conclusion} will offer our final conclusions. @@ -117,7 +117,7 @@ \todo{This paper is mad \cite{Kotsiantis2007}.} - \section{Methods} + \section{Method} \label{sec:method} % Kelvin Start \subsection{Benchmarking}\label{benchmarking} @@ -135,7 +135,6 @@ statistics include: \begin{itemize} - \tightlist \item \textbf{Accuracy:} \[a = \dfrac{|correct\ predictions|}{|predictions|} = \dfrac{tp + tn}{tp + tn + fp + fn}\] From 73ac8cc3505ebd3fa446aa174eb69f1fc7f3cb8b Mon Sep 17 00:00:00 2001 From: "Jip J. Dekker" Date: Fri, 25 May 2018 11:41:52 +1000 Subject: [PATCH 6/6] Added the recommended paper in the classical ML intro --- mini_proj/report/waldo.tex | 7 +++++-- 1 file changed, 5 insertions(+), 2 deletions(-) diff --git a/mini_proj/report/waldo.tex b/mini_proj/report/waldo.tex index 27416de..ae18c3e 100644 --- a/mini_proj/report/waldo.tex +++ b/mini_proj/report/waldo.tex @@ -89,6 +89,11 @@ \subsection{Classical Machine Learning Methods} + The following paragraphs will give only brief descriptions of the different + classical machine learning methods used in this reports. For further reading + we recommend reading ``Supervised machine learning: A review of + classification techniques'' \cite{Kotsiantis2007}. + \paragraph{Naive Bayes Classifier} \cite{naivebayes} @@ -115,8 +120,6 @@ \paragraph{Fully Convolutional Neural Networks} - \todo{This paper is mad \cite{Kotsiantis2007}.} - \section{Method} \label{sec:method} % Kelvin Start