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  1. \documentclass[a4paper]{article}
  2. \usepackage{amsmath}
  3. \usepackage{hyperref}
  4. \usepackage{graphicx}
  5. \title{Using local binary patterns to read license plates in photographs}
  6. % Paragraph indentation
  7. \setlength{\parindent}{0pt}
  8. \setlength{\parskip}{1ex plus 0.5ex minus 0.2ex}
  9. \begin{document}
  10. \maketitle
  11. \section*{Project members}
  12. Gijs van der Voort\\
  13. Richard Torenvliet\\
  14. Jayke Meijer\\
  15. Tadde\"us Kroes\\
  16. Fabi\'en Tesselaar
  17. \tableofcontents
  18. \pagebreak
  19. \setcounter{secnumdepth}{1}
  20. \section{Problem description}
  21. License plates are used for uniquely identifying motorized vehicles and are
  22. made to be read by humans from great distances and in all kinds of weather
  23. conditions.
  24. Reading license plates with a computer is much more difficult. Our dataset
  25. contains photographs of license plates from various angles and distances. This
  26. means that not only do we have to implement a method to read the actual
  27. characters, but given the location of the license plate and each individual
  28. character, we must make sure we transform each character to a standard form.
  29. This has to be done or else the local binary patterns will never match!
  30. Determining what character we are looking at will be done by using Local Binary
  31. Patterns. The main goal of our research is finding out how effective LBP's are
  32. in classifying characters on a license plate.
  33. In short our program must be able to do the following:
  34. \begin{enumerate}
  35. \item Use a perspective transformation to obtain an upfront view of license
  36. plate.
  37. \item Reduce noise where possible to ensure maximum readability.
  38. \item Extracting characters using the location points in the xml file.
  39. \item Transforming a character to a normal form.
  40. \item Creating a local binary pattern histogram vector.
  41. \item Matching the found vector with a learning set.
  42. \item And finally it has to check results with a real data set.
  43. \end{enumerate}
  44. \section{Language of choice}
  45. The actual purpose of this project is to check if LBP is capable of recognizing
  46. license plate characters. We knew the LBP implementation would be pretty
  47. simple. Thus an advantage had to be its speed compared with other license plate
  48. recognition implementations, but the uncertainity of whether we could get some
  49. results made us pick Python. We felt Python would not restrict us as much in
  50. assigning tasks to each member of the group. In addition, when using the
  51. correct modules to handle images, Python can be decent in speed.
  52. \section{Implementation}
  53. Now we know what our program has to be capable of, we can start with the
  54. implementations.
  55. \subsection{Transformation}
  56. A simple perspective transformation will be sufficient to transform and resize
  57. the plate to a normalized format. The corner positions of license plates in the
  58. dataset are supplied together with the dataset.
  59. \subsection{Extracting a letter}
  60. NO LONGER VALID!
  61. Because we are already given the locations of the characters, we only need to
  62. transform those locations using the same perspective transformation used to
  63. create a front facing license plate. The next step is to transform the
  64. characters to a normalized manner. The size of the letter W is used as a
  65. standard to normalize the width of all the characters, because W is the widest
  66. character of the alphabet. We plan to also normalize the height of characters,
  67. the best manner for this is still to be determined.
  68. \begin{enumerate}
  69. \item Crop the image in such a way that the character precisely fits the
  70. image.
  71. \item Scale the image to a standard height.
  72. \item Extend the image on either the left or right side to a certain width.
  73. \end{enumerate}
  74. The resulting image will always have the same size, the character contained
  75. will always be of the same height, and the character will alway be positioned
  76. at either the left of right side of the image.
  77. \subsection{Reducing noise}
  78. Small amounts of noise will probably be suppressed by usage of a Gaussian
  79. filter. A real problem occurs in very dirty license plates, where branches and
  80. dirt over a letter could radically change the local binary pattern. A question
  81. we can ask ourselves here, is whether we want to concentrate ourselves on these
  82. exceptional cases. By law, license plates have to be readable. Therefore, we
  83. will first direct our attention at getting a higher score in the 'regular' test
  84. set before addressing these cases. Considered the fact that the LBP algorithm
  85. divides a letter into a lot of cells, there is a good change that a great
  86. number of cells will still match the learning set, and thus still return the
  87. correct character as a best match. Therefore, we expect the algorithm to be
  88. very robust when dealing with noisy images.
  89. \subsection{Local binary patterns}
  90. Once we have separate digits and characters, we intent to use Local Binary
  91. Patterns (Ojala, Pietikäinen \& Harwood, 1994) to determine what character
  92. or digit we are dealing with. Local Binary
  93. Patterns are a way to classify a texture based on the distribution of edge
  94. directions in the image. Since letters on a license plate consist mainly of
  95. straight lines and simple curves, LBP should be suited to identify these.
  96. \subsubsection{LBP Algorithm}
  97. The LBP algorithm that we implemented is a square variant of LBP, the same
  98. that is introduced by Ojala et al (1994). Wikipedia presents a different
  99. form where the pattern is circular.
  100. \begin{itemize}
  101. \item Determine the size of the square where the local patterns are being
  102. registered. For explanation purposes let the square be 3 x 3. \\
  103. \item The grayscale value of the middle pixel is used a threshold. Every value
  104. of the pixel around the middle pixel is evaluated. If it's value is greater
  105. than the threshold it will be become a one else a zero.
  106. \begin{figure}[h!]
  107. \center
  108. \includegraphics[scale=0.5]{lbp.png}
  109. \caption{LBP 3 x 3 (Pietik\"ainen, Hadid, Zhao \& Ahonen (2011))}
  110. \end{figure}
  111. Notice that the pattern will be come of the form 01001110. This is done when a
  112. the value of the evaluated pixel is greater than the threshold, shift the bit
  113. by the n(with i=i$_{th}$ pixel evaluated, starting with $i=0$).
  114. This results in a mathematical expression:
  115. Let I($x_i, y_i$) an Image with grayscale values and $g_n$ the grayscale value
  116. of the pixel $(x_i, y_i)$. Also let $s(g_i, g_c)$ (see below) with $g_c$ = grayscale value
  117. of the center pixel and $g_i$ the grayscale value of the pixel to be evaluated.
  118. $$
  119. s(g_i, g_c) = \left\{
  120. \begin{array}{l l}
  121. 1 & \quad \text{if $g_i$ $\geq$ $g_c$}\\
  122. 0 & \quad \text{if $g_i$ $<$ $g_c$}\\
  123. \end{array} \right.
  124. $$
  125. $$LBP_{n, g_c = (x_c, y_c)} = \sum\limits_{i=0}^{n-1} s(g_i, g_c)^{2i} $$
  126. The outcome of this operations will be a binary pattern.
  127. \item Given this pattern, the next step is to divide the pattern in cells. The
  128. amount of cells depends on the quality of the result, so trial and error is in
  129. order. Starting with dividing the pattern in to cells of size 16.
  130. \item Compute a histogram for each cell.
  131. \begin{figure}[h!]
  132. \center
  133. \includegraphics[scale=0.7]{cells.png}
  134. \caption{Divide in cells(Pietik\"ainen et all (2011))}
  135. \end{figure}
  136. \item Consider every histogram as a vector element and concatenate these. The
  137. result is a feature vector of the image.
  138. \item Feed these vectors to a support vector machine. This will ''learn'' which
  139. vector indicates what vector is which character.
  140. \end{itemize}
  141. To our knowledge, LBP has yet not been used in this manner before. Therefore,
  142. it will be the first thing to implement, to see if it lives up to the
  143. expectations. When the proof of concept is there, it can be used in the final
  144. program.
  145. Important to note is that due to the normalization of characters before
  146. applying LBP. Therefore, no further normalization is needed on the histograms.
  147. Given the LBP of a character, a Support Vector Machine can be used to classify
  148. the character to a character in a learning set. The SVM uses
  149. \subsection{Matching the database}
  150. Given the LBP of a character, a Support Vector Machine can be used to classify
  151. the character to a character in a learning set. The SVM uses the collection of
  152. histograms of an image as a feature vector. The SVM can be trained with a
  153. subsection of the given dataset called the ''Learning set''. Once trained, the
  154. entire classifier can be saved as a Pickle object\footnote{See
  155. \url{http://docs.python.org/library/pickle.html}} for later usage.
  156. \section{Implementation}
  157. In this section we will describe our implementations in more detail, explaining
  158. choices we made.
  159. \subsection{Licenseplate retrieval}
  160. In order to retrieve the license plate from the entire image, we need to
  161. perform a perspective transformation. However, to do this, we need to know the
  162. coordinates of the four corners of the licenseplate. For our dataset, this is
  163. stored in XML files. So, the first step is to read these XML files.
  164. \paragraph*{XML reader}
  165. The XML reader will return a 'license plate' object when given an XML file. The
  166. licence plate holds a list of, up to six, NormalizedImage characters and from
  167. which country the plate is from. The reader is currently assuming the XML file
  168. and image name are corresponding. Since this was the case for the given
  169. dataset. This can easily be adjusted if required.
  170. To parse the XML file, the minidom module is used. So the XML file can be
  171. treated as a tree, where one can search for certain nodes. In each XML
  172. file it is possible that multiple versions exist, so the first thing the reader
  173. will do is retrieve the current and most up-to-date version of the plate. The
  174. reader will only get results from this version.
  175. Now we are only interested in the individual characters so we can skip the
  176. location of the entire license plate. Each character has
  177. a single character value, indicating what someone thought what the letter or
  178. digit was and four coordinates to create a bounding box. To make things not to
  179. complicated a Character class and Point class are used. They
  180. act pretty much as associative lists, but it gives extra freedom on using the
  181. data. If less then four points have been set the character will not be saved.
  182. When four points have been gathered the data from the actual image is being
  183. requested. For each corner a small margin is added (around 3 pixels) so that no
  184. features will be lost and minimum amounts of new features will be introduced by
  185. noise in the margin.
  186. In the next section you can read more about the perspective transformation that
  187. is being done. After the transformation the character can be saved: Converted
  188. to grayscale, but nothing further. This was used to create a learning set. If
  189. it doesn't need to be saved as an actual image it will be converted to a
  190. NormalizedImage. When these actions have been completed for each character the
  191. license plate is usable in the rest of the code.
  192. \paragraph*{Perspective transformation}
  193. Once we retrieved the cornerpoints of the license plate, we feed those to a
  194. module that extracts the (warped) license plate from the original image, and
  195. creates a new image where the license plate is cut out, and is transformed to a
  196. rectangle.
  197. \subsection{Noise reduction}
  198. The image contains a lot of noise, both from camera errors due to dark noise
  199. etc., as from dirt on the license plate. In this case, noise therefore means
  200. any unwanted difference in color from the surrounding pixels.
  201. \paragraph*{Camera noise and small amounts of dirt}
  202. The dirt on the license plate can be of different sizes. We can reduce the
  203. smaller amounts of dirt in the same way as we reduce normal noise, by applying
  204. a Gaussian blur to the image. This is the next step in our program.\\
  205. \\
  206. The Gaussian filter we use comes from the \texttt{scipy.ndimage} module. We use
  207. this function instead of our own function, because the standard functions are
  208. most likely more optimized then our own implementation, and speed is an
  209. important factor in this application.
  210. \paragraph*{Larger amounts of dirt}
  211. Larger amounts of dirt are not going to be resolved by using a Gaussian filter.
  212. We rely on one of the characteristics of the Local Binary Pattern, only looking
  213. at the difference between two pixels, to take care of these problems.\\
  214. Because there will probably always be a difference between the characters and
  215. the dirt, and the fact that the characters are very black, the shape of the
  216. characters will still be conserved in the LBP, even if there is dirt
  217. surrounding the character.
  218. \subsection{Character retrieval}
  219. The retrieval of the character is done the same as the retrieval of the license
  220. plate, by using a perspective transformation. The location of the characters on
  221. the license plate is also available in de XML file, so this is parsed from that
  222. as well.
  223. \subsection{Creating Local Binary Patterns and feature vector}
  224. Every pixel is a center pixel and it is also a value to evaluate but not at the
  225. same time. Every pixel is evaluated as shown in the explanation
  226. of the LBP algorithm. The 8 neighbours around that pixel are evaluated, of course
  227. this area can be bigger, but looking at the closes neighbours can give us more
  228. information about the patterns of a character than looking at neighbours
  229. further away. This form is the generic form of LBP, no interpolation is needed
  230. the pixels adressed as neighbours are indeed pixels.
  231. Take an example where the
  232. full square can be evaluated, there are cases where the neighbours are out of
  233. bounds. The first to be checked is the pixel in the left
  234. bottom corner in the square 3 x 3, with coordinate $(x - 1, y - 1)$ with $g_c$
  235. as center pixel that has coordinates $(x, y)$. If the grayscale value of the
  236. neighbour in the left corner is greater than the grayscale
  237. value of the center pixel than return true. Bitshift the first bit with 7. The
  238. outcome is now 1000000. The second neighbour will be bitshifted with 6, and so
  239. on. Until we are at 0. The result is a binary pattern of the local point just
  240. evaluated.
  241. Now only the edge pixels are a problem, but a simpel check if the location of
  242. the neighbour is still in the image can resolve this. We simply return false if
  243. it is.
  244. \subsection{Classification}
  245. \section{Finding parameters}
  246. Now that we have a functioning system, we need to tune it to work properly for
  247. license plates. This means we need to find the parameters. Throughout the
  248. program we have a number of parameters for which no standard choice is
  249. available. These parameters are:\\
  250. \\
  251. \begin{tabular}{l|l}
  252. Parameter & Description\\
  253. \hline
  254. $\sigma$ & The size of the Gaussian blur.\\
  255. \emph{cell size} & The size of a cell for which a histogram of LBPs will
  256. be generated.\\
  257. $\gamma$ & Parameter for the Radial kernel used in the SVM.\\
  258. $c$ & The soft margin of the SVM. Allows how much training
  259. errors are accepted.
  260. \end{tabular}\\
  261. \\
  262. For each of these parameters, we will describe how we searched for a good
  263. value, and what value we decided on.
  264. \subsection{Parameter $\sigma$}
  265. The first parameter to decide on, is the $\sigma$ used in the Gaussian blur. To
  266. find this parameter, we tested a few values, by checking visually what value
  267. removed most noise out of the image, while keeping the edges sharp enough to
  268. work with. By checking in the neighbourhood of the value that performed best,
  269. we where able to 'zoom in' on what we thought was the best value. It turned out
  270. that this was $\sigma = ?$.
  271. \subsection{Parameter \emph{cell size}}
  272. The cell size of the Local Binary Patterns determines over what region a
  273. histogram is made. The trade-off here is that a bigger cell size makes the
  274. classification less affected by relative movement of a character compared to
  275. those in the learning set, since the important structure will be more likely to
  276. remain in the same cell. However, if the cell size is too big, there will not
  277. be enough cells to properly describe the different areas of the character, and
  278. the feature vectors will not have enough elements.\\
  279. \\
  280. In order to find this parameter, we used a trial-and-error technique on a few
  281. basic cell sizes, being ?, 16, ?. We found that the best result was reached by
  282. using ??.
  283. \subsection{Parameters $\gamma$ \& $c$}
  284. The parameters $\gamma$ and $c$ are used for the SVM. $c$ is a standard
  285. parameter for each type of SVM, called the 'soft margin'. This indicates how
  286. exact each element in the learning set should be taken. A large soft margin
  287. means that an element in the learning set that accidentally has a completely
  288. different feature vector than expected, due to noise for example, is not taken
  289. into account. If the soft margin is very small, then almost all vectors will be
  290. taken into account, unless they differ extreme amounts.\\
  291. $\gamma$ is a variable that determines the size of the radial kernel, and as
  292. such blablabla.\\
  293. \\
  294. Since these parameters both influence the SVM, we need to find the best
  295. combination of values. To do this, we perform a so-called grid-search. A
  296. grid-search takes exponentially growing sequences for each parameter, and
  297. checks for each combination of values what the score is. The combination with
  298. the highest score is then used as our parameters, and the entire SVM will be
  299. trained using those parameters.\\
  300. \\
  301. We found that the best values for these parameters are $c=?$ and $\gamma =?$.
  302. \section{Results}
  303. The goal was to find out two things with this research: The speed of the
  304. classification and the accuracy. In this section we will show our findings.
  305. \subsection{Speed}
  306. Recognizing license plates is something that has to be done fast, since there
  307. can be a lot of cars passing a camera in a short time, especially on a highway.
  308. Therefore, we measured how well our program performed in terms of speed. We
  309. measure the time used to classify a license plate, not the training of the
  310. dataset, since that can be done offline, and speed is not a primary necessity
  311. there.\\
  312. \\
  313. The speed of a classification turned out to be blablabla.
  314. \subsection{Accuracy}
  315. Of course, it is vital that the recognition of a license plate is correct,
  316. almost correct is not good enough here. Therefore, we have to get the highest
  317. accuracy score we possibly can.\\
  318. \\ According to Wikipedia
  319. \footnote{
  320. \url{http://en.wikipedia.org/wiki/Automatic_number_plate_recognition}},
  321. commercial license plate recognition software score about $90\%$ to $94\%$,
  322. under optimal conditions and with modern equipment. Our program scores an
  323. average of blablabla.
  324. \section{Difficulties}
  325. During the implementation and testing of the program, we did encounter a
  326. number of difficulties. In this section we will state what these difficulties
  327. were and whether we were able to find a proper solution for them.
  328. \subsection*{Dataset}
  329. We did experience a number of problems with the provided dataset. A number of
  330. these are problems to be expected in a real world problem, but which make
  331. development harder. Others are more elemental problems.\\
  332. The first problem was that the dataset contains a lot of license plates which
  333. are problematic to read, due to excessive amounts of dirt on them. Of course,
  334. this is something you would encounter in the real situation, but it made it
  335. hard for us to see whether there was a coding error or just a bad example.\\
  336. Another problem was that there were license plates of several countries in
  337. the dataset. Each of these countries has it own font, which also makes it
  338. hard to identify these plates, unless there are a lot of these plates in the
  339. learning set.\\
  340. A problem that is more elemental is that some of the characters in the dataset
  341. are not properly classified. This is of course very problematic, both for
  342. training the SVM as for checking the performance. This meant we had to check
  343. each character whether its description was correct.
  344. \subsection*{SVM}
  345. We also had trouble with the SVM for Python. The standard Python SVM, libsvm,
  346. had a poor documentation. There was no explanation what so ever on which
  347. parameter had to be what. This made it a lot harder for us to see what went
  348. wrong in the program.
  349. \section{Workload distribution}
  350. The first two weeks were team based. Basically the LBP algorithm could be
  351. implemented in the first hour, while some talked and someone did the typing.
  352. Some additional 'basics' where created in similar fashion. This ensured that
  353. every team member was up-to-date and could start figuring out which part of the
  354. implementation was most suited to be done by one individually or in a pair.
  355. \subsection{Who did what}
  356. Gijs created the basic classes we could use and helped the rest everyone by
  357. keeping track of what required to be finished and whom was working on what.
  358. Tadde\"us and Jayke were mostly working on the SVM and all kinds of tests
  359. whether the histograms were matching and alike. Fabi\"en created the functions
  360. to read and parse the given xml files with information about the license
  361. plates. Upon completion all kinds of learning and data sets could be created.
  362. %Richard je moet even toevoegen wat je hebt gedaan :P:P
  363. %maar miss is dit hele ding wel overbodig Ik dacht dat Rein het zei tijdens
  364. %gesprek van ik wil weten hoe het ging enzo.
  365. \subsection{How it went}
  366. Sometimes one cannot hear the alarm bell and wake up properly. This however was
  367. not a big problem as no one was affraid of staying at Science Park a bit longer
  368. to help out. Further communication usually went through e-mails and replies
  369. were instantaneous! A crew to remember.
  370. \section{Conclusion}
  371. Awesome
  372. \end{document}