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- <title>Libcaca study - 7. Photographic mosaics</title>
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- <p> <span style="color: #aa0000; font-weight: bold;">Warning</span>: this
- document is still work in progress. Feel free to send comments but do not
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- <a href="part6.html">Colour dithering <<<</a>
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- <h2> 7. Photographic mosaics </h2>
-
- <p> Photographic mosaics are montages of smaller images creating the illusion
- of a bigger image. </p>
-
- <p> Since we don’t have many images at our disposal, we will simply cut Lena
- into small chunks (called <b>tiles</b>) and use these parts to create mosaics.
- This is our <b>tile database</b>: </p>
-
- <p style="text-align: center;">
- <img src="out/lena7-0-1.png" width="408" height="288"
- class="inline" alt="Patterns taken from Lena" />
- </p>
-
- <p> Generating a photomosaic consists in subdividing the original picture
- into <i>x</i> rectangular cells and find <i>x</i> tiles in the database
- (with or without duplicates, depending on the set of rules that is decided)
- so that when recombined the resulting image resembles the original picture.
- By the way, this technique is covered by Runaway Technology Inc.’s
- <a href="http://www.freepatentsonline.com/6137498.html">U.S. patent
- 6137498</a> [9]. </p>
-
- <p> Picking the right tile for the right cell in the grid is a very
- expensive and complicated operation. One of the biggest problems is the
- cost of a database lookup: comparing each tile area pixel-by-pixel
- is an O(N) operation where N is the size of the database. We can resort
- to <b>image classification</b> in order to speed up database lookups. </p>
-
- <h3> 7.1. Image classification </h3>
-
- <p> One of the simplest image classification techniques is the storage of
- each tile’s <b>average colour</b> into a separate database that is used for
- best match lookups. Of course, this computation should be gamma-corrected:
- </p>
-
- <p style="text-align: center;">
- <img src="out/lena7-1-1.png" width="168" height="120"
- class="inline" alt="1 feature extracted from Lena patterns" />
- </p>
-
- <p> When creating the mosaic, we then only need to check the average colour
- instead of comparing each pixel one by one. Below is the result of the
- technique applied on a portion of the Lena picture: </p>
-
- <p style="text-align: center;">
- <img src="out/lena7-1-2.png" width="80" height="80"
- class="inlinetop" alt="Lena (detail)" />
- <img src="out/lena7-1-3.png" width="416" height="416"
- class="inline" alt="Mosaic created from Lena’s detail" />
- </p>
-
- <p> Better results can be achieved by storing <b>four colour values</b>, one
- for each corner of the tile: </p>
-
- <p style="text-align: center;">
- <img src="out/lena7-1-4.png" width="248" height="176"
- class="inline" alt="4 features extracted from Lena patterns" />
- </p>
-
- <p> Having 12 values per tile (4 RGB triplets) is still a lot less than the
- original count of 3072 (for 32×32 tiles), and the results show clear
- improvement. For instance the feathers-hat frontier is now a lot smoother: </p>
-
- <p style="text-align: center;">
- <img src="out/lena7-1-2.png" width="80" height="80"
- class="inlinetop" alt="Lena (detail)" />
- <img src="out/lena7-1-5.png" width="416" height="416"
- class="inline" alt="Mosaic created from Lena’s detail" />
- </p>
-
- <h3> 7.2. Error diffusion </h3>
-
- <p> TODO </p>
-
- <h3> 7.3. Colour ASCII art </h3>
-
- <!--
- <p> We
-
- There are many ways to tackle the problem of colour ASCII art
-
- , also referred to as ANSI art,
- -->
-
- <p style="text-align: center;">
- <img src="fig7-3-1.png" width="395" height="196"
- class="matrix" alt="ASCII art tiles" />
- </p>
-
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- <a href="part6.html">Colour dithering <<<</a>
- </div>
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- <a href="biblio.html">>>> Bibliography</a>
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