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I'm doing an exercise, but I'm confused on how to solve this.

it says a public library has recently decided to digitise its archive of local newspapers from the last 50 years. The pages of the newspapers will be scanned and stored as digital colour images. Suppose that each newspaper will be scanned as a 3000 pixel wide and 6000 pixel high RGB image. The library currently own 15TB of storage( you may assume that one terabyte is equal to 1,000,000,000,0000 bytes). How manny pages of newspaper can be hosted using the library's existing storage? note: assuage uncompressed RGB format is used, with one byte for each of the R,G, and B components

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Just read the description and add/multiply the values appropriately. It could be kumquats instead of pixels and the technique would be the same. –  Hot Licks Jun 23 '13 at 14:25
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(Hint, each kumquat contains 3 seeds. The kumquats are arranged in an array 3000 wide and 6000 high. How many kumquat seeds do you have in that array?) –  Hot Licks Jun 23 '13 at 14:27

3 Answers 3

up vote 0 down vote accepted

How many bytes are needed for a single pixel in RGB? bits = 3

How many pixels are in the image? area

How much memory is needed for a single page? page_memory

How many pages can be stored? number_of_pages = total_memory / page_memory

Final answer is 2,777,777 but since this is homework I won't post all the details.

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Never give a direct answer to a homework question. –  Hot Licks Jun 23 '13 at 14:28
    
It's not a direct answer, he has the clues. –  Mihai Maruseac Jun 23 '13 at 14:33
    
Mihai Maruseac thanks for the explanation :) I'm a beginner and have to do a lot of exercise to become as good as you guys –  Erika Sawajiri Jun 23 '13 at 14:37

1 pixel has 3 channels: Red, Green, Blue. One byte per channel means that each pixel has 3 bytes of data. There's nothing technical here.

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Each image = 3000x6000 pixels = 18000000 pixels = 18000000x3 bytes = 54000000 bytes Total storage = 150000000000000 bytes

Therefore it can store roughly 2777777 pages of news paper.

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