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3

You're very close. Assuming that regionStartPoint stores the row and column of the top left corner of where you want to start and it is a two-element array, and assuming that size_W contain the height and width of the region you want, also as a two-element array, simply do: region_R = image_I(regionStartPoint(1):regionStartPoint(1)+size_W(1)-1,... ...


3

The subsequent normalization is linear interpolation of each color component. Say, the the red color component of pixel 1,1 is 234. The binary representation of 234 is In [1]: bin(234) Out[1]: '0b11101010' We can remove everything but the two least significant bits with some bitwise operation: In [2]: bin(234 & 0b11) Out[2]: '0b10' The range of a ...


3

JPEG is a lossy storage mechanism. That means it is NOT required (or even desirable) that is represent every byte exactly as the original. In deed, that is the whole point, it sacrifices small imperfections in order to achieve large space savings. If you need byte-perfect storage you will have to find choose another format such as GIF, PNG, or some flavors ...


2

Its a pdf file. You should be able to open it with Adobe Acrobat Reader.


2

Another way is using dec2bin. b = dec2bin(img(1,1),8); For example, if the red, green and blue values of the pixel img(1,1) are 255, 223 and 83, you will get 11111111 11011101 01010011 Where b(1,:) is the binary for red (11111111), b(2,:) for green (11011101), etc. However, for the intention of changing the value of the lsb, this is not the ...


2

You can for-loop this bitmap = false( [size(img,1), size(img,2), 24] ); for ci=1:3 for bit=0:7 bitmap( :,:, (ci-1)*8+bit+1 ) = bitand( img(:,:,ci), uint8(2^bit) ); end end Reconstruction is simpler reconstruct = zeros( [size(img,1), size(img,2), 3], 'uint8' ); for ci=1:3 reconstruct(:,:,ci) = sum( bsxfun(@power, ... ...


2

Open the file with FileMode.Append var stream = new FileStream(path, FileMode.Append) FileMode Enumeration FileMode.Append: Opens the file if it exists and seeks to the end of the file, or creates a new file. This requires FileIOPermissionAccess.Append permission. FileMode.Append can be used only in conjunction with FileAccess.Write. Trying to ...


2

There are at least three other questions on SO that address this, poorly. The only lead I can find is MP3Stego, but I can't immediately find the stego bitrate it supports. There are a few options for doing this that I can think of, but the simplest is to compress, checksum, encrypt, modulate (repetition & ECC/parity), and insert the hidden data into ...


2

Normalization is the process of changing a range of values into another range of values. You have the range [0,3] because of the binary values of 00, 01, 10 and 11. The reason why you want to normalize this to [0,255] is to cover the whole range of pixel intensities. If you were to just save an image from an array with values in the range [0,3], it would ...


1

You never use your modified alpha value: alpha = value; // your modified value operation.setPixel(i, j, Color.argb(Color.alpha(p), r, g, b)); ^^^^^^^^^^^^^---the original alpha You probably want .setPixel(i, j, Color.argb(alpha, r, g, b)) instead.


1

So here's what happens. Assume an original image of size WxH. Since you have 3 bytes per pixel, your image, orgnlimagebytes, has S = 3*W*H bytes. Now you encrypt this image with AES, which results in a fixed block size of 16 bytes. If S is not divisible by 16, it will be padded to be so. If it is divisible by 16, another block of 16 bytes will be added. The ...


1

In windows you can use simple command to hide archive in image : copy /b cat.jpg + Documents.rar cat_new.jpg. And then use for example winrar to extract data ftom image as from archive. But better way is to use Steganography. simple program for it for linux and windows : http://linux01.gwdg.de/~alatham/stego.html using this program you will use pass phrase, ...


1

You cannot modify a PDF file in a text editor and expect the file to be still compliant in general. PDF is a binary format and you need to read the PDF specification to figure out how to modify it. That said, there are heaps of places where you can "hide" information in a PDF document, the real question is how much data you want to hide, and to what ...


1

It turned out that there was a chunk in the middle of the picture with a long text, which contained the wanted string, hidden in the least bits of the blue values only, in least bit first order. Somehow I missed that combination in my preliminary tests. So there you go. :) To anybody having a similar problem: I find it's best to write a script to test all ...


1

Sure, it's easy: using (var stream = File.Open(path, FileMode.Append)) { stream.Write(extraData); } No need to read the file first. I wouldn't class this as steganography though - that would involve making subtle changes to the video frames such that it's still a valid video and looks the same to the human eye, but the extra data is encoded within ...


1

Oh, nested loops... that's not the way to go. You want to replace the least significant bits of the first l pixels with the binary ascii representation of your input string. First thing that went wrong - converting char to binary: Converting a character to its binary representation should be done using bitget >> bitget( uint8('J'), 1:8 ) 0 1 ...


1

JPEG is lossy by definition, so the data modifications that you see are expected and there is not much you can do about it in your context. On the other hand, PNG is also compressed but in a lossless manner. The size of the png file changes because the png compression is similar to regular file compression (called LZ): very grossly explained, it detects ...


1

The last paragraph of the section 6.2 in the paper says the following and I quote: We can find an optimal parameter k for every message to embed and every carrier medium providing sufficient capacity, so that the message just fits into the carrier medium. For instance, if we want to embed a message with 1000 bits into a carrier medium with a capacity ...


1

A couple things off the top that could be happening. The first is rounding errors. The JPEG process introduces small errors. All your values are one off. This could come from rounding. The second is quantization. Your values may be quantized (divided). Your example does not indicate the compression stages that may be taking place in between your examples.


1

When you multiply DCT block back by quantization matrix, you would most probably get very big numbers for big spatial frequencies - picture would become noisy. But then you need to normalize the coefficients, so that any value of any pixel does not exceed [0..1] bounds ( [0..255] ) After normalization you could loose some info.


1

The embedding of the message occurs after the lossy compression -- there's no possibility of losing the message, because the steps which lose data have already been performed (other than the actual embedding, which loses only image data, replacing it with your message). Ideally you then extract the message directly from the coefficients themselves -- that ...



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