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To: ransomnote
Q!!Hs1Jq13jV6 24 Jun 2020 - 2:20:13 PM
https://twitter.com/ShaneHuntley/status/1275898590825639936📁
Interesting this was prioritized [routed].
GOOG threat analysis group _entry catalog.
Deep dreaming, young dragonfly.
Q

416 posted on 06/24/2020 2:29:15 PM PDT by ransomnote (IN GOD WE TRUST)
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To: ransomnote

417 posted on 06/24/2020 2:30:39 PM PDT by ransomnote (IN GOD WE TRUST)
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To: ransomnote

What is Google dragonfly?

Dragonfly (search engine) The Dragonfly project was an Internet search engine prototype created by Google that was designed to be compatible with China’s state censorship provisions. The public learned of Dragonfly’s existence in August 2018, when The Intercept leaked an internal memo written by a Google employee about the project.

https://en.wikipedia.org/wiki/Dragonfly_(search_engine)


423 posted on 06/24/2020 2:42:24 PM PDT by ssschev (Pick up the can, hang the trash.)
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To: grey_whiskers

:: Interesting this was prioritized [routed].
GOOG threat analysis group _entry catalog. ::

Q says, the analog has been tweaked to catch such references?
What was once innocent is now [socially criminal].
Still, GOOG can’t catch devastating memes.
https://www.freerepublic.com/focus/f-chat/3858595/posts?page=421#421


425 posted on 06/24/2020 2:44:29 PM PDT by Cletus.D.Yokel (When we look to government to solve our problems, our "rights" become reduced to "privileges".)
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To: ransomnote

I am sure that “deep dreaming” has significance but I’ll be darned if I know what it is.


428 posted on 06/24/2020 2:47:38 PM PDT by little jeremiah (Courage is not simply one of the virtues, but the form of every virtue at the testing point.)
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To: ransomnote

I’m sure others who are technical types can find (and understand) more. Hopefully people will chime in withe “Deep Dream For Dummies”.

https://en.wikipedia.org/wiki/DeepDream

DeepDream

DeepDream is a computer vision program created by Google engineer Alexander Mordvintsev which uses a convolutional neural network to find and enhance patterns in images via algorithmic pareidolia, thus creating a dream-like hallucinogenic appearance in the deliberately over-processed images.[1][2][3]

Google’s program popularized the term (deep) “dreaming” to refer to the generation of images that produce desired activations in a trained deep network, and the term now refers to a collection of related approaches.

History

The DeepDream software, originated in a deep convolutional network codenamed “Inception” after the film of the same name,[1][2][3] was developed for the ImageNet Large-Scale Visual Recognition Challenge (ILSVRC) in 2014[3] and released in July 2015.

The dreaming idea and name became popular on the internet in 2015 thanks to Google’s DeepDream program. The idea dates from early in the history of neural networks,[4] and similar methods have been used to synthesize visual textures.[5] Related visualization ideas were developed (prior to Google’s work) by several research groups.[6][7]

After Google published their techniques and made their code open source,[8] a number of tools in the form of web services, mobile applications, and desktop software appeared on the market to enable users to transform their own photos.[9]

Process
An image of jellyfish on a blue background
An image of jellyfish processed with DeepDream after ten iterations
An image of jellyfish processed with DeepDream after fifty iterations

The original image (top) after applying ten (middle) and fifty (bottom) iterations of DeepDream, the network having been trained to perceive dogs
The software is designed to detect faces and other patterns in images, with the aim of automatically classifying images.[10] However, once trained, the network can also be run in reverse, being asked to adjust the original image slightly so that a given output neuron (e.g. the one for faces or certain animals) yields a higher confidence score. This can be used for visualizations to understand the emergent structure of the neural network better, and is the basis for the DeepDream concept. This reversal procedure is never perfectly clear and unambiguous because it utilizes a one-to-many mapping process.[11] However, after enough reiterations, even imagery initially devoid of the sought features will be adjusted enough that a form of pareidolia results, by which psychedelic and surreal images are generated algorithmically. The optimization resembles backpropagation, however instead of adjusting the network weights, the weights are held fixed and the input is adjusted.

For example, an existing image can be altered so that it is “more cat-like”, and the resulting enhanced image can be again input to the procedure.[2] This usage resembles the activity of looking for animals or other patterns in clouds.

Applying gradient descent independently to each pixel of the input produces images in which adjacent pixels have little relation and thus the image has too much high frequency information. The generated images can be greatly improved by including a prior or regularizer that prefers inputs that have natural image statistics (without a preference for any particular image), or are simply smooth.[7][12][13] For example, Mahendran et al.[12] used the total variation regularizer that prefers images that are piecewise constant. Various regularizers are discussed further in.[13] An in-depth, visual exploration of feature visualization and regularization techniques was published more recently.[14]

The cited resemblance of the imagery to LSD- and psilocybin-induced hallucinations is suggestive of a functional resemblance between artificial neural networks and particular layers of the visual cortex.[15]

Usage

The dreaming idea can be applied to hidden (internal) neurons other than those in the output, which allows exploration of the roles and representations of various parts of the network.[13] It is also possible to optimize the input to satisfy either a single neuron (this usage is sometimes called Activity Maximization)[16] or an entire layer of neurons.

While dreaming is most often used for visualizing networks or producing computer art, it has recently been proposed that adding “dreamed” inputs to the training set can improve training times for abstractions in Computer Science.[17]

The DeepDream model has also been demonstrated to have application in the field of art history.[18]

DeepDream was used for Foster the People’s music video for the song “Doing It for the Money”.[19]

Recently, a research group out of the University of Sussex created a Hallucination Machine, applying the DeepDream algorithm to a pre-recorded panoramic video, allowing users to explore virtual reality environments to mimic the experience of psychoactive substances and/or psychopathological conditions.[20] They were able to demonstrate that the subjective experiences induced by the Hallucination Machine differed significantly from control (non-‘hallucinogenic’) videos, while bearing phenomenological similarities to the psychedelic state (following administration of psilocybin).


432 posted on 06/24/2020 2:59:54 PM PDT by little jeremiah (Courage is not simply one of the virtues, but the form of every virtue at the testing point.)
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