Glossary

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This is the SSFWIKI glossary with limited dictionary function. See resources for examples you will often find linked for your convenience.

Glossaries elsewhere

Association for Computing Machinery

The w:Association for Computing Machinery (ACM) is a US-based international w:learned society for w:computing. It was founded in 1947, and is the world's largest scientific and educational computing society. (Wikipedia)

See wikidata:Q127992 for translations, descriptions and links to WMF wikis about ACM.


Adequate Porn Watcher AI

Adequate Porn Watcher AI (concept) is a 2019 concept for an AI that would protect humans against visual synthetic filth by ripping the disinformation filth into revealing light.

Main article Adequate Porn Watcher AI (concept).

Dictionary entries

  • English | en | English | Adequate Porn Watcher AI
  • eesti | et | Estonian Piisav Pornovaataja AI on 2019. aasta tehisintellekti idee, mis kaitseks inimesi sünteetilise visuaalse saasta eest, rebides desinformatsioonisaasta valguse.
  • suomi | fi | Finnish | Adequate Porn Watcher AI -tekoälykonsepti (eng) on 2019 konsepti tekoälystä, joka suojelisi ihmisiä synteettistä visuaalista saastaa repimällä disinformaatiosaastan paljastavaan valoon.
  • français | fr | French | l’IA Observateur Adéquat de Porno (concept) (Adequate Porn Watcher AI en anglais) est une idée pour une IA qui protégerait les humains contre les saletés synthétiques visuelles en arrachent les saletés de désinformation en lumière révélatrice.
  • svenska | sv | Swedish Adekvat Porr Tittare AI är en idé från 2019 om artificiell intelligens som skulle skydda människor från syntetisk visuell orenhet genom att riva desinformationsorenhet till avslöjande ljus.



Appearance and voice theft

Appearance is thieved with digital look-alikes and voice is thieved with digital sound-alikes. These are new and very extreme forms of identity theft. Ban covert modeling and possession and doing anything with a model of a human's voice, but don't ban the Adequate Porn Watcher AI (concept).


Audio forensics

w:Audio forensics is the field of w:forensic science relating to the acquisition, analysis, and evaluation of w:sound recordings that may ultimately be presented as admissible evidence in a court of law or some other official venue.[1][2][3][4]



Bidirectional reflectance distribution function

Diagram showing vectors used to define the w:BRDF.

“The bidirectional reflectance distribution function (BRDF) is a function of four real variables that defines how light is reflected at an opaque surface. It is employed in the optics of real-world light, in computer graphics algorithms, and in computer vision algorithms.”

~ Wikipedia on BRDF


A BRDF model is a 7 dimensional model containing geometry, textures and reflectance of the subject.

The seven dimensions of the BRDF model are as follows:

  • 3 cartesian X,Y,Z
  • 2 for the entry angle
  • 2 for the exit angle of the light.

See wikidata:Q856980 for translations, descriptions and links to WMF wikis about BRDF.


Burqa

Some humans in w:burqas a the Bornholm burka happening

“A burqa, also known as chadri or paranja in Central Asia, is an enveloping outer garment worn by women in some Islamic traditions to cover themselves in public, which covers the body and the face.”

~ Wikipedia on burqas


See wikidata:Q167884 for translations, descriptions and links to WMF wikis about burqas.


Covert modeling

Covert modeling refers to both covertly modeling aspects of a subject i.e. without express consent.

Main known cases are

There is work ongoing to model e.g. human's style of writing, but this is probably not as drastic a threat as the covert modeling of appearance and of voice.


Cyberbullying


Deepfake

A side-by-side comparison of videos. To the left, a scene from the 2013 motion picture w:Man of Steel (film). To the right, the same scene modified using w:deepfake technology.

Man of Steel produced by DC Entertainment and Legendary Pictures, distributed by Warner Bros. Pictures. Modification done by Reddit user "derpfakes".

This is a sample from a copyrighted video recording. The person who uploaded this work and first used it in an article, and subsequent people who use it in articles, assert that this qualifies as fair use.

Deepfake (a portmanteau of "deep learning" and "fake") is a technique for human image synthesis based on artificial intelligence. It is used to combine and superimpose existing images and videos onto source images or videos using a machine learning technique called a "generative adversarial network" (GAN).”

~ Wikipedia on Deepfakes


See wikidata:Q49473179 for translations, descriptions and links to WMF wikis about deepfakes.


DARPA

The Defense Advanced Research Projects Agency, better known as DARPA has been active in the field of countering synthetic fake video for longer than the public has been aware of the problems existing.

The Defense Advanced Research Projects Agency (w:DARPA) is an agency of the w:United States Department of Defense responsible for the development of emerging technologies for use by the military. (Wikipedia)

See wikidata:Q207361 for translations, descriptions and links to WMF wikis about DARPA.


Digital look-alike

When the camera does not exist, but the subject being imaged with a simulation of a (movie) camera deceives the watcher to believe it is some living or dead person it is a digital look-alike. Alternative term is look-like-anyone-machine.

Saying "digital look-alike of X" would imply possession, but "digital look-alike made of X" is more suited, unless the target really is in possession of it.


Dictionary entries

  • English | en | English | Digital look-alikes
  • eesti | et | Estonian | digitaalsed duplikaadid
  • suomi | fi | Finnish | digitaaliset kaksoiskuvajaiset
  • français | fr | French | les sosies numériques
  • svenska | sv | Swedish | digitala dupletter

Digital sound-alike

When it cannot be determined by human testing, is some synthesized recording a simulation of some person's speech, or is it a recording made of that person's actual real voice, it is a pre-recorded digital sound-alike. Alternative term is sound-like-anyone-machine.


Dictionary entries

  • English | en | English | Digital sound-alikes
  • eesti | et | Estonian | digitaalsed topelthelid
  • suomi | fi | Finnish | digitaaliset kaksoisäänet
  • français | fr | French | les sonne-mêmes numeriques
  • svenska | sv | Swedish | digitala dubbla ljud

Generative artificial intelligence

w:Generative artificial intelligence or generative AI (also GenAI) is a type of w:artificial intelligence (AI) system capable of generating text, images, or other media in response to w:prompts.”


Examples of generative AI that generate images / sceneries based on w:prompts by user. These genrated images may contain synthetic human-like fakes placed in fairly realistic looking scenarios.

Examples of w:large language models being used to generate conversational AIs

Generative AI encompasses more than conversational AI as it is able to also create images / scenery


Generative adversial network

An image generated by StyleGAN, a generative adversarial network (GAN), that looks deceptively like a portrait of a young woman.
An image generated by w:StyleGAN, a w:generative adversarial network (GAN), that looks deceptively like a portrait of a young woman.

“A generative adversarial network (GAN) is a class of g systems. Two neural networks contest with each other in a zero-sum game framework. This technique can generate photographs that look at least superficially authentic to human observers,[5] having many realistic characteristics. It is a form of unsupervised learning]].[6]


See wikidata:Q25104379 for translations, descriptions and links to WMF wikis about GANs.


Human-like image synthesis

Human-like image synthesis is a dangerous technology. Human-like image synthesis would be semantically less wrong less wrong than w:human image synthesis.

Human image synthesis can be applied to make believable and even photorealistic of human-likenesses, moving or still. This has effectively been the situation since the early 2000s. Many films using computer generated imagery have featured synthetic images of human-like characters digitally composited onto the real or other simulated film material.”

~ Wikipedia on Human image syntheses


See wikidata:Q17118711 for translations, descriptions and links to WMF wikis about human image synthesis and please contribute.


Institute for Creative Technologies

The Institute for Creative Technologies was founded in 1999 in the University of Southern California by the United States Army. It collaborates with the w:United States Army Futures Command, w:United States Army Combat Capabilities Development Command, w:Combat Capabilities Development Command Soldier Center and w:United States Army Research Laboratory.

See wikidata:Q6039265 for translations, descriptions and links to WMF wikis about ICT.


Large language model

“A w:large language model (LLM) is a w:language model consisting of a w:neural network with many parameters (typically billions of weights or more), trained on large quantities of unlabeled text using w:self-supervised learning or w:semi-supervised learning.”



Light stage

Original w:light stage used in the 1999 reflectance capture by Debevec et al.

It consists of two rotary axes with height and radius control. Light source and a polarizer were placed on one arm and a camera and the other polarizer on the other arm.

Original image by Debevec et al. – Copyright ACM 2000 – https://dl.acm.org/citation.cfm?doid=311779.344855 – Permission to make digital or hard copies of all or part of this work for personal or classroom use is granted without fee provided that copies are not made or distributed for profit or commercial advantage and that copies bear this notice and the full citation on the first page.
The ESPER LightCage - 3D face scanning rig is a modern w:light stage

“A light stage or light cage is equipment used for shape, texture, reflectance and motion capture often with structured light and a multi-camera setup.”

~ Wikipedia on light stages


See wikidata:Q17097238 for translations, descriptions and links to WMF wikis about light stages.


MATINE

MATINE (w:fi:MATINE) is the Scientific Advisory Board for Defence of the w:Ministry of Defence of Finland. MATINE is an abbreviation of MAanpuolustuksen TIeteellinen NEuvottelukunta and it arranges an annual public research seminar. In 2019 a research group funded by MATINE presented their work 'Synteettisen median tunnistus' at defmin.fi (Recognizing synthetic media).

As of 2021-08-11 There is no wikidata item for translations, descriptions and links to WMF wikis about MATINE.


Media forensics

Media forensics deal with ascertaining genuinity of media.

“Wikipedia does not have an article on media forensics, but it does have one on w:audio forensics

~ juboxi on 2022-10-21



Niqāb

Image of a human wearing a w:niqāb

“A niqab or niqāb ("[face] veil"; also called a ruband) is a garment of clothing that covers the face, worn by some muslim women as a part of a particular interpretation of hijab (modest dress).”

~ Wikipedia on Niqābs


See wikidata:Q210583 for translations, descriptions and links to WMF wikis about niqābs.


No camera

No camera (!) refers to the fact that a simulation of a camera is not a camera. If people realize the differences, and thus the different restrictions by many types of laws e.g. physics, physiology. Analogously see #No microphone, usually seen below this entry.


No microphone

No microphone is needed when using synthetic voices as you just model them, without needing to capture. Analogously see the entry #No camera, usually seen above this entry.


Reflectance capture

Reflectance capture is made by measuring the reflected light for each incoming light direction and every exit direction, often with many different wavelengths. Using polarisers allow to separately capture the specular and the diffuse reflected light. The first known reflectance capture over the human face was made in 1999 by Paul Debevec et al at the w:University of Southern California.

As of 2020-11-19 Wikipedia does not have an article on reflectance capture.


Relighting

Each image images a face in synthesized lighting. The lower images represent the captured illumination map. The images are generated taking a dot product of each pixel’s reflectance function with the illumination map.

Original image Copyright ACM 2000 – http://dl.acm.org/citation.cfm?doid=311779.344855 – Permission to make digital or hard copies of all or part of this work for personal or classroom use is granted without fee provided that copies are not made or distributed for profit or commercial advantage and that copies bear this notice and the full citation on the first page.

Relighting means applying a completely different w:lighting situation to an image or video which has already been imaged. As of 2020-09 the English Wikipedia does not have an article on relighting.

Since 2021-03-15 a w:Relighting is a redirect to w:Polynomial texture mapping.

w:Polynomial texture mapping (PTM), also known as Reflectance Transformation Imaging (RTI), is a technique of w:digital imaging and w:interactively displaying objects under varying w:lighting conditions to reveal surface phenomena. (Wikipedia)

Past: As of 2020-11-19 Wikipedia does not have an article on relighting.


Sexual bullying


SISE

SISE refers to the #Stopping Internet Sexual Exploitation Act - a House of Commons of Canada bill introduced in 2022.


SISEA


Spectrogram

A spectrogram of a male voice saying 'nineteenth century'

w:Spectrograms are used extensively in the fields of w:music, w:linguistics, w:sonar, w:radar, w:speech processing, w:seismology, and others. Spectrograms of audio can be used to identify spoken words phonetically, and to analyse the various calls of animals. (Wikipedia)

See wikidata:Q103865657 for translations, descriptions and links to WMF wikis about spectrograms.


Speech synthesis

Speech synthesis is the artificial production of human speech

~ Wikipedia on speech syntheses


See wikidata: for translations, descriptions and links to WMF wikis about speech syntheses.


Stop Internet Sexual Exploitation Act

The Stop Internet Sexual Exploitation Act (SISE) was a bill introduced to the 2019-2020 session of the US Senate.

Stopping Internet Sexual Exploitation Act


Synthetic pornography

Synthetic pornography is a strong technological hallucinogen.

Synthetic terror porn

Synthetic terror porn is pornography synthesized with terrorist intent. Synthetic rape porn is probably by far the most prevalent form of this, but it must be noted that synthesizing concensual looking sex scenes can also be terroristic in intent and effect.


Transfer learning

Transfer learning (TL) is a research problem in machine learning (ML) that focuses on storing knowledge gained while solving one problem and applying it to a different but related problem.”

~ Wikipedia on Transfer learning


See wikidata:Q6027324 for translations, descriptions and links to WMF wikis about transfer learning.


Voice changer

“The term voice changer (also known as voice enhancer) refers to a device which can change the tone or pitch of or add distortion to the user's voice, or a combination and vary greatly in price and sophistication.”

~ Wikipedia on voice changers


Please see Resources#List of voice changers for some alternatives.

See wikidata:Q4224062 for translations, descriptions and links to WMF wikis about voice changers.


Permalinks

References

  1. Phil Manchester (January 2010). "An Introduction To Forensic Audio". Sound on Sound.
  2. Maher, Robert C. (March 2009). "Audio forensic examination: authenticity, enhancement, and interpretation". IEEE Signal Processing Magazine. 26 (2): 84–94. doi:10.1109/msp.2008.931080. S2CID 18216777.
  3. Alexander Gelfand (10 October 2007). "Audio Forensics Experts Reveal (Some) Secrets". Wired Magazine. Archived from the original on 2012-04-08.
  4. Maher, Robert C. (2018). Principles of forensic audio analysis. Cham, Switzerland: Springer. ISBN 9783319994536. OCLC 1062360764.
  5. Goodfellow, Ian; Pouget-Abadie, Jean; Mirza, Mehdi; Xu, Bing; Warde-Farley, David; Ozair, Sherjil; Courville, Aaron; Bengio, Yoshua (2014). "Generative Adversarial Networks". arXiv:1406.2661 [cs.LG].
  6. Salimans, Tim; Goodfellow, Ian; Zaremba, Wojciech; Cheung, Vicki; Radford, Alec; Chen, Xi (2016). "Improved Techniques for Training GANs". arXiv:1606.03498 [cs.LG].

1st seen in