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Wednesday, May 1, 2019
EU – Commission Ethical Aspects of ICT Implants in the Human Body
The following text is an extract from the European Group on Ethics and New Technologies with the Swedish Professor Goran Hermerén as chairman, adopted and delivered to the EU-Commission 16th of March 2005.
Introduction
Brain-computer interface (BCI) or direct brain control: the technologies involved above are communication technologies: they take information from the brain and externalize it. There are internalizing technologies whose purpose is to take information from the outside and provide individual access to it.
Biosensors or MEMS (Micro Electro-Mechanical System) devices are sensors implanted inside the human body for accurate monitoring of inaccessible parts of the body. The biosensors form a network and collectively monitor the health condition of their host.
The information to be transmitted is crucial medical information that is required by law to be secure. Consequently, information technology is a critical component of these biological implants that, with the energy, memory and computational capabilities, present challenging research issues.
Computer scientists have predicted that within the next twenty years neural interfaces will be designed that will not only increase the dynamic range of sensors, but will also enhance memory and enable cyber think – invisible communication with others. Artificial Vision: according to recent research undertaken to develop an artificial retina, it will be possible, one day, to see light in the infrared.
Human Dignity
Dignity is used both to convey the need for absolutely respecting an individual’s autonomy and rights and to support the claim to controlling individuals and their behaviour for the sake of values that someone plans to impose on other individuals.
- Non-instrumentalisation: The ethical requirement of not using individuals merely as a means but always as an end of their own.
- Privacy: The ethical principle of not invading a person’s right to privacy.
- Informed Consent: The ethical principle that patients are not exposed to treatment or research without their free will and informed consent.
- The Precautionary Principle: This principle entails the moral duty of continuous risk assessment with regard to the not fully foreseeable impact of new technologies as in the case of ICT implants in the human body. This assessment concerns particularly the analysis of present and future situations in which the use of ICT implants in the human body may be considered as a potential risk, or even as a potential threat to human dignity or to other ethical principles. It should be stressed that there are no reliable scientific investigations concerning the long-term health aspect of ICT implants in the human body.
Autonomy and Limits on ICT Implants
ETHICAL BACKGROUND
Value Conflicts
As in other areas, the freedom to use ICT implants in ones own body, i.e. the principle of freedom itself might collide with potential negative social effects. In these cases ethical counselling as well as social and political debate might be necessary…Legislation is necessary in order to avoid a situation in which society is becoming more and more dependent on such intrusive technology in order to provide social security while at the same time the technical perfection of such implants is helpful for all kinds of medical purposes as well as for legitimate social applications. Consequently, the EGE stresses the need for a continuing, inclusive debate on which kinds of enhancement should be allowed – under what conditions and in which situations.
It is clear from the preceding sections that there are important knowledge gaps that are relevant both to future research programmes and to the primary ethical concerns. These include:
Human Dignity, Integrity and Autonomy
- How far can such implants be a threat to human autonomy particularly when they are implanted in our brains?
- How far can such implants have irreversible impacts in the human body and/or in the human psyche and how can reversibility be preserved?
- How will they influence human memory?
- Does a human being cease to be such a ’being’ in cases where some parts of his or her body – particularly the brain – are substituted and/or supplemented by ICT implants? Particularly as ICT implants can contribute to creating ’networked persons’ that are always connected and could be configured differently so that from time to time they can transmit and receive signals allowing movements, habits and contacts to be traced and defined. This is bound to affect their dignity.
Privacy and Surveillance
- How far can ICT implants give an individual, or a group, specific capabilities that could become a threat to society?
- What are the potential invasions of privacy through ICT implants as sources and/or receivers of information in a network environment?
- How far should we be subject to the control of such devices or by other people using these devices?
Enhancement and Human Self Awareness
- How far should the use of such implants to enhance human capabilities be allowed?
- How far can such implants be considered as a part of what can be called ’body design’ including the personal free design of one’s (enhanced) bodily and psychic capabilities?
Social Aspects
- To what extent does this technology allow manipulation by and for advertising?
- To what extent might this technology be misused by the military?
- ICT Implants for which Special Caution is Necessary
- ICT implants that cannot be removed easily.
- ICT implants that influence, determine or change psychic functions.
- ICT implants that due to their network capability could be misused in several ways for all kinds of social surveillance and manipulation, such as for instance in the case of children or disabled persons.
- ICT implants influencing the nervous system and particularly the brain and thus human identity as a species as well as individual subjectivity and autonomy
- Military applications
- Intrusive’ technology by-passes normal sensory experience
- Implants that will influence biologically and/or culturally future generations.
To improve the protection of privacy (data protection), respecting people’s right to maintain boundaries and also to preserve privacy, autonomy and confidentiality; and to empower individuals against the introduction of systems likely to reduce their freedom and autonomy (video surveillance, behaviour control and personal profiling based on internet transactions) are likely to increase people’s dependency on selection and decision mechanisms which are not transparent or understandable.
Human beings are neither purely natural nor purely cultural beings. Indeed our very nature depends on the possibility of transforming ourselves. Information technologies have been considered under this anthropomorphic bias as extensions of man. However, the transformation of the human body has consequences also on the cultural human environment.
Under these premises, human beings are seen as parts of a complex system of natural and artificial messages that function on a digital basis…In this sense the human body can be seen as data. This view has large cultural effects particularly as it precludes higher level phenomena such as human psyche and human language or conceives them mainly under the perspective of its digitalization, giving rise to reductionism that oversimplifies the complex relations between the human body, language and imagination…Extrapolating into the future, this logic might even lead to the transformation of the human race.
How far should we let ICT devices get ’under our skins’? When do ICT implants threaten the dignity of the human body, its identity and its basic capabilities? When might such devices be used for instance for surveillance and in which cases would this be legitimate? Where are the threats related to the hopes of enhanced capability based on ICT implants?
The question of ITC implants in the human body is thus located between two extremes. On the one hand, the protection of the natural human body, that is to say, the medical use of ICT implants for health care, and, on the other hand, the elimination of the human body as we know it today and its substitution by an artificial one – with all possibilities in between. Human dignity concerns the human self as an embodied self. Thus the question of autonomy and respect of the self cannot be separated from the question of bodily care and the possible changes due to ICT implants.
EGE OPINION:
The downright reduction of our body to a device does not only enhance the trend – already pointed out – towards turning it increasingly into a tool to allow continuous surveillance of individuals. Indeed, individuals are dispossessed of their own bodies and thereby of their own autonomy. The body ends up being under others’ control. What can a person expect after being dispossessed of his or her own body?
ICT IMPLANTS AND HUMAN DIGNITY
Freedom of Research
The EGE stresses that the following possibilities should be banned:
- ICT implants used for changing the identity, memory, self perception and perception of others
- ICT implants used to enhance capabilities in order to dominate others
ICT Implants for Surveillance Purposes
Public Debate and Information
The European Group on Ethics in Science and New Technologies
The Chairperson: Göran Herméren
The Members:
Nicos C. Alivizatos, Inez de Beuaufort, Rafael Capurro, Yvon Englert, Catherine Labrusse-Riou, Anne M cLaren, Linda Nielsen, Pere Puigdomenech-Rosell, Stefano Rodota, Günter Virt and Peter Whittaker
Thursday, March 7, 2019
Saturday, January 19, 2019
MIT's "Mind Reading" Wearable Let's You Silently Interact With All Your Devices
WHY THIS MATTERS IN BRIEF
As computing becomes ubiquitous and embedded in the devices around us, we won’t always want to talk out loud to use them, that’s one of the many use cases for this technology.
“The motivation for this was to build an IA device, an ‘Intelligence Augmentation’ device,” says Arnav Kapur, a graduate student at the MIT Media Lab, who led the development of the new system.
“Our idea was: Could we have a computing platform that’s more internal, that melds human and machine in some ways and that feels like an internal extension of our own cognition?”
“We basically can’t live without our cellphones, our digital devices,” says Pattie Maes, a professor of media arts and sciences and Kapur’s thesis advisor. “But at the moment, the use of those devices is very disruptive. If I want to look something up that’s relevant to a conversation I’m having, I have to find my phone and type in the passcode and open an app and type in some search keyword, and the whole thing requires that I completely shift attention from my environment and the people that I’m with to the phone itself. So, my students and I have for a very long time been experimenting with new form factors and new types of experience that enable people to still benefit from all the wonderful knowledge and services that these devices give us, but do it in a way that lets them remain in the present.”
The researchers described their device in a paper they presented at the Association for Computing Machinery’s ACM Intelligent User Interface conference. Kapur is first author on the paper, Maes is the senior author, and they’re joined by Shreyas Kapur, an undergraduate major in electrical engineering and computer science.
The idea that internal verbalizations have physical correlations has been around since the 19th century, and it was seriously investigated in the 1950s. One of the goals of the speed-reading movement of the 1960s was to eliminate internal verbalization, or “subvocalization,” as it’s known. But subvocalization as a computer interface is largely unexplored.
The researchers’ first step was to determine which locations on the face are the sources of the most reliable neuromuscular signals. So they conducted experiments in which the same subjects were asked to subvocalize the same series of words four times, with an array of 16 electrodes at different facial locations each time.
The researchers wrote code to analyze the resulting data and found that signals from seven particular electrode locations were consistently able to distinguish subvocalized words. In the conference paper, the researchers report a prototype of a wearable silent-speech interface, which wraps around the back of the neck like a telephone headset and has tentacle-like curved appendages that touch the face at seven locations on either side of the mouth and along the jaws. But in more recent experiments, the researchers are now getting comparable results using only four electrodes along one jaw, which should lead to a less obtrusive wearable device.
Once they had selected the electrode locations the researchers began collecting data on a few computational tasks with limited vocabularies which comprised of about 20 words each. One was arithmetic, in which the user would subvocalize large addition or multiplication problems; another was the chess application, in which the user would report moves using the standard chess numbering system.
Then, for each application, they used a neural network to find correlations between particular neuromuscular signals and particular words. Like most neural networks, the one the researchers used is arranged into layers of simple processing nodes, each of which is connected to several nodes in the layers above and below. Data are fed into the bottom layer, whose nodes process it and pass them to the next layer, whose nodes process it and pass them to the next layer, and so on. The output of the final layer yields is the result of some classification task.
The basic configuration of the researchers’ system includes a neural network trained to identify subvocalized words from neuromuscular signals, but it can be customized to a particular user through a process that retrains just the last two layers.
Using the prototype wearable interface, the researchers conducted a usability study in which 10 subjects spent about 15 minutes each customizing the arithmetic application to their own neurophysiology, then spent another 90 minutes using it to execute computations. In that study, the system had an average transcription accuracy of about 92 percent.
But, Kapur says, the system’s performance should improve with more training data, which could be collected during its ordinary use. Although he hasn’t crunched the numbers, he estimates that the better-trained system he uses for demonstrations has an accuracy rate higher than that reported in the usability study.
In ongoing work, the researchers are collecting a wealth of data on more elaborate conversations, in the hope of building applications with much more expansive vocabularies.
“We’re in the middle of collecting data, and the results look nice,” Kapur says. “I think we’ll achieve full conversation some day.”
“I think that they’re a little underselling what I think is a real potential for the work,” says Thad Starner, a professor in Georgia Tech’s College of Computing. “Like, say, controlling the airplanes on the tarmac at Hartsfield Airport here in Atlanta. You’ve got jet noise all around you, you’re wearing these big ear protection things — wouldn’t it be great to communicate with voice in an environment where you normally wouldn’t be able to? You can imagine all these situations where you have a high-noise environment, like the flight deck of an aircraft carrier, or even places with a lot of machinery, like a power plant or a printing press. This is a system that would make sense, especially because oftentimes in these types of or situations people are already wearing protective gear. For instance, if you’re a fighter pilot, or if you’re a firefighter, you’re already wearing these masks.”
“The other thing where this is extremely useful is special ops,” Starner adds. “There’s a lot of places where it’s not a noisy environment but a silent environment. A lot of time, special-ops folks have hand gestures, but you can’t always see those. Wouldn’t it be great to have silent-speech for communication between these folks? The last one is people who have disabilities where they can’t vocalize normally. For example, Roger Ebert did not have the ability to speak anymore because lost his jaw to cancer. Could he do this sort of silent speech and then have a synthesizer that would speak the words?”
As ever the potential for the technology could be as interesting as it is huge.