Article
AI
Culture
5 min read

What AI needs to learn about dying and why it will save it

Those programming truthfulness can learn a lot from mortality.

Andrew Steane has been Professor of Physics at the University of Oxford since 2002, He is the author of Faithful to Science: The Role of Science in Religion.

An angel of death lays a hand of a humanioid robot that has died amid a data centre
A digital momento mori.
Nick Jones/midjourney.ai

Google got itself into some unusual hot water in recently when its Gemini generative AI software started putting out images that were not just implausible but downright unethical. The CEO Sundar Pichai has taken the situation in hand and I am sure it will improve. But before this episode it was already clear that currently available chat-bots, while impressive, are capable of generating misleading or fantastical responses and in fact they do this a lot. How to manage this? 

Let’s use the initials ‘AI’ for artificial intelligence, leaving it open whether or not the term is entirely appropriate for the transformer and large language model (LLM) methods currently available. The problem is that the LLM approach causes chat-bots to generate both reasonable and well-supported statements and images, and also unsupported and fantastical (delusory and factually incorrect) statements and images, and this is done without signalling to the human user any guidance in telling which is which. The LLMs, as developed to date, have not been programmed in such a way as to pay attention to this issue. They are subject to the age-old problem of computer programming: garbage in, garbage out

If, as a society, we advocate for greater attention to truthfulness in the outputs of AI, then software companies and programmers will try to bring it about. It might involve, for example, greater investment in electronic authentication methods. An image or document will have to have, embedded in its digital code, extra information serving to authenticate it by some agreed and hard-to-forge method. In the 2002 science fiction film Minority Report an example of this was included: the name of a person accused of a ‘pre-crime’ (in the terminology of the film) is inscribed on a wooden ball, so as to use the unique cellular structure of a given piece of hardwood as a form of data substrate that is near impossible to duplicate.  

The questions we face with AI thus come close to some of those we face when dealing with one another as humans. 

It is clear that a major issue in the future use of AI by humans will be the issue of trust and reasonable belief. On what basis will we be able to trust what AI asserts? If we are unable to check the reasoning process in a result claimed to be rational, how will be able to tell that it was in fact well-reasoned? If we only have an AI-generated output as evidence of something having happened in the past, how will we know whether it is factually correct? 

Among the strategies that suggest themselves is the use of several independent AIs. If they are indeed independent and all propose the same answer to some matter of reasoning or of fact, then there is a prima facie case for increasing our degree of trust in the output. This will give rise to the meta-question: how can we tell that a given set of AIs are in fact independent? Perhaps they all were trained on a common faulty data set. Or perhaps they were able to communicate with each other and thus influence each other.  

The questions we face with AI thus come close to some of those we face when dealing with one another as humans. We know humans in general are capable of both ignorance and deliberate deception. We manage this by building up degrees of trust based on whether or not people show behaviours that suggest they are trustworthy. This also involves the ability to recognize unique individuals over time, so that a case for trustworthiness can be built up over a sequence of observations. We also need to get a sense of one another's character in more general ways, so that we can tell if someone is showing a change in behaviour that might signal a change in their degree of trustworthiness. 

In order to earn our trust, an AI too will have to be able to suffer and, perhaps, to die. 

Issues of trust and of reasonable belief are very much grist to the mill of theology. The existing theological literature may have much that can be drawn upon to help us in this area. An item which strikes me as particularly noteworthy is the connection between suffering and loss and earning of trust, and the relation to mortality. In brief, a person you can trust is one who has ventured something of themselves on their pronouncements, such that they have something to lose if they prove to be untrustworthy. In a similar vein, a message which is costly to the messenger may be more valuable than a message which costs the messenger nothing. They have already staked something on their message. This implies they are working all the harder to exert their influence on you, for good or ill. (You will need to know them in other ways in order to determine which of good or ill is their intention.)  

Mortality brings this issue of cost to a point of considerable sharpness. A person willing to die on behalf of what they claim certainly invests a lot in their contribution. They earn attention. It is not a guarantee of rationality or factual correctness, but it is a demonstration of commitment to a message. It signals a sense of importance attached to whatever has demanded this ultimate cost. Death becomes a form of bearing witness.  

A thought-provoking implication of the above is that in order to earn our trust, an AI too will have to be able to suffer and, perhaps, to die. 

In the case of human life, even if making a specific claim does not itself lead directly to one's own death, the very fact that we die lends added weight to all the choices we make and all the actions we take. For, together, they are our message and our contribution to the world, and they cannot be endlessly taken back and replaced. Death will curtail our opportunity to add anything else or qualify what we said before. The things we said and did show what we cared about whether we intended them to or not. This effect of death on the weightiness of our messages to one another might be called the weight of mortality. 

In order for this kind of weight to become attached to the claims an AI may make, the coming death has to be clearly seen and understood beforehand by the AI, and the timescale must not be so long that the AI’s death is merely some nebulous idea in the far future. Also, although there may be some hope of new life beyond death it must not be a sure thing, or it must be such that it would be compromised if the AI were to knowingly lie, or fail to make an effort to be truthful. Only thus can the pronouncements of an AI earn the weight of mortality. 

For as long as AI is not imbued with mortality and the ability to understand the implications of its own death, it will remain a useful tool as opposed to a valued partner. The AI you can trust is the AI reconciled to its own mortality. 

Review
AI
Character
Culture
Film & TV
4 min read

The utter humanity of Wallace and Gromit

Choices in front of and behind the camera tame technology.
A still from a claymantion film shows three characters, Wallace, Gromit and a robot garden gnome marching out a garden shed.
AI: here to help.
Aardman Animations.

In 1993, Aardman Animations released Wallace & Gromit: The Wrong Trousers. It follows hapless inventor Wallace and his long-suffering dog Gromit as they rent out their spare room to a penguin, Feathers McGraw, who is subsequently revealed to be a master criminal, narrowly pipping Anthony Hopkins’ Hannibal Lecter and Javier Bardem’s Anton Chigurh to the title of cinema’s most sinister villain. (Trust me: you will never look at a red rubber glove the same way after The Wrong Trousers). 

At the film’s climax, perpetual good-boy Gromit chases McGraw through the house via a series of increasingly convoluted model railway tracks, even as he has to build the very tracks he’s riding on. There is a strong argument to be made that it is best scene in cinematic history.  

Fast forward to Christmas, 2024, and Wallace and Gromit: Vengeance Most Fowl is shown on BBC One on Christmas Day. It tells the story of Feathers McGraw – who has lost none of his quiet menace – plotting revenge on the eponymous duo, this time by taking over a series of technologically advanced garden gnomes Wallace has invented.  

While nothing in Vengeance Most Fowl tops the train chase from The Wrong Trousers – indeed, how can one improve on perfection? – it is another magnificent addition to the Wallace and Gromit oeuvre.  

Moreover, it is a remarkably prescient tale about the dangers of technology, and the beauty of humanity. It is the perfect antidote to much of modern cinema and almost single-handedly restored by faith in film as an artistic medium. Vengeance Most Fowl is such a success because it oozes humanity in every single frame. However, this humanity appears most clearly in three distinct ways.  

First, in its story. The inciting MacGuffin of Vengeance Most Fowl is the new garden gnomes Wallace has concocted. Feathers McGraw takes control of Wallace’s gnomes by hacking into its software and switching it from ‘good’ mode to 'evil’ mode. (Like everything in life, this is a joke The Simpsons got to first: in 1992’s “Treehouse of Horror III,” Homer accidently buys Bart a Krusty the Clown doll accidently set to ‘evil’ mode rather than ‘good’ mode.) 

Vengeance Most Fowl offers a more nuanced take on technology than most. It’s neither straightforwardly good nor straightforwardly bad; it depends entirely on the user. We see the benefits of the gnomes as they help people with their gardening. But put them in the hands of the wrong person – or penguin – and they become tools for evil. Vengeance Most Fowl is not an anti-technology film, then, but is realistic about the fact that some humans – and, indeed, penguins – will inevitably seek to use technology for nefarious ends. 

Second, in its voice acting. Vengeance Most Fowl is the first Wallace & Gromit film released following the death of long-standing Wallace voice actor Peter Sallis. It is genuinely remarkable, then, that no AI was used by Aardman to replicate his voice. Instead, this is left to Ben Whitehead and the results are certainly worth it. 

Where many film studios or production companies would have used technology to offer a ‘fake’ Sallis performance – think Peter Cushing in Rogue One: A Star Wars Story, for example, or even the use of AI to reconstruct John Lennon’s voice for the lost Beatles single “Now and Then” – Aardman did not. Instead, they made a very conscious decision to have Whitehead offer a deeply human performance as Wallace. When (SPOILER ALERT) at the end of the film Wallace tells Gromit that he can live without inventing, but he can’t live without his dog, the emotional pay-off is so genuine because it is real. Because it is a thoroughly human moment. 

Third, in its cinematography. Claymation is a medium only adopted by artists who hate themselves. That’s the only reason I can think for making an entire film using such a slow, tedious process. It is also a deeply human art form. It is the result of tens of thousands of hours of painstaking and repetitive work. It is yet another conscious choice by the team at Aardman to create something that is thoroughly and unmistakably human. 

All of this, I think, says something about how Wallace & Gromit manages to feel like such a breath of fresh air. It has not been committee-d to death, or market research-ed into beige-ness. It is full of stupid little jokes (like Gromit reading Virginia Woof) and localised references (“Yorkshire Border: Keep Out!” followed by “Lancashire Border: No, Your Keep Out!”).  

The cost of making Wallace & Gromit films is too costly for them to be cheap, mass-produced disappointments churned out at an increasing rate of knots. They are lovingly hand-crafted works of art and, given the current state of much cinema and TV, they are nothing short of minor miracles.  

Wallace & Gromit is an utterly human series of films. It isn’t perfect. And that’s what makes it perfect. 

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