Towards Friendly AI: A Comprehensive Review and New Perspectives on Human-AI Alignment

Fuente: arXiv
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Main Authors: Sun, Qiyang, Li, Yupei, Alturki, Emran, Murthy, Sunil Munthumoduku Krishna, Schuller, Björn W.
Format: Preprint
Published: 2024
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_version_ 1866916534158360576
author Sun, Qiyang
Li, Yupei
Alturki, Emran
Murthy, Sunil Munthumoduku Krishna
Schuller, Björn W.
author_facet Sun, Qiyang
Li, Yupei
Alturki, Emran
Murthy, Sunil Munthumoduku Krishna
Schuller, Björn W.
contents As Artificial Intelligence (AI) continues to advance rapidly, Friendly AI (FAI) has been proposed to advocate for more equitable and fair development of AI. Despite its importance, there is a lack of comprehensive reviews examining FAI from an ethical perspective, as well as limited discussion on its potential applications and future directions. This paper addresses these gaps by providing a thorough review of FAI, focusing on theoretical perspectives both for and against its development, and presenting a formal definition in a clear and accessible format. Key applications are discussed from the perspectives of eXplainable AI (XAI), privacy, fairness and affective computing (AC). Additionally, the paper identifies challenges in current technological advancements and explores future research avenues. The findings emphasise the significance of developing FAI and advocate for its continued advancement to ensure ethical and beneficial AI development.
format Preprint
id arxiv_https___arxiv_org_abs_2412_15114
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Towards Friendly AI: A Comprehensive Review and New Perspectives on Human-AI Alignment
Sun, Qiyang
Li, Yupei
Alturki, Emran
Murthy, Sunil Munthumoduku Krishna
Schuller, Björn W.
Artificial Intelligence
Computers and Society
I.2.0; K.4.0
As Artificial Intelligence (AI) continues to advance rapidly, Friendly AI (FAI) has been proposed to advocate for more equitable and fair development of AI. Despite its importance, there is a lack of comprehensive reviews examining FAI from an ethical perspective, as well as limited discussion on its potential applications and future directions. This paper addresses these gaps by providing a thorough review of FAI, focusing on theoretical perspectives both for and against its development, and presenting a formal definition in a clear and accessible format. Key applications are discussed from the perspectives of eXplainable AI (XAI), privacy, fairness and affective computing (AC). Additionally, the paper identifies challenges in current technological advancements and explores future research avenues. The findings emphasise the significance of developing FAI and advocate for its continued advancement to ensure ethical and beneficial AI development.
title Towards Friendly AI: A Comprehensive Review and New Perspectives on Human-AI Alignment
topic Artificial Intelligence
Computers and Society
I.2.0; K.4.0
url https://arxiv.org/abs/2412.15114