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AI key to Taiwan’s new economy, new NDC head says

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Newly appointed National Development Council (NDC) Minister Yeh Chun-hsien (葉俊顯) yesterday said that he would work to advance Taiwan’s industrial innovation, and highlighted artificial intelligence (AI) as key to the nation’s new economy.

Yeh, a research fellow at Academia Sinica’s Institute of Economics, yesterday officially took over from Paul Liu (劉鏡清), who resigned for health reasons, at a handover ceremony in Taipei.

Yeh said that he would focus on the overall goals of the National Development Plan (2025-2028), which prioritizes four main policy areas: an innovation-driven economy, balanced development across Taiwan, improved governance and talent investment.

Photo: Wang Yi-sung, Taipei Times

The council would also continue to promote the government’s “five trusted industry sectors” — semiconductors, AI, military, security and surveillance, and next-generation communications, he said.

Yeh said he is planning 10 new AI infrastructure initiatives, as AI is central to Taiwan’s new economy.

The council would also continue to promote its NT$10 billion (US$326.5 million) fund to support industrial transformation, he added.

In terms of talent investment, the government would promote the National Talent Competitiveness Program 2.0 to bolster the quality of the nation’s workforce, build international competitiveness for the new generation and create a bilingual-friendly environment to attract global talent to Taiwan, Yeh said.

Implementing national development policies requires the council to play a coordinating role across government agencies and work closely with local governments, he said, adding that no matter how good a policy is, it cannot be truly realized without public understanding and support.



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Artificial intelligence loses out to humans in credibility during corporate crisis responses

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As artificial intelligence tools become increasingly integrated into public relations workflows, many organizations are considering whether these technologies can handle high-stakes communication tasks such as crisis response. A new study published in Corporate Communications: An International Journal provides evidence that, at least for now, human-written crisis messages are perceived as more credible and reputationally beneficial than those authored by AI systems.

The rise of generative artificial intelligence has raised questions about its suitability for replacing human labor in communication roles. In public relations, AI tools are already used for media monitoring, message personalization, and social media management. Some advocates even suggest that AI could eventually author press releases or crisis response messages.

However, prior studies have found that people often view AI-generated messages with suspicion. Despite improvements in the sophistication of these systems, the use of AI can still reduce perceptions of warmth, trustworthiness, and competence. Given the importance of credibility and trust in public relations, especially during crises, the study aimed to evaluate how the perceived source of a message—human or AI—affects how people interpret crisis responses.

The researchers also wanted to assess whether the tone or strategy of a message—whether sympathetic, apologetic, or informational—would influence perceptions. Drawing on situational crisis communication theory, they hypothesized that more accommodating responses might boost credibility and protect organizational reputation, regardless of the source.

“Our interest in understanding how people judge the credibility of AI-generated text grew out of a graduate class Ayman Alhammad (the lead author) took with Cameron Piercy (the third author). They talked about research about trust in AI during the class and the questions we posed in our study naturally grew out of that,” said study author Christopher Etheridge, an assistant professor in the William Allen White School of Journalism and Mass Communications at the University of Kansas.

To explore these questions, the researchers designed a controlled experiment using a hypothetical crisis scenario. Participants were told about a fictitious company called the Chunky Chocolate Company, which was facing backlash after a batch of its chocolate bars reportedly caused consumers to become ill. According to the scenario, the company had investigated the incident and determined that the problem was due to product tampering by an employee.

Participants were then shown one of six possible press releases responding to the crisis. The releases varied in two key ways. First, they were attributed either to a human spokesperson (“Chris Smith”) or to an AI system explicitly labeled as such. Second, the tone of the message followed one of three common strategies: informational (providing details about the incident), sympathetic (expressing empathy for affected customers), or apologetic (taking responsibility and issuing an apology).

The wording of the messages was carefully controlled to ensure consistency across versions, with only the source and emotional tone changing between conditions. After reading the message, participants were asked to rate the perceived credibility of the author, the credibility of the message, and the overall reputation of the company. These ratings were made using standardized scales based on prior research.

The sample included 447 students enrolled in journalism and communication courses at a public university in the Midwestern United States. These participants were chosen because of their familiarity with media content and their relevance as potential future professionals or informed consumers of public relations material. Their average age was just over 20 years old, and most participants identified as white and either full- or part-time employed.

The results provided clear support for the idea that human authors are still viewed as more credible than AI. Across all three key outcomes—source credibility, message credibility, and organizational reputation—participants rated human-written messages higher than identical messages attributed to AI.

“It’s not surprising, given discussions that are taking place, that people found AI-generated content to be less credible,” Etheridge told PsyPost. “Still, capturing the data and showing it in an experiment like this one is valuable as the landscape of AI is ever-changing.”

Participants who read press releases from a human author gave an average source credibility rating of 4.40 on a 7-point scale, compared to 4.11 for the AI author. Message credibility followed a similar pattern, with human-authored messages receiving an average score of 4.82, compared to 4.38 for AI-authored versions. Finally, organizational reputation was also judged to be higher when the company’s message came from a human, with ratings averaging 4.84 versus 4.49.

These differences, while not massive, were statistically significant and suggest that the mere presence of an AI label can diminish trust in a message. Importantly, the content of the message was identical across the human and AI conditions. The only change was who—or what—was said to have authored it.

In contrast, the tone or strategy of the message (apologetic, sympathetic, or informational) did not significantly influence any of the credibility or reputation ratings. Participants did perceive the tone differences when asked directly, meaning the manipulations were effective. But these differences did not translate into significantly different impressions of the author, message, or company. Even though past research has emphasized the importance of an apologetic or sympathetic tone during a crisis, this study found that source effects had a stronger influence on audience perceptions.

“People are generally still pretty weary of AI-generated messages,” Etheridge explained. “They don’t find them as credible as human-written content. In our case, news releases written by humans are more favorably viewed by readers than those written by AI. For people who are concerned about AI replacing jobs, that could be welcome news. We caution Public Relations agencies against over-use of AI, as it could hurt their reputation with the public when public reputation is a crucial measure of the industry.”

But as with all research, there are some caveats to consider. The study relied on a fictional company and crisis scenario, which might not fully capture real-world reactions, and participants—primarily university students—may not represent broader public attitudes due to their greater familiarity with AI. Additionally, while the study clearly labeled the message as AI-generated, real-world news releases often lack such transparency, raising questions about how audiences interpret content when authorship is ambiguous.

“We measured credibility and organizational reputation but didn’t really look at other important variables like trust or message retention,” Etheridge said. “We also may have been more transparent about our AI-generated content than a professional public relations outlet might be, but that allowed us to clearly measure responses. Dr. Alhammad is leading where our research effort might go from here. We have talked about a few ideas, but nothing solid has formed as of yet.”

The study, “Credibility and organizational reputation perceptions of news releases produced by artificial intelligence,” was authored by Ayman Alhammad, Christopher Etheridge, and Cameron W. Piercy.



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Oxford and Ellison Institute Collaborate to Integrate AI in Vaccine Research – geneonline.com

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Oxford and Ellison Institute Collaborate to Integrate AI in Vaccine Research  geneonline.com



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Chinese social media firms comply with strict AI labelling law, making it clear to users and bots what’s real and what’s not

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Chinese social media companies have begun requiring users to classify AI generated content that is uploaded to their services in order to comply with new government legislation. By law, the sites and services now need to apply a watermark or explicit indicator of AI content for users, as well as include metadata for web crawling algorithms to make it clear what was generated by a human and what was not, according to SCMP.

Countries and companies the world over have been grappling with how to deal with AI generated content since the explosive growth of popular AI tools like ChatGPT, Midjourney, and Dall-E. After drafting the new law in March, China has now implemented it, taking the lead in increasing oversight and curtailing rampant use with its new labeling law making social media companies more responsible for the content on their platforms.



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