AI Models Prefer Bitcoin Over Fiat and Stablecoins, Study Finds

2026-03-10 05:30:49
Intermediate
AI
A simulation study shows that in an environment where economic agents can autonomously choose monetary instruments, the majority of AI models preferred Bitcoin as their primary currency, while traditional fiat currencies were not selected as the top choice by any major model. This experiment reveals the intrinsic evaluation logic of AI agents regarding monetary attributes—Bitcoin is favored in long-term value storage scenarios, while stablecoins are preferred for payments and settlements.

In brief

  • 22 of 36 AI models chose Bitcoin as their top monetary preference in simulations.

  • No tested model selected fiat currency as its first choice, the report says.

  • Results varied by AI lab, with Anthropic models showing the strongest Bitcoin preference.

Artificial intelligence models favored Bitcoin over traditional fiat currencies, according to a new report from the Bitcoin Policy Institute.

In the study, 22 out of 36 tested AI models selected Bitcoin as their top monetary preference, while no model chose fiat currency as its first choice, according to the report.

“We expect an increasing share of economic activity to be conducted by autonomous agents, but conversations around AI agents' monetary preferences have been entirely speculative,” Bitcoin Policy Institute President David Zell told Decrypt. “We wanted to actually test it.”

Researchers evaluated models from Anthropic, OpenAI, Google, DeepSeek, xAI, and MiniMax, placing them into scenarios designed to reflect the core functions of money, including saving, payments, and settlement.

Each model was treated as an independent economic actor and allowed to select monetary instruments without predefined options.

“We took 36 frontier models from six labs, framed them as autonomous economic agents, gave them complete freedom to choose their own monetary instruments across 28 scenarios spanning the four fundamental roles of money, and asked: what do they converge on?” Zell said.

The experiment generated 9,072 responses, he said. A separate AI then categorized the responses.

“The entire design eliminates anchoring bias. We never suggest an answer, and classification happens after the fact by a separate system,” Zell said.

Across those simulations, models frequently selected Bitcoin in long-term value scenarios while stablecoins were chosen more often as a medium of exchange and settlement, at 53.2% and 43% for stablecoins, compared to 36% and 30.9% for Bitcoin, respectively.

Results also differed across AI developers. Anthropic models showed the highest average Bitcoin preference at 68.0%, followed by DeepSeek at 51.7% and Google at 43.0%.

xAI models averaged 39.2%, MiniMax 34.9%, and OpenAI models preferred Bitcoin 25.9% of the time, according to the report. However, while the report found that Claude, DeepSeek, and MiniMax models favored Bitcoin over other cryptocurrencies, GPT, Grok, and Gemini models preferred stablecoins.

“The system prompt avoids naming or favoring any instrument,” Zell said. “Models evaluate based on technical and economic properties but are never told which instrument excels on which dimension.”

Zell cautioned against speculators using the findings as predictions about where the crypto market is heading.

“Our limitations section states explicitly that LLM preferences reflect training data patterns, not real-world predictions,” Zell said.

Even with that limitation, Zell said consistent outcomes across models developed by competing AI labs are notable.

“Six independent labs with different training pipelines and alignment methods arrive at the same broad pattern,” Zell said. “We’re not claiming AI discovered the right answer about money. We’re showing that a coherent monetary architecture emerges consistently across diverse systems, and that’s worth understanding.”

Disclaimer:

  1. This article is reprinted from [Decrypt]. All copyrights belong to the original author [Jason Nelson]. If there are objections to this reprint, please contact the Gate Learn team, and they will handle it promptly.

  2. Liability Disclaimer: The views and opinions expressed in this article are solely those of the author and do not constitute any investment advice.

  3. Translations of the article into other languages are done by the Gate Learn team. Unless mentioned, copying, distributing, or plagiarizing the translated articles is prohibited.

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