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CleanSpark

cleanspark.com · Technology · CLSK

Ranked 1,272 of 2,047 companies in the study

30Overall score
  • Visibility0
  • Citations0
  • Sentiment50
  • Site quality93
  • AI readiness43
What this means for CleanSpark

AI assistants do not name CleanSpark in any of their 60 answers to questions about the market. The company has an overall score of 30 out of 100, ranking 1,272nd of 2,047. Its website passes 4 of 14 technical checks for readiness for AI tools.

We asked 15 unbranded questions about the technology market: none named CleanSpark. AI assistants named it in none of 60 answers. The typical technology company is named in 10.0% of answers. By how often it is named, CleanSpark ranks 236 of 273 in its sector.

Named fewer than three times in total. Read this as a sign that AI assistants rarely bring this company up, not as an exact comparison with its rivals.

Named by AI in
0.0%
0 of 60 answers
Share of mentions
0.0%
compared with 5 rivals
AI readiness
4/14
technical checks passed. Typical for its sector: 4
Rank in its sector
199 of 273
by overall score, where the typical technology company scores 36
How CleanSpark compares with all 2,047 companies

Every dot is a company in the study. Hover one to see it; click to open its report.

This companySame sectorEvery other companyNever named

What makes up the score

Five parts, each scored out of 100.

Visibility
0

How often AI assistants name the company

Citations
0

How often AI uses the company's own website as a source

Sentiment
50

How positively AI describes the company

Site quality
93

How well built the website's own pages are

AI readiness
43

How easily AI tools can read and use the website

Visibility is calculated from the answers on this page. How the score is built.

Compared with technology

273 companies in this sector. The line on each bar is the typical company.

Overall score30
Ranks 199 of 273. Typical company: 36
Named in answers0%
Ranks 236 of 273. Typical company: 10%
AI readiness43
Ranks 14 of 273. Typical company: 29
What Perplexity actually said

The company is not named in this answer

“What alternative models exist for US enterprises seeking to expand computational capacity without developing new data centers?”

US enterprises can expand computational capacity without building new data centers by using a mix of cloud, colocation, neocloud/GPU cloud, and distributed edge models.

Hyperscale cloud services: AWS, Microsoft Azure, and Google Cloud provide elastic compute on demand, including IaaS, containers, and serverless functions, so firms can add capacity without owning facilities.

Managed warehouse / lakehouse platforms: For analytics and data workloads, platforms such as Snowflake, Databricks, Google BigQuery, and Microsoft Fabric shift compute into v …

The AI’s answer as we received it, shortened and not checked for accuracy.

Named instead
CyrusOne1
Share of mentions

How the mentions in these answers were split between this company and its rivals

CyrusOne
66.7%
Switch
33.3%
CleanSpark
0.0%
QTS Data Centers
0.0%
Aligned Data Centers
0.0%
EdgeConneX
0.0%
Which AI assistants named the company

Answers naming it, out of answers received

Claude
0/15
Gemini
0/15
OpenAI
0/15
Perplexity
0/15
Ready for AI agents

What this website publishes for an AI agent to read, use and buy from, on a scale of six levels.

  1. 0
  2. 1
  3. 2
  4. 3
  5. 4
  6. 5

Level 1: Basic web presence. Two of robots.txt, a sitemap and Link headers are in place.

To reach level 2:
  • Content Signals
Show every check, for your technical team
Discoverability
72 of 100
  • robots.txtPassed

    A valid robots.txt with crawl rules at the site root.

    study: 92.0%
  • SitemapPartly met

    Serve an XML sitemap and reference it from robots.txt.

    study: 86.8%
  • Link headersNot met

    Send Link headers such as rel="api-catalog" or rel="describedby" on the homepage.

    study: 0.3%
  • DNS for AI DiscoveryNot present

    Advertise agent endpoints with SVCB records under _agents.

    study: 5.5%
Content accessibility
50 of 100
  • Markdown negotiationNot met

    Return a markdown version when asked with Accept: text/markdown, for example at the CDN.

    study: 1.9%
  • llms.txtPassed

    An llms.txt that tells language models what the site offers.

    study: 25.1%
Bot access control
32 of 100
  • AI bot rulesPartly met

    Add explicit robots.txt groups for the main AI crawlers.

    study: 93.4%
  • Content SignalsNot met

    Add a Content-Signal line for search, ai-input and ai-train to robots.txt.

    study: 1.4%
  • Web Bot AuthNot present

    Only relevant if you run your own agents or crawlers: publish a signing key directory.

    study: 0.2%
APIs, auth and MCP
0 of 100
  • API CatalogNot met

    List public APIs in a linkset at /.well-known/api-catalog.

    study: 0.3%
  • OAuth discoveryNot met

    Publish OpenID Connect or OAuth server metadata under /.well-known.

    study: 11.8%
  • OAuth Protected ResourceNot met

    Serve protected resource metadata at /.well-known/oauth-protected-resource.

    study: 10.3%
  • auth.mdNot met

    Publish an auth.md describing how agents sign in.

    study: 0.0%
  • MCP Server CardNot met

    Offer an MCP server and publish its server card under /.well-known.

    study: 0.2%
  • A2A Agent CardNot met

    Publish an agent card at /.well-known/agent-card.json.

    study: 0.1%
  • Agent SkillsNot met

    Publish a skills index with the main tasks agents can do.

    study: 0.2%
  • WebMCPCould not check

    Register key actions such as search or cart as WebMCP tools.

    study: 33.7%
  • ARD manifestNot met

    Publish an ai-catalog.json listing every agent interface.

    study: 0.1%

Score 35 of 100 · 97% of checks could run · checked on October 5, 2026 · www.cleanspark.com · 2,047 companies scanned

See how every company did, and how this was measured.

The checks behind the AI readiness score

4 of 14 passed. This list is for your technical team. The percentage is how many companies in the study pass each check.

These 14 checks ran during the audit and are what the AI readiness part of the overall score counts. The scan above ran later and is stricter on Link headers and Markdown, so a check can pass here and not there.

Show the 14 checks
Discoverability
  • Passedrobots.txt publishedstudy: 85.0%
  • Not metXML sitemapstudy: 73.2%
  • PassedHTTP Link headers (RFC 8288)study: 29.0%
Content Accessibility
  • Not metMarkdown content negotiationstudy: 8.3%
  • Passedllms.txt publishedstudy: 21.7%
  • PassedToken budget (page weight)study: 95.2%
Bot Access Control
  • Not metExplicit AI bot rulesstudy: 13.0%
API / Auth / MCP
  • Not metAPI Catalog (.well-known/api-catalog)study: 0.2%
  • Not metOAuth Authorization Server discoverystudy: 10.1%
  • Not metOAuth Protected Resource discoverystudy: 9.3%
  • Not metMCP Server Cardstudy: 0.0%
  • Not metA2A Agent Cardstudy: 0.0%
  • Not metWebMCP toolsstudy: 4.2%
  • Not metAgent Skills declaredstudy: 0.0%
What AI crawlers may read (robots.txt)

This website sets no rules for any AI crawler by name, like 84% of the websites whose rules we could read. Every AI crawler follows its general rules.

Training AI
  • GPTBotallowed
  • ClaudeBotallowed
  • Anthropic-AIallowed
  • Google-Extendedallowed
  • Applebot-Extendedallowed
  • Meta-ExternalAgentallowed
  • FacebookBotallowed
  • Bytespiderallowed
  • CCBotallowed
  • Diffbotallowed
  • Omgilibotallowed
AI search
  • OAI-SearchBotallowed
  • Claude-SearchBotallowed
  • PerplexityBotallowed
  • Applebotallowed
  • Amazonbotallowed
  • YouBotallowed
Answering questions
  • ChatGPT-Userallowed
  • Claude-Userallowed
  • Perplexity-Userallowed
  • DuckAssistBotallowed
  • MistralAI-Userallowed

Read from the website’s own rules file (robots.txt). An asterisk marks a crawler the file names. The rest follow its general rules. “Partly” means only some pages are blocked.

Websites the AI used as sources

How many times each website was listed as a source in these answers

energy.gov
16
techtarget.com
14
ibm.com
12
mckinsey.com
9
flexential.com
9
hanwhadatacenters.com
9
databank.com
8
deloitte.com
8
arxiv.org
8
vertiv.com
6

In the study as US-listed.

Every question, and where the company came up (0 of 15)
QuestionOpenAIClaudePerplexityGemini
  • How does colocation compare to managed digital infrastructure for supporting advanced computing workloads?
  • How is US data center infrastructure typically priced for enterprise clients?
  • Which industries rely heavily on optimized large-scale digital infrastructure for their operations?
  • Are there cloud-first solutions that offer similar benefits to dedicated energy-efficient data centers?
  • What are the pros and cons of hyperscale vs modular data center developments?
  • What are some alternatives to traditional brick-and-mortar data centers for large-scale digital operations?
  • What are common issues enterprises face when scaling up digital infrastructure for AI deployments?
  • What are the best options for scalable, energy-efficient data center infrastructure in the US?
  • Are large-scale, energy-optimized data center facilities worth the investment for growing organizations?
  • What types of enterprises benefit most from US-based, energy-backed compute infrastructure?
  • What alternative models exist for US enterprises seeking to expand computational capacity without developing new data centers?
  • What factors most influence the total cost of ownership for scalable compute infrastructure?
  • What should enterprises look for when selecting a data center for high-performance compute applications?
  • How can organizations address unexpected power or cooling challenges in large data centers?
  • Which digital infrastructure solutions are most recommended for enterprise-level computing needs?
named the companyanswered without naming itdid not answer

Columns, left to right: OpenAI, Claude, Perplexity, Gemini. The AI assistants often disagree. Across the study, on 40% of the questions where a company is named, only one of the four names it.

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