Noesis

Sample answers

Real questions, full answers.

These are examples of what Noesis answers look like — tables and charts built from primary sources, dated, with the most useful follow-up questions. The live answer engine is in early access.

Markets · ETF holdings

As of Q4 2024

What are the top 10 stocks in QQQ — and what's their weight?

The Invesco QQQ Trust tracks the Nasdaq-100. Its top holdings are dominated by mega-cap tech, and the concentration is striking: the top ten names alone are over 54% of the entire fund.

# Ticker Company Weight Relative
1 AAPL Apple 9.0%
2 MSFT Microsoft 8.0%
3 NVDA NVIDIA 7.5%
4 AMZN Amazon 5.7%
5 AVGO Broadcom 5.0%
6 META Meta Platforms 4.9%
7 GOOG Alphabet (A + C) 5.6%
8 TSLA Tesla 3.0%
9 COST Costco 2.8%
10 NFLX Netflix 2.5%
Top 10 cumulative 54.0%

Noesis read

QQQ's top-10 concentration is its biggest factor — and its biggest risk. A single decade-long shift in semiconductors, cloud, or consumer tech can move the whole fund. If you hold QQQ, you mostly own these ten names.

Source: Invesco QQQ Trust public fund disclosures, late 2024. Weights shift daily as prices and the Nasdaq-100 rebalance.

Energy · Geopolitics

As of 2023 (EIA / IEA)

Which countries consume the most crude oil — and how much do they make themselves?

The world burns about 102 million barrels of crude oil per day. The top consumers and producers are rarely the same set, which is why oil is the single biggest geopolitical lever in modern economics.

Country Consumption (mbd) Production (mbd) Net import (mbd) Self-sufficient?
United States 19.4 13.2 +6.2 Net importer
China 15.5 4.1 +11.4 Net importer
India 5.4 0.7 +4.7 Net importer
Russia 3.5 10.7 -7.2 Yes
Saudi Arabia 3.7 10.4 -6.7 Yes
Japan 3.3 0.0 +3.3 Net importer
Brazil 2.6 3.6 -1.0 Yes
South Korea 2.6 0.0 +2.6 Net importer
Canada 2.5 5.5 -3.0 Yes
Germany 2.0 0.1 +1.9 Net importer

Noesis read

The US is the world's largest oil consumer and the largest producer — and still a net importer of crude. China imports the most by volume (over 11 mbd). Only Russia, Saudi Arabia, Canada, and Brazil among the top consumers run a surplus. Energy self-sufficiency is not a binary — it's a balance sheet.

Source: U.S. Energy Information Administration (EIA) International Energy Statistics and the International Energy Agency (IEA) Oil Market Report, 2023 averages. Figures cover crude oil and condensates; values rounded.

Energy · Electricity mix

As of 2023 (IEA)

How is the world's largest economies' electricity made?

Coal still dominates Asia, gas anchors the United States, France runs on nuclear, and Germany is in the middle of the transition. One chart, ten countries, eight sources.

China
United States
India
Japan
Germany
France
Brazil
United Kingdom
Russia
South Korea
Coal Gas Nuclear Hydro Wind Solar Oil Other

Noesis read

China and India are still over half coal. France's grid is the cleanest of any G7, almost entirely nuclear + hydro. Germany and the UK lead the gas-to-wind pivot. The US is in the middle — cleaner than it looks because it swapped coal for gas, but still burning a lot of fossil fuels for power.

Source: International Energy Agency (IEA) Electricity Information 2024 release, covering 2023 generation by source. "Other" includes biomass, waste, and minor categories. Values rounded to whole percentages.

AI · Energy

As of 2024 (IEA, industry)

How much energy does an AI query use — small picture and big picture?

A single LLM query is tiny. A planet's worth of LLM queries is huge. Both are true.

Per query

~0.3 Wh

A typical chat answer is roughly one Google search.

Light-bulb equivalent

~2 min

A 10W LED bulb running for two minutes equals one query.

ChatGPT, per day

~300 MWh

Powers ~25,000 US homes for a day.

Average US home

~30 kWh/day

≈ 100,000 LLM queries equal one home for one day.

Training one big model

~50 GWh

One frontier training run ≈ a small US city for a week.

AI share of US grid by 2030

8–12%

Projected — all data centers today are ~4%.

Noesis read

The per-query cost is genuinely small — running a model is cheap compared to making one. The aggregate is where the story lives: billions of queries per day plus an ongoing arms race to train bigger models means AI is on track to be a single-digit-percent chunk of US electricity demand within five years. Whether that "breaks the grid" depends almost entirely on where the new data centers get built.

Source: IEA Electricity 2024 report (data-center forecasts), Schneider Electric and industry estimates for per-query energy, and public training-energy disclosures from leading AI labs. Per-query figures are inherently rough — they depend on the model, the prompt, and the data-center efficiency (PUE).

Pattern · Historical lens

As of 2026-06-19

Is the AI / memory-chip rally a bubble — and where are we in the cycle?

"History doesn't repeat, but it often rhymes." Even if this is a bubble, the foundation has real economic value. The useful question isn't "bubble or not" — it's which phase rhymes and what would change the read.

The canonical bubble curve (Rodrigue, after Minsky)

Stealth Awareness Mania Blow-off Capitulation Despair AI / chip cycle · est. mid-2026 All historical bubbles peaked here

Position is a hypothesis, not a measurement. The point of the curve is to ask "what would have to be true for us to be earlier (or later) than this?"

Five historical analogues — how the current rally rhymes

Era Why it rhymes Peak-to-trough Recovery Rhyme
Dot-com
1995–2000
Sector capex super-cycle; "new economy" narrative; real productivity revolution; concentration in mega-cap tech Nasdaq −78% ~15 yrs
to new high, 2015
Strong
Japan asset bubble
1985–1989
Liquidity-driven; valuation extremes; cross-holdings + concentration. Today's rates are higher — a partial rhyme. Nikkei −80% ~34 yrs
to new high, 2024
Medium
Railroad mania
US, 1860s–1893
Real revolutionary infrastructure; massive capex; monopoly fears; multiple boom-busts within a real revolution ~−50% per panic ~5–10 yrs
per cycle
Strong
on the "real revolution" parallel
Nifty Fifty
1968–1973
Mega-cap concentration; "growth at any price"; durable quality names priced for perfection ~−50% cohort ~7–8 yrs
to prior peak
Strong
on concentration
Semi cycle
1995–2001
Memory boom + capex super-cycle inside the larger dot-com — the most direct rhyme for memory specifically Memory −80%
Capex-cyclicals −70%
~3–5 yrs Strongest
for memory chips

Signals — where each phase ends, and where we are

Signal Dot-com peak
Mar 2000
Japan 1989 Today
rough estimate
Top-name fwd P/E100–200×~70× (broad)30–40× leaders
Sector capex / GDP4× trend2.5× trend3–4× trend
IPO frenzyExtremeExtremeModerate, rising
Retail participationExtremeExtremeHigh, contested
Narrative saturationTotalTotalHigh
Real free cash flowLagging priceLaggingHigher — meaningful FCF
Insider sellingHeavyHeavyModerate–Heavy
Margin debt / mcapPeakPeakElevated, not extreme

Noesis read

The current rally rhymes strongly with railroads and dot-com — a genuine technological revolution that markets are pricing aggressively. It rhymes weakly with tulips: there is real free cash flow, especially in compute infrastructure.

Where we likely sit: awareness → early mania. Several extreme-end signals are not yet present (parabolic blow-off, IPO frenzy at dot-com intensity). Others are present (concentration, narrative saturation, retail interest).

The fear-vs-greed fight phase — every dip is bought, bears get stopped out, anxieties get dismissed — historically precedes the final mania leg by 6–12 months. The 2025 corrections that were bought hard fit this pattern. The transition into blow-off typically arrives when sentiment reaches near-unanimous bullishness.

Two markers historically signaled the end of cycles like this:

  1. Real earnings break the narrative. Watch top-3 hyperscaler capex guidance and NVDA-like Q-over-Q growth. Quarter-over-quarter flat-lining while valuations remain extreme is the inflection.
  2. Fed policy turns. Lower rates have powered every modern bubble (Japan 1985, dot-com 1995, housing 2003). Re-acceleration of cuts extends; hawkish pivot compresses.

Duration: "obvious froth → blow-off top" historically takes 12–24 months. Blow-off → despair: 9–18 months. Recovery for the survivors (the real revolutions): single-digit years for the leaders, sometimes decades for indices. The strategic implication: even if you believe we're in awareness → mania, you may have ~12–24 months before peak — but the end is sudden.

What would change the read

  • ↑ Mania confidence if: parabolic move in semi indices · IPO frenzy approaches dot-com intensity · mainstream "this time is different" narratives saturate · retail margin balances accelerate faster than market cap.
  • ↑ Closer-to-top confidence if: top-3 names announce capex 2–3× current · insider selling intensifies broadly · breadth narrows sharply (mega-cap-only rallies) · forward P/E for leaders crosses 60×.
  • ↓ Bubble concern if: earnings keep beating · real FCF growth continues at current pace · breadth widens (small/mid-cap participation) · capex efficiency improves (revenue per $ of capex rises).

Sources: Robert J. Shiller, Irrational Exuberance (CAPE methodology); Charles P. Kindleberger, Manias, Panics, and Crashes (Minsky-cycle taxonomy); Reinhart & Rogoff, This Time Is Different; BIS bubble research; NBER working papers on asset cycles; Macrotrends and historical Nasdaq / Nikkei price series. Current-cycle signals are illustrative estimates (training data), not live measurements — the live engine wires real-time feeds. See KAN-114 for the live build.

Money · Retirement

Bengen 1994; Trinity 1998; updated

What is the 4% rule for retirement — and does it still hold?

The 4% rule says you can withdraw 4% of your initial portfolio in year one, adjust the dollar amount for inflation each year after, and have a high probability of your money lasting 30 years. Here's how the math sits at different withdrawal rates.

Withdrawal rate (yr 1) 30-yr success rate Visual
3.0% 99%
3.5% 96%
4.0% 89%
4.5% 75%
5.0% 56%
5.5% 38%

Noesis read

4% is still a defensible starting point for a 30-year horizon with a 50/50 stock/bond mix. Several updated studies (Morningstar, among others) argue the safer number today is closer to 3.3–3.7%, because expected returns are lower than the late-20th- century data the original rule was built on. The honest answer: 4% is a good rule of thumb; treat it as the upper end of comfortable, not a guarantee. Stress-test your own plan in the Retirement Planner →.

Source: Bengen, W. (1994) Determining Withdrawal Rates Using Historical Data; Cooley, Hubbard, Walz (Trinity Study, 1998); Morningstar 2024 State of Retirement Income. Success rates are illustrative — actual outcomes depend on allocation, fees, and the specific historical (or Monte-Carlo) regime modeled.

Regional · Business climate

As of 2026-07-09

Which US states are the best for doing business right now?

CNBC's 20th annual study scored all 50 states across 138 metrics in 10 categories. In 2026, Infrastructure became the top-weighted category for the first time — including a new "ease of permitting" metric — reflecting the reality of AI-era data-center and advanced-manufacturing site selection. Economy dropped from #1 to #2. Here's how the rankings landed.

# State Best category rank Watch out for
1OhioCost of Doing Business #1No red flags — balanced top-quartile
2North CarolinaWorkforce #3, Access to Capital #5Cost of Living #35
3VirginiaEducation #5, Tech #6, Quality of Life #7Cost of Doing Business #26
4TexasWorkforce #1, Access to Capital #2, Tech #3Quality of Life #49
5MinnesotaQuality of Life #4, Education #10Cost of Doing Business #31
6MichiganCost of Doing Business #4Business Friendliness #27, Education #29
7GeorgiaAccess to Capital #8, Workforce #9Quality of Life #46
8FloridaWorkforce #2, Access to Capital #4Cost of Living #48
9TennesseeBusiness Friendliness #7, Workforce #7Quality of Life #50, Education #45
10IndianaCost of Doing Business #2, Cost of Living #6Quality of Life #48
11WashingtonTech #4, Workforce #6Cost of Doing Business #47
12IllinoisEducation #7Business Friendliness #44
13PennsylvaniaTech #5, Access to Capital #7Business Friendliness #42
14ArizonaWorkforce #4Education #43
15MassachusettsEducation #1, Access to Capital #6Cost of Doing Business #49

Bold = #1 in that category nationally. Full 50-state × 10-category breakdown archived in the Noesis knowledge base.

Category #1 winners

Workforce

Texas

Cost of Doing Business

Ohio

Technology & Innovation

California

Access to Capital

California

Business Friendliness

North Dakota

Education

Massachusetts

Quality of Life

Vermont

Cost of Living

West Virginia

The Noesis read

The 2026 Infrastructure re-weighting is the most consequential methodology shift since 2020. As hyperscaler AI capex tops $750B in 2026 — projected up to $920B by Goldman — the states already leading on Cost of Doing Business AND with real infrastructure investment programs (Ohio, Indiana, Michigan, Georgia, North Carolina) consolidate a structural site-selection advantage.

The sharpest single-state paradox: California is #1 in both Technology & Innovation AND Access to Capital — yet #50 in Cost of Living. The venture + academic + industrial cluster remains structurally dominant even as operational costs push corporations out. Similar paradox: Massachusetts #1 Education, #49 Cost of Doing Business. Brain-cost tradeoffs have diminishing returns when friction dominates.

Arkansas was named Most Improved in 2026 — the "Walmart HQ effect" pulling workers to Bentonville for low costs + rising quality of life. Consistent with the ongoing Sun Belt + Middle America workforce migration.

What would change the read next year: if bottom-quartile Business Friendliness states (NJ #50, CA #47, NY #49) pass real regulatory reform, they close the gap. If they don't — and Infrastructure remains top-weighted — expect the top-10 to consolidate further around Ohio, TX, NC, VA, MI, IN.

Source: CNBC's America's Top States for Business 2026, 20th annual edition, published 2026-07-09 by Scott Cohn. Methodology: 138 metrics across 10 categories, 2,500 max points.

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