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Equation 8 · The Real Economics of Shipping a Model to a Device

What does this equation mean?

Qdistill∗=600/0.0018≈333,000Q^{*}_{\mathrm{distill}} = 600 / 0.0018 \approx 333{,}000

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Inputs and operations600 / 0.0018 ≈ 333,000
Result or conditionQ^*_distill
How to read the two sides of this formula. Follow the article passage for the meaning of each quantity.

This equation gives an approximation: it relates the quantities while allowing an approximation. Read the equation part by part below; each part has a contextual explanation and a link to its mathematical background.

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Qdistill∗Q^{*}_{\mathrm{distill}}

Symbol Q^*_distill

Qd∗Q^*_distill is part of the quantity the equation computes from the expression on the right.

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=

=

The expressions on both sides represent the same quantity under the stated assumptions.

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≈

≈

Approximately equal to; the equality is not exact.

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subscript

subscript

The lower label selects a particular version, component, or indexed member of the quantity. For example, x₀ and xₜ can be values at different positions.

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superscript

superscript

A raised number can be a power. When it is a label or bound, it selects a case or the upper limit of a sum; the formula’s structure distinguishes these uses.

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How to interpret it

Its accuracy depends on the assumptions and range of use described in the article. Read it with the definitions, units, and assumptions supplied by the article.

What the article says around this equation

As a worked illustration only, not a claim about any real company’s ledger: take Alpaca’s disclosed $600 and assume, as an order-of-magnitude figure consistent with how frontier and compact API tiers are typically priced relative to each other, that a teacher-class model costs $0.002 per query to serve and a well-distilled student costs $0.0002 — a tenfold gap. Then Qdistill∗Q^{*}_{\mathrm{distill}} = 600 / 0.0018 ≈\approx 333{,}000 queries. Any production feature serving that many requests clears the investment in days, sometimes hours. This is the arithmetic reason distillation has become the default route to a deployable small model rather than a research curiosity: the pipeline cost is a rounding…
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As a worked illustration only, not a claim about any real company’s ledger: take Alpaca’s disclosed $600 and assume, as an order-of-magnitude figure consistent with how frontier and compact API tiers are typically priced relative to each other, that a teacher-class model costs $0.002 per query to serve and a well-distilled student costs $0.0002 — a tenfold gap. Then Qdistill∗Q^{*}_{\mathrm{distill}} = 600 / 0.0018 ≈\approx 333{,}000 queries. Any production feature serving that many requests clears the investment in days, sometimes hours. This is the arithmetic reason distillation has become the default route to a deployable small model rather than a research curiosity: the pipeline cost is a rounding error against even modest cloud query volumes. Schwartz and colleagues’ “Green AI” argument — that the field should routinely report the “financial cost or ‘price tag’” of developing and running a model as a first-class evaluation criterion, not just its accuracy [ 7 ] — is worth restating here precisely because the headline distillation figures that circulate publicly are, by design, the cheapest line item in this whole accounting. Six hundred dollars is a true and verifiable number. It is also not the number that determines whether shipping the result to a device saves anyone money.

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