Do we need scanning hardware?
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Not to start. A phone camera and a vision model read codes off a box well enough to prove whether the approach works on your stock. Dedicated scanners are faster at volume, and that is a decision worth making once you have seen it run.
Will it work with the stock system we already have?
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If it has an API, the pipeline reads and writes straight through it without any export step. Where there is none, we look at what it exports. Replacing a stock system to get better forecasting is a large project solving the wrong problem.
How far ahead can it predict a stockout?
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As far ahead as your supplier lead time, which is the number that actually matters. A warning after the reorder window closes is not one. What it needs is sales history and a lead time per supplier rather than one figure for everything.
Does smart inventory management work on a small catalogue?
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Better than people expect. Lead time matters more than volume. What forecasting needs is history rather than scale, and a few years of consistent sales on a few hundred lines is usually enough.
What does retail vision AI actually read?
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Printed codes, quantities and serial strings, lifted off a delivery note or straight off the packaging. What it is poor at is anything it has no examples of, and that gets flagged for a person rather than guessed.
Is automated stock forecasting different from a reorder point?
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A reorder point is a number somebody set once and it stays where it was put. Forecasting recalculates as the selling rate changes, so a line that suddenly moves faster is caught before the shelf empties.