INFOSYS LIMITED (INFY) Price Target & Share Price Forecast

Not a guess. A distribution.

1-Year Price Target (median)₹1,256+6.9%

As of , the INFOSYS LIMITED (INFY) 1-year price target is ₹1,256 - +6.9% from the current price of ₹1,175. The 80% confidence range is ₹882-₹1,788, with a 59.7% probability of finishing above today's price.

INFY 2027
₹1,256
+6.9%
INFY 2029
₹1,434
+22.0%
INFY 2031
₹1,637
+39.3%

Probability-weighted price target and forecast for INFOSYS LIMITED (INFY) across 2027, 2029, and 2031. Built from a 10,000-trial Monte Carlo simulation on 9.8 years of NSE historical data - so you see the full range of where the price could realistically land, weighted by likelihood. No analyst opinions. Just statistics.

Spot Price · Today
₹0
Based on 9.8 years of daily NSE data ·0.0% annualised volatility
5-yr median forecast
₹0
P(price ↑ in 5y)
0%
1-Year Forecast
2027
₹0
Median (P50)
6.9%
80% range₹882-₹1,788
P(price ↑)60%
P(price 2×)1%
3-Year Forecast
2029
₹0
Median (P50)
22.0%
80% range₹775-₹2,655
P(price ↑)66%
P(price 2×)15%
5-Year Forecast
2031
₹0
Median (P50)
39.3%
80% range₹740-₹3,624
P(price ↑)70%
P(price 2×)28%

INFY price probability fan

Each band shows where 10,000 simulated paths land. The wider the fan, the more uncertainty.

Probability Fan
INFY simulated paths · 60 months · 10,000 trials
P10-P90 (80%)P25-P75 (50%)Median (P50)

Probability of key outcomes

What are the odds INFY hits common targets within the simulated horizon?

0%
P(↑ 1Y)
Above today's price in 1 year
0%
P(↑ 5Y)
Above today's price in 5 years
0%
P(2×)
Doubles within 5 years
0%
P(↓)
Falls below today in 5 years

How the INFY price target & forecast are calculated

We ran 10,000 simulated price paths for INFOSYS LIMITED (INFY) using Geometric Brownian Motion (GBM) - the same probability framework used in institutional risk-management systems. A GBM needs exactly two inputs: how much the price moves, and which way it drifts. We treat those two very differently, and the reason is worth a minute of your time, because it is where most published "price targets" go wrong.

Volatility: measured, from the last two years

INFY's annualised volatility is 27.7%. Volatility is easy to measure and it persists: a couple of hundred trading days pin it down to within a few percent of itself, and this year's level is a decent guide to next year's. So we simply measure it, from the recent window, and use it as-is. That number sets the width of every band on this page.

Drift: estimated, then shrunk toward a long-run anchor

Drift is the opposite problem. Over the 9.8 years of history we hold, INFY compounded at 7.9%/year. But the statistical uncertainty on any drift estimated from 9.8 years at 27.7% volatility is about plus or minus 8.6%/year. That is not a rounding error, it is wider than the answer. Compounding a number that noisy over sixty months is how a large, profitable company ends up with a published five-year median below today's price for no reason other than which two dates the window happened to start and end on.

So we do three things instead of extrapolating it:

The drift actually simulated is 6.6%/year. Every one of the 10,000 trials projects a day-by-day path from today's ₹1,175 using that drift and that volatility, and the P10/P50/P90 bands are simply where those paths land.

What this cannot tell you

A GBM assumes volatility stays put and that returns are normally distributed. Real markets do neither: they cluster, they gap, and they crash further than a bell curve allows. Read P10 as a soft floor, not a worst case - a genuine bear market can go through it. The model also knows nothing about INFOSYS LIMITED's earnings, balance sheet, competition or management; it reads price and nothing else. It is a way of sizing uncertainty honestly, not a view on the business.

Why this differs from an analyst price target: analyst targets are point estimates from subjective valuation models. This is a probability distribution from measured market data plus a stated, deliberately conservative long-run anchor. It tells you the range and the likelihood, not a number to bet on.

INFY price target & forecast - probability table

HorizonPessimistic (P10)Median (P50)Optimistic (P90)P(↑ from today)P(2× return)
1 year (2027)₹882₹1,256₹1,78859.7%1.2%
3 years (2029)₹775₹1,434₹2,65565.7%14.7%
5 years (2031)₹740₹1,637₹3,62470.0%28.5%

Generated 9/8/2026, 6:02:59 pm. Refreshed every 6 hours from 9.8y of NSE history.

INFY price target & forecast - FAQs

What is the INFOSYS LIMITED (INFY) price target / share price forecast for 2031?

Based on a 10,000-trial Monte Carlo simulation using historical volatility, INFY's 5-year median (P50) forecast is ₹1,637. The 80% confidence band is ₹740-₹3,624. The probability of the price being above today's ₹1,175 in 5 years is 70.0%.

How is Monte Carlo different from analyst price targets?

Analyst targets are point estimates based on subjective valuation models. Monte Carlo simulations produce a probability distribution from actual historical volatility - showing the full range of where the price could realistically land, weighted by likelihood. No opinions, just statistics.

Can INFY double in 5 years?

The probability of INFY reaching 2× the current price (₹2,350) within 5 years is 28.5%, based on this simulation.

Is this prediction accurate?

No simulation can predict the future - but Monte Carlo gives you a calibrated range of outcomes weighted by historical probability. It accounts for volatility better than any single price target. Use it as a decision-support tool, not a guarantee.

How often is this forecast updated?

Every 6 hours, based on the latest NSE close prices and 9.8 years of historical data.

For information and education only. These figures are a statistical Monte Carlo forecast (a probability distribution from INFY's own historical volatility), shown with the method above. They are not a price-target "call", a prediction, or advice. Downstox is not a SEBI-registered Research Analyst or Investment Adviser, and nothing here is a recommendation to buy or sell INFY. Markets carry risk; consult a SEBI-registered adviser before investing.

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