Every business that hires workers, buys machines, or rents land eventually asks the same question: how much extra output does the next unit of input actually deliver? A garment unit that already has 20 workers on one production line will notice something different from a farm that adds one more labourer to a fixed plot of land. This is where total product, average product, and marginal product come in. These three measures form the backbone of production theory and explain why firms eventually run into diminishing returns even when everything else about the business looks healthy.
Table of Contents
- What is total product?
- What is average product?
- What is marginal product?
- How total, average, and marginal product move together
- Why marginal product cuts average product at its peak
- The law of variable proportions and its three stages
- Why this matters in the real world
- Applying this to business and hiring decisions
- What do you think?
What is total product?
Total product (TP) is the total quantity of output a firm produces using a given combination of inputs, in a specific period of time. In the short run, one input (say capital or land) is held fixed while another input, typically labour, is varied. As more units of the variable input are added, total product changes, and tracking that change is the starting point for understanding productivity.
For example, a small furniture workshop with one fixed set of tools might produce more chairs as it hires more carpenters, at least up to a point. Total product simply captures that cumulative output at each level of labour employed.
What is average product?
Average product (AP) measures output per unit of the variable input. It is calculated as:
AP = Total Product รท Units of Variable Input
If a farm produces 60 quintals of wheat using 6 workers, the average product per worker is 10 quintals. Average product is a useful way to compare productivity across firms or time periods because it standardises output against the number of workers or machines used.
What is marginal product?
Marginal product (MP) is the additional output generated by employing one more unit of the variable input, while other inputs remain unchanged. It is calculated as:
MP = Change in Total Product รท Change in Units of Input
If hiring a sixth worker on a farm raises total output from 55 to 60 quintals, the marginal product of that sixth worker is 5 quintals. Marginal product tells a firm exactly what it gains, or loses, by adding one more unit of a resource, which makes it central to hiring and investment decisions.
How total, average, and marginal product move together
These three measures are not independent; they are mathematically linked, and their relationship follows a fairly predictable pattern once a firm keeps increasing a variable input against a fixed one. The table below illustrates this using a hypothetical example of workers employed on a fixed piece of land.
| Units of labour | Total product (TP) | Marginal product (MP) | Average product (AP) |
|---|---|---|---|
| 1 | 10 | 10 | 10.0 |
| 2 | 22 | 12 | 11.0 |
| 3 | 36 | 14 | 12.0 |
| 4 | 48 | 12 | 12.0 |
| 5 | 55 | 7 | 11.0 |
| 6 | 60 | 5 | 10.0 |
| 7 | 60 | 0 | 8.6 |
| 8 | 56 | -4 | 7.0 |
A few patterns stand out from this schedule. First, as long as marginal product is rising, total product rises at an increasing rate. Once marginal product starts falling but stays positive, total product keeps rising, but more slowly. When marginal product turns negative, total product itself starts falling. Second, average product rises as long as marginal product is above it, and falls once marginal product drops below it. This is simple arithmetic: adding a value higher than the current average pulls the average up, and adding a value lower than the average pulls it down.
Why marginal product cuts average product at its peak
Notice that at 4 units of labour, MP and AP are both equal to 12, which is also where average product peaks. This is not a coincidence. Mathematically, the marginal product curve always intersects the average product curve exactly at the average product’s maximum point. Beyond that level of input, marginal product falls faster than average product, dragging the average down with it. Economists often compare this to a batting average in cricket: if a player’s current innings score is higher than their career average, the average rises; if the new score is lower, the average falls. The same logic governs the relationship between marginal and average product in any production process.
The law of variable proportions and its three stages
This entire pattern is described by the law of variable proportions, also known as the law of diminishing marginal returns. It states that as more units of a variable input are added to a fixed input, the marginal product of that variable input eventually declines. The principle traces back to early observations in agriculture, where economists noticed that adding more labour or fertiliser to a fixed plot of land produced smaller and smaller increases in harvest, and it was later generalised to industry and services as well, as explained in this overview of diminishing marginal product.
Production typically passes through three recognisable stages:
- Stage 1 (increasing returns): Marginal product rises and stays above average product. Total product increases at an increasing rate. This happens because early units of the variable input allow better use of the fixed input, division of labour, and specialisation.
- Stage 2 (diminishing returns): Marginal product falls but remains positive, while average product also declines after reaching its peak. Total product still increases, but at a slower pace. Most rational firms choose to operate here, since output is still growing and resources are being used reasonably efficiently, as detailed by Economics Help’s explanation of diminishing returns.
- Stage 3 (negative returns): Marginal product turns negative, and total product actually falls. At this point, the variable input has become so crowded relative to the fixed input that additional units get in each other’s way rather than adding value, a pattern explored in tutor2u’s reference notes on diminishing returns.
Why this matters in the real world
This is not just a textbook curiosity. Indian agriculture offers one of the clearest real-world illustrations of diminishing marginal returns. As farmers increased fertiliser use to raise crop yields, output kept growing for a while, but each additional unit of fertiliser began producing smaller gains in yield relative to the nitrogen applied. Data tracked over recent decades shows that countries including India have moved further along a diminishing-return curve, needing increasing quantities of fertiliser to sustain the same rate of yield growth. This is precisely the marginal product concept at work: the fixed input is land, the variable input is fertiliser, and the marginal output per additional unit shrinks as usage rises.
The same logic applies well beyond farms. A call centre with a fixed number of desks and computers will eventually find that hiring more agents adds less value per person once desks run out. A restaurant kitchen with one set of stoves will see marginal product fall once too many cooks are working in the same limited space. Any firm bound by a fixed input, whether that is factory floor space, machinery, or office seating, will eventually face this same production pattern. Recognising which stage of production a business is in helps managers decide whether hiring one more worker will genuinely add value or simply raise costs without a matching rise in output.
Applying this to business and hiring decisions
Firms use these measures for very practical decisions. When marginal product is high, it usually makes sense to keep expanding the variable input, since each new unit contributes strongly to output. As marginal product declines toward the level of costs, particularly wages, adding further input stops being profitable, even if total output is still technically rising. This is also the underlying logic behind short-run cost curves: marginal cost, average cost, and average variable cost are essentially the flip side of marginal and average product, expressed in money terms rather than physical output. A firm operating deep into Stage 2, where marginal product is falling sharply, will typically see its marginal cost rising quickly, which is one reason why understanding the shape of these product curves matters just as much for cost management as for output planning.
It also explains why firms invest in additional fixed capital, like more machines, more land, or larger premises, once they consistently hit the limits of Stage 2. Expanding the fixed input effectively resets the curve, allowing the variable input to become productive again rather than continuing to add workers to an already stretched setup.
What do you think?
What do you think? If you were managing a small business with one fixed workspace, how would you use the idea of marginal product to decide when to stop hiring and instead invest in expanding that space? Can you think of an everyday example, outside agriculture or manufacturing, where adding more of one resource to a fixed setup eventually produces smaller and smaller gains?
References
- https://felixmunozgarcia.com/wp-content/uploads/2020/08/intermediate-micro-chapter7.pdf
- https://umbrex.com/resources/economics-concepts/microeconomic-theory/law-of-diminishing-returns-diminishing-marginal-product/
- https://www.economicshelp.org/microessays/costs/diminishing-returns/
- https://www.tutor2u.net/economics/reference/law-of-diminishing-returns-marginal-cost-and-average-variable-cost
- https://ourworldindata.org/reducing-fertilizer-use
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