Q.Explain with examples how ‘modern agricultural technology’ has brought a significant increase in agricultural output in India.
You're viewing a preview — the full solution, concept, methods & PYQ mapping are locked.
Start your 14-day free trial to unlock the full solution →Modern agricultural technology in India has dramatically boosted output through high-yielding seeds, chemical fertilisers, pesticides, and mechanisation, but its benefits have been unevenly distributed, favouring large farmers and certain regions.
The story of modern agricultural technology in India is really the story of the Green Revolution, which began in the mid-1960s. Before that, Indian farming was largely traditional, dependent on monsoons and local seeds that gave modest yields. The country faced chronic food shortages and had to rely on imports, especially from the United States under the PL-480 agreement. The turning point came when the government, with help from international agricultural research centres, introduced high-yielding variety (HYV) seeds, primarily for wheat and rice. These seeds were the first big technological leap.
HYV seeds were not magic on their own. They needed a whole package of complementary inputs to deliver their potential. The most critical was chemical fertilisers — nitrogen, phosphorus, and potassium — which the new seeds could convert into grain much more efficiently than traditional varieties. Alongside fertilisers came chemical pesticides and weedicides to protect the crops from pests and diseases that became more aggressive in the dense, well-fed fields. The result was a dramatic jump in yield per hectare. For example, wheat yields that had stagnated at around 800–900 kg per hectare in the early 1960s rose to over 2,500 kg per hectare by the early 2000s. Rice yields followed a similar, though slightly less dramatic, trajectory.
The term 'modern agricultural technology' is often used interchangeably with the Green Revolution package, but it also includes later developments like drip irrigation, genetically modified seeds, and precision farming — though these have had a more limited reach.
Mechanisation was the second pillar of this transformation. The traditional wooden plough pulled by bullocks could only scratch the surface of the soil. The iron plough, and later the tractor, allowed for deeper ploughing, better soil aeration, and faster preparation of land. This meant farmers could plant more area in a shorter window, crucial for multiple cropping — growing two or three crops in a year on the same land. Tractors, power tillers, and combine harvesters reduced the time between harvesting one crop and sowing the next, enabling the intensive use of land that is now common in states like Punjab, Haryana, and western Uttar Pradesh. The thresher replaced manual beating of grain from stalks, and the harvester-combine did the work of dozens of labourers in a single pass.
Irrigation technology was the third critical component. The HYV seeds were highly responsive to water but also very sensitive to drought — they could not survive the long dry spells that traditional varieties sometimes endured. So the spread of tubewells, canals, and electric/diesel pumps allowed farmers to control water supply. This was transformative in two ways. First, it freed agriculture from the uncertainty of the monsoon. Second, it made possible the cultivation of high-value, water-intensive crops like sugarcane and paddy in areas that were not naturally suited to them. The area under irrigation in India more than doubled between 1960 and 2000, and this was a direct driver of increased output.
The increase in agricultural output from modern technology was not just about higher yields per hectare. It also came from bringing more land under cultivation during the dry season (through irrigation) and from shifting to more productive crop varieties.
Let us take a concrete example. In the early 1960s, a farmer in Punjab growing traditional wheat varieties would get about 1,000 kg per hectare. By the 1970s, using HYV seeds like Kalyan Sona or Sonalika, along with 100–120 kg of nitrogen fertiliser per hectare and assured irrigation from a tubewell, the same farmer could get 3,000–4,000 kg per hectare. That is a three-to-four-fold increase in output from the same piece of land. Multiply that across millions of hectares, and you see how India went from a food-importing nation to a food-surplus one by the late 1970s. The buffer stocks of wheat and rice that the government now holds — often exceeding 60 million tonnes — are a direct consequence of this technological shift. …
Unlock everything free for 14 days
- Full step-by-step solutions
- Concept-first explanations
- Methods, shortcuts & mistakes
- PYQ mapping + timed mock tests
Full access for 14 days. No credit card required.