Syllabus: GS3/ Agriculture
Context
- The NSO’s ‘Annual Report on Improvement of Crop Statistics (ICS) Scheme, 2023-24’ has flagged serious procedural lapses in Crop Cutting Experiments (CCEs), the backbone of India’s crop production estimates.
How Production Estimates Are Derived?
- Final production = Area under crop × Average yield per hectare.
- Yield is estimated solely through CCEs, where crop from a scientifically selected plot is harvested, threshed and weighed to derive yield per hectare, which is then scaled up to district, state and national levels.
- CCEs are conducted by State Agricultural Statistics Authorities (SASAs), with technical guidance from MoSPI’s Field Operations Division.
- Coverage has expanded from 1.73 lakh CCEs (1973-74) to over 11.62 lakh (2023-24), yet Nagaland and Sikkim still do not conduct Crop Estimation Surveys.
Crop Cutting Experiments
- The Improvement of Crop Statistics (ICS) scheme was launched in 1973-74.
- Crop yield assessments and the monitoring of CCEs were conducted across 19 states and Union Territories (UTs) maintaining land records.
- Conducting CCEs and compiling the data is the responsibility of the State Agricultural Statistics Authorities (SASAs), while the Field Operations Division under MoSPI provides technical guidance to the states.
- Based on this data, the NSO prepares estimates for the average yield, the statistical error (Percentage Standard Error), and the yield per hectare for 33 major crops.
- These ‘Quick Estimates’ are used to verify the data submitted by the states.
Key Findings of the Report
- Procedural Non Compliance: Only 72% of CCEs in 2023-24 were conducted in accordance with the prescribed scientific procedure, whereas 28% exhibited procedural lapses, violations of rules, or other errors.
- This means that approximately one in four CCEs was not conducted in accordance with the prescribed standards.
- Recording Errors: Serious errors were found in recording ancillary information in approximately 10% of the cases.
- Ancillary details regarding irrigation, seed variety, fertilisers, etc. play a crucial role in subsequent analysis.
- If this information is incorrect, both the analysis and comparison of production could be affected.
- Sample Replacement Violations: National average supervision rates ranged between 80 to 88% across seasons, meaning roughly one in five CCEs went unsupervised.
- Untrained Personnel: In Jharkhand, 41% of CCEs were conducted by untrained staff, and in Uttar Pradesh the figure was 40%.
Implications
- Policy Distortion: Inaccurate yield data can misguide MSP procurement targets, PDS buffer stock planning and export or import decisions, with cascading effects on farmer incomes and consumer prices.
- Crop Insurance: Several states link insurance claim settlements to CCE based yield estimates, errors can result in wrongful denial or excess payout of claims.
- International Credibility: Global agencies and trade partners reference India’s official production figures & inconsistencies can affect India’s standing in trade negotiations and food security assessments.
- Federal Coordination Gap: Wide variation in compliance across states points to uneven capacity and oversight within SASAs, reflecting a broader governance challenge in statistical federalism.
Way Forward
- Update GCES plans regularly and ensure timely field selection to curb forced village or plot replacement.
- Mandate 100% supervision of CCEs through administrative measures, with real time monitoring using technology such as geo tagging and mobile based reporting.
- Deploy only trained personnel for CCEs, backed by periodic refresher training and accountability mechanisms.
- Strengthen coordination between SASAs and farmers to reduce non availability of experimental crops at the time of survey.
- Consider integrating remote sensing and satellite based yield estimation as a cross validation tool alongside ground level CCEs, as being piloted under initiatives like the Digital Agriculture Mission.
Source: DTE
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