Competitiveness, Profitability, Input Demand and Output Supply of Maize Production in Bangladesh
Abstract
:1. Introduction
2. Methodology
2.1. Analysis of Competitiveness of Maize
2.2. Ratio Indicators of Competitiveness
- (a)
- Nominal Protection Coefficient on Output (NPCO): This ratio shows the extent to which domestic prices for output differ from international reference prices. NPCO > 1 means that domestic farm gate price is greater than the world price of output and is uncompetitive (Reddy and Bantilan, 2012). On the contrary, if NPCO < 1, the production system is competitive. NPCO is expressed as:NPCO = (Pid × Qi)/(Pib × Qi)
- (b)
- Nominal Protection Coefficient on Input (NPCI): This ratio shows how much domestic prices for tradable inputs differ from their social prices. If NPCI >1, the domestic input cost is greater than the comparable world prices and the system is taxed by policy. If NPCI < 1, the system is subsidized by policy. NPCI is defined as follows:NPCI = (Pjd × Qj)/(Pjb × Qj)
- (c)
- Effective Protection Coefficient (EPC): EPC is the ratio of value added in private prices (A–B) to value added in social prices (E–F). An EPC > 1 suggests that government policy protects the producers, while EPC < 1 indicates that producers are unprotected through policy interventions. EPC is expressed as:EPC = {(Pid × Qi) − (Pjd × Qj)}/{(Pib × Qi) − ( Pjb × Qj)}
- (d)
- Domestic Resource Cost (DRC): The DRC was brought into common use by Bruno (1972) [20] specifically for the purpose of measuring comparative advantage. According to Bruno (1972) [20] and Krueger (1966, 1972) [21,22], the economic efficiency in domestic resource use of a commodity system can be assessed by using this ratio. Since minimizing DRC is equivalent to maximizing social profit, if DRC < 1, then the system uses domestic resources efficiently and thus has a comparative advantage. If DRC > 1, then the system shows inefficiency in domestic resource use and has a comparative disadvantage. The method of calculating DRC ratio in the PAM framework is given as:DRC = (G)/(E-F) = (Pns × Qn)/{( Pib × Qi) – (Pjb × Qj)}
2.3. Profitability Analysis of Maize
2.4. The Profit Function Approach
- π′
- = restricted profit (total revenue less total cost of variable inputs) normalized by price of output (Py),
- P′j
- = price of the jth input (Pj) normalized by the output price (Py),
- j
- = 1, fertilizer price,
- = 2, labor wage,
- = 3, animal power price,
- = 4, seed price,
- Zl
- = quantity of fixed input, l,
- l
- = 1, area under specific crops,
- = 2, experience,
- = 3, irrigation cost,
- = 4, education,
- = 5, land fragmentation,
- v
- = random error,
- ln
- = natural logarithm, and α0, αj, γjk, βl, δjl, and θlt, are the parameters to be estimated.
2.5. Variable Input Demand and Output Supply Elasticities
2.6. Data and the Study Area
3. Results and Discussion
3.1. Competitiveness of Maize
3.2. Sensitivity Analysis
3.3. Financial Profitability of Maize
3.4. Output Supply, Input Demand and Fixed Factor Elasticities of Maize Production
4. Conclusions and Policy Implications
Acknowledgments
Author Contributions
Conflicts of Interest
References
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Items | Revenue | Costs | Profit | |
---|---|---|---|---|
Tradable Inputs | Domestic Factors | |||
Private prices | A | B | C | D |
Social prices | E | F | G | H |
Divergences | I | J | K | L |
Items | Values |
---|---|
Revenue at social prices (BDT) | 22,529.90 |
Tradable inputs at social prices (BDT) | 2827.96 |
Domestic factors at social prices (BDT) | 10,721.99 |
Profits at social prices (BDT) | 8979.96 |
Nominal Protection Coefficient on Output (NPCO) | 0.71 |
Nominal Protection Coefficient on Input (NPCI) | 0.51 |
Effective Protection Coefficient (EPC) | 0.73 |
Domestic Resource Cost (DRC) | 0.54 |
Effect on Economic Returns (Tk/ha) | Effect on DRC | ||||
---|---|---|---|---|---|
Base Case | Changes in output price (Tk/ton) | Base case | Changes in output price | ||
−20% | 20% | −20% | 20% | ||
Net economic return (BDT/ha) | Changed economic return (BDT/ha) | Base DRC | Changed DRC | ||
55,924.20 | 32,732.98 | 79,115.41 | 0.54 | 0.67 | 0.46 |
Region and Farm Type | Yield (t/ha) | Sale Price (BDT/ton) | Gross Return (BDT/ha) | Variable Cost (BDT/ha) | Total Cost (BDT/ha) | Gross Margin (BDT/ha) | Net Return (BDT/ha) | Undiscounted BCR |
---|---|---|---|---|---|---|---|---|
All | 6.23 | 15,793.18 | 101,772.66 | 51,105.68 | 84,393.72 | 50,672.89 | 17,378.94 | 1.21 |
Marginal | 6.18 | 16,248.16 | 103,399.44 | 51,487.78 | 83,746.27 | 51,911.66 | 19,653.17 | 1.23 |
Small | 6.33 | 15,340.91 | 100,900.94 | 52,299.88 | 86,201.43 | 48,601.06 | 14,699.51 | 1.17 |
Medium & Large | 6.18 | 15,778.07 | 101,035.32 | 49,529.37 | 83,348.12 | 51,505.95 | 17,687.20 | 1.21 |
χ2 | 0.01 | 1.38 |
Variables | Parameters | Estimates | t-ratio |
---|---|---|---|
Profit function | |||
Constant | α0 | 2.3048 | 0.26 |
lnP’F | αF | 0.7553 | 0.79 |
lnP’W | αW | −0.5176 | −0.27 |
lnP’M | αM | −0.5454 | −0.95 |
lnP’P | αP | 0.4875 | 0.99 |
½lnP’F × lnP’F | γFF | −0.2841 *** | −3.12 |
½lnP’W × lnP’W | γWW | −0.6463 * | −1.70 |
½lnP’M × lnP’M | γMM | −0.1199 *** | −2.96 |
½lnP’P × lnP’P | γPP | −0.0650 ** | −2.29 |
lnP’F × lnP’W | γFW | −0.3088 ** | −2.05 |
lnP’F × lnP’M | γFM | 0.0579 | 1.25 |
lnP’F × lnP’P | γFP | −0.0467 | −1.00 |
lnP’W × lnP’M | γWM | −0.2542 *** | −2.60 |
lnP’W × lnP’P | γWP | −0.0872 | −1.10 |
lnP’M × lnP’P | γMP | 0.0026 | 0.10 |
lnP’F × lnZL | δFL | −0.0344 | −0.35 |
lnP’F × lnZG | δFG | −0.1150 | −0.55 |
lnP’F × lnZI | δFI | 0.0371 | 1.02 |
lnP’F × lnZS | δFS | −0.0042 | −0.11 |
lnP’F × lnZE | δFE | 0.2358 * | 1.88 |
lnP’W × lnZL | δWL | 0.1331 | 0.72 |
lnP’W × lnZG | δWG | 0.1715 | 0.44 |
lnP’W × lnZI | δWI | 0.1092 | 1.52 |
lnP’W × lnZS | δWS | −0.1040 | −1.48 |
lnP’W × lnZE | δWE | 0.0753 | 0.31 |
lnP’M × lnZL | δML | 0.0238 | 0.38 |
lnP’M × lnZG | δMG | 0.1925 | 1.52 |
lnP’M × lnZI | δMI | 0.0406 * | 1.64 |
lnP’M × lnZS | δMS | −0.0090 | −0.36 |
lnP’M × lnZE | δME | −0.0070 | −0.08 |
lnP’P × lnZL | δPL | −0.0113 | −0.23 |
lnP’P × lnZG | δPG | −0.0906 | −0.86 |
lnP’P × lnZI | δPI | 0.0130 | 0.70 |
lnP’P × lnZS | δPS | 0.0014 | 0.07 |
lnP’P × lnZE | δPE | 0.1101 * | 1.71 |
lnZL | βL | 3.6239 ** | 2.03 |
lnZG | βG | −0.1458 | −0.04 |
lnZI | βI | −1.3794 * | −1.79 |
lnZS | βS | 0.1652 | 0.26 |
lnZE | βE | −1.0948 | −0.47 |
½lnZL × lnZL | θLL | 0.3815 * | 1.70 |
½lnZG × lnZG | θGG | −0.1469 | −0.16 |
½lnZI × lnZI | θII | 0.0080 | 0.25 |
½lnZS × lnZS | θSS | −0.0575 | −0.57 |
½lnZE × lnZE | θEE | 0.8585 ** | 1.95 |
lnZL × lnZG | θLG | −0.6925 * | −1.79 |
lnZL × lnZI | θLI | −0.2256 ** | −2.46 |
lnZL × lnZS | θLS | −0.1515 * | −1.88 |
lnZL × lnZE | θLE | −0.1894 | −0.82 |
lnZG × lnZI | θGI | 0.4897 ** | 2.33 |
lnZG × lnZS | θGS | 0.0708 | 0.57 |
lnZG × lnZE | θGE | 0.0981 | 0.22 |
lnZI × lnZS | θIS | 0.0904 ** | 2.00 |
lnZI × lnZE | θIE | 0.1217 | 1.42 |
lnZS × lnZE | θSE | −0.0004 | 0.00 |
Fertilizer share equation | |||
Constant | αF | 0.7553 | 0.79 |
lnP’F | γFF | −0.2841 *** | −3.12 |
lnP’W | γFW | −0.3088 ** | −2.05 |
lnP’M | γFM | 0.0579 | 1.25 |
lnP’P | γFP | −0.0467 | −1.00 |
lnZL | δFL | −0.0344 | −0.35 |
lnZG | δFG | −0.1150 | −0.55 |
lnZI | δFI | 0.0371 | 1.02 |
lnZS | δFS | −0.0042 | −0.11 |
lnZE | δFE | 0.2358 * | 1.88 |
Labor share equation | |||
Constant | αW | −0.5176 | −0.27 |
lnP’F | γFW | −0.3088 ** | −2.05 |
lnP’W | γWW | −0.6463 * | −1.70 |
lnP’M | γWM | −0.2542 *** | −2.60 |
lnP’P | γWP | −0.0872 | −1.10 |
lnZL | δWL | 0.1331 | 0.72 |
lnZG | δWG | 0.1715 | 0.44 |
lnZI | δWI | 0.1092 | 1.52 |
lnZS | δWS | −0.1040 | −1.48 |
lnZE | δWE | 0.0753 | 0.31 |
Machine share equation | |||
Constant | αM | −0.5454 | −0.95 |
lnP’F | γFM | 0.0579 | 1.25 |
lnP’W | γWM | −0.2542 *** | −2.60 |
lnP’M | γMM | −0.1199 *** | −2.96 |
lnP’P | γMP | 0.0026 | 0.10 |
lnZL | δML | 0.0238 | 0.38 |
lnZG | δMG | 0.1925 | 1.52 |
lnZI | δMI | 0.0406 * | 1.64 |
lnZS | δMS | −0.0090 | −0.36 |
lnZE | δME | −0.0070 | −0.08 |
Seed share equation | |||
Constant | αP | 0.4875 | 0.99 |
lnP’F | γFP | −0.0467 | −1.00 |
lnP’W | γWP | −0.0872 | −1.10 |
lnP’M | γMP | 0.0026 | 0.10 |
lnP’P | γPP | −0.0650 ** | −2.29 |
lnZL | δPL | −0.0113 | −0.23 |
lnZG | δPG | −0.0906 | −0.86 |
lnZI | δPI | 0.0130 | 0.70 |
lnZS | δPS | 0.0014 | 0.07 |
lnZE | δPE | 0.1101 * | 1.71 |
R–squared | 0.74 | ||
F–stat | 16.82 *** | ||
Observations | 165 |
Parameters | Output Price | Fertilizer Price | Labor Wage | Machine Price | Seed Price | Land | Experience | Irrigation | Education | Land Fragmentation |
---|---|---|---|---|---|---|---|---|---|---|
Output supply | 0.4001 *** | −0.0295 | −0.0247 | 0.0273 | 0.0322 | 3.8790 ** | −0.0045 | −1.1680 | −0.3650 | 1.3514 |
(2.63) | (−1.13) | (−1.10) | (−0.34) | (−0.13) | (2.24) | (0.00) | (−1.45) | (−0.52) | (0.52) | |
Fertilizer demand | 0.1810 | −0.2958 *** | 0.4371 | −0.3403 | 0.0180 | 4.0596 ** | 0.4913 | −1.2011 | −0.0780 | −1.4819 |
(1.41) | (−2.64) | (−0.04) | (−2.10) | (−0.48) | (2.24) | (0.13) | (−1.50) | (−0.13) | (−0.61) | |
Labor demand | 7.1893 | −1.4913 | −4.1243 | −1.0926 | −0.4810 | 4.4387 ** | 0.7242 | −0.6539 | −0.4867 | −0.3443 |
(1.42) | (−0.06) | (−2.07) ** | (0.96) | (−0.58) | (2.07) | (−0.05) | (−1.50) | (0.10) | (−0.32) | |
Machine demand | −0.6491 | −0.8645 * | 1.6981 | −0.0096 | −0.1748 | 3.7124 * | −1.7255 | −1.4472 | −0.0087 | −0.5637 |
(0.99) | (−1.93) | (0.54) | (−2.43) ** | (−0.99) | (1.94) | (−0.27) | (−1.52) | (−0.06) | (−0.23) | |
Seed demand | −2.2636 | 0.2628 | 0.4149 | −0.1632 | −0.3357 *** | 4.0773 ** | 1.2120 | −1.2300 | −0.1103 | −2.0106 |
(0.22) | (−0.42) | (−0.49) | (−0.95) | (−4.26) | (2.19) | (0.20) | (−1.43) | (−0.16) | (−0.62) |
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Rahman, S.; Kazal, M.M.H.; Begum, I.A.; Alam, M.J. Competitiveness, Profitability, Input Demand and Output Supply of Maize Production in Bangladesh. Agriculture 2016, 6, 21. https://doi.org/10.3390/agriculture6020021
Rahman S, Kazal MMH, Begum IA, Alam MJ. Competitiveness, Profitability, Input Demand and Output Supply of Maize Production in Bangladesh. Agriculture. 2016; 6(2):21. https://doi.org/10.3390/agriculture6020021
Chicago/Turabian StyleRahman, Sanzidur, Mohammad Mizanul Haque Kazal, Ismat Ara Begum, and Mohammad Jahangir Alam. 2016. "Competitiveness, Profitability, Input Demand and Output Supply of Maize Production in Bangladesh" Agriculture 6, no. 2: 21. https://doi.org/10.3390/agriculture6020021
APA StyleRahman, S., Kazal, M. M. H., Begum, I. A., & Alam, M. J. (2016). Competitiveness, Profitability, Input Demand and Output Supply of Maize Production in Bangladesh. Agriculture, 6(2), 21. https://doi.org/10.3390/agriculture6020021