Board paper

Micro Economics for Business 2024 Board Question Paper

ECO 203 · Micro Economics for Business

Programme
BBA
Academic year
Semester 1
Exam year
2024 AD
Sitting
regular
Full marks
100
Duration
180 minutes

Tribhuvan University

Faculty of Management

Office of the Dean

2024 AD / Regular Examination

Course: ECO 203 · Micro Economics for Business

Level: Bachelor of Business Administration (BBA) · Semester 1

Full Marks: 100

Time: 3 hrs.

Candidates are required to give their answers in their own words as far as practicable. The figures in the margin indicate full marks.

Section A

Brief Answer Questions

[10*2=20]
  1. Write any two fundamental economic principles.

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    Fundamental Economic Principles

    Two core economic principles (as articulated in Gregory Mankiw’s foundations of economics) are:

    1. People Face Trade-offs:

      • To acquire something desirable, individuals, firms, and societies must sacrifice another alternative (“There is no such thing as a free lunch”).
      • Example: A business must decide between spending its retained earnings on research and development (R&D) versus expanding its sales and marketing network. At the societal level, nations face the classic trade-off between “guns and butter” (national defense vs. consumer welfare) or efficiency versus equity.
    2. The Cost of Something is What You Give Up to Get It (Opportunity Cost):

      • The true economic cost of any decision encompasses both explicit financial outlays and the value of the next best foregone alternative.
      • Example: The opportunity cost of attending university includes tuition, books, and living expenses, plus the foregone full-time employment earnings during the years of study.
  2. Demand is a flow of concept. Why?

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    Why Demand is a Flow Concept

    1. Definition of a Flow Variable:

      • In economic analysis, a flow variable is a quantity that can only be measured meaningfully over a specified interval of time (e.g., per day, per week, per month, or per year), unlike a stock variable which is measured at a specific point in time (like total wealth or inventory on a given date).
    2. Application to Demand:

      • Demand expresses the quantity of a commodity that consumers are willing and able to purchase at various prices over a defined period of time.
      • Stating that “demand for smartphones is 10,000 units” is economically ambiguous without a time frame: 10,000 units per week indicates a thriving market, whereas 10,000 units per decade indicates commercial failure. Hence, time dimension is an indispensable component of demand.
  3. Differentiate between cardinal and ordinal utility.

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    Cardinal Utility vs. Ordinal Utility

    Dimension Cardinal Utility Analysis Ordinal Utility Analysis
    Pioneering Economists Alfred Marshall, Stanley Jevons, Léon Walras J.R. Hicks, R.G.D. Allen, Vilfredo Pareto
    Measurability Utility is quantitatively measurable in cardinal numbers (1,2,31, 2, 3\dots) using hypothetical units called “utils”. Utility cannot be quantified cardinally; it is qualitative and can only be ranked or ordered (1st,2nd,3rd1^{\text{st}}, 2^{\text{nd}}, 3^{\text{rd}}) based on consumer preference.
    Analytical Tools Law of Diminishing Marginal Utility; Law of Equi-Marginal Utility. Indifference Curves (ICIC) and Budget Lines.
    Marginal Utility of Money Assumed to remain strictly constant (MUm=constantMU_m = \text{constant}). Does not require the unrealistic assumption of constant marginal utility of money.
    Realism & Applicability Less realistic because subjective human satisfaction cannot be measured on an objective numerical scale. Highly realistic; reflects actual consumer behavior based on ordering choice bundles.
  4. Why does TU increase at a decreasing rate when MU decreases?

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    Why Total Utility (TU) Increases at a Decreasing Rate When Marginal Utility (MU) Decreases

    1. Mathematical Relationship:

      • Marginal utility is the first derivative of total utility with respect to quantity consumed:
        MU=d(TU)dQ=TUnTUn1MU = \frac{d(TU)}{dQ} = TU_n - TU_{n-1}
      • Thus, MUMU geometrically represents the slope of the Total Utility (TUTU) curve.
    2. Economic Explanation:

      • According to the Law of Diminishing Marginal Utility, as a consumer consumes successive units of a homogeneous commodity, the intensity of desire for additional units diminishes.
      • As long as MUMU is positive (MU>0MU > 0), each additional unit consumed continues to add to total satisfaction, causing TUTU to increase.
      • However, because each successive increment (MUMU) is smaller than the preceding one (d(MU)dQ<0\frac{d(MU)}{dQ} < 0), the additions to total utility become progressively smaller. Consequently, TUTU increases at a diminishing rate, rendering the TUTU curve strictly concave from below.
  5. Mention the features of monopoly market.

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    Features of a Monopoly Market

    1. Single Seller and Industry Identity:

      • A single producer or firm constitutes the entire industry (Firm=IndustryFirm = Industry). There is no distinction between firm demand and industry market demand.
    2. Absence of Close Substitutes:

      • The monopolist produces a unique product with no viable or close substitutes in the market, resulting in a cross-elasticity of demand close to zero (exy0e_{xy} \approx 0).
    3. Substantial Barriers to Entry:

      • New competitor entry is effectively blocked by legal barriers (patents, licenses, copyrights), ownership of vital natural resources, or substantial technical economies of scale (natural monopolies).
    4. Price Maker with Downward-Sloping Demand:

      • The monopolist exercises significant market power to set price or output (though not both simultaneously) and faces a downward-sloping demand curve (P=AR>MRP = AR > MR).
  6. Define economic profit and accounting profit.

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    Economic Profit vs. Accounting Profit

    1. Accounting Profit:

      • The surplus of Total Revenue (TRTR) over the explicit, out-of-pocket accounting costs incurred in business operations:
        Accounting Profit=TRExplicit Costs\text{Accounting Profit} = TR - \text{Explicit Costs}
      • Explicit Costs include direct contractual cash payments such as contractual wages, raw material bills, rent, and utility charges.
    2. Economic Profit:

      • The surplus of Total Revenue over total economic costs, which comprise both explicit costs and implicit (opportunity) costs:
        Economic Profit=TR(Explicit Costs+Implicit Costs)=Accounting ProfitImplicit Costs\text{Economic Profit} = TR - (\text{Explicit Costs} + \text{Implicit Costs}) = \text{Accounting Profit} - \text{Implicit Costs}
      • Implicit Costs represent the opportunity costs of employing self-owned, self-supplied productive assets (e.g., the owner’s foregone alternative salary, foregone interest on personal invested equity, or foregone rent on self-owned land).
      • When economic profit is zero (Economic Profit=0\text{Economic Profit} = 0), the firm earns a normal profit, perfectly covering all resource opportunity costs.
  7. Let, MRTS = 2, compute the ratio of marginal productivities of two inputs.

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    Ratio of Marginal Productivities When MRTS=2MRTS = 2

    1. Definition of MRTS:

      • The Marginal Rate of Technical Substitution of labor for capital (MRTSLKMRTS_{LK}) measures the rate at which capital can be substituted for labor while keeping total output constant along an isoquant:
        MRTSLK=ΔKΔL=MPLMPKMRTS_{LK} = -\frac{\Delta K}{\Delta L} = \frac{MP_L}{MP_K}
    2. Calculation:

      • Given that MRTSLK=2MRTS_{LK} = 2:
        MPLMPK=2    MPL:MPK=2:1\frac{MP_L}{MP_K} = 2 \quad \implies \quad MP_L : MP_K = 2 : 1
    3. Interpretation:

      • The marginal productivity of labor (MPLMP_L) is twice the marginal productivity of capital (MPKMP_K). One additional unit of labor can substitute for 2 units of capital while keeping output strictly unchanged.
  8. Suppose, price of goods X decreases from Rs 20 per unit to Rs 16 per unit and quantity demanded of X increases from 100 units to 120 units, find the price elasticity of demand.

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    Calculation of Price Elasticity of Demand

    1. Given Data

    • Initial Price (P1P_1) = Rs 20\text{Rs } 20
    • New Price (P2P_2) = Rs 16    ΔP=P2P1=1620=4\text{Rs } 16 \implies \Delta P = P_2 - P_1 = 16 - 20 = -4
    • Initial Quantity Demanded (Q1Q_1) = 100 units100\text{ units}
    • New Quantity Demanded (Q2Q_2) = 120 units    ΔQ=Q2Q1=120100=20120\text{ units} \implies \Delta Q = Q_2 - Q_1 = 120 - 100 = 20

    2. Point Elasticity / Proportionate Method

    Ep=(ΔQΔP×P1Q1)E_p = -\left(\frac{\Delta Q}{\Delta P} \times \frac{P_1}{Q_1}\right)
    Ep=(204×20100)=(5×0.20)=1.0E_p = -\left(\frac{20}{-4} \times \frac{20}{100}\right) = -(-5 \times 0.20) = \mathbf{1.0}

    3. Arc Elasticity (Midpoint Method)

    Eparc=(ΔQΔP×P1+P2Q1+Q2)=(204×20+16100+120)=5×362200.82E_p^{\text{arc}} = -\left(\frac{\Delta Q}{\Delta P} \times \frac{P_1 + P_2}{Q_1 + Q_2}\right) = -\left(\frac{20}{-4} \times \frac{20 + 16}{100 + 120}\right) = 5 \times \frac{36}{220} \approx \mathbf{0.82}
    • Conclusion: By standard percentage/point formula, the price elasticity of demand is Ep=1.0E_p = 1.0 (Unitary Elastic); by the arc formula, Ep0.82E_p \approx 0.82 (Inelastic).
  9. Find the equilibrium quantity of a firm having marginal revenue function MR = 1200 – 25Q and marginal cost function MC= 200 + 25Q.

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    Determination of Equilibrium Quantity

    1. Given Functions

    • Marginal Revenue: MR=120025QMR = 1200 - 25Q
    • Marginal Cost: MC=200+25QMC = 200 + 25Q

    2. Equilibrium Condition

    A profit-maximizing firm produces where Marginal Revenue equals Marginal Cost (MR=MCMR = MC):

    120025Q=200+25Q1200 - 25Q = 200 + 25Q
    1200200=25Q+25Q1200 - 200 = 25Q + 25Q
    1000=50Q1000 = 50Q
    Q=100050=20 unitsQ^* = \frac{1000}{50} = \mathbf{20 \text{ units}}


    3. Second-Order Condition (SOC) Check

    d(MR)dQ=25,d(MC)dQ=25\frac{d(MR)}{dQ} = -25, \quad \frac{d(MC)}{dQ} = 25
    d(MR)dQ<d(MC)dQ    25<25(Condition Satisfied)\frac{d(MR)}{dQ} < \frac{d(MC)}{dQ} \implies -25 < 25 \quad \text{(Condition Satisfied)}
    • Result: The equilibrium quantity is Q=20Q^* = 20 units.
  10. If the production function is Q = 50L³K² and 10 units of capital and 2 units of labour, find the output of a firm.

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    Calculation of Total Output from Production Function

    1. Given Parameters

    • Production Function: Q=50L3K2Q = 50 L^3 K^2
    • Capital input (KK) = 10 units10 \text{ units}
    • Labor input (LL) = 2 units2 \text{ units}

    2. Output Calculation

    Substitute the given values of LL and KK into the production function:

    Q=50×(2)3×(10)2Q = 50 \times (2)^3 \times (10)^2
    Q=50×8×100Q = 50 \times 8 \times 100
    Q=400×100=40,000 unitsQ = 400 \times 100 = \mathbf{40,000 \text{ units}}

    • Result: The total output of the firm is 40,00040,000 units.

Section B

Short Answer Questions : ( Attempt any SIX Questions )

[6*5=30]
  1. Describe the scope of business economics.

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    Scope of Business Economics

    Business Economics (or Managerial Economics) applies microeconomic theory, concepts, and quantitative optimization methods to business administration and strategic decision-making. Its major functional scope comprises:


    1. Demand Analysis and Forecasting

    • Consumer Choice Modeling: Examining price, income, and cross elasticities to guide pricing policies and product line differentiation.
    • Sales Forecasting: Projecting future market demand through trend projection, econometric models, and consumer surveys to guide raw material purchasing and production schedules.

    2. Production and Cost Analysis

    • Production Optimization: Identifying the least-cost combination of inputs (MRTSLK=w/rMRTS_{LK} = w/r) and assessing economies and diseconomies of scale.
    • Cost Function Analysis: Deriving short-run and long-run cost curves, distinguishing fixed, variable, marginal, and opportunity costs, and conducting break-even analysis (BEPBEP).

    3. Pricing Decisions, Policies, and Practices

    • Market Structure Pricing: Formulating optimal pricing rules under perfect competition, monopoly, monopolistic competition, and oligopolistic rivalry.
    • Managerial Pricing Tactics: Implementing cost-plus (mark-up) pricing, multi-tier price discrimination, two-part tariffs, penetration pricing for new market entrants, and price skimming for innovative products.

    4. Profit Management and Strategic Planning

    • Profit Planning: Managing operational uncertainty and establishing benchmark targets for return on investment (ROI).
    • Game-Theoretic Strategy: Applying Nash equilibrium and dominant strategies to anticipate rival reactions in concentrated oligopolistic markets.

    5. Capital Budgeting and Investment Appraisal

    • Capital Allocation: Appraising major long-term capital investments using Net Present Value (NPV), Internal Rate of Return (IRR), and Payback Period.
    • Cost of Capital: Evaluating debt vs. equity financing to minimize the firm’s Weighted Average Cost of Capital (WACC).
  2. How are the price and the output determined under monopolistic competition in long run? Explain.

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    Long-Run Price and Output Determination Under Monopolistic Competition


    1. Market Dynamics and Entry Adjustment

    • Elimination of Supernormal Profits: In the short run, if existing firms make economic profits, new firms enter with differentiated brand substitutes.
    • Shift in Firm Demand: Entry fragments industry demand, shifting each incumbent firm’s downward-sloping demand curve (ARAR) leftward and making it more price-elastic until economic profits are completely competed away.

    2. Dual Equilibrium Conditions

    In the long run, the firm attains equilibrium when two conditions hold simultaneously:

    1. MR=LMCMR = LMC: Marginal Revenue equals Long-Run Marginal Cost (Profit-maximizing output rule).
    2. P(AR)=LACP (AR) = LAC: Average Revenue is strictly tangent to the Long-Run Average Cost curve at the equilibrium output level QQ^*.

    At this tangency, Total Revenue equals Total Cost (TR=TCTR = TC), meaning firms earn only normal profits.


    3. Economic Characteristics of Equilibrium

    • Allocative Inefficiency (P>MCP > MC): Because the firm sells a differentiated product, its demand curve slopes downward; hence, Price (ARAR) exceeds Marginal Cost (MCMC).
    • Excess Capacity: Tangency occurs along the falling phase of the U-shaped LACLAC curve, strictly to the left of the Minimum Efficient Scale (MESMES). The firm operates below its lowest-cost capacity, representing the cost of brand variety.
  3. What is isoquant? Explain its properties.

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    Concept and Properties of Isoquants


    1. Definition of an Isoquant

    An isoquant (or equal-product curve) is a graphical locus showing all technically efficient combinations of two variable inputs (typically Labor LL and Capital KK) capable of producing a given, constant level of total physical output:

    Q0=f(L,K)Q_0 = f(L, K)


    2. Core Properties of Isoquants

    1. Downward Sloping from Left to Right (Negative Slope):

      • Since both factor inputs have positive marginal productivities (MPL>0,MPK>0MP_L > 0, MP_K > 0), a firm cannot reduce one input without increasing the other to maintain constant output:
        Slope of Isoquant=dKdL=MPLMPK=MRTSLK>0\text{Slope of Isoquant} = -\frac{dK}{dL} = \frac{MP_L}{MP_K} = MRTS_{LK} > 0
    2. Convex to the Origin:

      • An isoquant is convex to the origin due to the Principle of Diminishing Marginal Rate of Technical Substitution (MRTSLKMRTS_{LK}).
      • As the firm substitutes more labor for capital, the marginal productivity of labor (MPLMP_L) diminishes while the marginal productivity of capital (MPKMP_K) rises; hence, progressively fewer units of capital can be released per additional unit of labor.
    3. Two Isoquants Can Never Intersect:

      • If two isoquants were to intersect, the single point of intersection would imply that the exact same factor combination produces two different maximum output levels simultaneously, which violates the technical definition of a production function.
    4. Higher Isoquants Represent Higher Levels of Output:

      • Under the assumption of input monotonicity, an isoquant lying further northeast contains more of at least one input without having less of the other, thereby generating a strictly higher volume of output.
    5. Isoquants Do Not Touch Either Axis:

      • In continuous production analysis, both labor and capital are indispensable inputs. If an isoquant touched an axis, it would imply that output could be produced with zero capital or zero labor, which contradicts standard production realities.
  4. Describe the relationship between average cost and marginal cost.

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    Relationship Between Average Cost (AC) and Marginal Cost (MC)


    1. Theoretical Definitions

    • Average Cost (ACAC): The total cost per unit of output produced:
      AC=TCQAC = \frac{TC}{Q}
    • Marginal Cost (MCMC): The addition to total cost resulting from producing one additional unit of output:
      MC=d(TC)dQMC = \frac{d(TC)}{dQ}

    2. Mathematical Relationship

    Differentiating average cost with respect to output (QQ):

    d(AC)dQ=ddQ(TCQ)=Qd(TC)dQTC1Q2=QMCTCQ2\frac{d(AC)}{dQ} = \frac{d}{dQ}\left(\frac{TC}{Q}\right) = \frac{Q \cdot \frac{d(TC)}{dQ} - TC \cdot 1}{Q^2} = \frac{Q \cdot MC - TC}{Q^2}
    d(AC)dQ=MCTCQQ=MCACQ\frac{d(AC)}{dQ} = \frac{MC - \frac{TC}{Q}}{Q} = \frac{MC - AC}{Q}


    3. Core Geometric and Economic Principles

    1. When MC<ACMC < AC, ACAC is Falling:

      • If the cost of an additional unit is lower than the prevailing average cost, d(AC)dQ<0\frac{d(AC)}{dQ} < 0. The average is pulled downward.
    2. When MC=ACMC = AC, ACAC is at Its Minimum Point:

      • When marginal cost equals average cost, d(AC)dQ=0\frac{d(AC)}{dQ} = 0. This identifies the lowest point of the U-shaped ACAC curve (the firm’s optimum plant capacity).
    3. When MC>ACMC > AC, ACAC is Rising:

      • If the cost of producing an extra unit exceeds the existing average cost, d(AC)dQ>0\frac{d(AC)}{dQ} > 0. The average cost curve slopes upward.
    4. Point of Intersection:

      • The MCMC curve intersects the ACAC curve strictly from below at its minimum point.
    5. Minimum Point Progression:

      • Because MCMC reflects only variable costs while ACAC includes both variable and falling fixed costs (AFCAFC), the MCMC curve reaches its minimum earlier (at a lower output level) than the ACAC curve.
  5. The demand function of a monopoly firm is P = 200 – 2Q and the cost function is C = Q² + 40Q + 2. Find profit maximizing output and maximum profit.

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    Profit Maximization for a Monopoly Firm

    1. Given Data

    • Inverse Demand Function: P=2002QP = 200 - 2Q
    • Total Cost Function: C=Q2+40Q+2C = Q^2 + 40Q + 2

    2. Revenue and Cost Derivations

    • Total Revenue (TRTR):

      TR=P×Q=(2002Q)Q=200Q2Q2TR = P \times Q = (200 - 2Q)Q = 200Q - 2Q^2

    • Marginal Revenue (MRMR):

      MR=d(TR)dQ=2004QMR = \frac{d(TR)}{dQ} = 200 - 4Q

    • Marginal Cost (MCMC):

      MC=d(C)dQ=2Q+40MC = \frac{d(C)}{dQ} = 2Q + 40


    3. Profit Maximizing Equilibrium Conditions

    1. First-Order Condition (FOC): MR=MCMR = MC2004Q=2Q+40200 - 4Q = 2Q + 40$

      20040=2Q+4Q200 - 40 = 2Q + 4Q
      160=6Q160 = 6Q
      Q=1606=80326.67 unitsQ^* = \frac{160}{6} = \frac{80}{3} \approx \mathbf{26.67 \text{ units}}

    2. Second-Order Condition (SOC):

      d(MR)dQ=4,d(MC)dQ=2\frac{d(MR)}{dQ} = -4, \quad \frac{d(MC)}{dQ} = 2
      d(MR)dQ<d(MC)dQ    4<2(Condition Satisfied)\frac{d(MR)}{dQ} < \frac{d(MC)}{dQ} \implies -4 < 2 \quad \text{(Condition Satisfied)}


    4. Profit-Maximizing Price (PP^*)

    Substitute Q=803Q^* = \frac{80}{3} into the demand function:

    P=2002(803)=2001603=6001603=4403Rs 146.67P^* = 200 - 2\left(\frac{80}{3}\right) = 200 - \frac{160}{3} = \frac{600 - 160}{3} = \frac{440}{3} \approx \mathbf{Rs\ 146.67}


    5. Maximum Total Profit (π\pi^*)

    • Total Revenue (TRTR):

      TR=P×Q=4403×803=352009Rs 3,911.11TR = P \times Q = \frac{440}{3} \times \frac{80}{3} = \frac{35200}{9} \approx \text{Rs } 3,911.11

    • Total Cost (TCTC):

      TC=(803)2+40(803)+2=64009+32003+2TC = \left(\frac{80}{3}\right)^2 + 40\left(\frac{80}{3}\right) + 2 = \frac{6400}{9} + \frac{3200}{3} + 2
      TC=6400+9600+189=160189Rs 1,779.78TC = \frac{6400 + 9600 + 18}{9} = \frac{16018}{9} \approx \text{Rs } 1,779.78

    • Total Profit (π\pi):

      π=TRTC=352009160189=191829=Rs 2,131.33\pi^* = TR - TC = \frac{35200}{9} - \frac{16018}{9} = \frac{19182}{9} = \mathbf{Rs\ 2,131.33}

    Summary of Results

    • Profit-maximizing output (QQ^*): 26.67 units26.67\text{ units} (or 803\frac{80}{3})
    • Profit-maximizing price (PP^*): Rs 146.67\text{Rs } 146.67 (or Rs 4403\text{Rs } \frac{440}{3})
    • Maximum total profit (π\pi^*): Rs 2,131.33\mathbf{Rs\ 2,131.33}
  6. Explain the dominant strategy in game theory.

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    Dominant Strategy in Game Theory


    1. Concept and Definition

    In game theory, a dominant strategy is an action or decision rule that yields the strictly highest payoff for a player, regardless of the strategies chosen by rival competitors.

    • Strictly Dominant Strategy: Strategy sis_i^* strictly dominates all other strategies if:
      ui(si,si)>ui(si,si)sisi,siu_i(s_i^*, s_{-i}) > u_i(s_i, s_{-i}) \quad \forall s_i \neq s_i^*, \forall s_{-i}
    • Dominant Strategy Equilibrium: An outcome where every participating player chooses their respective dominant strategy.

    2. Illustration with a Payoff Matrix

    Consider two competing duopolists (Firm A and Firm B) deciding whether to launch an aggressive advertising campaign:

    Firm A \ Firm B Advertise (B) Do Not Advertise (B)
    Advertise (A) (10,10)(10, 10) (20,2)(20, 2)
    Do Not Advertise (A) (2,20)(2, 20) (15,15)(15, 15)

    (Payoffs represent profit in millions of rupees: (A,B)(A, B))

    • Analysis for Firm A:

      • If Firm B advertises, Firm A earns 1010 by advertising vs. 22 by not advertising     \implies Advertise.
      • If Firm B does not advertise, Firm A earns 2020 by advertising vs. 1515 by not advertising     \implies Advertise.
      • Thus, Advertising is Firm A’s strictly dominant strategy.
    • Analysis for Firm B:

      • Symmetrically, Firm B earns more by advertising regardless of Firm A’s action.
      • Thus, Advertising is Firm B’s strictly dominant strategy.
    • Dominant Strategy Equilibrium: Both firms choose to Advertise, earning (10,10)(10, 10), even though mutual cooperation (15,15)(15, 15) would yield higher profits.


    3. Comparison with Nash Equilibrium

    • Every dominant strategy equilibrium is necessarily a Nash equilibrium.
    • However, a Nash equilibrium does not require players to possess dominant strategies; in many games, a player’s best choice is conditional upon the rival’s specific move.
  7. Explain the causes of shift in supply curve of labour.

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    Causes of Shift in the Supply Curve of Labour

    A change in the wage rate causes a movement along the labor supply curve. A shift in the labor supply curve occurs when non-wage economic, demographic, or institutional factors alter the number of workers willing to work at any given wage rate:


    1. Demographic Changes and Population Size

    • Rapid population growth or expanding working-age cohorts shift the labor supply curve rightward.
    • Conversely, population aging or declining birth rates shift the curve leftward.

    2. International Migration (Emigration and Immigration)

    • In economies like Nepal, massive temporary and permanent foreign labor migration (outflows to the Gulf, Malaysia, and OECD nations) significantly depletes the domestic workforce, shifting the domestic labor supply curve leftward.

    3. Changes in Labor Force Participation Rates

    • Increased societal acceptance of women entering the formal workforce and rising female literacy expand overall participation, shifting aggregate labor supply rightward.

    4. Alternative Occupational Earnings and Relative Wages

    • If wage rates or working conditions improve significantly in an alternative, competing occupation, workers reallocate their labor, causing the supply of labor in the original sector to shift leftward.

    5. Non-Wage Income and Remittance Inflows

    • When households receive substantial non-labor income (such as foreign remittances, pensions, or capital gains), their reservation wage rises, increasing preference for leisure and shifting the labor supply curve leftward.

    6. Education, Training, and Institutional Licensing

    • Mandatory licensing, lengthy apprenticeships, or stringent certification standards restrict entry into specialized professions (e.g., medicine, chartered accountancy, civil aviation), shifting professional labor supply leftward.

Section C

Long Answer Questions : ( Attempt any Three Questions )

[3*10=30]
  1. Define indifference curve. How does a consumer get equilibrium in indifference curve approach?

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    Indifference Curve Analysis and Consumer Equilibrium


    1. Definition and Concept of Indifference Curve

    An indifference curve (IC) is a graphical curve showing all combinations of two consumer goods (XX and YY) that provide the consumer with the exact same level of total utility or satisfaction:

    U=f(X,Y)=U0U = f(X, Y) = U_0
    Because utility remains constant along an indifference curve, the consumer is completely indifferent among any of the commodity bundles lying on that curve.


    2. The Budget Constraint (Price Line)

    The consumer’s purchasing power is constrained by money income (MM) and unit prices of the two goods (PxP_x and PyP_y):

    PxX+PyY=MP_x X + P_y Y = M
    The slope of the budget line is the objective market price ratio:
    Slope of Budget Line=PxPy\text{Slope of Budget Line} = -\frac{P_x}{P_y}


    3. Conditions for Consumer Equilibrium

    To maximize total utility subject to the budget constraint, two conditions must be satisfied simultaneously:

    Condition 1: Tangency Condition (Necessary First-Order Condition)

    The budget line must be strictly tangent to the highest attainable indifference curve. At this tangency point:

    Slope of Indifference Curve=Slope of Budget Line\text{Slope of Indifference Curve} = \text{Slope of Budget Line}
    MRSxy=PxPy    MUxMUy=PxPy    MUxPx=MUyPyMRS_{xy} = \frac{P_x}{P_y} \quad \implies \quad \frac{MU_x}{MU_y} = \frac{P_x}{P_y} \quad \implies \quad \frac{MU_x}{P_x} = \frac{MU_y}{P_y}

    • MRSxyMRS_{xy} (Marginal Rate of Substitution): The subjective valuation of good XX in terms of good YY.
    • PxPy\frac{P_x}{P_y} (Price Ratio): The objective market exchange rate between good XX and good YY.

    Condition 2: Convexity Condition (Sufficient Second-Order Condition)

    At the tangency point, the indifference curve must be strictly convex to the origin. This guarantees that the Marginal Rate of Substitution is diminishing (d(MRSxy)dX<0\frac{d(MRS_{xy})}{dX} < 0). If the IC were concave, the tangency point would represent minimum satisfaction rather than a maximum.


    4. Disequilibrium and Adjustment Mechanism

    1. When MRSxy>PxPyMRS_{xy} > \frac{P_x}{P_y}:

      • The consumer values an additional unit of XX more than the market requires them to give up in terms of YY.
      • The consumer reallocates expenditure to buy more XX and less YY.
      • As consumption of XX increases, MUxMU_x falls and MUyMU_y rises, driving MRSxyMRS_{xy} down until MRSxy=PxPyMRS_{xy} = \frac{P_x}{P_y}.
    2. When MRSxy<PxPyMRS_{xy} < \frac{P_x}{P_y}:

      • The market cost of XX exceeds the consumer’s subjective valuation.
      • The consumer reduces consumption of XX and increases YY, increasing MRSxyMRS_{xy} back to equality with the price ratio.
    • Conclusion: Consumer equilibrium is uniquely established where the budget line is tangent to the highest attainable convex indifference curve.
  2. What is microeconomics. Explain its uses in business operations.

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    Microeconomics and Its Applications in Business Operations


    1. Definition of Microeconomics

    Microeconomics is the branch of economics that examines the behavioral choices and decision-making processes of individual economic units—such as individual consumers, households, business firms, and single industries—and how their interactions determine relative prices and the optimal allocation of scarce resources.


    2. Major Uses of Microeconomics in Business Operations

    a) Demand Analysis and Sales Forecasting

    • Microeconomic concepts such as price elasticity, income elasticity, and cross-price elasticity enable managers to predict how sales volume will respond to price adjustments, competitors’ price changes, and changes in consumer income.
    • It helps firms segment their markets and price products according to demand responsiveness.

    b) Production Planning and Cost Minimization

    • Production theory (the Law of Variable Proportions and Isoquant-Isocost optimization) guides managers in choosing the least-cost combination of labor and capital (MRTSLK=w/rMRTS_{LK} = w/r).
    • It helps identify optimal plant scale, operational bottlenecks, and diminishing returns to scale.

    c) Cost Analysis and Operational Shutdown Decisions

    • Microeconomic distinction between fixed costs, variable costs, and sunk costs governs key short-run operational decisions.
    • In the short run, a firm will continue operating as long as price covers average variable cost (PAVCP \ge AVC), but will shut down immediately if P<AVCP < AVC.

    d) Market Structure Analysis and Pricing Strategies

    • Understanding whether a firm operates under perfect competition, monopolistic competition, oligopoly, or monopoly determines its market power.
    • Managers employ microeconomic pricing models such as price discrimination, peak-load pricing, two-part tariffs, and cost-plus markups to capture consumer surplus.

    e) Strategic Competition and Game Theory

    • In oligopolistic markets, firms use game theory (e.g., Prisoner’s Dilemma, Nash Equilibrium, dominant strategies) to anticipate rival responses regarding advertising campaigns, pricing wars, and capacity expansion.

    f) Factor Hiring and Compensation Decisions

    • The Marginal Revenue Product of Labor (MRPL=MPL×MRMRP_L = MP_L \times MR) guides wage determination and the optimal number of workers to employ.
  3. The short run total cost function is given below.

    TC = 200 + 5Q - 0.04 Q² + 0.001 Q³.

    a. Calculate total fixed cost and average fixed cost at Q = 10.

    b. Derive functions for average variable cost , average cost, marginal cost.

    c. Compute the value of AVC, AC, TC and AVC at Q = 10.

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    Short-Run Cost Analysis and Calculations

    Given Short-Run Total Cost Function

    TC=200+5Q0.04Q2+0.001Q3TC = 200 + 5Q - 0.04 Q^2 + 0.001 Q^3

    a) Total Fixed Cost (TFC) and Average Fixed Cost (AFC) at Q=10Q = 10

    1. Total Fixed Cost (TFCTFC):

      • Fixed cost is independent of output level and represents total cost when output is zero (Q=0Q = 0):
        TFC=TC(0)=200+5(0)0.04(0)2+0.001(0)3=Rs 200TFC = TC(0) = 200 + 5(0) - 0.04(0)^2 + 0.001(0)^3 = \mathbf{Rs\ 200}
    2. Average Fixed Cost (AFCAFC) at Q=10Q = 10:

      AFC=TFCQ=20010=Rs 20.00AFC = \frac{TFC}{Q} = \frac{200}{10} = \mathbf{Rs\ 20.00}


    b) Derivation of Cost Functions

    1. Total Variable Cost (TVCTVC):

      TVC=TCTFC=5Q0.04Q2+0.001Q3TVC = TC - TFC = 5Q - 0.04 Q^2 + 0.001 Q^3

    2. Average Variable Cost (AVCAVC):

      AVC=TVCQ=5Q0.04Q2+0.001Q3Q=50.04Q+0.001Q2AVC = \frac{TVC}{Q} = \frac{5Q - 0.04 Q^2 + 0.001 Q^3}{Q} = \mathbf{5 - 0.04 Q + 0.001 Q^2}

    3. Average Cost (ACAC or ATCATC):

      AC=TCQ=200Q+50.04Q+0.001Q2=200Q1+50.04Q+0.001Q2AC = \frac{TC}{Q} = \frac{200}{Q} + 5 - 0.04 Q + 0.001 Q^2 = \mathbf{200Q^{-1} + 5 - 0.04 Q + 0.001 Q^2}

    4. Marginal Cost (MCMC):

      MC=d(TC)dQ=ddQ(200+5Q0.04Q2+0.001Q3)=50.08Q+0.003Q2MC = \frac{d(TC)}{dQ} = \frac{d}{dQ}\left(200 + 5Q - 0.04 Q^2 + 0.001 Q^3\right) = \mathbf{5 - 0.08 Q + 0.003 Q^2}


    c) Computation of Values at Q=10Q = 10

    1. Average Variable Cost (AVCAVC):

      AVC(10)=50.04(10)+0.001(10)2=50.40+0.001(100)=50.40+0.10=Rs 4.70AVC(10) = 5 - 0.04(10) + 0.001(10)^2 = 5 - 0.40 + 0.001(100) = 5 - 0.40 + 0.10 = \mathbf{Rs\ 4.70}

    2. Average Cost (ACAC):

      AC(10)=AFC(10)+AVC(10)=20.00+4.70=Rs 24.70AC(10) = AFC(10) + AVC(10) = 20.00 + 4.70 = \mathbf{Rs\ 24.70}
      Verification: AC(10)=TC(10)10=24710=24.70AC(10) = \frac{TC(10)}{10} = \frac{247}{10} = 24.70.

    3. Total Cost (TCTC):

      TC(10)=200+5(10)0.04(10)2+0.001(10)3TC(10) = 200 + 5(10) - 0.04(10)^2 + 0.001(10)^3
      TC(10)=200+500.04(100)+0.001(1000)=200+504.00+1.00=Rs 247.00TC(10) = 200 + 50 - 0.04(100) + 0.001(1000) = 200 + 50 - 4.00 + 1.00 = \mathbf{Rs\ 247.00}

    4. Marginal Cost (MCMC):

      MC(10)=50.08(10)+0.003(10)2=50.80+0.003(100)=50.80+0.30=Rs 4.50MC(10) = 5 - 0.08(10) + 0.003(10)^2 = 5 - 0.80 + 0.003(100) = 5 - 0.80 + 0.30 = \mathbf{Rs\ 4.50}


    Summary of Computed Cost Values at Q=10Q = 10

    Metric Formula Computed Value
    Total Fixed Cost (TFC) Constant term Rs 200.00
    Average Fixed Cost (AFC) TFC/QTFC / Q Rs 20.00
    Total Variable Cost (TVC) TCTFCTC - TFC Rs 47.00
    Average Variable Cost (AVC) TVC/QTVC / Q Rs 4.70
    Total Cost (TC) TFC+TVCTFC + TVC Rs 247.00
    Average Cost (AC) TC/QTC / Q Rs 24.70
    Marginal Cost (MC) d(TC)/dQd(TC)/dQ Rs 4.50

Section D

Comprehensive Answer / Case / Situation Analysis Questions

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  1. Read the following case carefully and answer the questions that follow:The prices of essentials goods, including fruits and vegetables, have increased in the last seven days due to short supply of use commodities in the local market, as the loaded vehicles with the essential commodities have been unable to enter Nepal through India and other regions.Despite the continuous transportation protest in Terai since over a month, Terai farmers had not been able to sell their products in the market as a result the price of vegetables had gone significantly down.As the loaded vehicles were unable to enter Nepal since few days, the vegetable prices have raised in the domestic market. The price of potatoes has increased by Rs 20 per kg each to Rs 60 and Rs 45, respectively. Similarly, price of cauliflower has gone up by Rs 15 per kg to Rs 45 per kg the price of French bean, on the other hand, has raised Rs 25 per kg to Rs 60 per kg, as against Rs 45 per kg last week, according to whole sale market of Fruits and Vegetables, Kathmandu.As per the price list of whole sale market of Fruits and Vegetable, Kathmandu, prices of other vegetables and fruits have also increased heavily. The price rise, especially of potatoes and onions, is mainly due to uncertainty of import from India. Price of dry onions has soared by eye-watering Rs 50 per kg compared with Rs 105 per kg.Even the price of other vegetables that are produced within a country has raised due to low supply created by transportation protest, prices of pointed gourd (parwal) and balsam apple (barela) has increased by Rs 15 per kg each and their prices have been at Rs 60 and Rs 70 per kg.Likewise, price of fruits has increased substantively, price of pomegranate has increased by Rs 35 per kg to Rs 225 per kg. That of pineapple by Rs 15 per piece to Rs 110. Price of guava increased by Rs 22 per kg to Rs 57 per kg. Price of fresh fish has also sky-rocketed by Rs 100 per kg and is fixed Rs 315 per kg, compared to Rs 225 per kg on last week, demand of fish falls from 85000kg to 72000kg.

    Questions:

    a. Identify the causes for rising prices and explain them.

    b. What are the relevant factors that affect the demand for and supply of fruits and vegetables?

    c. Do you agree that rate of price fluctuation of fruits and vegetables are influenced by their elasticities? Give reasons.

    d. What types of price control measures that government can follow to maintain stable prices for fruits and vegetables?

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    Case Study Analysis: Agricultural Commodity Supply Shocks, Price Volatility, and Market Interventions


    a) Causes for Rising Prices of Fruits and Vegetables

    1. Severe Supply-Chain Disruption & Transport Blockades:
      • Prolonged transportation strikes in the Terai region halted vehicular transit, preventing domestic agricultural produce from reaching urban wholesale centers like the Kalimati Fruits and Vegetable Market in Kathmandu.
    2. Import Obstacles from India:
      • Heavy reliance on cross-border supply from India for core commodities (e.g., dry onions and potatoes) created acute domestic shortages when loaded cargo vehicles were barred from border entry.
    3. Perishable Nature of Commodities:
      • Inability to store fresh produce indefinitely without cold chain infrastructure meant farm produce spoiled at source while terminal city markets faced extreme scarcity (Qd>QsQ_d > Q_s).
    4. Panic Buying and Asymmetric Information:
      • Anticipation of prolonged shortages induced consumers and retail intermediaries to hoard non-perishable staples, driving prices up further.

    b) Relevant Factors Affecting Demand and Supply of Fruits and Vegetables

    1. Factors Affecting Demand:

    • Inelastic Consumer Necessity: Basic vegetables and fruits are daily dietary staples with minimal immediate dietary substitutes.
    • Consumer Population Density: Rapid urbanization in metropolitan Kathmandu maintains a dense, persistent demand base.
    • Household Income and Price Expectations: Expectations of extended supply blockages lead to panic purchases.

    2. Factors Affecting Supply:

    • Logistical Transport and Infrastructure: Free movement of freight vehicles, fuel availability, and highway connectivity.
    • Weather, Seasonality, and Yield: Pre-harvest climate conditions and seasonal production cycles in production pockets.
    • Trade Policy and Border Facilitation: Bilateral customs clearance speed and quarantine regulations between Nepal and India.
    • Post-Harvest Cold Storage Capacity: Availability of temperature-controlled warehousing to absorb temporary market shocks.

    c) Influence of Elasticities on Price Fluctuations

    Yes, price fluctuations in fruits and vegetables are profoundly governed by their demand and supply elasticities.

    1. Inelastic Demand (Ed<1|E_d| < 1):

      • Essential food commodities possess price-inelastic demand because households must consume staple foods daily regardless of price.
      • When demand is inelastic, any percentage contraction in supply causes a proportionately much larger percentage increase in market price to clear the market.
    2. Highly Inelastic Short-Run Supply (Es<1E_s < 1):

      • Agricultural supply cannot expand overnight; crop gestation periods are fixed and perishability prevents rapid inventory release.
      • Consequently, when a supply shock shifts the steep supply curve leftward against a steep demand curve, the price escalation is dramatic (as illustrated by onion prices surging by Rs 50/kg and fish rising by Rs 100/kg).

    d) Government Price Control Measures to Maintain Price Stability

    1. Short-Term Policy Interventions:

      • Market Supply Interventions: Deploy state trading enterprises (e.g., Food Management and Trading Company Ltd. and Salt Trading Corporation) to release buffer stocks of durable vegetables (potatoes, onions) directly into the market at subsidized rates.
      • Protected Freight Convoys (“Green Corridors”): Provide state security escorts for agricultural freight carriers operating between Terai farms and urban wholesale centers during political bandhs.
      • Enforcement of Price Ceilings with Fair-Price Stalls: Set temporary statutory price caps accompanied by strict monitoring to prevent black-marketing, artificial hoarding, and syndication by middlemen.
    2. Medium- and Long-Term Structural Reforms:

      • Cold Chain Warehousing: Invest in public-private partnership (PPP) cold storage facilities across major transit hubs to store perishable buffer stocks.
      • Agricultural Commercialization: Promote domestic production around peri-urban valleys to reduce reliance on cross-border supply chains.