In the 1930's L. F. Richardson proposed that an arms race between two countries could be...
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In the 1930's L. F. Richardson proposed that an arms race between two countries could be modeled by a system of differential equations. One arms race which can be reasonably well described by differential equations is the US-Soviet Union arms race between 1945 and 1960. If x1 represents the annual Soviet expenditures on armaments (in billions of dollars) and y represents the corresponding US expenditures, it has been suggested[1] that x and y obey the following differential equations dx =-0.45x+10.5, dt dy dt = 8.2x0.8y-142. 8y 142. (a) Find the nullclines and equilibrium points for these differential equations. Vertical (-)nullcline: x = Horizontal (+-)nullcline: y =| (b) Find the equilibrium points. Equilibria = (Enter the points as comma-separated (x,y) pairs, e.g., (1,2), (3,4).) (c) By sketching the nullclines and figuring out what directions trajectories go in each region, be sure you can determine what you expect typical trajectories in the phase plane will do. Then, consider the following historical data. In 1955, the arms budgets (x, y) were (25.5,58.3). What do you expect to happen to x and y in the long run if we start from this initial condition? X y (Enter a numerical value, or infinity if the quantity diverges.) (d) The actual expenditures for the USSR and US for the five years following 1955 are shown in the table below. year 1956 1957 1958 1959 1960 USSR ( 23.2 23 22.3 22.3 22.1 US (y) 59.4 61.4 61.4 61.7 59.6 Is this evolution of the values for x and y what the model predicts?? [1] R. Taagepera, G. M. Schiffler, R. T. Perkins and D. L. Wagner, Soviet-American and Israeli-Arab Arms Races and the Richardson Model (General Systems, XX, 1975). In the 1930's L. F. Richardson proposed that an arms race between two countries could be modeled by a system of differential equations. One arms race which can be reasonably well described by differential equations is the US-Soviet Union arms race between 1945 and 1960. If x1 represents the annual Soviet expenditures on armaments (in billions of dollars) and y represents the corresponding US expenditures, it has been suggested[1] that x and y obey the following differential equations dx =-0.45x+10.5, dt dy dt = 8.2x0.8y-142. 8y 142. (a) Find the nullclines and equilibrium points for these differential equations. Vertical (-)nullcline: x = Horizontal (+-)nullcline: y =| (b) Find the equilibrium points. Equilibria = (Enter the points as comma-separated (x,y) pairs, e.g., (1,2), (3,4).) (c) By sketching the nullclines and figuring out what directions trajectories go in each region, be sure you can determine what you expect typical trajectories in the phase plane will do. Then, consider the following historical data. In 1955, the arms budgets (x, y) were (25.5,58.3). What do you expect to happen to x and y in the long run if we start from this initial condition? X y (Enter a numerical value, or infinity if the quantity diverges.) (d) The actual expenditures for the USSR and US for the five years following 1955 are shown in the table below. year 1956 1957 1958 1959 1960 USSR ( 23.2 23 22.3 22.3 22.1 US (y) 59.4 61.4 61.4 61.7 59.6 Is this evolution of the values for x and y what the model predicts?? [1] R. Taagepera, G. M. Schiffler, R. T. Perkins and D. L. Wagner, Soviet-American and Israeli-Arab Arms Races and the Richardson Model (General Systems, XX, 1975).
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Related Book For
Finite Mathematics and Its Applications
ISBN: 978-0134768632
12th edition
Authors: Larry J. Goldstein, David I. Schneider, Martha J. Siegel, Steven Hair
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