1. a8=N d3 2. Nb6 cxb6 3. c7 b5 4. c8=N b4 5. Nd6 exd6 6. e7 d5 7. e8=N d4 8. Nf6 gxf6 9. g7 f5 10. g8=N#

Four knight underpromotions, and three knight sacrifices!

You can see this played out on the excellent ChessNetwork YouTube channel here.

This appeared originally in the Journal of Recreational Mathematics in July 1969, posed by David L. Silverman. Benjamin L. Schwartz of McLean, Va., sent in three different arguments, the simplest of which is purely heuristic. Imagine that the flea is on a dodecahedron (20 vertices), and that he hops around it for a long period of time, say 10,000 hops. He’ll occupy each vertex for approximately the same time, in this case 500 visits. “Then obviously, his average time between calls at that vertex is 20, the number of vertices.”

More formal proofs are possible; see R. Robinson Rowe, “Random Hops on Polyhedral Edges and Other Networks,” Journal of Recreational Mathematics 4:2 [April 1971], 124-130, as well as “Solutions to Problems” in that issue.

Each number in the table is just the sum of its row and column headers, so choosing six numbers in this way is equivalent to just adding up all the headers: (7 + 2 + 3 + 6 + 7 + 5) + (2 + 9 + 8 + 3 + 4 + 1) = 57.

From Edward Barbeau, Murray Klamkin, and William Moser, Five Hundred Mathematical Challenges, 1995.

Any pair of squares that are a knight’s move apart are of different colors — one is white, one black. But any “knight’s tour” on our m × n board will visit mn squares, and mn is odd (since it’s the product of two odd numbers). That means that the knight’s starting and ending squares will be of the same color, and hence can’t be a knight’s move apart.

1. Qa7! and the queen or rook will mate.

From A Collection of Two Hundred Chess Problems, 1866.

1. Nb3! Black must capture a knight, and the queen will mate.

The answer is 1/3, but there’s a beautiful variety of solutions in the discussion.

Cameron Byer, a second grader at Calvary Christian Academy in Harrisonburg, Va., sent this solution:

The problem was originally proposed and solved by Mamikon Mnatsakanian in Soviet Science & Life in 1976, Issue 2.

(Andy Liu, “Problem Section,” Math Horizons 14:2 [November 2006], 40-42.)

To begin with, notice that the sum of the numbers in the white cells in any given row or column must have the same parity (odd or even) as the sum of the numbers in the black cells. That’s necessary because we know that the sum of the whole row (or column) is even: If the white total is even, then the black total must be even, and if the white total is odd then the black total must be odd.

Since that’s so, and since we’re interested only in parity, then in evaluating the black squares over the board as a whole we can make that substitution — in a given row or column, we can substitute the parity of the white sum for the parity of the black sum.

Then let’s calculate the sum of the board’s black cells by considering each column in turn, and we’ll choose to sum the black cells in the odd-numbered columns and the white cells in the even-numbered columns. But that’s just the same as summing every second row on the board, and we already know that each of those totals is even. So the final sum must be even.

(Via R.E. Woodrow, “Olympiad Corner,” Crux Mathematicorum 29:2 [March 2003], 87-103.)

1. Qh4! and the bishop will mate.

(Benjamin Glover Laws, The Two-Move Chess Problem, 1890.)