The answer is (d). The key is to see that these measures are one and the same: The triangle overlaps the square by the same amount that the square “underlaps” the triangle, so these areas are maximized at the same moment. If A is the area of the triangle, then 0.6A = 2/3 × 36, and A = 40 cm².

From “The Skoliad Corner,” Crux Mathematicorum, December 2000.

“It is solved by B to R 4th [that is, 1. Ba4], moving the B from a strong position, where it defended a Kt, to, apparently, a useless square. In reply, Black has a choice of five moves”:

1. … f5 2. Qg8#
1. … f6 2. Ndc7#
1. … e4 2. Qxe4#
1. … Kxd5 2. Bb3#
1. … d6 2. Nbc7#

“Truly a marvellous composition.”

(“Bridge and Chess Problems,” Strand, March 1908.)

Sidney Penner of Bronx Community College of CUNY, found the solution: 1, 3, 6, 8, 11. In the array, crossing out all the numbers higher than 11 eliminates all the numbers in the third row except 8. Choosing 8 means we have to forswear every other number in the fifth column, which leaves only one possibility in the fourth row, 3. And choosing 3 eliminates every other candidate in the first column, so the only available entry in the first row is 11.

At the request of problem editor Leon Bankoff, Jeanette Bickley ran the following BASIC program on a DEC PDP 11/70 computer, and it confirms Penner’s solution:

1. Ka5! Kxa2 2. Kb4#

(From Crux Mathematicorum, December 2000. See Hafner’s Wolfram Demonstrations page for mazes on cylinders, polyhedra, tori, Moebius strips, Riemann surfaces, and more.)

1. a5! leaves the black king with no moves. Black must move the pawn, whereupon White captures it, giving mate. (If Black moves the pawn two squares, White can capture it en passant, giving the same result.)

From Rivista Scacchistica Italiana, 1907.

The Xs in the left column produce a 1-digit sum, so X = 1, 2, 3, or 4. But looking at the right column, X is the sum of Y and Z, which are distinct numbers, so the smallest possible value of X is 1 + 2 = 3. So X must be either 3 or 4. That means (looking at the left column again) that Y must be at least 6. But Y and Z are summed in both the center and the right columns, producing different digits. So Y and Z must total at least 11, and that means that a 1 is being carried into the total X + X in the left column, producing a total for that column (and a value for Y) of either 3 + 3 + 1 = 7 or 4 + 4 + 1 = 9.

The fact that we’re carrying a 1 into the center column shows us that X + 1 = Z. We’ve established that X is 3 or 4, so Z must be 4 or 5. So:

X = 3 or 4
Y = 7 or 9
Z = 4 or 5

A bit of trial and error shows that X = 4, Y = 9, Z = 5.

08/18/2017 UPDATE: There’s a simple solution that I overlooked:

The tens place shows Z + Y = Z. So either Y is 0 or Y is 9 and we’ve carried a 1 from the ones place. And Y can’t be 0 because it’s the first digit of the solution. So Y is 9.

The hundreds place shows X + X = 9. That’s possible only if X is 4 and we’ve carried a 1 from the tens column.

And the ones place shows Y + Z = X; that is, 9 + Z = 4. So Z is 5.

Also, my argument that X can’t be 1 or 2 isn’t valid — the X in the first column could be the ones digit of some two-digit sum.

Thanks to everyone who wrote in about this; sorry I couldn’t reply to each of you individually.

One. Take one coin from the first stack, two from the second, and so on, and weigh this collection together. The number of grams by which the total is light is the number of the counterfeit stack.

41312432 (or its reverse, 23421314).