dailysudoku.com

[keith]

Interesting, this one:

[Johan]

UR [37] in R12C15 opens up an xyz-wing, that solves the puzzle.

[Earl]

How does the 37 UR (my grid has two unknowns) work?

A three-step XY-chain eliminates the 7 in R2C1 and opens the puzzle.


Earl

[ravel]

There are at least 2 w-wings, which lead to the same xyz-wing. This also can be replaced by an xy-wing.

[Steve R]

Here is the (37) rectangle in r12c15:

[keith]

What about the Type 6 UR that takes out <6> in R3C6 and R4C4?

Keith

[storm_norm]

xy-chain starting in r7c1 37-34-34-37 removes 7 in r2c1

xy-wing {378} pivot in r7c1 removes 8 in r8c1
-------
just as a side note

another UR exists in boxes 6 and 9 on {1,7} type 4 i believe.

[Asellus]

Lots of Deadly Pattern action here. Interesting indeed.

Regarding Steve's nice bent six, the r178c1 ALS isn't necessary due to the strongly linked <4>s in r23c1. (In fact, I'm not sure this two ALS approach would work without those strongly linked <4>s. I suspect that only the <3> at r3c1 could be eliminated in that case without resorting to additional ALSs in b9 and r8. However that may be...) Those <4>s and the {37} bivalue at r7c1 are all that are required to eliminate the <3>s in r23c1. Pretty nifty!

[Steve R]

Yes, the argument using the conjugates with respect to 4 is a much neater way of using the bent six … but I missed it.

When I wrote before I was pretty sure the als argument did the job as well. Now, a bottle of wine later, I am less certain. For what it’s worth my thinking was:
(1) The bent six must contain 7 or 9.
(2) 7 can be placed only in r2c1 orr7c9. Either puts 3 in r7c1 and eliminates it from r23c1.
(3) If there is no 7, r3c1 contains 9 (not 3). But then r1378c1 becomes a locked (3789) set so 3 may be eliminated from r2c1 as well.

Perhaps it is the wine talking!

Steve

[ravel]

Nice catch, Steve R, i understood it this way:
r2c1=7 or r7c9=7 => r7c1=3 => r123c3<>3
r3c1=9 => r178c1=378 => r23c1<>3